WO2019218544A1 - 异形显示屏及显示装置 - Google Patents

异形显示屏及显示装置 Download PDF

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Publication number
WO2019218544A1
WO2019218544A1 PCT/CN2018/104639 CN2018104639W WO2019218544A1 WO 2019218544 A1 WO2019218544 A1 WO 2019218544A1 CN 2018104639 W CN2018104639 W CN 2018104639W WO 2019218544 A1 WO2019218544 A1 WO 2019218544A1
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WO
WIPO (PCT)
Prior art keywords
boundary
lines
area
shaped
data
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/CN2018/104639
Other languages
English (en)
French (fr)
Inventor
秦旭
黄秀颀
张婷婷
张露
胡思明
韩珍珍
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.)
Kunshan Govisionox Optoelectronics Co Ltd
Original Assignee
Kunshan Govisionox Optoelectronics Co Ltd
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 Kunshan Govisionox Optoelectronics Co Ltd filed Critical Kunshan Govisionox Optoelectronics Co Ltd
Priority to KR1020197034705A priority Critical patent/KR102269359B1/ko
Priority to JP2019564854A priority patent/JP7061625B2/ja
Priority to US16/326,911 priority patent/US11269381B2/en
Priority to EP18918409.6A priority patent/EP3627480B1/en
Publication of WO2019218544A1 publication Critical patent/WO2019218544A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • GPHYSICS
    • G06COMPUTING OR CALCULATING; COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/16Constructional details or arrangements
    • G06F1/1613Constructional details or arrangements for portable computers
    • G06F1/1633Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
    • G06F1/1656Details related to functional adaptations of the enclosure, e.g. to provide protection against EMI, shock, water, or to host detachable peripherals like a mouse or removable expansions units like PCMCIA cards, or to provide access to internal components for maintenance or to removable storage supports like CDs or DVDs, or to mechanically mount accessories
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09FDISPLAYING; ADVERTISING; SIGNS; LABELS OR NAME-PLATES; SEALS
    • G09F9/00Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements
    • G09F9/30Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
    • G02F1/1345Conductors connecting electrodes to cell terminals
    • G02F1/13452Conductors connecting driver circuitry and terminals of panels
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G3/00Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
    • G09G3/20Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F1/00Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics
    • G02F1/01Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour 
    • G02F1/13Devices or arrangements for the control of the intensity, colour, phase, polarisation or direction of light arriving from an independent light source, e.g. switching, gating or modulating; Non-linear optics for the control of the intensity, phase, polarisation or colour  based on liquid crystals, e.g. single liquid crystal display cells
    • G02F1/133Constructional arrangements; Operation of liquid crystal cells; Circuit arrangements
    • G02F1/1333Constructional arrangements; Manufacturing methods
    • G02F1/133388Constructional arrangements; Manufacturing methods with constructional differences between the display region and the peripheral region
    • GPHYSICS
    • G02OPTICS
    • G02FOPTICAL DEVICES OR ARRANGEMENTS FOR THE CONTROL OF LIGHT BY MODIFICATION OF THE OPTICAL PROPERTIES OF THE MEDIA OF THE ELEMENTS INVOLVED THEREIN; NON-LINEAR OPTICS; FREQUENCY-CHANGING OF LIGHT; OPTICAL LOGIC ELEMENTS; OPTICAL ANALOGUE/DIGITAL CONVERTERS
    • G02F2201/00Constructional arrangements not provided for in groups G02F1/00 - G02F7/00
    • G02F2201/56Substrates having a particular shape, e.g. non-rectangular
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2300/00Aspects of the constitution of display devices
    • G09G2300/04Structural and physical details of display devices
    • G09G2300/0421Structural details of the set of electrodes
    • G09G2300/0426Layout of electrodes and connections
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K59/00Integrated devices, or assemblies of multiple devices, comprising at least one organic light-emitting element covered by group H10K50/00
    • H10K59/10OLED displays
    • H10K59/12Active-matrix OLED [AMOLED] displays
    • H10K59/131Interconnections, e.g. wiring lines or terminals

Definitions

  • the present application relates to the field of display technologies, and in particular, to a special-shaped display screen and a display device.
  • the shaped display screen includes a shaped display area and a wiring area, and the wiring area is located at the periphery of the shaped display area.
  • the scan lines, data lines or other compensation circuit connection lines of the shaped display area are distributed in the wiring area.
  • the scan lines, the data lines or other compensation circuit connection lines are connected to the pixels of the corresponding rows of the shaped display area.
  • the wiring of the periphery of the special-shaped display area is more complicated and denser, so the occupied space is larger, so that the border corresponding to the shaped display area in the special-shaped display screen is difficult to realize a narrow border.
  • the present application provides a special-shaped display screen and a display device, which can realize a narrow border of the special-shaped display area in the special-shaped display screen.
  • the application provides a shaped display screen comprising:
  • a profiled display area comprising a profiled boundary and a pixel region, the profiled boundary being located at a periphery of the pixel region;
  • a package area disposed at a periphery of the shaped boundary, the package area for encapsulating the shaped display area;
  • each connection line is connected to the pixels of the pixel area in order; after a connection line adjacent to the shaped boundary is connected with a corresponding pixel, the remaining connections are connected The entire line is bent toward the profiled boundary such that the plurality of connecting lines are wired compactly and arranged integrally adjacent to the profiled boundary.
  • the pixel region of the shaped display region includes two raised regions, a groove is formed between the two raised regions; the raised region is adjacent to a side of the groove Is the profiled boundary, and the profiled boundary is an arcuate structure.
  • the shaped display screen further includes a plurality of compensation loads disposed on one side of the raised area, the side of the compensation load being adjacent to the shaped boundary;
  • the connecting line is for connecting the compensation load and corresponding pixels of the raised area.
  • the pixels of the raised regions are arranged in rows and columns; each of the compensation load and the pixels of the corresponding row of the raised regions are connected by respective connecting lines; wherein, from the shaped In the direction of the encapsulation area, each connection line is connected to the pixels of the pixel area in order, and when a connection line closest to the abnormal shape boundary is connected with the corresponding pixel, the remaining connection lines are sequentially oriented toward the The profiled boundary bends the wiring to make the plurality of connection lines wiring compact.
  • the compensation load is a capacitor.
  • the shaped display screen further includes a plurality of data signal units disposed between the shaped boundary and the package area; the connection line includes a plurality of data lines, The plurality of data lines are disposed between the data signal unit and the package area; each of the data signal units is connected to a corresponding pixel of the shaped display area through a corresponding data line; wherein, in the vicinity After a data line of the abnormal shaped boundary is connected to the corresponding pixel, the remaining data lines are integrally bent toward the abnormal shaped boundary, so that the plurality of data lines are arranged in a compact manner and are arranged integrally close to the abnormal shaped boundary.
  • the shaped display screen further includes a plurality of driving circuit units, the connecting circuit further includes a plurality of scanning lines, and the plurality of driving circuit units are disposed in the plurality of data lines and the package area
  • the plurality of scan lines are disposed between the plurality of data lines and the driving circuit unit; each of the driving circuit units is connected to pixels of the shaped display area through corresponding scan lines; After a scan line adjacent to the package area is connected to the corresponding pixel, the remaining scan lines are integrally bent toward the package area, so that the plurality of scan line lines are compact and close to the package area.
  • the shaped display area comprises a sector display area; the shaped boundary is a circular arc boundary of the sector display area.
  • the shaped display screen further includes a plurality of data signal units disposed between the shaped boundary and the package area; the connection line includes a plurality of data lines, The plurality of data lines are disposed between the data signal unit and the package area; each of the data signal units is connected to a corresponding pixel of the sector display area through a corresponding data line; wherein, in the vicinity After a data line of the abnormal shaped boundary is connected to the corresponding pixel, the remaining data lines are integrally bent toward the abnormal shaped boundary, so that the plurality of data lines are arranged in a compact manner and are arranged integrally close to the abnormal shaped boundary.
  • the shaped display screen further includes a plurality of driving circuit units, the connecting circuit further includes a plurality of scanning lines, and the plurality of driving circuit units are disposed in the plurality of data lines and the package area
  • the plurality of scan lines are disposed between the plurality of data lines and the driving circuit unit; each of the driving circuit units is connected to pixels of the sector display area through corresponding scan lines; After a scan line adjacent to the package area is connected to the corresponding pixel, the remaining scan lines are integrally bent toward the package area, so that the plurality of scan line lines are compact and close to the package area.
  • the shaped display further includes a cathode power line disposed between the package area and the plurality of connection lines.
  • the present application also provides a display device comprising the shaped display screen of any of the above embodiments.
  • a plurality of connecting lines are located between the shaped boundary and the package area, and the plurality of connecting lines are routed one by one in a direction of the shaped boundary to the package area.
  • the remaining connecting lines are integrally bent toward the shaped boundary. This makes it possible to make the plurality of connection line wirings compact and integrally arranged close to the profiled boundary. On the one hand, the wiring space occupied by a plurality of connecting lines is reduced.
  • the area occupied by the plurality of connecting lines corresponds to at least part of the border of the shaped display area, reducing the wiring space occupied by the plurality of connecting lines makes the frame of the shaped display area narrower, thereby facilitating the realization of the shaped display screen.
  • a narrow border of the shaped display area On the other hand, a plurality of connecting lines are arranged integrally adjacent to the profiled boundary, and while the frame is made narrower, other lines may be disposed between the package area and the plurality of connecting lines to facilitate other related lines of the shaped display screen. Wiring.
  • FIG. 1 is a schematic view of a shaped display screen of an embodiment
  • Figure 2 is a partial enlarged view of a portion of the broken line A in Figure 1;
  • FIG. 3 is a schematic view showing the wiring of a plurality of connecting lines of the shaped display screen shown in FIG. 2;
  • FIG. 4 is a schematic structural view of a different-shaped display screen of another embodiment.
  • FIG. 1 is a schematic illustration of a profiled display screen 100 in accordance with an embodiment.
  • Figure 2 is a partial enlarged view of a portion of the broken line A in Figure 1.
  • FIG. 3 is a schematic diagram showing the wiring of a plurality of connection lines 130 of the shaped display screen 100 shown in FIG. 2.
  • the shaped display 100 includes a substrate (not shown), a shaped display area 110, a package area 120, and a plurality of connection lines 130.
  • the profile display area 110, the plurality of connection lines 130, and the package area 120 are all disposed on the substrate.
  • the profiled display region 110 includes a profiled boundary 112 and a pixel region 114 that is located at the periphery of the pixel region 114.
  • the profile boundary 112 is the boundary between the pixel region 114 and the outside region.
  • the shape of the projection of the profiled boundary 112 on the plane of the profiled display area 110 may be a circular arc shape or other curved segments.
  • the shape of the profiled boundary 112 depends on the shape of the profiled display area 110.
  • Pixel region 114 includes a plurality of pixels for display. Generally, a plurality of pixels are arranged in a row in a row.
  • the package area 120 is disposed at the periphery of the profiled boundary 112.
  • the package area 120 is used to package the shaped display area 110.
  • a plurality of connection lines 130 are located between the profiled boundary 112 and the package area 120.
  • a plurality of connection lines 130 are routed one by one in the direction of the package region 120 at the profile boundary 112.
  • the connection lines are connected to the pixels of the pixel area 114 in the order from the profile boundary 112 to the package area 120. After a connection line adjacent to the profile boundary 112 is connected to the corresponding pixel, the remaining connection lines are oriented toward the profile.
  • the boundary 112 bends the wiring such that the plurality of connecting lines are integrally arranged adjacent to the profiled boundary.
  • connection lines 130 are located between the shaped boundary 112 and the package area 120, and the plurality of connection lines 130 are routed one by one in the direction of the package boundary 120 in the direction of the profile boundary 112. After a connection line adjacent to the profiled boundary 112 is connected to the corresponding pixel, the remaining connection lines are integrally bent toward the profiled boundary 112. This allows a plurality of connecting lines 130 to be compact and integrally arranged adjacent to the profiled boundary 112. On the one hand, the wiring space occupied by the plurality of connection lines 130 is reduced.
  • the wiring space occupied by the plurality of connecting lines 130 is reduced, so that the border of the shaped display area 110 can be narrower, thereby making it easier to display the shaped display.
  • a plurality of connecting lines 130 are arranged integrally adjacent to the shaped boundary 112. When the frame is made narrower, other lines may be disposed between the package area 120 and the plurality of connecting lines 130 to facilitate the shaped display. Wiring of other related lines of 100.
  • the pixel region of the shaped display region 110 includes two adjacent raised regions 116, and a recess 118 is formed between the two raised regions 116.
  • the corresponding position of the groove 118 can be used to set an auxiliary device such as an earpiece or a camera.
  • the raised regions 116 form a profiled boundary 112 near the sides of the recess 118, and the profiled boundary 112 is an arcuate structure. That is, from the direction perpendicular to the profiled display region 110, the raised regions 116 are curved near the sides of the grooves 118, the curved sides forming the profiled boundaries 112.
  • the pixels of the raised regions 116 are arranged in rows and columns. However, since the shape of the raised regions 116 is not a regular rectangle, the pixel arrangement therein is not an array, that is, the number of pixels in each row is different.
  • the shaped display 100 further includes a plurality of compensation loads 140 disposed on one side of the raised regions 116, the sides of which are adjacent to the profiled boundaries 112.
  • the top of both raised areas 116 is provided with a compensation load 140.
  • each compensation load 140 is used to compensate for the corresponding pixel in the corresponding position of the groove 118, so that the shaped display 100 can also follow the corresponding driving circuit of the non-shaped display.
  • the non-aliased display refers to a conventional display having a regular rectangular shape.
  • the compensation load 140 is a capacitor.
  • each of the connection lines is used to connect the corresponding pixels of the compensation load 140 and the raised regions 116. That is, each of the compensating load 140 and the pixels of the corresponding row of the raised regions 116 are connected by corresponding connecting lines.
  • the connection lines are connected to the pixels of the pixel area 114 in order from the profile boundary 112 to the package area 120. After a connection line closest to the profiled boundary 112 is connected to the corresponding pixel, the remaining connection lines are sequentially bent toward the profiled boundary 112 to make the plurality of connection lines 130 densely wired.
  • a plurality of connecting lines are routed along the profiled boundary 112 from the top of the raised area 116 to the bottom of the groove 118.
  • the pixel defining the row closest to the top of the raised area 116 is the first line of pixels 1
  • the pixel defining the row closest to the bottom of the groove 118 is the last line of pixels.
  • the pixel rows between the first row of pixels 1 and the last row of pixels are sequentially sorted.
  • a plurality of connection lines 130 are routed one by one from the shaped boundary 112 to the direction of the package area 120.
  • connection line defining the closest to the shaped boundary 112 is the first connecting line 11
  • the connecting line defining the farthest from the shaped border 112 is the last connecting line
  • the connection lines between them are sorted in order.
  • the connection line closest to the profiled boundary 112 is first connected to the pixels of the raised area 116. That is, the first connection line 11 is first connected to the first row of pixels 1 of the raised area 116. Thereafter, the remaining connecting lines are integrally bent toward the direction of the profiled boundary 112, i.e., the remaining connecting lines are as close as possible to the profiled boundary 112. As shown in FIG.
  • connection lines 130 after the first connection line 11 is connected to the first row of pixels 1, the remaining connection lines form the first bending zone 33.
  • the remaining connection lines When the second connection line 22 is connected to the second row of pixels 2 of the raised area 116, the remaining connection lines are bent as close as possible to the profiled boundary 112. The remaining connection lines are similarly routed. As shown in FIG. 3, after the second connection line 22 is connected to the second row of pixels 2, the remaining connection lines are bent toward the contoured boundary to form a second bending region 44. The remaining connection lines are wired in a similar manner. In this way, the plurality of connection lines 130 can be made compact in wiring to save space.
  • the plurality of connection lines 130 and the package area 120 are in the wiring manner of the present application, the distance between the plurality of connection lines 130 and the package area 120 can reach 279 ⁇ m.
  • the plurality of connection lines 130 occupy a small space. Therefore, the distance from the package region 120 to the profiled boundary 112 can be reduced within an allowable range, that is, the frame of the profiled display region can be made narrower.
  • other lines may be disposed between the package area 120 and the plurality of connection lines 130 while making the frame of the shaped display area narrower.
  • the shaped display 100 also includes a cathode power line.
  • the cathode power supply line is disposed on the cathode wiring region 150 on the substrate, and the cathode wiring region 150 is located between the package region 120 and the plurality of connection lines.
  • the wiring of the plurality of connection lines 130 is compact and the occupied space is small, the wiring space between the plurality of connection lines 130 and the enclosed area 120 can be provided for the cathode power supply line. Since the cathode power supply line can be disposed between the plurality of connection lines 130 and the package area 120, the cathode power supply line is easily routed.
  • the profiled display area includes a sector display area 210.
  • the profiled boundary 212 is the arcuate boundary of the sector display area 210. Similar to the above-described raised areas, the pixels of the sector display area 210 are also arranged in rows and columns.
  • the shaped display 200 further includes a plurality of data signal units 241 disposed between the shaped boundary 212 and the package area 220.
  • the plurality of data signal units 241 constitute a scanning circuit of the shaped display 200.
  • the connection line includes a data line 232, and a plurality of data lines 232 are disposed between the data signal unit 241 and the package area 220.
  • Each of the data signal units 241 is connected to a corresponding pixel of the sector display area 210 through a corresponding data line 232.
  • the remaining data lines 232 are integrally bent toward the shaped boundary 212 to make the plurality of data lines 232 densely wired and arranged integrally adjacent to the shaped boundary 212. This saves space.
  • the data signal unit 241 is sorted from bottom to top, with the first data signal unit 241 at the bottom, the last data signal unit 241 at the top, and the first data signal unit 241 and the last data.
  • the data signal units 241 between the signal units 241 are sequentially sorted.
  • the data line 232 closest to the first data signal unit 241 is the first data line 232, and correspondingly, in a direction perpendicular to the first data line 232,
  • One of the data lines 232 is the farthest from the last data line 232, and the data line 232 between the first data line 232 and the last data line 232 is sequentially sorted.
  • data line 232 is routed from bottom to top.
  • the first data line 232 connects the first data signal unit 241 and the corresponding pixel of the sector display area 210.
  • the connection relationship between the remaining data lines 232 and the corresponding data signal unit 241 is similar, for example, the second data line 232 is connected to the second data signal unit 241.
  • the remaining data lines 232 are integrally bent toward the profile boundary 212.
  • the second data line 232 is connected to the second data signal unit 241
  • the remaining data lines 232 are integrally bent toward the profile boundary 212.
  • the traces of the remaining data lines 232 are similarly bent and routed until the last data line 232 is connected to the last data signal unit 241. In this way, the wiring between all the data lines 232 is compact, thereby saving space.
  • the shaped display 200 further includes a plurality of driving circuit units 243.
  • the connection line also includes a plurality of scan lines 234.
  • a plurality of driving circuit units 243 are disposed between the plurality of data lines 232 and the package area 220.
  • the plurality of driving circuit units 243 constitute a driving circuit of the shaped display 200.
  • a plurality of scanning lines 234 are disposed between the plurality of data lines 232 and the driving circuit unit 243.
  • Each of the driving circuit units 243 is connected to the pixels of the sector display area 210 through corresponding scanning lines 234.
  • the remaining scan lines 234 are integrally bent toward the package area 220, so that the plurality of scan lines 234 are densely wired and arranged integrally adjacent to the package area 220. save space.
  • the driving circuit unit 243 is sorted from top to bottom, the uppermost one is the first driving circuit unit 243, and the lowermost is the last driving circuit unit 243, and the first driving circuit unit 243 is The drive circuit units 243 between the last drive circuit units 243 are sequentially sorted.
  • the scanning line 234 closest to the first driving circuit unit 243 is the first scanning line 234.
  • the scanning line 234 farthest from the first scanning line 234 is the last scanning line 234.
  • the scan lines 234 between the first scan line 234 and the last scan line 234 are sequentially sorted.
  • the scan line 234 is routed from top to bottom.
  • the first scanning line 234 connects the first driving circuit unit 243 and the corresponding pixel of the sector display area 210.
  • the connection relationship of the remaining scan lines 234 is similar, for example, the second scan line 234 is connected to the second drive circuit unit 243.
  • the remaining scanning lines 234 are integrally bent toward the package region 220. That is, the remaining scanning lines 234 are sequentially bent toward the driving circuit unit 243.
  • the second scanning line 234 is connected to the second driving circuit unit 243
  • the remaining scanning lines 234 are integrally bent toward the package area 220.
  • the traces of the remaining scan lines 234 are similarly bent and wired until the last scan line 234 is connected to the last drive circuit unit 243. In this way, the wiring between all the scan lines 234 is compact, thereby saving space.
  • the wiring of the plurality of scan lines 234 and the plurality of data lines 232 allows each to save space.
  • the plurality of scan lines 234 are further directed toward the drive circuit unit 243, and the plurality of data lines 232 are further directed toward the data signal unit 241, thereby increasing the gap between the plurality of scan lines 234 and the plurality of data lines 232. Therefore, when the scan line 234 and the data line 232 are designed, the plurality of scan lines 234 and the plurality of data lines 232 can be brought close to each other, thereby reducing the sum of the spaces occupied by the scan lines 234 and the data lines 232. Thus, the scanning circuit and the driving circuit can be closer to the sector display area 210 as a whole, thereby increasing the space between the driving circuit and the package area 220.
  • the distance from the package region 220 to the profiled boundary 212 can be reduced within an allowable range, thereby making the frame of the shaped display 200 narrower.
  • other lines may be disposed between the package area 220 and the driving circuit while making the frame narrower.
  • the space between the driving circuit and the package region 220 may be provided with a cathode wiring region 250, and the cathode wiring region 250 may be provided with a cathode power supply line, thereby making the cathode power supply line easy to route.
  • the compensation load connected to the pixels of the shaped display area, the data signal unit 241 and the driving circuit unit 243 are only taken as an example to illustrate the wiring structure of the plurality of connecting lines 230, in fact, The wiring structure of the plurality of connection lines 230 can be applied to the lines of any of the shaped display screens 200.
  • the present application also provides a display device comprising the shaped display screen of any of the above embodiments.
  • the frame of the display screen of the display device can be made narrower.

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  • Physics & Mathematics (AREA)
  • Theoretical Computer Science (AREA)
  • General Physics & Mathematics (AREA)
  • Computer Hardware Design (AREA)
  • General Engineering & Computer Science (AREA)
  • Nonlinear Science (AREA)
  • Devices For Indicating Variable Information By Combining Individual Elements (AREA)
  • Human Computer Interaction (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • Optics & Photonics (AREA)
  • Chemical & Material Sciences (AREA)
  • Mathematical Physics (AREA)
  • Electroluminescent Light Sources (AREA)
  • Liquid Crystal (AREA)

Abstract

本申请涉及一种异形显示屏。该异形显示屏包括:异形显示区,包括异形边界和像素区,异形边界位于像素区的外围;封装区,设置于异形边界的外围,封装区用于封装异形显示区;以及多条连接线路,位于异形边界和封装区之间,多条连接线路从异形边界至封装区的方向逐条布线。在布线的过程中,从异形边界向封装区的方向,连接线路弯折布线,以使多条连接线路布线紧凑。本申请还涉及一种显示装置。上述异形显示屏及显示装置,可以使多条连接线路布线紧凑且整体靠近所述异形边界排布,减小多条连接线路所占的布线空间,从而容易实现异形显示屏的异形显示区的窄边框,还便于异形显示屏的其它相关线路的布线。

Description

异形显示屏及显示装置 技术领域
本申请涉及显示屏技术领域,特别涉及一种异形显示屏及显示装置。
背景技术
目前在显示面板设计过程中,一方面要求高屏占比,一方面要求不能去除听筒及摄像头等必要器件。因此,需要在显示屏上的部分区域开槽,以达到上述要求。又如,部分显示屏的四角为圆弧角。相较于规则矩形形状的显示屏,我们将上述具有开槽或圆弧角的显示屏体称为异形显示屏。
异形显示屏已经成为一种趋势。一般地,异形显示屏包括异形显示区和布线区,布线区位于异形显示区的外围。异形显示区的扫描线、数据线或者其它补偿电路连接线分布于布线区。其中,扫描线、数据线或者其它补偿电路连接线均与异形显示区的相应行的像素连接。与形状规则的显示区相比,异形显示区的外围的布线更加复杂,更加密集,因此所占空间较大,使得异形显示屏中的异形显示区对应的边框较难实现窄边框。
发明内容
基于此,本申请提供了一种异形显示屏及显示装置,能够实现异形显示屏中的异形显示区的窄边框。
本申请提供一种异形显示屏,包括:
异形显示区,包括异形边界和像素区,所述异形边界位于所述像素区的外围;
封装区,设置于所述异形边界的外围,所述封装区用于封装所述异形显示区;以及
多条连接线路,位于所述异形边界和所述封装区之间,所述多条连接线路从所述异形边界至所述封装区的方向逐条布线;
其中,从所述异形边界向所述封装区的方向,各连接线路依照次序与所述 像素区的像素连接;在邻近所述异形边界的一条连接线路与相应的像素连接后,剩余的各连接线路整体朝向所述异形边界弯折,以使得所述多条连接线路布线紧凑且整体靠近所述异形边界排布。
在其中一个实施例中,所述异形显示区的所述像素区包括两个凸起区,两个所述凸起区之间形成凹槽;所述凸起区靠近所述凹槽的侧边是所述异形边界,所述异形边界为弧形结构。
在其中一个实施例中,异形显示屏还包括多个补偿负载,所述补偿负载设置于所述凸起区的一侧边,所述补偿负载所在的侧边与所述异形边界相邻;每条所述连接线路用于连接所述补偿负载和所述凸起区相应的像素。
在其中一个实施例中,所述凸起区的像素成行成列地排布;每个所述补偿负载和所述凸起区相应行的像素通过相应的连接线路连接;其中,从所述异形边界向所述封装区的方向,各连接线路依照次序与所述像素区的像素连接,当最靠近所述异形边界的一条连接线路与相应的像素先连接后,剩余的各连接线路依次朝向所述异形边界弯折布线,以使所述多条连接线路布线紧凑。
在其中一个实施例中,所述补偿负载是电容。
在其中一个实施例中,异形显示屏还包括多个数据信号单元,所述多个数据信号单元设置于所述异形边界与所述封装区之间;所述连接线路包括多条数据线,所述多条数据线设置于所述数据信号单元和所述封装区之间;每个所述数据信号单元通过相应的所述数据线与所述异形显示区的相应像素连接;其中,在邻近所述异形边界的一条数据线与相应的像素连接后,剩余的各数据线整体朝向所述异形边界弯折,以使得所述多条数据线布线紧凑且整体靠近所述异形边界排布。
在其中一个实施例中,异形显示屏还包括多个驱动电路单元,所述连接线路还包括多条扫描线,所述多个驱动电路单元设置于所述多条数据线与所述封装区之间;所述多条扫描线设置于所述多条数据线与所述驱动电路单元之间;每个所述驱动电路单元通过相应的所述扫描线与所述异形显示区的像素连接;其中,当邻近所述封装区的一条扫描线与相应的像素连接后,剩余的各扫描线整体朝向所述封装区弯折布线,以使所述多条扫描线布线紧凑且整体靠近所述 封装区排布。
在其中一个实施例中,所述异形显示区包括扇形显示区;所述异形边界为所述扇形显示区的圆弧边界。
在其中一个实施例中,异形显示屏还包括多个数据信号单元,所述多个数据信号单元设置于所述异形边界与所述封装区之间;所述连接线路包括多条数据线,所述多条数据线设置于所述数据信号单元和所述封装区之间;每个所述数据信号单元通过相应的所述数据线与所述扇形显示区的相应像素连接;其中,在邻近所述异形边界的一条数据线与相应的像素连接后,剩余的各数据线整体朝向所述异形边界弯折,以使得所述多条数据线布线紧凑且整体靠近所述异形边界排布。
在其中一个实施例中,异形显示屏还包括多个驱动电路单元,所述连接线路还包括多条扫描线,所述多个驱动电路单元设置于所述多条数据线与所述封装区之间;所述多条扫描线设置于所述多条数据线与所述驱动电路单元之间;每个所述驱动电路单元通过相应的所述扫描线与所述扇形显示区的像素连接;其中,当邻近所述封装区的一条扫描线与相应的像素连接后,剩余的各扫描线整体朝向所述封装区弯折布线,以使所述多条扫描线布线紧凑且整体靠近所述封装区排布。
在其中一个实施例中,异形显示屏还包括阴极电源线,设置于所述封装区与所述多条连接线路之间。
本申请还提供一种显示装置,其中,包括上述任一实施例所述的异形显示屏。
上述异形显示屏及显示装置,多条连接线路位于所述异形边界和所述封装区之间,且所述多条连接线路在所述异形边界向所述封装区的方向逐条布线。在多条连接线路布线的过程中,在邻近所述异形边界的一条连接线路与相应的像素先连接后,剩余的各连接线路整体朝向所述异形边界弯折布线。这样可以使所述多条连接线路布线紧凑且整体靠近所述异形边界排布。一方面,多条连接线路所占的布线空间减少。因为多条连接线路所占区域对应于异形显示区的至少部分边框,因此,减小多条连接线路所占的布线空间使得异形显示区的边 框可以做到更窄,从而容易实现异形显示屏的异形显示区的窄边框。另一方面,多条连接线路整体靠近所述异形边界排布,在使得边框更窄的同时,在封装区和多条连接线路之间还可以设置其它线路,以便于异形显示屏的其它相关线路的布线。
附图说明
为了更清楚地说明本申请实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他实施例的附图。
图1为一实施例的异形显示屏的示意图;
图2为图1中的虚线A部分的局部放大图;
图3为图2所示的异形显示屏的多条连接线路的布线示意图;
图4为另一实施例的异形显示屏的结构示意图。
具体实施方式
下面结合附图对本申请的具体实施方式做详细的说明。
图1为一实施例的异形显示屏100的示意图。图2为图1中的虚线A部分的局部放大图。图3为图2所示的异形显示屏100的多条连接线路130的布线示意图。如图1至图3所示,该异形显示屏100包括基板(未示出)、异形显示区110、封装区120和多条连接线路130。异形显示区110、多条连接线路130和封装区120都设置于基板上。
异形显示区110包括异形边界112和像素区114,异形边界112位于像素区114的外围。异形边界112是像素区114与外界区域的分界线。异形边界112在异形显示区110所在平面的投影的形状可以是圆弧形,也可以是其它曲线段。异形边界112的形状取决于异形显示区110的形状。像素区114包括多个用于显示的像素。一般地,多个像素成行成列地排布。
封装区120设置于异形边界112的外围。封装区120用于封装异形显示区 110。
多条连接线路130位于异形边界112和封装区120之间。多条连接线路130在异形边界112向封装区120的方向逐条布线。其中,从异形边界112向封装区120的方向,各连接线路依照次序与像素区114的像素连接,在邻近异形边界112的一条连接线路与相应的像素连接后,剩余的各连接线路整体朝向异形边界112弯折布线,以使得所述多条连接线路整体靠近所述异形边界排布。
上述异形显示屏100,多条连接线路130位于异形边界112和封装区120之间,且多条连接线路130在异形边界112向封装区120的方向逐条布线。在邻近异形边界112的一条连接线路与相应的像素连接后,剩余的各连接线路整体朝向异形边界112弯折布线。这样可以使多条连接线路130紧凑且整体靠近所述异形边界112排布。一方面,多条连接线路130所占的布线空间减少。因为多条连接线路130所占区域对应于异形显示区110的边框,因此,减小多条连接线路130所占的布线空间使得异形显示区110的边框可以做到更窄,从而更容易异形显示屏100的异形显示区110的窄边框。另一方面,多条连接线路130整体靠近所述异形边界112排布,在使得边框更窄的同时,在封装区120和多条连接线路130之间还可以设置其它线路,以便于异形显示屏100的其它相关线路的布线。
如图1所示,异形显示区110的像素区包括两个相邻的凸起区116,两个凸起区116之间形成凹槽118。该凹槽118对应的位置可以用于设置听筒、摄像头等辅助设备。
凸起区116靠近凹槽118的侧边形成异形边界112,异形边界112为弧形结构。也就是说,从垂直于异形显示区110的方向看,凸起区116靠近凹槽118的侧边呈弧形,该弧形的侧边构成异形边界112。凸起区116的像素成行成列排布。但由于凸起区116的形状不是规则的矩形,因此,其中的像素排布不是阵列状,即每一行像素的个数会有区别。
如图2所示,异形显示屏100还包括多个补偿负载140,补偿负载140设置于凸起区116的一侧边,所述补偿负载140所在的侧边与所述异形边界112相邻。两个凸起区116的顶部均设置有补偿负载140。相比较于具有规则矩形形状 的显示屏而言,各补偿负载140用于补偿凹槽118对应的位置缺失的相应像素,以使得异形显示屏100还可以沿用非异形显示屏对应的驱动电路。此处,非异形显示屏是指传统的具有规则矩形形状的显示屏。进一步地,补偿负载140是电容。这样,对于异形显示屏100而言,无需重新设计驱动电路,降低了异形显示屏100的生产成本。
结合图1、图2和图3,每条连接线路用于连接补偿负载140和凸起区116相应的像素。即每个补偿负载140和凸起区116相应行的像素通过相应的连接线路连接。在各连接线路布线时,从异形边界112向封装区120的方向,各连接线路依照次序与像素区114的像素连接。在最靠近异形边界112的一条连接线路与相应的像素连接后,剩余的各连接线路依次朝向异形边界112弯折布线,以使多条连接线路130布线紧凑。
具体地,如图3所示,由于补偿负载140设置于凸起区116的顶部,多条连接线路沿着异形边界112从凸起区116的顶部向凹槽118的底部布线。相应地,在凸起区116的像素中,定义最靠近凸起区116的顶部的所在行的像素为第一行像素1,定义最靠近凹槽118底部的所在行的像素为最后一行像素,第一行像素1与最后一行像素之间的像素行依次排序。多条连接线路130从异形边界112至封装区120的方向逐条布线。在垂直于连接线路的方向上,定义最靠近异形边界112的连接线路为第一连接线路11,定义最远离异形边界112的连接线路为最后一条连接线路,第一连接线路11与最后一条连接线路之间的连接线路依次排序。最靠近异形边界112的连接线路与凸起区116的像素先连接。即第一连接线路11与凸起区116的第一行像素1先连接。此后,剩余的连接线路整体朝向异形边界112的方向弯折,即剩余的连接线路尽可能靠近异形边界112。如图3所示,第一连接线路11连接第一行像素1后,剩余的连接线路形成第一弯折区33。当第二连接线路22与凸起区116的第二行像素2连接后,剩余的连接线路尽可能靠近异形边界112弯折。剩余的连接线路进行类似的布线。如图3所示,第二连接线路22连接第二行像素2后,剩余的连接线路向异形边界弯折形成第二弯折区44。剩余的连接线路的布线方式与此类似。这样,可以使得多条连接线路130布线紧凑,以节省空间。
例如,如图3所示,一实施例的异形显示屏100中,经过试验,在封装区120与异形边界112之间的距离一定时,按照传统的布线方式,多条连接线路130与封装区120之间的距离仅有154μm。而对于同样的异形显示屏100,如果多条连接线路130按照本申请的布线方式,多条连接线路130与封装区120之间的距离可达279μm。这充分说明在本实施方式的异形显示屏100中,多条连接线路130所占空间较小。因此,封装区120至异形边界112的距离可以在允许的范围内缩小,即可以使得异形显示区的边框更窄。或者,在使得异形显示区的边框更窄的同时,在封装区120和多条连接线路130之间还可以设置其它线路。
如图3所示,异形显示屏100还包括阴极电源线。阴极电源线设置于基板上的阴极布线区150,且阴极布线区150位于封装区120与多条连接线路之间。具体地,由于多条连接线路130的布线紧凑,所占空间较小,因此多条连接线路130与封闭区120之间可以为阴极电源线提供布线空间。由于阴极电源线可以设置于多条连接线路130与封装区120之间,从而使得阴极电源线容易布线。
图4为另一实施例的异形显示屏的结构示意图。如图4所示,异形显示区包括扇形显示区210。异形边界212为扇形显示区210的圆弧边界。与上述凸起区类似,扇形显示区210的像素也成行成列地排布。
如图4所示,异形显示屏200还包括多个数据信号单元241,数据信号单元241设置于异形边界212与封装区220之间。多个数据信号单元241构成异形显示屏200的扫描电路。连接线路包括数据线232,多个数据线232设置于数据信号单元241和封装区220之间。每个数据信号单元241通过相应的数据线232与扇形显示区210的相应像素连接。在邻近异形边界212的一条数据线232与相应的像素连接后,剩余的各数据线232整体朝向异形边界212弯折布线,以使多条数据线232布线紧凑且整体靠近异形边界212排布,从而节省空间。
从图4上看,数据信号单元241从下往上排序,最下方的为第一个数据信号单元241,最上方的为最后一个数据信号单元241,第一个数据信号单元241与最后一个数据信号单元241之间的数据信号单元241依次排序。在垂直于各数据线232的方向上,最靠近第一个数据信号单元241的数据线232为第一条 数据线232,相应地,在垂直于第一条数据线232的方向上,与第一条数据线232距离最远的为最后一条数据线232,第一条数据线232与最后一条数据线232中间的数据线232依次排序。在数据线232布线的过程中,数据线232从下往上布线。第一条数据线232连接第一个数据信号单元241和扇形显示区210的相应像素。其余的数据线232与相应的数据信号单元241的连接关系与此类似,例如,第二条数据线232连接第二个数据信号单元241。当第一条数据线232连接第一个数据信号单元241后,剩余的数据线232整体朝向异形边界212弯折布线。当第二条数据线232连接第二个数据信号单元241后,剩余的数据线232整体朝向异形边界212弯折布线。其余数据线232的走线也类似地进行弯折布线,直到最后一条数据线232与最后一个数据信号单元241连接。这样,所有数据线232之间布线紧凑,从而节省空间。
如图4所示,异形显示屏200还包括多个驱动电路单元243。连接线路还包括多条扫描线234。多个驱动电路单元243设置于多条数据线232与封装区220之间。多个驱动电路单元243构成异形显示屏200的驱动电路。多条扫描线234设置于多条数据线232与驱动电路单元243之间。每个驱动电路单元243通过相应的扫描线234与扇形显示区210的像素连接。当邻近封装区220的一条扫描线234与相应的像素连接后,剩余的各扫描线234整体朝向封装区220弯折布线,以使多条扫描线234布线紧凑且整体靠近封装区220排布,节省空间。
具体地,从图4上看,驱动电路单元243从上往下排序,最上方的为第一个驱动电路单元243,最下方的为最后一个驱动电路单元243,第一个驱动电路单元243与最后一个驱动电路单元243之间的驱动电路单元243依次排序。在垂直于各扫描线234的方向上,最靠近第一个驱动电路单元243的扫描线234为第一条扫描线234。相应地,在垂直于第一条扫描线234的方向上,与第一条扫描线234距离最远的扫描线234为最后一条扫描线234。第一条扫描线234与最后一条扫描线234中间的扫描线234依次排序。在扫描线234布线的过程中,扫描线234从上往下布线。第一条扫描线234连接第一个驱动电路单元243和扇形显示区210的相应像素。其余的扫描线234的连接关系与此类似,例如,第二条扫描线234连接第二个驱动电路单元243。在第一条扫描线234连接第一 个驱动电路单元243后,剩余的扫描线234整体朝向封装区220弯折布线。即剩余的扫描线234依次朝向驱动电路单元243弯折布线。当第二条扫描线234连接第二个驱动电路单元243后,剩余的扫描线234整体朝向封装区220弯折布线。其余扫描线234的走线也类似地进行弯折布线,直到最后一条扫描线234与最后一个驱动电路单元243连接。这样,所有扫描线234之间布线紧凑,从而节省空间。
如图4所示,多条扫描线234和多条数据线232的布线使得各自节省了空间。并且多条扫描线234更靠向驱动电路单元243,多条数据线232更靠向数据信号单元241,从而增大了多条扫描线234和多条数据线232之间的空隙。因此,在设计扫描线234和数据线232时,可以使得多条扫描线234和多条数据线232相互靠近,从而减少扫描线234和数据线232两者占据的空间总和。这样,扫描电路和驱动电路可以整体上更靠近扇形显示区210,从而使得驱动电路和封装区220之间的空间增大。
因此,封装区220至异形边界212的距离可以在允许的范围内缩小,从而使得异形显示屏200的边框更窄。另外,在使得边框更窄的同时,在封装区220和驱动电路之间还可以设置其它线路。比如,驱动电路与封装区220之间的空间可设置阴极布线区250,在阴极布线区250可以设置阴极电源线,从而使得阴极电源线容易布线。
需要说明的是,上述异形显示屏200中,与异形显示区的像素连接的补偿负载、数据信号单元241及驱动电路单元243仅作为示例,以说明多条连接线路230的布线结构,事实上,多条连接线路230的布线结构可以应用于任何异形显示屏200的线路中。
本申请还提供一种显示装置,包括上述任一实施例所述的异形显示屏。这样,可以使得显示装置的显示屏的边框更窄。
以上所述实施例的各技术特征可以进行任意的组合,为使描述简洁,未对上述实施例中的各个技术特征所有可能的组合都进行描述,然而,只要这些技术特征的组合不存在矛盾,都应当认为是本说明书记载的范围。
以上所述实施例仅表达了本申请的几种实施方式,其描述较为具体和详细, 但并不能因此而理解为对发明专利范围的限制。应当指出的是,对于本领域的普通技术人员来说,在不脱离本申请构思的前提下,还可以做出若干变形和改进,这些都属于本申请的保护范围。因此,本申请专利的保护范围应以所附权利要求为准。

Claims (12)

  1. 一种异形显示屏,其中,包括:
    异形显示区,包括异形边界和像素区,所述异形边界位于所述像素区的外围;
    封装区,设置于所述异形边界的外围,所述封装区用于封装所述异形显示区;以及
    多条连接线路,位于所述异形边界和所述封装区之间,所述多条连接线路从所述异形边界至所述封装区的方向逐条布线;
    其中,从所述异形边界向所述封装区的方向,各连接线路依照次序与所述像素区的像素连接;在邻近所述异形边界的一条连接线路与相应的像素连接后,剩余的各连接线路整体朝向所述异形边界弯折,以使得所述多条连接线路布线紧凑且整体靠近所述异形边界排布。
  2. 根据权利要求1所述的异形显示屏,其中,所述异形显示区的所述像素区包括两个凸起区,两个所述凸起区之间形成凹槽;所述凸起区靠近所述凹槽的侧边形成所述异形边界,所述异形边界为弧形结构。
  3. 根据权利要求2所述的异形显示屏,其中,还包括多个补偿负载,所述补偿负载设置于所述凸起区的一侧边,所述补偿负载所在的侧边与所述异形边界相邻;
    每条所述连接线路用于连接所述补偿负载和所述凸起区相应的像素。
  4. 根据权利要求3所述的异形显示屏,其中,所述凸起区的像素成行成列地排布;每个所述补偿负载和所述凸起区相应行的像素通过相应的连接线路连接;
    其中,从所述异形边界向所述封装区的方向,各连接线路依照次序与所述像素区的像素连接,当最靠近所述异形边界的一条连接线路与相应的像素先连接后,剩余的各连接线路依次朝向所述异形边界弯折布线,以使所述多条连接线路布线紧凑。
  5. 根据权利要求3所述的异形显示屏,其中,所述补偿负载是电容。
  6. 根据权利要求1所述的异形显示屏,其中,还包括多个数据信号单元,所述多个数据信号单元设置于所述异形边界与所述封装区之间;所述连接线路包括多条数据线,所述多条数据线设置于所述数据信号单元和所述封装区之间;每个所述数据信号单元通过相应的所述数据线与所述异形显示区的相应像素连接;其中,在邻近所述异形边界的一条数据线与相应的像素连接后,剩余的各数据线整体朝向所述异形边界弯折,以使得所述多条数据线布线紧凑且整体靠近所述异形边界排布。
  7. 根据权利要求1所述的异形显示屏,其中,还包括多个驱动电路单元,所述连接线路还包括多条扫描线,所述多个驱动电路单元设置于所述多条数据线与所述封装区之间;所述多条扫描线设置于所述多条数据线与所述驱动电路单元之间;每个所述驱动电路单元通过相应的所述扫描线与所述异形显示区的像素连接;其中,当邻近所述封装区的一条扫描线与相应的像素连接后,剩余的各扫描线整体朝向所述封装区弯折布线,以使所述多条扫描线布线紧凑且整体靠近所述封装区排布。
  8. 根据权利要求1所述的异形显示屏,其中,所述异形显示区包括扇形显示区;所述异形边界为所述扇形显示区的圆弧边界。
  9. 根据权利要求8所述的异形显示屏,其中,还包括多个数据信号单元,所述多个数据信号单元设置于所述异形边界与所述封装区之间;所述连接线路包括多条数据线,所述多条数据线设置于所述数据信号单元和所述封装区之间;每个所述数据信号单元通过相应的所述数据线与所述扇形显示区的相应像素连接;其中,在邻近所述异形边界的一条数据线与相应的像素连接后,剩余的各数据线整体朝向所述异形边界弯折,以使得所述多条数据线布线紧凑且整体靠近所述异形边界排布。
  10. 根据权利要求8所述的异形显示屏,其中,还包括多个驱动电路单元,所述连接线路还包括多条扫描线,所述多个驱动电路单元设置于所述多条数据线与所述封装区之间;所述多条扫描线设置于所述多条数据线与所述驱动电路单元之间;每个所述驱动电路单元通过相应的所述扫描线与所述扇形显示区的像素连接;其中,当邻近所述封装区的一条扫描线与相应的像素连接后,剩余 的各扫描线整体朝向所述封装区弯折布线,以使所述多条扫描线布线紧凑且整体靠近所述封装区排布。
  11. 根据权利要求1所述的异形显示屏,其中,还包括:
    阴极电源线,设置于所述封装区与所述多条连接线路之间。
  12. 一种显示装置,其中,包括权利要求1至权利要求11任一项所述的异形显示屏。
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EP3627480B1 (en) 2022-05-11
KR20190138690A (ko) 2019-12-13
JP2020522734A (ja) 2020-07-30
CN108389516A (zh) 2018-08-10
JP7061625B2 (ja) 2022-04-28
US11269381B2 (en) 2022-03-08
TW201903736A (zh) 2019-01-16
EP3627480A4 (en) 2020-07-01
KR102269359B1 (ko) 2021-06-25
US20210349500A1 (en) 2021-11-11

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