WO2004110004A1 - Method and system for switching mode power amplification - Google Patents

Method and system for switching mode power amplification Download PDF

Info

Publication number
WO2004110004A1
WO2004110004A1 PCT/IB2004/001737 IB2004001737W WO2004110004A1 WO 2004110004 A1 WO2004110004 A1 WO 2004110004A1 IB 2004001737 W IB2004001737 W IB 2004001737W WO 2004110004 A1 WO2004110004 A1 WO 2004110004A1
Authority
WO
WIPO (PCT)
Prior art keywords
signal
constant envelope
modulated
modulation
width
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/IB2004/001737
Other languages
French (fr)
Inventor
Jukka Varis
Seppo Rosnell
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Nokia Inc
Original Assignee
Nokia Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Nokia Inc filed Critical Nokia Inc
Priority to KR1020057023519A priority Critical patent/KR100888709B1/en
Priority to CNB2004800159065A priority patent/CN100531166C/en
Priority to DE602004008913T priority patent/DE602004008913T2/en
Priority to EP04735049A priority patent/EP1632073B1/en
Publication of WO2004110004A1 publication Critical patent/WO2004110004A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00—Modulated-carrier systems
    • H04L27/10—Frequency-modulated carrier systems, i.e. using frequency-shift keying
    • H04L27/12—Modulator circuits; Transmitter circuits
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00—Baseband systems
    • H04L25/38—Synchronous or start-stop systems, e.g. for Baudot code
    • H04L25/40—Transmitting circuits; Receiving circuits
    • H04L25/49—Transmitting circuits; Receiving circuits using code conversion at the transmitter; using predistortion; using insertion of idle bits for obtaining a desired frequency spectrum; using three or more amplitude levels ; Baseband coding techniques specific to data transmission systems
    • H04L25/4902—Pulse width modulation; Pulse position modulation
    • H—ELECTRICITY
    • H03—ELECTRONIC CIRCUITRY
    • H03F—AMPLIFIERS
    • H03F1/00—Details of amplifiers with only discharge tubes, only semiconductor devices or only unspecified devices as amplifying elements
    • H03F1/02—Modifications of amplifiers to raise the efficiency, e.g. gliding Class A stages, use of an auxiliary oscillation
    • H—ELECTRICITY
    • H03—ELECTRONIC CIRCUITRY
    • H03F—AMPLIFIERS
    • H03F1/00—Details of amplifiers with only discharge tubes, only semiconductor devices or only unspecified devices as amplifying elements
    • H03F1/02—Modifications of amplifiers to raise the efficiency, e.g. gliding Class A stages, use of an auxiliary oscillation
    • H03F1/0205—Modifications of amplifiers to raise the efficiency, e.g. gliding Class A stages, use of an auxiliary oscillation in transistor amplifiers
    • H—ELECTRICITY
    • H03—ELECTRONIC CIRCUITRY
    • H03F—AMPLIFIERS
    • H03F3/00—Amplifiers with only discharge tubes or only semiconductor devices as amplifying elements
    • H03F3/20—Power amplifiers, e.g. Class B amplifiers, Class C amplifiers
    • H03F3/21—Power amplifiers, e.g. Class B amplifiers, Class C amplifiers with semiconductor devices only
    • H03F3/217—Class D power amplifiers; Switching amplifiers
    • H—ELECTRICITY
    • H04—ELECTRIC COMMUNICATION TECHNIQUE
    • H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00—Baseband systems
    • H04L25/38—Synchronous or start-stop systems, e.g. for Baudot code
    • H04L25/40—Transmitting circuits; Receiving circuits
    • H04L25/49—Transmitting circuits; Receiving circuits using code conversion at the transmitter; using predistortion; using insertion of idle bits for obtaining a desired frequency spectrum; using three or more amplitude levels ; Baseband coding techniques specific to data transmission systems
    • H—ELECTRICITY
    • H03—ELECTRONIC CIRCUITRY
    • H03F—AMPLIFIERS
    • H03F2200/00—Indexing scheme relating to amplifiers
    • H03F2200/331—Sigma delta modulation being used in an amplifying circuit

Definitions

  • the invention relates to a modulation system and to a method for generating a modulated signal.
  • Modulation systems are known from the state of the art for modulating a first signal based on a second signal, for instance for modulating a radio frequency carrier based on information that is to be transmitted in a cellular system.
  • variable envelope modulation methods Due to the increasing requirements on spectral efficiency, variable envelope modulation methods have become more and more popular in cellular systems. With variable envelope modulation methods, however, the limited efficiency of conventional power amplifiers may cause heat and/or operation time problems in the transmitter equipment, in particular in thermally limited equipment like terminals. In order to reduce the amount of these effects, new transmitter architectures making use of switching mode power amplifiers have been proposed. Switching mode power amplifiers can theoretically approach a power efficiency of 100%. They have the disadvantage that they are extremely amplitude non-linear, but they do not alter significantly the phase of the input phase modulated signals.
  • a modulation system which enables a variable envelope modulation while making use of switching mode power amplifiers is the LINC (Linear Amplification with Nonlinear Components) system, which was proposed by D.C. Cox of the Bell Laboratories in "Linear Amplification with Nonlinear Components", IEEE Transactions on Communications, COM-22, pp. 1942 to 1945, December 1974.
  • the basic principle of the LINC system is to represent any arbitrary bandpass signal, which has both amplitude and phase variations, by means of two signals which are of constant amplitude and have only phase variations. These two angle modulated signals can be amplified separately using power efficient nonlinear amplifiers. The outputs of these amplifiers are then combined by a summing unit in order to produce the desired variable amplitude signal.
  • a problem of this system is the combination of two non-coherent amplified signals. The efficiency of the system varies with the momentary angle between the two amplified signals and will thus be below 100%; • '
  • PWM pulse-width modulation
  • the original signal is coded to a two-level signal that has pulses of varying widths.
  • the mean value of the two-level signal follows the desired output signal and can be extracted by filtering.
  • Pulse density modulation (PDM) is an alternative way to accomplish the same task. These methods are widely used for switching mode power supplies .
  • a PWM system has been described for example in document EP 1 271 870 A2 , which presents also a possibility of creating a three-level bandpass PWM signal instead of the traditional two-level low-pass PWM signals only.
  • Another pulse modulation method which resembles the above-described PWM systems, is enabled by a Sigma-Delta modulation system.
  • a bandpass Sigma-Delta modulator can also be employed for transforming a modulated sinusoidal carrier to a two-level signal.
  • a modulation system which comprises a first constant envelope modulator modulating a signal according to a first control signal and a second constant envelope modulator modulating a signal according to a second control signal.
  • the proposed system further comprises a combining portion combining the output signal of the first and the second constant envelope modulator to a single, two-level pulse-width-modulated signal.
  • Information which is to be represented by a modulation of the single, two-level pulse-width-modulated signal is coded in the first and the second control signal .
  • a method for generating a modulated signal comprises modulating a signal according to a first control signal to obtain a first modulated constant envelope signal, modulating a signal according to a second control signal to obtain a second modulated constant envelope signal, and combining the first and the second modulated constant envelope signal to a single, two-level pulse-width-modulated signal.
  • information which is to be represented by a modulation of the single, two-level pulse-width-modulated signal is coded in the first and the second control signal .
  • the invention proceeds from the idea that the known LINC system can be redesigned to provide a two-level constant envelope signal.
  • the information which is to be represented by a final modulation, e.g. amplitude and/or phase of an analog control signal, is coded into two control signals controlling the modulation applied by two constant envelope modulators.
  • the modulation may comprise a phase modulation in case the output constant envelope signals are sinusoidal signals, and a modulation of transition times in case the output constant envelope signals are pulsed signals.
  • the two constant envelope signals are then combined to a single two-level constant envelope signal.
  • the constant envelope modulators of the proposed modulation system can be either digital constant envelope modulators or analog constant envelope modulators .
  • Digital constant envelope modulators modulate the transition times of pulse trains going through.
  • the input signals to the combining portion are in this case pulse position modulated (PPM) signals, whereas the output signal of the combining portion is a PWM signal.
  • Analog constant envelope modulators modulate the phase of a sinusoidal carrier depending on a received control signal .
  • the invention has the advantage over the known delta-signal modulation in that the width of the resulting pulses is not discrete, discrete pulse widths causing quantization noise.
  • the single two-level constant envelope signal which is generated in accordance with the invention can be provided in particular, though not exclusively, to a switching mode amplifier for amplification. If the single two-level constant envelope signal is fed to a switching mode amplifier, both high linearity and high power efficiency can be achieved in the amplification.
  • Class-E amplifiers which are suitable for radio frequencies, do not work well with varying duty cycle of a provided signal, though.
  • Class-D power amplifiers are inherently well suited for signal with varying duty cycles. Further, it has been presented by H. Kobayashi, J. Hinrichs and P.M. Asbeck in: "Current mode Class-D Power Amplifiers for High Efficiency RF Applications", IEEE MTT-S 2001 International Microwave Symposium Digest, pp. 939-942, that class D power amplifiers can also work at radio frequencies.
  • Fig. 1 is a schematic block diagram of an embodiment of a modulation system according to the invention.
  • Fig. 2 illustrates a possible variation in the embodiment of figure 1.
  • Figure 1 presents an exemplary embodiment of a modulation system according to the invention, which can be employed in a transmitter for achieving a variable envelope modulation of a radio frequency signal based on amplitude varying control signals.
  • a first input 'I' is connected on the one hand to a first processing component 1 and on the other hand to a second processing component 2.
  • a second input 'Q' is equally connected on the one hand to the first processing component 1 and on the other hand to the second processing component 2.
  • the output of the first processing component 1 is connected to a first input of a summing unit 3 and to a non- inverting input of a subtraction unit 4.
  • the output of the second processing component 2 is connected to a second input of the summing unit 3 and to an inverting input of the subtraction unit 4.
  • the first and the second processing component 1, 2, the summing unit 3 and the subtraction unit 4 constitute an input signal processing portion of the modulation system of figure 1.
  • the output of the summing unit 3 is connected via a first phase modulator 5 to a first input of a logic exclusive- or circuit XOR 7.
  • the output of the subtraction unit 4 is connected via a second phase modulator 6 to a second input of the XOR circuit 7.
  • the input signal processing portion forms together with the two phase modulators 5, 6 and the XOR circuit 7 a pulsewidth modulator.
  • an exclusive-nor circuit XNOR could be used.
  • the output of the XOR circuit 7 is connected via a switching mode power amplifier 8 and a bandpass filter 9 to an output 'Out' of the modulation system of figure 1.
  • the modulation system of figure 1 operates as follows.
  • a band-pass signal x (t) which is modulated in amplitude and phase can be represented in a canonical form as:
  • x(t ) I(tj-cosfffl )-Q(t)- sin( ⁇ )t) , where I (t) and Q (t) constitute the in-phase and quadrature components of the signal.
  • a Digital Signal Processor DSP determines the in-phase and quadrature components I (t) and Q (t) of the signal and provides them as voltages or currents of varying amplitudes to the first input 'I' and the second input 'Q', respectively, of the modulation system.
  • the DSP could provide the in-phase and quadrature components as digital signals.
  • the in-phase and quadrature components could be determined and provided by a dedicated hardware .
  • the processing portion of the modulation system calculates control signals phal, pha2 , which will cause the first phase modulator 5 and the second phase modulator 6 to modulate a sinusoidal radio frequency- signal according to the above defined phases ⁇ l r ⁇ 2 .
  • the first processing component 1 of the processing portion calculates a signal arctan(Q/j)/2
  • the second processing component 2 of the processing portion calculates a signal arcsinVl 2 +Q 2 /2.
  • the summing unit 3 of the processing portion then sums the signals output by the first processing component 1 and the second processing component 2, in order to obtain the first control signal phal, which is used for controlling the first phase modulator 5.
  • the first control signal phal is a control voltage, which causes the first phase modulator 5 to modulate the phase of a sinusoidal radio frequency signal with the phase ⁇ .
  • the phase modulated constant envelope signal output by the first phase modulator 5 is referred to as signal PM1.
  • the subtraction unit 4 of the processing portion subtracts the signal output by the second processing component 2 from the signal output by the first processing component 1, in order to obtain the second control signal pha2, which is used for controlling the second phase modulator 6.
  • the second control signal pha2 is a control voltage, which causes the second phase modulator 5 to modulate the phase of a sinusoidal radio frequency signal with the phase ⁇ 2 .
  • the signal output by the second phase modulator 6 is referred to as signal PM2.
  • the amplitude dependent angle thus increases the phase ⁇ x of the signal PM1 output by the first phase modulator and decreases the phase ⁇ 2 of the signal output by the second phase modulator PM2 , thereby coding the amplitude information in the phase difference of PM1 and PM2.
  • the signals PM1 and PM2 are provided to the XOR circuit 7.
  • the two-level PWM signal can now be amplified by the switching mode power amplifier 8 with a great linearity, since a two-level PWM signal has a constant envelope.
  • the power amplified two-level PWM signal is then provided to the band-pass filter 9, which transforms the two-level PWM signal into a variable envelope modulated radio frequency signal, where the first harmonic of the two- level PWM signal is reflected in the amount of variation of the envelope.
  • the variable envelope modulation radio frequency signal is provided via the output 'Out' of the modulation system to an antenna for transmission.
  • modulation system of figure 1 can be varied in many ways.
  • One possible variation is illustrated in figure 2, which presents an alternative for the XOR circuit 7 of figure 1.
  • the output signal PM1 of the first phase modulator 5 is provided via a first limiter 10 to a mixer 12, while the output signal PM2 of the second phase modulator 6 is provided via a second limiter 11 to the mixer 12.
  • the mixer 12 is an analog multiplier and thus constitutes an analog counterpart of an XNOR circuit.
  • a 180° phase shifter or a phase shifting/inverting amplifier would have to be connected in addition to the output of the mixer 12.
  • phase shifting component can usually be omitted without causing any effect on the modulation process itself.
  • the limiters 10, 11 ensure that the input signals provided to the mixer 12 have already only two levels, e.g.
  • limiters could be employed at the inputs of the XOR circuit 7, in order to enhance the operation of the XOR circuit 7.
  • phase modulators 5, 6 are replaced by digital modulators.
  • the output signals PM1, PM2 of the modulators already constitute two-level signals, and limiters would not provide any advantage.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Physics & Mathematics (AREA)
  • Spectroscopy & Molecular Physics (AREA)
  • Amplifiers (AREA)
  • Amplitude Modulation (AREA)
  • Pulse Circuits (AREA)

Abstract

In a modulation system, in order to provide a two-level signal with a desired modulation which is suited to be amplified by a switching mode power amplifier, the modulation system may include a first constant envelope modulator modulating a signal according to a first control signal, a second constant envelope modulator modulating a signal according to a second control signal, and a combining portion combining the output signal of the first and said second constant envelope modulator to a single, two-level pulse-width-modulated signal. The information which is to be represented by the modulation of the single, two-level pulse-width-modulated signal is coded in the first and the second control signals. The invention relates equally to a corresponding method for generating a modulated signal.

Description

METHOD AND SYSTEM FOR SWITCHING MODE POWER AMPLIFICATION
FIELD OF THE INVENTION
The invention relates to a modulation system and to a method for generating a modulated signal.
BACKGROUND OF THE INVENTION
Modulation systems are known from the state of the art for modulating a first signal based on a second signal, for instance for modulating a radio frequency carrier based on information that is to be transmitted in a cellular system.
Due to the increasing requirements on spectral efficiency, variable envelope modulation methods have become more and more popular in cellular systems. With variable envelope modulation methods, however, the limited efficiency of conventional power amplifiers may cause heat and/or operation time problems in the transmitter equipment, in particular in thermally limited equipment like terminals. In order to reduce the amount of these effects, new transmitter architectures making use of switching mode power amplifiers have been proposed. Switching mode power amplifiers can theoretically approach a power efficiency of 100%. They have the disadvantage that they are extremely amplitude non-linear, but they do not alter significantly the phase of the input phase modulated signals. A modulation system which enables a variable envelope modulation while making use of switching mode power amplifiers is the LINC (Linear Amplification with Nonlinear Components) system, which was proposed by D.C. Cox of the Bell Laboratories in "Linear Amplification with Nonlinear Components", IEEE Transactions on Communications, COM-22, pp. 1942 to 1945, December 1974. The basic principle of the LINC system is to represent any arbitrary bandpass signal, which has both amplitude and phase variations, by means of two signals which are of constant amplitude and have only phase variations. These two angle modulated signals can be amplified separately using power efficient nonlinear amplifiers. The outputs of these amplifiers are then combined by a summing unit in order to produce the desired variable amplitude signal. A problem of this system is the combination of two non-coherent amplified signals. The efficiency of the system varies with the momentary angle between the two amplified signals and will thus be below 100%; • '
In a pulse-width modulation (PWM) system, the original signal is coded to a two-level signal that has pulses of varying widths. The mean value of the two-level signal follows the desired output signal and can be extracted by filtering. Pulse density modulation (PDM) is an alternative way to accomplish the same task. These methods are widely used for switching mode power supplies .
A PWM system has been described for example in document EP 1 271 870 A2 , which presents also a possibility of creating a three-level bandpass PWM signal instead of the traditional two-level low-pass PWM signals only. Another pulse modulation method, which resembles the above-described PWM systems, is enabled by a Sigma-Delta modulation system. A bandpass Sigma-Delta modulator can also be employed for transforming a modulated sinusoidal carrier to a two-level signal.
It is desirable, however, to provide alternative solutions for coding an original control signal to a two- level signal.
SUMMARY OF THE INVENTION
It is an object of the invention to provide a modulation system and a method, which allow generation of a two- level signal with a desired modulation.
It is further an object of the invention to provide a modulation system and a method, which allow generation of a signal which is suited for amplification by a switching mode power amplifier.
A modulation system is proposed, which comprises a first constant envelope modulator modulating a signal according to a first control signal and a second constant envelope modulator modulating a signal according to a second control signal. The proposed system further comprises a combining portion combining the output signal of the first and the second constant envelope modulator to a single, two-level pulse-width-modulated signal. Information which is to be represented by a modulation of the single, two-level pulse-width-modulated signal is coded in the first and the second control signal . In addition, a method for generating a modulated signal is proposed, which comprises modulating a signal according to a first control signal to obtain a first modulated constant envelope signal, modulating a signal according to a second control signal to obtain a second modulated constant envelope signal, and combining the first and the second modulated constant envelope signal to a single, two-level pulse-width-modulated signal. Again, information which is to be represented by a modulation of the single, two-level pulse-width-modulated signal is coded in the first and the second control signal .
The invention proceeds from the idea that the known LINC system can be redesigned to provide a two-level constant envelope signal. The information which is to be represented by a final modulation, e.g. amplitude and/or phase of an analog control signal, is coded into two control signals controlling the modulation applied by two constant envelope modulators. The modulation may comprise a phase modulation in case the output constant envelope signals are sinusoidal signals, and a modulation of transition times in case the output constant envelope signals are pulsed signals. The two constant envelope signals are then combined to a single two-level constant envelope signal.
It is an advantage of the invention that it provides a single constant envelope signal in the form of a two- level signal, which can be amplified using a single nonlinear amplifier, e.g. a switching mode amplifier. Thereby, the non-coherent power combining of the traditional LINC system can be avoided. It is further an advantage of the invention that it provides an alternative to a Sigma-Delta modulator.
The constant envelope modulators of the proposed modulation system can be either digital constant envelope modulators or analog constant envelope modulators . Digital constant envelope modulators modulate the transition times of pulse trains going through. The input signals to the combining portion are in this case pulse position modulated (PPM) signals, whereas the output signal of the combining portion is a PWM signal. Analog constant envelope modulators modulate the phase of a sinusoidal carrier depending on a received control signal . The invention has the advantage over the known delta-signal modulation in that the width of the resulting pulses is not discrete, discrete pulse widths causing quantization noise.
The single two-level constant envelope signal which is generated in accordance with the invention can be provided in particular, though not exclusively, to a switching mode amplifier for amplification. If the single two-level constant envelope signal is fed to a switching mode amplifier, both high linearity and high power efficiency can be achieved in the amplification.
Known switching mode amplifiers are for instance class D or class E amplifiers. Class-E amplifiers, which are suitable for radio frequencies, do not work well with varying duty cycle of a provided signal, though. Class-D power amplifiers are inherently well suited for signal with varying duty cycles. Further, it has been presented by H. Kobayashi, J. Hinrichs and P.M. Asbeck in: "Current mode Class-D Power Amplifiers for High Efficiency RF Applications", IEEE MTT-S 2001 International Microwave Symposium Digest, pp. 939-942, that class D power amplifiers can also work at radio frequencies.
Other objects and features of the present invention will become apparent from the following detailed description considered in conjunction with the accompanying drawings. It is to be understood, however, that the drawings are designed solely for purposes of illustration and not as a definition of the limits of the invention, for which reference should be made to the appended claims. It should be further understood that the drawings are merely intended to conceptually illustrate the structures and procedures described herein.
BRIEF DESCRIPTION OF THE FIGURES
Fig. 1 is a schematic block diagram of an embodiment of a modulation system according to the invention; and
Fig. 2 illustrates a possible variation in the embodiment of figure 1.
DETAILED DESCRIPTION OF THE INVENTION
Figure 1 presents an exemplary embodiment of a modulation system according to the invention, which can be employed in a transmitter for achieving a variable envelope modulation of a radio frequency signal based on amplitude varying control signals.
In the modulation system of figure 1, a first input 'I' is connected on the one hand to a first processing component 1 and on the other hand to a second processing component 2. A second input 'Q' is equally connected on the one hand to the first processing component 1 and on the other hand to the second processing component 2. The output of the first processing component 1 is connected to a first input of a summing unit 3 and to a non- inverting input of a subtraction unit 4. The output of the second processing component 2 is connected to a second input of the summing unit 3 and to an inverting input of the subtraction unit 4. The first and the second processing component 1, 2, the summing unit 3 and the subtraction unit 4 constitute an input signal processing portion of the modulation system of figure 1.
The output of the summing unit 3 is connected via a first phase modulator 5 to a first input of a logic exclusive- or circuit XOR 7. The output of the subtraction unit 4 is connected via a second phase modulator 6 to a second input of the XOR circuit 7. The input signal processing portion forms together with the two phase modulators 5, 6 and the XOR circuit 7 a pulsewidth modulator. Instead of the XOR circuit 7, an exclusive-nor circuit XNOR could be used.
The output of the XOR circuit 7 is connected via a switching mode power amplifier 8 and a bandpass filter 9 to an output 'Out' of the modulation system of figure 1.
The modulation system of figure 1 operates as follows.
A band-pass signal x (t) which is modulated in amplitude and phase can be represented in a canonical form as:
x(t ) = I(tj-cosfffl )-Q(t)- sin(ύ)t) , where I (t) and Q (t) constitute the in-phase and quadrature components of the signal.
In case such a band-pass signal x(t) is to be transmitted, a Digital Signal Processor DSP (not shown) determines the in-phase and quadrature components I (t) and Q (t) of the signal and provides them as voltages or currents of varying amplitudes to the first input 'I' and the second input 'Q', respectively, of the modulation system. Alternatively, the DSP could provide the in-phase and quadrature components as digital signals. Further alternatively, the in-phase and quadrature components could be determined and provided by a dedicated hardware .
Using the previously defined in-phase and quadrature components I (t)
Figure imgf000009_0001
Q (t) , the phases φx, φ2 for two separate constant envelope carriers can be calculated according to the following 'equations :
φλ = θ + and φ2 = θ - ,
where θ is the phase dependent angle:
arctanf— ) θ = -
and where is the amplitude dependent angle
arcsin-JfrAQ2) α
2 When calculating arctan (Q/l) , all four quadrants should be taken into account according to the values of the I (t) and Q (t) signals. Compared to LINC system, the above defined phases φl t φ2 have to be divided in addition by two, due to a frequency doubling that will take place later on at radio frequency.
The processing portion of the modulation system calculates control signals phal, pha2 , which will cause the first phase modulator 5 and the second phase modulator 6 to modulate a sinusoidal radio frequency- signal according to the above defined phases φl r φ2.
More specifically, the first processing component 1 of the processing portion calculates a signal arctan(Q/j)/2 , while the second processing component 2 of the processing portion calculates a signal arcsinVl2 +Q2 /2.
The summing unit 3 of the processing portion then sums the signals output by the first processing component 1 and the second processing component 2, in order to obtain the first control signal phal, which is used for controlling the first phase modulator 5. The first control signal phal is a control voltage, which causes the first phase modulator 5 to modulate the phase of a sinusoidal radio frequency signal with the phase φ . The phase modulated constant envelope signal output by the first phase modulator 5 is referred to as signal PM1.
The subtraction unit 4 of the processing portion subtracts the signal output by the second processing component 2 from the signal output by the first processing component 1, in order to obtain the second control signal pha2, which is used for controlling the second phase modulator 6. The second control signal pha2 is a control voltage, which causes the second phase modulator 5 to modulate the phase of a sinusoidal radio frequency signal with the phase φ2. The signal output by the second phase modulator 6 is referred to as signal PM2.
In accordance with the above equations, the amplitude dependent angle thus increases the phase φx of the signal PM1 output by the first phase modulator and decreases the phase φ2 of the signal output by the second phase modulator PM2 , thereby coding the amplitude information in the phase difference of PM1 and PM2.
The signals PM1 and PM2 are provided to the XOR circuit 7. The XOR circuit 7 transforms the two signals PM1 and PM2 into a two-level PWM s,ignal . This operation effectively doubles the frequency of the phase modulators 5, 6. Therefore, the center frequency FC of the phase modulators 5, 6 should be only half the desired transmitter output frequency Flo. It has to be noted that in some cases, the frequency doubling may even have a beneficial effect. For example, a mixing of the transmitted signal with the local oscillator can be avoided when Flo=FC/2.
The two-level PWM signal can now be amplified by the switching mode power amplifier 8 with a great linearity, since a two-level PWM signal has a constant envelope. The power amplified two-level PWM signal is then provided to the band-pass filter 9, which transforms the two-level PWM signal into a variable envelope modulated radio frequency signal, where the first harmonic of the two- level PWM signal is reflected in the amount of variation of the envelope. Finally, the variable envelope modulation radio frequency signal is provided via the output 'Out' of the modulation system to an antenna for transmission.
The modulation system of figure 1 can be varied in many ways. One possible variation is illustrated in figure 2, which presents an alternative for the XOR circuit 7 of figure 1.
In this alternative, the output signal PM1 of the first phase modulator 5 is provided via a first limiter 10 to a mixer 12, while the output signal PM2 of the second phase modulator 6 is provided via a second limiter 11 to the mixer 12. The mixer 12 is an analog multiplier and thus constitutes an analog counterpart of an XNOR circuit. In order to obtain an analog counterpart of the XOR circuit 7 of figure 1 instead, a 180° phase shifter or a phase shifting/inverting amplifier would have to be connected in addition to the output of the mixer 12. However, such a phase shifting component can usually be omitted without causing any effect on the modulation process itself. The limiters 10, 11 ensure that the input signals provided to the mixer 12 have already only two levels, e.g. a first, positive level, whenever the signal PM1, PM2 output by the respective phase modulator 5, β is larger than zero, and a second, negative level, whenever the signal PM1, PM2 output by the respective phase modulator 5, 6 is smaller than zero. It is to be noted that also in the embodiment presented in figure 1, limiters could be employed at the inputs of the XOR circuit 7, in order to enhance the operation of the XOR circuit 7.
In a further variation of the modulation system of figure 1, the phase modulators 5, 6 are replaced by digital modulators. In this case, the output signals PM1, PM2 of the modulators already constitute two-level signals, and limiters would not provide any advantage.
While there have shown and described and pointed out fundamental novel features of the invention as applied to a preferred embodiment thereof, it will be understood that various omissions and substitutions and changes in the form and details of the devices and methods described may be made by those skilled in the art without departing from the spirit of the invention. For example, it is expressly intended that all combinations of those elements which perform substantially the same function in substantially the same way to achieve the same results are within the scope of the invention. Moreover, it should be recognized that structures and/or elements and/or method steps shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.

Claims

What is claimed is:
1. A modulation system comprising: a first constant envelope modulator modulating a signal according to a first control signal; a second constant envelope modulator modulating a signal according to a second control signal; and a combining portion combining output signals of said first and said second constant envelope modulators to a single, two-level pulse-width- modulated signal, wherein information for representation by a modulation of said single, two-level pulse-width-modulated signal is coded in said first and said second control signals.
2. The modulation system according to claim 1, further comprising a processing portion, which processing portion receives an in-phase component I and a quadrature component Q of an analog modulation signal containing said information which is for representation by a modulation of said single, two- level pulse-width-modulated signal, and which processing portion calculates said first control
arctanf— +arcsink/l2 + Q2 J signal as and said second
control signal as
Figure imgf000014_0001
3. The modulation system according to claim 1, wherein a center frequency of said first constant envelope modulator and of said second constant envelope modulator is half of a desired center frequency of said single, two-level pulse-width-modulated signal.
4. The modulation system according to claim 1, wherein said first and said second constant envelope modulators are analog constant envelope modulators modulating a sinusoidal signal in phase based on said first and said second control signal.
5. The modulation system according to claim 4, further comprising a first limiter converting the output signal of said first constant envelope modulator into a two-level signal, before it is provided to said combining unit, and a second limiter converting the output signal of said second constant envelope modulator into a two-level signal, before it is provided to said combining unit .
6. The modulation system according to claim 1, wherein said first and said second constant envelope modulators are digital constant envelope modulators outputting a respective pulsed signal, in which the transition times are modulated based on said first and said second control signals, respectively.
7. The modulation system according to claim 1, wherein said combining unit comprises a logic exclusive-or circuit .
8. The modulation system according to claim 1, wherein said combining unit comprises a logic exclusive-nor circuit .
9. The modulation system according to claim 1, wherein said combining unit comprises an analog mixer.
10. The modulation system according to claim 1, further comprising a switching mode power amplifier amplifying said single, two-level pulse-width- modulated signal provided by said combining unit.
11. The modulation system according to claim 10, further comprising at least one of a bandpass filter and a lowpass filter for generating a variable envelope signal out of said amplified single, two-level, pulse-width-modulated signal provided by said switching mode power amplifier.
12. A method for generating a modulated signal, said method comprising: modulating a signal according to a first control signal to obtain a first modulated constant envelope signal; modulating a signal according to a second control signal to obtain a second modulated constant envelope signal; and combining said first modulated constant envelope signal and said second modulated constant envelope signal into a single, two-level pulse- width-modulated signal, wherein information for representation by a modulation of said single, two-level pulse-width-modulated signal is coded in said first control signal and said second control signal .
13. The method according to claim 12, wherein said first control signal is calculated as arctanf—j+arcsin| i + Q" / and wherein said second
2 control signal is calculated as
arctanf— ) —arcsin/X2 +Q2 j , with I being an in-phase
2 component and Q a quadrature component of an analog modulation signal containing said information which is for said representation by said modulation of said single, two-level pulse-width-modulated signal.
14. The method according to claim 12, wherein a center frequency of said first constant envelope signal and of said second constant envelope signal before modulation is selected to be half of a desired center frequency of said single, two-level pulse-width- modulated signal .
15. The method according to claim 12, wherein said first and said second constant envelope signals are sinusoidal signals which are modulated in phase based on said first and said second control signal.
16. The method according to claim 12, further comprising converting said first modulated constant envelope signal and said second modulated constant envelope signal into respective two-level signals before combining them.
17. The method according to claim 12, wherein said first modulated constant envelope signal and said second modulated constant envelope signal are pulsed constant envelope signals, in which the transition times are modulated based on said first control signal and said second control signal.
18. The method according to claim 12, further comprising amplifying said single, two-level pulse-width- modulated signal by means of a switching mode power amplifier.
19. The method according to claim 18, further comprising generating a variable envelope signal by filtering said amplified single, two-level, pulse-width- modulated signal.
PCT/IB2004/001737 2003-06-09 2004-05-27 Method and system for switching mode power amplification Ceased WO2004110004A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
KR1020057023519A KR100888709B1 (en) 2003-06-09 2004-05-27 Method and system for switching mode power amplification
CNB2004800159065A CN100531166C (en) 2003-06-09 2004-05-27 Method and system for switching mode power amplification
DE602004008913T DE602004008913T2 (en) 2003-06-09 2004-05-27 Method and device for creating a two-level pulse width modulated signal
EP04735049A EP1632073B1 (en) 2003-06-09 2004-05-27 Method and system for producing a two-level pulse width modulated signal

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US10/458,495 2003-06-09
US10/458,495 US6975177B2 (en) 2003-06-09 2003-06-09 Method and system for a generation of a two-level signal

Publications (1)

Publication Number Publication Date
WO2004110004A1 true WO2004110004A1 (en) 2004-12-16

Family

ID=33490438

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/IB2004/001737 Ceased WO2004110004A1 (en) 2003-06-09 2004-05-27 Method and system for switching mode power amplification

Country Status (8)

Country Link
US (1) US6975177B2 (en)
EP (1) EP1632073B1 (en)
KR (1) KR100888709B1 (en)
CN (1) CN100531166C (en)
AT (1) ATE373370T1 (en)
DE (1) DE602004008913T2 (en)
ES (1) ES2293260T3 (en)
WO (1) WO2004110004A1 (en)

Families Citing this family (31)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7327803B2 (en) 2004-10-22 2008-02-05 Parkervision, Inc. Systems and methods for vector power amplification
US7355470B2 (en) 2006-04-24 2008-04-08 Parkervision, Inc. Systems and methods of RF power transmission, modulation, and amplification, including embodiments for amplifier class transitioning
US7394862B2 (en) * 2004-12-21 2008-07-01 Broadcom Corporation Multi-mode wireless polar transmitter architecture
US7911272B2 (en) 2007-06-19 2011-03-22 Parkervision, Inc. Systems and methods of RF power transmission, modulation, and amplification, including blended control embodiments
US8013675B2 (en) 2007-06-19 2011-09-06 Parkervision, Inc. Combiner-less multiple input single output (MISO) amplification with blended control
US8334722B2 (en) 2007-06-28 2012-12-18 Parkervision, Inc. Systems and methods of RF power transmission, modulation and amplification
WO2007060562A1 (en) * 2005-11-23 2007-05-31 Nxp B.V. Polar modulation system
CN101322368A (en) * 2005-12-01 2008-12-10 诺基亚公司 Apparatus and method for pulse width modulation
CN101375575A (en) * 2005-12-16 2009-02-25 Nxp股份有限公司 Multi-mode modulation apparatus
US8031804B2 (en) 2006-04-24 2011-10-04 Parkervision, Inc. Systems and methods of RF tower transmission, modulation, and amplification, including embodiments for compensating for waveform distortion
FI20065260A0 (en) * 2006-04-24 2006-04-24 Nokia Corp Vaihdemodulaattori
US7937106B2 (en) 2006-04-24 2011-05-03 ParkerVision, Inc, Systems and methods of RF power transmission, modulation, and amplification, including architectural embodiments of same
US8315336B2 (en) 2007-05-18 2012-11-20 Parkervision, Inc. Systems and methods of RF power transmission, modulation, and amplification, including a switching stage embodiment
EP2087586B1 (en) * 2006-10-27 2015-10-21 Unwired Planet International Limited Switched modulation of a radio-frequency amplifier
WO2008076021A1 (en) * 2006-12-18 2008-06-26 Telefonaktiebolaget Lm Ericsson (Publ) Pulse width modulator
GB2444984B (en) * 2006-12-22 2011-07-13 Wolfson Microelectronics Plc Charge pump circuit and methods of operation thereof
US7620129B2 (en) 2007-01-16 2009-11-17 Parkervision, Inc. RF power transmission, modulation, and amplification, including embodiments for generating vector modulation control signals
US8031492B2 (en) * 2007-06-14 2011-10-04 System General Corp. PWM controller for compensating a maximum output power of a power converter
US8098726B2 (en) * 2007-07-27 2012-01-17 Intel Corporation Subranging for a pulse position and pulse width modulation based transmitter
JP5124645B2 (en) * 2007-09-04 2013-01-23 テレフオンアクチーボラゲット エル エム エリクソン(パブル) Signal modulation in switch mode power amplifiers
WO2009047704A1 (en) * 2007-10-09 2009-04-16 St Wireless Sa Transmitter
US8509346B2 (en) * 2007-10-10 2013-08-13 St-Ericsson Sa Transmitter with reduced power consumption and increased linearity and dynamic range
WO2009145887A1 (en) 2008-05-27 2009-12-03 Parkervision, Inc. Systems and methods of rf power transmission, modulation, and amplification
KR20140026458A (en) 2011-04-08 2014-03-05 파커비전, 인크. Systems and methods of rf power transmission, modulation, and amplification
JP6174574B2 (en) 2011-06-02 2017-08-02 パーカーヴィジョン インコーポレイテッド Antenna control
US8471747B1 (en) 2011-12-12 2013-06-25 Texas Instruments Incorporated Phase averaged pulse width modulator
US8831085B2 (en) 2011-12-15 2014-09-09 Texas Instruments Incorporated Digital time-interleaved RF-PWM transmitter
US8848831B2 (en) * 2012-09-20 2014-09-30 Lsi Corporation Direct digital synthesis of quadrature modulated signals
US8937515B2 (en) * 2012-11-15 2015-01-20 Dsp Group Ltd. Device and method for direct mixing of pulse density modulation (PDM) signals
EP3047348B1 (en) 2013-09-17 2025-03-19 Parkervision, Inc. Method for rendering an information bearing function of time
US9426005B1 (en) * 2015-07-09 2016-08-23 Infineon Technologies Ag Method for indirect measurement of the phase delay of a RF-PWM modulator

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1271870A2 (en) * 2001-06-29 2003-01-02 Nokia Corporation Switching mode power amplifier using PWM and PPM for band pass signals
US20040101065A1 (en) * 2002-11-21 2004-05-27 Hagh Sotoudeh Hamedi Phase shifted transmitter architecture for communication systems

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6198776B1 (en) * 1996-11-13 2001-03-06 Motorola Inc. Device and method for precoding data signals for PCM transmission
US6300826B1 (en) * 2000-05-05 2001-10-09 Ericsson Telefon Ab L M Apparatus and method for efficiently amplifying wideband envelope signals
US6650711B1 (en) * 2000-06-02 2003-11-18 Tropian, Inc. Quadrature modulation with reduced phase-error distortion
US6741646B1 (en) * 2000-07-25 2004-05-25 Thomson Licensing S.A. Modulation technique for transmitting a high data rate signal, and an auxiliary data signal, through a band limited channel
SE522119C2 (en) 2001-10-15 2004-01-13 Ericsson Telefon Ab L M HF power amplification through conversion and time multiplexing of baseband signals

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1271870A2 (en) * 2001-06-29 2003-01-02 Nokia Corporation Switching mode power amplifier using PWM and PPM for band pass signals
US20040101065A1 (en) * 2002-11-21 2004-05-27 Hagh Sotoudeh Hamedi Phase shifted transmitter architecture for communication systems

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
HAMEDI-HAGH S ET AL INSTITUTE OF ELECTRICAL AND ELECTRONICS ENGINEERS: "Wideband CMOS integrated RF combiner for LINC transmitters", 2003 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM DIGEST.(IMS 2003). PHILADELPHIA, PA, JUNE 8 - 13, 2003, IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM, NEW YORK, NY : IEEE, US, vol. VOL. 3 OF 3, 8 June 2003 (2003-06-08), pages 41 - 44, XP010644751, ISBN: 0-7803-7695-1 *
HAMEDI-HAGH S ET AL: "A 1V, 8GHz CMOS integrated phase shifted transmitter for wideband and varying envelope communication systems", PROCEEDINGS OF THE IEEE 2003 CUSTOM INTEGRATED CIRCUITS CONFERENCE. (CICC 2003). SAN JOSE, CA, SEPT. 21 - 24, 2003, IEEE CUSTOM INTEGRATED CIRCUITS CONFERENCE.CICC, NEW YORK, NY : IEEE, US, vol. CONF. 25, 21 September 2003 (2003-09-21), pages 447 - 450, XP010671065, ISBN: 0-7803-7842-3 *

Also Published As

Publication number Publication date
CN1802829A (en) 2006-07-12
ES2293260T3 (en) 2008-03-16
EP1632073B1 (en) 2007-09-12
DE602004008913T2 (en) 2008-06-19
US6975177B2 (en) 2005-12-13
CN100531166C (en) 2009-08-19
KR100888709B1 (en) 2009-03-16
EP1632073A1 (en) 2006-03-08
ATE373370T1 (en) 2007-09-15
US20040246060A1 (en) 2004-12-09
KR20060022681A (en) 2006-03-10
DE602004008913D1 (en) 2007-10-25

Similar Documents

Publication Publication Date Title
US6975177B2 (en) Method and system for a generation of a two-level signal
Raab Radio frequency pulsewidth modulation
EP0461721B1 (en) Transmitter comprising an electronic arrangement for generating a modulated carrier signal
EP2263355B1 (en) High resolution digital modulator by switching between discrete PWM or PPM values
JP3419484B2 (en) Modulator, transmitter
EP2005574B1 (en) Radio frequency pwm & ppm modulator
Nielsen et al. An RF pulse width modulator for switch-mode power amplification of varying envelope signals
US8374233B2 (en) IQ-modulation system and method for switched amplifiers
WO2007069191A2 (en) Multi-mode modulation apparatus
US7760041B2 (en) Pulse-width modulator methods and apparatus
Streitenberger et al. Theory and implementation of a new type of digital power amplifier for audio applications
US20040125888A1 (en) Quadrature modulation transmitter
GB2456889A (en) A PWM modulator for a Cartesian transmitter
JP2011091757A (en) Amplifier, transmitter, and amplification method
US7280003B2 (en) Modulation device and transmitter comprising such a device
CN103259495A (en) Switching Amplifier System and Its Signal Distortion Suppression Method
EP2555423B1 (en) Digital amplifier
CN101322368A (en) Apparatus and method for pulse width modulation
US8803608B2 (en) Apparatus for amplifying an input-signal
WO2007060562A1 (en) Polar modulation system
KR102070045B1 (en) Method for Amplifying an Input Signal
Adrian et al. A review of design methods for digital modulators
Streitenberger et al. Zero-position coding with separated baseband in low-power class-D audio amplifiers for mobile communications
GB2456888A (en) A modulator for a LINC radio transmitter with switching amplifiers
Schnick et al. New modulation strategy for controlled power electronic applications with low switching frequencies

Legal Events

Date Code Title Description
AK Designated states

Kind code of ref document: A1

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BR BW BY BZ CA CH CN CO CR CU CZ DE DK DM DZ EC EE EG ES FI GB GD GE GH GM HR HU ID IL IN IS JP KE KG KP KR KZ LC LK LR LS LT LU LV MA MD MG MK MN MW MX MZ NA NI NO NZ OM PG PH PL PT RO RU SC SD SE SG SK SL SY TJ TM TN TR TT TZ UA UG US UZ VC VN YU ZA ZM ZW

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): BW GH GM KE LS MW MZ NA SD SL SZ TZ UG ZM ZW AM AZ BY KG KZ MD RU TJ TM AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LU MC NL PL PT RO SE SI SK TR BF BJ CF CG CI CM GA GN GQ GW ML MR NE SN TD TG

121 Ep: the epo has been informed by wipo that ep was designated in this application
DPEN Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed from 20040101)
WWE Wipo information: entry into national phase

Ref document number: 2004735049

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 1020057023519

Country of ref document: KR

WWE Wipo information: entry into national phase

Ref document number: 20048159065

Country of ref document: CN

WWP Wipo information: published in national office

Ref document number: 2004735049

Country of ref document: EP

WWP Wipo information: published in national office

Ref document number: 1020057023519

Country of ref document: KR

WWG Wipo information: grant in national office

Ref document number: 2004735049

Country of ref document: EP