WO2018000485A1 - 显示面板驱动装置及显示装置 - Google Patents
显示面板驱动装置及显示装置 Download PDFInfo
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- WO2018000485A1 WO2018000485A1 PCT/CN2016/090656 CN2016090656W WO2018000485A1 WO 2018000485 A1 WO2018000485 A1 WO 2018000485A1 CN 2016090656 W CN2016090656 W CN 2016090656W WO 2018000485 A1 WO2018000485 A1 WO 2018000485A1
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- leads
- switch
- display panel
- switch groups
- arranged side
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G3/00—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
- G09G3/20—Control 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
- G09G3/2092—Details of a display terminals using a flat panel, the details relating to the control arrangement of the display terminal and to the interfaces thereto
-
- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G3/00—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
- G09G3/20—Control 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
- G09G3/2007—Display of intermediate tones
- G09G3/2077—Display of intermediate tones by a combination of two or more gradation control methods
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D30/00—Field-effect transistors [FET]
- H10D30/60—Insulated-gate field-effect transistors [IGFET]
- H10D30/67—Thin-film transistors [TFT]
- H10D30/6757—Thin-film transistors [TFT] characterised by the structure of the channel, e.g. transverse or longitudinal shape or doping profile
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D86/00—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates
- H10D86/40—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates characterised by multiple TFTs
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D86/00—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates
- H10D86/40—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates characterised by multiple TFTs
- H10D86/441—Interconnections, e.g. scanning lines
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10D—INORGANIC ELECTRIC SEMICONDUCTOR DEVICES
- H10D86/00—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates
- H10D86/40—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates characterised by multiple TFTs
- H10D86/60—Integrated devices formed in or on insulating or conducting substrates, e.g. formed in silicon-on-insulator [SOI] substrates or on stainless steel or glass substrates characterised by multiple TFTs wherein the TFTs are in active matrices
-
- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2300/00—Aspects of the constitution of display devices
- G09G2300/04—Structural and physical details of display devices
- G09G2300/0421—Structural details of the set of electrodes
- G09G2300/0426—Layout of electrodes and connections
-
- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2310/00—Command of the display device
- G09G2310/02—Addressing, scanning or driving the display screen or processing steps related thereto
- G09G2310/0264—Details of driving circuits
- G09G2310/0297—Special arrangements with multiplexing or demultiplexing of display data in the drivers for data electrodes, in a pre-processing circuitry delivering display data to said drivers or in the matrix panel, e.g. multiplexing plural data signals to one D/A converter or demultiplexing the D/A converter output to multiple columns
-
- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2320/00—Control of display operating conditions
- G09G2320/02—Improving the quality of display appearance
- G09G2320/0233—Improving the luminance or brightness uniformity across the screen
Definitions
- the present invention relates to the field of display technologies, and in particular, to a display panel driving device and a display device.
- gate driver Gate Driver on Array
- Driver IC driver chip
- Source Driver Source Driver
- FIG. 1 is a schematic structural view of a display device of the prior art.
- the display device includes a display panel 20 and a display panel driving device 21, and the display panel driving device 21 includes a source driving chip 211, a lead 212, and a multiplexer 213.
- the source driving chip 211 is connected to the data lines of the display panel 20 through a set of sector wires.
- the set of fan-shaped wires includes a plurality of leads 212, each of which is connected to the multiplexer 213, and the multiplexer 213 is further connected to the data line of the display panel to transmit the source drive signal of each lead 212 to at most Data line.
- the length of the leads 212 at the ends of the sector wires may be longer than the length of the wires 212 located in the middle of the sector wires, and the cross-sectional areas of the leads 212 are the same.
- the material is also the same, so the impedance value of the lead wires 212 at both ends is larger than the impedance value of the intermediate lead 212, so that the waveform of the source driving signal transmitted by the lead wires 212 at both ends is seriously distorted, which affects the uniformity of the source driving signal, and further Affects the display uniformity of the display panel, resulting in poor display performance.
- the present invention provides a display panel driving device and a display device, which can solve the problem that the display effect caused by the unevenness of the display screen existing in the prior art is poor.
- a technical solution adopted by the present invention is to provide a display panel driving device including a source driving chip, a plurality of leads, and a multiplexer; wherein the source driving chip includes side by side a plurality of source driving signal output interfaces for emitting a source driving signal; the plurality of leads are fan-shaped, each of the leads is connected to a source driving signal output interface, and a plurality of leads arranged side by side The length of the lead is gradually increased from the middle to the both ends; the multiplexer is connected to the plurality of leads, and the multiplexer is configured to transmit the source driving signal transmitted by each of the leads to the display panel The strip data lines are simultaneously used to adjust the source drive signals of different intensities transmitted by each of the leads so that the source drive signals enter the plurality of data lines with the same intensity;
- the utility device comprises a plurality of switch groups arranged side by side, each lead wire being connected to one of the switch groups; each of the switch groups comprises a plurality of TFT switches arranged side by
- the width/length ratio of the channel of the TFT switch of the switch group gradually increases, and the conductivity of the switch group gradually increases linearly. So that the intensity of the source drive signals of each of the data lines entering the display panel is the same.
- a display panel driving device which includes a source driving chip, a plurality of leads, and a multiplexer; wherein the source driving chip includes side by side settings a plurality of source drive signal output interfaces for emitting a source drive signal; the plurality of leads are fan-shaped, each of the leads being connected to a source drive signal output interface, from the middle of the plurality of leads arranged side by side The length of the lead is gradually increased to the two ends; the multiplexer is connected to the plurality of leads, and the multiplexer is configured to transmit the source driving signals transmitted by each of the leads to the plurality of display panels The data lines are simultaneously used to adjust the source drive signals of different intensities transmitted by each of the leads so that the source drive signals enter the plurality of data lines with the same intensity.
- the multiplexer comprises a plurality of switch groups arranged side by side, each lead wire being connected to one of the switch groups; each of the switch groups comprises a plurality of TFT switches arranged side by side, each of the TFTs The switches are each connected to a data line on the display panel to transmit a source driving signal on each of the leads to the plurality of data lines; the TFT switches in each of the switch groups have the same conductivity The conductivity of the switch group is gradually increased from the middle to the both ends of the plurality of switch groups arranged side by side such that the intensity of the source drive signals of each of the data lines entering the display panel is the same.
- the width/length ratio of the channel of the TFT switch of the switch group gradually increases from the middle to the both ends of the plurality of switch groups arranged side by side.
- the lengths of the channels of the TFT switches of the plurality of switch groups are the same, and the width of the channel of the TFT switch of the switch group is gradually increased from the middle to the both ends of the plurality of switch groups arranged side by side. .
- widths of the channels of the TFT switches of the plurality of switch groups are the same, and the length of the channel of the TFT switch of the switch group is gradually reduced from the middle to the both ends of the plurality of switch groups arranged side by side.
- the conductivity of the switch group increases linearly from the middle to the two ends of the plurality of switch groups arranged side by side.
- the number of TFT switches in each of the switch groups is the same.
- each of the switch groups includes three of the TFT switches.
- the TFT switch is an NTFT switch.
- a display device which includes: a display panel and a display panel driving device, wherein the display panel driving device includes a source driving chip and a plurality of a lead and a multiplexer; the source driving chip includes a plurality of source driving signal output interfaces arranged side by side for emitting a source driving signal; the plurality of leads are fan-shaped, each of the leads is connected to a source driving a signal output interface, the length of the lead is gradually increased from the middle to the both ends of the plurality of leads arranged side by side; the multiplexer is connected to the plurality of leads, and the multiplexer is used to The source driving signal transmitted by the lead wire is transmitted to the plurality of data lines of the display panel, and is used for adjusting the source driving signals of different intensities transmitted by each of the lead wires, so that the source driving signals are the same The intensity enters the plurality of data lines.
- the display panel driving device includes a source driving chip and a plurality of a lead and a multiplexer
- the source driving chip includes
- the multiplexer comprises a plurality of switch groups arranged side by side, each lead wire being connected to one of the switch groups; each of the switch groups comprises a plurality of TFT switches arranged side by side, each of the TFTs The switches are each connected to a data line on the display panel to transmit a source driving signal on each of the leads to the plurality of data lines; the TFT switches in each of the switch groups have the same conductivity The conductivity of the switch group is gradually increased from the middle to the both ends of the plurality of switch groups arranged side by side such that the intensity of the source drive signals of each of the data lines entering the display panel is the same.
- the width/length ratio of the channel of the TFT switch of the switch group gradually increases from the middle to the both ends of the plurality of switch groups arranged side by side.
- the lengths of the channels of the TFT switches of the plurality of switch groups are the same, and the width of the channel of the TFT switch of the switch group is gradually increased from the middle to the both ends of the plurality of switch groups arranged side by side. .
- widths of the channels of the TFT switches of the plurality of switch groups are the same, and the length of the channel of the TFT switch of the switch group is gradually reduced from the middle to the both ends of the plurality of switch groups arranged side by side.
- the conductivity of the switch group increases linearly from the middle to the two ends of the plurality of switch groups arranged side by side.
- the number of TFT switches in each of the switch groups is the same.
- each of the switch groups includes three of the TFT switches.
- the TFT switch is an NTFT switch.
- the invention has the beneficial effects that the present invention is connected to the multiplexer at the output end of the lead wire, and the source drive signals of different strengths transmitted by the lead wires are adjusted by the multiplexer so that the source drive signal is changed.
- the intensity is adjusted to be the same, that is, the different attenuation levels of the source driving signals in the leads are balanced, and then transmitted to the plurality of data lines, so that the intensity of the source driving signals entering the data lines is uniform, thereby ensuring the data.
- the uniformity of the source driving signals in the line improves the uniformity of the display of the small and medium-sized panel images and improves the display effect.
- FIG. 1 is a schematic structural view of a display device of the prior art
- FIG. 2 is a schematic structural view of an embodiment of a display panel driving device of the present invention.
- FIG. 3 is a view showing a relationship between a width/length ratio of a channel of a TFT switch and a charging efficiency of a pixel in the display panel driving device of the present invention
- Figure 4 is a schematic structural view of a display device of the present invention.
- Figure 5 is an enlarged schematic view of the area A of Figure 4.
- the invention provides a display panel driving device.
- the small and medium-sized panel adopts the gate driving integration (Gate Driver on Array, GOA) plus the driver IC (Driver IC) structure, that is, the gate drive (Gate Driver) is integrated on the display area, so that only a source driver chip responsible for the data signal (Source) is bound in the non-display area (Source Driver) IC).
- GOA gate driving integration
- Driver IC driver IC
- gate drive integrated (GOA) plus driver chip (Driver)
- the display panel of the structure of IC can be routed by means of bilateral wiring (two or more source driving chips), and the source connected to the lead of the source driving signal output interface of the plurality of source driving chips The drive signal is adjusted.
- FIG. 2 is a schematic structural diagram of an embodiment of a display panel driving device of the present invention.
- the display panel driving device 10 provided in this embodiment includes a source driving chip 11, a plurality of leads 12, and a multiplexer 13.
- the source driving chip 11 includes a plurality of source driving signal output interfaces 111 arranged side by side for emitting a source driving signal.
- the plurality of leads 12 are distributed in a fan shape, and each of the leads 12 is connected to a source driving signal output interface 111.
- the length of the leads 12 is gradually increased from the middle to the both ends of the plurality of leads 12 arranged side by side.
- the source driving signal output interfaces 111 on the source driving chip 11 are arranged side by side, and each of the leads 12 is connected to one source driving signal output interface 111, the connection of the plurality of leads 12 to the source driving signal output interface 111 is performed. They are also distributed side by side.
- the plurality of leads 12 are made of the same material, and the cross-sectional areas of the plurality of leads 12 are the same, and since the plurality of leads are fan-shaped, the length of the leads 12 at both ends is longer than the length of the intermediate lead 12, that is, from side by side
- the length of the lead 12 is gradually increased from the middle to the both ends of the plurality of leads 12.
- R ⁇ (l/S)
- ⁇ represents the material of the lead 12
- l represents the length of the lead 12
- S represents the cross-sectional area of the lead 12
- the resistance of the lead 12 at both ends of the sector is determined. It is larger than the resistance of the lead 12 located in the middle of the sector.
- the attenuation of the source driving signal transmitted by the leads 12 at both ends of the sector wire is severe, resulting in severe distortion of the waveform of the source driving signal transmitted on the lead wires 12 at both ends. That is, the intensity of the source drive signal outputted from the output terminals of the leads 12 at both ends is weaker than the intensity of the source drive signal outputted from the output terminal of the intermediate lead 12.
- the multiplexer 13 is connected to a plurality of leads 12 for transmitting the source driving signals transmitted by each of the leads 12 to a plurality of data lines of the display panel, and for transmitting to each of the leads 12
- the source drive signals of different intensities are adjusted such that the source drive signals enter the plurality of data lines with the same intensity.
- the output end of the lead 12 is connected to the multiplexer 13, and the intensity of the source drive signal outputted from the lead 12 in the middle to the both ends is different.
- the multiplexer 13 After the source drive signal having different intensities is input to the multiplexer 13, the multiplexer 13 The source drive signal is adjusted, the intensity is adjusted to be the same, and the source drive signal sent from each lead 12 is transmitted to a plurality of data lines.
- the present invention connects the multiplexer 13 at the output end of the lead 12, and adjusts the source drive signals of different intensities transmitted by the lead 12 through the multiplexer 13, so that the intensity of the source-changed drive signal is adjusted to be the same. That is, the different attenuation levels of the source driving signals in the leads 12 are balanced, and then transmitted to the plurality of data lines, so that the intensity of the source driving signals entering the data lines is uniform, thereby ensuring the sources in the data lines.
- the uniformity of the driving signal improves the uniformity of the display of the small and medium-sized panel images and improves the display effect.
- the multiplexer 13 of the present embodiment includes a plurality of switch groups 131 arranged side by side, each of which is connected to one switch group 131.
- Each switch group 131 includes a plurality of TFT switches 1311 arranged side by side, wherein the TFT switch 1311 of the present embodiment is an NTFT switch.
- each switch group 131 includes three TFT switches 1311 arranged side by side.
- each switch group 131 may also include two, four, five or more.
- a plurality of TFT switches 1311 are arranged side by side.
- the number of the TFT switches 1311 in each of the switch groups 131 is the same. It can be understood that in other embodiments, the number of TFT switches 1311 included in each switch group 131 may also be different.
- Each of the TFT switches 1311 is connected to a data line on the display panel to feed the source drive signals on each of the leads 12 to a plurality of data lines.
- the conductivity of the TFT switch 1311 in each switch group 131 is the same. From the middle to the two ends of the plurality of switch groups 131 arranged side by side, the conductivity of the switch group 131 is gradually increased to make each data line of the display panel enter.
- the source drive signals have the same intensity.
- the three TFT switches 1311 in the first switch group 131 on the left in FIG. 2 have the same conductivity
- the three TFT switches 1311 in the second switch group 131 on the left in FIG. 2 have the same conductivity, but The conductivity of the three TF switches 1311 in the first switch group 131 on the left side is stronger than that of the three TFT switches 1311 in the second switch group 131 on the left side.
- the intensity of the source driving signal gradually decreases from the middle to the both ends of the side-by-side distributed lead 12.
- the switch group 131 is arranged from the side by side. From the middle to the both ends, the conductivity of the switch group 131 is gradually enhanced, and the enhancement of the conductivity of both ends is balanced and compensates for the distortion of the source drive signal in the lead 12, so that the source drive signal output from the multiplexer 13 is uniform.
- the conductivity of the switch group 131 is gradually enhanced by the width/length ratio of the channel of the TFT switch, which is specifically represented by the side-by-side arrangement.
- the width/length ratio of the channel of the TFT switch 1311 of the switch group 131 is gradually increased from the middle to the both ends of the switch group 131.
- the TFT switch includes a gate, a source, a drain and a channel, the channel is connected to the source and the drain, and the distance between the source and the drain of the channel is the length (L) of the channel, and The width of the channel in which the source and the drain are on the same plane and perpendicular to the line connecting the source and the drain, that is, the width (W) of the channel, and the ratio of the width/length (W/L) of the channel is large. Strong ability, small width / length (W / L) ratio, the conductivity is weak.
- the width/length value of the TFT switches 1311 at both ends is increased, and the conductivity of the TFT switches 1311 at both ends is improved, so that the signal distortion at both ends is small, and the signal distortion in the middle is large, and in the lead 12 The signal distortion at both ends is large, and the signal distortion in the middle is small, so that the signal distortion is balanced.
- FIG. 3 is a graph showing the relationship between the width/length ratio of the channel of the TFT switch and the charging efficiency of the pixel in the display panel driving device of the present invention. As can be seen from FIG. 3, as the width/length ratio of the channel of the TFT switch in the display panel driving device is gradually increased, the charging efficiency of the pixel is gradually increased.
- the change in width/length ratio can be achieved in two ways:
- the lengths of the channels of the TFT switches 1311 of the plurality of switch groups 131 are the same, and the width of the channel of the TFT switch 1311 of the switch group 131 is from the middle to the both ends of the plurality of switch groups 131 arranged side by side. Gradually increase.
- the widths of the channels of the TFT switches 1311 of the plurality of switch groups 131 are the same, from the middle to the both ends of the plurality of switch groups 131 arranged side by side, the length of the channel of the TFT switch 1311 of the switch group 131 slowing shrieking.
- the conductivity of the switch group 131 increases linearly from the middle to the both ends of the plurality of switch groups 131 arranged side by side.
- FIG. 4 is a schematic structural view of a display device of the present invention.
- Figure 5 is an enlarged schematic view of the area A of Figure 4;
- the present invention also provides a display device including a display panel 30 and a display panel driving device 31, which is the display panel driving device 31 of any of the above embodiments.
- the display panel driving device 31 includes a source driving chip 311, a plurality of leads 312, and a multiplexer 313.
- the source driving chip 311 includes a plurality of source driving signal output interfaces 3111 arranged side by side for emitting a source driving signal.
- the plurality of leads 312 are distributed in a fan shape, and each of the leads 312 is connected to a source driving signal output interface 3111.
- the length of the lead 312 is gradually increased from the middle to the both ends of the plurality of leads 312 arranged side by side.
- the source driving signal output interfaces 3111 on the source driving chip 311 are arranged side by side, and each of the leads 312 is connected to one source driving signal output interface 3111, the connection of the plurality of leads 312 to the source driving signal output interface 3111 is performed. They are also distributed side by side.
- the plurality of leads 312 are made of the same material, and the cross-sectional areas of the plurality of leads 312 are the same, and since the plurality of leads are fan-shaped, the length of the leads 312 at both ends is longer than the length of the intermediate lead 312, that is, from side by side.
- the attenuation of the source driving signal transmitted by the leads 312 located at both ends of the sector wire is severe, resulting in severe distortion of the waveform of the source driving signal transmitted on the lead wires 312 at both ends. That is, the intensity of the source drive signal outputted from the output terminals of the leads 312 at both ends is weaker than the intensity of the source drive signal outputted from the output of the intermediate lead 312.
- the multiplexer 313 is connected to a plurality of leads 313 for transmitting the source drive signals transmitted by each of the leads 312 to the plurality of data lines of the display panel 30 for transmission to each of the leads 312.
- the different source drive signals are adjusted to allow the source drive signals to enter multiple data lines with the same intensity.
- the output end of the lead 312 is connected to the multiplexer 313, and the intensity of the source drive signal outputted by the lead 312 at the middle to the both ends is different.
- the multiplexer 313 After the source drive signal having different intensities is input to the multiplexer 313, the multiplexer 313 The source driving signals are adjusted, the intensity thereof is adjusted to be the same, and the source driving signals sent from each of the leads 312 are transmitted to the plurality of data lines.
- the multiplexer 313 of the present embodiment includes a plurality of switch groups 3131 arranged side by side, and each of the leads 312 is connected to one switch group 3131.
- Each switch group 3131 includes a plurality of TFT switches 31311 arranged side by side, wherein the TFT switch 31311 of the present embodiment is an NTFT switch.
- each switch group 131 includes three TFT switches 31311 arranged side by side.
- each switch group 131 may also include two, four, five or more.
- the number of the TFT switches 31311 in each of the switch groups 131 is the same. It can be understood that in other embodiments, the number of TFT switches 31311 included in each switch group 3131 may also be different.
- Each of the TFT switches 31311 is connected to a data line on the display panel 30 to feed the source drive signals on each of the leads 312 to a plurality of data lines.
- the conductivity of the TFT switch 31311 in each switch group 3131 is the same. From the middle to the two ends of the plurality of switch groups 3131 arranged side by side, the conductivity of the switch group 3131 is gradually increased to allow each data line entering the display panel 30.
- the source drive signal has the same intensity.
- the intensity of the source driving signal gradually decreases from the middle to the both ends of the side-by-side distributed lead 312.
- the switch group 3131 is arranged from the side. From the middle to the both ends, the conductivity of the switch group 3131 is gradually enhanced, and the enhancement of the conductivity of both ends is balanced and compensates for the distortion of the source drive signal in the lead 312, so that the source drive signal output from the multiplexer 313 is consistent.
- the conductivity of the switch group 3131 is gradually enhanced by the width/length ratio of the channel of the TFT switch, which is specifically represented by the side by side arrangement.
- the width/length ratio of the channel of the TFT switch 31111 of the switch group 3131 gradually increases from the middle to the both ends of the switch group 3131.
- the width/length value of the TFT switches 31311 at both ends is increased, and the conductivity of the TFT switches 31311 at both ends is improved, so that the signal distortion at both ends is small, and the signal distortion in the middle is large, and in the lead 312. The signal distortion at both ends is large, and the signal distortion in the middle is small, so that the signal distortion is balanced.
- the invention can improve the uniformity of the display of the small and medium size panel screen and improve the display effect.
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Abstract
提供了一种显示面板驱动装置及显示装置。该显示面板驱动装置(10)包括源驱动芯片(11)、多条引线(12)和复用器(13);源驱动芯片(11)包括并排设置的多个源驱动信号输出接口(111),用于发出源驱动信号;多条引线(12)呈扇形分布,每条引线(12)均连接在一个源驱动信号输出接口(111)上,从并排设置的多条引线(12)的中间到两端,引线(12)的长度逐渐增加;复用器(13)与多条引线(12)连接,复用器(13)用于将每条引线(12)所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条引线(12)所传输来的不同强度的源驱动信号进行调整,以使源驱动信号以相同的强度进入多条数据线上。该显示装置包括显示面板及上述显示面板驱动装置。该显示装置能够提升面板画面显示的均一性,改善显示效果。
Description
【技术领域】
本发明涉及显示技术领域,特别是涉及一种显示面板驱动装置及显示装置。
【背景技术】
目前,为了适应手机窄边框、薄化的趋势,中小尺寸面板多采用门电路驱动集成(Gate Driver on
Array, GOA)加驱动芯片(Driver IC)的结构,即把门电路驱动(Gate
Driver)集成在显示区域上,这样,在非显示区域只需绑定(bonding)一颗负责数据(Date)信号的源驱动芯片(Source Driver
IC)。
如图1所示,图1是现有技术的显示装置的结构示意图。该显示装置包括显示面板20和显示面板驱动装置21,显示面板驱动装置21包括源驱动芯片211、引线212和复用器213。源驱动芯片211通过一组扇形导线连接至显示面板20的数据线。该组扇形导线中包括多条引线212,每条引线212均连接到复用器213上,复用器213再连接到显示面板的数据线上,以使每条引线212的源驱动信号传输至多条数据线上。
现有技术的显示面板驱动装置中,因为扇形导线整体呈扇形,位于扇形导线两端的引线212的长度会大于位于扇形导线中间的引线212的长度,而引线212的横截面积均是相同的,材料也是相同的,所以两端引线212的阻抗值会比中间引线212的阻抗值大,会使得两端的引线212所传输的源驱动信号的波形严重失真,影响源极驱动信号的均匀性,进而影响显示面板的显示均一性,导致显示效果变差。
【发明内容】
本发明提供一种显示面板驱动装置及显示装置,能够解决现有技术存在的显示画面不均一导致的显示效果差的问题。
为解决上述技术问题,本发明采用的一个技术方案是:提供一种显示面板驱动装置,该显示面板驱动装置包括源驱动芯片、多条引线和复用器;其中,所述源驱动芯片包括并排设置的多个源驱动信号输出接口,用于发出源驱动信号;所述多条引线呈扇形分布,每条所述引线均连接在一个源驱动信号输出接口上,从并排设置的多条引线的中间到两端,所述引线的长度逐渐增加;所述复用器与所述多条引线连接,所述复用器用于将每条所述引线所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条所述引线所传输来的不同强度的源驱动信号进行调整,以使所述源驱动信号以相同的强度进入所述多条数据线上;所述复用器包括并排设置的多个开关组,每条引线均连接在一个所述开关组上;每个所述开关组均包括多个并排设置的TFT开关,每个所述TFT开关均连接到所述显示面板上的一条数据线上,以使每条引线上的源驱动信号输送至多条所述数据线上;每个所述开关组内的所述TFT开关的导电能力相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽/长比值逐渐增大,所述开关组的导电能力逐渐呈线性递增,以使进入所述显示面板的每条所述数据线的源驱动信号的强度相同。
为解决上述技术问题,本发明采用的另一个技术方案是:提供一种显示面板驱动装置,该驱动装置包括源驱动芯片、多条引线和复用器;其中,所述源驱动芯片包括并排设置的多个源驱动信号输出接口,用于发出源驱动信号;所述多条引线呈扇形分布,每条所述引线均连接在一个源驱动信号输出接口上,从并排设置的多条引线的中间到两端,所述引线的长度逐渐增加;所述复用器与所述多条引线连接,所述复用器用于将每条所述引线所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条所述引线所传输来的不同强度的源驱动信号进行调整,以使所述源驱动信号以相同的强度进入所述多条数据线上。
其中,所述复用器包括并排设置的多个开关组,每条引线均连接在一个所述开关组上;每个所述开关组均包括多个并排设置的TFT开关,每个所述TFT开关均连接到所述显示面板上的一条数据线上,以使每条引线上的源驱动信号输送至多条所述数据线上;每个所述开关组内的所述TFT开关的导电能力相同,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力逐渐增强,以使进入所述显示面板的每条所述数据线的源驱动信号的强度相同。
其中,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽/长比值逐渐增大。
其中,所述多个开关组的TFT开关的沟道的长均相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽逐渐增大。
其中,所述多个开关组的TFT开关的沟道的宽相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的长逐渐减小。
其中,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力呈线性递增。
其中,每个所述开关组内的TFT开关的数量相同。
其中,每个所述开关组包括三个所述TFT开关。
其中,所述TFT开关为NTFT开关。
为解决上述技术问题,本发明采用的又一个技术方案是:提供一种显示装置,该显示装置包括:显示面板和显示面板驱动装置,其中,所述显示面板驱动装置包括源驱动芯片、多条引线和复用器;所述源驱动芯片包括并排设置的多个源驱动信号输出接口,用于发出源驱动信号;所述多条引线呈扇形分布,每条所述引线均连接在一个源驱动信号输出接口上,从并排设置的多条引线的中间到两端,所述引线的长度逐渐增加;所述复用器与所述多条引线连接,所述复用器用于将每条所述引线所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条所述引线所传输来的不同强度的源驱动信号进行调整,以使所述源驱动信号以相同的强度进入所述多条数据线上。
其中,所述复用器包括并排设置的多个开关组,每条引线均连接在一个所述开关组上;每个所述开关组均包括多个并排设置的TFT开关,每个所述TFT开关均连接到所述显示面板上的一条数据线上,以使每条引线上的源驱动信号输送至多条所述数据线上;每个所述开关组内的所述TFT开关的导电能力相同,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力逐渐增强,以使进入所述显示面板的每条所述数据线的源驱动信号的强度相同。
其中,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽/长比值逐渐增大。
其中,所述多个开关组的TFT开关的沟道的长均相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽逐渐增大。
其中,所述多个开关组的TFT开关的沟道的宽相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的长逐渐减小。
其中,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力呈线性递增。
其中,每个所述开关组内的TFT开关的数量相同。
其中,每个所述开关组包括三个所述TFT开关。
其中,所述TFT开关为NTFT开关。
本发明的有益效果是:区别于现有技术的情况,本发明在引线输出端连接复用器,通过复用器对引线传输来的不同强度的源驱动信号进行调整,使得改源驱动信号的强度调整至相同,即对源驱动信号在引线内的不同衰减程度进行了平衡,然后再传输至多条数据线上,从而使得进入数据线内的源驱动信号的强度是一致的,因而确保了数据线内的源驱动信号的均匀性,进而提升了中小尺寸面板画面显示的均一性,改善了显示效果。
【附图说明】
为了更清楚地说明本发明实施例中的技术方案,下面将对实施例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发明的一些实施例,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的附图。
图1是现有技术的显示装置的结构示意图;
图2是本发明显示面板驱动装置实施例的结构示意图;
图3是本发明的显示面板驱动装置中的TFT开关的沟道的宽/长比值与像素的充电效率的关系图;
图4是本发明显示装置的结构示意图;
图5是图4中A区域的放大结构示意图。
【具体实施方式】
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅是本发明的一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其它实施例,都属于本发明保护的范围。
本发明提供了一种显示面板驱动装置,为了适应手机窄边框、薄化的趋势,中小尺寸面板多采用门电路驱动集成(Gate
Driver on Array, GOA)加驱动芯片(Driver IC)的结构,即把门电路驱动(Gate
Driver)集成在显示区域上,这样,在非显示区域只需绑定(bonding)一颗负责数据(Date)信号的源驱动芯片(Source Driver
IC)。这种情况下就只需要针对连接该一颗负责数据信号的源驱动芯片的源驱动信号输出接口的引线中的源驱动信号进行调整。
当然,本发明的其他实施例中,针对没有采用门电路驱动集成(GOA)加驱动芯片(Driver
IC)的结构的显示面板,可采用双边布线(两颗或多颗源驱动芯片)的方式进行走线的布线,并对连接在多颗源驱动芯片的源驱动信号输出接口的引线中的源驱动信号进行调整。
请参阅图2,图2是本发明显示面板驱动装置实施例的结构示意图。本实施例提供的显示面板驱动装置10包括源驱动芯片11、多条引线12以及复用器13。
其中,源驱动芯片11包括并排设置的多个源驱动信号输出接口111,用于发出源驱动信号。
多条引线12呈扇形分布,每条引线12均连接在一个源驱动信号输出接口111上,从并排设置的多条引线12的中间到两端,引线12的长度逐渐增加。
具体地,由于源驱动芯片11上的源驱动信号输出接口111并排设置,并且每条引线12均连接在一个源驱动信号输出接口111上,因而多条引线12与源驱动信号输出接口111的连接处也并排分布。
多条引线12采用相同的材料制成,并且多条引线12的横截面积相同,而由于多条引线呈扇形分布,因而两端的引线12的长度大于中间的引线12的长度,即从并排设置的多条引线12的中间到两端,引线12的长度逐渐增加。根据电阻值计算公式R=ρ(l/S)可知(式中ρ代表引线12的材质,l代表引线12的长度,S代表引线12的横截面积),位于扇形两端的引线12的阻值大于位于扇形中间的引线12的阻值。因此,位于扇形导线两端的引线12传输的源驱动信号的衰减现象较为严重,导致两端引线12上传输的源驱动信号的波形严重失真。即从两端的引线12输出端输出的源驱动信号的强度比从中间的引线12输出端输出的源驱动信号的强度弱。
复用器13与多条引线12连接,复用器13用于将每条引线12所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条引线12所传输来的不同强度的源驱动信号进行调整,以使源驱动信号以相同的强度进入多条数据线上。
具体而言,引线12的输出端连接在复用器13上,中间至两端的引线12输出的源驱动信号的强度不同,该强度不同的源驱动信号输入复用器13之后,复用器13将该源驱动信号进行调整,将其强度调整为相同,再将每条引线12输送而来的源驱动信号传输至多条数据线上。
区别于现有技术,本发明在引线12输出端连接复用器13,通过复用器13对引线12传输来的不同强度的源驱动信号进行调整,使得改源驱动信号的强度调整至相同,即对源驱动信号在引线12内的不同衰减程度进行了平衡,然后再传输至多条数据线上,从而使得进入数据线内的源驱动信号的强度是一致的,因而确保了数据线内的源驱动信号的均匀性,进而提升了中小尺寸面板画面显示的均一性,改善了显示效果。
具体而言,本实施例的复用器13包括并排设置的多个开关组131,每条引线12均连接在一个开关组131上。
每个开关组131均包括多个并排设置的TFT开关1311,其中,本实施例的TFT开关1311为NTFT开关。例如,在本实施例中,每个开关组131均包括三个并排设置的TFT开关1311,当然,在其它实施例中,每个开关组131还可以包括两个、四个、五个或者更多个并排设置的TFT开关1311。此外,在本实施例中,每个开关组131内的TFT开关1311的数量相同。可以理解的是,在其它实施例中,每个开关组131所包括的TFT开关1311的数量也可以不同。
每个TFT开关1311均连接到显示面板上的一条数据线上,以使每条引线12上的源驱动信号输送至多条数据线上。
每个开关组131内的TFT开关1311的导电能力相同,从并排设置的多个开关组131的中间至两端,开关组131的导电能力逐渐增强,以使进入显示面板的每条数据线的源驱动信号的强度相同。
举例而言,图2中左边第一个开关组131内的三个TFT开关1311的导电能力相同,图2中左边第二个开关组131内的三个TFT开关1311的导电能力也相同,但是左边第一个开关组131内的三个TF开关1311的导电能力均比左边第二个开关组131内的三个TFT开关1311的导电能力强。
由于源驱动信号进过引线12后,从并列分布的引线12的中间至两端,源驱动信号的强度逐渐减弱,当该源驱动信号进入复用器13后,由于从并列设置的开关组131的中间至两端,开关组131的导电能力逐渐增强,两端的导电能力的增强平衡并弥补了源驱动信号在引线12内的失真,从而使得从复用器13输出的源驱动信号强度一致。
本实施例中,从并排设置的多个开关组131的中间至两端,开关组131的导电能力逐渐增强通过TFT开关的沟道的宽/长比值来实现,具体表现为从并排设置的多个开关组131的中间至两端,开关组131的TFT开关1311的沟道的宽/长比值逐渐增大。
可以理解的,TFT开关包括栅极、源极、漏极和沟道,沟道连接源极和漏极,沟道在源极和漏极之间的距离即沟道的长(L),与源极和漏极位于同一平面上且与源极和漏极的连线垂直的方向上的宽度即沟道的宽(W),沟道的宽/长(W/L)比值大,则导电能力强,宽/长(W/L)比值小,则导电能力弱。
本实施例中,增大了两端的TFT开关1311的宽/长值,提高了两端的TFT开关1311的导电能力,使得两端的信号失真较小,中间的信号失真较大,而在引线12中,两端的信号失真较大,中间的信号失真较小,从而使得信号失真得到平衡。
如图3所示,图3是本发明的显示面板驱动装置中的TFT开关的沟道的宽/长比值与像素的充电效率的关系图。从图3可以看出,随着显示面板驱动装置中的TFT开关的沟道的宽/长比值的逐渐增大,像素的充电效率逐渐提高。
宽/长比值的变化可以通过以下两种方式实现:
在一个实施例中,多个开关组131的TFT开关1311的沟道的长均相同,从并排设置的多个开关组131的中间至两端,开关组131的TFT开关1311的沟道的宽逐渐增大。
在另一个实施例中,多个开关组131的TFT开关1311的沟道的宽相同,从并排设置的多个开关组131的中间至两端,开关组131的TFT开关1311的沟道的长逐渐减小。
具体地,在本实施例中,从并排设置的多个开关组131的中间至两端,开关组131的导电能力呈线性递增。
如图4和图5所示,图4是本发明显示装置的结构示意图。图5是图4中A区域的放大结构示意图。
本发明还提供了一种显示装置,该显示装置包括显示面板30和显示面板驱动装置31,该显示面板驱动装置31为上述任一实施例的显示面板驱动装置31。
例如,该显示面板驱动装置31包括源驱动芯片311、多条引线312以及复用器313。
其中,源驱动芯片311包括并排设置的多个源驱动信号输出接口3111,用于发出源驱动信号。
多条引线312呈扇形分布,每条引线312均连接在一个源驱动信号输出接口3111上,从并排设置的多条引线312的中间到两端,引线312的长度逐渐增加。
具体地,由于源驱动芯片311上的源驱动信号输出接口3111并排设置,并且每条引线312均连接在一个源驱动信号输出接口3111上,因而多条引线312与源驱动信号输出接口3111的连接处也并排分布。
多条引线312采用相同的材料制成,并且多条引线312的横截面积相同,而由于多条引线呈扇形分布,因而两端的引线312的长度大于中间的引线312的长度,即从并排设置的多条引线312的中间到两端,引线312的长度逐渐增加。根据电阻值计算公式R=ρ(l/S)可知(式中ρ代表引线312的材质,l代表引线312的长度,S代表引线312的横截面积),位于扇形两端的引线312的阻值大于位于扇形中间的引线312的阻值。因此,位于扇形导线两端的引线312传输的源驱动信号的衰减现象较为严重,导致两端引线312上传输的源驱动信号的波形严重失真。即从两端的引线312输出端输出的源驱动信号的强度比从中间的引线312输出端输出的源驱动信号的强度弱。
复用器313与多条引线312连接,复用器313用于将每条引线312所传输的源驱动信号传输至显示面板30的多条数据线上,同时用于对每条引线312所传输来的不同强度的源驱动信号进行调整,以使源驱动信号以相同的强度进入多条数据线上。
具体而言,引线312的输出端连接在复用器313上,中间至两端的引线312输出的源驱动信号的强度不同,该强度不同的源驱动信号输入复用器313之后,复用器313将该源驱动信号进行调整,将其强度调整为相同,再将每条引线312输送而来的源驱动信号传输至多条数据线上。
具体而言,本实施例的复用器313包括并排设置的多个开关组3131,每条引线312均连接在一个开关组3131上。
每个开关组3131均包括多个并排设置的TFT开关31311,其中,本实施例的TFT开关31311为NTFT开关。例如,在本实施例中,每个开关组131均包括三个并排设置的TFT开关31311,当然,在其它实施例中,每个开关组131还可以包括两个、四个、五个或者更多个并排设置的TFT开关31311。此外,在本实施例中,每个开关组131内的TFT开关31311的数量相同。可以理解的是,在其它实施例中,每个开关组3131所包括的TFT开关31311的数量也可以不同。
每个TFT开关31311均连接到显示面板30上的一条数据线上,以使每条引线312上的源驱动信号输送至多条数据线上。
每个开关组3131内的TFT开关31311的导电能力相同,从并排设置的多个开关组3131的中间至两端,开关组3131的导电能力逐渐增强,以使进入显示面板30的每条数据线的源驱动信号的强度相同。
由于源驱动信号进过引线312后,从并列分布的引线312的中间至两端,源驱动信号的强度逐渐减弱,当该源驱动信号进入复用器313后,由于从并列设置的开关组3131的中间至两端,开关组3131的导电能力逐渐增强,两端的导电能力的增强平衡并弥补了源驱动信号在引线312内的失真,从而使得从复用器313输出的源驱动信号强度一致。
本实施例中,从并排设置的多个开关组3131的中间至两端,开关组3131的导电能力逐渐增强通过TFT开关的沟道的宽/长比值来实现,具体表现为从并排设置的多个开关组3131的中间至两端,开关组3131的TFT开关31311的沟道的宽/长比值逐渐增大。
本实施例中,增大了两端的TFT开关31311的宽/长值,提高了两端的TFT开关31311的导电能力,使得两端的信号失真较小,中间的信号失真较大,而在引线312中,两端的信号失真较大,中间的信号失真较小,从而使得信号失真得到平衡。
综上所述,本发明能提升中小尺寸面板画面显示的均一性,改善显示效果。
以上所述仅为本发明的实施方式,并非因此限制本发明的专利范围,凡是利用本发明说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本发明的专利保护范围内。
Claims (19)
- 一种显示面板驱动装置,其中,包括:源驱动芯片,包括并排设置的多个源驱动信号输出接口,用于发出源驱动信号;多条引线,所述多条引线呈扇形分布,每条所述引线均连接在一个源驱动信号输出接口上,从并排设置的多条引线的中间到两端,所述引线的长度逐渐增加;复用器,与所述多条引线连接,所述复用器用于将每条所述引线所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条所述引线所传输来的不同强度的源驱动信号进行调整,以使所述源驱动信号以相同的强度进入所述多条数据线上;所述复用器包括并排设置的多个开关组,每条引线均连接在一个所述开关组上;每个所述开关组均包括多个并排设置的TFT开关,每个所述TFT开关均连接到所述显示面板上的一条数据线上,以使每条引线上的源驱动信号输送至多条所述数据线上;每个所述开关组内的所述TFT开关的导电能力相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽/长比值逐渐增大,所述开关组的导电能力逐渐呈线性递增,以使进入所述显示面板的每条所述数据线的源驱动信号的强度相同。
- 一种显示面板驱动装置,其中,包括:源驱动芯片,包括并排设置的多个源驱动信号输出接口,用于发出源驱动信号;多条引线,所述多条引线呈扇形分布,每条所述引线均连接在一个源驱动信号输出接口上,从并排设置的多条引线的中间到两端,所述引线的长度逐渐增加;复用器,与所述多条引线连接,所述复用器用于将每条所述引线所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条所述引线所传输来的不同强度的源驱动信号进行调整,以使所述源驱动信号以相同的强度进入所述多条数据线上。
- 根据权利要求2所述的显示面板驱动装置,其中,所述复用器包括并排设置的多个开关组,每条引线均连接在一个所述开关组上;每个所述开关组均包括多个并排设置的TFT开关,每个所述TFT开关均连接到所述显示面板上的一条数据线上,以使每条引线上的源驱动信号输送至多条所述数据线上;每个所述开关组内的所述TFT开关的导电能力相同,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力逐渐增强,以使进入所述显示面板的每条所述数据线的源驱动信号的强度相同。
- 根据权利要求3所述的显示面板驱动装置,其中,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽/长比值逐渐增大。
- 根据权利要求4所述的显示面板驱动装置,其中,所述多个开关组的TFT开关的沟道的长均相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽逐渐增大。
- 根据权利要求4所述的显示面板驱动装置,其中,所述多个开关组的TFT开关的沟道的宽相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的长逐渐减小。
- 根据权利要求3所述的显示面板驱动装置,其中,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力呈线性递增。
- 根据权利要求7所述的显示面板驱动装置,其中,每个所述开关组内的TFT开关的数量相同。
- 根据权利要求8所述的显示面板驱动装置,其中,每个所述开关组包括三个所述TFT开关。
- 根据权利要求9所述的显示面板驱动装置,其中,所述TFT开关为NTFT开关。
- 一种显示装置,其中,包括:显示面板和显示面板驱动装置,所述显示面板驱动装置包括:源驱动芯片,包括并排设置的多个源驱动信号输出接口,用于发出源驱动信号;多条引线,所述多条引线呈扇形分布,每条所述引线均连接在一个源驱动信号输出接口上,从并排设置的多条引线的中间到两端,所述引线的长度逐渐增加;复用器,与所述多条引线连接,所述复用器用于将每条所述引线所传输的源驱动信号传输至显示面板的多条数据线上,同时用于对每条所述引线所传输来的不同强度的源驱动信号进行调整,以使所述源驱动信号以相同的强度进入所述多条数据线上。
- 根据权利要求11所述的显示装置,其中,所述复用器包括并排设置的多个开关组,每条引线均连接在一个所述开关组上;每个所述开关组均包括多个并排设置的TFT开关,每个所述TFT开关均连接到所述显示面板上的一条数据线上,以使每条引线上的源驱动信号输送至多条所述数据线上;每个所述开关组内的所述TFT开关的导电能力相同,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力逐渐增强,以使进入所述显示面板的每条所述数据线的源驱动信号的强度相同。
- 根据权利要求12所述的显示装置,其中,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽/长比值逐渐增大。
- 根据权利要求13所述的显示装置,其中,所述多个开关组的TFT开关的沟道的长均相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的宽逐渐增大。
- 根据权利要求13所述的显示装置,其中,所述多个开关组的TFT开关的沟道的宽相同,从并排设置的多个所述开关组的中间至两端,所述开关组的TFT开关的沟道的长逐渐减小。
- 根据权利要求12所述的显示装置,其中,从并排设置的多个所述开关组的中间至两端,所述开关组的导电能力呈线性递增。
- 根据权利要求16所述的显示装置,其中,每个所述开关组内的TFT开关的数量相同。
- 根据权利要求17所述的显示装置,其中,每个所述开关组包括三个所述TFT开关。
- 根据权利要求18所述的显示装置,其中,所述TFT开关为NTFT开关。
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| CN109584802B (zh) * | 2019-01-04 | 2021-09-21 | 京东方科技集团股份有限公司 | 一种驱动电路及其工作方法、显示装置 |
| TWI710838B (zh) * | 2019-10-02 | 2020-11-21 | 友達光電股份有限公司 | 畫素陣列基板 |
| CN111081750B (zh) * | 2019-12-31 | 2022-05-17 | 厦门天马微电子有限公司 | 一种显示面板和显示装置 |
| CN115100991B (zh) * | 2022-06-27 | 2025-07-25 | 昆山国显光电有限公司 | 一种显示面板的亮度补偿方法、装置及显示设备 |
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