Flexible display device
10517196 ยท 2019-12-24
Assignee
Inventors
Cpc classification
H10K50/86
ELECTRICITY
International classification
Abstract
A flexible display device includes a flexible display panel and a heat dissipating layer. The flexible display panel includes a bending region and a non-bending region. The heat dissipating layer includes a first heat dissipating sublayer and a second heat dissipating sublayer. The first heat dissipating sublayer is disposed on the non-bending region and the second heat dissipating sublayer is disposed on the first heat dissipating sublayer.
Claims
1. A flexible display device, comprising: a flexible display panel comprising a bending region and a non-bending region; a heat dissipating layer comprising a first heat dissipating sublayer and a second heat dissipating sublayer, the first heat dissipating sublayer disposed on the non-bending region and the second heat dissipating sublayer disposed on the first heat dissipating sublayer; a buffer layer disposed between the first heat dissipating sublayer and the flexible display panel; a metal layer disposed between the buffer layer and the first heat dissipating sublayer; and a thermal conductive glue layer disposed between the metal layer and the first heat dissipating sublayer, wherein the first heat dissipating sublayer and the second heat dissipating sublayer are disposed corresponding to the non-bending region and not corresponding to the bending region, and the buffer layer, the metal layer, and the thermal conductive glue layer are disposed corresponding to the bending region and the non-bending region; wherein the material of the first heat dissipating sublayer is graphite or nanocarbon and the material of the second heat dissipating sublayer is copper; wherein the bending region is rectangular, and the length of one edge of the bending region is r, where r is a radius of maximum curvature of the flexible display panel.
2. The flexible display device according to claim 1, wherein the flexible display panel comprises one bending region and two non-bending regions; wherein the bending region is symmetric with respect to a central plane of the flexible display panel; and wherein the two non-bending regions are disposed at two sides of the bending region, respectively.
3. The flexible display device according to claim 1, wherein the bending region is disposed in a peripheral zone of the flexible display panel; and wherein the non-bending region is disposed in a middle zone of the flexible display panel and the non-bending region and the bending region are adjacent to each other.
4. The flexible display device according to claim 1, wherein thickness of the first heat dissipating sublayer is 12-18 mm.
5. The flexible display device according to claim 1, wherein thickness of the second heat dissipating sublayer is 10-50 mm.
6. The flexible display device according to claim 1, wherein the material of the metal layer is nickel-based amorphous alloy or zirconium-based amorphous alloy.
7. A flexible display device, comprising: a flexible display panel comprising a bending region and a non-bending region; a heat dissipating layer comprising a first heat dissipating sublayer and a second heat dissipating sublayer, the first heat dissipating sublayer disposed on the non-bending region and the second heat dissipating sublayer disposed on the first heat dissipating sublayer; a buffer layer disposed between the first heat dissipating sublayer and the flexible display panel; a metal layer disposed between the buffer layer and the first heat dissipating sublayer; and a thermal conductive glue layer disposed between the metal layer and the first heat dissipating sublayer, wherein the first heat dissipating sublayer and the second heat dissipating sublayer are disposed corresponding to the non-bending region and not corresponding to the bending region, and the buffer layer, the metal layer, and the thermal conductive glue layer are disposed corresponding to the bending region and the non-bending region.
8. The flexible display device according to claim 7, wherein the flexible display panel comprises one bending region and two non-bending regions; wherein the bending region is symmetric with respect to a central plane of the flexible display panel; and wherein the two non-bending regions are disposed at two sides of the bending region, respectively.
9. The flexible display device according to claim 7, wherein the bending region is disposed in a peripheral zone of the flexible display panel; and the non-bending region is disposed in a middle zone of the flexible display panel and the non-bending region and the bending region are adjacent to each other.
10. The flexible display device according to claim 7, wherein the material of the first heat dissipating sublayer is graphite or nanocarbon and thickness of the first heat dissipating sublayer is 12-18 mm.
11. The flexible display device according to claim 7, wherein the material of the second heat dissipating sublayer is copper and thickness of the second heat dissipating sublayer is 10-50 mm.
12. The flexible display device according to claim 7, wherein the bending region is rectangular, and the length of one edge of the bending region is r, where r is a radius of maximum curvature of the flexible display panel.
13. The flexible display device according to claim 7, wherein the material of the metal layer is nickel-based amorphous alloy or zirconium-based amorphous alloy.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(7) The following descriptions for the respective embodiments are specific embodiments capable of being implemented for illustrating the present disclosure with reference to the appended figures. In describing the present disclosure, spatially relative terms such as upper, lower, front, back, left, right, inner, outer, lateral, and the like, may be used herein for ease of description as illustrated in the figures. Therefore, the spatially relative terms used herein are intended to illustrate the present disclosure for ease of understanding, but are not intended to limit the present disclosure.
(8) In the appending drawings, units with similar structures are indicated by the same reference numbers.
(9) References herein to embodiment means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one example embodiment of the present disclosure. The appearances of this phrase in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments mutually exclusive of other embodiments. As such, the embodiments described herein, explicitly and implicitly understood by one skilled in the art, can be combined with other embodiments.
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(11) The flexible display panel 2000 is divided into a bending region 200 and a non-bending region 201 according to a bending property of the flexible display panel 2000. The bending region 200 has a large capacity for stress. The non-bending region 201 has a small capacity for stress and accordingly, bending operations are not performed on the non-bending region 201. When the flexible display panel 2000 bends or folds, the heat dissipating layer 1000 bears a drastic stress and may be thus deformed or even damaged. Accordingly, in the present embodiment, the heat dissipating layer 1000 is disposed on the non-bending region 201, that is, on a part of the flexible display panel 2000 that bending operations are not cast onto. Accordingly, the heat dissipating layer 1000 avoids the stress caused by bending the flexible display panel 2000. Not only heat dissipation performance but also bending durability of the flexible display device 1 are improved.
(12) In some embodiments, as shown in
(13) In some embodiments, manufacturing the heat dissipating layer 1000 can be achieved by forming the heat dissipating layer 1000 directly on the flexible display panel 2000 and then removing the heat dissipating layer 1000 on the bending region 200. In some embodiments, portions on the flexible display panel 2000 that can be bent and cannot be bent may be classified first, that is, classified into the bending region 200 and the non-bending region 201. Then, the heat dissipating layer 1000 is manufactured on the non-bending region 201. This can reduce the waste of material of the heat dissipating layer 1000. As shown in
(14) The heat dissipating layer 1000 is made of a high thermal conductive material such as cooper, graphene, and nanocarbon. It is noted that the heat dissipating layer 1000 can be formed using mixed materials consisting of a lot of types of high thermal conductive materials, and can also be formed by sequentially overlapping a plurality of heat dissipating sublayers made of different materials. Formation of the heat dissipating layer 1000 is not particularly limited herein.
(15) The heat dissipating layer 1000 includes a first heat dissipating sublayer 100 and a second heat dissipating sublayer 101. The first heat dissipating sublayer 100 is disposed on the non-bending region and the second heat dissipating sublayer 101 is disposed on the first heat dissipating sublayer 100. Both of the first heat dissipating sublayer 100 and the second heat dissipating sublayer 101 are used for heat dissipation.
(16) In some embodiments, the material of the first heat dissipating sublayer 100 is graphite. Graphite of natural or synthetic origin can be used. In some embodiments, nanocarbon is simple in manufacture and low in cost, and thus can be taken as a material of the first heat dissipating sublayer 100. The thickness of the first heat dissipating sublayer 100 is 12-18 mm. Preferably, the thickness of the first heat dissipating sublayer 100 is set to 15 mm.
(17) In some embodiments, the material of the second heat dissipating sublayer 101 is copper and the thickness of the second heat dissipating sublayer 100 is 10-50 mm.
(18) In some embodiments, as shown in
(19) In some embodiments, as shown in
(20) In some embodiments, as shown in
(21) In the embodiments of the present disclosure, thermodynamic parameters of related materials are shown in Table 1-1 below. In a case that the flexible display device 1 only includes the flexible display panel 2000, its highest temperature reaches about 78 C. after absorbing the heat from external sources such as a battery, as shown in
(22) TABLE-US-00001 TABLE 1-1 Thermal Metal conductive Buffer layer glue Copper Graphite layer Coefficient of 5 0.6 401 Planar: 1500 0.038 thermal Vertical: 5 conductivity (W/m .Math. K) Free 12.5 convection coefficient (W/m.sup.2 .Math. C.)
(23) In the flexible display device of the embodiments of the present disclosure, the heat dissipating layer is disposed corresponding to the non-bending region of the flexible display panel. Not only the heat dissipation performance of the flexible display device, but also the bending durability of the flexible display device are improved. Deployment of the buffer layer and the metal layer further increases the bending durability of the flexible display device.
(24) Above all, while the preferred embodiments of the present disclosure have been illustrated and described in detail, various modifications and alterations can be made by persons skilled in this art. The embodiment of the present disclosure is therefore described in an illustrative but not a restrictive sense. It is intended that the present disclosure should not be limited to the particular forms as illustrated, and that all modifications and alterations which maintain the spirit and realm of the present disclosure are within the scope as defined in the appended claims.