WO2016127456A1 - 阵列基板及液晶显示面板 - Google Patents

阵列基板及液晶显示面板 Download PDF

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Publication number
WO2016127456A1
WO2016127456A1 PCT/CN2015/073703 CN2015073703W WO2016127456A1 WO 2016127456 A1 WO2016127456 A1 WO 2016127456A1 CN 2015073703 W CN2015073703 W CN 2015073703W WO 2016127456 A1 WO2016127456 A1 WO 2016127456A1
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WIPO (PCT)
Prior art keywords
substrate
array substrate
transmissive region
transmissive
disposed
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Ceased
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PCT/CN2015/073703
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English (en)
French (fr)
Inventor
陈珍霞
马小龙
李泳锐
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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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Publication of WO2016127456A1 publication Critical patent/WO2016127456A1/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
    • G02F1/1339Gaskets; Spacers; Sealing of cells
    • 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 liquid crystal display, and in particular to an array substrate and a liquid crystal display panel.
  • the liquid crystal display panel includes an array substrate, a color filter substrate, and a liquid crystal layer disposed between the array substrate and the color filter substrate.
  • the liquid crystal layer is fixed between the array substrate and the color filter substrate through a plastic frame disposed at an edge of the array substrate.
  • the plastic frame is generally composed of acrylic, epoxy resin and photoinitiator, and is cured by heating or UV light to irradiate the plastic frame, thereby bonding the color film substrate and the array substrate together.
  • FIG. 1 is a schematic structural view of a conventional array substrate.
  • the array substrate 10 includes a substrate substrate 11, a bezel 12, and a metal line 13, such as a data line or a scan line.
  • a part of the plastic frame 12 is located above the metal wire 13 so that when the plastic frame 12 is cured by UV light, the plastic frame 12 of the portion A in FIG. 1 is not cured due to the blocking of the metal wire 13. Liquid crystal leakage may occur at the plastic frame 12 which is not completely cured, and the plastic frame 12 which is not completely cured may cause contamination of the liquid crystal, resulting in poor display of the corresponding liquid crystal display panel.
  • the object of the present invention is to provide an array substrate and a liquid crystal display panel which can effectively cure all the plastic frames and avoid contamination of the liquid crystal by the uncured plastic frame; to solve the existing array substrate and liquid crystal display panel.
  • An embodiment of the present invention provides an array substrate, including:
  • a non-transmissive region disposed on the substrate substrate
  • a reflective layer disposed between the non-transmissive region and the substrate substrate, comprising a plurality of gaps for passing solidified UV light through the non-transmissive regions and reflecting to the non-transmissive regions
  • the reflective surface on;
  • plastic frame layer disposed on the non-transparent area and between the two adjacent non-transparent areas for forming a plastic frame
  • the cured UV light is incident perpendicular to a plane of the substrate substrate.
  • the reflective surface is disposed under the non-transmissive region.
  • the reflective layer and the non-transmissive region satisfy the following conditions:
  • is the angle between the reflective surface and the plane of the non-transmissive region
  • b is the thickness of the reflective layer
  • c is the spacing between adjacent non-transmissive regions.
  • the non-transmissive regions are data lines, scan lines or black matrices.
  • the reflective surface is a metal reflective surface.
  • An embodiment of the present invention provides an array substrate, including:
  • a non-transmissive region disposed on the substrate substrate
  • a reflective layer disposed between the non-transmissive region and the substrate substrate, comprising a plurality of gaps for passing solidified UV light through the non-transmissive regions and reflecting to the non-transmissive regions
  • the reflective surface on;
  • a plastic frame layer is disposed on the non-transparent area for forming a plastic frame.
  • the reflective surface is disposed under the non-transmissive region.
  • the bezel layer is further disposed between two adjacent non-transmissive regions.
  • the reflective layer and the non-transmissive region satisfy the following conditions:
  • is the angle between the reflective surface and the plane of the non-transmissive region
  • b is the thickness of the reflective layer
  • c is the spacing between adjacent non-transmissive regions.
  • the cured UV light is incident perpendicular to a plane of the substrate substrate.
  • the non-transparent area is a data line, a scan line or a black matrix.
  • the reflective surface is a metal reflective surface.
  • the present invention also provides a liquid crystal display panel, comprising an array substrate, a color filter substrate, and a liquid crystal layer disposed between the array substrate and the color filter substrate, wherein the array substrate and the color filter substrate are connected by a plastic frame;
  • the array substrate comprises:
  • a non-transmissive region disposed on the substrate substrate
  • a reflective layer disposed between the non-transmissive region and the substrate substrate, comprising a plurality of gaps for passing solidified UV light through the non-transmissive regions and reflecting to the non-transmissive regions
  • the reflective surface on;
  • a plastic frame layer is disposed on the non-transparent area for forming a plastic frame.
  • the reflective surface is disposed under the non-transmissive region.
  • the bezel layer is further disposed between two adjacent non-transmissive regions.
  • the reflective layer and the non-transmissive region satisfy the following conditions:
  • is the angle between the reflective surface and the plane of the non-transmissive region
  • b is the thickness of the reflective layer
  • c is the spacing between adjacent non-transmissive regions.
  • the cured UV light is incident perpendicular to a plane of the substrate substrate.
  • the non-transparent area is a data line, a scan line or a black matrix.
  • the reflective surface is a metal reflective surface.
  • the array substrate and the liquid crystal display panel of the present invention improve the curing rate of the plastic frame by the arrangement of the reflective layer, and avoid the pollution of the liquid crystal caused by the uncured plastic frame;
  • Some array substrates and liquid crystal display panels have a low frame curing rate and the uncured plastic frame is susceptible to contamination of the liquid crystal.
  • 1 is a schematic structural view of a conventional array substrate
  • FIG. 2 is a schematic structural view of a preferred embodiment of an array substrate of the present invention.
  • Fig. 3 is an enlarged view of a portion B of Fig. 2.
  • FIG. 2 is a schematic structural view of a preferred embodiment of the array substrate of the present invention.
  • the array substrate 20 of the preferred embodiment includes a substrate substrate 21, a non-transmissive region 22, a reflective layer 23, and a bezel layer 24.
  • the non-transmissive region 22 is disposed on the substrate substrate 21; the non-transmissive region 22 may be an opaque component such as a data line, a scan line, or a black matrix of the liquid crystal display panel.
  • the reflective layer 23 is disposed between the non-transmissive region 22 and the substrate substrate 21 and includes a plurality of reflective surfaces 231, preferably metal reflective surfaces; the reflective surface 231 is used to pass curing UV light between the non-transmissive regions 22 The gap and the solidified UV light are reflected onto the non-transmissive region 22.
  • the bezel layer 24 is disposed on the non-transmissive region 22 and between the adjacent two non-transparent regions 22 for forming a plastic frame.
  • the reflective surface 231 of the reflective layer 23 is disposed under the non-transmissive region 22.
  • FIG. 3 is an enlarged view of a portion B of FIG.
  • the reflective layer 23 and the non-transmissive region 22 satisfy the following conditions:
  • is the angle between the reflecting surface 231 and the plane of the non-transmissive region 22
  • b is the thickness of the reflective layer 23
  • c is the spacing between adjacent non-transmissive regions 22.
  • the curing UV light is perpendicular to the plane of the substrate substrate 21, incident from the substrate substrate 21 side; when the cured UV light is incident on the reflective surface 231 of the reflective layer 23 At this time, the solidified UV light is emitted on the reflecting surface 231.
  • the reflective layer 23 and the non-transmissive region 22 of the preferred embodiment satisfy the condition of the formula (1) such that all of the solidified UV light reflected on the reflective surface 231 can pass through the gap between the non-transmissive regions 22 and be reflected to the non-transparent region.
  • the bezel layer 24 located above the non-transmissive region 22 is irradiated so that the bezel on the bezel layer 24 of the A' region can be completely cured.
  • the thickness c of the non-transmissive region 22, the spacing s between the adjacent non-transmissive regions 22, and the thickness b of the reflective layer 23 may be a fixed amount, and the angle ⁇ between the reflective surface 231 and the plane of the non-transmissive region 22 may be
  • the designer of the array substrate 20 can determine the reflective surface 231 according to the formula (1), the thickness c of the non-transmissive region 22, the pitch s between the adjacent non-transmissive regions 22, and the thickness b of the reflective layer 23.
  • the angle ⁇ with the plane of the non-transparent area 22 is used to achieve an optimum frame curing effect.
  • the array substrate 20 of the preferred embodiment not only improves the utilization rate of curing UV light, but also avoids the occurrence of incomplete curing of the bezel.
  • a color filter substrate which may include a substrate substrate, a non-transmissive region, a reflective layer, and a bezel layer, and the non-transparent region is disposed on the substrate substrate;
  • the light region may be a common line of the liquid crystal display panel or an opaque component such as a black matrix.
  • the reflective layer is disposed between the non-transmissive region and the substrate substrate, and includes a plurality of reflective surfaces; the reflective surface is configured to pass the cured UV light through the gap between the non-transmissive regions, and reflect the cured UV light to the non-transparent On the light area.
  • the plastic frame layer is disposed on the non-transparent area for forming a plastic frame.
  • the reflective surface of the reflective layer is disposed under the non-transmissive region and between the adjacent two non-transparent regions.
  • the specific fabrication principle of the array substrate 20 of the above preferred embodiment is the same except that the plastic frame is disposed on the color filter substrate. For details, please refer to the related description in the preferred embodiment of the array substrate 20 described above.
  • the array substrate of the present invention improves the curing rate of the plastic frame by the arrangement of the reflective layer, and avoids contamination of the liquid crystal by the uncured plastic frame.
  • the present invention also provides a liquid crystal display panel comprising an array substrate, a color filter substrate, and a liquid crystal layer disposed between the array substrate and the color filter substrate, wherein the array substrate and the color filter substrate are connected by a plastic frame.
  • the array substrate includes a substrate substrate, a non-transmissive region, a reflective layer, and a bezel layer.
  • the non-transmissive region is disposed on the substrate substrate; the non-transparent region may be a data line, a scan line, a black matrix, or the like of the liquid crystal display panel.
  • the reflective layer is disposed between the non-transmissive region and the substrate substrate, and includes a plurality of reflective surfaces; the reflective surface is configured to pass the cured UV light through the gap between the non-transmissive regions, and reflect the cured UV light to the non-transparent On the light area.
  • the bezel layer is disposed on the non-transparent area and between the adjacent two non-transparent areas for forming a plastic frame.
  • the reflective surface of the reflective layer is disposed under the non-transmissive region.
  • the reflective layer and the non-transmissive region satisfy the following conditions:
  • is the angle between the plane of the reflective surface and the non-transmissive area
  • b is the thickness of the reflective layer
  • c is the spacing between adjacent non-transmissive regions.
  • the cured UV light is incident perpendicular to the plane of the substrate substrate.
  • liquid crystal display panel of the present invention is the same as or similar to the description in the preferred embodiment of the above array substrate. For details, refer to the related description in the preferred embodiment of the above array substrate.
  • the array substrate and the liquid crystal display panel of the invention improve the curing rate of the plastic frame by the arrangement of the reflective layer, and avoid the contamination of the liquid crystal by the uncured plastic frame; and solve the frame curing rate of the existing array substrate and the liquid crystal display panel.

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

Abstract

一种阵列基板(20),包括基板衬底(21)、非透光区域(22)、反射层(23)以及胶框层(24);反射层(23)设置在非透光区域(22)以及基板衬底(21)之间,包括多个将固化UV光通过非透光区域(22)之间的间隙、反射至非透光区域(22)上的反射面(231)。通过反射层(23)的设置可以提高胶框的固化率,避免液晶显示面板的显示不良。

Description

阵列基板及液晶显示面板 技术领域
本发明涉及液晶显示领域,特别是涉及一种阵列基板及液晶显示面板。
背景技术
液晶显示面板中包括阵列基板、彩膜基板以及设置在阵列基板和彩膜基板之间的液晶层,液晶层通过设置在阵列基板的边缘的胶框固定在阵列基板和彩膜基板之间。
其中胶框一般由亚克力、环氧树脂以及光起始剂组成,通过加热或UV光照射胶框的方式使其固化,从而使彩膜基板和阵列基板粘结在一起。
如图1所示,图1为现有的阵列基板的结构示意图。该阵列基板10包括衬底基板11,胶框12以及金属线13,如数据线或扫描线。其中部分胶框12位于金属线13的上方,这样使用UV光照射固化胶框12时,由于金属线13的阻挡,导致图1中的A部分的胶框12固化不良。未完全固化的胶框12处有可能出现液晶泄露的现象,同时未完全固化的胶框12可能会对液晶造成污染,从而导致相应的液晶显示面板的显示不良。
故,有必要提供一种阵列基板及液晶显示面板,以解决现有技术所存在的问题。
技术问题
本发明的目的在于提供一种可有效的对所有胶框进行固化,且可避免未固化的胶框对液晶造成污染的阵列基板及液晶显示面板;以解决现有的阵列基板及液晶显示面板的胶框固化率较低且未固化的胶框易对液晶造成污染的技术问题。
技术解决方案
为解决上述问题,本发明提供的技术方案如下:
本发明实施例提供一种阵列基板,其包括:
基板衬底;
Figure TP150054PCT-appb-I000001
非透光区域,设置在所述基板衬底上;
反射层,设置所述非透光区域与所述基板衬底之间,其包括多个用于使固化UV光通过所述非透光区域之间的间隙,并反射至所述非透光区域上的反射面;以及
胶框层,设置在所述非透光区域上以及相邻的两个所述非透光区域之间,用于形成胶框;
其中所述固化UV光垂直于所述基板衬底所在平面入射。
在本发明所述的阵列基板中,所述反射面设置在所述非透光区域下。
在本发明所述的阵列基板中,所述反射层和所述非透光区域满足以下条件:
Figure TP150054PCT-appb-I000002
其中α为所述反射面与所述非透光区域所在平面的夹角,b为所述反射层的厚度,c 为所述非透光区域的厚度,s为相邻的所述非透光区域之间的间距。
在本发明所述的阵列基板中,所述非透光区域为数据线、扫描线或黑色矩阵。
在本发明所述的阵列基板中,所述反射面为金属反射面。
本发明实施例提供一种阵列基板,其包括:
基板衬底;
非透光区域,设置在所述基板衬底上;
反射层,设置所述非透光区域与所述基板衬底之间,其包括多个用于使固化UV光通过所述非透光区域之间的间隙,并反射至所述非透光区域上的反射面;以及
胶框层,设置在所述非透光区域上,用于形成胶框。
在本发明所述的阵列基板上,所述反射面设置在所述非透光区域下。
在本发明所述的阵列基板上,所述胶框层还设置在相邻的两个所述非透光区域之间。
在本发明所述的阵列基板上,所述反射层和所述非透光区域满足以下条件:
Figure TP150054PCT-appb-I000002
其中α为所述反射面与所述非透光区域所在平面的夹角,b为反射层的厚度,c 为所述非透光区域的厚度,s为相邻的所述非透光区域之间的间距。
在本发明所述的阵列基板上,所述固化UV光垂直于所述基板衬底所在平面入射。
在本发明所述的阵列基板上,所述非透光区域为数据线、扫描线或黑色矩阵。
在本发明所述的阵列基板上,所述反射面为金属反射面。
本发明还提供一种液晶显示面板,其包括阵列基板、彩膜基板以及设置在阵列基板和彩膜基板之间的液晶层,其中所述阵列基板和所述彩膜基板通过胶框连接;
其中所述阵列基板包括:
Figure TP150054PCT-appb-I000001
基板衬底;
非透光区域,设置在所述基板衬底上;
反射层,设置所述非透光区域与所述基板衬底之间,其包括多个用于使固化UV光通过所述非透光区域之间的间隙,并反射至所述非透光区域上的反射面;以及
Figure TP150054PCT-appb-I000001
胶框层,设置在所述非透光区域上,用于形成胶框。
在本发明所述的液晶显示面板中,所述反射面设置在所述非透光区域下。
在本发明所述的液晶显示面板中,所述胶框层还设置在相邻的两个所述非透光区域之间。
在本发明所述的液晶显示面板中,所述反射层和所述非透光区域满足以下条件:
Figure TP150054PCT-appb-I000002
其中α为所述反射面与所述非透光区域所在平面的夹角,b为反射层的厚度,c 为所述非透光区域的厚度,s为相邻的所述非透光区域之间的间距。
在本发明所述的液晶显示面板中,所述固化UV光垂直于所述基板衬底所在平面入射。
在本发明所述的液晶显示面板中,所述非透光区域为数据线、扫描线或黑色矩阵。
在本发明所述的液晶显示面板中,所述反射面为金属反射面。
有益效果
相较于现有的阵列基板及液晶显示面板,本发明的阵列基板及液晶显示面板通过反射层的设置提高了胶框的固化率,避免了未固化的胶框对液晶造成污染;解决了现有的阵列基板及液晶显示面板的胶框固化率较低且未固化的胶框易对液晶造成污染的技术问题。
附图说明
图1为现有的阵列基板的结构示意图;
图2为本发明的阵列基板的优选实施例的结构示意图;
图3为图2的B部分的放大图。
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。本发明所提到的方向用语,例如「上」、「下」、「前」、「后」、「左」、「右」、「内」、「外」、「侧面」等,仅是参考附加图式的方向。因此,使用的方向用语是用以说明及理解本发明,而非用以限制本发明。
在图中,结构相似的单元是以相同标号表示。
请参照图2,图2为本发明的阵列基板的优选实施例的结构示意图。本优选实施例的阵列基板20包括基板衬底21、非透光区域22、反射层23以及胶框层24。非透光区域22设置在基板衬底21上;该非透光区域22可为液晶显示面板的数据线、扫描线或黑色矩阵等不透光组件。反射层23设置在非透光区域22和基板衬底21之间,其包括多个反射面231,优选为金属反射面;该反射面231用于使固化UV光通过非透光区域22之间的间隙,并将固化UV光反射至非透光区域22上。胶框层24设置在非透光区域22上以及相邻的两个非透光区域22之间,用于形成胶框。其中反射层23的反射面231设置在非透光区域22下。
请参照图3,图3为图2的B部分的放大图。其中反射层23和非透光区域22满足以下条件:
Figure TP150054PCT-appb-I000002
; (1)
其中α为反射面231与非透光区域22所在平面的夹角,b为反射层23的厚度,c 为非透光区域22的厚度,s为相邻的非透光区域22之间的间距。
本优选实施例的阵列基板20上的胶框进行固化时,固化UV光垂直于基板衬底21所在平面,从基板衬底21侧入射;当固化UV光入射到反射层23的反射面231上时,固化UV光在反射面231上发生了发射。本优选实施例的反射层23和非透光区域22满足公式(1)的条件,使得反射面231上反射的所有固化UV光均可通过非透光区域22之间的间隙,并反射至非透光区域22上,照射到位于非透光区域22上方的胶框层24,以使得A’区域的胶框层24上的胶框可以完全固化。这里非透光区域22的厚度c,相邻非透光区域22之间的间距s以及反射层23的厚度b可为固定量,反射面231与非透光区域22所在平面的夹角α可为变化量,阵列基板20的设计者可根据公式(1)、非透光区域22的厚度c、相邻非透光区域22之间的间距s以及反射层23的厚度b,确定反射面231与非透光区域22所在平面的夹角α,以达到最佳的胶框固化效果。这样本优选实施例的阵列基板20不仅提高了固化UV光的使用率,而且避免了胶框的未完全固化的不良发生。
当然发明的技术方案也可在彩膜基板上实施,该彩膜基板可包括基板衬底、非透光区域、反射层以及胶框层,非透光区域设置在基板衬底上;该非透光区域可为液晶显示面板的公共线或黑色矩阵等不透光组件。反射层设置在非透光区域和基板衬底之间,其包括多个反射面;该反射面用于使固化UV光通过非透光区域之间的间隙,并将固化UV光反射至非透光区域上。胶框层设置在非透光区域上,用于形成胶框。其中反射层的反射面设置在非透光区域下以及相邻的两个非透光区域之间。其中除了胶框设置在彩膜基板上之外,其他与上述优选实施例的阵列基板20的具体制作原理相同。具体请参见上述阵列基板20的优选实施例中的相关描述。
本发明的阵列基板通过反射层的设置提高了胶框的固化率,避免了未固化的胶框对液晶造成污染。
本发明还提供一种液晶显示面板,该液晶显示面板包括阵列基板、彩膜基板以及设置在阵列基板和彩膜基板之间的液晶层,其中阵列基板和彩膜基板通过胶框连接。阵列基板包括基板衬底、非透光区域、反射层以及胶框层。非透光区域设置在基板衬底上;该非透光区域可为液晶显示面板的数据线、扫描线或黑色矩阵等。反射层设置在非透光区域和基板衬底之间,其包括多个反射面;该反射面用于使固化UV光通过非透光区域之间的间隙,并将固化UV光反射至非透光区域上。胶框层设置在非透光区域上以及相邻的两个非透光区域之间,用于形成胶框。其中反射层的反射面设置在非透光区域下。
优选的,反射层和非透光区域满足以下条件:
Figure TP150054PCT-appb-I000002
其中α为反射面与非透光区域所在平面的夹角,b为反射层的厚度,c 为非透光区域的厚度,s为相邻的非透光区域之间的间距。
优选的,固化UV光垂直于基板衬底所在平面入射。
本发明的液晶显示面板的具体使用原理与上述的阵列基板的优选实施例中的描述相同或相似,具体请参见上述阵列基板的优选实施例中的相关描述。
本发明的阵列基板及液晶显示面板通过反射层的设置提高了胶框的固化率,避免了未固化的胶框对液晶造成污染;解决了现有的阵列基板及液晶显示面板的胶框固化率较低且未固化的胶框易对液晶造成污染的技术问题。
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 (19)

  1. 一种阵列基板,其包括:
    基板衬底;
    非透光区域,设置在所述基板衬底上;
    反射层,设置所述非透光区域与所述基板衬底之间,其包括多个用于使固化UV光通过所述非透光区域之间的间隙,并反射至所述非透光区域上的反射面;以及
    胶框层,设置在所述非透光区域上以及相邻的两个所述非透光区域之间,用于形成胶框;
    其中所述固化UV光垂直于所述基板衬底所在平面入射。
  2. 根据权利要求1所述的阵列基板,其中所述反射面设置在所述非透光区域下。
  3. 根据权利要求1所述的阵列基板,其中所述反射层和所述非透光区域满足以下条件:
    Figure TP150054PCT-appb-I000002
    其中α为所述反射面与所述非透光区域所在平面的夹角,b为所述反射层的厚度,c 为所述非透光区域的厚度,s为相邻的所述非透光区域之间的间距。
  4. 根据权利要求1所述的阵列基板,其中所述非透光区域为数据线、扫描线或黑色矩阵。
  5. 根据权利要求1所述的阵列基板,其中所述反射面为金属反射面。
  6. 一种阵列基板,其包括:
    基板衬底;
    非透光区域,设置在所述基板衬底上;
    反射层,设置所述非透光区域与所述基板衬底之间,其包括多个用于使固化UV光通过所述非透光区域之间的间隙,并反射至所述非透光区域上的反射面;以及
    胶框层,设置在所述非透光区域上,用于形成胶框。
  7. 根据权利要求6所述的阵列基板,其中所述反射面设置在所述非透光区域下。
  8. 根据权利要求6所述的阵列基板,其中所述胶框层还设置在相邻的两个所述非透光区域之间。
  9. 根据权利要求6所述的阵列基板,其中所述反射层和所述非透光区域满足以下条件:
    Figure TP150054PCT-appb-I000002
    其中α为所述反射面与所述非透光区域所在平面的夹角,b为所述反射层的厚度,c 为所述非透光区域的厚度,s为相邻的所述非透光区域之间的间距。
  10. 根据权利要求6所述的阵列基板,其中所述固化UV光垂直于所述基板衬底所在平面入射。
  11. 根据权利要求6所述的阵列基板,其中所述非透光区域为数据线、扫描线或黑色矩阵。
  12. 根据权利要求6所述的阵列基板,其中所述反射面为金属反射面。
  13. 一种液晶显示面板,其包括阵列基板、彩膜基板以及设置在阵列基板和彩膜基板之间的液晶层,其中所述阵列基板和所述彩膜基板通过胶框连接;
    其中所述阵列基板包括:
    基板衬底;
    非透光区域,设置在所述基板衬底上;
    反射层,设置所述非透光区域与所述基板衬底之间,其包括多个用于使固化UV光通过所述非透光区域之间的间隙,并反射至所述非透光区域上的反射面;以及
    胶框层,设置在所述非透光区域上,用于形成胶框。
  14. 根据权利要求13所述的液晶显示面板,其中所述反射面设置在所述非透光区域下。
  15. 根据权利要求13所述的液晶显示面板,其中所述胶框层还设置在相邻的两个所述非透光区域之间。
  16. 根据权利要求13所述的液晶显示面板,其中所述反射层和所述非透光区域满足以下条件:
    Figure TP150054PCT-appb-I000002
    其中α为所述反射面与所述非透光区域所在平面的夹角,b为所述反射层的厚度,c 为所述非透光区域的厚度,s为相邻的所述非透光区域之间的间距。
  17. 根据权利要求13所述的液晶显示面板,其中所述固化UV光垂直于所述基板衬底所在平面入射。
  18. 根据权利要求13所述的液晶显示面板,其中所述非透光区域为数据线、扫描线或黑色矩阵。
  19. 根据权利要求13所述的液晶显示面板,其中所述反射面为金属反射面。
PCT/CN2015/073703 2015-02-13 2015-03-05 阵列基板及液晶显示面板 Ceased WO2016127456A1 (zh)

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