WO2015143739A1 - 显示装置及其显示图像的方法 - Google Patents

显示装置及其显示图像的方法 Download PDF

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Publication number
WO2015143739A1
WO2015143739A1 PCT/CN2014/075060 CN2014075060W WO2015143739A1 WO 2015143739 A1 WO2015143739 A1 WO 2015143739A1 CN 2014075060 W CN2014075060 W CN 2014075060W WO 2015143739 A1 WO2015143739 A1 WO 2015143739A1
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WO
WIPO (PCT)
Prior art keywords
display device
switch
line
strip electrode
dimensional image
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PCT/CN2014/075060
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English (en)
French (fr)
Inventor
廖巧生
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深圳市华星光电技术有限公司
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Application filed by 深圳市华星光电技术有限公司 filed Critical 深圳市华星光电技术有限公司
Priority to US14/360,629 priority Critical patent/US9230466B2/en
Publication of WO2015143739A1 publication Critical patent/WO2015143739A1/zh

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    • 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
    • G02F1/1343Electrodes
    • 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
    • G02F1/136Liquid crystal cells structurally associated with a semi-conducting layer or substrate, e.g. cells forming part of an integrated circuit
    • G02F1/1362Active matrix addressed cells

Definitions

  • the present invention relates to the field of display technologies, and in particular, to a display device and a method of displaying an image thereof.
  • the Dimension, three-dimensional display device generally includes a display panel 11 and a lens plate 12, and the lens plate 12 and the display panel 11 are superimposed and integrated.
  • the lens plate 12 is configured to transmit light rays corresponding to the left eye image and the right eye image generated by the display panel 11 to the left eye and the right eye of the user, respectively.
  • the lens plate 12 includes at least two lenses 121, at least two of which are disposed side by side, and the line where the strip lens 121 is located is perpendicular to the pixel row 111 in the display panel 11, that is, The straight line where the strip lens 121 is located is parallel to the pixel column in the display panel 11.
  • the black matrix layer includes a plurality of spacer strips 112, the spacer strips 112 are parallel or perpendicular to the pixel rows 111, and a plurality of equally spaced spacer strips 112 form an array of spacer strips, the spacers
  • the structure of the strip array in the horizontal direction is periodically similar; in addition, a plurality of equally spaced strip lenses 121 of the lens plate 12 constitute a lens array, the lens array and the spacer array
  • the structures in the horizontal direction (the direction in which the pixel rows are located) are also periodically similar.
  • a display device comprising: a display panel comprising a thin film transistor array substrate, a color filter substrate and a liquid crystal layer, wherein the thin film transistor array substrate comprises: at least one pixel row unit, at least one The pixel row unit is arranged in an array, the pixel row unit includes: a first scan line; a second scan line; and at least one pixel unit, the pixel unit includes: a first pixel portion, the first pixel The portion includes a first switch and at least one first strip electrode, the first switch being connected to the first strip electrode, at least one of the first strip electrodes being in a direction parallel to the first scan line Arranging in an array form; and a second pixel portion including a second switch and at least one second strip electrode, the second switch being connected to the second strip electrode, at least one of the second Strip electrodes are arranged in an array in a direction parallel to the first scan line; wherein a first line where the first strip electrode is located and a second line where the second strip electrode is located The first scan line is connected to the first switch
  • the first included angle is in the range of 10 degrees to 80 degrees.
  • the first straight line and the connecting line have a second angle, and an absolute value of the second included angle is greater than or smaller than an absolute value of the first included angle.
  • the second straight line and the connecting line have a third angle, and an absolute value of the third included angle is greater than or smaller than an absolute value of the first included angle.
  • the first strip electrode and the strip lens are both inclined in the same direction.
  • the fourth angle between the first line where the first strip electrode is located and the third line where the strip lens is located is between 0 degrees and 60 degrees.
  • the fourth included angle is less than or equal to 45 degrees.
  • a display device comprising: a display panel comprising a thin film transistor array substrate, a color filter substrate and a liquid crystal layer, wherein the thin film transistor array substrate comprises: at least one pixel row unit, at least one of The pixel row unit is arranged in an array, the pixel row unit includes: a first scan line; a second scan line; and at least one pixel unit, the pixel unit includes: a first pixel portion, the first pixel portion
  • the first switch and the at least one first strip electrode are connected, the first switch is connected to the first strip electrode, and at least one of the first strip electrodes is arranged in an array parallel to the first scan line a second pixel portion, the second pixel portion including a second switch and at least one second strip electrode, the second switch being connected to the second strip electrode, at least one of the second strip
  • the electrodes are arranged in an array in a direction parallel to the first scan line; wherein a first line where the first strip electrode is located intersects a second line where the second strip electrode is located The first scan
  • the first switch is configured to turn on the first current channel when the display device is in a two-dimensional image display mode, so that two-dimensional image data is input into the first strip electrode;
  • the second switch is configured to turn on the second current channel when the display device is in the two-dimensional image display mode to input the two-dimensional image data into the second strip electrode.
  • the first switch is configured to turn off the first current channel when the display device is in a three-dimensional image display mode to prevent three-dimensional image data from being input into the first strip electrode;
  • the second switch is configured to turn on the second current channel when the display device is in the three-dimensional image display mode to input the three-dimensional image data into the second strip electrode.
  • the lens plate includes: a lens array, the lens array includes at least two lenses, at least two of the strip lenses are juxtaposed, and the straight line of the strip lens is opposite to the first The line connecting the pixel portion and the second pixel portion has a first angle.
  • the first included angle is in the range of 10 degrees to 80 degrees.
  • the first straight line and the connecting line have a second angle, and an absolute value of the second included angle is greater than or smaller than an absolute value of the first included angle.
  • the second straight line and the connecting line have a third angle, and an absolute value of the third included angle is greater than or smaller than an absolute value of the first included angle.
  • the first strip electrode and the strip lens are both inclined in the same direction.
  • the fourth angle between the first line where the first strip electrode is located and the third line where the strip lens is located is between 0 degrees and 60 degrees.
  • the fourth included angle is less than or equal to 45 degrees.
  • a method for displaying an image by the display device comprising: the first scan line transmitting a first scan signal to the first switch to control the between the first strip electrode and the data line Turning on or off the first current channel; and the second scan line transmitting a second scan signal to the second switch to control the second current between the second strip electrode and the data line
  • the channel is turned on or off.
  • the first switch turns on the first current channel when the display device is in a two-dimensional image display mode, so that the two-dimensional image data is input to the first strip In the electrode;
  • the second switch turns on the second current channel when the display device is in the two-dimensional image display mode, so that the two-dimensional image data is input into the second strip electrode.
  • the first switch turns off the first current channel when the display device is in a three-dimensional image display mode to prevent the three-dimensional image data from being input to the first strip electrode
  • the second switch turns on the second current channel when the display device is in the three-dimensional image display mode to input the three-dimensional image data into the second strip electrode.
  • the display device turns off one of the first pixel portion and the second pixel portion having the same tilt direction as the strip lens when in the three-dimensional image display mode, and turns on another one Therefore, the light transmitted through the thin film transistor array substrate and the lens plate does not cause optical interference, so when the display device is in the three-dimensional image display mode, the display device does not appear in the displayed image. Moiré improves the display quality of the display device.
  • 1 is a schematic structural view of a conventional 3D display device
  • FIG. 2 is a schematic structural view of a first embodiment of a display device of the present invention.
  • FIG. 3 is a schematic structural diagram of a pixel unit of the display device of FIG. 2;
  • FIG. 4 is a flow chart of a method for displaying an image of a display device of the present invention in a two-dimensional image display mode
  • FIG. 5 is a flow chart of a method for displaying an image of a display device of the present invention in a three-dimensional image display mode.
  • FIG. 2 is a schematic structural view of a first embodiment of a display device according to the present invention
  • FIG. 3 is a schematic structural view of a pixel unit 211 of the display device of FIG.
  • the display device of this embodiment includes a display panel 21 and a lens plate 22.
  • the lens plate 22 and the display panel 21 are superimposed and integrated.
  • the lens plate 22 is disposed on a side of the color filter substrate facing away from the liquid crystal layer.
  • the display panel 21 includes a thin film transistor array substrate, a color filter substrate, and a liquid crystal layer.
  • the thin film transistor array substrate and the color filter substrate are disposed in parallel, and the liquid crystal layer is disposed on the thin film transistor array substrate and Between the color filter substrates.
  • the thin film transistor array substrate includes at least two pixel row units and at least two data lines (214, 215). At least two pixel row units are arranged in the form of columns. At least two data lines (214, 215) are arranged in a row.
  • the pixel row unit includes at least one pixel unit 211, a first scan line 212, and a second scan line 213. In the same pixel row unit, at least one pixel unit 211 is arranged in a row form, and the first scan line 212 and the second scan line 213 are both connected to the pixel unit 211.
  • the data lines 214 are connected to the pixel units 211 in the same column.
  • the color filter substrate is provided with a black matrix layer, the black matrix layer includes at least two spacer strips, and the spacer strip is disposed at an edge of the pixel unit 211, and the line where the spacer strip is located is parallel or A line perpendicular to the line in which the pixel row unit is located, at least two of the spacer strips form an equally spaced array of spacer strips in a direction parallel or perpendicular to the line in which the pixel row unit is located.
  • the pixel unit 211 includes a first pixel portion 2111 and a second pixel portion 2112, and the first pixel portion 2111 and the second pixel portion 2112 are adjacent to each other.
  • the line connecting the first pixel portion 2111 and the second pixel portion 2112 is parallel or perpendicular to the line where the data line 214 is located. As shown in FIG. 2, the display device of this embodiment uses the first pixel portion.
  • the line connecting the 2111 and the second pixel portion 2112 is parallel to the line where the data line 214 is located as an example.
  • the first pixel portion 2111 includes a first switch and a first strip electrode 21111, and the first switch is connected to the first strip electrode 21111, the data line 214, and the first scan line 212.
  • At least one of the first strip electrodes is arranged in an array in a direction parallel to the first scan line 212.
  • the first scan line 212 is configured to send a first scan signal to the first switch to control opening or closing of a first current path between the first strip electrode 21111 and the data line 214.
  • the second pixel portion 2112 includes a second switch and a second strip electrode 21121, and the second switch is connected to the second strip electrode 21121, the data line 214, and the second scan line 213.
  • At least one of the second strip electrodes is arranged in an array in a direction parallel to the first scan line 212.
  • the first straight line where the first strip electrode is located intersects the second straight line where the second strip electrode is located, that is, the first straight line and the second straight line are not parallel.
  • the second scan line 213 is configured to send a second scan signal to the second switch to control opening or closing of the second current channel between the second strip electrode 21121 and the data line 214.
  • the first switch and the second switch may be in opposite states at the same time or in the same time period, that is, when the first switch is in an open state, the second switch is in a closed state.
  • the second switch is in an open state when the first switch is in a closed state.
  • the first switch and the second switch may each be a triode, for example, a thin film transistor (TFT, Thin) Film Transistor).
  • the lens plate 22 includes a lens array, the lens array includes at least two lenses 221, at least two of the strip lenses 221 are juxtaposed, and at least two of the strip lenses 221 are along the first Directional alignment, wherein the first direction is a direction perpendicular to a third line where the strip lens 221 is located, the third line where the strip lens 221 is located, and the first pixel portion 2111 and
  • the connection line of the second pixel portion 2112 has a first angle, and the first angle is in a range of 10 degrees to 80 degrees, for example, the first angle is 10 degrees, 14 degrees, 17 degrees, 19, 21, 23, 26, 29, 31, 34, 36, 38, 40, 43, 45, 47, 50, 52, 55 59 degrees, 62 degrees, 66 degrees, 67 degrees, 69 degrees, 71 degrees, 73 degrees, 76 degrees, 78 degrees, 80 degrees, and the like.
  • the spacing between any two adjacent strip lenses 221 is equal.
  • the structure of the lens array in the first direction is periodically similar.
  • the first straight line and the connecting line have a second angle, and an absolute value of the second angle is greater than or less than an absolute value of the first angle, the second straight line Having a third angle with the connecting line, an absolute value of the third angle is greater than or less than an absolute value of the first angle, and the second angle and the third angle are respectively positive angles / negative angle, negative angle / positive angle.
  • the second angle and the third angle are both in the range of 20 degrees to 70 degrees, for example, the second angle and the third angle are 20 degrees and -20 degrees, 23 degrees, respectively.
  • the first strip electrode and the strip lens have the same oblique direction, that is, the first strip electrode and the strip lens are both inclined in the same direction, specifically, a fourth angle between the first line where the first strip electrode is located and a third line where the strip lens is located is between 0 degrees and 60 degrees, preferably the fourth angle Less than or equal to 45 degrees.
  • the display device further includes a controller, the controller is configured to switch a display mode of the display device, wherein the display mode comprises a two-dimensional image display mode and a three-dimensional image display mode, ie, The controller is configured to switch the display device from the two-dimensional image display mode to the three-dimensional image display mode, and to switch the display device from the three-dimensional image display mode to the two-dimensional image display mode.
  • the controller is configured to send a first scan signal to the first switch by using the first scan line 212 to close
  • the first switch is configured to send a second scan signal to the second switch through the second scan line 213 to turn on the second switch.
  • the first switch is configured to turn off the first current channel when the display device is in a three-dimensional image display mode, to prevent the three-dimensional image data from being input into the first strip electrode 21111.
  • the second switch is configured to turn on the second current channel when the display device is in the three-dimensional image display mode, so that the three-dimensional image data is input into the second strip electrode 21121.
  • the controller is configured to send the first scan signal to the first switch by using the first scan line 212 when the display device is switched from the three-dimensional image display mode to the two-dimensional image display mode,
  • the first switch is turned on, and the second scan signal is sent to the second switch by the second scan line 213 to turn on the second switch.
  • the first switch is configured to turn on the first current channel when the display device is in a two-dimensional image display mode, so that two-dimensional image data is input into the first strip electrode 21111.
  • the second switch is configured to turn on the second current channel when the display device is in the two-dimensional image display mode, so that the two-dimensional image data is input into the second strip electrode 21121.
  • the first switch and the second switch are simultaneously turned on or off; when the display device is in the three-dimensional image display mode, the tilt direction is a first switch corresponding to the first strip electrode of the strip lens is closed, and a second switch corresponding to the second strip electrode whose tilt direction is inconsistent with the strip lens is turned on, thus causing the strip to be
  • the region where the lens is optically interfered has no light transmission, eliminating interference fringes in the relevant region and reducing the occurrence of moiré fringes.
  • the first direction is perpendicular to a line where the strip lens 221 is located, and the line where the strip lens 221 is located a line connecting the first pixel portion 2111 and the second pixel portion 2112 having the first angle, the first angle being in a range of 10 degrees to 80 degrees, and due to the interval
  • the arrangement direction of the strip array is parallel or perpendicular to the line between the first pixel portion 2111 and the second pixel portion 2112, and therefore, when the display device is in the three-dimensional image display mode, light is transmitted through The display panel 21 and the lens plate 22 do not generate optical interference phenomenon, thereby avoiding the occurrence of moiré phenomenon and improving the display quality of the display device.
  • the display device since the display device turns off one of the first pixel portion and the second pixel portion having the same tilt direction as the strip lens when in the three-dimensional image display mode, the other is turned on.
  • the light passing through the thin film transistor array substrate and the lens plate does not cause optical interference, so when the display device is in the three-dimensional image display mode, moiré does not appear in the screen displayed by the display device.
  • the display quality of the display device is improved.
  • the third angle between the second strip electrode and the connecting line is the first angle
  • the angles are not equal, so light passing through the thin film transistor array substrate and the lens plate does not cause optical interference.
  • a method of displaying an image by a display device of the present invention is implemented in the above display device, the method comprising the steps of:
  • Step 41 The first scan line 212 sends a first scan signal to the first switch to control whether the first current channel between the first strip electrode 21111 and the data line 214 is turned on or off.
  • the second scan line 213 sends a second scan signal to the second switch to control the opening or closing of the second current path between the second strip electrode 21121 and the data line 214.
  • the first scan signal is used to turn on the first switch
  • the second scan signal is used to turn on the second switch
  • the first scan signal is used to turn off the first switch when the display device is in a three-dimensional image display mode
  • the second scan signal is used to turn on the second switch.
  • Step 42 The first switch turns on the first current channel when the display device is in the two-dimensional image display mode, so that two-dimensional image data is input into the first strip electrode 21111.
  • Step 43 The second switch turns on the second current channel when the display device is in the two-dimensional image display mode, so that the two-dimensional image data is input into the second strip electrode 21121.
  • Step 51 The first switch turns off the first current channel when the display device is in the three-dimensional image display mode to prevent the three-dimensional image data from being input into the first strip electrode 21111.
  • Step 52 The second switch turns on the second current channel when the display device is in the three-dimensional image display mode, so that the three-dimensional image data is input into the second strip electrode 21121.
  • step 42 and the step 43 may be performed synchronously, or sequentially, for example, step 42 is performed first, then step 43 is performed, or step 43 is performed first, and then step 42 is performed; likewise, the step 51 and the step 52 may be performed.
  • the execution is performed synchronously, or sequentially, for example, step 51 is performed first, then step 52 is performed, or step 52 is performed first, and then step 51 is performed.

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  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Engineering & Computer Science (AREA)
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Abstract

一种显示装置,包括:显示面板(21)以及透镜板(22),透镜板与显示面板叠加组合为一体;显示面板中的薄膜晶体管阵列基板包括:第一、第二扫描线(212,213);第一像素部(2111)中的第一条状电极(21111)和第二像素部(2112)中的第二条状电极(21121)均沿与第一扫描线平行的方向以阵列形式排列;第一条状电极所在的第一直线与第二条状电极所在的第二直线相交。

Description

显示装置及其显示图像的方法 技术领域
本发明涉及显示技术领域,特别涉及一种显示装置及其显示图像的方法。
背景技术
传统的3D(Three Dimension,三维)显示装置一般包括显示面板11和透镜板12,所述透镜板12和所述显示面板11叠加组合为一体。所述透镜板12用于将所述显示面板11所产生的左眼图像和右眼图像所对应的光线分别传输至用户的左眼和右眼中。
其中,所述透镜板12包括至少两条状透镜121,至少两所述条状透镜121并列设置,所述条状透镜121所在的直线与所述显示面板11中的像素行111垂直,即,所述条状透镜121所在的直线与所述显示面板11中的像素列平行。
在所述显示面板11中,相邻两像素之间存在黑色矩阵(BM,Black Matrix)层,所述黑色矩阵层包括有多个间隔条112,所述间隔条112与所述像素行111平行或垂直,多个等间距的所述间隔条112构成间隔条阵列,所述间隔条阵列在水平方向(像素行所在的方向)上的结构周期性相似;此外,所述透镜板12的多个等间距的条状透镜121构成透镜阵列,所述透镜阵列与所述间隔条阵列在水平方向(像素行所在的方向)上的结构也周期性相似。
在实践中,发明人发现现有技术至少存在以下问题:
当光线透过所述黑色矩阵层和所述透镜板12时,在上述水平方向上会产生光学干涉现象,因此在观看区域会出现黑白相间的摩尔(Moire)条纹,所述摩尔条纹降低了所述显示装置的显示质量。
故,有必要提出一种新的技术方案,以解决上述技术问题。
技术问题
本发明的目的在于提供一种显示装置及其显示图像的方法,其能避免摩尔纹现象的产生,提高显示质量。
技术解决方案
一种显示装置,其包括:一显示面板,所述显示面板包括薄膜晶体管阵列基板、彩色滤光片基板和液晶层,其中,所述薄膜晶体管阵列基板包括:至少一像素行单元,至少一所述像素行单元以阵列形式排列,所述像素行单元包括:一第一扫描线;一第二扫描线;以及至少一像素单元,所述像素单元包括:第一像素部,所述第一像素部包括第一开关和至少一第一条状电极,所述第一开关与所述第一条状电极相连,至少一所述第一条状电极沿与所述第一扫描线平行的方向以阵列形式排列;以及第二像素部,所述第二像素部包括第二开关和至少一第二条状电极,所述第二开关与所述第二条状电极相连,至少一所述第二条状电极沿与所述第一扫描线平行的方向以阵列形式排列;其中,所述第一条状电极所在的第一直线与所述第二条状电极所在的第二直线相交,所述第一扫描线与所述第一开关连接,所述第二扫描线与所述第二开关连接,所述第一扫描线用于向所述第一开关发送第一扫描信号,以控制所述第一条状电极与数据线之间的第一电流通道的开启或关闭,所述第二扫描线用于向所述第二开关发送第二扫描信号,以控制所述第二条状电极与所述数据线之间的第二电流通道的开启或关闭;以及一透镜板,与所述显示面板叠加组合为一体,所述透镜板包括:一透镜阵列,所述透镜阵列包括至少两条状透镜,至少两所述条状透镜并列设置,所述条状透镜所在的直线与所述第一像素部和所述第二像素部的连线具有一第一夹角;其中,所述第一开关用于在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使二维图像数据输入到所述第一条状电极中;所述第二开关用于在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极中;所述第一开关用于在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止三维图像数据输入到所述第一条状电极中;所述第二开关用于在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极中。
在上述显示装置中,所述第一夹角处于10度至80度的范围内。
在上述显示装置中,所述第一直线与所述连线具有第二夹角,所述第二夹角的绝对值大于或小于所述第一夹角的绝对值。
在上述显示装置中,所述第二直线与所述连线具有第三夹角,所述第三夹角的绝对值大于或小于所述第一夹角的绝对值。
在上述显示装置中,所述第一条状电极与所述条状透镜均朝向同一方向倾斜。
在上述显示装置中,所述第一条状电极所在的所述第一直线与所述条状透镜所在的第三直线之间的第四夹角处于0度至60度之间。
在上述显示装置中,所述第四夹角小于或等于45度。
一种显示装置,包括:一显示面板,所述显示面板包括薄膜晶体管阵列基板、彩色滤光片基板和液晶层,其中,所述薄膜晶体管阵列基板包括:至少一像素行单元,至少一所述像素行单元以阵列形式排列,所述像素行单元包括:一第一扫描线;一第二扫描线;以及至少一像素单元,所述像素单元包括:第一像素部,所述第一像素部包括第一开关和至少一第一条状电极,所述第一开关与所述第一条状电极相连,至少一所述第一条状电极沿与所述第一扫描线平行的方向以阵列形式排列;以及第二像素部,所述第二像素部包括第二开关和至少一第二条状电极,所述第二开关与所述第二条状电极相连,至少一所述第二条状电极沿与所述第一扫描线平行的方向以阵列形式排列;其中,所述第一条状电极所在的第一直线与所述第二条状电极所在的第二直线相交,所述第一扫描线与所述第一开关连接,所述第二扫描线与所述第二开关连接,所述第一扫描线用于向所述第一开关发送第一扫描信号,以控制所述第一条状电极与数据线之间的第一电流通道的开启或关闭,所述第二扫描线用于向所述第二开关发送第二扫描信号,以控制所述第二条状电极与所述数据线之间的第二电流通道的开启或关闭;以及一透镜板,与所述显示面板叠加组合为一体。
在上述显示装置中,所述第一开关用于在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使二维图像数据输入到所述第一条状电极中;所述第二开关用于在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极中。
在上述显示装置中,所述第一开关用于在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止三维图像数据输入到所述第一条状电极中;所述第二开关用于在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极中。
在上述显示装置中,所述透镜板包括:一透镜阵列,所述透镜阵列包括至少两条状透镜,至少两所述条状透镜并列设置,所述条状透镜所在的直线与所述第一像素部和所述第二像素部的连线具有一第一夹角。
在上述显示装置中,所述第一夹角处于10度至80度的范围内。
在上述显示装置中,所述第一直线与所述连线具有第二夹角,所述第二夹角的绝对值大于或小于所述第一夹角的绝对值。
在上述显示装置中,所述第二直线与所述连线具有第三夹角,所述第三夹角的绝对值大于或小于所述第一夹角的绝对值。
在上述显示装置中,所述第一条状电极与所述条状透镜均朝向同一方向倾斜。
在上述显示装置中,所述第一条状电极所在的所述第一直线与所述条状透镜所在的第三直线之间的第四夹角处于0度至60度之间。
在上述显示装置中,所述第四夹角小于或等于45度。
一种上述显示装置显示图像的方法,所述方法包括:所述第一扫描线向所述第一开关发送第一扫描信号,以控制所述第一条状电极与数据线之间的所述第一电流通道的开启或关闭;以及所述第二扫描线向所述第二开关发送第二扫描信号,以控制所述第二条状电极与所述数据线之间的所述第二电流通道的开启或关闭。
在上述显示装置显示图像的方法中,所述第一开关在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使所述二维图像数据输入到所述第一条状电极中;所述第二开关在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极中。
在上述显示装置显示图像的方法中,所述第一开关在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止所述三维图像数据输入到所述第一条状电极中;所述第二开关在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极中。
有益效果
相对现有技术,由于所述显示装置在处于三维图像显示模式时关闭所述第一像素部、所述第二像素部中与所述条状透镜具有相同倾斜方向的一者,而开启另一者,因此透过所述薄膜晶体管阵列基板和所述透镜板的光线不会产生光学干涉现象,因此在所述显示装置处于三维图像显示模式时,所述显示装置所显示的画面中不会出现摩尔纹,提高了所述显示装置的显示质量。
附图说明
图1为传统的3D显示装置的结构示意图;
图2为本发明的显示装置的第一实施例的结构示意图;
图3为图2中的显示装置的像素单元的结构示意图;
图4为本发明的显示装置显示图像的方法在二维图像显示模式下的流程图;
图5为本发明的显示装置显示图像的方法在三维图像显示模式下的流程图。
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,用以例示本发明可用以实施的特定实施例。
参考图2和图3,图2为本发明的显示装置的第一实施例的结构示意图,图3为图2中的显示装置的像素单元211的结构示意图。
本实施例的显示装置包括显示面板21和透镜板22。所述透镜板22与所述显示面板21叠加组合为一体,具体地,所述透镜板22设置于所述彩色滤光片基板背向所述液晶层的一面上。所述显示面板21包括薄膜晶体管阵列基板、彩色滤光片基板和液晶层,所述薄膜晶体管阵列基板和所述彩色滤光片基板平行设置,所述液晶层设置于所述薄膜晶体管阵列基板和所述彩色滤光片基板之间。
其中,所述薄膜晶体管阵列基板包括至少两像素行单元以及至少两数据线(214、215)。至少两像素行单元排列成列的形式。至少两数据线(214、215)排列成行的形式。所述像素行单元包括:至少一像素单元211、一第一扫描线212以及一第二扫描线213。在同一所述像素行单元内,至少一像素单元211排列成行的形式,所述第一扫描线212和所述第二扫描线213均与所述像素单元211连接。所述数据线214与同一列中的像素单元211连接。
所述彩色滤光片基板上设置有黑色矩阵层,所述黑色矩阵层包括有至少两间隔条,所述间隔条设置于所述像素单元211的边缘,所述间隔条所在的直线平行于或垂直于所述像素行单元所在的直线,至少两所述间隔条在与所述像素行单元所在的直线平行或垂直的方向构成等间距的间隔条阵列。
所述像素单元211包括第一像素部2111和第二像素部2112,所述第一像素部2111和所述第二像素部2112相邻。所述第一像素部2111和所述第二像素部2112的连线与所述数据线214所在的直线平行或垂直,如图2所示,本实施例的显示装置以所述第一像素部2111和所述第二像素部2112的连线与所述数据线214所在的直线平行为例来说明。所述第一像素部2111包括第一开关和第一条状电极21111,所述第一开关与所述第一条状电极21111、所述数据线214和所述第一扫描线212相连。至少一所述第一条状电极沿与所述第一扫描线212平行的方向以阵列形式排列。所述第一扫描线212用于向所述第一开关发送第一扫描信号,以控制所述第一条状电极21111与所述数据线214之间的第一电流通道的开启或关闭。所述第二像素部2112包括第二开关和第二条状电极21121,所述第二开关与所述第二条状电极21121、所述数据线214和所述第二扫描线213相连。至少一所述第二条状电极沿与所述第一扫描线212平行的方向以阵列形式排列。其中,所述第一条状电极所在的第一直线与所述第二条状电极所在的第二直线相交,即,所述第一直线与所述第二直线不平行。
所述第二扫描线213用于向所述第二开关发送第二扫描信号,以控制所述第二条状电极21121与所述数据线214之间的第二电流通道的开启或关闭。其中,所述第一开关和所述第二开关可以在同一时刻或在同一时间段内处于相反的状态,即,当所述第一开关处于开启状态时,所述第二开关处于关闭状态,当所述第一开关处于关闭状态时,所述第二开关处于开启状态。所述第一开关和所述第二开关均可以是三极管,例如,薄膜晶体管(TFT,Thin Film Transistor)。
在本实施例中,所述透镜板22包括透镜阵列,所述透镜阵列包括至少两条状透镜221,至少两所述条状透镜221并列设置,并且至少两所述条状透镜221沿第一方向排列,其中,所述第一方向为垂直于所述条状透镜221所在的第三直线的方向,所述条状透镜221所在的所述第三直线与所述第一像素部2111和所述第二像素部2112的连线具有一第一夹角,所述第一夹角处于10度至80度的范围内,例如,所述第一夹角为10度、14度、17度、19度、21度、23度、26度、29度、31度、34度、36度、38度、40度、43度、45度、47度、50度、52度、55度、57度、59度、62度、66度、67度、69度、71度、73度、76度、78度、80度等。任意相邻两所述条状透镜221之间的间距相等。所述透镜阵列在所述第一方向上的结构周期性相似。
在本实施例中,所述第一直线与所述连线具有第二夹角,所述第二夹角的绝对值大于或小于所述第一夹角的绝对值,所述第二直线与所述连线具有第三夹角,所述第三夹角的绝对值大于或小于所述第一夹角的绝对值,所述第二夹角、所述第三夹角分别为正角/负角、负角/正角。所述第二夹角和所述第三夹角均处于20度至70度的范围内,例如,所述第二夹角和所述第三夹角分别是20度和-20度、23度和-23度、25度和-25度、29度和-29度、31度和-31度、34度和-34度、36度和-36度、38度和-38度、41度和-41度、44度和-44度、45度和-45度、48度和-48度、50度和-50度、53度和-53度、56度和-56度、59度和-59度、61度和-61度、64度和-64度、67度和-67度、70度和-70度等。
在本实施例中,所述第一条状电极与所述条状透镜具有相同的倾斜方向,即,所述第一条状电极与所述条状透镜均朝向同一方向倾斜,具体地,所述第一条状电极所在的所述第一直线与所述条状透镜所在的第三直线之间的第四夹角处于0度至60度之间,优选地,所述第四夹角小于或等于45度。
在本实施例中,所述显示装置还包括控制器,所述控制器用于切换所述显示装置的显示模式,其中,所述显示模式包括二维图像显示模式和三维图像显示模式,即,所述控制器用于将所述显示装置从二维图像显示模式切换三维图像显示模式,以及用于将所述显示装置从所述三维图像显示模式切换为所述二维图像显示模式。
在所述显示装置从所述二维图像显示模式切换到所述三维图像显示模式时,所述控制器用于通过所述第一扫描线212向所述第一开关发送第一扫描信号,以关闭所述第一开关,以及用于通过所述第二扫描线213向所述第二开关发送第二扫描信号,以开启所述第二开关。在本实施例中,所述第一开关用于在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止所述三维图像数据输入到所述第一条状电极21111中。所述第二开关用于在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极21121中。
在所述显示装置从所述三维图像显示模式切换到所述二维图像显示模式时,所述控制器用于通过所述第一扫描线212向所述第一开关发送所述第一扫描信号,以开启所述第一开关,以及用于所述第二扫描线213向所述第二开关发送所述第二扫描信号,以开启所述第二开关。在本实施例中,所述第一开关用于在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使二维图像数据输入到所述第一条状电极21111中。所述第二开关用于在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极21121中。
在所述显示装置处于所述二维图像显示模式时,所述第一开关和所述第二开关同时开启或关闭;在所述显示装置处于所述三维图像显示模式时,倾斜方向与所述条状透镜一致的第一条状电极所对应的第一开关关闭,而倾斜方向与所述条状透镜不一致的第二条状电极所对应的第二开关则开启,因此使得与所述条状透镜发生光学干涉的区域没有光线透过,消除了相关区域的干涉条纹,减少了摩尔条纹现象的产生。
由于所述透镜板22中的至少两所述条状透镜221沿所述第一方向排列,所述第一方向垂直于所述条状透镜221所在的直线,所述条状透镜221所在的直线与所述第一像素部2111和所述第二像素部2112之间的连线具有所述第一夹角,所述第一夹角处于10度至80度的范围内,并且由于所述间隔条阵列的排列方向平行于或垂直于所述第一像素部2111和所述第二像素部2112之间的连线,因此,当所述显示装置处于所述三维图像显示模式时,光线透过所述显示面板21和所述透镜板22后不会产生光学干涉现象,避免了摩尔纹现象的产生,提高了所述显示装置的显示质量。
此外,由于所述显示装置在处于三维图像显示模式时关闭所述第一像素部、所述第二像素部中与所述条状透镜具有相同倾斜方向的一者,而开启另一者,因此透过所述薄膜晶体管阵列基板和所述透镜板的光线不会产生光学干涉现象,因此在所述显示装置处于三维图像显示模式时,所述显示装置所显示的画面中不会出现摩尔纹,提高了所述显示装置的显示质量。
此外,由于第一条状电极与所述连线的第二夹角与所述第一夹角不相等,所述第二条状电极与所述连线的第三夹角与所述第一夹角不相等,因此透过所述薄膜晶体管阵列基板和所述透镜板的光线不会产生光学干涉现象,
因此在所述显示装置处于二维图像显示模式时,所述显示装置所显示的画面中不会出现摩尔纹,提高了所述显示装置的显示质量。
本发明的显示装置显示图像的方法实施于上述显示装置中,所述方法包括以下步骤:
步骤41,所述第一扫描线212向所述第一开关发送第一扫描信号,以控制所述第一条状电极21111与所述数据线214之间的第一电流通道的开启或关闭,所述第二扫描线213向所述第二开关发送第二扫描信号,以控制所述第二条状电极21121与所述数据线214之间的第二电流通道的开启或关闭。具体地,在所述显示装置处于二维图像显示模式时,所述第一扫描信号用于开启所述第一开关,所述第二扫描信号用于开启所述第二开关;相对应地,在所述显示装置处于三维图像显示模式时,所述第一扫描信号用于关闭所述第一开关,所述第二扫描信号用于开启所述第二开关。
步骤42,所述第一开关在所述显示装置处于所述二维图像显示模式时开启所述第一电流通道,以使二维图像数据输入到所述第一条状电极21111中。
步骤43,所述第二开关在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极21121中。
步骤51,所述第一开关在所述显示装置处于所述三维图像显示模式时关闭所述第一电流通道,以阻止所述三维图像数据输入到所述第一条状电极21111中。
步骤52,所述第二开关在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极21121中。
所述步骤42和步骤43可同步执行,或者先后执行,例如,先执行步骤42,再执行步骤43,或者先执行步骤43,再执行步骤42;同样,所述步骤51和所述步骤52可同步执行,或者先后执行,例如,先执行步骤51,再执行步骤52,或者先执行步骤52,再执行步骤51。
综上所述,虽然本发明已以优选实施例揭露如上,但上述优选实施例并非用以限制本发明,本领域的普通技术人员,在不脱离本发明的精神和范围内,均可作各种更动与润饰,因此本发明的保护范围以权利要求界定的范围为准。
本发明的实施方式
工业实用性
序列表自由内容

Claims (20)

  1. 一种显示装置,其包括:
    一显示面板,所述显示面板包括薄膜晶体管阵列基板、彩色滤光片基板和液晶层,其中,所述薄膜晶体管阵列基板包括:
    至少一像素行单元,至少一所述像素行单元以阵列形式排列,所述像素行单元包括:
    一第一扫描线;
    一第二扫描线;以及
    至少一像素单元,所述像素单元包括:
    第一像素部,所述第一像素部包括第一开关和至少一第一条状电极,所述第一开关与所述第一条状电极相连,至少一所述第一条状电极沿与所述第一扫描线平行的方向以阵列形式排列;以及
    第二像素部,所述第二像素部包括第二开关和至少一第二条状电极,所述第二开关与所述第二条状电极相连,至少一所述第二条状电极沿与所述第一扫描线平行的方向以阵列形式排列;
    其中,所述第一条状电极所在的第一直线与所述第二条状电极所在的第二直线相交,所述第一扫描线与所述第一开关连接,所述第二扫描线与所述第二开关连接,所述第一扫描线用于向所述第一开关发送第一扫描信号,以控制所述第一条状电极与数据线之间的第一电流通道的开启或关闭,所述第二扫描线用于向所述第二开关发送第二扫描信号,以控制所述第二条状电极与所述数据线之间的第二电流通道的开启或关闭;以及
    一透镜板,与所述显示面板叠加组合为一体,所述透镜板包括:
    一透镜阵列,所述透镜阵列包括至少两条状透镜,至少两所述条状透镜并列设置,所述条状透镜所在的直线与所述第一像素部和所述第二像素部的连线具有一第一夹角;
    其中,所述第一开关用于在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使二维图像数据输入到所述第一条状电极中;
    所述第二开关用于在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极中;
    所述第一开关用于在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止三维图像数据输入到所述第一条状电极中;
    所述第二开关用于在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极中。
  2. 根据权利要求1所述的显示装置,其中
    所述第一夹角处于10度至80度的范围内。
  3. 根据权利要求1所述的显示装置,其中
    所述第一直线与所述连线具有第二夹角,所述第二夹角的绝对值大于或小于所述第一夹角的绝对值。
  4. 根据权利要求1所述的显示装置,其中
    所述第二直线与所述连线具有第三夹角,所述第三夹角的绝对值大于或小于所述第一夹角的绝对值。
  5. 根据权利要求1所述的显示装置,其中
    所述第一条状电极与所述条状透镜均朝向同一方向倾斜。
  6. 根据权利要求5所述的显示装置,其中
    所述第一条状电极所在的所述第一直线与所述条状透镜所在的第三直线之间的第四夹角处于0度至60度之间。
  7. 根据权利要求6所述的显示装置,其中
    所述第四夹角小于或等于45度。
  8. 一种显示装置,其包括:
    一显示面板,所述显示面板包括薄膜晶体管阵列基板、彩色滤光片基板和液晶层,其中,所述薄膜晶体管阵列基板包括:
    至少一像素行单元,至少一所述像素行单元以阵列形式排列,所述像素行单元包括:
    一第一扫描线;
    一第二扫描线;以及
    至少一像素单元,所述像素单元包括:
    第一像素部,所述第一像素部包括第一开关和至少一第一条状电极,所述第一开关与所述第一条状电极相连,至少一所述第一条状电极沿与所述第一扫描线平行的方向以阵列形式排列;以及
    第二像素部,所述第二像素部包括第二开关和至少一第二条状电极,所述第二开关与所述第二条状电极相连,至少一所述第二条状电极沿与所述第一扫描线平行的方向以阵列形式排列;
    其中,所述第一条状电极所在的第一直线与所述第二条状电极所在的第二直线相交,所述第一扫描线与所述第一开关连接,所述第二扫描线与所述第二开关连接,所述第一扫描线用于向所述第一开关发送第一扫描信号,以控制所述第一条状电极与数据线之间的第一电流通道的开启或关闭,所述第二扫描线用于向所述第二开关发送第二扫描信号,以控制所述第二条状电极与所述数据线之间的第二电流通道的开启或关闭;以及
    一透镜板,与所述显示面板叠加组合为一体。
  9. 根据权利要求8所述的显示装置,其中
    所述第一开关用于在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使二维图像数据输入到所述第一条状电极中;
    所述第二开关用于在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极中。
  10. 根据权利要求8所述的显示装置,其中
    所述第一开关用于在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止三维图像数据输入到所述第一条状电极中;
    所述第二开关用于在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极中。
  11. 根据权利要求8所述的显示装置,其中
    所述透镜板包括:
    一透镜阵列,所述透镜阵列包括至少两条状透镜,至少两所述条状透镜并列设置,所述条状透镜所在的直线与所述第一像素部和所述第二像素部的连线具有一第一夹角。
  12. 根据权利要求11所述的显示装置,其中
    所述第一夹角处于10度至80度的范围内。
  13. 根据权利要求11所述的显示装置,其中
    所述第一直线与所述连线具有第二夹角,所述第二夹角的绝对值大于或小于所述第一夹角的绝对值。
  14. 根据权利要求11所述的显示装置,其中
    所述第二直线与所述连线具有第三夹角,所述第三夹角的绝对值大于或小于所述第一夹角的绝对值。
  15. 根据权利要求11所述的显示装置,其中
    所述第一条状电极与所述条状透镜均朝向同一方向倾斜。
  16. 根据权利要求15所述的显示装置,其中
    所述第一条状电极所在的所述第一直线与所述条状透镜所在的第三直线之间的第四夹角处于0度至60度之间。
  17. 根据权利要求16所述的显示装置,其中
    所述第四夹角小于或等于45度。
  18. 一种如权利要求8所述的显示装置显示图像的方法,其中
    所述方法包括:
    所述第一扫描线向所述第一开关发送第一扫描信号,以控制所述第一条状电极与数据线之间的所述第一电流通道的开启或关闭;以及
    所述第二扫描线向所述第二开关发送第二扫描信号,以控制所述第二条状电极与所述数据线之间的所述第二电流通道的开启或关闭。
  19. 根据权利要求18所述的显示装置显示图像的方法,其中
    所述第一开关在所述显示装置处于二维图像显示模式时开启所述第一电流通道,以使所述二维图像数据输入到所述第一条状电极中;
    所述第二开关在所述显示装置处于所述二维图像显示模式时开启所述第二电流通道,以使所述二维图像数据输入到所述第二条状电极中。
  20. 根据权利要求18所述的显示装置显示图像的方法,其中
    所述第一开关在所述显示装置处于三维图像显示模式时关闭所述第一电流通道,以阻止所述三维图像数据输入到所述第一条状电极中;
    所述第二开关在所述显示装置处于所述三维图像显示模式时开启所述第二电流通道,以使所述三维图像数据输入到所述第二条状电极中。
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