WO2014071592A1 - 液晶盒及液晶显示装置 - Google Patents

液晶盒及液晶显示装置 Download PDF

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Publication number
WO2014071592A1
WO2014071592A1 PCT/CN2012/084310 CN2012084310W WO2014071592A1 WO 2014071592 A1 WO2014071592 A1 WO 2014071592A1 CN 2012084310 W CN2012084310 W CN 2012084310W WO 2014071592 A1 WO2014071592 A1 WO 2014071592A1
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Prior art keywords
liquid crystal
optical lens
color filter
crystal cell
filter substrate
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English (en)
French (fr)
Inventor
陈峙彣
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TCL China Star Optoelectronics Technology Co Ltd
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Shenzhen China Star Optoelectronics Technology Co Ltd
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Priority to US13/700,674 priority Critical patent/US20140125928A1/en
Publication of WO2014071592A1 publication Critical patent/WO2014071592A1/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
    • G02F1/1335Structural association of cells with optical devices, e.g. polarisers or reflectors
    • G02F1/133526Lenses, e.g. microlenses or Fresnel lenses
    • 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

Definitions

  • the present invention relates to the field of liquid crystal display technology, and in particular to a liquid crystal cell, and to a liquid crystal display device.
  • liquid crystal display technology has made great progress compared with the past.
  • the current liquid crystal display device is more energy-saving and energy-saving, and the display precision has also been greatly improved.
  • more advanced technologies will be applied to the LCD display field in the future.
  • liquid crystal display device in order to improve the refractive power of the liquid crystal display (lens Power), a thicker liquid crystal cell is often required, but the thickness of the liquid crystal cell is not conducive to the thinning of the liquid crystal display device, and the manufacturing cost of the liquid crystal cell and the liquid crystal display device is high.
  • the technical problem to be solved by the embodiments of the present invention is to provide a liquid crystal cell and a liquid crystal display device, which can not only increase the refractive power, but also effectively reduce the thickness of the liquid crystal cell and reduce the cost.
  • a technical solution adopted by the present invention is to provide a liquid crystal display device, wherein the liquid crystal display device is provided with a liquid crystal cell, wherein the liquid crystal cell includes a color filter substrate and an active array substrate disposed at intervals, and optical Lens and liquid crystal layer.
  • the optical lens has a circular arc shape and is disposed adjacent to the color filter substrate; the liquid crystal layer is sandwiched between the color filter substrate and the active array substrate; wherein, the optical lens is disposed on the color filter substrate away from the active array One side of the substrate and the convex surface of the optical lens face away from the color filter substrate, or the optical lens is disposed on a side of the color filter substrate close to the active array substrate and the convex surface of the optical lens faces away from the active array substrate.
  • a liquid crystal cell including a color filter substrate and an active array substrate and an optical lens which are spaced apart from each other.
  • the optical lens has a circular arc shape and is disposed adjacent to the color filter substrate.
  • the optical lens is disposed on a side of the color filter substrate away from the active array substrate, and the convex surface of the optical lens faces away from the color filter substrate.
  • the optical lens is disposed on a side of the color filter substrate adjacent to the active array substrate, and the convex surface of the optical lens faces away from the active array substrate.
  • the liquid crystal cell further comprises a liquid crystal layer, and the liquid crystal layer is sandwiched between the optical lens and the active array substrate.
  • a liquid crystal display device which is provided with a liquid crystal cell including spaced color filter substrates and active array substrates and optical lens.
  • the optical lens has a circular arc shape and is disposed adjacent to the color filter substrate.
  • the optical lens is disposed on a side of the color filter substrate away from the active array substrate, and the convex surface of the optical lens faces away from the color filter substrate.
  • the optical lens is disposed on a side of the color filter substrate adjacent to the active array substrate, and the convex surface of the optical lens faces away from the active array substrate.
  • the liquid crystal display device further includes a liquid crystal layer interposed between the optical lens and the active array substrate.
  • the embodiment of the invention provides an optical lens in the liquid crystal cell, which not only can increase the refractive power of the liquid crystal cell, but also can effectively reduce the thickness of the liquid crystal cell and reduce the cost of the liquid crystal cell.
  • 1a is a partial structural view of a liquid crystal cell in a three-dimensional mode according to an embodiment of the present invention
  • Figure 1b is a partial structural view of the liquid crystal cell shown in Figure 1a in a two-dimensional mode
  • FIG. 2a is a partial structural view of a liquid crystal cell in a three-dimensional mode according to another embodiment of the present invention.
  • Fig. 2b is a partial structural view of the liquid crystal cell shown in Fig. 2a in a two-dimensional mode.
  • FIG. 1a is a partial structural diagram of a liquid crystal cell in a three-dimensional mode according to an embodiment of the present invention.
  • the liquid crystal cell includes, but is not limited to, a color filter substrate 11, an active matrix substrate 12, an optical lens 13, and a liquid crystal layer 14.
  • the color filter substrate 11 is spaced apart from the active matrix substrate 12, and the liquid crystal layer 14 is interposed between the color filter substrate 11 and the active matrix substrate 12.
  • the optical lens 13 is disposed in a circular arc shape and disposed adjacent to the color filter substrate 11. Specifically, the optical lens 13 may be disposed on a side of the color filter substrate 11 away from the active array substrate 12, and the convex surface of the optical lens 13 faces away from the color filter. Light sheet substrate 11.
  • the number of the optical lenses 13 may be a plurality, and the specific number thereof may be set according to the structural requirements of the specific embodiment, which is not limited herein.
  • the embodiment of the present invention changes the focal length of the liquid crystal lens in the liquid crystal cell by the optical lens 13, which not only can increase the refractive power of the liquid crystal cell, but also can effectively reduce the thickness of the liquid crystal cell and reduce the cost of the liquid crystal cell.
  • FIG. 1a is a partial structural view of the liquid crystal cell shown in Fig. 1a in a two-dimensional mode.
  • the voltage on the color filter substrate 11 and the active array substrate 12 can be changed, thereby changing the alignment direction of the liquid crystal molecules on the liquid crystal layer 14, so that the liquid crystal molecules of the liquid crystal layer 14 are Equivalently, the translation occurs at the geometrical position. In this way, the influence of the optical lens 13 on the two-dimensional mode can be partially offset, and the display effect after the liquid crystal cell is switched to the two-dimensional mode is ensured.
  • the optical lens 13 is disposed on the color filter substrate 11, which not only increases the refractive power of the liquid crystal cell, but also effectively reduces the thickness of the liquid crystal cell and reduces the cost of the liquid crystal cell.
  • FIG. 2a is a partial structural diagram of a liquid crystal cell in a three-dimensional mode according to another embodiment of the present invention.
  • the liquid crystal cell includes a color filter substrate 21, an active array substrate 22, an optical lens 23, and a liquid crystal layer 24.
  • the color filter substrate 21 is spaced apart from the active matrix substrate 22, and the liquid crystal layer 24 is interposed between the color filter substrate 21 and the active matrix substrate 22. Further, the liquid crystal layer 24 is interposed on the optical lens. 23 is between the active array substrate 22.
  • the optical lens 23 is disposed in a circular arc shape adjacent to the color filter substrate 21. Specifically, the optical lens 23 may be disposed on a side of the color filter substrate 21 adjacent to the active array substrate 22. The convex surface of the optical lens 23 faces away from the active array. Substrate 22.
  • the optical lens 23 and the color filter substrate 21 are fixed, reference may be made to the fixing manner of the optical lens by those skilled in the lens field, and details are not described herein.
  • the embodiment of the present invention changes the focal length of the liquid crystal lens in the liquid crystal cell by the optical lens 23 since the embodiment of the present invention changes the focal length of the liquid crystal lens in the liquid crystal cell by the optical lens 23, not only the refractive power of the liquid crystal cell can be increased, but also the thickness of the liquid crystal cell can be effectively reduced and the cost of the liquid crystal cell can be reduced.
  • Fig. 2b is a partial structural view of the liquid crystal cell shown in Fig. 2a in a two-dimensional mode.
  • the voltage on the color filter substrate 21 and the active array substrate 22 or the manner of additionally adding the electrode array can be changed, thereby changing the alignment direction of the liquid crystal molecules on the liquid crystal layer 24.
  • the liquid crystal molecules on the liquid crystal layer 24 are equivalently translated at the geometrical position. In this way, the influence of the optical lens 23 on the two-dimensional mode can be partially canceled, and the display after the liquid crystal cell is switched to the two-dimensional mode is ensured. effect.
  • the optical lens 23 is disposed on the color filter substrate 21, which not only increases the refractive power of the liquid crystal cell, but also effectively reduces the thickness of the liquid crystal cell and reduces the cost of the liquid crystal cell.
  • the embodiment of the present invention further provides a liquid crystal display device.
  • the liquid crystal display device is configured with a liquid crystal cell, including but not limited to a color filter substrate, an active array substrate, an optical lens, and a liquid crystal layer.
  • the color filter substrate is spaced apart from the active array substrate, and the liquid crystal layer is interposed between the color filter substrate and the active array substrate.
  • the optical lens is disposed adjacent to the color filter substrate. Specifically, the optical lens may be disposed on a side of the color filter substrate away from the active array substrate, and the convex surface of the optical lens faces away from the color filter substrate.
  • the fixing manner of the optical lens and the color filter substrate reference may be made to the fixing manner of the optical lens by those skilled in the lens field, and details are not described herein.
  • the optical lens may also be disposed on a side of the color filter substrate adjacent to the active array substrate, specifically disposed between the color filter substrate and the liquid crystal layer (ie, the liquid crystal layer is sandwiched between the optical layer). Between the lens and the active array substrate, the convex surface of the optical lens faces away from the color filter substrate.
  • the optical lens can also be disposed on other components of the liquid crystal display device.
  • the specific position of the optical lens disposed in the liquid crystal display device is not limited. There are a plurality of optical lenses, and the specific number thereof can be set according to the structural requirements of the specific embodiment, which is not limited herein.
  • the embodiment of the present invention can also switch the three-dimensional mode to the two-dimensional mode.
  • the specific switching process refer to the above, and no further details are provided herein.
  • the optical lens is disposed on the color filter substrate, which not only can increase the refractive power of the liquid crystal display device, but also can effectively reduce the thickness of the liquid crystal display device and reduce the cost of the liquid crystal display device.

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  • Physics & Mathematics (AREA)
  • Nonlinear Science (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Liquid Crystal (AREA)
  • Mathematical Physics (AREA)
  • Chemical & Material Sciences (AREA)
  • Crystallography & Structural Chemistry (AREA)

Abstract

一种液晶盒和液晶显示装置,液晶盒包括间隔设置的彩色滤光片基板(11)、有源阵列基板(12)和光学透镜(13)。其中光学透镜(13)紧邻彩色滤光片基板(11)设置。这种结构能增加液晶盒的屈光能力,降低液晶盒的厚度。

Description

液晶盒及液晶显示装置
【技术领域】
本发明涉及液晶显示技术领域,具体涉及一种液晶盒,还涉及一种液晶显示装置。
【背景技术】
随着科技的发展,液晶显示技术相比以前已经有了很大的进步,比如现在的液晶显示装置更加省电和节能,且显示精度也有了很大的提高。可以肯定的是,未来还会有更多的先进技术将运用到液晶显示领域。
在现有的液晶显示装置中,为了提高液晶显示的屈光能力(lens power),往往需要较厚的液晶盒,但是液晶盒的厚度不利于液晶显示装置的轻薄化,还会导致液晶盒及液晶显示装置的生产制造成本偏高。
【发明内容】
本发明实施例主要解决的技术问题是提供一种液晶盒和液晶显示装置,不仅能够增加屈光能力,还可以有效地降低液晶盒的厚度并降低成本。
为解决上述技术问题,本发明采用的一个技术方案是:提供一种液晶显示装置,液晶显示装置配置有液晶盒,其中,液晶盒包括间隔设置的彩色滤光片基板和有源阵列基板、光学透镜以及液晶层。光学透镜呈圆弧形且紧邻彩色滤光片基板设置;液晶层夹设于彩色滤光片基板和有源阵列基板之间;其中,其中,光学透镜设置于彩色滤光片基板远离有源阵列基板的一侧且光学透镜的凸面背离彩色滤光片基板,或光学透镜设置于彩色滤光片基板靠近有源阵列基板的一侧且光学透镜的凸面背离有源阵列基板。
其中,光学透镜为多个。
为解决上述技术问题,本发明采用的另一个技术方案是:提供一种液晶盒,该液晶盒包括间隔设置的彩色滤光片基板和有源阵列基板和光学透镜。其中光学透镜呈圆弧形且紧邻彩色滤光片基板设置。
其中,光学透镜设置于彩色滤光片基板远离有源阵列基板的一侧,光学透镜的凸面背离彩色滤光片基板。
其中,光学透镜设置于彩色滤光片基板靠近有源阵列基板的一侧,光学透镜的凸面背离有源阵列基板。
其中,光学透镜为多个。
其中,液晶盒还包括液晶层,液晶层夹设于光学透镜和有源阵列基板之间。
为解决上述技术问题,本发明采用的又一个技术方案是:提供一种液晶显示装置,液晶显示装置配置有液晶盒,该液晶盒包括间隔设置的彩色滤光片基板和有源阵列基板和光学透镜。光学透镜呈圆弧形且紧邻彩色滤光片基板设置。
其中,光学透镜设置于彩色滤光片基板远离有源阵列基板的一侧,光学透镜的凸面背离彩色滤光片基板。
其中,光学透镜设置于彩色滤光片基板靠近有源阵列基板的一侧,光学透镜的凸面背离有源阵列基板。
其中,光学透镜为多个。
其中,液晶显示装还包括液晶层,液晶层夹设于光学透镜和有源阵列基板之间。
本发明实施例在液晶盒内设置光学透镜,不仅能够增加液晶盒的屈光能力,还可以有效地降低液晶盒的厚度并降低液晶盒的成本。
【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1a是本发明一实施例液晶盒在三维模式下的部分结构示意图;
图1b是图1a所示的液晶盒在二维模式下的部分结构示意图;
图2a是本发明另一实施例液晶盒在三维模式下的部分结构示意图;
图2b是图2a所示的液晶盒在二维模式下的部分结构示意图。
【具体实施方式】
下面结合附图和实施例,对本发明作进一步的详细描述。以下实施例仅用于说明本发明,但不应用来限制本发明的范围。
请参阅图1a,图1a是本发明一实施例液晶盒在三维模式下的部分结构示意图。本实施例中,液晶盒包括但不限于彩色滤光片基板11、有源阵列基板12、光学透镜13以及液晶层14。
其中,彩色滤光片基板11与有源阵列基板12间隔设置,液晶层14夹设于彩色滤光片基板11和有源阵列基板12之间。光学透镜13呈圆弧形且紧邻彩色滤光片基板11设置,具体地,光学透镜13可以设置于彩色滤光片基板11远离有源阵列基板12的一侧,光学透镜13的凸面背离彩色滤光片基板11。光学透镜13与彩色滤光片基板11的固定方式可参考透镜领域技术人员对于光学透镜的固定方式设置,在此不作赘述。光学透镜13可以为多个,其具体数目可根据具体实施例的结构需要而自行设定,本发明在此不作限定。
本发明实施例通过光学透镜13改变液晶盒中液晶透镜的焦距,不仅能够增加液晶盒的屈光能力,还可以有效地降低液晶盒的厚度并降低液晶盒的成本。
以上讲述了本发明实施例液晶盒的具体结构,下面将结合图1a和图1b简述本发明实施例实现三维-二维切换的过程。图1b是图1a所示的液晶盒在二维模式下的部分结构示意图。
用户如果需要将三维模式切换为二维模式,可以改变彩色滤光片基板11和有源阵列基板12上的电压,进而改变液晶层14上的液晶分子的排列方向,使液晶层14的液晶分子等效地在几何位置上发生平移,通过这种方式可以部分抵消设置光学透镜13后对二维模式所带来的影响,保证液晶盒切换为二维模式后的显示效果。
本发明实施例在彩色滤光片基板11上设置光学透镜13,不仅能够增加液晶盒的屈光能力,还可以有效地降低液晶盒的厚度并降低液晶盒的成本。
请参阅图2a,图2a是本发明另一实施例液晶盒在三维模式下的部分结构示意图。
本实施例中,液晶盒包括彩色滤光片基板21、有源阵列基板22、光学透镜23以及液晶层24。
其中,彩色滤光片基板21与有源阵列基板22间隔设置,液晶层24夹设于彩色滤光片基板21和有源阵列基板22之间,进一步而言,液晶层24夹设于光学透镜23和有源阵列基板22之间。光学透镜23呈圆弧形紧邻彩色滤光片基板21设置,具体地,光学透镜23可以设置于彩色滤光片基板21靠近有源阵列基板22的一侧,光学透镜23的凸面背离有源阵列基板22。光学透镜23与彩色滤光片基板21的固定方式可参考透镜领域技术人员对于光学透镜的固定方式设置,在此不作赘述。光学透镜23可以为多个,其具体数目可根据具体实施例的结构需要而自行设定,在此不作限定。
由于本发明实施例通过光学透镜23改变液晶盒中液晶透镜的焦距,不仅能够增加液晶盒的屈光能力,还可以有效地降低液晶盒的厚度并降低液晶盒的成本。
以上讲述了本发明实施例液晶盒的具体结构,下面将结合图2a和图2b简述本发明实施例实现三维-二维切换的过程。图2b是图2a所示的液晶盒在二维模式下的部分结构示意图。
用户如果需要将三维模式切换为二维模式,可以改变彩色滤光片基板21和有源阵列基板22上的电压或者额外增加电极阵列的方式,进而改变液晶层24上的液晶分子的排列方向,使液晶层24上的液晶分子等效地在几何位置发生平移,通过这种方式可以部分抵消设置光学透镜23后对二维模式所带来的影响,保证液晶盒切换为二维模式后的显示效果。
本发明实施例在彩色滤光片基板21上设置光学透镜23,不仅能够增加液晶盒的屈光能力,还可以有效地降低液晶盒的厚度并降低液晶盒的成本。
本发明实施例还提供一种液晶显示装置,本实施例中,液晶显示装置配置有液晶盒,该液晶盒包括但不限于彩色滤光片基板、有源阵列基板、光学透镜以及液晶层。
其中,彩色滤光片基板与有源阵列基板间隔设置,液晶层夹设于彩色滤光片基板和有源阵列基板之间。光学透镜紧邻彩色滤光片基板设置,具体地,光学透镜可以设置于彩色滤光片基板远离有源阵列基板的一侧,光学透镜的凸面背离彩色滤光片基板。光学透镜与彩色滤光片基板的固定方式可参考透镜领域技术人员对于光学透镜的固定方式设置,在此不作赘述。在本发明其他的实施例中,光学透镜也可以设置于彩色滤光片基板靠近有源阵列基板的一侧,具体设置在彩色滤光片基板和液晶层之间(即液晶层夹设于光学透镜和有源阵列基板之间),光学透镜的凸面背离彩色滤光片基板。当然,光学透镜也可以设置在液晶显示装置的其他部件上,本发明对光学透镜设置在液晶显示装置中的具体位置不作限定。光学透镜为多个,其具体数目可根据具体实施例的结构需要而自行设定,本发明在此不作限定。
本发明实施例也可以将三维模式切换为二维模式,具体的切换过程请参照上文,在此不作赘述。
本发明实施例在彩色滤光片基板上设置光学透镜,不仅能够增加液晶显示装置的屈光能力,还可以有效地降低液晶显示装置的厚度并降低液晶显示装置的成本。
以上所述仅为本发明的实施例,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 (12)

  1. 一种液晶显示装置,所述液晶显示装置配置有液晶盒,其中,所述液晶盒包括:
    间隔设置的彩色滤光片基板和有源阵列基板;
    光学透镜,所述光学透镜呈圆弧形且紧邻所述彩色滤光片基板设置;
    液晶层,所述液晶层夹设于所述彩色滤光片基板和所述有源阵列基板之间;
    其中,所述光学透镜设置于所述彩色滤光片基板远离所述有源阵列基板的一侧且所述光学透镜的凸面背离所述彩色滤光片基板,或所述光学透镜设置于所述彩色滤光片基板靠近所述有源阵列基板的一侧且所述光学透镜的凸面背离所述有源阵列基板。
  2. 根据权利要求1所述的液晶显示装置,其中,所述光学透镜为多个。
  3. 一种液晶盒,其中,所述液晶盒包括:
    间隔设置的彩色滤光片基板和有源阵列基板;
    光学透镜,所述光学透镜呈圆弧形且紧邻所述彩色滤光片基板设置。
  4. 根据权利要求3所述的液晶盒,其中,所述光学透镜设置于所述彩色滤光片基板远离所述有源阵列基板的一侧,所述光学透镜的凸面背离所述彩色滤光片基板。
  5. 根据权利要求3所述的液晶盒,其中,所述光学透镜设置于所述彩色滤光片基板靠近所述有源阵列基板的一侧,所述光学透镜的凸面背离所述有源阵列基板。
  6. 根据权利要求3所述的液晶盒,其中,所述光学透镜为多个。
  7. 根据权利要求3所述的液晶盒,其中,所述液晶盒还包括液晶层,所述液晶层夹设于所述光学透镜和所述有源阵列基板之间。
  8. 一种液晶显示装置,所述液晶显示装置配置有液晶盒,其中,所述液晶盒包括:
    间隔设置的彩色滤光片基板和有源阵列基板;
    光学透镜,所述光学透镜呈圆弧形且紧邻所述彩色滤光片基板设置。
  9. 根据权利要求8所述的液晶显示装置,其中,所述光学透镜设置于所述彩色滤光片基板远离所述有源阵列基板的一侧,所述光学透镜的凸面背离所述彩色滤光片基板。
  10. 根据权利要求8所述的液晶显示装置,其中,所述光学透镜设置于所述彩色滤光片基板靠近所述有源阵列基板的一侧,所述光学透镜的凸面背离所述有源阵列基板。
  11. 根据权利要求8任一项所述的液晶显示装置,其中,所述光学透镜为多个。
  12. 根据权利要求10所述的液晶显示装置,其中,所述液晶显示装还包括液晶层,所述液晶层夹设于所述光学透镜和所述有源阵列基板之间。
PCT/CN2012/084310 2012-11-06 2012-11-08 液晶盒及液晶显示装置 Ceased WO2014071592A1 (zh)

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