WO2016101340A1 - 透镜面板、三维显示面板及其单元图像 - Google Patents

透镜面板、三维显示面板及其单元图像 Download PDF

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Publication number
WO2016101340A1
WO2016101340A1 PCT/CN2015/070084 CN2015070084W WO2016101340A1 WO 2016101340 A1 WO2016101340 A1 WO 2016101340A1 CN 2015070084 W CN2015070084 W CN 2015070084W WO 2016101340 A1 WO2016101340 A1 WO 2016101340A1
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WO
WIPO (PCT)
Prior art keywords
lens
array
unit
display panel
image
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2015/070084
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English (en)
French (fr)
Inventor
陈剑鸿
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
TCL China Star Optoelectronics Technology Co Ltd
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Shenzhen China Star Optoelectronics Technology Co Ltd
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Application filed by Shenzhen China Star Optoelectronics Technology Co Ltd filed Critical Shenzhen China Star Optoelectronics Technology Co Ltd
Priority to US14/416,537 priority Critical patent/US20160187664A1/en
Publication of WO2016101340A1 publication Critical patent/WO2016101340A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/20Filters
    • G02B5/201Filters in the form of arrays
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B30/00Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images
    • G02B30/20Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes
    • G02B30/26Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes of the autostereoscopic type
    • G02B30/27Optical systems or apparatus for producing three-dimensional [3D] effects, e.g. stereoscopic images by providing first and second parallax images to an observer's left and right eyes of the autostereoscopic type involving lenticular arrays
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/60Systems using moiré fringes
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B3/00Simple or compound lenses
    • G02B3/0006Arrays
    • G02B3/0037Arrays characterized by the distribution or form of lenses
    • G02B3/0056Arrays characterized by the distribution or form of lenses arranged along two different directions in a plane, e.g. honeycomb arrangement of lenses

Definitions

  • the present invention relates to the field of display technologies, and in particular, to a lens panel and a three-dimensional display panel.
  • Traditional 3D (Threee A Dimension (3D) display panel generally includes a display panel and a lens panel, and the lens panel and the display panel are superimposed and integrated.
  • one lens covers one unit image, and one unit image contains several pixels or sub-pixels.
  • a number of unit images constitute an image to be displayed by the display panel.
  • the lens panel projects the image of the display panel into the space in a specific manner (for example, orthogonal projection or perspective projection), restores the 3D scene, and the human eye can perceive the 3D scene at a specific viewing position or region, and experiences at least binocular parallax. , mobile parallax and other depth cues.
  • the lens panel comprises at least two lenses, and at least two of the lenses are arranged side by side.
  • a lens tends to correspond to an equal-sized unit image, and the size of the unit image basically determines the viewing angle of the 3D display. Therefore, the viewing angle of the 3D display is limited by the size of the unit image therein.
  • a lens panel comprising: a lens array, the lens array comprising: at least two lenses, at least two of the lenses are arranged in a first array; a color resist array, the color resist array comprises : at least one red color resisting unit; at least one green color resisting unit; and at least one blue color resisting unit; wherein at least one of the red color resisting units, at least one of the green color resisting units, and at least one of the blue color resisting units
  • the cells are arranged in a second array.
  • the color resist array is used to mix the first image corresponding to the moiré generated by the display panel in the process of displaying the image with the second image, so that the first image is concealed.
  • the second image is an image formed by the red color resist unit, the green color resist unit, and the blue color resist unit.
  • the red color resisting unit corresponds to a portion of the lens
  • the green color resisting unit corresponds to a portion of the lens
  • the blue color resisting unit corresponds to a portion of the lens
  • the lens includes a first region, a second region, and a third region, each of the first region, the second region, and the third region occupying a third of an area of the lens
  • the red color resisting unit is located at a position corresponding to the first area
  • the green color resisting unit is located at a position corresponding to the second area
  • the blue color resisting unit is located at the third The location corresponding to the area.
  • the red color resisting unit corresponds to at least one of the lenses
  • the green color resisting unit corresponds to at least one of the lenses
  • the blue color resisting unit corresponds to at least one of the lenses.
  • the color resist array is integrated in the lens array.
  • the lens array includes a lens layer and a substrate layer, and the color resist array is interposed between the lens layer and the substrate layer of the lens array.
  • the color resist array and the lens array are superimposed and integrated.
  • the lens is disposed in a strip shape, and at least two lenses arranged in a strip shape are juxtaposed, and a line where the lens is located has an angle with a straight line where the scanning line in the display panel is located.
  • the included angle is in the range of 0 to 90 degrees.
  • a three-dimensional display panel comprising: a display panel; and a lens panel, the lens panel comprising: a lens array, the lens array comprising: at least two lenses, at least two of the lenses Forming a first array; a color resist array comprising: at least one red color resisting unit; at least one green color resisting unit; and at least one blue color resisting unit; wherein at least one of the red color resisting units And at least one of the green color resisting units and the at least one of the blue color resisting units are arranged in a second array.
  • the color resist array is used to mix the first image corresponding to the moiré generated by the display panel in the process of displaying the image with the second image, so that the first image is Concealed in the second image, the second image is an image formed by the red color resist unit, the green color resist unit, and the blue color resist unit.
  • the red color resisting unit corresponds to a portion of the lens
  • the green color resisting unit corresponds to a portion of the lens
  • the blue color resisting unit corresponds to a portion of the lens
  • the lens includes a first region, a second region, and a third region, each of the first region, the second region, and the third region occupying a three-point of an area of the lens
  • One of the red color resisting units is located at a position corresponding to the first area
  • the green color resisting unit is located at a position corresponding to the second area
  • the blue color resisting unit is located at the same The position corresponding to the three areas.
  • the red color resisting unit corresponds to at least one of the lenses
  • the green color resisting unit corresponds to at least one of the lenses
  • the blue color resisting unit corresponds to at least one of the lenses.
  • the color resist array is integrated in the lens array.
  • the lens array includes a lens layer and a base layer, and the color resist array is interposed between the lens layer and the base layer of the lens array.
  • the color resist array and the lens array are superimposed and integrated.
  • the lens is disposed in a strip shape, and at least two lenses arranged in a strip shape are juxtaposed, and a line where the lens is located has an angle with a line where the scan line in the display panel is located.
  • the angle is in the range of 0 to 90 degrees.
  • a unit image in the above three-dimensional display panel wherein a position of the unit image corresponds to a position where the lens is located, and an area of the unit image is greater than or equal to an area of the lens.
  • the width of the area display unit in a direction perpendicular to a line in which the lens is located is larger than a width of the lens in the direction.
  • the present invention can at least dilute the color moiré generated by the three-dimensional display panel during image display and improve the viewing angle.
  • Figure 1 is a schematic view of a three-dimensional display panel of the present invention
  • FIG. 2 is a schematic view of a first embodiment of a lens panel in the three-dimensional display panel shown in FIG. 1;
  • FIG. 3 is a schematic view showing a second embodiment of a lens panel in the three-dimensional display panel shown in FIG. 1;
  • FIG. 4 is a schematic view of a third embodiment of a lens panel in the three-dimensional display panel shown in FIG. 1.
  • FIG. 1 is a schematic view of a three-dimensional display panel of the present invention
  • FIG. 2 is a schematic view of a first embodiment of a lens panel 102 in the three-dimensional display panel of FIG.
  • the three-dimensional display panel of the present invention includes a display panel 101 and a lens panel 102, and the display panel 101 and the lens panel 102 are superimposed and integrated, wherein the display panel 101 may be a TFT-LCD (Thin Film Transistor Liquid Crystal Display, OLED (Organic Light Emitting) Diode, organic light emitting diode display panel) and so on.
  • TFT-LCD Thin Film Transistor Liquid Crystal Display
  • OLED Organic Light Emitting Diode
  • organic light emitting diode display panel organic light emitting diode display panel
  • the display panel 101 is used to display an image.
  • the lens panel 102 is configured to construct the image displayed by the display panel 101 into three dimensions (3D, 3 Dimensions) images. Specifically, the lens panel 102 is configured to provide parallax in any direction to enable the three-dimensional display panel to achieve naked-eye 3D display.
  • the lens panel 102 includes a lens array 201 and a color resist array 202.
  • the lens array 201 includes at least two lenses 20111, at least two of which are arranged in a first array.
  • the color resist array 202 includes at least one red color resist unit 2021, at least one green color resist unit 2022, and at least one blue color resist unit 2023. At least one of the red color resist units 2021, at least one of the green color resist units 2022, and at least one of the blue color resist units 2023 are arranged in a second array.
  • the color resist array 202 is used to fade the color moiré generated by the display panel 101 during the display of the image to improve the display quality. Specifically, the color resist array 202 is configured to mix the first image corresponding to the moiré with the second image, so that the first image is concealed in the second image, that is, the first image is lowered. The image is perceived by the red color resist unit 2021, the green color resist unit 2022, and the blue color resist unit 2023.
  • a red color resist material is disposed in the red color resist unit 2021.
  • a green color resist material is disposed in the green color resist unit 2022, and a blue color resist material is disposed in the blue color resist unit 2023.
  • the red color resist unit 2021 corresponds to a portion of the lens 20111
  • the green color resist unit 2022 corresponds to a portion of the lens 20111
  • the blue color resist unit 2023 and the lens 20111 The part corresponds.
  • the lens 20111 includes a first region, a second region, and a third region, each of the first region, the second region, and the third region occupying one third of an area of the lens 20111.
  • the red color resist unit 2021 is located at a position corresponding to the first area
  • the green color resist unit 2022 is located at a position corresponding to the second area
  • the blue color resist unit 2023 is located at the same position as the first The position corresponding to the three areas.
  • the lens 20111 includes a fourth region that occupies two-thirds of the area of the lens 20111 and a fifth region that occupies three-thirds of the area of the lens 20111.
  • the red color resisting unit 2021 is located at a position corresponding to the fourth region of the lens 20111
  • the green color resisting unit 2022 is located in the fifth region and adjacent to the lens 20111.
  • the blue color resist unit 2023 is located at a position corresponding to the fourth region of the adjacent other lens 20111, and the like.
  • the lens array 201 includes a lens layer 2011 and a base layer 2012.
  • the lens layer 2011 is disposed on the base layer 2012, and the color resist array 202 and the lens array 201 are superimposed and integrated.
  • the base layer 2012 of the lens array 201 is disposed on the color resist array 202, and the two are fixed to each other.
  • the color resist array 202 is disposed in the lens panel 102, at least the color moiré generated by the display panel 101 during the display of the image can be faded by the color resist array 202. Therefore, the display quality of the three-dimensional display panel can be improved.
  • the unit image corresponding to the three-dimensional display panel can be appropriately increased to improve the viewing angle.
  • the lens 20111 is disposed in a strip shape or a dot shape, and at least two lenses 20111 disposed in a strip shape or a dot shape are juxtaposed, and a line and a line in which the single or multiple lenses 20111 are disposed in a strip shape are disposed.
  • the straight line in which the scan line in the display panel 101 is located has an angle, and the angle is in the range of 0 to 90 degrees, for example, the angle is 10 degrees, 14 degrees, 17 degrees, 19 degrees, 21 Degree, 23 degrees, 26 degrees, 29 degrees, 31 degrees, 34 degrees, 36 degrees, 38 degrees, 40 degrees, 43 degrees, 45 degrees, 47 degrees, 50 degrees, 52 degrees, 55 degrees, 57 degrees, 59 degrees, 62 degrees, 66 degrees, 67 degrees, 69 degrees, 71 degrees, 73 degrees, 76 degrees, 78 degrees, 80 degrees, and the like.
  • the straight line in which the single or multiple lenses 20111 are disposed in a strip shape has the included angle with the scanning line of the display panel 101, and the included angle is in the range of 0 to 90 degrees, therefore, when When the display panel 101 displays the image, the moiré is further weakened, and the display quality of the three-dimensional display panel is improved.
  • FIG. 3 is a schematic view of a second embodiment of a lens panel 102 in the three-dimensional display panel shown in FIG. 1. This embodiment is similar to the first embodiment described above, except that:
  • the red color resist unit 2021 corresponds to at least one of the lenses 20111
  • the green color resist unit 2022 corresponds to at least one of the lenses 20111
  • the blue color resist unit 2023 and at least one of the The lens 20111 corresponds.
  • the red color resist unit 2021, the green color resist unit 2022, and the blue color resist unit 2023 each correspond to one or two of the lenses 20111.
  • FIG. 4 is a schematic view of a third embodiment of the lens panel 102 in the three-dimensional display panel shown in FIG. 1. This embodiment is similar to the first or second embodiment described above, except that:
  • the color resist array 202 is integrated in the lens array 201.
  • the color resist array 202 is interposed between the lens layer 2011 of the lens array 201 and the substrate layer 2012.
  • the position of the unit image in the three-dimensional display panel of the present invention corresponds to the position where the lens is located, and the area of the unit image is greater than or equal to the area of the lens. That is, the position of the area display unit corresponding to the unit image corresponds to the position where the lens is located, and the area of the area display unit is greater than or equal to the area of the lens.
  • the shape of the unit image is the same as the shape of the lens, or in the case where the shape of the unit image is different from the shape of the lens, the unit image is in a line perpendicular to the lens
  • the width in the direction is greater than the width of the lens in the direction.
  • the shape of the area display unit is the same as the shape of the lens, or in the case where the shape of the area display unit is different from the shape of the lens, the area display unit is perpendicular to the lens
  • the width in the direction of the line is greater than the width of the lens in the direction.
  • the viewing angle of the three-dimensional display panel can be increased.

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  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
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  • Devices For Indicating Variable Information By Combining Individual Elements (AREA)

Abstract

一种透镜面板(102)及三维显示面板。透镜面板(102)包括透镜阵列(201)和色阻阵列(202),透镜阵列(102)包括透镜(20111),色阻阵列(202)包括红色色阻单元(2021)、绿色色阻单元(2022)和蓝色色阻单元(2023)。透镜阵列(201)的透镜(20111)以第一阵列形式排列,红色色阻单元(2021)、绿色色阻单元(2022)和蓝色色阻单元(2023)以第二阵列形式排列。三维显示面板包括透镜面板(102)和显示面板(101)。透镜面板(102)能够淡化三维显示面板在显示图像过程中产生的彩色摩尔条纹,提高观看视角。

Description

透镜面板、三维显示面板及其单元图像 技术领域
本发明涉及显示技术领域,特别涉及一种透镜面板及三维显示面板。
背景技术
传统的3D(Three Dimension,三维)显示面板一般包括显示面板和透镜面板,所述透镜面板和所述显示面板叠加组合为一体。一般来讲,一个透镜覆盖一个单元图像,一个单元图像包含若干个像素或者子像素。若干个单元图像构成显示面板要显示的图像。透镜面板将显示面板的图像以特定的方式(例如,正交投射或者透视投射)投射到空间中,还原3D场景,人眼在特定的观看位置或者区域,可以感知到3D场景,经历至少双眼视差,移动视差等深度线索。
其中,所述透镜面板包括至少两透镜,至少两所述透镜并列设置。
一方面,由于面板子像素(例如,R、G、B子像素)和黑色矩阵(BM,Black Matrix)的黑色间隔条的设置具有周期性,而透镜面板中的透镜的设置也具有周期性,当人眼透过透镜观看显示面板,临近的透镜会出现同样的颜色,那么就会出现彩色色块和暗纹,即彩色摩尔纹和亮度摩尔纹,前者体现为颜色的不均匀,后者体现为亮度的不均匀,两者统称摩尔纹。它严重影响三维显示器的显示质量。
另一方面,一个透镜往往对应一个等大小的单元图像,而这个单元图像的大小基本决定了3D显示器的视角。因此,3D显示器的视角受限于其中的单元图像的大小。
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透镜面板、三维显示面板及其单元图像,其能至少淡化彩色摩尔纹,并提高观看视角。
技术解决方案
一种透镜面板,所述透镜面板包括:一透镜阵列,所述透镜阵列包括:至少两个透镜,至少两个所述透镜以第一阵列的形式排列;一色阻阵列,所述色阻阵列包括:至少一个红色色阻单元;至少一个绿色色阻单元;以及至少一个蓝色色阻单元;其中,至少一个所述红色色阻单元,至少一个所述绿色色阻单元以及至少一个所述蓝色色阻单元以第二阵列的形式排列。
在上述透镜面板中,所述色阻阵列用于将所述显示面板在显示所述图像的过程中产生的摩尔纹所对应的第一影像与第二影像混合,以使所述第一影像隐蔽于所述第二影像中,所述第二影像为所述红色色阻单元、所述绿色色阻单元、所述蓝色色阻单元所形成的影像。
在上述透镜面板中,所述红色色阻单元与所述透镜的部分对应,所述绿色色阻单元与所述透镜的部分对应,所述蓝色色阻单元与所述透镜的部分对应。
在上述透镜面板中,所述透镜包括第一区域、第二区域和第三区域,所述第一区域、所述第二区域和所述第三区域均占所述透镜的面积的三分之一,所述红色色阻单元位于与所述第一区域对应的位置上,所述绿色色阻单元位于与所述第二区域对应的位置上,所述蓝色色阻单元位于与所述第三区域对应的位置上。
在上述透镜面板中,所述红色色阻单元与至少一个所述透镜对应,所述绿色色阻单元与至少一个所述透镜对应,所述蓝色色阻单元与至少一个所述透镜对应。
在上述透镜面板中,所述色阻阵列集成于所述透镜阵列内。
在上述透镜面板中,所述透镜阵列包括镜片层和基底层,所述色阻阵列夹设于所述透镜阵列的镜片层和基底层之间。
在上述透镜面板中,所述色阻阵列与所述透镜阵列叠加组合为一体。
在上述透镜面板中,所述透镜设置为条状,至少两设置为条状的所述透镜并列设置,所述透镜所在的直线与所述显示面板中的扫描线所在的直线具有一夹角,所述夹角处于0度至90度的范围内。
一种三维显示面板,所述三维显示面板包括:一显示面板;以及一透镜面板,所述透镜面板包括:一透镜阵列,所述透镜阵列包括:至少两个透镜,至少两个所述透镜以第一阵列的形式排列;一色阻阵列,所述色阻阵列包括:至少一个红色色阻单元;至少一个绿色色阻单元;以及至少一个蓝色色阻单元;其中,至少一个所述红色色阻单元,至少一个所述绿色色阻单元以及至少一个所述蓝色色阻单元以第二阵列的形式排列。
在上述三维显示面板中,所述色阻阵列用于将所述显示面板在显示所述图像的过程中产生的摩尔纹所对应的第一影像与第二影像混合,以使所述第一影像隐蔽于所述第二影像中,所述第二影像为所述红色色阻单元、所述绿色色阻单元、所述蓝色色阻单元所形成的影像。
在上述三维显示面板中,所述红色色阻单元与所述透镜的部分对应,所述绿色色阻单元与所述透镜的部分对应,所述蓝色色阻单元与所述透镜的部分对应。
在上述三维显示面板中,所述透镜包括第一区域、第二区域和第三区域,所述第一区域、所述第二区域和所述第三区域均占所述透镜的面积的三分之一,所述红色色阻单元位于与所述第一区域对应的位置上,所述绿色色阻单元位于与所述第二区域对应的位置上,所述蓝色色阻单元位于与所述第三区域对应的位置上。
在上述三维显示面板中,所述红色色阻单元与至少一个所述透镜对应,所述绿色色阻单元与至少一个所述透镜对应,所述蓝色色阻单元与至少一个所述透镜对应。
在上述三维显示面板中,所述色阻阵列集成于所述透镜阵列内。
在上述三维显示面板中,所述透镜阵列包括镜片层和基底层,所述色阻阵列夹设于所述透镜阵列的镜片层和基底层之间。
在上述三维显示面板中,所述色阻阵列与所述透镜阵列叠加组合为一体。
在上述三维显示面板中,所述透镜设置为条状,至少两设置为条状的所述透镜并列设置,所述透镜所在的直线与所述显示面板中的扫描线所在的直线具有一夹角,所述夹角处于0度至90度的范围内。
一种上述三维显示面板中的单元图像,所述单元图像所在的位置与所述透镜所在的位置对应,所述单元图像的面积大于或等于所述透镜的面积。
在上述三维显示面板中的单元图像中,所述区域显示单元在垂直于所述透镜所在直线的方向上的宽度大于所述透镜在所述方向上的宽度。
有益效果
相对现有技术,本发明能够至少淡化该三维显示面板在显示图像过程中所产生的彩色摩尔纹,并提高观看视角。
附图说明
图1是本发明的三维显示面板的示意图;
图2为图1所示的三维显示面板中的透镜面板的第一实施例的示意图;
图3为图1所示的三维显示面板中的透镜面板的第二实施例的示意图;
图4为图1所示的三维显示面板中的透镜面板的第三实施例的示意图。
本发明的最佳实施方式
本说明书所使用的词语“实施例”意指用作实例、示例或例证。此外,本说明书和所附权利要求中所使用的冠词“一”一般地可以被解释为意指“一个或多个”,除非另外指定或从上下文可以清楚确定单数形式。
参考图1和图2,图1是本发明的三维显示面板的示意图,图2为图1所示的三维显示面板中的透镜面板102的第一实施例的示意图。
本发明的三维显示面板包括显示面板101和透镜面板102,所述显示面板101和所述透镜面板102叠加组合为一体,其中,所述显示面板101可以是TFT-LCD(Thin Film Transistor Liquid Crystal Display,薄膜晶体管液晶显示面板)、OLED(Organic Light Emitting Diode,有机发光二极管显示面板)等。
所述显示面板101用于显示图像。所述透镜面板102用于将所述显示面板101所显示的所述图像构造为三维(3D,3 Dimensions)图像。具体地,所述透镜面板102用于提供任意方向的视差(Parallax),以使所述三维显示面板实现裸眼3D显示。
所述透镜面板102包括透镜阵列201和色阻阵列202。所述透镜阵列201包括至少两个透镜20111,至少两个所述透镜20111以第一阵列的形式排列。所述色阻阵列202包括至少一个红色色阻单元2021,至少一个绿色色阻单元2022以及至少一个蓝色色阻单元2023。至少一个所述红色色阻单元2021,至少一个所述绿色色阻单元2022以及至少一个所述蓝色色阻单元2023以第二阵列的形式排列。
所述色阻阵列202用于淡化所述显示面板101在显示所述图像的过程中产生的彩色摩尔纹,以提高显示质量。具体地,所述色阻阵列202用于将所述摩尔纹所对应的第一影像与第二影像混合,以使所述第一影像隐蔽于所述第二影像中,即,降低所述第一影像的可察觉性,其中,所述第二影像为所述红色色阻单元2021、所述绿色色阻单元2022、所述蓝色色阻单元2023所形成的影像。
所述红色色阻单元2021内设置有红色色阻材料,所述绿色色阻单元2022内设置有绿色色阻材料,所述蓝色色阻单元2023内设置有蓝色色阻材料。
在本实施例中,所述红色色阻单元2021与所述透镜20111的部分对应,所述绿色色阻单元2022与所述透镜20111的部分对应,所述蓝色色阻单元2023与所述透镜20111的部分对应。例如,所述透镜20111包括第一区域、第二区域和第三区域,所述第一区域、所述第二区域和所述第三区域均占所述透镜20111的面积的三分之一,所述红色色阻单元2021位于与所述第一区域对应的位置上,所述绿色色阻单元2022位于与所述第二区域对应的位置上,所述蓝色色阻单元2023位于与所述第三区域对应的位置上。又例如,所述透镜20111包括第四区域和第五区域,所述第四区域占所述透镜20111的面积的三分之二,所述第五区域占所述透镜20111的面积的三分之一,所述红色色阻单元2021位于与所述透镜20111的所述第四区域对应的位置上,所述绿色色阻单元2022位于与所述透镜20111的所述第五区域以及相邻的另一个透镜20111的第五区域对应的位置上,所述蓝色色阻单元2023位于与相邻的另一个透镜20111的第四区域对应的位置上,诸如此类。
在本实施例中,所述透镜阵列201包括镜片层2011和基底层2012,所述镜片层2011设置于所述基底层2012上,所述色阻阵列202与所述透镜阵列201叠加组合为一体。具体地,所述透镜阵列201的所述基底层2012设置于所述色阻阵列202上,并且两者相互固定。
在上述技术方案中,由于所述透镜面板102内设置有色阻阵列202,因此所述显示面板101在显示所述图像的过程中所产生的至少彩色摩尔纹能够被所述色阻阵列202淡化,因此可以提高所述三维显示面板的显示质量。所述三维显示面板所对应的单元图像可适当的增大,从而提高观看视角。
进一步地,所述透镜20111设置为条状或者点状,至少两设置为条状或者点状的所述透镜20111并列设置,设置为条状的所述单个或者多个透镜20111所在的直线与所述显示面板101中的扫描线所在的直线具有一夹角,所述夹角处于0度至90度的范围内,例如,所述夹角为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。由于设置为条状的所述单个或者多个透镜20111所在的直线与所述显示面板101的扫描线具有所述夹角,并且所述夹角处于0度至90度的范围内,因此,当所述显示面板101显示所述图像时,会进一步弱化摩尔纹,提高了所述三维显示面板的显示质量。
图3为图1所示的三维显示面板中的透镜面板102的第二实施例的示意图。本实施例与上述第一实施例相似,不同之处在于:
在本实施例中,所述红色色阻单元2021与至少一个所述透镜20111对应,所述绿色色阻单元2022与至少一个所述透镜20111对应,所述蓝色色阻单元2023与至少一个所述透镜20111对应。例如,所述红色色阻单元2021、所述绿色色阻单元2022和所述蓝色色阻单元2023均与一个或两个所述透镜20111对应。
图4为图1所示的三维显示面板中的透镜面板102的第三实施例的示意图。本实施例与上述第一或第二实施例相似,不同之处在于:
在本实施例中,所述色阻阵列202集成于所述透镜阵列201内。例如,所述色阻阵列202夹设于所述透镜阵列201的镜片层2011和基底层2012之间。
本发明的三维显示面板中的单元图像所在的位置与所述透镜所在的位置对应,所述单元图像的面积大于或等于所述透镜的面积。即,所述单元图像所对应的区域显示单元所在的位置与所述透镜所在的位置对应,所述区域显示单元的面积大于或等于所述透镜的面积。
优选地,所述单元图像的形状与所述透镜的形状相同,或者,在所述单元图像的形状与所述透镜的形状不相同的情况下,所述单元图像在垂直于所述透镜所在直线的方向上的宽度大于所述透镜在所述方向上的宽度。即,所述区域显示单元的形状与所述透镜的形状相同,或者,在所述区域显示单元的形状与所述透镜的形状不相同的情况下,所述区域显示单元在垂直于所述透镜所在直线的方向上的宽度大于所述透镜在所述方向上的宽度。
通过上述技术方案,可以增大所述三维显示面板的视角。
尽管已经相对于一个或多个实现方式示出并描述了本发明,但是本领域技术人员基于对本说明书和附图的阅读和理解将会想到等价变型和修改。本发明包括所有这样的修改和变型,并且仅由所附权利要求的范围限制。特别地关于由上述组件执行的各种功能,用于描述这样的组件的术语旨在对应于执行所述组件的指定功能(例如其在功能上是等价的)的任意组件(除非另外指示),即使在结构上与执行本文所示的本说明书的示范性实现方式中的功能的公开结构不等同。此外,尽管本说明书的特定特征已经相对于若干实现方式中的仅一个被公开,但是这种特征可以与如可以对给定或特定应用而言是期望和有利的其他实现方式的一个或多个其他特征组合。而且,就术语“包括”、“具有”、“含有”或其变形被用在具体实施方式或权利要求中而言,这样的术语旨在以与术语“包含”相似的方式包括。
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。

Claims (20)

  1. 一种透镜面板,其中,所述透镜面板包括:
    一透镜阵列,所述透镜阵列包括:
    至少两个透镜,至少两个所述透镜以第一阵列的形式排列;
    一色阻阵列,所述色阻阵列包括:
    至少一个红色色阻单元;
    至少一个绿色色阻单元;以及
    至少一个蓝色色阻单元;
    其中,至少一个所述红色色阻单元,至少一个所述绿色色阻单元以及至少一个所述蓝色色阻单元以第二阵列的形式排列。
  2. 根据权利要求1所述的透镜面板,其中,所述色阻阵列用于将所述显示面板在显示所述图像的过程中产生的摩尔纹所对应的第一影像与第二影像混合,以使所述第一影像隐蔽于所述第二影像中,所述第二影像为所述红色色阻单元、所述绿色色阻单元、所述蓝色色阻单元所形成的影像。
  3. 根据权利要求1所述的透镜面板,其中,所述红色色阻单元与所述透镜的部分对应,所述绿色色阻单元与所述透镜的部分对应,所述蓝色色阻单元与所述透镜的部分对应。
  4. 根据权利要求3所述的透镜面板,其中,所述透镜包括第一区域、第二区域和第三区域,所述第一区域、所述第二区域和所述第三区域均占所述透镜的面积的三分之一,所述红色色阻单元位于与所述第一区域对应的位置上,所述绿色色阻单元位于与所述第二区域对应的位置上,所述蓝色色阻单元位于与所述第三区域对应的位置上。
  5. 根据权利要求1所述的透镜面板,其中,所述红色色阻单元与至少一个所述透镜对应,所述绿色色阻单元与至少一个所述透镜对应,所述蓝色色阻单元与至少一个所述透镜对应。
  6. 根据权利要求1所述的透镜面板,其中,所述色阻阵列集成于所述透镜阵列内。
  7. 根据权利要求6所述的透镜面板,其中,所述透镜阵列包括镜片层和基底层,所述色阻阵列夹设于所述透镜阵列的镜片层和基底层之间。
  8. 根据权利要求1所述的透镜面板,其中,所述色阻阵列与所述透镜阵列叠加组合为一体。
  9. 根据权利要求1所述的透镜面板,其中,所述透镜设置为条状,至少两设置为条状的所述透镜并列设置,所述透镜所在的直线与所述显示面板中的扫描线所在的直线具有一夹角,所述夹角处于0度至90度的范围内。
  10. 一种三维显示面板,其中,所述三维显示面板包括:
    一显示面板;以及
    一透镜面板,所述透镜面板包括:
    一透镜阵列,所述透镜阵列包括:
    至少两个透镜,至少两个所述透镜以第一阵列的形式排列;
    一色阻阵列,所述色阻阵列包括:
    至少一个红色色阻单元;
    至少一个绿色色阻单元;以及
    至少一个蓝色色阻单元;
    其中,至少一个所述红色色阻单元,至少一个所述绿色色阻单元以及至少一个所述蓝色色阻单元以第二阵列的形式排列。
  11. 根据权利要求10所述的三维显示面板,其中,所述色阻阵列用于将所述显示面板在显示所述图像的过程中产生的摩尔纹所对应的第一影像与第二影像混合,以使所述第一影像隐蔽于所述第二影像中,所述第二影像为所述红色色阻单元、所述绿色色阻单元、所述蓝色色阻单元所形成的影像。
  12. 根据权利要求10所述的三维显示面板,其中,所述红色色阻单元与所述透镜的部分对应,所述绿色色阻单元与所述透镜的部分对应,所述蓝色色阻单元与所述透镜的部分对应。
  13. 根据权利要求12所述的三维显示面板,其中,所述透镜包括第一区域、第二区域和第三区域,所述第一区域、所述第二区域和所述第三区域均占所述透镜的面积的三分之一,所述红色色阻单元位于与所述第一区域对应的位置上,所述绿色色阻单元位于与所述第二区域对应的位置上,所述蓝色色阻单元位于与所述第三区域对应的位置上。
  14. 根据权利要求10所述的三维显示面板,其中,所述红色色阻单元与至少一个所述透镜对应,所述绿色色阻单元与至少一个所述透镜对应,所述蓝色色阻单元与至少一个所述透镜对应。
  15. 根据权利要求10所述的三维显示面板,其中,所述色阻阵列集成于所述透镜阵列内。
  16. 根据权利要求15所述的三维显示面板,其中,所述透镜阵列包括镜片层和基底层,所述色阻阵列夹设于所述透镜阵列的镜片层和基底层之间。
  17. 根据权利要求10所述的三维显示面板,其中,所述色阻阵列与所述透镜阵列叠加组合为一体。
  18. 根据权利要求10所述的三维显示面板,其中,所述透镜设置为条状,至少两设置为条状的所述透镜并列设置,所述透镜所在的直线与所述显示面板中的扫描线所在的直线具有一夹角,所述夹角处于0度至90度的范围内。
  19. 一种如权利要求10所述的三维显示面板中的单元图像,其中,所述单元图像所在的位置与所述透镜所在的位置对应,所述单元图像的面积大于或等于所述透镜的面积。
  20. 根据权利要求19所述的三维显示面板中的单元图像,其中,所述区域显示单元在垂直于所述透镜所在直线的方向上的宽度大于所述透镜在所述方向上的宽度。
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