WO2020224054A1 - 画面调节装置 - Google Patents

画面调节装置 Download PDF

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Publication number
WO2020224054A1
WO2020224054A1 PCT/CN2019/096498 CN2019096498W WO2020224054A1 WO 2020224054 A1 WO2020224054 A1 WO 2020224054A1 CN 2019096498 W CN2019096498 W CN 2019096498W WO 2020224054 A1 WO2020224054 A1 WO 2020224054A1
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WIPO (PCT)
Prior art keywords
control unit
unit
gamma voltage
voltage
conversion
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PCT/CN2019/096498
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English (en)
French (fr)
Inventor
彭乐立
彭威臣
饶洋
Original Assignee
深圳市华星光电半导体显示技术有限公司
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Publication of WO2020224054A1 publication Critical patent/WO2020224054A1/zh

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    • 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
    • G09G3/34Control 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 by control of light from an independent source
    • G09G3/36Control 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 by control of light from an independent source using liquid crystals
    • G09G3/3611Control of matrices with row and column drivers
    • G09G3/3696Generation of voltages supplied to electrode drivers
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/02Improving the quality of display appearance
    • G09G2320/0271Adjustment of the gradation levels within the range of the gradation scale, e.g. by redistribution or clipping
    • G09G2320/0276Adjustment of the gradation levels within the range of the gradation scale, e.g. by redistribution or clipping for the purpose of adaptation to the characteristics of a display device, i.e. gamma correction
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09GARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
    • G09G2320/00Control of display operating conditions
    • G09G2320/06Adjustment of display parameters
    • G09G2320/0673Adjustment of display parameters for control of gamma adjustment, e.g. selecting another gamma curve

Definitions

  • the present disclosure relates to the field of display technology, and in particular to a picture adjusting device.
  • liquid crystal display Liquid Crystal Diode, LCD
  • LCD liquid Crystal Diode
  • the red, blue, and green electro-optical colors of the display screen will be coordinated separately to achieve the best display effect.
  • the driving circuit module the control circuit module, and the adjustment circuit.
  • the modules complement each other and coordinate their roles together.
  • the pixels of the screen are scanned, they will encounter the situation that the 12V power supply is powered off and then re-powered. At this time, if the backlight is not turned off, horizontal bright lines will appear on the display screen. And with the trend of the existing high frame rate panels, the mismatch between the response voltage and the driver is likely to cause abnormal display screens.
  • the present disclosure provides a picture adjustment device to solve the problem that the gamma voltage drops too fast in the prior art, and the voltage difference between the screen output voltage and the liquid crystal molecule deflection voltage is too large, and the picture is displayed Abnormal, poor display effect and other issues.
  • a picture adjustment device including:
  • Adjustment control unit conversion voltage stabilization unit, programmable gamma voltage control unit, capacitor unit; among them,
  • the adjustment control unit is electrically connected to the conversion voltage stabilization unit, the adjustment control unit is configured to receive a level signal, and encode the received level signal to generate encoded data, and the adjustment control unit is configured to Sending the encoded data to the conversion stabilizing unit;
  • the conversion and voltage stabilization unit is electrically connected to the programmable gamma voltage control unit, and the conversion and voltage stabilization unit is used to convert the received encoded data into a digital signal, and send the converted digital signal to the Programmable gamma voltage control unit;
  • the programmable gamma voltage control unit is electrically connected to the capacitance unit, the programmable gamma voltage control unit generates gamma data according to the received digital signal, and generates a corresponding gamma voltage, the programmable gamma voltage
  • the Gamma voltage control unit sends the gamma voltage to the capacitance unit;
  • the capacitance unit adjusts the size of the capacitance according to the received gamma voltage
  • the conversion voltage stabilizing unit further includes a voltage stabilizing chip, and the capacitor unit includes at least one capacitor and at least one resistor.
  • the adjustment control unit, the conversion stabilization unit, and the gamma voltage control unit are arranged in the same area of the picture adjustment device.
  • the adjustment control unit, the conversion stabilization unit, the programmable gamma voltage control unit, and the capacitance unit are arranged in the same area of the image adjustment device.
  • an integrated chip is further included, and the adjustment control unit, the conversion and voltage stabilization unit, and the programmable gamma voltage control unit are arranged in the integrated chip.
  • an integrated chip is further included, and the adjustment control unit, the conversion and voltage stabilization unit, the programmable gamma voltage control unit and the capacitance unit are arranged in the integrated chip.
  • the adjustment control unit further includes a control chip.
  • the programmable gamma voltage control unit further includes a programmable gamma circuit chip.
  • the programmable gamma voltage control unit sends the gamma voltage to the programmable gamma circuit chip.
  • a picture adjustment device including:
  • Adjustment control unit conversion voltage stabilization unit, programmable gamma voltage control unit, capacitor unit; among them,
  • the adjustment control unit is electrically connected to the conversion voltage stabilization unit, the adjustment control unit is configured to receive a level signal, and encode the received level signal to generate encoded data, and the adjustment control unit is configured to Sending the encoded data to the conversion stabilizing unit;
  • the conversion and voltage stabilization unit is electrically connected to the programmable gamma voltage control unit, and the conversion and voltage stabilization unit is used to convert the received encoded data into a digital signal, and send the converted digital signal to the Programmable gamma voltage control unit;
  • the programmable gamma voltage control unit is electrically connected to the capacitance unit, the programmable gamma voltage control unit generates gamma data according to the received digital signal, and generates a corresponding gamma voltage, the programmable gamma voltage
  • the Gamma voltage control unit sends the gamma voltage to the capacitance unit;
  • the capacitance unit adjusts the size of the capacitance according to the received gamma voltage.
  • the adjustment control unit, the conversion stabilization unit, and the gamma voltage control unit are arranged in the same area of the picture adjustment device.
  • the adjustment control unit, the conversion stabilization unit, the programmable gamma voltage control unit, and the capacitance unit are arranged in the same area of the image adjustment device.
  • an integrated chip is further included, and the adjustment control unit, the conversion and voltage stabilization unit, and the programmable gamma voltage control unit are arranged in the integrated chip.
  • an integrated chip is further included, and the adjustment control unit, the conversion and voltage stabilization unit, the programmable gamma voltage control unit and the capacitance unit are arranged in the integrated chip.
  • the adjustment control unit further includes a control chip.
  • the conversion voltage stabilizing unit further includes a voltage stabilizing chip.
  • the programmable gamma voltage control unit further includes a programmable gamma circuit chip.
  • the programmable gamma voltage sends the gamma voltage to the programmable gamma circuit chip.
  • the capacitor unit includes at least one capacitor and at least one resistor.
  • the picture adjustment device in the existing display equipment is improved.
  • the new integrated chip has the original chip All functions, and the picture adjustment device of the present invention can reduce the problem of excessively rapid gamma voltage drop, so that the voltage difference between the screen output voltage and the liquid crystal molecule deflection voltage VCOM is reduced, while reducing the brightness of the screen and improving the display effect .
  • FIG. 1 is a schematic diagram of a display device according to an embodiment of the disclosure
  • Figure 2 is a graph showing the output voltage of a traditional screen and the deflection voltage of liquid crystal molecules
  • FIG. 3 is a schematic diagram of a capacitor unit according to an embodiment of the disclosure.
  • FIG. 4 is a graph showing changes in the output voltage of the screen and the deflection voltage of liquid crystal molecules in an embodiment of the disclosure.
  • the embodiment of the present disclosure provides a picture adjustment device.
  • the picture adjustment device of the embodiment of the present disclosure includes an integrated chip 100, an adjustment control unit (PWM) 101, a control chip 101a, and a level shifter. 102.
  • the control chip 101a is arranged in the PWM 101, the voltage stabilizing chip 102a is arranged in the conversion stabilizing unit 102, and the programmable gamma circuit chip 103a is arranged in the programmable gamma voltage control unit In 103, the adjustment control unit 101 is electrically connected to the conversion and voltage stabilization unit 102, and the conversion and voltage stabilization unit 102 is electrically connected to the programmable gamma voltage control unit 103, the programmable gamma voltage control unit 103, and the capacitor unit 104.
  • the PWM 101, the conversion and stabilization unit 102, the programmable gamma voltage control unit 103, and the capacitor unit 104 are arranged in the area of the integrated chip 100.
  • the adjustment control unit 101, the conversion and voltage stabilization unit 102 and the programmable gamma voltage control unit 103 are respectively arranged on different areas, each area is far away from each other, and the functions of each part are relative. Independent, so that when the various parts work together, especially in the process of use, when the 12V power supply is powered off and the backlight is turned off, the high-level voltage VAA in the control unit 101 and the programmable The gamma voltage in the gamma voltage unit 103 will decrease. Due to the separation of the above control components, the high-level voltage VAA and the gamma voltage have different decreasing speeds. As shown in Figure 2, Figure 2 shows the screen output voltage and the deflection of liquid crystal molecules. Voltage change line.
  • the screen output voltage out2 and the liquid crystal molecule deflection voltage VCOM are very different. Because the screen output voltage out2 drops quickly in a short period of time, the liquid crystal molecule deflection voltage VCOM drops slowly. When both of them finally stabilize, they The voltage difference between the output voltage of the screen and the deflection voltage VCOM of the liquid crystal molecules is too large, and the abnormal condition of bright lines on the display screen appears, which affects the display effect.
  • the adjustment control unit 101, the conversion and voltage stabilization unit 102, and the programmable gamma voltage control unit 103 are integrated into an integrated chip 100.
  • the adjustment control unit 101 receives an external level signal, encodes the received level signal, and after encoding, sends the encoded data to the conversion stabilization unit 102; the conversion stabilization unit 102 receives the encoded data Then, the received coded data is converted into a digital signal, and the converted digital signal is sent to the programmable gamma voltage control unit 103; when the programmable gamma voltage control unit 103 receives the converted digital signal, The gamma voltage control unit 103 then generates the gamma data and generates the corresponding gamma voltage; finally, the programmable gamma voltage control unit 103 transmits the gamma voltage to the subsequent capacitor unit 104, so that the The entire transmission and control process is completed in the integrated chip.
  • the adjustment control unit 101 also includes a control chip 101a, the control chip 101a is electrically connected to the adjustment control unit 101, and the control chip 101a is used to receive the signal received by the control unit 101 and process the encoded data;
  • the conversion and voltage stabilization unit 102 also includes a voltage stabilization chip 102a, which is electrically connected to the conversion voltage stabilization unit 102, and the voltage stabilization chip 102a receives the coded data sent by the conversion voltage stabilization unit 102, and processes the coded data into Digital signals are stored;
  • the programmable gamma unit 103 also includes a programmable gamma circuit chip 103a, the programmable gamma circuit chip 103a is electrically connected to the codeable gamma voltage control unit 103, and the codeable gamma
  • the circuit chip 103a receives the gamma signal sent by the programmable gamma voltage control unit 103, and processes the gamma signal.
  • a capacitor unit 104 is also connected after the
  • the adjustment control unit 101, the conversion stabilization unit 102, and the gamma voltage control unit 103 are arranged in the same area of the same picture adjustment device.
  • the adjustment control unit 101, the conversion and voltage stabilization unit 102, the programmable gamma voltage control unit 103, and the capacitance unit 104 are arranged in the same area of the same image adjustment device.
  • FIG. 3 shows a capacitor unit, a resistor 300 and a capacitor 301. At least one resistor 300 and at least one capacitor 301 are included in the capacitor unit 104, and the capacitor and the resistor are connected in series.
  • the capacitance unit 104 can automatically adjust the size according to the received gamma voltage. In actual operation, the discharge speed of the liquid crystal molecule deflection voltage VCOM can be adjusted by adjusting the size of the resistor 104. When the discharge speed of the liquid crystal deflection voltage VCOM is increased, The voltage difference between the screen output voltage and VCOM will also be reduced, thereby reducing the picture abnormalities.
  • FIG. 4 is a graph showing changes in the screen output voltage and the deflection voltage of liquid crystal molecules in the embodiment of the disclosure.
  • Screen output voltage out1, out2, liquid crystal molecule deflection voltage VCOM because the chip of each control unit is integrated in a new chip, the interaction of each unit will be more effective, the rate of decrease of gamma voltage will decrease, and finally stabilize Later, the voltage difference between the screen output voltage out1 and the liquid crystal molecule deflection voltage VCOM will be reduced, even if there is no voltage difference. The pressure difference is reduced to solve the abnormal picture.
  • the present disclosure integrates multiple control chips into one chip, it is more conducive to reducing the complexity of the peripheral circuit of the circuit board and saving the manufacturing cost.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • Physics & Mathematics (AREA)
  • Computer Hardware Design (AREA)
  • General Physics & Mathematics (AREA)
  • Theoretical Computer Science (AREA)
  • Liquid Crystal Display Device Control (AREA)
  • Control Of Indicators Other Than Cathode Ray Tubes (AREA)

Abstract

一种画面调节装置,包括调节控制单元(101)、转换稳压单元(102)、可编程伽玛电压控制单元(103)、电容单元(104),各单元对接收到的信号进行处理,并且将控制芯片(101a)、稳压芯片(102a)以及可编程伽玛电压芯片(103a)集成在一个新的芯片内,以减小伽玛电压的下降速度,减小屏幕输出电压和液晶分子偏转电压的压差,减小画面异常,节约成本。

Description

画面调节装置 技术领域
本揭示涉及显示技术领域,尤其涉及一种画面调节装置。
背景技术
随着液晶显示器(Liquid Crystal Diode, LCD)显示技术的不断发展,人们对显示器显示质量的要求越来越高。如何使人眼的视觉效果达到最佳,成为越来越多的厂商所热衷的研究领域。
屏幕在正常工作时,显示屏幕的红蓝绿三色电光会各自进行协调处理,以达到最佳的显示效果。在整个发光过程中,是由驱动电路模块、控制电路模块、调节电路等各模块综合作用的结果。各模块之间相辅相成,共同协调作用。屏幕的像素在进行扫描时,会遇到12V的电源掉电之后又重新上电的情况,此时若果背光未关闭,显示画面就会出现横向的亮线。并且随着现有高帧率面板的趋势,响应电压和驱动程序之间的不匹配性容易造成显示画面异常,同时,响应程序的响应也会越来越快,但是响应的越快,伽马(gamma)电压的下降会很快,屏幕输出电压和液晶分子偏转电压(VCOM)之间压差过大,这样显示画面也很容易出现亮线,从而影响显示效果。
技术问题
现有的显示屏幕各模块相互作用时,gamma电压下降过快,屏幕输出电压和液晶分子偏转电压VCOM之间压差过大,导致屏幕出现亮线,显示效果差等问题
技术解决方案
本揭示提供的一种本揭示提供一种画面调节装置,以解决现有技术水平中伽马(gamma)电压下降过快,屏幕输出电压和液晶分子偏转电压之间的压差过大,显示画面异常,显示效果差等问题。
为解决上述技术问题,本揭示实施例提供的技术方案如下:
根据本揭示实施例的第一方面,提供了一种画面调节装置,包括:
调节控制单元、转换稳压单元、可编程伽玛电压控制单元、电容单元;其中,
所述调节控制单元电连接所述转换稳压单元,所述调节控制单元用于接收电平信号,并将接收到的所述电平信号进行编码以产生编码数据,所述调节控制单元用于发送所述编码数据给所述转换稳压单元;
所述转换稳压单元电连接所述可编程伽玛电压控制单元,所述转换稳压单元用于将接收到的所述编码数据转换成数字信号,并将转换后的数字信号发送给所述可编程伽玛电压控制单元;
所述可编程伽玛电压控制单元电连接所述电容单元,所述可编程伽玛电压控制单元根据接收到的所述数字信号生成伽玛数据,产生相应的伽玛电压,所述可编程伽玛电压控制单元发送所述伽玛电压给所述电容单元;
所述电容单元根据接收到的所述伽玛电压来调节电容的大小;
所述转换稳压单元还包括稳压芯片,所述电容单元中包括至少一个电容和至少一个电阻。
根据本揭示一实施例,所述调节控制单元、所述转换稳压单元和所述伽玛电压控制单元设置在所述画面调节装置的同一区域内。
根据本揭示一实施例,所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述画面调节装置的同一区域内。
根据本揭示一实施例,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元和所述可编程伽玛电压控制单元设置在所述集成芯片内。
根据本揭示一实施例,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述集成芯片内。
根据本揭示一实施例,所述调节控制单元还包括控制芯片。
根据本揭示一实施例,所述可编程伽玛电压控制单元还包括可编程伽玛电路芯片。
根据本揭示一实施例,所述可编程伽玛电压控制单元发送所述伽玛电压给所述可编程伽玛电路芯片。
根据本揭示实施例的第二方面,提供了一种画面调节装置,包括:
调节控制单元、转换稳压单元、可编程伽玛电压控制单元、电容单元;其中,
所述调节控制单元电连接所述转换稳压单元,所述调节控制单元用于接收电平信号,并将接收到的所述电平信号进行编码以产生编码数据,所述调节控制单元用于发送所述编码数据给所述转换稳压单元;
所述转换稳压单元电连接所述可编程伽玛电压控制单元,所述转换稳压单元用于将接收到的所述编码数据转换成数字信号,并将转换后的数字信号发送给所述可编程伽玛电压控制单元;
所述可编程伽玛电压控制单元电连接所述电容单元,所述可编程伽玛电压控制单元根据接收到的所述数字信号生成伽玛数据,产生相应的伽玛电压,所述可编程伽玛电压控制单元发送所述伽玛电压给所述电容单元;
所述电容单元根据接收到的所述伽玛电压来调节电容的大小。
根据本揭示一实施例,所述调节控制单元、所述转换稳压单元和所述伽玛电压控制单元设置在所述画面调节装置的同一区域内。
根据本揭示一实施例,所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述画面调节装置的同一区域内。
根据本揭示一实施例,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元和所述可编程伽玛电压控制单元设置在所述集成芯片内。
根据本揭示一实施例,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述集成芯片内。
根据本揭示一实施例,所述调节控制单元还包括控制芯片。
根据本揭示一实施例,所述转换稳压单元还包括稳压芯片。
根据本揭示一实施例,所述可编程伽玛电压控制单元还包括可编程伽玛电路芯片。
根据本揭示一实施例,所述可编程伽玛电压发送所述伽玛电压给所述可编程伽玛电路芯片。
根据本揭示一实施例,所述电容单元中包括至少一个电容和至少一个电阻。
有益效果
综上所述,本揭示实施例的有益效果为:
对现有显示设备中的画面调节装置进行改进,通过将原先各自独立设置的调节控制单元、转换稳压单元、可编程伽玛电压控制单元集成在一个芯片上,新的集成芯片具有原芯片的所有功能,并且本发明的画面调节装置能够减小gamma电压下降过快的问题,使得屏幕输出电压和液晶分子偏转电压VCOM之间压差减小,同时减小屏幕亮线的情况,提高显示效果。
附图说明
图1为本揭示实施例的显示装置示意图;
图2为传统屏幕输出电压和液晶分子偏转电压变化图;
图3为本揭示实施例的电容单元示意图;
图4为本揭示实施例中屏幕输出电压和液晶分子偏转电压变化图。
本发明的最佳实施方式
以下各实施例的说明是参考附加的图式,用以例示本揭示可用以实施的特定实施例。
本揭示实施例提供一种画面调节装置,如图1所示,本揭示实施例的画面调节装置包括集成芯片100、调节控制单元(PWM)101、控制芯片101a、转换稳压单元(Level Shifter)102、稳压芯片102a、可编程伽玛(gamma)电压控制单元103、可编程伽玛电路芯片103a 以及电容单元104。所述控制芯片101a设置在所述PWM 101内,所述稳压芯片102a设置在所述转换稳压单元102内,所述可编程伽玛电路芯片103a设置在所述可编程伽玛电压控制单元103内,调节控制单元101电连接转换稳压单元102,转换稳压单元102电连接可编程伽玛电压控制单元103、可编程伽玛电压控制单元103与电容单元104。PWM 101、转换稳压单元102、可编程伽玛电压控制单元103以及电容单元104设置在集成芯片100区域内。
在传统的显示装置电路内,调节控制单元101、转换稳压单元102和可编程伽玛电压控制单元103是分别设置在不同的区域上的,各区域彼此相距较远,同时各部位的功能相对独立,这样当各部位进行协同工作时,尤其是在使用过程中,遇到12V电源掉电后又上电,而背光又为关闭时,调节控制单元101内的高电平电压VAA以及可编程伽玛电压单元103内的gamma电压都会下降,由于上述控制部件的彼此分立,使得高电平电压VAA    和gamma电压的下降速度不同,如图2所示,图2为屏幕输出电压和液晶分子偏转电压变化线。其中,屏幕输出电压out2、液晶分子偏转电压VCOM,由于在短时间内,屏幕输出电压out2的下降速度很快,液晶分子偏转电压VCOM下降速度较慢,当两者最后都趋于稳定后,就产生了屏幕输出电压和液晶分子偏转电压VCOM之间压差过大,并导致显示屏幕上出现画面亮线的异常情况,进而影响了显示效果。
而本揭示画面调节装置实施例中,通过将调节控制单元101、转换稳压单元102以及可编程伽玛电压控制单元103集成在一个集成芯片100内。所述调节控制单元101接收外界的电平信号,并将接收到的电平信号进行编码,编码后,将编码的数据发送给所述转换稳压单元102;转换稳压单元102接收到编码数据后,将接收到的编码数据转换成数字信号,并将转换后的数字信号发送给可编程伽玛电压控制单元103;当所述可编程伽玛电压控制单元103接收到转换的数字信号后,伽玛电压控制单元103再生成伽玛数据,并产生相应的伽玛电压;最后,可编程伽玛电压控制单元103将所述伽玛电压再传输到后续的电容单元104中,从而在一个新的集成芯片内就完成了整个传输与控制过程。
在所述调节控制单元101内还包括控制芯片101a,所述控制芯片101a电连接所述调节控制单元101,控制芯片101a用于接收控制单元101接收到的信号,并处理编码数据;在所述转换稳压单元102内还包括稳压芯片102a,所述稳压芯片102a电连接所述转换稳压单元102,稳压芯片102a接收转换稳压单元102发送的编码数据,并将编码数据处理成数字信号并存储;在所述可编程伽玛单元103内还包括可编程伽玛电路芯片103a,所述可编程伽玛电路芯片103a电连接所述可编码伽玛电压控制单元103,可编码伽玛电路芯片103a接收可编程伽玛电压控制单元103发送的伽玛信号,并对伽玛信号进行处理。在可编程伽玛电压控制单元103后还接有电容单元104。
所述调节控制单元101、所述转换稳压单元102和所述伽玛电压控制单元103设置在同一画面调节装置的同一区域内。
或所述调节控制单元101、所述转换稳压单元102、所述可编程伽玛电压控制单元103和所述电容单元104设置在同一画面调节装置的同一区域内。
如图3所示,图3为电容单元,电阻300以及电容301。在所述电容单元104内包含有至少一个电阻300与至少一个电容301,所述电容与电阻串联在一起。所述电容单元104可以根据接收的gamma电压来自动调节大小,在实际操作中,可以通过调节电阻104的大小来调节液晶分子偏转电压VCOM的放电速度,当提高液晶偏转电压VCOM的放电速度时,屏幕输出电压和VCOM之间的压差也会减小,进而减小画面异常的情况。
如图4所示,图4为本揭示实施例中屏幕输出电压和液晶分子偏转电压变化图。屏幕输出电压out1、out2,液晶分子偏转电压VCOM,由于个控制单元的芯片集成在一个新的芯片内,各单元相互作用会更有效,gamma电压的下降速度就会减小,当最后趋于稳定后,屏幕输出电压out1与液晶分子偏转电压VCOM之间的压差会减小,甚至无压差的情况。压差减小进而解决画面异常的情况。
同时,由于本揭示将多个控制芯片集成在一个芯片内,更加有利于降低电路板外围电路的复杂性,并且节约了制造成本。
以上对本揭示实施例所提供的一种画面调节装置进行了详细介绍,以上实施例的说明只是用于帮助理解本揭示的技术方案及其核心思想;本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,而这些修改或者替换,并不使相应技术方案的本质脱离本揭示各实施例的技术方案的范围。

Claims (18)

  1. 一种画面调节装置,包括:
    调节控制单元、转换稳压单元、可编程伽玛电压控制单元、电容单元;其中,
    所述调节控制单元电连接所述转换稳压单元,所述调节控制单元用于接收电平信号,并将接收到的所述电平信号进行编码以产生编码数据,所述调节控制单元用于发送所述编码数据给所述转换稳压单元;
    所述转换稳压单元电连接所述可编程伽玛电压控制单元,所述转换稳压单元用于将接收到的所述编码数据转换成数字信号,并将转换后的数字信号发送给所述可编程伽玛电压控制单元;
    所述可编程伽玛电压控制单元电连接所述电容单元,所述可编程伽玛电压控制单元根据接收到的所述数字信号生成伽玛数据,产生相应的伽玛电压,所述可编程伽玛电压控制单元发送所述伽玛电压给所述电容单元;
    所述电容单元根据接收到的所述伽玛电压来调节电容的大小;
    所述转换稳压单元还包括稳压芯片,所述电容单元中包括至少一个电容和至少一个电阻。
  2. 根据权利要求1所述的画面调节装置,其中所述调节控制单元、所述转换稳压单元和所述伽玛电压控制单元设置在所述画面调节装置的同一区域内。
  3. 根据权利要求1所述的画面调节装置,其中所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述画面调节装置的同一区域内。
  4. 根据权利要求1所述的画面调节装置,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元和所述可编程伽玛电压控制单元设置在所述集成芯片内。
  5. 根据权利要求1所述的画面调节装置,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述集成芯片内。
  6. 根据权利要求1所述的画面调节装置,其中所述调节控制单元还包括控制芯片。
  7. 根据权利要求1所述的画面调节装置,其中所述可编程伽玛电压控制单元还包括可编程伽玛电路芯片。
  8. 根据权利要求7所述的画面调节装置,其中所述可编程伽玛电压控制单元发送所述伽玛电压给所述可编程伽玛电路芯片。
  9. 一种画面调节装置,包括:
    调节控制单元、转换稳压单元、可编程伽玛电压控制单元、电容单元;其中,
    所述调节控制单元电连接所述转换稳压单元,所述调节控制单元用于接收电平信号,并将接收到的所述电平信号进行编码以产生编码数据,所述调节控制单元用于发送所述编码数据给所述转换稳压单元;
    所述转换稳压单元电连接所述可编程伽玛电压控制单元,所述转换稳压单元用于将接收到的所述编码数据转换成数字信号,并将转换后的数字信号发送给所述可编程伽玛电压控制单元;
    所述可编程伽玛电压控制单元电连接所述电容单元,所述可编程伽玛电压控制单元根据接收到的所述数字信号生成伽玛数据,产生相应的伽玛电压,所述可编程伽玛电压控制单元发送所述伽玛电压给所述电容单元;
    所述电容单元根据接收到的所述伽玛电压来调节电容的大小。
  10. 根据权利要求9所述的画面调节装置,其中所述调节控制单元、所述转换稳压单元和所述伽玛电压控制单元设置在所述画面调节装置的同一区域内。
  11. 根据权利要求9所述的画面调节装置,其中所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述画面调节装置的同一区域内。
  12. 根据权利要求9所述的画面调节装置,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元和所述可编程伽玛电压控制单元设置在所述集成芯片内。
  13. 根据权利要求9所述的画面调节装置,还包括一个集成芯片,所述调节控制单元、所述转换稳压单元、所述可编程伽玛电压控制单元和所述电容单元设置在所述集成芯片内。
  14. 根据权利要求9所述的画面调节装置,其中所述调节控制单元还包括控制芯片。
  15. 根据权利要求9所述的画面调节装置,其中所述转换稳压单元还包括稳压芯片。
  16. 根据权利要求9所述的画面调节装置,其中所述可编程伽玛电压控制单元还包括可编程伽玛电路芯片。
  17. 根据权利要求16所述的画面调节装置,其中所述可编程伽玛电压控制单元发送所述伽玛电压给所述可编程伽玛电路芯片。
  18. 根据权利要求9所述的画面调节装置,其中所述电容单元中包括至少一个电容和至少一个电阻。
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