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CN111968526B - Flexible display panel and display device - Google Patents

Flexible display panel and display device Download PDF

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Publication number
CN111968526B
CN111968526B CN202011044211.7A CN202011044211A CN111968526B CN 111968526 B CN111968526 B CN 111968526B CN 202011044211 A CN202011044211 A CN 202011044211A CN 111968526 B CN111968526 B CN 111968526B
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area
plane
path conversion
display panel
light
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CN111968526A (en
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许孜
刘昕昭
王清霞
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Wuhan Tianma Microelectronics Co Ltd
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Wuhan Tianma Microelectronics Co Ltd
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    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09FDISPLAYING; ADVERTISING; SIGNS; LABELS OR NAME-PLATES; SEALS
    • G09F9/00Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements
    • G09F9/30Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements
    • G09F9/301Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements flexible foldable or roll-able electronic displays, e.g. thin LCD, OLED

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Abstract

本申请公开一种柔性显示面板及显示装置,涉及显示技术领域,包括:弯折区和平面区;弯折区还包括第一区域和第二区域;沿垂直于平面区所在平面的方向,弯折区包括像素发光层、光路转换层,以及至少一个第一光路转换部和/或至少一个第二光路转换部,光路转换层位于像素发光层靠近平面区所在平面的一侧,第一光路转换部和第二光路转换部中的至少一者位于光路转换层,第一光路转换部在平面区所在平面的正投影位于第一区域在平面区所在平面的正投影范围内;第二光路转换部在平面区所在平面的正投影位于第二区域在平面区所在平面的正投影范围内。本申请设置第一光路转换部和第二光路转换部,有效提高弯折区的光强,使弯折区和平面区显示亮度均一。

Figure 202011044211

The present application discloses a flexible display panel and a display device, which relate to the field of display technology, and include: a bending area and a flat area; the bending area further includes a first area and a second area; The folding area includes a pixel light emitting layer, an optical path conversion layer, and at least one first light path conversion part and/or at least one second light path conversion part. At least one of the optical path conversion part and the second optical path conversion part is located in the optical path conversion layer, and the orthographic projection of the first optical path conversion part on the plane where the plane area is located is located within the orthographic projection range of the first area on the plane where the plane area is located; the second optical path conversion part The orthographic projection on the plane where the plane area is located is located within the orthographic projection range of the second area on the plane where the plane area is located. In the present application, a first optical path conversion part and a second optical path conversion part are provided, which can effectively improve the light intensity of the bending area and make the display brightness of the bending area and the flat area uniform.

Figure 202011044211

Description

Flexible display panel and display device
Technical Field
The application relates to the technical field of display, in particular to a flexible display panel and a display device.
Background
Organic Light-Emitting diodes (OLED) have the advantages of wide color gamut, high contrast, energy saving, and being foldable, and thus become one of the most competitive technologies in the next generation of display devices, especially, OLED displays having foldable features are favored by people, and have a wide application field, for example, the fields of smart wearable devices, vehicle-mounted devices, and smart home appliances.
At present, in a flexible display device, a part of an area in a flexible display panel needs to be bent to form a bending area, and the forming of the bending area makes the distance between a light-emitting surface of the display panel in the bending area and a device user farther than the distance between the light-emitting surface of the display panel in a planar area and the device user when the display panel is in an unfolded state; on the other hand, a dead zone still exists in a part of the display panel in the bending area, so that the brightness of the plane area and the bending area is not uniform, and the display effect of the display panel is affected.
Disclosure of Invention
In view of the above, the present disclosure provides a flexible display panel and a display device, in which a bending region is divided into a first region and a second region according to a curvature radius of the bending region and a vertical distance between the bending region and a plane of the display panel, so as to improve a problem of non-uniform brightness of the display panel in the first region and the second region, and further achieve uniformity of display brightness of the display panel.
In order to solve the technical problem, the following technical scheme is adopted:
in a first aspect, the present application provides a flexible display panel comprising: a bending area and a planar area at least partially adjacent to the bending area;
the bending zone further comprises a first area and at least one second area adjacent to the first area;
along the direction perpendicular to the plane of the plane area, the bending area comprises a pixel light emitting layer, a light path conversion layer and at least one first light path conversion part and/or at least one second light path conversion part, the light path conversion layer is positioned on one side of the pixel light emitting layer close to the plane area, at least one of the first light path conversion part and the second light path conversion part is positioned on the light path conversion layer, and the orthographic projection of the first light path conversion part on the plane area is positioned in the orthographic projection range of the first area on the plane area; the orthographic projection of the second light path conversion part on the plane of the plane area is positioned in the orthographic projection range of the second area on the plane of the plane area;
in the first area, at least part of light emitted by the pixel light-emitting layer is converged by the first light path conversion part and then emitted to the light-emitting surface of the display panel; in the second area, at least part of the light emitted by the pixel light-emitting layer is deflected by the second light path conversion part and then emitted to the light-emitting surface of the display panel.
In a second aspect, the present application further provides a display device, which includes a flexible display panel, where the flexible display panel is the flexible display panel provided in the present application.
Compared with the prior art, the flexible display panel and the display device provided by the invention at least realize the following beneficial effects:
the application provides a flexible display panel and display device, according to the size of the radius of curvature of bending zone, and according to the size of the planar vertical distance of bending zone apart from display panel plane district, will bend to distinguish into first region and second region, through setting up first light path conversion portion in first region, set up second light path conversion portion in the second region, can assemble the back outgoing to display panel play plain noodles with the light that first region pixel luminescent layer launches through first light path conversion portion at least partly, can deviate the back outgoing to display panel play plain noodles with the light that second region pixel luminescent layer launches through second light path conversion portion at least partly, set up light path conversion portion to the characteristics of first region and second region respectively, can more effective reinforcing first region and second region display panel's display luminance, in order to reach the homogeneity of bending zone and plane district display panel display luminance.
Drawings
The accompanying drawings, which are included to provide a further understanding of the application and are incorporated in and constitute a part of this application, illustrate embodiment(s) of the application and together with the description serve to explain the application and not to limit the application. In the drawings:
FIG. 1 is a side view of a prior art display panel;
FIG. 2 is a top view of a prior art display panel;
fig. 3 is a schematic structural diagram of a display panel according to an embodiment of the present disclosure;
FIG. 4 isbase:Sub>A cross-sectional view of the display panel of FIG. 3 along line A-A';
FIG. 5 is a schematic view of a bending region according to an embodiment of the present disclosure;
FIG. 6 is a schematic view of another embodiment of a bending region provided in the present application;
FIG. 7 is a schematic view of another embodiment of a bending region provided in the present application;
FIG. 8 is a schematic view of another embodiment of a bending region provided in the present application;
fig. 9 is a schematic structural diagram of a display panel according to an embodiment of the present disclosure;
fig. 10 is a schematic structural diagram of a display device according to an embodiment of the present disclosure.
Detailed Description
Various exemplary embodiments of the present invention will now be described in detail with reference to the accompanying drawings. It should be noted that: the relative arrangement of the components and steps, the numerical expressions and numerical values set forth in these embodiments do not limit the scope of the present invention unless specifically stated otherwise.
The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way intended to limit the invention, its application, or uses.
Techniques, methods, and apparatus known to those of ordinary skill in the relevant art may not be discussed in detail but are intended to be part of the specification where appropriate.
In all examples shown and discussed herein, any particular value should be construed as merely illustrative, and not limiting. Thus, other examples of the exemplary embodiments may have different values.
It should be noted that: like reference numbers and letters refer to like items in the following figures, and thus, once an item is defined in one figure, further discussion thereof is not required in subsequent figures.
Fig. 1 is a side view structural diagram of a display panel 300 in the prior art, and fig. 2 is a top view structural diagram of the display panel 300 in the prior art, where the display panel 300 includes a planar area 301 and a bending area 302 sequentially arranged along a first direction, where the planar area 301 is at least partially adjacent to the bending area 302, so as to achieve a good bending effect of the display panel 300 and avoid the display area from being cracked due to a tensile stress, and therefore, the display panel of the bending area 302 is a curved display panel, and one side of the bending area 302 close to the planar area 301 is a curved abrupt change area, i.e., a radius of curvature of one side of the bending area 302 close to the planar area 301 is smaller than a radius of curvature in the middle of the bending area 302, so that light emitted from the display panel of the bending area 302 close to one side of the planar area 301 is emitted toward a bending central axis of the bending area 302, and light emitted from the display panel of the bending area 302 close to one side of the planar area 301 is less incident to eyes of a user of the device, and therefore, two darker areas of the display panel close to the planar area 302, as shown as a in fig. 2. In addition, when the display panel 300 is unfolded, the distance between the flat area 301 and the user of the device is smaller than the distance between the bending area 302 and the user of the device, and the longer the distance, the more the light is scattered, the less the light emitted by the bending area 302 is received by the user of the device, and further the luminance of the bending area 302 is darker than the luminance of the flat area 301, as shown in b in fig. 2, and in addition, the luminance of the flat area is c, and when the display panel 300 is viewed as a whole, the luminance of the display panel 300 is c > b > a, and obviously, the luminance of the display panel 300 is not uniform, which affects the display effect.
In view of the above, the present invention provides a flexible display panel and a display device, wherein the bending region is divided into a first region and a second region according to the curvature radius of the bending region and the vertical distance between the bending region and the plane of the display panel, so as to improve the problem of non-uniform brightness of the display panel in the first region and the second region, respectively, and further achieve the uniformity of the display brightness of the display panel.
The following detailed description is to be read in connection with the drawings and the detailed description.
Fig. 3 isbase:Sub>A schematic structural diagram ofbase:Sub>A display panel 100 according to an embodiment of the present application, fig. 4 isbase:Sub>A cross-sectional view of the display panel 100 alongbase:Sub>A-base:Sub>A' of the display panel 100 according to the embodiment of the present application, fig. 5 isbase:Sub>A schematic structural diagram ofbase:Sub>A bending region 10 according to the embodiment of the present application, please refer to fig. 3 to 5, and the flexible display panel 100 according to the present application includes: a bending zone 10 and a planar zone 20 at least partially adjacent to the bending zone 10;
the bending zone 10 further comprises a first region 30 and at least one second region 40 adjacent to the first region 30;
along a direction perpendicular to the plane of the planar area 20, that is, along a direction d, the bending area 10 includes a pixel light emitting layer 50, an optical path conversion layer 60, and at least one first optical path conversion portion 70 and/or at least one second optical path conversion portion 80, the optical path conversion layer 60 is located on one side of the pixel light emitting layer 50 close to the plane of the planar area 20, at least one of the first optical path conversion portion 70 and the second optical path conversion portion 80 is located on the optical path conversion layer 60, and an orthographic projection of the first optical path conversion portion 70 on the plane of the planar area 20 is located within an orthographic projection range of the first area 30 on the plane of the planar area 20; the orthographic projection of the second light path conversion part 80 on the plane of the plane area 20 is positioned in the orthographic projection range of the second area 40 on the plane of the plane area 20;
referring to fig. 5, in the first area 30, at least a portion of the light emitted from the pixel light-emitting layer 50 is converged by the first light path conversion portion 70 and then emitted to the light-emitting surface of the display panel; in the second region 40, at least a portion of the light emitted from the pixel light-emitting layer 50 is deflected by the second light path conversion portion 80 and then emitted to the light-emitting surface of the display panel.
It should be noted that fig. 3 only illustrates one relationship between the flat area 20 and the bending area 10, and does not represent actual dimensions. Fig. 4 is a diagram schematically showing only one positional relationship of the second optical path conversion part 80 in the optical path conversion layer 60, and the present application also includes other positional relationships, which are not specifically limited herein, and it should be noted that fig. 4 is a diagram schematically showing only one relative positional relationship of the first region 30 and the second region 40, and does not represent actual dimensions; fig. 4 only schematically shows that light emitted from the pixel light-emitting layer 50 exits through the first region 30 and the second region 40. The light exiting direction of the display panel at the bending region 10 is only schematically shown in fig. 5, and does not represent an actual angle.
Specifically, referring to fig. 4, the flexible display panel 100 of the present embodiment is provided with a bending area 10 and a planar area 20, the flexible display panel 100 can be bent due to the existence of the bending area 10, and the display panel 100 in the bending area 10 is curved and includes a first area 30 and a second area 40, wherein the first area 30 and the second area 40 are adjacent to each other. Along a direction perpendicular to the plane of the planar area 20, i.e. the direction d, the bending area 10 further includes a pixel light emitting layer 50, a light path conversion layer 60, and at least one first light path conversion portion 70 and/or at least one second light path conversion portion 80, where the light path conversion layer 60 is located on any film layer between the pixel light emitting layer 50 and the light emitting surface of the display panel 100 of the bending area 10, and optionally, the light path conversion layer 60 may multiplex any film layer on the side of the pixel light emitting layer 50 close to the light emitting surface of the display panel 100 of the bending area 10, or may be separately disposed as one layer. The first light path conversion portion 70 and the second light path conversion portion 80 are both located between the pixel light emitting layer 50 and the light emitting surface of the display panel 100 corresponding to the bending area 10, and at least one of the first light path conversion portion 70 and the second light path conversion portion 80 is located on the light path conversion layer 60, when the display panel 100 is in a flattened state, an orthographic projection of the first light path conversion portion 70 on the plane where the plane area 20 is located in an orthographic projection range of the first area 30 on the plane where the plane area 20 is located, and an orthographic projection of the second light path conversion portion 80 on the plane where the plane area 20 is located in an orthographic projection range of the second area 40 on the plane where the plane area 20 is located, wherein the first light path conversion portion 70 and the second light path conversion portion 80 respectively improve the problem of uneven brightness of the display panel 100 corresponding to the first area 30 and the second area 40, and the problem of uneven brightness of the display panel of the bending area 10 and the display panel 20.
Further, please refer to fig. 5 in combination with fig. 4, the light emitted from the pixel light emitting layer 50 is emitted to the light emitting surface of the display panel, wherein the light emitted from the pixel light emitting layer 50 is converged by the first light path transformation portion 70 of the first area 30 and then emitted to the light emitting surface of the display panel of the first area 30; the light emitted from the pixel light-emitting layer 50 is deflected by the second light path converting portion 80 of the second region 40 and then emitted to the light-emitting surface of the display panel of the second region 40, so that the first light path converting portion 70 is used for converging the light of the first region 30, and the second light path converting portion 80 is used for deflecting the light of the second region 40 and then emitting the light along the direction perpendicular to the plane of the plane region 20.
Optionally, with continued reference to fig. 5, and with reference to fig. 4, the radius of curvature of the first region 30 is greater than the radius of curvature of the second region 40. Specifically, as shown in fig. 5 and with reference to fig. 4, in order to achieve a good bending effect of the display panel 100 and avoid the problem of the display panel 100 being cracked due to the tensile stress, the display panel 100 of the bending region 10 is curved, and the curvature radii of the curved surfaces are not completely equal, the region of the bending region 10 close to the planar region 20 is an abrupt change region, the middle region of the bending region 10 is a gentle region, i.e. the first region 30 is a gentle region, the second region 40 is an abrupt change region, the curvature radius of the first region 30 is greater than the curvature radius of the second region 40, in this embodiment, the second light path converting portion 80 is disposed in the second region 40, the curvature radius from the first region 30 is greater than the curvature radius of the second region 40, so that the light emitted from the pixel light emitting layer 50 of the second region 40 is emitted toward the bending central axis of the bending region 10, and the light is not emitted along the direction perpendicular to the plane of the planar region 20, therefore, in order to solve the above problem, the present embodiment provides the second optical path conversion part 80 in the second area 40, so that the light emitted from the display panel in the second area 40 is darker than the light emitted from the display panel in the first area 30 and the light emitted from the display panel in the planar area 20, and the light emitted from the pixel light-emitting layer 50 is deflected by the second optical path conversion part 80 and then emitted in the direction perpendicular to the plane of the planar area 20, so as to reduce the difference between the display brightness of the display panel in the second area 40 and the display brightness of the display panel in the first area 30, and reduce the difference between the display brightness of the display panel in the second area 40 and the display brightness of the display panel in the planar area 20, so as to emit the light in the direction perpendicular to the plane of the planar area 20 in the second area 40 as much as possible, and further enhance the display panel brightness corresponding to the second area 40, the display brightness of the display panel in the second area 40, the display brightness of the display panel 100 in the first area 30, and the display brightness of the display panel 100 in the planar area 20 are improved.
Optionally, with continued reference to fig. 4, the perpendicular distance between the first area 30 and the plane of the planar area 20 is greater than the perpendicular distance between the second area 40 and the plane of the planar area 20.
Specifically, as shown in fig. 4, the first area 30 is at a vertical distance d from the plane of the planar area 20 1 The second region 40 is spaced from the plane of the planar region 20 by a vertical distance d 2 Wherein d is 1 D represents the vertical distance between any point on the curved display panel in the first region 30 and the plane of the flat region 20 2 Represents the vertical distance between any point on the curved display panel in the second area 40 and the plane of the flat area 20, d 1 >d 2 The distance between the first region 30 and the plane of the planar area 20 is farther than the distance between the planar area 20 and the plane of the planar area 20, and the light emitted from the pixel light emitting layer 50 enters the eyes of the viewer of the device after being more scattered, so that the display brightness of the first region 30 is different from the display brightness of the planar area 20, therefore, the first light path conversion part 70 is disposed in the first region 30, and the first light path conversion part 70 can effectively condense light to enhance the display brightness of the display panel in the first region 30, so that the display brightness of the display panel in the first region 30 is more uniform than the display brightness of the display panel in the planar area 20.
Optionally, as shown in fig. 4, the second region 40 includes a first edge 41 and a second edge 42 disposed opposite to each other, the first edge 41 is adjacent to the planar area 20, and the second edge 42 is adjacent to the first region 30.
Specifically, as shown in fig. 4, the second region 40 is adjacent to both the planar region 20 and the first region 30, that is, the second region 40 is located between the first region 30 and the planar region 20, the first region 30 and the second region 40 belong to the bending region 10, the bending region 10 is connected to the planar region 20, the second region 40 includes a first edge 41 and a second edge 42 which are oppositely disposed, the first edge 41 is connected to the bending region 10, and the second edge 42 is connected to the first region 30, the positional relationship between the planar region 20 and the bending region 10 when the display panel 100 is unfolded is further clarified, the positional relationship between the first region 30 and the planar region 20 is clarified, the problem existing in the display panel of the first region 30 and the second region 40 is clarified, that the distance between the second edge 41 and the planar region is greater than the distance between the first edge 41 and the planar region 42, the radius of curvature of the corresponding display panel of the second region 40 is gradually increased, and the distance between the second edge 42 and the planar region is greater than the distance between the first edge 41 and the planar region, so that the bending problem and the planar region can be solved.
Optionally, fig. 6 is another schematic structural diagram of the bending region 10 provided in the embodiment of the present application, please refer to fig. 6, in which the first optical path converting portion 70 is a convex lens 71, and a focal length direction of the convex lens 71 is perpendicular to a plane of the planar region 20; the distance between the centers of any two adjacent convex lenses 71 is equal.
It should be noted that fig. 6 only schematically illustrates one arrangement of the convex lenses 71, and alternatively, in some other embodiments, the adjacent convex lenses 71 may also be spaced according to the bending degree of the display panel in the first area 30.
Specifically, as shown in fig. 6 and with reference to fig. 4, the first optical path conversion portion 70 in this embodiment is a convex lens 71, the focal length direction e of the convex lens 71 is perpendicular to the plane of the plane area 20, the convex lens 71 is a lens with a thick middle part and a thin edge, and at least includes a spherical surface, i.e., the spherical surface of the convex lens 71 faces the pixel light emitting layer 50, or two spherical surfaces of the convex lens 71 respectively face the plane of the pixel light emitting layer 50 and the plane area 20, and the convex lens 71 can perform a good light converging function, i.e., light emitted from the pixel light emitting layer 50 is converged and emitted to the light emitting surface of the display panel in the bending area 10, so as to enhance the light intensity of the display panel corresponding to the first area 30, so that the display panel corresponding to the first area 30 is brighter, and thus the brightness difference caused by the longer distance between the first area 30 and the plane area 20 is overcome.
Further, as shown in fig. 6, the plurality of convex lenses 71 are disposed in the first area 30, and since the display panel corresponding to the first area 30 is relatively flat, the distances f between the centers of any two adjacent convex lenses 71 are equal, so that the light converging effect can be achieved, and the manufacturing process can be simplified.
Alternatively, as shown in fig. 6, in a direction perpendicular to the plane of the planar area 20, i.e. the direction d, the perpendicular distance from the center of the convex lens 71 to the side of the pixel light emitting layer 50 close to the light path conversion layer 60 is greater than twice the focal length of the convex lens 71.
Specifically, as shown in fig. 6, in a direction perpendicular to the plane of the planar area 20, that is, the direction d, the vertical distance h between the center of the convex lens 71 and the side of the pixel light emitting layer 50 close to the optical path conversion layer 60 is greater than twice the focal length of the convex lens 71, and by this definition, on one hand, the thickness of the convex lens 71 along the plane of the vertical planar area 20 can be determined according to the vertical distance between the pixel light emitting layer 50 and the convex lens 71, and on the other hand, more light rays emitted by the pixel light emitting layer 50 can be converged after passing through the convex lens 71, so as to enhance the display brightness of the display panel in the first area 30.
Optionally, fig. 7 is another schematic structural diagram of the bending region 10 provided in the embodiment of the present application, please refer to fig. 7, in which the second light path converting portion 80 is a reflecting mirror 81, and an included angle is formed between the reflecting mirror 81 and a plane where the plane region 20 is located.
It should be noted that fig. 7 only schematically shows one arrangement of the mirrors 81, and alternatively, the spacing between any two adjacent mirrors 81 may be set to be equal.
Specifically, as shown in fig. 7 and with reference to fig. 4, the second optical path conversion portion 80 in this embodiment is a reflector 81, the reflector 81 is disposed to reflect the light emitted from the pixel light emitting layer 50 of the second area 40, because the curved surface of the display panel of the second area 40 is an abrupt change area, the reflector 81 needs to be disposed corresponding to the pixel of the pixel light emitting layer 50 of the second area 40, and the light emitted from the pixel light emitting layer 50 of the second area 40 is emitted toward the bending central axis of the bending area 10, so that the reflector 81 is disposed at a certain angle α with the plane of the planar area 20, which is beneficial to reflect the light emitted from the pixel light emitting layer 50 of the second area 40 as much as possible and then emit the light along the direction perpendicular to the plane of the planar area 20, so as to overcome the brightness difference caused by the fact that the curvature radius of the second area 40 is smaller than the curvature radius of the first area 30.
Alternatively, as shown in fig. 7, the distance between the orthogonal projections of the centers of the adjacent mirrors 81 on the plane of the planar area 20 increases along the direction from the first edge 41 to the second edge 42.
Specifically, as shown in fig. 7, in the direction pointing to the second edge 42 along the first edge 41 of the second region 40, as the curvature radius of the display panel 100 of the second region 40 gradually increases, that is, as the display panel of the second region 40 gradually changes from abrupt change to gradual change, the distance between the orthogonal projections of the centers of the adjacent reflectors 81 on the plane where the planar region 20 is located increases, so that as much light emitted by the pixel light emitting layers 50 of the second region 40 exits to the reflectors 81 as possible, and as much light emitted by the second region 40 exits in the direction perpendicular to the plane where the planar region 20 is located, so as to enhance the brightness of the second region 40.
Optionally, as shown in fig. 7, along the direction from the first edge 41 to the second edge 42, the included angles between the reflection mirror 81 and the plane of the planar area 20 are increased, and the included angles between the reflection mirror 81 and the plane of the planar area 20 are all smaller than 90 °
Specifically, as shown in fig. 7, along the direction from the first edge 41 to the second edge 42, the included angle α between the reflector 81 and the plane of the planar area 20 increases gradually, and because the curvature radius of the curved surface of the display panel 100 corresponding to the second area 40 increases gradually, and the included angle between the light emitted by the pixel light-emitting layer 50 and the plane of the planar area 20 increases gradually along the direction from the first edge 41 to the second edge 42, the included angle between the reflector 81 and the plane of the planar area 20 increases gradually by α, and further, because the included angle between the light emitted by the pixel light-emitting layer 50 of the second area 40 and the plane of the planar area 20 is not greater than 90 ° Thus, the angle α between the mirror 81 and the plane of the planar area 20 is always smaller than 90 ° . With such an arrangement, the light emitted from the pixel light-emitting layer 50 in the second area 40 can be reflected as much as possible and emitted in the direction perpendicular to the plane of the planar area 20.
Alternatively, and with continued reference to FIG. 7, each of the mirrors 81 is of equal size.
Specifically, as shown in fig. 7, the size of each of the reflectors 81 is equal, so that the manufacturing process can be simplified, and the size of the reflector 81 cannot be larger than the thickness of the light path conversion layer 60, thereby preventing the light path conversion layer 60 from being unable to accommodate the reflector 81. Alternatively, the size of the reflector 81 may be adjusted according to the curvature of the curved surface of the display panel corresponding to the second region 40, and the reflector 81 may be manufactured in different sizes.
Optionally, fig. 8 is another schematic structural diagram of the bending region 10 provided in the embodiment of the present application, and please refer to fig. 8, where a vertical distance between the first light path converting part 70 and the pixel light emitting layer 50 is greater than a vertical distance between the second light path converting part 80 and the pixel light emitting layer 50.
Specifically, as shown in fig. 8, the vertical distance between the first light path converting part 70 and the pixel light emitting layer 50 is greater than the vertical distance between the second light path converting part 80 and the pixel light emitting layer 50, the first light path converting part 70 is used for collecting light, in order to avoid the light collected by the first light path converting part 70 from being scattered by more film layers, therefore, the farther the first light path converting part 70 is from the pixel light emitting layer 50, the better the second light path converting part 80 is used for deflecting the light, and therefore, the closer the second light path converting part 80 is to the pixel light emitting layer 50, the better the setting is, the display luminance difference between the first area 30 and the second area 40 relative to the plane area 20 can be better improved.
Optionally, as shown in fig. 8, the bending region 10 further includes a touch layer 90;
the first light path conversion part 70 is located on a side of the touch layer 90 away from the pixel light emitting layer 50, the second light path conversion part 80 is located on the light path conversion layer 60, and the light path conversion layer 60 is located on a side of the pixel light emitting layer 50 close to the light emitting surface of the display panel 100.
Specifically, as shown in fig. 8, in the present embodiment, the bending area 10 further includes a touch layer 90, the first light path converting portion 70 is located on a side of the touch layer 90 away from the pixel light emitting layer 50, the second light path converting portion 80 is located on the light path converting layer 60, and the light path converting layer 60 is located on a side of the pixel light emitting layer 50 close to the light emitting surface of the display panel 100, so that the light emitted by the pixel light emitting layer 50 in the first area 30 is converged and then prevented from scattering as much as possible, and the light emitted by the pixel light emitting layer 50 in the second area 40 is deflected as much as possible and then emitted along a direction perpendicular to the plane where the plane area 20 is located, so that the display brightness of the bending area 10 and the plane area 20 is more uniform. In addition, when the reflecting mirror 81 is disposed at a longer distance from the pixel light emitting layer 50, the size of the reflecting mirror 81 and the pitch between adjacent reflecting mirrors 81 are more difficult to be disposed, which increases the difficulty of the process.
It should be noted that the bending region 10 further includes an encapsulation layer 91, and the first light path conversion portion 70 and the second light path conversion portion 80 may also be located on any one of the touch layer 90 and the encapsulation layer 91, or the light path conversion layer 60 may multiplex any one of the film layers between the pixel light emitting layer 50 and the cover plate, so as to achieve the purpose of changing the light path.
Alternatively, as shown in fig. 4, the pixel light emitting layer 50 includes a plurality of pixel units arranged in an array;
the emergent light of n pixel units in the first area 30 passes through the same first light path conversion part 70, and n is more than or equal to 1;
in the second region 40, the light emitted from m pixel units passes through the same second optical path converting part 80, and m is more than or equal to 1.
Specifically, as shown in fig. 4, the pixel light emitting layer 50 includes a plurality of pixel units arranged in an array, the light emitted from n pixel units in the first area 30 passes through the same first light path conversion portion 70, where n is greater than or equal to 1, the light emitted from m pixel units in the second area 40 passes through the same second light path conversion portion 80, where m is greater than or equal to 1, the sizes of the first light path conversion portion 70 and the second light path conversion portion 80 are set according to the size of the pixel in the pixel light emitting layer 50 and the thickness of the film layer, so as to flexibly control the sizes of the first light path conversion portion 70 and the second light path conversion portion 80.
Optionally, fig. 9 is a schematic structural diagram of the display panel 100 according to an embodiment of the present disclosure, please refer to fig. 9, in which the bending region 10 includes two second regions 40, and the first region 30 is located between the two second regions 40.
Specifically, as shown in fig. 9, the bending area 10 includes two second areas 40, the first area 30 is located between the two second areas 40, the two second areas 40 are configured in the same structure, the bending area 10 is composed of two second areas 40 and one first area 30, and the two second areas 40 are connected to the planar area 20, so as to implement a complete folding state of the bending area 10, so that the display panels 100 of the planar area 20 can be attached to each other when folded, thereby saving space and being portable.
Based on the same inventive concept, fig. 10 is a schematic structural diagram of a display device 200 provided in the embodiments of the present application, please refer to fig. 10, the present application further provides a display device 200, the display device 200 includes a flexible display panel 100, and the flexible display panel 100 is the display device 100 provided in any of the embodiments of the present application, and repeated details are not repeated. The display device 200 provided by the present application may be: the mobile phone, the tablet computer, the display, the notebook computer, the digital photo frame, the navigator and other products or components with the photographing function, the touch function and the display function.
It should be noted that the embodiment shown in fig. 10 only schematically shows a relative position relationship diagram of the flexible display panel 100 and the display device 200, and does not represent an actual size.
According to the embodiments, the application has the following beneficial effects:
the application provides a flexible display panel and display device, according to the size of the radius of curvature of bending zone, and according to the size of the planar vertical distance of bending zone apart from display panel plane district, will bend to distinguish into first region and second region, through setting up first light path conversion portion in first region, set up second light path conversion portion in the second region, can assemble the back outgoing to display panel play plain noodles with the light that first region pixel luminescent layer launches through first light path conversion portion at least partly, can deviate the back outgoing to display panel play plain noodles with the light that second region pixel luminescent layer launches through second light path conversion portion at least partly, set up light path conversion portion to the characteristics of first region and second region respectively, can more effective reinforcing first region and second region display panel's display luminance, in order to reach the homogeneity of bending zone and plane district display panel display luminance.
The foregoing description shows and describes several preferred embodiments of the present application, but as aforementioned, it is to be understood that the application is not limited to the forms disclosed herein, but is not to be construed as excluding other embodiments and is capable of use in various other combinations, modifications, and environments and is capable of changes within the scope of the inventive concept as expressed herein, commensurate with the above teachings, or the skill or knowledge of the relevant art. And that modifications and variations may be effected by those skilled in the art without departing from the spirit and scope of the application, which is to be protected by the claims appended hereto.

Claims (13)

1.一种柔性显示面板,其特征在于,包括:弯折区和与所述弯折区至少部分相邻的平面区;1. A flexible display panel, comprising: a bending area and a plane area at least partially adjacent to the bending area; 所述弯折区还包括第一区域和与所述第一区域相邻的至少一个第二区域;The bending region further includes a first region and at least one second region adjacent to the first region; 沿垂直于所述平面区所在平面的方向,所述弯折区包括像素发光层、光路转换层,以及至少一个第一光路转换部和至少一个第二光路转换部,所述光路转换层位于所述像素发光层靠近所述平面区所在平面的一侧,所述第一光路转换部和所述第二光路转换部中的至少一者位于所述光路转换层,所述第一光路转换部在所述平面区所在平面的正投影位于所述第一区域在所述平面区所在平面的正投影范围内;所述第二光路转换部在所述平面区所在平面的正投影位于所述第二区域在所述平面区所在平面的正投影范围内;In the direction perpendicular to the plane where the plane area is located, the bending area includes a pixel light-emitting layer, an optical path conversion layer, and at least one first optical path conversion part and at least one second optical path conversion part, and the optical path conversion layer is located at the The pixel light-emitting layer is close to the side of the plane where the plane area is located, at least one of the first light path conversion part and the second light path conversion part is located in the light path conversion layer, and the first light path conversion part is located in the light path conversion layer. The orthographic projection of the plane where the plane area is located is located within the orthographic projection range of the first area on the plane where the plane area is located; the orthographic projection of the second optical path conversion part on the plane where the plane area is located is located in the second The area is within the orthographic projection range of the plane where the plane area is located; 在所述第一区域,所述像素发光层发出的光线至少部分经过所述第一光路转换部汇聚后出射至所述显示面板出光面;在所述第二区域,所述像素发光层发出的光线至少部分经过所述第二光路转换部偏折后沿垂直于所述平面区所在平面的方向出射至所述显示面板出光面;In the first area, at least part of the light emitted by the pixel light-emitting layer is collected by the first light path conversion part and then exits to the light-emitting surface of the display panel; in the second area, the light emitted by the pixel light-emitting layer At least part of the light is deflected by the second light path converting portion and then exits to the light emitting surface of the display panel along a direction perpendicular to the plane where the plane area is located; 所述第一区域的曲率半径大于所述第二区域的曲率半径;The radius of curvature of the first region is greater than the radius of curvature of the second region; 所述第一区域与所述平面区所在平面的垂直距离大于所述第二区域与所述平面区所在平面的垂直距离。The vertical distance between the first area and the plane where the plane area is located is greater than the vertical distance between the second area and the plane where the plane area is located. 2.根据权利要求1所述的柔性显示面板,其特征在于,所述第二区域包括相对设置的第一边缘和第二边缘,所述第一边缘与所述平面区相邻,所述第二边缘与所述第一区域相邻。2 . The flexible display panel according to claim 1 , wherein the second area comprises a first edge and a second edge arranged opposite to each other, the first edge is adjacent to the plane area, and the first edge is adjacent to the flat area. 3 . The two edges are adjacent to the first area. 3.根据权利要求1所述的柔性显示面板,其特征在于,所述第一光路转换部为凸透镜,所述凸透镜的焦距方向垂直于所述平面区所在平面;3 . The flexible display panel according to claim 1 , wherein the first optical path conversion part is a convex lens, and the focal length direction of the convex lens is perpendicular to the plane where the plane area is located; 4 . 任意相邻两个所述凸透镜的中心之间的距离均相等。The distance between the centers of any two adjacent convex lenses is the same. 4.根据权利要求3所述的柔性显示面板,其特征在于,沿垂直于所述平面区所在平面的方向,所述凸透镜的中心到所述像素发光层靠近所述光路转换层一侧的垂直距离大于所述凸透镜的二倍焦距。4 . The flexible display panel according to claim 3 , wherein, along a direction perpendicular to the plane where the plane area is located, the center of the convex lens is perpendicular to the side of the pixel light-emitting layer close to the light path conversion layer. 5 . The distance is greater than twice the focal length of the convex lens. 5.根据权利要求2所述的柔性显示面板,其特征在于,所述第二光路转换部为反射镜,所述反射镜与所述平面区所在平面之间设置有夹角。5 . The flexible display panel according to claim 2 , wherein the second optical path conversion part is a reflecting mirror, and an angle is set between the reflecting mirror and the plane where the plane area is located. 6 . 6.根据权利要求5所述的柔性显示面板,其特征在于,沿所述第一边缘指向所述第二边缘的方向,相邻所述反射镜的中心在所述平面区所在平面的正投影之间的距离递减。6 . The flexible display panel according to claim 5 , wherein, along a direction from the first edge to the second edge, the center of the adjacent reflecting mirror is an orthographic projection of the plane where the plane area is located. 7 . The distance between them decreases. 7.根据权利要求5所述的柔性显示面板,其特征在于,沿所述第一边缘指向所述第二边缘的方向,所述反射镜与所述平面区所在平面之间的夹角递增,且所述反射镜与所述平面区所在平面之间的夹角均小于90°7 . The flexible display panel according to claim 5 , wherein, along a direction from the first edge to the second edge, the angle between the reflector and the plane where the plane area is located increases, 8 . And the angle between the mirror and the plane where the plane area is located is less than 90 ° . 8.根据权利要求5所述的柔性显示面板,其特征在于,每个所述反射镜的尺寸均相等。8 . The flexible display panel according to claim 5 , wherein each of the mirrors has the same size. 9 . 9.根据权利要求1所述的柔性显示面板,其特征在于,所述第一光路转换部与所述像素发光层之间的垂直距离大于所述第二光路转换部与所述像素发光层之间的垂直距离。9 . The flexible display panel according to claim 1 , wherein a vertical distance between the first light path conversion part and the pixel light emitting layer is greater than a distance between the second light path conversion part and the pixel light emitting layer. 10 . vertical distance between. 10.根据权利要求9所述的柔性显示面板,其特征在于,所述弯折区还包括触控层;10 . The flexible display panel according to claim 9 , wherein the bending region further comprises a touch layer; 10 . 所述第一光路转换部位于所述触控层远离所述像素发光层的一侧,所述第二光路转换部位于所述光路转换层,且所述光路转换层位于所述像素发光层靠近所述显示面板出光面的一侧。The first light path conversion part is located on the side of the touch layer away from the pixel light emitting layer, the second light path conversion part is located on the light path conversion layer, and the light path conversion layer is located close to the pixel light emitting layer one side of the light-emitting surface of the display panel. 11.根据权利要求1所述的柔性显示面板,其特征在于,所述像素发光层包括多个阵列排布的像素单元;11. The flexible display panel according to claim 1, wherein the pixel light-emitting layer comprises a plurality of pixel units arranged in an array; 在所述第一区域,n个所述像素单元的出射光经过同一所述第一光路转换部,n≥1;In the first area, the outgoing light of the n pixel units passes through the same first optical path conversion part, and n ≥ 1; 在所述第二区域,m个所述像素单元的出射光经过同一所述第二光路转换部,m≥1。In the second area, the outgoing light of the m pixel units passes through the same second light path conversion part, and m ≥ 1. 12.根据权利要求1所述的柔性显示面板,其特征在于,所述弯折区包括两个所述第二区域,所述第一区域位于两个所述第二区域之间。12 . The flexible display panel of claim 1 , wherein the bending region comprises two of the second regions, and the first region is located between the two second regions. 13 . 13.一种显示装置,其特征在于,包括权利要求1-12之任一所述的柔性显示面板。13. A display device, comprising the flexible display panel according to any one of claims 1-12.
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