WO2016116053A1 - Multi-mode feed network for antenna array - Google Patents
Multi-mode feed network for antenna array Download PDFInfo
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- WO2016116053A1 WO2016116053A1 PCT/CN2016/071496 CN2016071496W WO2016116053A1 WO 2016116053 A1 WO2016116053 A1 WO 2016116053A1 CN 2016071496 W CN2016071496 W CN 2016071496W WO 2016116053 A1 WO2016116053 A1 WO 2016116053A1
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- transmission line
- line structure
- antenna elements
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- feed network
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q21/00—Antenna arrays or systems
- H01Q21/0006—Particular feeding systems
- H01Q21/0075—Stripline fed arrays
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01P—WAVEGUIDES; RESONATORS, LINES, OR OTHER DEVICES OF THE WAVEGUIDE TYPE
- H01P1/00—Auxiliary devices
- H01P1/16—Auxiliary devices for mode selection, e.g. mode suppression or mode promotion; for mode conversion
- H01P1/161—Auxiliary devices for mode selection, e.g. mode suppression or mode promotion; for mode conversion sustaining two independent orthogonal modes, e.g. orthomode transducer
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01P—WAVEGUIDES; RESONATORS, LINES, OR OTHER DEVICES OF THE WAVEGUIDE TYPE
- H01P3/00—Waveguides; Transmission lines of the waveguide type
- H01P3/02—Waveguides; Transmission lines of the waveguide type with two longitudinal conductors
- H01P3/08—Microstrips; Strip lines
- H01P3/081—Microstriplines
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01P—WAVEGUIDES; RESONATORS, LINES, OR OTHER DEVICES OF THE WAVEGUIDE TYPE
- H01P3/00—Waveguides; Transmission lines of the waveguide type
- H01P3/02—Waveguides; Transmission lines of the waveguide type with two longitudinal conductors
- H01P3/08—Microstrips; Strip lines
- H01P3/085—Triplate lines
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01P—WAVEGUIDES; RESONATORS, LINES, OR OTHER DEVICES OF THE WAVEGUIDE TYPE
- H01P3/00—Waveguides; Transmission lines of the waveguide type
- H01P3/12—Hollow waveguides
- H01P3/121—Hollow waveguides integrated in a substrate
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01P—WAVEGUIDES; RESONATORS, LINES, OR OTHER DEVICES OF THE WAVEGUIDE TYPE
- H01P5/00—Coupling devices of the waveguide type
- H01P5/12—Coupling devices having more than two ports
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q13/00—Waveguide horns or mouths; Slot antennas; Leaky-waveguide antennas; Equivalent structures causing radiation along the transmission path of a guided wave
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q21/00—Antenna arrays or systems
- H01Q21/0006—Particular feeding systems
- H01Q21/0037—Particular feeding systems linear waveguide fed arrays
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q21/00—Antenna arrays or systems
- H01Q21/06—Arrays of individually energised antenna units similarly polarised and spaced apart
- H01Q21/061—Two dimensional planar arrays
- H01Q21/064—Two dimensional planar arrays using horn or slot aerials
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q21/00—Antenna arrays or systems
- H01Q21/06—Arrays of individually energised antenna units similarly polarised and spaced apart
- H01Q21/061—Two dimensional planar arrays
- H01Q21/065—Patch antenna array
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q5/00—Arrangements for simultaneous operation of antennas on two or more different wavebands, e.g. dual-band or multi-band arrangements
- H01Q5/40—Imbricated or interleaved structures; Combined or electromagnetically coupled arrangements, e.g. comprising two or more non-connected fed radiating elements
- H01Q5/42—Imbricated or interleaved structures; Combined or electromagnetically coupled arrangements, e.g. comprising two or more non-connected fed radiating elements using two or more imbricated arrays
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q5/00—Arrangements for simultaneous operation of antennas on two or more different wavebands, e.g. dual-band or multi-band arrangements
- H01Q5/50—Feeding or matching arrangements for broad-band or multi-band operation
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01Q—ANTENNAS, i.e. RADIO AERIALS
- H01Q9/00—Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
- H01Q9/04—Resonant antennas
- H01Q9/0407—Substantially flat resonant element parallel to ground plane, e.g. patch antenna
- H01Q9/045—Substantially flat resonant element parallel to ground plane, e.g. patch antenna with particular feeding means
Definitions
- the present invention pertains to the field of Radio Frequency (RF) front ends and in particular to feed networks employing multiple electromagnetic propagation modes for feeding antenna arrays.
- RF Radio Frequency
- Multi-band antennas and antenna arrays can be implemented using different types of antenna elements in close proximity.
- isolation of the different antenna elements from each other is generally required to improve performance of the antenna array.
- This can be challenging since the feed lines for the different elements of the multi-band array are also generally in close proximity.
- many existing multi-band arrays and their feed networks exhibit complex three-dimensional structures which are costly and have limited applicability.
- Embodiments of the present invention provide a multi-mode feed network for an antenna array.
- a feed network for an antenna array including at least two different sets of elements.
- the feed network includes a first signal transmission structure coupled to antenna elements of a first set and a second signal transmission structure coupled to antenna elements of the second set.
- the first signal transmission structure is configured for propagating signals according to a first electromagnetic propagation mode corresponding to a Transverse Electromagnetic (TEM) mode or a quasi-TEM mode.
- the second signal transmission structure is configured for propagating signals according to a second electromagnetic propagation mode corresponding to one of a Transverse Electric (TE) and Transverse Magnetic (TM) mode.
- TE Transverse Electric
- TM Transverse Magnetic
- a method for wireless communication utilizing an antenna array which includes at least two different types of elements.
- the method includes propagating signals to and/or from antenna elements of a first type.
- the signals are propagated according to a first electromagnetic propagation mode via a first signal transmission structure.
- the first electromagnetic propagation mode corresponding to Transverse Electromagnetic (TEM) mode or a quasi-TEM mode.
- the method further includes propagating signals to and/or from antenna elements of a second type.
- the signals are propagated according to a second electromagnetic propagation mode via a second signal transmission structure, the second electromagnetic propagation mode corresponding to one of a Transverse Electric (TE) and Transverse Magnetic (TM) mode.
- TE Transverse Electric
- TM Transverse Magnetic
- a wireless device including a feed network for an antenna array including a first transmission line structure configured for propagating signals according to a first electromagnetic propagation mode corresponding to a Transverse Electromagnetic (TEM) or a quasi-TEM mode.
- the first transmission line structure is operatively coupled to a first set of antenna elements of the antenna array.
- the feed network also includes a second transmission line structure for propagating signals according to a second electromagnetic propagation mode corresponding to one of a Transverse Electric (TE) and a Transverse Magnetic (TM) mode.
- the second transmission line structure is operatively coupled to a second set of antenna elements of the antenna array, wherein the second set of antenna elements are different from the first set of antenna elements.
- FIG. 1 schematically illustrates a dual-band antenna array provided in accordance with some embodiments of the present invention.
- FIG. 2 illustrates first and second transmission line structures provided in accordance with one embodiment of the present invention.
- FIG. 3 illustrates first and second transmission line structures provided in accordance with another embodiment of the present invention.
- FIG. 4 illustrates first and second transmission line structures provided in accordance with another embodiment of the present invention.
- FIG. 5 illustrates first and second transmission line structures provided in accordance with another embodiment of the present invention.
- FIG. 6A illustrates a first portion of a transmission line structure which is provided in two different layers in accordance with another embodiment of the present invention.
- FIG. 6B illustrates second portion of a first transmission line structure wherein the vias are formed to interconnect the two different layers illustrated in FIG. 6A.
- FIG. 6C illustrate a second transmission line structure provided in accordance with another embodiment of the present invention.
- FIG. 7 illustrates interconnection between a feed network and a combination antenna element according to an embodiment of the present invention.
- FIG. 8 illustrates a transition circuit coupled to the root of a transmission line structure in accordance with embodiments of the present invention.
- FIG. 9 illustrates a method for wireless communication, in accordance with an embodiment of the present invention.
- FIGs. 10A to 10F illustrate a first subsection of a branched transmission line structure and associated performance aspects, in accordance with an embodiment of the present invention.
- FIGs. 11A to 11F illustrate a second subsection of a branched transmission line structure and associated performance aspects, in accordance with an embodiment of the present invention.
- FIG. 12 illustrates a handheld wireless device comprising a dual-mode transmission line structure provided in accordance with embodiments of the present invention.
- FIG. 13 illustrates a wireless router comprising a dual-mode transmission line structure provided in accordance with embodiments of the present invention.
- the term āaboutā refers to a +/-10%variation from the nominal value. It is to be understood that such a variation is always included in a given value provided herein, whether or not it is specifically referred to.
- Various embodiments of the present invention incorporate one or both of a waveguide structure and a multi-conductortransmission line structure, which correspond to two different types of signal transmission structures.
- these structures are implemented using Printed Circuit Board (PCB) features.
- the waveguide structure may include a Substrate Integrated Waveguide (SIW) and the multi-conductor transmission line structure may include a stripline, microstrip, or like structure.
- SIW Substrate Integrated Waveguide
- the multi-conductor transmission line structure may include a stripline, microstrip, or like structure.
- the electromagnetic propagation mode for a waveguide may be a Transverse Electric (TE) or a Transverse Magnetic (TM) mode
- the electromagnetic propagation mode for a multi-conductortransmission line may be a Transverse Electromagnetic (TEM) mode or a quasi-TEM mode.
- TEM Transverse Electromagnetic
- the use of different modes to feed different antenna elements may assist in isolating the different antenna elements from one another. For example, since a TEM mode and/or frequencies propagated by the corresponding multi-conductor transmission line is generally not sustained by a waveguide, the transmission line feed signal, and/or harmonics thereof, may be impeded from coupling onto the waveguide. Similarly, since the TE and TM modes may not be as readily sustained by a stripline, microstrip, or similar multi-conductor transmission line, the waveguide feed signal, and/or harmonics thereof, may be impeded from coupling onto the transmission line.
- multi-conductor transmission line refers to a signal transmission line such as a stripline, microstrip, coaxial cable, coplanar waveguide, or the like, as distinct from a waveguide which generally includes a single conductive conduit for directing electromagnetic energy.
- Various transmission lines may include a first conductor which is substantially linear or of limited cross section, and a second conductor which has a larger cross section and may operate similarly to a ground plane, the two conductors being spaced apart by a distance which facilitates signal propagation, for example in the TEM or quasi-TEM mode.
- multilayer PCB-implemented waveguide and multi-conductor transmission line structures may provide for compact and cost-effective implementation, particularly when antenna elements are also implemented as features of a multilayer PCB.
- PCB implementation may be useful when the antenna array includes elements in a two-dimensional arrangement, such as a planar, rectangular grid pattern or a concentric circular pattern.
- the signal transmission structures may, in various embodiments, be formed as appropriate conductive features of a multilayer Printed Circuit Board (PCB) , such as features formed by etching of conductive layers, provision of vias, blind vias and buried vias, or the like.
- PCB Printed Circuit Board
- Such PCB implementations may be suitably compact for inclusion in wireless communication equipment, such as mobile communication terminals, handheld devices, wireless routers, mobile base stations, picocells, wireless access points, and the like, as well as being suitable for cost-effective volume production.
- the antenna array includes at least two different sets of antenna elements, which may be of different sizes, different types and/or operate in different frequency bands.
- a first signal transmission structure such as a multi-conductor transmission line structure, coupled to antenna elements of the first set, the first signal transmission structure being configured for propagating signals according to a first electromagnetic propagation mode, such as a Transverse Electromagnetic (TEM) mode or a quasi-TEM mode.
- TEM Transverse Electromagnetic
- a second signal transmission structure such as a waveguide structure, coupled to antenna elements of the second set, the second signal transmission structure being configured for propagating signals according to a second, different electromagnetic propagation mode such as a Transverse Electric (TE) or Transverse Magnetic (TM) mode.
- TE Transverse Electric
- TM Transverse Magnetic
- the use of different propagation modes may facilitate or enhance signal isolation for the two signal transmission structures, for example within the structures, at the antenna coupling or feed points, or both.
- one or more antenna elements from the first set may be co-located with corresponding antenna elements of the second set to form one or more combination antenna elements.
- Antenna elements from the first and second sets may correspond to first and second portions of a combination antenna element, respectively. Accordingly, such combination antenna elements may be viewed as being coupled to both the first signal transmission structure and the second signal transmission structure, for example with the first and second signal transmission structures coupled to the first and second portions of the combination antenna element, respectively.
- the signal transmission structures may be integrated with each other, for example to share common features as described below.
- each signal transmission structure may be customized to provide an efficient, impedance-matched feed for its corresponding type of antenna element, rather than attempting to match a single signal transmission structure to two different types of antenna elements.
- the antenna array fed by the dual-mode feed network may be a dual-band antenna array.
- the first frequency band in which some antenna elements of the array operate is different from the second frequency band in which other antenna elements of the array operate.
- the two frequency bands may be separated by a large frequency difference or a small frequency difference.
- the two frequency bands may be at least partially overlapping.
- the dual-mode feed network may be used to feed elements of the antenna array at these two operating frequencies.
- the two operating frequencies correspond to a Local Multipoint Distribution Service (LMDS) frequency band, such as the 26 GHz to 31 GHz band and one or more E-band frequency bands, such as the 71 to 76 GHz band along with the 81 to 86 GHz band.
- LMDS Local Multipoint Distribution Service
- E-band frequency bands such as the 71 to 76 GHz band along with the 81 to 86 GHz band.
- a representative frequency of the LMDS frequency band is about 28 GHz
- a representative frequency of the E-band is about 84 GHz.
- the 84 GHz frequency is about three times the 28 GHz frequency, which corresponds to an integer multiple of the two representative frequencies.
- first and second signal transmission structures may be branching structures, such as symmetric branching structures.
- the corresponding signal transmission structure may include at least one branching point, such as a bifurcation point, where the signal transmission structure branches or forks into a plurality of branches to provide multiple paths to and/or from the multiple antennas.
- the branches may terminate proximate to the points at which they couple to corresponding antenna elements.
- the first and second signal transmission structures may share one or more common features, such as ground plane features.
- a multi-conductor transmission line structure such as a stripline
- a waveguide structure such as a SIW. Consequently, the multi-conductor transmission line structure may be said to be embedded or integrated within the waveguide.
- a multi-conductor transmission line structure such as a microstrip, may be provided overtop of a waveguide structure, such as a SIW, the transmission line structure using a conductive plane of the waveguide structure as its reference or ground plane structure. In either case, part or all of the waveguide structure also operates as one conductor of the multi-conductor transmission line structure.
- one conductor of the multi-conductor transmission line corresponds to a conductive boundary of the waveguide structure.
- Such arrangements facilitate the interleaving and/or co-existence of the two signal transmission structures. This may facilitate a size reduction in the overall antenna array feed network. Structural portions and/or volumes occupied by the two signal transmission structures may overlap or be shared. Further, in some embodiments the integration of the two signal transmission structures may facilitate the overlapping of signal paths, so that the two signal transmission structures may be routed between common points while occupying a limited, common volume. Further, in some embodiments the integration of the two signal transmission structures may inherently allow one signal transmission structure to pass through another without necessarily having to route all of the components of one signal transmission structure overtop or underneath of the other.
- the branches may co-terminate. This may be the case for example when a branch of a multi-conductor transmission line structure is embedded or integrated within a branch of a waveguide.
- Embodiments of the present invention also provide for diplexing of different signals to and/or from different sets of elements in an antenna array, for example using power splitting and combining and potentially different frequencies of operation.
- the different signals may correspond to different frequency bands, such as LMDS and E-band frequency bands, rather than the same band.
- embodiments of the present invention relate to dual-mode feeds for antenna arrays for RF, microwave and mmW applications.
- various embodiments provide for an alternative manner of feeding a dual-band antenna array. Namely, rather than using a single wideband feed network to coupled to multiple antenna elements operating at different frequencies, two interleaved and relatively narrowband feed networks may be provided.
- the interleaving of the two signal line transmission structures facilitates providing an antenna feed network with a desired spacing between feed points or ports.
- the interleaved structure may allow for narrower port spacing than some other non-interleaved approaches. This can be beneficial for servicing antenna arrays with a specific inter-element spacing requirement, for example as in an array of mmW antenna elements spaced apart by half of an operating wavelength.
- One aspect which may enable the desired spacing between feed points is the reduced volume occupied by the interleaved transmission line structure when compared with two separate structures.
- Another aspect may be the simplified arrangement due to the reduced requirement for separate transmission line to avoid each other. Such considerations may be particularly prominent when the signal line transmission structures are provided as layers within a PCB, due to the particular layout constraints thereof.
- FIG. 1 schematically illustrates a dual-band antenna array provided in accordance with some embodiments of the present invention.
- the antenna array includes both single-band antenna elements 110 and dual-band, combination antenna elements 120.
- the illustrated antenna array may be a portion of a larger antenna array.
- the single-band antenna elements may operate in a first frequency band while the dual-band antenna elements may each include a first sub-element operating in the first frequency band and a second sub-element operating in the second frequency band, respectively.
- the first frequency band includes a first representative frequency, such as a band center frequency, which is associated with a first wavelength.
- the second frequency band includes a second representative frequency, such as a band center frequency, which is associated with a second wavelength.
- the inter-element spacing 115 between adjacent single-band antenna elements 110, as well as between adjacent single-band antenna elements 110 and dual-band antenna elements 120, may be proportional to the first wavelength.
- the inter-element spacing 115 may be equal to about half of the first wavelength. As such, all of the antenna elements or sub-elements operating in the first frequency band are separated by a distance proportional to the first wavelength.
- the inter-element spacing 125 between dual-band antenna elements 120 may be proportional to the second wavelength, for example the inter-element spacing 125 may be equal to about half of the second wavelength. As such, all of the antenna sub-elements operating in the second frequency band are separated by a distance proportional to the second wavelength.
- the first representative frequency may be a substantially integer multiple of the second representative frequency, and hence the second inter-element spacing 125 may be the same integer multiple of the first inter-element spacing.
- the first frequency band may correspond to the E-band with the first representative frequency being at about 84 GHz.
- the second frequency band may correspond to an LMDS band with the second representative frequency being at about 28 GHz.
- the first representative frequency is about three times the second representative frequency
- the second inter-element spacing 125 is about three times the first inter-element spacing 115.
- every fourth element in the antenna array is a combination antenna element.
- Other integer multiples of frequencies may be used, resulting in other array configurations.
- the representative frequencies may be non-integer multiples of one another.
- FIG. 2 illustrates first and second symmetric transmission line structures 210, 220 for operative coupling to the antenna array illustrated in FIG. 1, in accordance with one embodiment of the present invention.
- the first transmission line structure 210 includes plural branches for coupling to both the single-band antenna elements 110 and the first sub-elements of the combination antenna elements 120.
- the second transmission line structure 220 includes plural branches for coupling to the second sub-elements of the combination antenna elements 120.
- the first transmission line structure 210 may be a branched multi-conductor transmission line such as a stripline, while the second transmission line structure 220 may be a branched waveguide such as a SIW.
- portions of the multi-conductor transmission line are co-located with corresponding portions of the waveguide.
- the multi-conductor transmission line may share common features with the waveguide, and another conductor of the stripline may correspond to the waveguide conductor.
- one conductor of the stripline may be routed within an interior of the waveguide.
- the departure may be facilitated by routing the conductor of the stripline through a gap formed in a sidewall of the waveguide.
- this gap may be formed between two vias which function as part of a āfenceā of vias forming the SIW sidewall.
- a root port 240 of the branched transmission line structure may be operatively coupled to other components of the RF front-end.
- An alternative departure of the stripline may be through an aperture formed in top or bottom of the waveguide structure using a via.
- FIG. 3 illustrates first and second symmetric transmission line structures 310, 320 for operative coupling to the antenna array illustrated in FIG. 1, in accordance with another embodiment of the present invention.
- the first transmission line structure 310 includes branches for coupling to both the single-band antenna elements 110 and the first sub-elements of the combination antenna elements 120.
- the second transmission line structure 320 includes branches for coupling to the second sub-elements of the combination antenna elements 120.
- a root port340 of the branched transmission line structure may be operatively coupled to other components of the RF front-end.
- the first transmission line structure 310 may be a branched waveguide structure such as a SIW
- the second transmission line structure 320 may be a branched multi-conductor transmission line such as a stripline.
- portions of the multi-conductor transmission line are co-located with corresponding portions of the waveguide.
- the multi-conductor transmission line may share common features with the waveguide.
- some embodiments of the present invention comprise a waveguide structure which is routed to relatively higher-frequency antenna elements with smaller inter-element spacing and a multi-conductor transmission line structure which is routed to relatively lower-frequency antenna elements with larger inter-element spacing.
- Other embodiments of the present invention comprise a multi-conductor transmission line structure which is routed to the relatively higher-frequency antenna elements with smaller inter-element spacing and a waveguide structure which is routed to the relatively lower-frequency antenna elements with larger inter-element spacing.
- the two transmission line structures each have different numbers of (potentially symmetric) branches in order to feed different numbers of antenna elements disposed in the array with different inter-element spacing or pitch.
- a quantity of branches of one transmission line structure may be less than a quantity of branches of the other transmission line structure.
- Various embodiments of the present invention provide for a pair of interleaved signal line transmission structures, each of which includes a different number of ports spatially disposed at different pitches or inter-port spacing in an array. Further, in some embodiments, some of the ports of a first one of the signal line transmission structures are co-located with some of the ports of a second one of the signal line transmission structures. Thus, some antenna elements may be fed in a dual mode manner whereas other antenna elements are fed in a single mode manner.
- two layers of a multilayer PCB are etched with matching branching structures which are routed in a symmetric manner to all ports to be serviced by the pair of interleaved signal line transmission structures.
- a further PCB layer, between or outside of the matching branching structures is etched with a relatively narrow branching āstripā conductor which is routed in the same symmetric manner as the matching branching structures in order to provide a stripline or microstrip which is routed to all the ports.
- a via fence is provided in order to implement a SIW which routes to less than all of the ports.
- the further PCB layer is etched with a relatively narrow branching āstripā conductor which lies between the matching branching structures and is routed to less than all of the ports in order to provide the stripline or microstrip, while the via fence is provided in order to implement the SIW which routes to all of the ports.
- the via structure connects the edges of the matching branching structures, and in some cases may cut through interior portions of the matching branching structures when the SIW is to be routed to less than all of the ports, for example as illustrated in FIGs. 6A to 6C, which are discussed in further details herein.
- FIG. 4 illustrates first and second symmetric transmission line structures 410, 420 for operative coupling to the antenna array illustrated in FIG. 1, in accordance with yet another embodiment of the present invention.
- the first transmission line structure 410 includes branches for coupling to both the single-band antenna elements 110 and the first sub-elements of the combination antenna elements 120.
- the second transmission line structure 420 includes branches for coupling to the second sub-elements of the combination antenna elements 120.
- the first transmission line structure 410 may be a branched waveguide structure such as a SIW
- the second transmission line structure 420 may be a branched multi-conductor transmission line such as a stripline.
- FIG. 3 the arrangement of FIG.
- a root port 440 of the branched transmission line structure may be operatively coupled to other components of the RF front-end.
- FIG. 5 illustrates a perspective view of the first and second transmission line structures in accordance with an embodiment of the present invention.
- the first transmission line structure is a waveguide structure 510 such as a SIW
- the second transmission line structure is a branched multi-conductor transmission line structure 520 such as a stripline. Further, substantially the entireillustrated portion of the multi-conductor transmission line 520 is integrated within the waveguide structure 510.
- the transmission line structures may be implemented within a multilayer PCB, for example with first and second PCB layers etched with the upper and lower surfaces of the waveguide structure 510 and vias provided in the PCB at a predetermined pitch to interconnect the upper and lower surfaces, and with a third PCB layer between the first and second layers etched with a stripline conductor feature.
- the stripline may be centered between the upper and lower surfaces or the stripline may be an offset stripline located closer to one surface than the other.
- the stripline may be replaced with a microstrip which is routed overtop of or underneath both the first layer and the second layer and hence outside of the SIW.
- a root port 540 of the branched transmission line structure may be operatively coupled to other components of the RF front-end.
- the transmission line structures illustrated in FIG. 5 may also be coupled to an antenna array such as illustrated in FIG. 1. Because every fourth element in the antenna array of FIG. 1 is a combination antenna element, the transmission line structures may be formed with a substantially symmetric series of bifurcation branches. Similarly, if the antenna array is such that every k th element is a combination antenna element, where k is a power of 2, then a substantially symmetric series of bifurcation branches may be used. Otherwise, a different branching arrangement may be necessary. It is noted that k being a power of 2 may be appropriate when a higher representative frequency of the dual-band antenna array is one less than a power of two times a lower representative frequency. As illustrated in FIG. 5, the four terminals or ports 522 the multi-conductor transmission line structure 520 are disposed at a pitch which is about four times the pitch of the sixteen terminals or ports 512 of the waveguide structure 510.
- waveguide and stripline dimensions which may be appropriate for use in the transmission line structures of FIG. 5 when feeding signals in the LMDS and E-bands is as follows.
- the waveguide width is about 55 mils (or 1.4 mm)
- the stripline width is about 6 mils (or 0.15 mm) .
- FIGs. 6A to 6C illustrate first and second transmission line structures provided in accordance with another embodiment of the present invention.
- a SIW is routed to less than all of the transmission line output ports, while a stripline is routed to all of the transmission line output ports.
- FIG. 6A illustrates a structure 660 to be etched on two different layers of a PCB in a matching manner.
- connecting vias would connect the entire perimeters of these matching structures, and a branching stripline structure would be routed between same.
- connecting vias are provided in the pattern illustrated in FIG. 6B, thereby implementing a branching SIW structure 665 which routes to four corner ports 670 rather than all 16 potential ports illustrated.
- FIG. 6C illustrates a branching structure 685 to be provided on a further layer of a PCB in order to complete a branching stripline or microstrip transmission line, which is routed to all 16 ports.
- portions of the branching structure 685 may be routed through gaps 680 in the via fence, such gaps being configured by via placement to facilitate same.
- a stripline may be diverged or exited from between the two reference planes by coupling a via to the stripline at an exit point, the via passing through an aperture in one of the reference planes.
- the first and second transmission line structures are substantially symmetric.
- the path lengths from a common feed port to each antenna connection port of a provided branching transmission structure may be substantially equal.
- the path shape from the common feed port to each antenna connection port of the provided branching transmission structure may be substantially the same.
- the branching pattern and number of branchings along each path may be substantially the same.
- one or more of the above symmetries may facilitate operating each of the antenna elements connected to the transmission line structure with substantially equal phase, for example due to substantially equal path lengths, and with substantially even power distribution between branches.
- the above use of the word substantially with respect to the terms indicative of symmetry, equality and similarity provides for a level of variation in the symmetry, equality and similarity, respectively.
- the word substantially can provide for a variation of about 5%.
- a variation of 5%of similarity, equality or symmetry may result in an undesired level of phase error, while in other instances a variation of 5%of similarity, equality or symmetry may be acceptable. Accordingly, these further levels of variation are to be considered within the scope of the definition of the word substantially.
- a multilayer PCB comprising a dual-mode transmission structure as described herein.
- the PCB may include, on multiple layers, etched conductive features corresponding to the dual-mode transmission structure, for example including a first transmission structure interleaved with a second transmission structure.
- the PCB may further include additional components such as patch antenna elements, waveguide antenna elements, features for coupling to other signal processing electronics, or the like, or a combination thereof.
- the PCB may comprise, in an example order, at least an outer layer etched with a plurality of Microstrip Patch Antenna (MPA) elements formed in an array, a first interior layer etched with an upper ground plane of a branching SIW structure, a second interior layer etched with a branching stripline structure interior to the SIW structure, and a third interior layer etched with a lower ground plane of the branching SIW structure.
- the PCB further comprises blind vias operatively coupling the stripline structure to the plurality of MPA elements, the vias routed through apertures formed in the upper ground plane of the branching SIW structure. Apertures can also be formed in the upper ground plane of the branching SIW structure to provide for waveguide antenna elements.
- Waveguide elements may be included in one or both of the combination antenna elements and the additional antenna elements.
- the additional antenna elements can be interleaved with the combination antenna elements.
- buried vias can be provided for connecting the upper and lower ground planes of the branching SIW structure for provision of the SIW.
- terminals of the branching feed network as described herein may each be operatively coupled to multiple antenna elements in the array in various ways.
- Various techniques for operatively coupling a given type of transmission line to a given type of antenna element would be readily understood by a worker skilled in the art.
- careful consideration may be required in order to ensure each coupling is adequately functional.
- FIG. 7 illustrates interconnection between a feed network and a combination antenna element according to an embodiment of the present invention, wherein the vertical dimension has been greatly exaggerated for ease of reference.
- the feed network includes a waveguide comprising top and bottom conductive surfaces740, 745, and a stripline 730 embedded within the waveguide.
- the waveguide may also be bounded on its sides, for example by a via fence (not shown) in the case of a SIW.
- the combination antenna element includes a waveguide antenna element 750 and a patch antenna element 710.
- the waveguide antenna element 750 is provided at least in part by an aperture formed in the top conductive surface 740 of the waveguide.
- Other structural features may also be provided as part of the waveguide antenna element 750, such as vias and/or etched conductive features formed around and extending outward from the aperture, and a terminal cap of the waveguide such as a via fence.
- the patch antenna element 710 is disposed on a PCB layer which is separated from the waveguide and coupled to the stripline 730 using a via 720 which passes through an aperture formed in the waveguide surface.
- the waveguide surface may further operate as a ground or reference plane acting as a counterpoise to the patch antenna element. This may be viewed as a further benefit resulting from transmission line structure interleaving.
- the feed network as described herein may be used to couple elements of an antenna array to other components of an RF front-end, such as power amplifiers, low-noise amplifiers, or the like. Such elements may be coupled to the feed network at a root port of the branched transmission line structure, for example the root ports 240, 340, 440 and 540 as illustrated in FIGs. 2 to 5, respectively.
- each transmission structure is separated and coupled to different signal processing and/or signal generation electronics.
- FIG. 8 illustrates a transition circuit coupled to an input node of a transmission line structure comprising two integrated transmission lines, such as a stripline embedded within a SIW, in accordance with embodiments of the present invention.
- the transition circuit includes a diplexer 810 which is configured to receive a broadband signal 815 and bifurcate the signal for example using power divider element 820 such as a T junction.
- the broadband signal may be received from a common port which is associated with both of the integrated transmission lines.
- the diplexer 810 further includes a pair of bandpass filters 830, 835 coupled to the power divider element 820.
- Each of the bandpass filters is coupled to one of the transmission line structures of the antenna array feed network, and is configured to pass signal frequency components corresponding to an operating band of the antenna elements coupled at the opposite end of the transmission line structure to which it is coupled.
- the bandpass filters may be configured to pass signal frequency components corresponding to an LMDS band and an E-band, respectively.
- impedance matching components such as switches, transmit and/or receive amplifiers such as power amplifiers and low-noise amplifiers, and the like, may be coupled to the transition circuit for handling the signal transmitted thereto or received therefrom, as would be readily understood by a worker skilled in the art.
- FIG. 9 illustrates a method for wireless communication, in accordance with an embodiment of the present invention.
- the method includes propagating 910 first signals according to a first electromagnetic propagation mode.
- the signal is propagated via a first transmission line structure operatively coupled to a first set of antenna elements.
- the first electromagnetic propagation mode may be a TEM or quasi-TEM mode, and correspondingly the first transmission line structure may be a multi-conductor transmission line structure such as a stripline or microstrip of a PCB.
- the method further includes propagating 920 second signals according to a second electromagnetic propagation mode which is different from the first electromagnetic propagation mode.
- the second signals are propagated via a second transmission line operatively coupled to a second set of antenna elements different from the first set of antenna elements.
- the second electromagnetic propagation mode may be a TE or TM mode, and correspondingly the second transmission line structure may be a waveguide structure such as a SIW of a PCB.
- the first and second signals may be propagated concurrently. Concurrent propagation may be facilitated by isolation between the different transmission line structures, for example due at least in part to mode isolation.
- FIG. 10A illustrates a first subsection of a branched structure including a stripline structure 1000 integrated into a SIW structure 1010, in accordance with an embodiment of the present invention.
- the SIW structure may be configured for transmission of signals in the E-band, while the stripline structure may be configured for transmission of signals in the LMDS band.
- all branches of the SIW structure include a corresponding branch of the stripline structure.
- the first subsection may form part of a branched transmission line structure, for example the center portion of the structure of FIG. 5.
- the SIW structure and the stripline structure may be viewed as a pair of integrated four-way power divider structures.
- FIGs. 10B to 10F illustrate aspects related to performance for the first subsection, including S-parameter frequency response, as derived from simulation and/or modeling of the structure.
- 10A and 11A are curves provided at branching points of the transmission line structures, which may reduce potential signal reflection. Further, the waveguide structure narrows at the branching points, which may further facilitate signal propagation due to application of an appropriate impedance matching.
- FIG. 10B graphically illustrates S-parameters for the SIW structure 1010 of FIG. 10A.
- a first curve 1020 which actually represents plural closely coincident curves, illustrates S21a, S31a, S41a, S51a, the transmission coefficients at each of the output ports of the SIW 4 way power divider shown in Fig. 10A, where port 1 is the input port at center bottom and ports 2 to 5 are the remaining ports.
- a second curve 1025 illustrates S11a, the reflection coefficient at the input port of the SIW 4 way power divider shown in Fig. 10A.
- FIG. 10C graphically illustrates S-parameters for the stripline structure 1000 of FIG. 10A.
- a first curve 1030 which actually represents plural closely coincident curves, illustrates S21b, S31b, S41b, S51b, the transmission coefficients at each of the output ports of the stripline 4 way power divider shown in Fig. 10A, again where port 1 is the input port at center bottom and ports 2 to 5 are the remaining ports.
- a second curve 1035 illustrates S11b, the reflection coefficient at the input port of the stripline 4 way power divider shown in Fig. 10A.
- FIG. 10D graphically illustrates S-parameters indicative of mode isolation between the SIW structure 1010 and the stripline structure 1000 of FIG. 10A.
- a curve 1040 illustrates the coupling coefficient between the input port of the SIW transmission line and the input port of the stripline.
- FIG. 10E illustrates the field distribution of E-band RF energy within the first subsection of the SIW. Notably, this RF energy couples substantially between all illustrated ports of the SIW.
- FIG. 10F illustrates the field distribution of LMDS band RF energy within the first subsection of the SIW. Notably, this RF energy is substantially confined to the vicinity of the stripline embedded within the SIW and couples substantially between all illustrated ports of the stripline.
- FIG. 11A illustrates a second subsection of a branched structure including a stripline structure 1100 integrated into a SIW structure 1110, in accordance with an embodiment of the present invention.
- the SIW structure may be configured for transmission of signals in the E-band, while the stripline structure may be configured for transmission of signals in the LMDS band.
- only one branch of the SIW structure includes a corresponding branch of the stripline structure.
- the second subsection may form part of a branched transmission line structure, for example the edge portions of the structure of FIG. 5.
- the SIW structure and the stripline structure may be viewed as a pair of integrated power divider structures.
- FIGs. 11B to 11F illustrate aspects related to performance for the first subsection, including S-parameter frequency response, as derived from simulation and/or modeling of the structure.
- FIG. 11B graphically illustrates S-parameters for the SIW structure 1110 of FIG. 11A.
- a first curve 1120 which actually represents plural closely coincident curves, illustrates S21a, S31a, S41a, S51a, the transmission coefficients at each of the output ports of the SIW 4 way power divider shown in Fig. 11A, where port 1 is the input port at center bottom and ports 2 to 5 are the remaining ports.
- a second curve 1125 illustrates S11a, the reflection coefficient at the input port of the SIW 4 way power divider shown in Fig. 11A.
- FIG. 11C graphically illustrates S-parameters for the stripline structure 1100 of FIG. 11A.
- a first curve 1130 which actually represents plural closely coincident curves, illustrates S21b, the transmission coefficient of the stripline shown in Fig. 11A.
- a second curve 1135 illustrates S11b, the reflection coefficient of the stripline shown in Fig. 11A.
- FIG. 11D graphically illustrates S-parameters indicative of mode isolation between the SIW structure 1110 and the stripline structure 1100 of FIG. 11A.
- a curve 1140 illustrates the coupling coefficient between the input port of the SIW transmission line and the input port of the stripline.
- FIG. 11E illustrates the field distribution of E-band RF energy within the first subsection of the SIW. Notably, this RF energy couples substantially between all illustrated ports of the SIW.
- FIG. 11F illustrates the field distribution of LMDS band RF energy within the first subsection of the SIW. Notably, this RF energy is substantially confined to the vicinity of the stripline embedded within the SIW and couples substantially only between the two ports to which the stripline is routed.
- FIG. 12 illustrates a handheld wireless device 1200 comprising feed network in accordance with embodiments of the present invention.
- the feed network can be a dual-mode transmission line structure.
- the wireless device includes a PCB 1210 having an array of antenna elements and a branched, dual-mode transmission line structure 1220 operatively coupled to the array of antenna elements.
- the handheld wireless device 1200 may comprise various operatively interconnected electronic components which can include one or more of signal processing components, control components, RF front-end components, microprocessors, microcontrollers, memory (random access memory, flash memory or the like) , integrated circuits, and the like.
- FIG. 13 illustrates a wireless router 1300 comprising feed network in accordance with embodiments of the present invention.
- the feed network can be a dual-mode transmission line structure.
- the wireless router includes a PCB 1310 having an array of antenna elements and a branched, dual-mode transmission line structure 1320 operatively coupled to the array of antenna elements.
- the wireless router 1300 may comprise various operatively interconnected electronic components which can include one or more of signal processing components, control components, RF front-end components, microprocessors, microcontrollers, memory (random access memory, flash memory or the like) , integrated circuits, and the like.
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Abstract
A dual-mode feed network for an antenna array or combination antenna is provided. Two transmission line structures propagate signals according to two different electromagnetic propagation modes, such as TE, TM, TEM and quasi TEM modes. The two transmission line structures are operatively coupled to different components of the antenna array. One transmission line structure may be a stripline or microstrip, and the other transmission line structure may be a waveguide such as a Substrate Integrated Waveguide. Both transmission line structures may branch to reach multiple elements of the antenna array. The transmission lines may share common features, for example by embedding the stripline within the waveguide.
Description
CROSS-REFERENCEĀ TOĀ RELATEDĀ APPLICATIONS
ThisĀ applicationĀ claimsĀ theĀ benefitĀ ofĀ priorityĀ toĀ USĀ PatentĀ ApplicationĀ SerialĀ NumberĀ 14/602,759,Ā filedĀ onĀ JanuaryĀ 22,Ā 2015Ā entitledĀ āMULTI-MODEĀ FEEDĀ NETWORKĀ FORĀ ANTENNAĀ ARRAYāĀ ,Ā theĀ contentsĀ ofĀ whichĀ areĀ incorporatedĀ hereinĀ byĀ reference.
TheĀ presentĀ inventionĀ pertainsĀ toĀ theĀ fieldĀ ofĀ RadioĀ FrequencyĀ (RF)Ā frontĀ endsĀ andĀ inĀ particularĀ toĀ feedĀ networksĀ employingĀ multipleĀ electromagneticĀ propagationĀ modesĀ forĀ feedingĀ antennaĀ arrays.
Multi-bandĀ antennasĀ andĀ antennaĀ arraysĀ canĀ beĀ implementedĀ usingĀ differentĀ typesĀ ofĀ antennaĀ elementsĀ inĀ closeĀ proximity.Ā However,Ā isolationĀ ofĀ theĀ differentĀ antennaĀ elementsĀ fromĀ eachĀ otherĀ isĀ generallyĀ requiredĀ toĀ improveĀ performanceĀ ofĀ theĀ antennaĀ array.Ā ThisĀ canĀ beĀ challengingĀ sinceĀ theĀ feedĀ linesĀ forĀ theĀ differentĀ elementsĀ ofĀ theĀ multi-bandĀ arrayĀ areĀ alsoĀ generallyĀ inĀ closeĀ proximity.Ā Furthermore,Ā manyĀ existingĀ multi-bandĀ arraysĀ andĀ theirĀ feedĀ networksĀ exhibitĀ complexĀ three-dimensionalĀ structuresĀ whichĀ areĀ costlyĀ andĀ haveĀ limitedĀ applicability.
ThereforeĀ thereĀ isĀ aĀ needĀ forĀ aĀ feedĀ networkĀ structureĀ forĀ anĀ antennaĀ arrayĀ thatĀ isĀ notĀ subjectĀ toĀ oneĀ orĀ moreĀ limitationsĀ ofĀ theĀ priorĀ art.
ThisĀ backgroundĀ informationĀ isĀ providedĀ toĀ revealĀ informationĀ ofĀ possibleĀ relevanceĀ toĀ theĀ presentĀ invention.Ā NoĀ admissionĀ isĀ intended,Ā norĀ shouldĀ beĀ construed,Ā thatĀ anyĀ ofĀ theĀ precedingĀ informationĀ constitutesĀ priorĀ artĀ relevantĀ toĀ theĀ presentĀ invention.
SUMMARY
EmbodimentsĀ ofĀ theĀ presentĀ inventionĀ provideĀ aĀ multi-modeĀ feedĀ networkĀ forĀ anĀ antennaĀ array.Ā InĀ accordanceĀ withĀ anĀ aspectĀ ofĀ theĀ presentĀ invention,Ā thereĀ isĀ providedĀ aĀ feedĀ networkĀ forĀ anĀ antennaĀ array,Ā theĀ antennaĀ arrayĀ includingĀ atĀ leastĀ twoĀ differentĀ setsĀ ofĀ elements.Ā TheĀ feedĀ networkĀ includesĀ aĀ firstĀ signalĀ transmissionĀ structureĀ coupledĀ toĀ antennaĀ elementsĀ ofĀ aĀ firstĀ setĀ andĀ aĀ secondĀ signalĀ transmissionĀ structureĀ coupledĀ toĀ antennaĀ elementsĀ ofĀ theĀ secondĀ set.Ā TheĀ firstĀ signalĀ transmissionĀ structureĀ isĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā modeĀ orĀ aĀ quasi-TEMĀ mode.Ā TheĀ secondĀ signalĀ transmissionĀ structureĀ isĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ oneĀ ofĀ aĀ TransverseĀ ElectricĀ (TE)Ā andĀ TransverseĀ MagneticĀ (TM)Ā mode.
InĀ accordanceĀ withĀ anotherĀ aspectĀ ofĀ theĀ presentĀ invention,Ā thereĀ isĀ providedĀ aĀ methodĀ forĀ wirelessĀ communicationĀ utilizingĀ anĀ antennaĀ arrayĀ whichĀ includesĀ atĀ leastĀ twoĀ differentĀ typesĀ ofĀ elements.Ā TheĀ methodĀ includesĀ propagatingĀ signalsĀ toĀ and/orĀ fromĀ antennaĀ elementsĀ ofĀ aĀ firstĀ type.Ā TheĀ signalsĀ areĀ propagatedĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ modeĀ viaĀ aĀ firstĀ signalĀ transmissionĀ structure.Ā TheĀ firstĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ TransverseĀ ElectromagneticĀ (TEM)Ā modeĀ orĀ aĀ quasi-TEMĀ mode.Ā TheĀ methodĀ furtherĀ includesĀ propagatingĀ signalsĀ toĀ and/orĀ fromĀ antennaĀ elementsĀ ofĀ aĀ secondĀ type.Ā TheĀ signalsĀ areĀ propagatedĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ modeĀ viaĀ aĀ secondĀ signalĀ transmissionĀ structure,Ā theĀ secondĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ oneĀ ofĀ aĀ TransverseĀ ElectricĀ (TE)Ā andĀ TransverseĀ MagneticĀ (TM)Ā mode.
InĀ accordanceĀ withĀ anotherĀ aspectĀ ofĀ theĀ presentĀ invention,Ā thereĀ isĀ providedĀ aĀ wirelessĀ deviceĀ includingĀ aĀ feedĀ networkĀ forĀ anĀ antennaĀ arrayĀ includingĀ aĀ firstĀ transmissionĀ lineĀ structureĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā orĀ aĀ quasi-TEMĀ mode.Ā TheĀ firstĀ transmissionĀ lineĀ structureĀ isĀ operativelyĀ coupledĀ toĀ aĀ firstĀ setĀ ofĀ antennaĀ elementsĀ ofĀ theĀ antennaĀ array.Ā TheĀ feedĀ networkĀ alsoĀ includesĀ aĀ secondĀ transmissionĀ lineĀ structureĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ oneĀ ofĀ aĀ TransverseĀ ElectricĀ (TE)Ā andĀ aĀ TransverseĀ MagneticĀ (TM)Ā mode.Ā TheĀ secondĀ transmissionĀ lineĀ structureĀ isĀ operativelyĀ coupledĀ toĀ aĀ secondĀ setĀ ofĀ antennaĀ elementsĀ ofĀ theĀ
antennaĀ array,Ā whereinĀ theĀ secondĀ setĀ ofĀ antennaĀ elementsĀ areĀ differentĀ fromĀ theĀ firstĀ setĀ ofĀ antennaĀ elements.
BRIEFĀ DESCRIPTIONĀ OFĀ THEĀ FIGURES
FurtherĀ featuresĀ andĀ advantagesĀ ofĀ theĀ presentĀ inventionĀ willĀ becomeĀ apparentĀ fromĀ theĀ followingĀ detailedĀ description,Ā takenĀ inĀ combinationĀ withĀ theĀ appendedĀ drawings,Ā inĀ which:
FIG.Ā 1Ā schematicallyĀ illustratesĀ aĀ dual-bandĀ antennaĀ arrayĀ providedĀ inĀ accordanceĀ withĀ someĀ embodimentsĀ ofĀ theĀ presentĀ invention.
FIG.Ā 2Ā illustratesĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ providedĀ inĀ accordanceĀ withĀ oneĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 3Ā illustratesĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ providedĀ inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 4Ā illustratesĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ providedĀ inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 5Ā illustratesĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ providedĀ inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 6AĀ illustratesĀ aĀ firstĀ portionĀ ofĀ aĀ transmissionĀ lineĀ structureĀ whichĀ isĀ providedĀ inĀ twoĀ differentĀ layersĀ inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 6BĀ illustratesĀ secondĀ portionĀ ofĀ aĀ firstĀ transmissionĀ lineĀ structureĀ whereinĀ theĀ viasĀ areĀ formedĀ toĀ interconnectĀ theĀ twoĀ differentĀ layersĀ illustratedĀ inĀ FIG.Ā 6A.
FIG.Ā 6CĀ illustrateĀ aĀ secondĀ transmissionĀ lineĀ structureĀ providedĀ inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 7Ā illustratesĀ interconnectionĀ betweenĀ aĀ feedĀ networkĀ andĀ aĀ combinationĀ antennaĀ elementĀ accordingĀ toĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 8Ā illustratesĀ aĀ transitionĀ circuitĀ coupledĀ toĀ theĀ rootĀ ofĀ aĀ transmissionĀ lineĀ structureĀ inĀ accordanceĀ withĀ embodimentsĀ ofĀ theĀ presentĀ invention.
FIG.Ā 9Ā illustratesĀ aĀ methodĀ forĀ wirelessĀ communication,Ā inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIGs.Ā 10AĀ toĀ 10FĀ illustrateĀ aĀ firstĀ subsectionĀ ofĀ aĀ branchedĀ transmissionĀ lineĀ structureĀ andĀ associatedĀ performanceĀ aspects,Ā inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIGs.Ā 11AĀ toĀ 11FĀ illustrateĀ aĀ secondĀ subsectionĀ ofĀ aĀ branchedĀ transmissionĀ lineĀ structureĀ andĀ associatedĀ performanceĀ aspects,Ā inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.
FIG.Ā 12Ā illustratesĀ aĀ handheldĀ wirelessĀ deviceĀ comprisingĀ aĀ dual-modeĀ transmissionĀ lineĀ structureĀ providedĀ inĀ accordanceĀ withĀ embodimentsĀ ofĀ theĀ presentĀ invention.
FIG.Ā 13Ā illustratesĀ aĀ wirelessĀ routerĀ comprisingĀ aĀ dual-modeĀ transmissionĀ lineĀ structureĀ providedĀ inĀ accordanceĀ withĀ embodimentsĀ ofĀ theĀ presentĀ invention.
ItĀ willĀ beĀ notedĀ thatĀ throughoutĀ theĀ appendedĀ drawings,Ā likeĀ featuresĀ areĀ identifiedĀ byĀ likeĀ referenceĀ numerals.
Definitions
AsĀ usedĀ herein,Ā theĀ termĀ āaboutāĀ refersĀ toĀ aĀ +/-10ļ¼
variationĀ fromĀ theĀ nominalĀ value.Ā ItĀ isĀ toĀ beĀ understoodĀ thatĀ suchĀ aĀ variationĀ isĀ alwaysĀ includedĀ inĀ aĀ givenĀ valueĀ providedĀ herein,Ā whetherĀ orĀ notĀ itĀ isĀ specificallyĀ referredĀ to.
UnlessĀ definedĀ otherwise,Ā allĀ technicalĀ andĀ scientificĀ termsĀ usedĀ hereinĀ haveĀ theĀ sameĀ meaningĀ asĀ commonlyĀ understoodĀ byĀ oneĀ ofĀ ordinaryĀ skillĀ inĀ theĀ artĀ toĀ whichĀ thisĀ inventionĀ belongs.
VariousĀ embodimentsĀ ofĀ theĀ presentĀ inventionĀ incorporateĀ oneĀ orĀ bothĀ ofĀ aĀ waveguideĀ structureĀ andĀ aĀ multi-conductortransmissionĀ lineĀ structure,Ā whichĀ correspondĀ toĀ twoĀ differentĀ typesĀ ofĀ signalĀ transmissionĀ structures.Ā InĀ someĀ embodiments,Ā theseĀ structuresĀ areĀ implementedĀ usingĀ PrintedĀ CircuitĀ BoardĀ (PCB)Ā features.Ā ForĀ example,Ā theĀ waveguideĀ structureĀ mayĀ includeĀ aĀ SubstrateĀ IntegratedĀ WaveguideĀ (SIW)Ā andĀ theĀ multi-conductorĀ transmissionĀ lineĀ structureĀ mayĀ includeĀ aĀ stripline,Ā microstrip,Ā orĀ likeĀ structure.Ā AsĀ willĀ beĀ readilyĀ understoodĀ byĀ aĀ workerĀ skilledĀ inĀ theĀ art,Ā theĀ electromagneticĀ propagationĀ modeĀ forĀ aĀ waveguideĀ mayĀ beĀ aĀ TransverseĀ ElectricĀ (TE)Ā orĀ aĀ TransverseĀ MagneticĀ (TM)Ā mode,Ā whereasĀ theĀ electromagneticĀ propagationĀ modeĀ forĀ aĀ multi-conductortransmissionĀ lineĀ mayĀ beĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā modeĀ orĀ aĀ quasi-TEMĀ mode.Ā TheĀ useĀ ofĀ differentĀ modesĀ toĀ feedĀ differentĀ antennaĀ elementsĀ mayĀ assistĀ inĀ isolatingĀ theĀ differentĀ antennaĀ elementsĀ fromĀ oneĀ another.Ā ForĀ example,Ā sinceĀ aĀ TEMĀ modeĀ and/orĀ frequenciesĀ propagatedĀ byĀ theĀ correspondingĀ multi-conductorĀ transmissionĀ lineĀ isĀ generallyĀ notĀ sustainedĀ byĀ aĀ waveguide,Ā theĀ
transmissionĀ lineĀ feedĀ signal,Ā and/orĀ harmonicsĀ thereof,Ā mayĀ beĀ impededĀ fromĀ couplingĀ ontoĀ theĀ waveguide.Ā Similarly,Ā sinceĀ theĀ TEĀ andĀ TMĀ modesĀ mayĀ notĀ beĀ asĀ readilyĀ sustainedĀ byĀ aĀ stripline,Ā microstrip,Ā orĀ similarĀ multi-conductorĀ transmissionĀ line,Ā theĀ waveguideĀ feedĀ signal,Ā and/orĀ harmonicsĀ thereof,Ā mayĀ beĀ impededĀ fromĀ couplingĀ ontoĀ theĀ transmissionĀ line.
AsĀ usedĀ herein,Ā theĀ termĀ āmulti-conductorĀ transmissionĀ lineāĀ refersĀ toĀ aĀ signalĀ transmissionĀ lineĀ suchĀ asĀ aĀ stripline,Ā microstrip,Ā coaxialĀ cable,Ā coplanarĀ waveguide,Ā orĀ theĀ like,Ā asĀ distinctĀ fromĀ aĀ waveguideĀ whichĀ generallyĀ includesĀ aĀ singleĀ conductiveĀ conduitĀ forĀ directingĀ electromagneticĀ energy.Ā VariousĀ transmissionĀ linesĀ mayĀ includeĀ aĀ firstĀ conductorĀ whichĀ isĀ substantiallyĀ linearĀ orĀ ofĀ limitedĀ crossĀ section,Ā andĀ aĀ secondĀ conductorĀ whichĀ hasĀ aĀ largerĀ crossĀ sectionĀ andĀ mayĀ operateĀ similarlyĀ toĀ aĀ groundĀ plane,Ā theĀ twoĀ conductorsĀ beingĀ spacedĀ apartĀ byĀ aĀ distanceĀ whichĀ facilitatesĀ signalĀ propagation,Ā forĀ exampleĀ inĀ theĀ TEMĀ orĀ quasi-TEMĀ mode.
TheĀ useĀ ofĀ aĀ multilayerĀ PCB-implementedĀ waveguideĀ andĀ multi-conductorĀ transmissionĀ lineĀ structuresĀ mayĀ provideĀ forĀ compactĀ andĀ cost-effectiveĀ implementation,Ā particularlyĀ whenĀ antennaĀ elementsĀ areĀ alsoĀ implementedĀ asĀ featuresĀ ofĀ aĀ multilayerĀ PCB.Ā Furthermore,Ā suchĀ aĀ PCBĀ implementationĀ mayĀ beĀ usefulĀ whenĀ theĀ antennaĀ arrayĀ includesĀ elementsĀ inĀ aĀ two-dimensionalĀ arrangement,Ā suchĀ asĀ aĀ planar,Ā rectangularĀ gridĀ patternĀ orĀ aĀ concentricĀ circularĀ pattern.
TheĀ signalĀ transmissionĀ structuresĀ may,Ā inĀ variousĀ embodiments,Ā beĀ formedĀ asĀ appropriateĀ conductiveĀ featuresĀ ofĀ aĀ multilayerĀ PrintedĀ CircuitĀ BoardĀ (PCB)Ā ,Ā suchĀ asĀ featuresĀ formedĀ byĀ etchingĀ ofĀ conductiveĀ layers,Ā provisionĀ ofĀ vias,Ā blindĀ viasĀ andĀ buriedĀ vias,Ā orĀ theĀ like.Ā SuchĀ PCBĀ implementationsĀ mayĀ beĀ suitablyĀ compactĀ forĀ inclusionĀ inĀ wirelessĀ communicationĀ equipment,Ā suchĀ asĀ mobileĀ communicationĀ terminals,Ā handheldĀ devices,Ā wirelessĀ routers,Ā mobileĀ baseĀ stations,Ā picocells,Ā wirelessĀ accessĀ points,Ā andĀ theĀ like,Ā asĀ wellĀ asĀ beingĀ suitableĀ forĀ cost-effectiveĀ volumeĀ production.
AspectsĀ ofĀ theĀ presentĀ inventionĀ provideĀ aĀ feedĀ networkĀ forĀ anĀ antennaĀ arrayĀ andĀ anĀ associatedĀ method.Ā TheĀ antennaĀ arrayĀ includesĀ atĀ leastĀ twoĀ differentĀ setsĀ ofĀ antennaĀ elements,Ā whichĀ mayĀ beĀ ofĀ differentĀ sizes,Ā differentĀ typesĀ and/orĀ operateĀ inĀ differentĀ frequencyĀ bands.Ā ProvidedĀ inĀ theĀ feedĀ networkĀ isĀ aĀ firstĀ signalĀ transmissionĀ structure,Ā suchĀ asĀ aĀ multi-conductorĀ transmissionĀ lineĀ structure,Ā coupledĀ toĀ antennaĀ elementsĀ ofĀ theĀ firstĀ set,Ā theĀ firstĀ signalĀ transmissionĀ structureĀ beingĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ mode,Ā suchĀ asĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā modeĀ orĀ aĀ
quasi-TEMĀ mode.Ā AlsoĀ providedĀ inĀ theĀ feedĀ networkĀ isĀ aĀ secondĀ signalĀ transmissionĀ structure,Ā suchĀ asĀ aĀ waveguideĀ structure,Ā coupledĀ toĀ antennaĀ elementsĀ ofĀ theĀ secondĀ set,Ā theĀ secondĀ signalĀ transmissionĀ structureĀ beingĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ second,Ā differentĀ electromagneticĀ propagationĀ modeĀ suchĀ asĀ aĀ TransverseĀ ElectricĀ (TE)Ā orĀ TransverseĀ MagneticĀ (TM)Ā mode.Ā TheĀ useĀ ofĀ differentĀ propagationĀ modesĀ mayĀ facilitateĀ orĀ enhanceĀ signalĀ isolationĀ forĀ theĀ twoĀ signalĀ transmissionĀ structures,Ā forĀ exampleĀ withinĀ theĀ structures,Ā atĀ theĀ antennaĀ couplingĀ orĀ feedĀ points,Ā orĀ both.
InĀ variousĀ embodiments,Ā oneĀ orĀ moreĀ antennaĀ elementsĀ fromĀ theĀ firstĀ setĀ mayĀ beĀ co-locatedĀ withĀ correspondingĀ antennaĀ elementsĀ ofĀ theĀ secondĀ setĀ toĀ formĀ oneĀ orĀ moreĀ combinationĀ antennaĀ elements.Ā AntennaĀ elementsĀ fromĀ theĀ firstĀ andĀ secondĀ setsĀ mayĀ correspondĀ toĀ firstĀ andĀ secondĀ portionsĀ ofĀ aĀ combinationĀ antennaĀ element,Ā respectively.Ā Accordingly,Ā suchĀ combinationĀ antennaĀ elementsĀ mayĀ beĀ viewedĀ asĀ beingĀ coupledĀ toĀ bothĀ theĀ firstĀ signalĀ transmissionĀ structureĀ andĀ theĀ secondĀ signalĀ transmissionĀ structure,Ā forĀ exampleĀ withĀ theĀ firstĀ andĀ secondĀ signalĀ transmissionĀ structuresĀ coupledĀ toĀ theĀ firstĀ andĀ secondĀ portionsĀ ofĀ theĀ combinationĀ antennaĀ element,Ā respectively.Ā AtĀ leastĀ inĀ partĀ inĀ orderĀ toĀ serviceĀ theĀ co-locatedĀ antennaĀ elements,Ā theĀ signalĀ transmissionĀ structuresĀ mayĀ beĀ integratedĀ withĀ eachĀ other,Ā forĀ exampleĀ toĀ shareĀ commonĀ featuresĀ asĀ describedĀ below.
TheĀ useĀ ofĀ twoĀ signalĀ transmissionĀ structuresĀ forĀ separatelyĀ feedingĀ twoĀ setsĀ ofĀ antennaĀ elementsĀ mayĀ facilitateĀ aĀ desiredĀ impedanceĀ matchingĀ asĀ wellĀ asĀ aĀ desiredĀ spacingĀ forĀ theĀ correspondingĀ antennaĀ array.Ā ForĀ example,Ā eachĀ signalĀ transmissionĀ structureĀ mayĀ beĀ customizedĀ toĀ provideĀ anĀ efficient,Ā impedance-matchedĀ feedĀ forĀ itsĀ correspondingĀ typeĀ ofĀ antennaĀ element,Ā ratherĀ thanĀ attemptingĀ toĀ matchĀ aĀ singleĀ signalĀ transmissionĀ structureĀ toĀ twoĀ differentĀ typesĀ ofĀ antennaĀ elements.
InĀ someĀ embodiments,Ā theĀ antennaĀ arrayĀ fedĀ byĀ theĀ dual-modeĀ feedĀ networkĀ mayĀ beĀ aĀ dual-bandĀ antennaĀ array.Ā InĀ variousĀ embodimentsĀ ofĀ theĀ presentĀ invention,Ā theĀ firstĀ frequencyĀ bandĀ inĀ whichĀ someĀ antennaĀ elementsĀ ofĀ theĀ arrayĀ operateĀ isĀ differentĀ fromĀ theĀ secondĀ frequencyĀ bandĀ inĀ whichĀ otherĀ antennaĀ elementsĀ ofĀ theĀ arrayĀ operate.Ā InĀ variousĀ embodiments,Ā theĀ twoĀ frequencyĀ bandsĀ mayĀ beĀ separatedĀ byĀ aĀ largeĀ frequencyĀ differenceĀ orĀ aĀ smallĀ frequencyĀ difference.Ā InĀ someĀ embodiments,Ā theĀ twoĀ frequencyĀ bandsĀ mayĀ beĀ atĀ leastĀ partiallyĀ overlapping.Ā TheĀ dual-modeĀ feedĀ networkĀ mayĀ beĀ usedĀ toĀ feedĀ elementsĀ ofĀ theĀ antennaĀ arrayĀ atĀ theseĀ twoĀ operatingĀ frequencies.Ā InĀ someĀ embodiments,Ā theĀ twoĀ operatingĀ frequenciesĀ correspondĀ toĀ aĀ LocalĀ MultipointĀ DistributionĀ ServiceĀ (LMDS)Ā frequencyĀ band,Ā
suchĀ asĀ theĀ 26Ā GHzĀ toĀ 31Ā GHzĀ bandĀ andĀ oneĀ orĀ moreĀ E-bandĀ frequencyĀ bands,Ā suchĀ asĀ theĀ 71Ā toĀ 76Ā GHzĀ bandĀ alongĀ withĀ theĀ 81Ā toĀ 86Ā GHzĀ band.Ā InĀ oneĀ embodiment,Ā aĀ representativeĀ frequencyĀ ofĀ theĀ LMDSĀ frequencyĀ bandĀ isĀ aboutĀ 28Ā GHz,Ā andĀ aĀ representativeĀ frequencyĀ ofĀ theĀ E-bandĀ isĀ aboutĀ 84Ā GHz.Ā NotablyĀ theĀ 84Ā GHzĀ frequencyĀ isĀ aboutĀ threeĀ timesĀ theĀ 28Ā GHzĀ frequency,Ā whichĀ correspondsĀ toĀ anĀ integerĀ multipleĀ ofĀ theĀ twoĀ representativeĀ frequencies.
InĀ variousĀ embodiments,Ā oneĀ orĀ bothĀ ofĀ theĀ firstĀ andĀ secondĀ signalĀ transmissionĀ structuresĀ mayĀ beĀ branchingĀ structures,Ā suchĀ asĀ symmetricĀ branchingĀ structures.Ā ForĀ example,Ā inĀ orderĀ toĀ provideĀ aĀ transmissionĀ lineĀ orĀ waveguideĀ whichĀ couplesĀ multipleĀ antennasĀ ofĀ anĀ arrayĀ antennaĀ toĀ aĀ commonĀ signalĀ sourceĀ orĀ destinationĀ suchĀ asĀ anĀ amplifierĀ orĀ otherĀ RFĀ front-endĀ component,Ā theĀ correspondingĀ signalĀ transmissionĀ structureĀ mayĀ includeĀ atĀ leastĀ oneĀ branchingĀ point,Ā suchĀ asĀ aĀ bifurcationĀ point,Ā whereĀ theĀ signalĀ transmissionĀ structureĀ branchesĀ orĀ forksĀ intoĀ aĀ pluralityĀ ofĀ branchesĀ toĀ provideĀ multipleĀ pathsĀ toĀ and/orĀ fromĀ theĀ multipleĀ antennas.Ā TheĀ branchesĀ mayĀ terminateĀ proximateĀ toĀ theĀ pointsĀ atĀ whichĀ theyĀ coupleĀ toĀ correspondingĀ antennaĀ elements.
Further,Ā inĀ variousĀ embodiments,Ā theĀ firstĀ andĀ secondĀ signalĀ transmissionĀ structuresĀ mayĀ shareĀ oneĀ orĀ moreĀ commonĀ features,Ā suchĀ asĀ groundĀ planeĀ features.Ā ForĀ example,Ā aĀ multi-conductorĀ transmissionĀ lineĀ structure,Ā suchĀ asĀ aĀ stripline,Ā mayĀ beĀ providedĀ withinĀ anĀ interiorĀ ofĀ aĀ waveguideĀ structure,Ā suchĀ asĀ aĀ SIW.Ā Consequently,Ā theĀ multi-conductorĀ transmissionĀ lineĀ structureĀ mayĀ beĀ saidĀ toĀ beĀ embeddedĀ orĀ integratedĀ withinĀ theĀ waveguide.Ā AsĀ anotherĀ example,Ā aĀ multi-conductorĀ transmissionĀ lineĀ structure,Ā suchĀ asĀ aĀ microstrip,Ā mayĀ beĀ providedĀ overtopĀ ofĀ aĀ waveguideĀ structure,Ā suchĀ asĀ aĀ SIW,Ā theĀ transmissionĀ lineĀ structureĀ usingĀ aĀ conductiveĀ planeĀ ofĀ theĀ waveguideĀ structureĀ asĀ itsĀ referenceĀ orĀ groundĀ planeĀ structure.Ā InĀ eitherĀ case,Ā partĀ orĀ allĀ ofĀ theĀ waveguideĀ structureĀ alsoĀ operatesĀ asĀ oneĀ conductorĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ structure.Ā ThatĀ is,Ā oneĀ conductorĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ correspondsĀ toĀ aĀ conductiveĀ boundaryĀ ofĀ theĀ waveguideĀ structure.Ā SuchĀ arrangementsĀ facilitateĀ theĀ interleavingĀ and/orĀ co-existenceĀ ofĀ theĀ twoĀ signalĀ transmissionĀ structures.Ā ThisĀ mayĀ facilitateĀ aĀ sizeĀ reductionĀ inĀ theĀ overallĀ antennaĀ arrayĀ feedĀ network.Ā StructuralĀ portionsĀ and/orĀ volumesĀ occupiedĀ byĀ theĀ twoĀ signalĀ transmissionĀ structuresĀ mayĀ overlapĀ orĀ beĀ shared.Ā Further,Ā inĀ someĀ embodimentsĀ theĀ integrationĀ ofĀ theĀ twoĀ signalĀ transmissionĀ structuresĀ mayĀ facilitateĀ theĀ overlappingĀ ofĀ signalĀ paths,Ā soĀ thatĀ theĀ twoĀ signalĀ transmissionĀ structuresĀ mayĀ beĀ routedĀ betweenĀ commonĀ pointsĀ whileĀ occupyingĀ aĀ limited,Ā commonĀ volume.Ā Further,Ā inĀ someĀ embodimentsĀ theĀ integrationĀ ofĀ theĀ twoĀ signalĀ transmissionĀ
structuresĀ mayĀ inherentlyĀ allowĀ oneĀ signalĀ transmissionĀ structureĀ toĀ passĀ throughĀ anotherĀ withoutĀ necessarilyĀ havingĀ toĀ routeĀ allĀ ofĀ theĀ componentsĀ ofĀ oneĀ signalĀ transmissionĀ structureĀ overtopĀ orĀ underneathĀ ofĀ theĀ other.
WhenĀ aĀ combinationĀ antennaĀ elementĀ isĀ coupledĀ toĀ twoĀ differentĀ branchesĀ ofĀ twoĀ differentĀ transmissionĀ lineĀ structures,Ā theĀ branchesĀ mayĀ co-terminate.Ā ThisĀ mayĀ beĀ theĀ caseĀ forĀ exampleĀ whenĀ aĀ branchĀ ofĀ aĀ multi-conductorĀ transmissionĀ lineĀ structureĀ isĀ embeddedĀ orĀ integratedĀ withinĀ aĀ branchĀ ofĀ aĀ waveguide.
ItĀ isĀ notedĀ thatĀ theĀ paperĀ āDual-ModeĀ High-SpeedĀ DataĀ TransmissionĀ UsingĀ SubstrateĀ IntegratedĀ WaveguideĀ Interconnects,Ā āĀ A.Ā SuntivesĀ andĀ R.Ā Abhari,Ā IEEEĀ ConferenceĀ onĀ ElectricalĀ PerformanceĀ ofĀ ElectronicĀ Packaging,Ā OctoberĀ 2007,Ā discussesĀ aĀ striplineĀ embeddedĀ insideĀ ofĀ aĀ substrateĀ integratedĀ waveguideĀ toĀ createĀ aĀ dual-modeĀ orĀ hybridĀ interconnectĀ structure.Ā However,Ā inĀ contrastĀ toĀ theĀ above-mentionedĀ paper,Ā embodimentsĀ ofĀ theĀ presentĀ inventionĀ provideĀ forĀ anĀ applicationĀ inĀ whichĀ twoĀ signalĀ transmissionĀ structuresĀ shareĀ commonĀ features,Ā areĀ coupledĀ directlyĀ atĀ oneĀ endĀ toĀ antennaĀ elementsĀ andĀ henceĀ canĀ beĀ usedĀ forĀ feedingĀ orĀ beingĀ fedĀ byĀ suchĀ antennaĀ elements,Ā andĀ mayĀ beĀ branchingĀ andĀ potentiallyĀ symmetricĀ signalĀ transmissionĀ structures.Ā EmbodimentsĀ ofĀ theĀ presentĀ inventionĀ alsoĀ provideĀ forĀ diplexingĀ ofĀ differentĀ signalsĀ toĀ and/orĀ fromĀ differentĀ setsĀ ofĀ elementsĀ inĀ anĀ antennaĀ array,Ā forĀ exampleĀ usingĀ powerĀ splittingĀ andĀ combiningĀ andĀ potentiallyĀ differentĀ frequenciesĀ ofĀ operation.Ā TheĀ differentĀ signalsĀ mayĀ correspondĀ toĀ differentĀ frequencyĀ bands,Ā suchĀ asĀ LMDSĀ andĀ E-bandĀ frequencyĀ bands,Ā ratherĀ thanĀ theĀ sameĀ band.Ā Further,Ā embodimentsĀ ofĀ theĀ presentĀ inventionĀ relateĀ toĀ dual-modeĀ feedsĀ forĀ antennaĀ arraysĀ forĀ RF,Ā microwaveĀ andĀ mmWĀ applications.
ItĀ isĀ notedĀ thatĀ variousĀ embodimentsĀ provideĀ forĀ anĀ alternativeĀ mannerĀ ofĀ feedingĀ aĀ dual-bandĀ antennaĀ array.Ā Namely,Ā ratherĀ thanĀ usingĀ aĀ singleĀ widebandĀ feedĀ networkĀ toĀ coupledĀ toĀ multipleĀ antennaĀ elementsĀ operatingĀ atĀ differentĀ frequencies,Ā twoĀ interleavedĀ andĀ relativelyĀ narrowbandĀ feedĀ networksĀ mayĀ beĀ provided.
InĀ variousĀ embodiments,Ā theĀ interleavingĀ ofĀ theĀ twoĀ signalĀ lineĀ transmissionĀ structuresĀ facilitatesĀ providingĀ anĀ antennaĀ feedĀ networkĀ withĀ aĀ desiredĀ spacingĀ betweenĀ feedĀ pointsĀ orĀ ports.Ā Moreover,Ā theĀ interleavedĀ structureĀ mayĀ allowĀ forĀ narrowerĀ portĀ spacingĀ thanĀ someĀ otherĀ non-interleavedĀ approaches.Ā ThisĀ canĀ beĀ beneficialĀ forĀ servicingĀ antennaĀ arraysĀ withĀ aĀ specificĀ inter-elementĀ spacingĀ requirement,Ā forĀ exampleĀ asĀ inĀ anĀ arrayĀ ofĀ mmWĀ antennaĀ
elementsĀ spacedĀ apartĀ byĀ halfĀ ofĀ anĀ operatingĀ wavelength.Ā OneĀ aspectĀ whichĀ mayĀ enableĀ theĀ desiredĀ spacingĀ betweenĀ feedĀ pointsĀ isĀ theĀ reducedĀ volumeĀ occupiedĀ byĀ theĀ interleavedĀ transmissionĀ lineĀ structureĀ whenĀ comparedĀ withĀ twoĀ separateĀ structures.Ā AnotherĀ aspectĀ mayĀ beĀ theĀ simplifiedĀ arrangementĀ dueĀ toĀ theĀ reducedĀ requirementĀ forĀ separateĀ transmissionĀ lineĀ toĀ avoidĀ eachĀ other.Ā SuchĀ considerationsĀ mayĀ beĀ particularlyĀ prominentĀ whenĀ theĀ signalĀ lineĀ transmissionĀ structuresĀ areĀ providedĀ asĀ layersĀ withinĀ aĀ PCB,Ā dueĀ toĀ theĀ particularĀ layoutĀ constraintsĀ thereof.
FIG.Ā 1Ā schematicallyĀ illustratesĀ aĀ dual-bandĀ antennaĀ arrayĀ providedĀ inĀ accordanceĀ withĀ someĀ embodimentsĀ ofĀ theĀ presentĀ invention.Ā TheĀ antennaĀ arrayĀ includesĀ bothĀ single-bandĀ antennaĀ elements Ā 110Ā andĀ dual-band,Ā combinationĀ antennaĀ elements Ā 120.Ā TheĀ illustratedĀ antennaĀ arrayĀ mayĀ beĀ aĀ portionĀ ofĀ aĀ largerĀ antennaĀ array.Ā TheĀ single-bandĀ antennaĀ elementsĀ mayĀ operateĀ inĀ aĀ firstĀ frequencyĀ bandĀ whileĀ theĀ dual-bandĀ antennaĀ elementsĀ mayĀ eachĀ includeĀ aĀ firstĀ sub-elementĀ operatingĀ inĀ theĀ firstĀ frequencyĀ bandĀ andĀ aĀ secondĀ sub-elementĀ operatingĀ inĀ theĀ secondĀ frequencyĀ band,Ā respectively.
SpacingĀ betweenĀ theĀ illustratedĀ arrayĀ elementsĀ mayĀ beĀ asĀ follows.Ā TheĀ firstĀ frequencyĀ bandĀ includesĀ aĀ firstĀ representativeĀ frequency,Ā suchĀ asĀ aĀ bandĀ centerĀ frequency,Ā whichĀ isĀ associatedĀ withĀ aĀ firstĀ wavelength.Ā Likewise,Ā theĀ secondĀ frequencyĀ bandĀ includesĀ aĀ secondĀ representativeĀ frequency,Ā suchĀ asĀ aĀ bandĀ centerĀ frequency,Ā whichĀ isĀ associatedĀ withĀ aĀ secondĀ wavelength.Ā TheĀ inter-elementĀ spacing Ā 115Ā betweenĀ adjacentĀ single-bandĀ antennaĀ elements Ā 110,Ā asĀ wellĀ asĀ betweenĀ adjacentĀ single-bandĀ antennaĀ elements Ā 110Ā andĀ dual-bandĀ antennaĀ elements Ā 120,Ā mayĀ beĀ proportionalĀ toĀ theĀ firstĀ wavelength.Ā ForĀ example,Ā theĀ inter-elementĀ spacing Ā 115Ā mayĀ beĀ equalĀ toĀ aboutĀ halfĀ ofĀ theĀ firstĀ wavelength.Ā AsĀ such,Ā allĀ ofĀ theĀ antennaĀ elementsĀ orĀ sub-elementsĀ operatingĀ inĀ theĀ firstĀ frequencyĀ bandĀ areĀ separatedĀ byĀ aĀ distanceĀ proportionalĀ toĀ theĀ firstĀ wavelength.Ā Similarly,Ā theĀ inter-elementĀ spacing Ā 125Ā betweenĀ dual-bandĀ antennaĀ elements Ā 120Ā mayĀ beĀ proportionalĀ toĀ theĀ secondĀ wavelength,Ā forĀ exampleĀ theĀ inter-elementĀ spacing Ā 125Ā mayĀ beĀ equalĀ toĀ aboutĀ halfĀ ofĀ theĀ secondĀ wavelength.Ā AsĀ such,Ā allĀ ofĀ theĀ antennaĀ sub-elementsĀ operatingĀ inĀ theĀ secondĀ frequencyĀ bandĀ areĀ separatedĀ byĀ aĀ distanceĀ proportionalĀ toĀ theĀ secondĀ wavelength.Ā Finally,Ā theĀ firstĀ representativeĀ frequencyĀ mayĀ beĀ aĀ substantiallyĀ integerĀ multipleĀ ofĀ theĀ secondĀ representativeĀ frequency,Ā andĀ henceĀ theĀ secondĀ inter-elementĀ spacing Ā 125Ā mayĀ beĀ theĀ sameĀ integerĀ multipleĀ ofĀ theĀ firstĀ inter-elementĀ spacing.Ā ForĀ example,Ā theĀ firstĀ frequencyĀ bandĀ mayĀ correspondĀ toĀ theĀ E-bandĀ withĀ theĀ firstĀ representativeĀ frequencyĀ beingĀ atĀ aboutĀ 84Ā GHz.Ā LikewiseĀ theĀ secondĀ frequencyĀ bandĀ
mayĀ correspondĀ toĀ anĀ LMDSĀ bandĀ withĀ theĀ secondĀ representativeĀ frequencyĀ beingĀ atĀ aboutĀ 28Ā GHz.Ā ThusĀ theĀ firstĀ representativeĀ frequencyĀ isĀ aboutĀ threeĀ timesĀ theĀ secondĀ representativeĀ frequency,Ā andĀ theĀ secondĀ inter-elementĀ spacing Ā 125Ā isĀ aboutĀ threeĀ timesĀ theĀ firstĀ inter-elementĀ spacing Ā 115.Ā AsĀ such,Ā everyĀ fourthĀ elementĀ inĀ theĀ antennaĀ arrayĀ isĀ aĀ combinationĀ antennaĀ element.Ā OtherĀ integerĀ multiplesĀ ofĀ frequenciesĀ mayĀ beĀ used,Ā resultingĀ inĀ otherĀ arrayĀ configurations.Ā ForĀ example,Ā ifĀ theĀ firstĀ representativeĀ frequencyĀ wereĀ anĀ integerĀ kĀ timesĀ theĀ secondĀ representativeĀ frequency,Ā thenĀ everyĀ k+1stĀ elementĀ inĀ theĀ rectangularĀ antennaĀ array,Ā horizontallyĀ andĀ vertically,Ā mayĀ beĀ aĀ combinationĀ antennaĀ element.Ā InĀ otherĀ embodiments,Ā theĀ representativeĀ frequenciesĀ mayĀ beĀ non-integerĀ multiplesĀ ofĀ oneĀ another.
FIG.Ā 2Ā illustratesĀ firstĀ andĀ secondĀ symmetricĀ transmissionĀ lineĀ structures Ā 210,Ā 220Ā forĀ operativeĀ couplingĀ toĀ theĀ antennaĀ arrayĀ illustratedĀ inĀ FIG.Ā 1,Ā inĀ accordanceĀ withĀ oneĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā TheĀ firstĀ transmissionĀ lineĀ structure Ā 210Ā includesĀ pluralĀ branchesĀ forĀ couplingĀ toĀ bothĀ theĀ single-bandĀ antennaĀ elements Ā 110Ā andĀ theĀ firstĀ sub-elementsĀ ofĀ theĀ combinationĀ antennaĀ elements Ā 120.Ā TheĀ secondĀ transmissionĀ lineĀ structure Ā 220Ā includesĀ pluralĀ branchesĀ forĀ couplingĀ toĀ theĀ secondĀ sub-elementsĀ ofĀ theĀ combinationĀ antennaĀ elements Ā 120.
InĀ theĀ presentlyĀ illustratedĀ embodiment,Ā theĀ firstĀ transmissionĀ lineĀ structure Ā 210Ā mayĀ beĀ aĀ branchedĀ multi-conductorĀ transmissionĀ lineĀ suchĀ asĀ aĀ stripline,Ā whileĀ theĀ secondĀ transmissionĀ lineĀ structure Ā 220Ā mayĀ beĀ aĀ branchedĀ waveguideĀ suchĀ asĀ aĀ SIW.Ā InĀ variousĀ regions,Ā forĀ exampleĀ atĀ region Ā 230,Ā portionsĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ areĀ co-locatedĀ withĀ correspondingĀ portionsĀ ofĀ theĀ waveguide.Ā AtĀ theseĀ regions Ā 230,Ā theĀ multi-conductorĀ transmissionĀ lineĀ mayĀ shareĀ commonĀ featuresĀ withĀ theĀ waveguide,Ā andĀ anotherĀ conductorĀ ofĀ theĀ striplineĀ mayĀ correspondĀ toĀ theĀ waveguideĀ conductor.Ā ForĀ example,Ā oneĀ conductorĀ ofĀ theĀ striplineĀ mayĀ beĀ routedĀ withinĀ anĀ interiorĀ ofĀ theĀ waveguide.Ā WhereĀ theĀ multi-conductorĀ transmissionĀ lineĀ departsĀ fromĀ theĀ waveguide,Ā theĀ departureĀ mayĀ beĀ facilitatedĀ byĀ routingĀ theĀ conductorĀ ofĀ theĀ striplineĀ throughĀ aĀ gapĀ formedĀ inĀ aĀ sidewallĀ ofĀ theĀ waveguide.Ā InĀ theĀ caseĀ ofĀ aĀ SIW,Ā thisĀ gapĀ mayĀ beĀ formedĀ betweenĀ twoĀ viasĀ whichĀ functionĀ asĀ partĀ ofĀ aĀ āfenceāĀ ofĀ viasĀ formingĀ theĀ SIWĀ sidewall.Ā AĀ rootĀ port Ā 240Ā ofĀ theĀ branchedĀ transmissionĀ lineĀ structureĀ mayĀ beĀ operativelyĀ coupledĀ toĀ otherĀ componentsĀ ofĀ theĀ RFĀ front-end.Ā AnĀ alternativeĀ departureĀ ofĀ theĀ striplineĀ mayĀ beĀ throughĀ anĀ apertureĀ formedĀ inĀ topĀ orĀ bottomĀ ofĀ theĀ waveguideĀ structureĀ usingĀ aĀ via.
FIG.Ā 3Ā illustratesĀ firstĀ andĀ secondĀ symmetricĀ transmissionĀ lineĀ structures Ā 310,Ā 320Ā forĀ operativeĀ couplingĀ toĀ theĀ antennaĀ arrayĀ illustratedĀ inĀ FIG.Ā 1,Ā inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā AsĀ before,Ā theĀ firstĀ transmissionĀ lineĀ structure Ā 310Ā includesĀ branchesĀ forĀ couplingĀ toĀ bothĀ theĀ single-bandĀ antennaĀ elements Ā 110Ā andĀ theĀ firstĀ sub-elementsĀ ofĀ theĀ combinationĀ antennaĀ elements Ā 120.Ā TheĀ secondĀ transmissionĀ lineĀ structure Ā 320Ā includesĀ branchesĀ forĀ couplingĀ toĀ theĀ secondĀ sub-elementsĀ ofĀ theĀ combinationĀ antennaĀ elements Ā 120.Ā AĀ rootĀ port340Ā ofĀ theĀ branchedĀ transmissionĀ lineĀ structureĀ mayĀ beĀ operativelyĀ coupledĀ toĀ otherĀ componentsĀ ofĀ theĀ RFĀ front-end.
InĀ theĀ presentlyĀ illustratedĀ embodiment,Ā theĀ firstĀ transmissionĀ lineĀ structure Ā 310Ā mayĀ beĀ aĀ branchedĀ waveguideĀ structureĀ suchĀ asĀ aĀ SIW,Ā whileĀ theĀ secondĀ transmissionĀ lineĀ structure Ā 320Ā mayĀ beĀ aĀ branchedĀ multi-conductorĀ transmissionĀ lineĀ suchĀ asĀ aĀ stripline.Ā InĀ variousĀ regions,Ā forĀ exampleĀ atĀ region Ā 330,Ā portionsĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ areĀ co-locatedĀ withĀ correspondingĀ portionsĀ ofĀ theĀ waveguide.Ā AsĀ discussedĀ withĀ respectĀ toĀ FIG.Ā 2,Ā atĀ theseĀ regions Ā 330,Ā theĀ multi-conductorĀ transmissionĀ lineĀ mayĀ shareĀ commonĀ featuresĀ withĀ theĀ waveguide.
AsĀ isĀ apparentĀ fromĀ aĀ comparisonĀ ofĀ FIGs.Ā 2Ā andĀ 3,Ā someĀ embodimentsĀ ofĀ theĀ presentĀ inventionĀ compriseĀ aĀ waveguideĀ structureĀ whichĀ isĀ routedĀ toĀ relativelyĀ higher-frequencyĀ antennaĀ elementsĀ withĀ smallerĀ inter-elementĀ spacingĀ andĀ aĀ multi-conductorĀ transmissionĀ lineĀ structureĀ whichĀ isĀ routedĀ toĀ relativelyĀ lower-frequencyĀ antennaĀ elementsĀ withĀ largerĀ inter-elementĀ spacing.Ā OtherĀ embodimentsĀ ofĀ theĀ presentĀ inventionĀ compriseĀ aĀ multi-conductorĀ transmissionĀ lineĀ structureĀ whichĀ isĀ routedĀ toĀ theĀ relativelyĀ higher-frequencyĀ antennaĀ elementsĀ withĀ smallerĀ inter-elementĀ spacingĀ andĀ aĀ waveguideĀ structureĀ whichĀ isĀ routedĀ toĀ theĀ relativelyĀ lower-frequencyĀ antennaĀ elementsĀ withĀ largerĀ inter-elementĀ spacing.Ā InĀ eitherĀ case,Ā theĀ twoĀ transmissionĀ lineĀ structuresĀ eachĀ haveĀ differentĀ numbersĀ ofĀ (potentiallyĀ symmetric)Ā branchesĀ inĀ orderĀ toĀ feedĀ differentĀ numbersĀ ofĀ antennaĀ elementsĀ disposedĀ inĀ theĀ arrayĀ withĀ differentĀ inter-elementĀ spacingĀ orĀ pitch.Ā AsĀ such,Ā aĀ quantityĀ ofĀ branchesĀ ofĀ oneĀ transmissionĀ lineĀ structureĀ mayĀ beĀ lessĀ thanĀ aĀ quantityĀ ofĀ branchesĀ ofĀ theĀ otherĀ transmissionĀ lineĀ structure.
VariousĀ embodimentsĀ ofĀ theĀ presentĀ inventionĀ provideĀ forĀ aĀ pairĀ ofĀ interleavedĀ signalĀ lineĀ transmissionĀ structures,Ā eachĀ ofĀ whichĀ includesĀ aĀ differentĀ numberĀ ofĀ portsĀ spatiallyĀ disposedĀ atĀ differentĀ pitchesĀ orĀ inter-portĀ spacingĀ inĀ anĀ array.Ā Further,Ā inĀ someĀ embodiments,Ā someĀ ofĀ theĀ portsĀ ofĀ aĀ firstĀ oneĀ ofĀ theĀ signalĀ lineĀ transmissionĀ structuresĀ areĀ co-locatedĀ withĀ
someĀ ofĀ theĀ portsĀ ofĀ aĀ secondĀ oneĀ ofĀ theĀ signalĀ lineĀ transmissionĀ structures.Ā Thus,Ā someĀ antennaĀ elementsĀ mayĀ beĀ fedĀ inĀ aĀ dualĀ modeĀ mannerĀ whereasĀ otherĀ antennaĀ elementsĀ areĀ fedĀ inĀ aĀ singleĀ modeĀ manner.
InĀ someĀ embodiments,Ā twoĀ layersĀ ofĀ aĀ multilayerĀ PCBĀ areĀ etchedĀ withĀ matchingĀ branchingĀ structuresĀ whichĀ areĀ routedĀ inĀ aĀ symmetricĀ mannerĀ toĀ allĀ portsĀ toĀ beĀ servicedĀ byĀ theĀ pairĀ ofĀ interleavedĀ signalĀ lineĀ transmissionĀ structures.Ā InĀ oneĀ suchĀ embodiment,Ā aĀ furtherĀ PCBĀ layer,Ā betweenĀ orĀ outsideĀ ofĀ theĀ matchingĀ branchingĀ structures,Ā isĀ etchedĀ withĀ aĀ relativelyĀ narrowĀ branchingĀ āstripāĀ conductorĀ whichĀ isĀ routedĀ inĀ theĀ sameĀ symmetricĀ mannerĀ asĀ theĀ matchingĀ branchingĀ structuresĀ inĀ orderĀ toĀ provideĀ aĀ striplineĀ orĀ microstripĀ whichĀ isĀ routedĀ toĀ allĀ theĀ ports.Ā FurtherĀ inĀ thisĀ embodiment,Ā aĀ viaĀ fenceĀ isĀ providedĀ inĀ orderĀ toĀ implementĀ aĀ SIWĀ whichĀ routesĀ toĀ lessĀ thanĀ allĀ ofĀ theĀ ports.Ā InĀ anotherĀ embodiment,Ā theĀ furtherĀ PCBĀ layerĀ isĀ etchedĀ withĀ aĀ relativelyĀ narrowĀ branchingĀ āstripāĀ conductorĀ whichĀ liesĀ betweenĀ theĀ matchingĀ branchingĀ structuresĀ andĀ isĀ routedĀ toĀ lessĀ thanĀ allĀ ofĀ theĀ portsĀ inĀ orderĀ toĀ provideĀ theĀ striplineĀ orĀ microstrip,Ā whileĀ theĀ viaĀ fenceĀ isĀ providedĀ inĀ orderĀ toĀ implementĀ theĀ SIWĀ whichĀ routesĀ toĀ allĀ ofĀ theĀ ports.Ā InĀ eitherĀ case,Ā theĀ viaĀ structureĀ connectsĀ theĀ edgesĀ ofĀ theĀ matchingĀ branchingĀ structures,Ā andĀ inĀ someĀ casesĀ mayĀ cutĀ throughĀ interiorĀ portionsĀ ofĀ theĀ matchingĀ branchingĀ structuresĀ whenĀ theĀ SIWĀ isĀ toĀ beĀ routedĀ toĀ lessĀ thanĀ allĀ ofĀ theĀ ports,Ā forĀ exampleĀ asĀ illustratedĀ inĀ FIGs.Ā 6AĀ toĀ 6C,Ā whichĀ areĀ discussedĀ inĀ furtherĀ detailsĀ herein.
FIG.Ā 4Ā illustratesĀ firstĀ andĀ secondĀ symmetricĀ transmissionĀ lineĀ structures Ā 410,Ā 420Ā forĀ operativeĀ couplingĀ toĀ theĀ antennaĀ arrayĀ illustratedĀ inĀ FIG.Ā 1,Ā inĀ accordanceĀ withĀ yetĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā Again,Ā theĀ firstĀ transmissionĀ lineĀ structure Ā 410Ā includesĀ branchesĀ forĀ couplingĀ toĀ bothĀ theĀ single-bandĀ antennaĀ elements Ā 110Ā andĀ theĀ firstĀ sub-elementsĀ ofĀ theĀ combinationĀ antennaĀ elements Ā 120.Ā TheĀ secondĀ transmissionĀ lineĀ structure Ā 420Ā includesĀ branchesĀ forĀ couplingĀ toĀ theĀ secondĀ sub-elementsĀ ofĀ theĀ combinationĀ antennaĀ elements Ā 120.Ā AsĀ withĀ FIG.Ā 3,Ā theĀ firstĀ transmissionĀ lineĀ structure Ā 410Ā mayĀ beĀ aĀ branchedĀ waveguideĀ structureĀ suchĀ asĀ aĀ SIW,Ā whileĀ theĀ secondĀ transmissionĀ lineĀ structure Ā 420Ā mayĀ beĀ aĀ branchedĀ multi-conductorĀ transmissionĀ lineĀ suchĀ asĀ aĀ stripline.Ā However,Ā inĀ contrastĀ toĀ FIG.Ā 3,Ā theĀ arrangementĀ ofĀ FIG.Ā 4Ā correspondsĀ toĀ anĀ arrangementĀ inĀ whichĀ allĀ sectionsĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ areĀ co-locatedĀ withĀ correspondingĀ portionsĀ ofĀ theĀ waveguide.Ā SuchĀ anĀ arrangementĀ mayĀ mitigateĀ potentialĀ signalĀ loss,Ā signalĀ reflection,Ā signalĀ leakage,Ā orĀ theĀ like,Ā dueĀ toĀ routingĀ ofĀ theĀ transmissionĀ lineĀ awayĀ fromĀ andĀ backĀ toĀ theĀ waveguide,Ā forĀ exampleĀ dueĀ toĀ routingĀ ofĀ aĀ striplineĀ conductorĀ throughĀ aĀ gapĀ betweenĀ viasĀ inĀ aĀ SIW.Ā AsĀ before,Ā theĀ
multi-conductorĀ transmissionĀ lineĀ mayĀ shareĀ commonĀ featuresĀ withĀ theĀ waveguide.Ā AĀ rootĀ port Ā 440Ā ofĀ theĀ branchedĀ transmissionĀ lineĀ structureĀ mayĀ beĀ operativelyĀ coupledĀ toĀ otherĀ componentsĀ ofĀ theĀ RFĀ front-end.
FIG.Ā 5Ā illustratesĀ aĀ perspectiveĀ viewĀ ofĀ theĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā SimilarlyĀ toĀ FIG.Ā 4,Ā theĀ firstĀ transmissionĀ lineĀ structureĀ isĀ aĀ waveguideĀ structure Ā 510Ā suchĀ asĀ aĀ SIW,Ā whileĀ theĀ secondĀ transmissionĀ lineĀ structureĀ isĀ aĀ branchedĀ multi-conductorĀ transmissionĀ lineĀ structure Ā 520Ā suchĀ asĀ aĀ stripline.Ā Further,Ā substantiallyĀ theĀ entireillustratedĀ portionĀ ofĀ theĀ multi-conductorĀ transmissionĀ line Ā 520Ā isĀ integratedĀ withinĀ theĀ waveguideĀ structure Ā 510.Ā TheĀ transmissionĀ lineĀ structuresĀ mayĀ beĀ implementedĀ withinĀ aĀ multilayerĀ PCB,Ā forĀ exampleĀ withĀ firstĀ andĀ secondĀ PCBĀ layersĀ etchedĀ withĀ theĀ upperĀ andĀ lowerĀ surfacesĀ ofĀ theĀ waveguideĀ structure Ā 510Ā andĀ viasĀ providedĀ inĀ theĀ PCBĀ atĀ aĀ predeterminedĀ pitchĀ toĀ interconnectĀ theĀ upperĀ andĀ lowerĀ surfaces,Ā andĀ withĀ aĀ thirdĀ PCBĀ layerĀ betweenĀ theĀ firstĀ andĀ secondĀ layersĀ etchedĀ withĀ aĀ striplineĀ conductorĀ feature.Ā TheĀ striplineĀ mayĀ beĀ centeredĀ betweenĀ theĀ upperĀ andĀ lowerĀ surfacesĀ orĀ theĀ striplineĀ mayĀ beĀ anĀ offsetĀ striplineĀ locatedĀ closerĀ toĀ oneĀ surfaceĀ thanĀ theĀ other.Ā Similarly,Ā inĀ someĀ embodimentsĀ theĀ striplineĀ mayĀ beĀ replacedĀ withĀ aĀ microstripĀ whichĀ isĀ routedĀ overtopĀ ofĀ orĀ underneathĀ bothĀ theĀ firstĀ layerĀ andĀ theĀ secondĀ layerĀ andĀ henceĀ outsideĀ ofĀ theĀ SIW.Ā AĀ rootĀ port Ā 540Ā ofĀ theĀ branchedĀ transmissionĀ lineĀ structureĀ mayĀ beĀ operativelyĀ coupledĀ toĀ otherĀ componentsĀ ofĀ theĀ RFĀ front-end.
TheĀ transmissionĀ lineĀ structuresĀ illustratedĀ inĀ FIG.Ā 5Ā mayĀ alsoĀ beĀ coupledĀ toĀ anĀ antennaĀ arrayĀ suchĀ asĀ illustratedĀ inĀ FIG.Ā 1.Ā BecauseĀ everyĀ fourthĀ elementĀ inĀ theĀ antennaĀ arrayĀ ofĀ FIG.Ā 1Ā isĀ aĀ combinationĀ antennaĀ element,Ā theĀ transmissionĀ lineĀ structuresĀ mayĀ beĀ formedĀ withĀ aĀ substantiallyĀ symmetricĀ seriesĀ ofĀ bifurcationĀ branches.Ā Similarly,Ā ifĀ theĀ antennaĀ arrayĀ isĀ suchĀ thatĀ everyĀ kthĀ elementĀ isĀ aĀ combinationĀ antennaĀ element,Ā whereĀ kĀ isĀ aĀ powerĀ ofĀ 2,Ā thenĀ aĀ substantiallyĀ symmetricĀ seriesĀ ofĀ bifurcationĀ branchesĀ mayĀ beĀ used.Ā Otherwise,Ā aĀ differentĀ branchingĀ arrangementĀ mayĀ beĀ necessary.Ā ItĀ isĀ notedĀ thatĀ kĀ beingĀ aĀ powerĀ ofĀ 2Ā mayĀ beĀ appropriateĀ whenĀ aĀ higherĀ representativeĀ frequencyĀ ofĀ theĀ dual-bandĀ antennaĀ arrayĀ isĀ oneĀ lessĀ thanĀ aĀ powerĀ ofĀ twoĀ timesĀ aĀ lowerĀ representativeĀ frequency.Ā AsĀ illustratedĀ inĀ FIG.Ā 5,Ā theĀ fourĀ terminalsĀ orĀ portsĀ 522Ā theĀ multi-conductorĀ transmissionĀ lineĀ structure Ā 520Ā areĀ disposedĀ atĀ aĀ pitchĀ whichĀ isĀ aboutĀ fourĀ timesĀ theĀ pitchĀ ofĀ theĀ sixteenĀ terminalsĀ orĀ ports Ā 512Ā ofĀ theĀ waveguideĀ structure Ā 510.
AnĀ exampleĀ ofĀ waveguideĀ andĀ striplineĀ dimensionsĀ whichĀ mayĀ beĀ appropriateĀ forĀ useĀ inĀ theĀ transmissionĀ lineĀ structuresĀ ofĀ FIG.Ā 5Ā whenĀ feedingĀ signalsĀ inĀ theĀ LMDSĀ andĀ E-bandsĀ isĀ asĀ follows.Ā TheĀ waveguideĀ widthĀ isĀ aboutĀ 55Ā milsĀ (orĀ 1.4Ā mm)Ā ,Ā andĀ theĀ striplineĀ widthĀ isĀ aboutĀ 6Ā milsĀ (orĀ 0.15Ā mm)Ā .
FIGs.Ā 6AĀ toĀ 6CĀ illustrateĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ providedĀ inĀ accordanceĀ withĀ anotherĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā InĀ contrastĀ toĀ FIG.Ā 5,Ā aĀ SIWĀ isĀ routedĀ toĀ lessĀ thanĀ allĀ ofĀ theĀ transmissionĀ lineĀ outputĀ ports,Ā whileĀ aĀ striplineĀ isĀ routedĀ toĀ allĀ ofĀ theĀ transmissionĀ lineĀ outputĀ ports.Ā FIG.Ā 6AĀ illustratesĀ aĀ structure Ā 660Ā toĀ beĀ etchedĀ onĀ twoĀ differentĀ layersĀ ofĀ aĀ PCBĀ inĀ aĀ matchingĀ manner.Ā ToĀ implementĀ theĀ structureĀ ofĀ FIG.Ā 5,Ā connectingĀ viasĀ wouldĀ connectĀ theĀ entireĀ perimetersĀ ofĀ theseĀ matchingĀ structures,Ā andĀ aĀ branchingĀ striplineĀ structureĀ wouldĀ beĀ routedĀ betweenĀ same.Ā However,Ā inĀ theĀ presentĀ embodiment,Ā connectingĀ viasĀ areĀ providedĀ inĀ theĀ patternĀ illustratedĀ inĀ FIG.Ā 6B,Ā therebyĀ implementingĀ aĀ branchingĀ SIWĀ structure Ā 665Ā whichĀ routesĀ toĀ fourĀ cornerĀ ports Ā 670Ā ratherĀ thanĀ allĀ 16Ā potentialĀ portsĀ illustrated.Ā Specifically,Ā theĀ viaĀ pathsĀ cutĀ throughĀ interiorĀ portionsĀ ofĀ theĀ structure Ā 660.Ā FIG.Ā 6CĀ illustratesĀ aĀ branchingĀ structure Ā 685Ā toĀ beĀ providedĀ onĀ aĀ furtherĀ layerĀ ofĀ aĀ PCBĀ inĀ orderĀ toĀ completeĀ aĀ branchingĀ striplineĀ orĀ microstripĀ transmissionĀ line,Ā whichĀ isĀ routedĀ toĀ allĀ 16Ā ports.Ā AsĀ illustrated,Ā inĀ theĀ caseĀ ofĀ aĀ stripline,Ā portionsĀ ofĀ theĀ branchingĀ structure Ā 685Ā mayĀ beĀ routedĀ throughĀ gaps Ā 680Ā inĀ theĀ viaĀ fence,Ā suchĀ gapsĀ beingĀ configuredĀ byĀ viaĀ placementĀ toĀ facilitateĀ same.Ā Alternatively,Ā aĀ striplineĀ mayĀ beĀ divergedĀ orĀ exitedĀ fromĀ betweenĀ theĀ twoĀ referenceĀ planesĀ byĀ couplingĀ aĀ viaĀ toĀ theĀ striplineĀ atĀ anĀ exitĀ point,Ā theĀ viaĀ passingĀ throughĀ anĀ apertureĀ inĀ oneĀ ofĀ theĀ referenceĀ planes.
InĀ variousĀ embodiments,Ā theĀ firstĀ andĀ secondĀ transmissionĀ lineĀ structuresĀ areĀ substantiallyĀ symmetric.Ā ForĀ example,Ā theĀ pathĀ lengthsĀ fromĀ aĀ commonĀ feedĀ portĀ toĀ eachĀ antennaĀ connectionĀ portĀ ofĀ aĀ providedĀ branchingĀ transmissionĀ structureĀ mayĀ beĀ substantiallyĀ equal.Ā Further,Ā theĀ pathĀ shapeĀ fromĀ theĀ commonĀ feedĀ portĀ toĀ eachĀ antennaĀ connectionĀ portĀ ofĀ theĀ providedĀ branchingĀ transmissionĀ structureĀ mayĀ beĀ substantiallyĀ theĀ same.Ā YetĀ further,Ā theĀ branchingĀ patternĀ andĀ numberĀ ofĀ branchingsĀ alongĀ eachĀ pathĀ mayĀ beĀ substantiallyĀ theĀ same.Ā InĀ someĀ embodiments,Ā oneĀ orĀ moreĀ ofĀ theĀ aboveĀ symmetriesĀ mayĀ facilitateĀ operatingĀ eachĀ ofĀ theĀ antennaĀ elementsĀ connectedĀ toĀ theĀ transmissionĀ lineĀ structureĀ withĀ substantiallyĀ equalĀ phase,Ā forĀ exampleĀ dueĀ toĀ substantiallyĀ equalĀ pathĀ lengths,Ā andĀ withĀ substantiallyĀ evenĀ powerĀ distributionĀ betweenĀ branches.Ā ItĀ wouldĀ beĀ readilyĀ understoodĀ byĀ aĀ workerĀ skilledĀ inĀ theĀ artĀ thatĀ theĀ aboveĀ useĀ ofĀ theĀ wordĀ substantiallyĀ withĀ respectĀ toĀ theĀ termsĀ indicativeĀ ofĀ symmetry,Ā
equalityĀ andĀ similarityĀ providesĀ forĀ aĀ levelĀ ofĀ variationĀ inĀ theĀ symmetry,Ā equalityĀ andĀ similarity,Ā respectively.Ā ForĀ exampleĀ theĀ wordĀ substantiallyĀ canĀ provideĀ forĀ aĀ variationĀ ofĀ aboutĀ 5ļ¼
.Ā However,Ā itĀ isĀ understoodĀ thatĀ dependingĀ onĀ theĀ specificĀ requirementsĀ ofĀ theĀ multi-modeĀ feedĀ network,Ā inĀ someĀ instancesĀ aĀ variationĀ ofĀ 5ļ¼
ofĀ similarity,Ā equalityĀ orĀ symmetryĀ mayĀ resultĀ inĀ anĀ undesiredĀ levelĀ ofĀ phaseĀ error,Ā whileĀ inĀ otherĀ instancesĀ aĀ variationĀ ofĀ 5ļ¼
ofĀ similarity,Ā equalityĀ orĀ symmetryĀ mayĀ beĀ acceptable.Ā Accordingly,Ā theseĀ furtherĀ levelsĀ ofĀ variationĀ areĀ toĀ beĀ consideredĀ withinĀ theĀ scopeĀ ofĀ theĀ definitionĀ ofĀ theĀ wordĀ substantially.
SomeĀ embodimentsĀ ofĀ theĀ presentĀ inventionĀ provideĀ forĀ aĀ multilayerĀ PCBĀ comprisingĀ aĀ dual-modeĀ transmissionĀ structureĀ asĀ describedĀ herein.Ā TheĀ PCBĀ mayĀ include,Ā onĀ multipleĀ layers,Ā etchedĀ conductiveĀ featuresĀ correspondingĀ toĀ theĀ dual-modeĀ transmissionĀ structure,Ā forĀ exampleĀ includingĀ aĀ firstĀ transmissionĀ structureĀ interleavedĀ withĀ aĀ secondĀ transmissionĀ structure.Ā TheĀ PCBĀ mayĀ furtherĀ includeĀ additionalĀ componentsĀ suchĀ asĀ patchĀ antennaĀ elements,Ā waveguideĀ antennaĀ elements,Ā featuresĀ forĀ couplingĀ toĀ otherĀ signalĀ processingĀ electronics,Ā orĀ theĀ like,Ā orĀ aĀ combinationĀ thereof.
InĀ oneĀ embodiment,Ā theĀ PCBĀ mayĀ comprise,Ā inĀ anĀ exampleĀ order,Ā atĀ leastĀ anĀ outerĀ layerĀ etchedĀ withĀ aĀ pluralityĀ ofĀ MicrostripĀ PatchĀ AntennaĀ (MPA)Ā elementsĀ formedĀ inĀ anĀ array,Ā aĀ firstĀ interiorĀ layerĀ etchedĀ withĀ anĀ upperĀ groundĀ planeĀ ofĀ aĀ branchingĀ SIWĀ structure,Ā aĀ secondĀ interiorĀ layerĀ etchedĀ withĀ aĀ branchingĀ striplineĀ structureĀ interiorĀ toĀ theĀ SIWĀ structure,Ā andĀ aĀ thirdĀ interiorĀ layerĀ etchedĀ withĀ aĀ lowerĀ groundĀ planeĀ ofĀ theĀ branchingĀ SIWĀ structure.Ā TheĀ PCBĀ furtherĀ comprisesĀ blindĀ viasĀ operativelyĀ couplingĀ theĀ striplineĀ structureĀ toĀ theĀ pluralityĀ ofĀ MPAĀ elements,Ā theĀ viasĀ routedĀ throughĀ aperturesĀ formedĀ inĀ theĀ upperĀ groundĀ planeĀ ofĀ theĀ branchingĀ SIWĀ structure.Ā AperturesĀ canĀ alsoĀ beĀ formedĀ inĀ theĀ upperĀ groundĀ planeĀ ofĀ theĀ branchingĀ SIWĀ structureĀ toĀ provideĀ forĀ waveguideĀ antennaĀ elements.Ā WaveguideĀ elementsĀ mayĀ beĀ includedĀ inĀ oneĀ orĀ bothĀ ofĀ theĀ combinationĀ antennaĀ elementsĀ andĀ theĀ additionalĀ antennaĀ elements.Ā TheĀ additionalĀ antennaĀ elementsĀ canĀ beĀ interleavedĀ withĀ theĀ combinationĀ antennaĀ elements.Ā Further,Ā buriedĀ viasĀ canĀ beĀ providedĀ forĀ connectingĀ theĀ upperĀ andĀ lowerĀ groundĀ planesĀ ofĀ theĀ branchingĀ SIWĀ structureĀ forĀ provisionĀ ofĀ theĀ SIW.
InterconnectionĀ withĀ AntennaĀ Elements
SeveralĀ terminalsĀ ofĀ theĀ branchingĀ feedĀ networkĀ asĀ describedĀ hereinĀ mayĀ eachĀ beĀ operativelyĀ coupledĀ toĀ multipleĀ antennaĀ elementsĀ inĀ theĀ arrayĀ inĀ variousĀ ways.Ā VariousĀ techniquesĀ forĀ operativelyĀ couplingĀ aĀ givenĀ typeĀ ofĀ transmissionĀ lineĀ toĀ aĀ givenĀ typeĀ ofĀ antennaĀ
elementĀ wouldĀ beĀ readilyĀ understoodĀ byĀ aĀ workerĀ skilledĀ inĀ theĀ art.Ā However,Ā whenĀ operativelyĀ couplingĀ aĀ pairĀ ofĀ integratedĀ transmissionĀ linesĀ toĀ aĀ pairĀ ofĀ co-locatedĀ antennaĀ elementsĀ inĀ aĀ combinationĀ antennaĀ element,Ā carefulĀ considerationĀ mayĀ beĀ requiredĀ inĀ orderĀ toĀ ensureĀ eachĀ couplingĀ isĀ adequatelyĀ functional.
FIG.Ā 7Ā illustratesĀ interconnectionĀ betweenĀ aĀ feedĀ networkĀ andĀ aĀ combinationĀ antennaĀ elementĀ accordingĀ toĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention,Ā whereinĀ theĀ verticalĀ dimensionĀ hasĀ beenĀ greatlyĀ exaggeratedĀ forĀ easeĀ ofĀ reference.Ā TheĀ feedĀ networkĀ includesĀ aĀ waveguideĀ comprisingĀ topĀ andĀ bottomĀ conductiveĀ surfaces740,Ā 745,Ā andĀ aĀ stripline Ā 730Ā embeddedĀ withinĀ theĀ waveguide.Ā TheĀ waveguideĀ mayĀ alsoĀ beĀ boundedĀ onĀ itsĀ sides,Ā forĀ exampleĀ byĀ aĀ viaĀ fenceĀ (notĀ shown)Ā inĀ theĀ caseĀ ofĀ aĀ SIW.Ā TheĀ combinationĀ antennaĀ elementĀ includesĀ aĀ waveguideĀ antennaĀ element Ā 750Ā andĀ aĀ patchĀ antennaĀ element Ā 710.
AsĀ illustrated,Ā theĀ waveguideĀ antennaĀ element Ā 750Ā isĀ providedĀ atĀ leastĀ inĀ partĀ byĀ anĀ apertureĀ formedĀ inĀ theĀ topĀ conductiveĀ surface Ā 740Ā ofĀ theĀ waveguide.Ā OtherĀ structuralĀ featuresĀ mayĀ alsoĀ beĀ providedĀ asĀ partĀ ofĀ theĀ waveguideĀ antennaĀ element Ā 750,Ā suchĀ asĀ viasĀ and/orĀ etchedĀ conductiveĀ featuresĀ formedĀ aroundĀ andĀ extendingĀ outwardĀ fromĀ theĀ aperture,Ā andĀ aĀ terminalĀ capĀ ofĀ theĀ waveguideĀ suchĀ asĀ aĀ viaĀ fence.
AsĀ alsoĀ illustrated,Ā theĀ patchĀ antennaĀ element Ā 710Ā isĀ disposedĀ onĀ aĀ PCBĀ layerĀ whichĀ isĀ separatedĀ fromĀ theĀ waveguideĀ andĀ coupledĀ toĀ theĀ stripline Ā 730Ā usingĀ aĀ viaĀ 720Ā whichĀ passesĀ throughĀ anĀ apertureĀ formedĀ inĀ theĀ waveguideĀ surface.Ā TheĀ waveguideĀ surfaceĀ mayĀ furtherĀ operateĀ asĀ aĀ groundĀ orĀ referenceĀ planeĀ actingĀ asĀ aĀ counterpoiseĀ toĀ theĀ patchĀ antennaĀ element.Ā ThisĀ mayĀ beĀ viewedĀ asĀ aĀ furtherĀ benefitĀ resultingĀ fromĀ transmissionĀ lineĀ structureĀ interleaving.
InterconnectionĀ withĀ OtherĀ SystemĀ Components
TheĀ feedĀ networkĀ asĀ describedĀ hereinĀ mayĀ beĀ usedĀ toĀ coupleĀ elementsĀ ofĀ anĀ antennaĀ arrayĀ toĀ otherĀ componentsĀ ofĀ anĀ RFĀ front-end,Ā suchĀ asĀ powerĀ amplifiers,Ā low-noiseĀ amplifiers,Ā orĀ theĀ like.Ā SuchĀ elementsĀ mayĀ beĀ coupledĀ toĀ theĀ feedĀ networkĀ atĀ aĀ rootĀ portĀ ofĀ theĀ branchedĀ transmissionĀ lineĀ structure,Ā forĀ exampleĀ theĀ rootĀ ports Ā 240,Ā 340,Ā 440Ā andĀ 540Ā asĀ illustratedĀ inĀ FIGs.Ā 2Ā toĀ 5,Ā respectively.Ā InĀ someĀ embodiments,Ā eachĀ transmissionĀ structureĀ isĀ separatedĀ andĀ coupledĀ toĀ differentĀ signalĀ processingĀ and/orĀ signalĀ generationĀ electronics.
FIG.Ā 8Ā illustratesĀ aĀ transitionĀ circuitĀ coupledĀ toĀ anĀ inputĀ nodeĀ ofĀ aĀ transmissionĀ lineĀ structureĀ comprisingĀ twoĀ integratedĀ transmissionĀ lines,Ā suchĀ asĀ aĀ striplineĀ embeddedĀ withinĀ aĀ
SIW,Ā inĀ accordanceĀ withĀ embodimentsĀ ofĀ theĀ presentĀ invention.Ā TheĀ transitionĀ circuitĀ includesĀ aĀ diplexer Ā 810Ā whichĀ isĀ configuredĀ toĀ receiveĀ aĀ broadbandĀ signal Ā 815Ā andĀ bifurcateĀ theĀ signalĀ forĀ exampleĀ usingĀ powerĀ dividerĀ element Ā 820Ā suchĀ asĀ aĀ TĀ junction.Ā TheĀ broadbandĀ signalĀ mayĀ beĀ receivedĀ fromĀ aĀ commonĀ portĀ whichĀ isĀ associatedĀ withĀ bothĀ ofĀ theĀ integratedĀ transmissionĀ lines.Ā TheĀ diplexer Ā 810Ā furtherĀ includesĀ aĀ pairĀ ofĀ bandpassĀ filters Ā 830,Ā 835Ā coupledĀ toĀ theĀ powerĀ dividerĀ element Ā 820.Ā EachĀ ofĀ theĀ bandpassĀ filtersĀ isĀ coupledĀ toĀ oneĀ ofĀ theĀ transmissionĀ lineĀ structuresĀ ofĀ theĀ antennaĀ arrayĀ feedĀ network,Ā andĀ isĀ configuredĀ toĀ passĀ signalĀ frequencyĀ componentsĀ correspondingĀ toĀ anĀ operatingĀ bandĀ ofĀ theĀ antennaĀ elementsĀ coupledĀ atĀ theĀ oppositeĀ endĀ ofĀ theĀ transmissionĀ lineĀ structureĀ toĀ whichĀ itĀ isĀ coupled.Ā Thus,Ā forĀ example,Ā theĀ bandpassĀ filtersĀ mayĀ beĀ configuredĀ toĀ passĀ signalĀ frequencyĀ componentsĀ correspondingĀ toĀ anĀ LMDSĀ bandĀ andĀ anĀ E-band,Ā respectively.
OtherĀ componentsĀ suchĀ asĀ impedanceĀ matchingĀ components,Ā switches,Ā transmitĀ and/orĀ receiveĀ amplifiersĀ suchĀ asĀ powerĀ amplifiersĀ andĀ low-noiseĀ amplifiers,Ā andĀ theĀ like,Ā mayĀ beĀ coupledĀ toĀ theĀ transitionĀ circuitĀ forĀ handlingĀ theĀ signalĀ transmittedĀ theretoĀ orĀ receivedĀ therefrom,Ā asĀ wouldĀ beĀ readilyĀ understoodĀ byĀ aĀ workerĀ skilledĀ inĀ theĀ art.
FIG.Ā 9Ā illustratesĀ aĀ methodĀ forĀ wirelessĀ communication,Ā inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā TheĀ methodĀ includesĀ propagatingĀ 910Ā firstĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ mode.Ā TheĀ signalĀ isĀ propagatedĀ viaĀ aĀ firstĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ firstĀ setĀ ofĀ antennaĀ elements.Ā TheĀ firstĀ electromagneticĀ propagationĀ modeĀ mayĀ beĀ aĀ TEMĀ orĀ quasi-TEMĀ mode,Ā andĀ correspondinglyĀ theĀ firstĀ transmissionĀ lineĀ structureĀ mayĀ beĀ aĀ multi-conductorĀ transmissionĀ lineĀ structureĀ suchĀ asĀ aĀ striplineĀ orĀ microstripĀ ofĀ aĀ PCB.Ā TheĀ methodĀ furtherĀ includesĀ propagatingĀ 920Ā secondĀ signalsĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ modeĀ whichĀ isĀ differentĀ fromĀ theĀ firstĀ electromagneticĀ propagationĀ mode.Ā TheĀ secondĀ signalsĀ areĀ propagatedĀ viaĀ aĀ secondĀ transmissionĀ lineĀ operativelyĀ coupledĀ toĀ aĀ secondĀ setĀ ofĀ antennaĀ elementsĀ differentĀ fromĀ theĀ firstĀ setĀ ofĀ antennaĀ elements.Ā TheĀ secondĀ electromagneticĀ propagationĀ modeĀ mayĀ beĀ aĀ TEĀ orĀ TMĀ mode,Ā andĀ correspondinglyĀ theĀ secondĀ transmissionĀ lineĀ structureĀ mayĀ beĀ aĀ waveguideĀ structureĀ suchĀ asĀ aĀ SIWĀ ofĀ aĀ PCB.Ā InĀ variousĀ embodiments,Ā theĀ firstĀ andĀ secondĀ signalsĀ mayĀ beĀ propagatedĀ concurrently.Ā ConcurrentĀ propagationĀ mayĀ beĀ facilitatedĀ byĀ isolationĀ betweenĀ theĀ differentĀ transmissionĀ lineĀ structures,Ā forĀ exampleĀ dueĀ atĀ leastĀ inĀ partĀ toĀ modeĀ isolation.
FIG.Ā 10AĀ illustratesĀ aĀ firstĀ subsectionĀ ofĀ aĀ branchedĀ structureĀ includingĀ aĀ striplineĀ structure Ā 1000Ā integratedĀ intoĀ aĀ SIWĀ structure Ā 1010,Ā inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ
presentĀ invention.Ā TheĀ SIWĀ structureĀ mayĀ beĀ configuredĀ forĀ transmissionĀ ofĀ signalsĀ inĀ theĀ E-band,Ā whileĀ theĀ striplineĀ structureĀ mayĀ beĀ configuredĀ forĀ transmissionĀ ofĀ signalsĀ inĀ theĀ LMDSĀ band.Ā AsĀ illustrated,Ā allĀ branchesĀ ofĀ theĀ SIWĀ structureĀ includeĀ aĀ correspondingĀ branchĀ ofĀ theĀ striplineĀ structure.Ā TheĀ firstĀ subsectionĀ mayĀ formĀ partĀ ofĀ aĀ branchedĀ transmissionĀ lineĀ structure,Ā forĀ exampleĀ theĀ centerĀ portionĀ ofĀ theĀ structureĀ ofĀ FIG.Ā 5.Ā TheĀ SIWĀ structureĀ andĀ theĀ striplineĀ structureĀ mayĀ beĀ viewedĀ asĀ aĀ pairĀ ofĀ integratedĀ four-wayĀ powerĀ dividerĀ structures.Ā FIGs.Ā 10BĀ toĀ 10FĀ illustrateĀ aspectsĀ relatedĀ toĀ performanceĀ forĀ theĀ firstĀ subsection,Ā includingĀ S-parameterĀ frequencyĀ response,Ā asĀ derivedĀ fromĀ simulationĀ and/orĀ modelingĀ ofĀ theĀ structure.
AlsoĀ visibleĀ inĀ FIGs.Ā 5,Ā 10AĀ andĀ 11AĀ areĀ curvesĀ providedĀ atĀ branchingĀ pointsĀ ofĀ theĀ transmissionĀ lineĀ structures,Ā whichĀ mayĀ reduceĀ potentialĀ signalĀ reflection.Ā Further,Ā theĀ waveguideĀ structureĀ narrowsĀ atĀ theĀ branchingĀ points,Ā whichĀ mayĀ furtherĀ facilitateĀ signalĀ propagationĀ dueĀ toĀ applicationĀ ofĀ anĀ appropriateĀ impedanceĀ matching.
FIG.Ā 10BĀ graphicallyĀ illustratesĀ S-parametersĀ forĀ theĀ SIWĀ structure Ā 1010Ā ofĀ FIG.Ā 10A.Ā AĀ firstĀ curve Ā 1020,Ā whichĀ actuallyĀ representsĀ pluralĀ closelyĀ coincidentĀ curves,Ā illustratesĀ S21a,Ā S31a,Ā S41a,Ā S51a,Ā theĀ transmissionĀ coefficientsĀ atĀ eachĀ ofĀ theĀ outputĀ portsĀ ofĀ theĀ SIW Ā 4Ā wayĀ powerĀ dividerĀ shownĀ inĀ Fig.Ā 10A,Ā whereĀ portĀ 1Ā isĀ theĀ inputĀ portĀ atĀ centerĀ bottomĀ andĀ ports Ā 2Ā toĀ 5Ā areĀ theĀ remainingĀ ports.Ā AĀ secondĀ curveĀ 1025Ā illustratesĀ S11a,Ā theĀ reflectionĀ coefficientĀ atĀ theĀ inputĀ portĀ ofĀ theĀ SIW Ā 4Ā wayĀ powerĀ dividerĀ shownĀ inĀ Fig.Ā 10A.
FIG.Ā 10CĀ graphicallyĀ illustratesĀ S-parametersĀ forĀ theĀ striplineĀ structure Ā 1000Ā ofĀ FIG.Ā 10A.Ā AĀ firstĀ curve Ā 1030,Ā whichĀ actuallyĀ representsĀ pluralĀ closelyĀ coincidentĀ curves,Ā illustratesĀ S21b,Ā S31b,Ā S41b,Ā S51b,Ā theĀ transmissionĀ coefficientsĀ atĀ eachĀ ofĀ theĀ outputĀ portsĀ ofĀ theĀ stripline Ā 4Ā wayĀ powerĀ dividerĀ shownĀ inĀ Fig.Ā 10A,Ā againĀ whereĀ portĀ 1Ā isĀ theĀ inputĀ portĀ atĀ centerĀ bottomĀ andĀ ports Ā 2Ā toĀ 5Ā areĀ theĀ remainingĀ ports.Ā AĀ secondĀ curveĀ 1035Ā illustratesĀ S11b,Ā theĀ reflectionĀ coefficientĀ atĀ theĀ inputĀ portĀ ofĀ theĀ stripline Ā 4Ā wayĀ powerĀ dividerĀ shownĀ inĀ Fig.Ā 10A.
FIG.Ā 10DĀ graphicallyĀ illustratesĀ S-parametersĀ indicativeĀ ofĀ modeĀ isolationĀ betweenĀ theĀ SIWĀ structure Ā 1010Ā andĀ theĀ striplineĀ structure Ā 1000Ā ofĀ FIG.Ā 10A.Ā AĀ curve Ā 1040Ā illustratesĀ theĀ couplingĀ coefficientĀ betweenĀ theĀ inputĀ portĀ ofĀ theĀ SIWĀ transmissionĀ lineĀ andĀ theĀ inputĀ portĀ ofĀ theĀ stripline.
FIG.Ā 10EĀ illustratesĀ theĀ fieldĀ distributionĀ ofĀ E-bandĀ RFĀ energyĀ withinĀ theĀ firstĀ subsectionĀ ofĀ theĀ SIW.Ā Notably,Ā thisĀ RFĀ energyĀ couplesĀ substantiallyĀ betweenĀ allĀ illustratedĀ portsĀ ofĀ theĀ SIW.
FIG.Ā 10FĀ illustratesĀ theĀ fieldĀ distributionĀ ofĀ LMDSĀ bandĀ RFĀ energyĀ withinĀ theĀ firstĀ subsectionĀ ofĀ theĀ SIW.Ā Notably,Ā thisĀ RFĀ energyĀ isĀ substantiallyĀ confinedĀ toĀ theĀ vicinityĀ ofĀ theĀ striplineĀ embeddedĀ withinĀ theĀ SIWĀ andĀ couplesĀ substantiallyĀ betweenĀ allĀ illustratedĀ portsĀ ofĀ theĀ stripline.
FIG.Ā 11AĀ illustratesĀ aĀ secondĀ subsectionĀ ofĀ aĀ branchedĀ structureĀ includingĀ aĀ striplineĀ structure Ā 1100Ā integratedĀ intoĀ aĀ SIWĀ structure Ā 1110,Ā inĀ accordanceĀ withĀ anĀ embodimentĀ ofĀ theĀ presentĀ invention.Ā TheĀ SIWĀ structureĀ mayĀ beĀ configuredĀ forĀ transmissionĀ ofĀ signalsĀ inĀ theĀ E-band,Ā whileĀ theĀ striplineĀ structureĀ mayĀ beĀ configuredĀ forĀ transmissionĀ ofĀ signalsĀ inĀ theĀ LMDSĀ band.Ā AsĀ illustrated,Ā andĀ inĀ contrastĀ toĀ FIG.Ā 10,Ā onlyĀ oneĀ branchĀ ofĀ theĀ SIWĀ structureĀ includesĀ aĀ correspondingĀ branchĀ ofĀ theĀ striplineĀ structure.Ā TheĀ secondĀ subsectionĀ mayĀ formĀ partĀ ofĀ aĀ branchedĀ transmissionĀ lineĀ structure,Ā forĀ exampleĀ theĀ edgeĀ portionsĀ ofĀ theĀ structureĀ ofĀ FIG.Ā 5.Ā TheĀ SIWĀ structureĀ andĀ theĀ striplineĀ structureĀ mayĀ beĀ viewedĀ asĀ aĀ pairĀ ofĀ integratedĀ powerĀ dividerĀ structures.Ā FIGs.Ā 11BĀ toĀ 11FĀ illustrateĀ aspectsĀ relatedĀ toĀ performanceĀ forĀ theĀ firstĀ subsection,Ā includingĀ S-parameterĀ frequencyĀ response,Ā asĀ derivedĀ fromĀ simulationĀ and/orĀ modelingĀ ofĀ theĀ structure.
FIG.Ā 11BĀ graphicallyĀ illustratesĀ S-parametersĀ forĀ theĀ SIWĀ structure Ā 1110Ā ofĀ FIG.Ā 11A.Ā AĀ firstĀ curve Ā 1120,Ā whichĀ actuallyĀ representsĀ pluralĀ closelyĀ coincidentĀ curves,Ā illustratesĀ S21a,Ā S31a,Ā S41a,Ā S51a,Ā theĀ transmissionĀ coefficientsĀ atĀ eachĀ ofĀ theĀ outputĀ portsĀ ofĀ theĀ SIW Ā 4Ā wayĀ powerĀ dividerĀ shownĀ inĀ Fig.Ā 11A,Ā whereĀ portĀ 1Ā isĀ theĀ inputĀ portĀ atĀ centerĀ bottomĀ andĀ ports Ā 2Ā toĀ 5Ā areĀ theĀ remainingĀ ports.Ā AĀ secondĀ curve Ā 1125Ā illustratesĀ S11a,Ā theĀ reflectionĀ coefficientĀ atĀ theĀ inputĀ portĀ ofĀ theĀ SIW Ā 4Ā wayĀ powerĀ dividerĀ shownĀ inĀ Fig.Ā 11A.
FIG.Ā 11CĀ graphicallyĀ illustratesĀ S-parametersĀ forĀ theĀ striplineĀ structure Ā 1100Ā ofĀ FIG.Ā 11A.Ā AĀ firstĀ curve Ā 1130,Ā whichĀ actuallyĀ representsĀ pluralĀ closelyĀ coincidentĀ curves,Ā illustratesĀ S21b,Ā theĀ transmissionĀ coefficientĀ ofĀ theĀ striplineĀ shownĀ inĀ Fig.Ā 11A.Ā AĀ secondĀ curveĀ 1135Ā illustratesĀ S11b,Ā theĀ reflectionĀ coefficientĀ ofĀ theĀ striplineĀ shownĀ inĀ Fig.Ā 11A.
FIG.Ā 11DĀ graphicallyĀ illustratesĀ S-parametersĀ indicativeĀ ofĀ modeĀ isolationĀ betweenĀ theĀ SIWĀ structure Ā 1110Ā andĀ theĀ striplineĀ structure Ā 1100Ā ofĀ FIG.Ā 11A.Ā AĀ curve Ā 1140Ā illustratesĀ theĀ couplingĀ coefficientĀ betweenĀ theĀ inputĀ portĀ ofĀ theĀ SIWĀ transmissionĀ lineĀ andĀ theĀ inputĀ portĀ ofĀ theĀ stripline.
FIG.Ā 11EĀ illustratesĀ theĀ fieldĀ distributionĀ ofĀ E-bandĀ RFĀ energyĀ withinĀ theĀ firstĀ subsectionĀ ofĀ theĀ SIW.Ā Notably,Ā thisĀ RFĀ energyĀ couplesĀ substantiallyĀ betweenĀ allĀ illustratedĀ portsĀ ofĀ theĀ SIW.
FIG.Ā 11FĀ illustratesĀ theĀ fieldĀ distributionĀ ofĀ LMDSĀ bandĀ RFĀ energyĀ withinĀ theĀ firstĀ subsectionĀ ofĀ theĀ SIW.Ā Notably,Ā thisĀ RFĀ energyĀ isĀ substantiallyĀ confinedĀ toĀ theĀ vicinityĀ ofĀ theĀ striplineĀ embeddedĀ withinĀ theĀ SIWĀ andĀ couplesĀ substantiallyĀ onlyĀ betweenĀ theĀ twoĀ portsĀ toĀ whichĀ theĀ striplineĀ isĀ routed.
FIG.Ā 12Ā illustratesĀ aĀ handheldĀ wirelessĀ device Ā 1200Ā comprisingĀ feedĀ networkĀ inĀ accordanceĀ withĀ embodimentsĀ ofĀ theĀ presentĀ invention.Ā TheĀ feedĀ networkĀ canĀ beĀ aĀ dual-modeĀ transmissionĀ lineĀ structure.Ā TheĀ wirelessĀ deviceĀ includesĀ aĀ PCB Ā 1210Ā havingĀ anĀ arrayĀ ofĀ antennaĀ elementsĀ andĀ aĀ branched,Ā dual-modeĀ transmissionĀ lineĀ structure Ā 1220Ā operativelyĀ coupledĀ toĀ theĀ arrayĀ ofĀ antennaĀ elements.Ā TheĀ handheldĀ wirelessĀ device Ā 1200Ā mayĀ compriseĀ variousĀ operativelyĀ interconnectedĀ electronicĀ componentsĀ whichĀ canĀ includeĀ oneĀ orĀ moreĀ ofĀ signalĀ processingĀ components,Ā controlĀ components,Ā RFĀ front-endĀ components,Ā microprocessors,Ā microcontrollers,Ā memoryĀ (randomĀ accessĀ memory,Ā flashĀ memoryĀ orĀ theĀ like)Ā ,Ā integratedĀ circuits,Ā andĀ theĀ like.
FIG.Ā 13Ā illustratesĀ aĀ wirelessĀ router Ā 1300Ā comprisingĀ feedĀ networkĀ inĀ accordanceĀ withĀ embodimentsĀ ofĀ theĀ presentĀ invention.Ā TheĀ feedĀ networkĀ canĀ beĀ aĀ dual-modeĀ transmissionĀ lineĀ structure.Ā TheĀ wirelessĀ routerĀ includesĀ aĀ PCB Ā 1310Ā havingĀ anĀ arrayĀ ofĀ antennaĀ elementsĀ andĀ aĀ branched,Ā dual-modeĀ transmissionĀ lineĀ structure Ā 1320Ā operativelyĀ coupledĀ toĀ theĀ arrayĀ ofĀ antennaĀ elements.Ā TheĀ wirelessĀ router Ā 1300Ā mayĀ compriseĀ variousĀ operativelyĀ interconnectedĀ electronicĀ componentsĀ whichĀ canĀ includeĀ oneĀ orĀ moreĀ ofĀ signalĀ processingĀ components,Ā controlĀ components,Ā RFĀ front-endĀ components,Ā microprocessors,Ā microcontrollers,Ā memoryĀ (randomĀ accessĀ memory,Ā flashĀ memoryĀ orĀ theĀ like)Ā ,Ā integratedĀ circuits,Ā andĀ theĀ like.
AlthoughĀ theĀ presentĀ inventionĀ hasĀ beenĀ describedĀ withĀ referenceĀ toĀ specificĀ featuresĀ andĀ embodimentsĀ thereof,Ā itĀ isĀ evidentĀ thatĀ variousĀ modificationsĀ andĀ combinationsĀ canĀ beĀ madeĀ theretoĀ withoutĀ departingĀ fromĀ theĀ invention.Ā TheĀ specificationĀ andĀ drawingsĀ are,Ā accordingly,Ā toĀ beĀ regardedĀ simplyĀ asĀ anĀ illustrationĀ ofĀ theĀ inventionĀ asĀ definedĀ byĀ theĀ appendedĀ claims,Ā andĀ areĀ contemplatedĀ toĀ coverĀ anyĀ andĀ allĀ modifications,Ā variations,Ā combinationsĀ orĀ equivalentsĀ thatĀ fallĀ withinĀ theĀ scopeĀ ofĀ theĀ presentĀ invention.
Claims (20)
- AĀ feedĀ networkĀ forĀ anĀ antennaĀ array,Ā comprising:aĀ firstĀ transmissionĀ lineĀ structureĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā orĀ aĀ quasi-TEMĀ mode,Ā theĀ firstĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ firstĀ setĀ ofĀ antennaĀ elementsĀ ofĀ theĀ antennaĀ arrayļ¼Ā andaĀ secondĀ transmissionĀ lineĀ structureĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ mode,Ā theĀ secondĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ oneĀ ofĀ aĀ TransverseĀ ElectricĀ (TE)Ā andĀ aĀ TransverseĀ MagneticĀ (TM)Ā mode,Ā theĀ secondĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ secondĀ setĀ ofĀ antennaĀ elementsĀ ofĀ theĀ antennaĀ array,Ā theĀ secondĀ setĀ ofĀ antennaĀ elementsĀ differentĀ fromĀ theĀ firstĀ setĀ ofĀ antennaĀ elements.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā whereinĀ theĀ firstĀ transmissionĀ lineĀ structureĀ isĀ aĀ multi-conductorĀ transmissionĀ lineĀ structure,Ā theĀ secondĀ transmissionĀ lineĀ structureĀ isĀ aĀ waveguideĀ structure,Ā andĀ whereinĀ oneĀ conductorĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ correspondsĀ toĀ aĀ conductiveĀ boundaryĀ ofĀ theĀ waveguideĀ structure.
- TheĀ feedĀ networkĀ ofĀ claimĀ 2,Ā whereinĀ theĀ multi-conductorĀ transmissionĀ lineĀ structureĀ comprisesĀ aĀ firstĀ pluralityĀ ofĀ branches,Ā eachĀ branchĀ ofĀ theĀ firstĀ pluralityĀ ofĀ branchesĀ terminatingĀ proximateĀ toĀ aĀ correspondingĀ oneĀ ofĀ theĀ firstĀ setĀ ofĀ antennaĀ elements,Ā andĀ whereinĀ theĀ waveguideĀ structureĀ comprisesĀ aĀ secondĀ pluralityĀ ofĀ branches,Ā eachĀ branchĀ ofĀ theĀ secondĀ pluralityĀ ofĀ branchesĀ terminatingĀ proximateĀ toĀ aĀ correspondingĀ oneĀ ofĀ theĀ secondĀ setĀ ofĀ antennaĀ elements,Ā andĀ whereinĀ aĀ quantityĀ ofĀ theĀ firstĀ pluralityĀ ofĀ branchesĀ isĀ lessĀ thanĀ aĀ quantityĀ ofĀ theĀ secondĀ pluralityĀ ofĀ branches.
- TheĀ feedĀ networkĀ ofĀ claimĀ 3,Ā whereinĀ atĀ leastĀ oneĀ ofĀ branchĀ ofĀ theĀ firstĀ pluralityĀ ofĀ branchesĀ co-terminatesĀ withĀ atĀ leastĀ oneĀ branchĀ ofĀ theĀ secondĀ pluralityĀ ofĀ branches,Ā saidĀ leastĀ oneĀ ofĀ branchĀ ofĀ theĀ firstĀ pluralityĀ ofĀ branchesĀ operativelyĀ coupledĀ toĀ aĀ firstĀ portionĀ ofĀ aĀ combinationĀ antennaĀ elementĀ andĀ saidĀ leastĀ oneĀ ofĀ branchĀ ofĀ theĀ secondĀ pluralityĀ ofĀ branchesĀ operativelyĀ coupledĀ toĀ aĀ secondĀ portionĀ ofĀ theĀ combinationĀ antennaĀ element,Ā theĀ firstĀ portionĀ ofĀ theĀ combinationĀ antennaĀ elementĀ comprisingĀ anĀ elementĀ ofĀ theĀ firstĀ setĀ ofĀ antennaĀ elementsĀ andĀ theĀ secondĀ portionĀ ofĀ theĀ combinationĀ antennaĀ elementĀ comprisingĀ anĀ elementĀ ofĀ theĀ secondĀ setĀ ofĀ antennaĀ elements.
- TheĀ feedĀ networkĀ ofĀ claimĀ 2,Ā whereinĀ theĀ multi-conductorĀ transmissionĀ lineĀ structureĀ isĀ aĀ striplineĀ structureĀ orĀ aĀ microstripĀ structureĀ providedĀ withinĀ aĀ PrintedĀ CircuitĀ BoardĀ (PCB)Ā ,Ā theĀ waveguideĀ structureĀ isĀ aĀ SubstrateĀ IntegratedĀ WaveguideĀ (SIW)Ā structureĀ providedĀ withinĀ theĀ PCB,Ā theĀ firstĀ setĀ ofĀ antennaĀ elementsĀ areĀ MicrostripĀ PatchĀ AntennaĀ elementsĀ andĀ theĀ secondĀ setĀ ofĀ antennaĀ elementsĀ areĀ waveguideĀ antennaĀ elementsĀ correspondingĀ atĀ leastĀ inĀ partĀ toĀ aperturesĀ formedĀ inĀ theĀ SIWĀ structure.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā whereinĀ theĀ firstĀ transmissionĀ lineĀ structureĀ comprisesĀ aĀ firstĀ pluralityĀ ofĀ branches,Ā eachĀ branchĀ ofĀ theĀ firstĀ pluralityĀ ofĀ branchesĀ coupledĀ toĀ aĀ correspondingĀ oneĀ ofĀ theĀ firstĀ setĀ ofĀ antennaĀ elements,Ā andĀ whereinĀ theĀ secondĀ transmissionĀ lineĀ structureĀ comprisesĀ aĀ secondĀ pluralityĀ ofĀ branches,Ā eachĀ branchĀ ofĀ theĀ secondĀ pluralityĀ ofĀ branchesĀ coupledĀ toĀ aĀ correspondingĀ oneĀ ofĀ theĀ secondĀ setĀ ofĀ antennaĀ elements.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā whereinĀ atĀ leastĀ oneĀ ofĀ theĀ firstĀ setĀ ofĀ antennaĀ elementsĀ isĀ combinedĀ withĀ atĀ leastĀ oneĀ ofĀ theĀ secondĀ setĀ ofĀ antennaĀ elementsĀ toĀ formĀ aĀ correspondingĀ combinationĀ antennaĀ elementĀ fedĀ byĀ bothĀ theĀ firstĀ transmissionĀ lineĀ structureĀ andĀ theĀ secondĀ transmissionĀ lineĀ structure.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā whereinĀ theĀ firstĀ transmissionĀ lineĀ structureĀ isĀ aĀ multi-conductorĀ transmissionĀ lineĀ structure.
- TheĀ feedĀ networkĀ ofĀ claimĀ 8,Ā whereinĀ theĀ multi-conductorĀ transmissionĀ lineĀ structureĀ isĀ aĀ striplineĀ structureĀ orĀ aĀ microstripĀ structureĀ providedĀ withinĀ aĀ PrintedĀ CircuitĀ Board.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā whereinĀ theĀ secondĀ transmissionĀ lineĀ structureĀ isĀ aĀ waveguideĀ structure.
- TheĀ feedĀ networkĀ ofĀ claimĀ 10,Ā whereinĀ theĀ waveguideĀ structureĀ isĀ aĀ SubstrateĀ IntegratedĀ WaveguideĀ structureĀ providedĀ withinĀ aĀ PrintedĀ CircuitĀ Board.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā furtherĀ comprisingĀ aĀ diplexerĀ forĀ couplingĀ theĀ firstĀ transmissionĀ lineĀ structureĀ andĀ theĀ secondĀ transmissionĀ lineĀ structureĀ toĀ aĀ commonĀ port.
- TheĀ feedĀ networkĀ ofĀ claimĀ 1,Ā whereinĀ atĀ leastĀ oneĀ ofĀ theĀ firstĀ transmissionĀ lineĀ structureĀ andĀ theĀ secondĀ transmissionĀ lineĀ structureĀ comprisesĀ aĀ pluralityĀ ofĀ symmetricĀ branches.
- TheĀ feedĀ networkĀ ofĀ claimĀ 13,Ā whereinĀ theĀ pluralityĀ ofĀ symmetricĀ branchesĀ provideĀ aĀ correspondingĀ pluralityĀ ofĀ pathsĀ fromĀ aĀ commonĀ portĀ toĀ aĀ respectiveĀ pluralityĀ ofĀ antennaĀ ports,Ā saidĀ pluralityĀ ofĀ pathsĀ havingĀ substantiallyĀ equalĀ lengths.
- AĀ methodĀ forĀ wirelessĀ communication,Ā comprising:propagatingĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ modeĀ viaĀ aĀ firstĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ firstĀ setĀ ofĀ antennaĀ elements,Ā theĀ firstĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā orĀ aĀ quasi-TEMĀ modeļ¼Ā andpropagatingĀ signalsĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ modeĀ viaĀ aĀ secondĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ secondĀ setĀ ofĀ antennaĀ elementsĀ differentĀ fromĀ theĀ firstĀ setĀ ofĀ antennaĀ elements,Ā theĀ secondĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ oneĀ ofĀ aĀ TransverseĀ ElectricĀ (TE)Ā andĀ aĀ TransverseĀ MagneticĀ (TM)Ā mode.
- TheĀ methodĀ ofĀ claimĀ 15,Ā whereinĀ theĀ firstĀ transmissionĀ lineĀ structureĀ isĀ aĀ multi-conductorĀ transmissionĀ lineĀ structure,Ā theĀ secondĀ transmissionĀ lineĀ structureĀ isĀ aĀ waveguideĀ structure,Ā oneĀ conductorĀ ofĀ theĀ multi-conductorĀ transmissionĀ lineĀ correspondsĀ toĀ aĀ conductiveĀ boundaryĀ ofĀ theĀ waveguideĀ structure,Ā andĀ whereinĀ propagatingĀ theĀ signalsĀ viaĀ theĀ firstĀ transmissionĀ lineĀ structureĀ isĀ performedĀ concurrentlyĀ withĀ propagatingĀ theĀ signalsĀ viaĀ theĀ secondĀ transmissionĀ lineĀ structure.
- TheĀ methodĀ ofĀ claimĀ 15,Ā whereinĀ theĀ firstĀ transmissionĀ lineĀ structureĀ comprisesĀ aĀ firstĀ pluralityĀ ofĀ branches,Ā eachĀ branchĀ ofĀ theĀ firstĀ pluralityĀ ofĀ branchesĀ coupledĀ toĀ aĀ correspondingĀ oneĀ ofĀ theĀ firstĀ setĀ ofĀ antennaĀ elements,Ā andĀ whereinĀ theĀ secondĀ transmissionĀ lineĀ structureĀ comprisesĀ aĀ secondĀ pluralityĀ ofĀ branches,Ā eachĀ branchĀ ofĀ theĀ secondĀ pluralityĀ ofĀ branchesĀ coupledĀ toĀ aĀ correspondingĀ oneĀ ofĀ theĀ secondĀ setĀ ofĀ antennaĀ elements,Ā whereinĀ propagatingĀ theĀ signalsĀ viaĀ theĀ firstĀ transmissionĀ lineĀ structureĀ comprisesĀ propagatingĀ theĀ signalsĀ alongĀ theĀ firstĀ pluralityĀ ofĀ branches,Ā andĀ whereinĀ propagatingĀ theĀ signalsĀ viaĀ theĀ secondĀ transmissionĀ lineĀ structureĀ comprisesĀ propagatingĀ theĀ signalsĀ alongĀ theĀ secondĀ pluralityĀ ofĀ branches.
- TheĀ methodĀ ofĀ claimĀ 15,Ā furtherĀ comprisingĀ diplexingĀ aĀ broadbandĀ signalĀ ontoĀ theĀ firstĀ transmissionĀ lineĀ structureĀ andĀ theĀ secondĀ transmissionĀ lineĀ structure.
- AĀ wirelessĀ deviceĀ comprising:aĀ feedĀ networkĀ forĀ anĀ antennaĀ arrayĀ includingĀ aĀ firstĀ transmissionĀ lineĀ structureĀ configuredĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ firstĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ aĀ TransverseĀ ElectromagneticĀ (TEM)Ā orĀ aĀ quasi-TEMĀ mode,Ā theĀ firstĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ firstĀ setĀ ofĀ antennaĀ elementsĀ ofĀ theĀ antennaĀ arrayĀ andĀ theĀ feedĀ networkĀ includingĀ aĀ secondĀ transmissionĀ lineĀ structureĀ forĀ propagatingĀ signalsĀ accordingĀ toĀ aĀ secondĀ electromagneticĀ propagationĀ mode,Ā theĀ secondĀ electromagneticĀ propagationĀ modeĀ correspondingĀ toĀ oneĀ ofĀ aĀ TransverseĀ ElectricĀ (TE)Ā andĀ aĀ TransverseĀ MagneticĀ (TM)Ā mode,Ā theĀ secondĀ transmissionĀ lineĀ structureĀ operativelyĀ coupledĀ toĀ aĀ secondĀ setĀ ofĀ antennaĀ elementsĀ ofĀ theĀ antennaĀ array,Ā theĀ secondĀ setĀ ofĀ antennaĀ elementsĀ differentĀ fromĀ theĀ firstĀ setĀ ofĀ antennaĀ elements.
- TheĀ wirelessĀ deviceĀ accordingĀ toĀ claimĀ 19,Ā whereinĀ theĀ wirelessĀ deviceĀ isĀ aĀ handĀ heldĀ wirelessĀ deviceĀ orĀ aĀ wirelessĀ routerĀ device.
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN201680006390.0A CN107210540B (en) | 2015-01-22 | 2016-01-20 | Multimode feed network for aerial array |
| EP16739800.7A EP3248246B1 (en) | 2015-01-22 | 2016-01-20 | Multi-mode feed network for antenna array |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US14/602,759 | 2015-01-22 | ||
| US14/602,759 US9531085B2 (en) | 2015-01-22 | 2015-01-22 | Multi-mode feed network for antenna array |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2016116053A1 true WO2016116053A1 (en) | 2016-07-28 |
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| PCT/CN2016/071496 Ceased WO2016116053A1 (en) | 2015-01-22 | 2016-01-20 | Multi-mode feed network for antenna array |
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| US (1) | US9531085B2 (en) |
| EP (1) | EP3248246B1 (en) |
| CN (1) | CN107210540B (en) |
| WO (1) | WO2016116053A1 (en) |
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Also Published As
| Publication number | Publication date |
|---|---|
| EP3248246A4 (en) | 2018-05-02 |
| CN107210540A (en) | 2017-09-26 |
| US20160218438A1 (en) | 2016-07-28 |
| US9531085B2 (en) | 2016-12-27 |
| EP3248246B1 (en) | 2021-08-25 |
| EP3248246A1 (en) | 2017-11-29 |
| CN107210540B (en) | 2019-10-01 |
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