Composite structure, flexible display assembly, and foldable terminal
A composite structure with a hard rubber fiber substrate and functional layers addresses the challenges of weight and cost in foldable terminals, offering high strength and functionality for flexible displays.
Patent Information
- Application Number
- JP2023573666
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-05-31
- Filing Date
- 2022-05-26
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2042-05-26
AI Technical Summary
Existing flexible display support structures in foldable terminals face challenges in achieving high structural strength, light weight, and low cost, with materials like stainless steel being heavy and titanium alloy being costly and less rigid.
A composite structure comprising a substrate layer made of hard rubber fiber composite material and a functional layer with conductive, thermally conductive, and impact-resistant layers, providing support for flexible displays while reducing weight and cost.
The composite structure achieves high strength, rigidity, and functionality, enabling weight reduction of over 60% compared to stainless steel, while maintaining structural integrity and enhancing product competitiveness.
Smart Images

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Abstract
Description
[Technical field]
[0001] This application claims priority to Chinese Patent Application No. 202110606183.1, entitled "COMPOSITE STRUCTURE, FLEXIBLE DISPLAY ASSEMBLY, AND FOLDABLE TERMINAL," filed with the State Intellectual Property Office of China on May 31, 2021, the entire contents of which are incorporated herein by reference.
[0002] TECHNICAL FIELD Embodiments of the present application relate to the field of flexible display technology, and in particular to composite structures, flexible display assemblies, and foldable terminals. [Background technology]
[0003] With the development of flexible display technology, the use of flexible displays in terminal devices is increasing. In order to maintain the flatness and rigidity of the screen of the flexible display of the foldable terminal, a metal layer is usually placed under the screen as a screen under support mechanism. The material of the metal layer is mainly stainless steel and titanium alloy. Although stainless steel is a widely used material, stainless steel is heavy, so it does not lead to the overall weight reduction of the foldable terminal. Although titanium alloy is lighter, the cost of titanium alloy is much higher than that of stainless steel. In addition, the rigidity and strength of titanium alloy are lower than stainless steel. Therefore, the risk of bending reliability of titanium alloy is higher than that of stainless steel, and titanium alloy is not widely used at present. In order to overcome the disadvantages of the screen under support mechanism made of stainless steel or titanium alloy, it is necessary to provide a flexible display support structure that can simultaneously achieve high structural strength, light weight, and low cost. Summary of the Invention
[0004] In view of this, an embodiment of the present application provides a composite structure including a substrate layer and a functional layer. The substrate layer is made of a hard rubber fiber composite material, which has higher strength, smaller mass, and lower cost than metal materials such as stainless steel. The functional layer can provide the composite structure with functions such as electrical conductivity, thermal conductivity, and impact resistance. The composite structure is used to support a flexible display, and can provide good rigid support for the flexible display, has a small mass and low cost, and can effectively achieve functions such as electrical conductivity, thermal conductivity, and impact resistance, thereby enhancing the product competitiveness of the foldable terminal.
[0005] Specifically, a first aspect of the embodiment of the present application provides a composite structure. The composite structure includes a substrate layer and a functional layer disposed on at least one surface of the substrate layer, the substrate layer includes a first support member and a second support member disposed side by side, and a bendable connecting member disposed between the first support member and the second support member and connected to the first support member and the second support member, the material of the first support member and the second support member includes a hard rubber fiber composite material, and the functional layer includes one or more of a conductive layer, a heat conductive layer, and an impact-resistant layer. The first support member and the second support member are made of a hard rubber fiber composite material, in other words, a fiber-reinforced hard rubber material, which has a small mass and high strength and can provide good rigid support for a flexible display, has a high benefit of weight reduction, and has a low material cost, thereby enhancing the product competitiveness of the foldable terminal. The functional layer can be arranged to impart properties such as electrical conductivity, thermal conductivity, and impact resistance to the composite structure, and to realize functions such as electrical connection, heat dissipation, and drop resistance for the entire flexible display and terminal product, thereby meeting the multi-functional requirements for commercially available flexible display support structures and further enhancing the market competitiveness of foldable terminal products.
[0006] In one implementation of the present application, the conductive layer includes a conductive metal, and the conductive layer has a single-layer structure or a multi-layer structure. The conductive layer can be arranged to allow the composite structure to be effectively electrically connected to another component. The conductive layer can be formed on the substrate layer by adhesion, electroless plating, bonding of electroless plating and electroplating, or pressing a metal sheet into the substrate layer.
[0007] In one implementation of the present application, the conductive metal includes one or more of copper, silver, gold, nickel, and tin. When the conductive layer has a single-layer structure, the conductive layer may be formed by one type of conductive metal, for example, a single copper layer or a single nickel layer, or may be formed by two or more types of conductive metals, for example, the conductive layer may be formed by nickel and gold. Specifically, a local region of the conductive layer may be a gold layer, and another region other than the gold layer is a nickel layer. When the conductive layer has a multi-layer structure, the materials of different layers may be the same or different, and each layer may be formed by one type of conductive metal, or may be formed by two or more different conductive metals. For example, the conductive layer includes an inner layer and an outer layer, the inner layer is disposed on the substrate layer, and the outer layer is disposed on the inner layer away from the substrate layer. Specifically, the inner layer may include at least one of gold, silver, and copper, the outer layer may include at least one of nickel and tin, and the outer layer may protect the inner layer. Alternatively, the inner layer may be a nickel layer, with the gold layer locally plated onto the nickel layer.
[0008] In one implementation of the present application, the thermally conductive layer includes one or more of a thermally conductive silicone sheet, a thermally conductive silicone grease, a thermally conductive double-sided tape, a thermally conductive graphite sheet, a graphene sheet, and a graphene oxide sheet. The thermally conductive layer can be arranged to provide a good thermal conduction function for the composite structure and provide an effective channel for heat dissipation of the entire flexible display and terminal product. The thermally conductive layer can be formed on the substrate layer by adhesive or thermal fusion manner.
[0009] In one implementation of the present application, the impact-resistant layer includes one or more of silicone rubber, thermoplastic elastomer (TPE), polyurethane acrylate (PUA), polyvinyl chloride (PVC) soft rubber, and polyurethane (PU). The impact-resistant layer can be arranged to improve the ability of the composite structure and the flexible display to withstand external impact, help maintain the stability of the composite structure, and improve the drop resistance performance of the terminal product. The impact-resistant layer can be formed on the substrate layer by adhesive or heat-sealing manner.
[0010] In one implementation of the present application, the functional layer may be disposed on one side of the substrate layer or on both sides of the substrate layer. The functional layer may completely cover the substrate layer or may partially cover the substrate layer. For example, partially covering the substrate layer may mean that the functional layer covers only the surfaces of the first and second support members of the substrate layer and does not cover the bendable connecting members. When the functional layer is disposed on both sides of the substrate layer, the materials, number of layers, thicknesses, etc. of the functional layers on both sides may be the same or different. The conductive layer, the thermally conductive layer, and the impact-resistant layer may be disposed on the substrate layer in any order of stacking.
[0011] In one implementation of the present application, a hard rubber fiber composite material includes at least one fiber layer and a hard rubber material cured on the fiber layer.
[0012] In one implementation of the present application, the fiber layers include unidirectional fiber fabrics and / or woven fiber fabrics, in other words, the fiber weave of each fiber layer may be unidirectional or multidirectional.
[0013] In one implementation of the present application, the hard rubber material includes hard resin and / or hard rubber. The support member used to support the body of the flexible display needs to have high rigidity, and the hard resin and / or hard rubber can be selected to meet the rigidity requirement.
[0014] In one implementation of the present application, the hard rubber material includes one or more of epoxy resins, phenolic resins, amino resins, unsaturated polyesters, silyl ether resins, polyolefins, polyamides, polyoxymethylene, polycarbonates, polyphenylene ethers, and polysulfones.
[0015] In one implementation of the present application, the fiber layer includes one or more of glass fibers, carbon fibers, aramid fibers, aluminum oxide fibers, ultra-high molecular weight polyethylene fibers, and poly(p-phenylene benzobisoxazole) fibers.
[0016] In one embodiment of the present application, the mass content of the fibers in the hard rubber fiber composite material is 10% to 80%. By increasing the fiber content, the strength of the hard rubber fiber composite material can be improved.
[0017] In one implementation of the present application, the hard rubber fiber composite material includes multiple fiber layers, where the multiple fiber layers and the hard rubber material form a composite laminate of alternating fiber and hard rubber layers, or multiple fiber layers are stacked to form a fiber stack, and the hard rubber material is cured on the fiber stack.
[0018] In one implementation of the present application, the material of the bendable connecting member includes one or more of organic flexible material, soft rubber fiber composite material, bendable hard rubber fiber composite material, and bendable metal material. All of the above four materials can realize the bending performance of the bendable connecting member to cooperate with the folding and unfolding of the flexible display. The soft rubber fiber composite material and the organic flexible material can further obtain the benefit of weight reduction.
[0019] In one implementation of the present application, the organic flexible material includes one or more of fluororubber, silicone rubber, thermoplastic elastomer, polyvinyl chloride, polyimide, polyethylene terephthalate, cyclic olefin polymer, liquid crystal polymer, and polydimethylsiloxane.
[0020] In one implementation of the present application, a soft rubber fiber composite material includes at least one fiber layer and a soft rubber material cured on the fiber layer, the soft rubber material including one or more of a fluororubber, a silicone rubber, and a thermoplastic elastomer.
[0021] In one implementation of the present application, the mass content of the fibers in the soft rubber fiber composite material is 10% to 80%.
[0022] In one implementation of the present application, the soft rubber fiber composite material includes multiple fiber layers, where the multiple fiber layers and the soft rubber material form a composite laminate of alternating fiber and soft rubber layers, or multiple fiber layers are stacked to form a fiber stack, and the soft rubber material is cured on the fiber stack.
[0023] In one implementation of the present application, the bendable metal material includes one or more of stainless steel, titanium alloy, and aluminum alloy. Specifically, to better achieve bending performance, the bendable metal material can be porous stainless steel, porous titanium alloy, or porous aluminum alloy.
[0024] In one implementation of the present application, when the flexible connecting member is made of a soft rubber fiber composite material, the composite structure includes an integrally woven fiber layer that is continuously present in the first support member, the second support member, and the flexible connecting member. The composite structure can be an integrally woven fiber layer that includes one or more layers.
[0025] In one implementation of the present application, the bendable hard rubber fiber composite material has a porous structure. The bendable hard rubber fiber composite material can achieve bending performance by forming a porous structure on the hard rubber fiber composite material through laser drilling.
[0026] In one implementation of the present application, when the bendable connecting member is made of a bendable hard rubber fiber composite material, the bendable connecting member and the first support member and / or the second support member can be an integrally formed structure. When the substrate layer is an integrally formed structure, the substrate layer includes an integrally woven fiber layer and a hard rubber layer that are continuously present in the first support member, the second support member, and the bendable connecting member. The substrate layer is an integrally formed structure, which helps to achieve high structural stability of the substrate layer as a whole.
[0027] In one embodiment of the present application, the thickness of the composite structure is 0.1 mm to 5 mm. The thickness of the composite structure can be specifically designed according to the performance of the material and the actual application requirements of the product. The composite structure is generally in the form of a plate or sheet.
[0028] In one implementation of the present application, the first support member, the bendable connecting member, and the second support member are combined by thermocompression, bonding, splicing, or embedding, or the bendable connecting member and the first support member and / or the second support member are an integrally formed structure.
[0029] The composite structure provided in the first aspect of the embodiment of the present application is characterized by high strength, high rigidity, small mass, low cost, and functionality, and has bending performance. The composite structure can be used in foldable terminal products to realize the weight reduction and functionality of the product while satisfying the requirements such as strength and rigidity, and to enhance the competitiveness of the foldable terminal products.
[0030] A second aspect of the embodiment of the present application provides a terminal including the composite structure according to the first aspect of the embodiment of the present application. The composite structure may be an under-screen support structure used as a flexible display, or may be used as other functional parts. The terminal includes a flexible display and the composite structure disposed under the flexible display.
[0031] A third aspect of the embodiment of the present application provides a flexible display assembly including a flexible display and a flexible display support structure used to support the flexible display. The flexible display support structure is made by using a composite structure according to the first aspect of the embodiment of the present application. Since the aforementioned composite structure is used as a flexible display support structure, it can realize a lightweight and functional product while satisfying the strength, rigidity, and bending performance of the flexible display support structure. Compared with a stainless steel flexible display support structure, the weight is reduced by more than 60% and the cost is low.
[0032] An embodiment of the present application further provides a foldable terminal including a flexible display assembly according to the third aspect of the embodiment of the present application. The flexible display includes a bending region and a non-bending region on both sides of the bending region, and the flexible display support structure is disposed on the outer surface of the flexible display, and the first support member and the second support member of the flexible display support structure respectively correspond to the non-bending regions on both sides of the flexible display, and the bendable connecting member corresponds to the bending region of the flexible display. According to the foldable terminal provided in this embodiment of the present application, the flexible display support structure has high strength, can provide sufficient rigid support for the flexible display, and has a small mass and low cost. In addition, the flexible display support structure can further implement functions such as electrical connection, heat dissipation, and drop resistance of the flexible display and the foldable terminal to enhance product competitiveness and improve user experience. [Brief description of the drawings]
[0033] [Figure 1] 1 is a schematic diagram of a structure of a foldable terminal 10 according to an embodiment of the present application. [Diagram 2] FIG. 2 is a schematic diagram of a structure of a flexible display support structure 30 according to an embodiment of the present application. [Diagram 3] 1 is a schematic diagram of a structure of a substrate layer 100 according to an embodiment of the present application. [Figure 4] 1 is a schematic diagram of a structure of a foldable terminal 10 according to an embodiment of the present application. [Diagram 5] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 6A] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 6B] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 7] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 8A] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 8B] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 9] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 10] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 11A] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 in FIG. 1 taken along the AA' direction. [Figure 11B] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 in FIG. 1 taken along the AA' direction. [Figure 11C] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 in FIG. 1 taken along the AA' direction. [Figure 12]2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 13] 2 is a schematic diagram of the cross-sectional structure of the flexible display support structure 30 of FIG. 1 along the AA' direction, according to one embodiment. [Figure 14] FIG. 2 is a schematic diagram of the structure of a hard rubber fiber composite material according to one embodiment of the present application. [Figure 15] FIG. 1 is a schematic diagram of a fiber multidirectional weaving structure according to one embodiment of the present application. [Figure 16] FIG. 2 is a schematic diagram of the structure of a hard rubber fiber composite material according to another embodiment of the present application. [Figure 17] FIG. 2 is a schematic diagram of the structure of a hard rubber fiber composite material according to another embodiment of the present application. [Figure 18] FIG. 2 is a schematic diagram of a stacking of multiple fiber weaving layers of fiber layers at multiple angles according to one embodiment of the present application. [Figure 19] 1 is a schematic diagram of a structure of a flexible display support structure including an integrally woven fiber layer according to an embodiment of the present application. [Figure 20] 1 is a flow chart of a process for making a hard rubber fiber composite material according to an embodiment of the present application. [Figure 21] 4 is a flow chart of a process for making a hard rubber fiber composite material according to another embodiment of the present application. [Figure 22A] FIG. 2 is a schematic diagram of a connection scheme between a first support member made of hard rubber fiber composite material and a bendable connecting member according to one embodiment of the present application. [Figure 22B] FIG. 2 is a schematic diagram of a connection scheme between a first support member made of hard rubber fiber composite material and a bendable connecting member according to one embodiment of the present application. [Figure 22C] FIG. 2 is a schematic diagram of a connection scheme between a first support member made of hard rubber fiber composite material and a bendable connecting member according to one embodiment of the present application. [Figure 22D] FIG. 2 is a schematic diagram of a connection scheme between a first support member made of hard rubber fiber composite material and a bendable connecting member according to one embodiment of the present application. [Figure 22E] FIG. 2 is a schematic diagram of a connection scheme between a first support member made of hard rubber fiber composite material and a bendable connecting member according to one embodiment of the present application. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0034] The following describes embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application.
[0035] Please refer to FIG. 1. An embodiment of the present application provides a foldable terminal 10. The foldable terminal 10 may be a terminal product such as a mobile phone, a tablet computer, a notebook computer, a gaming laptop, an e-book reader, an in-vehicle computer, a display, a wearable device, and the like. The foldable terminal 10 includes a flexible display 20 and a flexible display support structure 30 attached to the side of the flexible display 20 away from the display surface. The flexible display 20 includes a bending region 21 and a non-bending region 22 located on both sides of the bending region 21, and the surfaces of the non-bending regions 22 on the two opposing sides are flat. The flexible display 20 is bendable and can be bent at the bending region 21 to realize folding and unfolding of the flexible display 20. For example, the flexible display 20 may be an active matrix organic light-emitting diode (AMOLED) display using a flexible resin material such as polyethylene terephthalate (PET) as a substrate, or may be other types or forms of displays.
[0036] Please refer to Figures 2 and 3. The flexible display support structure 30 provided in this embodiment of the present application is made of a composite structure. The composite structure includes a substrate layer 100 and a functional layer 200 disposed on the substrate layer 100. The substrate layer 100 includes a first support member 101, a bendable connecting member 103, and a second support member 102 arranged side by side. The bendable connecting member 103 is disposed between the first support member 101 and the second support member 102. Two opposite sides of the bendable connecting member 103 are respectively connected to the first support member 101 and the second support member 102. The first support member 101, the bendable connecting member 103, and the second support member 102 are arranged side by side in a first direction (X direction in Figure 2). The material of the first support member 101 and the second support member 102 includes a hard rubber fiber composite material. Specifically, the first support member 101 and the second support member 102 are plate-shaped hard rubber fiber composite panels. The functional layer 200 includes one or more of an electrically conductive layer, a thermally conductive layer, and an impact-resistant layer. The functional layer 200 may be disposed on one or both surfaces of the substrate layer 100. When the functional layer 200 is disposed on only one surface of the substrate layer 100, the functional layer 200 may be located on the side of the substrate layer 100 closer to the flexible display 20, or may be located on the side of the substrate layer 100 farther from the flexible display 20. The functional layer 200 may be formed on the substrate layer 100 by electroplating, electroless plating, bonding, compression bonding, or the like.
[0037] In one implementation of the present application, the flexible display support structure 30 may be bonded to a surface of the flexible display 20 away from the display surface by an adhesive to support the flexible display 20. In other words, the substrate layer 100 or the functional layer 200 may be bonded to the flexible display 20 by adhesive, and different regions of the flexible display support structure 30 may be tightly and firmly bonded to the flexible display 20 by the same adhesive or different adhesives. In one implementation of the present application, the length and width of the flexible display support structure 30 (i.e., the size in the X-direction and Y-direction in FIG. 2 ) match or essentially match the length and width of the flexible display 20.
[0038] Please refer to Figures 1 and 4. The flexible display support structure 30 is attached to the side of the flexible display 20 away from the display surface and is used to support the flexible display 20 to support the foldable terminal. The first support member 101 and the second support member 102 of the substrate layer 100 correspond to the non-bending region 22 of the flexible display 20, and the bendable connecting member 103 corresponds to the bending region 21 of the flexible display 20. When the foldable terminal 10 is unfolded, the bending region 21 of the flexible display 20 and the bendable connecting member 103 supporting the bending region 21 are unfolded together. When the foldable terminal 10 is unfolded, the bending region 21 of the flexible display 20 and the bendable connecting member 103 supporting the bending region 21 and the functional layer 200 are unfolded together. When the included angle between the first support member 101 and the second support member 102 is less than 180°, the flexible display 20 is in a bent state. When the included angle between the first support member 101 and the second support member 102 is equal to 180°, the flexible display 20 is in an unfolded state. The flexible display support structure 30 can support the flexible display 20 during the process of folding and unfolding the flexible display 20 to ensure the flatness of the flexible display 20 and protect the non-display surface of the flexible display 20. According to the flexible display support structure 30 provided in this embodiment of the present application, the first support member 101 and the second support member 102 in the substrate layer 100 are made of a hard rubber fiber composite material. The hard rubber fiber composite material has high strength and is smaller in mass than metal materials such as stainless steel. Therefore, the hard rubber fiber composite material provides good rigid support for the flexible display, has a high benefit of weight reduction, and helps to enhance the product competitiveness of the foldable terminal. The functional layer 200 can be arranged to impart performance such as electrical conductivity, thermal conductivity, and impact resistance to the flexible display support structure 30 in order to meet the product functional requirements of the flexible display support structure 30.
[0039] In one implementation of the present application, the functional layer 200 may include one or more of an electrically conductive layer, a thermally conductive layer, and an impact-resistant layer, and may further include a functional layer having another function, if necessary. In other words, the functional layer 200 includes at least one of an electrically conductive layer, a thermally conductive layer, and an impact-resistant layer. The functional layer 200 may include one or more electrically conductive layers. The functional layer 200 may include one or more thermally conductive layers. The functional layer 200 may include one or more impact-resistant layers. The thickness of the functional layer 200 may be 5 μm to 500 μm. The thickness of the functional layer 200 is 5 μm to 500 μm, which is the total thickness of the functional layers on one side of the substrate layer 100. In some embodiments, the thickness of the functional layer 200 may be 10 μm to 200 μm. In some embodiments, the thickness of the functional layer 200 may be 6 μm to 100 μm. The functional layer 200 may be disposed on one side of the substrate layer 100 or on both sides of the substrate layer 100. The functional layer 200 may completely cover the substrate layer 100 or may partially cover the substrate layer 100. When the functional layer 200 is disposed on both sides of the substrate layer 100, the materials, number of layers, thicknesses, etc. of the functional layer 200 on both sides may be the same or different. The conductive layer, the thermally conductive layer, and the shock-resistant layer may be selectively disposed on one side or both sides of the substrate layer 100 according to actual requirements. The functional layer 200 may include a conductive layer, may include a thermally conductive layer, may include a shock-resistant layer, may include a conductive layer and a thermally conductive layer, may include a conductive layer and a shock-resistant layer, may include a thermally conductive layer and a shock-resistant layer, or may include a conductive layer, a thermally conductive layer, and a shock-resistant layer. Optionally, the functional layer 200 may further include a functional layer having another function. The conductive layer, the thermally conductive layer, and the impact-resistant layer can be stacked in any order and disposed on the substrate layer 100. Optionally, the impact-resistant layer is located on the outermost side, and the impact-resistant layer may be located on the outer side and closer to the flexible display to better protect the flexible display. In one embodiment, the functional layer 200 includes a conductive layer, a thermally conductive layer, and an impact-resistant layer, which are sequentially disposed on the substrate layer 100. Such a stacking order facilitates the process preparation and facilitates the functional implementation of each functional layer.
[0040] Please refer to Figures 5, 6A, and 6B. In one implementation of the present application, the functional layer 200 is a single functional layer, in other words, the functional layer 200 includes a conductive layer, a thermally conductive layer, or an impact-resistant layer disposed on one or both sides of the substrate layer 100. For example, in one embodiment, the functional layer 200 includes a conductive layer. In another embodiment, the functional layer 200 includes a thermally conductive layer. In another embodiment, the functional layer 200 includes an impact-resistant layer. When the functional layer 200 is disposed on both sides of the substrate layer 100, the functional layers 200 on both sides may be functional layers having the same function, for example, a conductive layer on both sides, or functional layers having different functions, for example, a conductive layer on one side and a thermally conductive layer on the other side. The functional layer 200 may completely cover the surface of the substrate layer 100 as shown in Figure 6A, or may partially cover the surface of the substrate layer 100 as shown in Figure 6B. Specifically, the functional layer 200 covers only the surfaces of the support members 101 and 102 on both sides, and does not cover the surface of the bendable connecting member 103 .
[0041] Please refer to FIG. 7, FIG. 8A, and FIG. 8B. In another implementation of the present application, the functional layer 200 is a double functional layer including a first functional layer 201 and a second functional layer 202. The first functional layer 201 and the second functional layer 202 are any two of an electrically conductive layer, a thermally conductive layer, and an impact-resistant layer. In other words, the functional layer 200 has two material layers with different functions. For example, in one embodiment, the functional layer 200 includes an electrically conductive layer and an impact-resistant layer. In one embodiment, the functional layer 200 includes an electrically conductive layer and a thermally conductive layer. In one embodiment, the functional layer 200 includes a thermally conductive layer and an impact-resistant layer. The order of arranging the two functional layers may not be limited. The first functional layer 201 and the second functional layer 202 may completely or partially cover the surface of the substrate layer 100. In some embodiments, as shown in FIG. 8A, both the first functional layer 201 and the second functional layer 202 completely cover the surface of the substrate layer 100. In some embodiments, as shown in FIG. 8B, the first functional layer 201 covers only the surfaces of the support members on both sides and does not cover the surfaces of the bendable connecting members, and the second functional layer 202 completely covers the substrate layer 100.
[0042] Please refer to Figures 9 and 10. In another implementation of the present application, the functional layer 200 is a plurality of functional layers including a first functional layer 201, a second functional layer 202, and a third functional layer 203. The first functional layer 201, the second functional layer 202, and the third functional layer 203 are three functional layers, namely, an electrically conductive layer, a thermally conductive layer, and an impact-resistant layer. The order of arranging the three functional layers may not be limited.
[0043] In some other implementations of the present application, when the functional layers 200 are disposed on both sides of the substrate layer 100, a single functional layer is disposed on one side of the substrate layer 100 and dual functional layers are disposed on the other side, as shown in Figures 11A, 11B, and 11C, or a single functional layer is disposed on one side of the substrate layer 100 and multiple functional layers are disposed on the other side, as shown in Figure 12, or a dual functional layer is disposed on one side of the substrate layer 100 and multiple functional layers are disposed on the other side, as shown in Figure 13.
[0044] In one implementation of the present application, the conductive layer includes a conductive metal, and the conductive layer may have a single-layer structure or a multi-layer structure. The conductive layer may be disposed to provide the flexible display support structure 30 with an electrical conduction function, so that the flexible display support structure 30 can be effectively electrically connected to another component of the terminal 10, thereby compensating for the problem that the flexible display support structure 30 cannot be electrically connected to another component of the terminal 10 when the substrate layer 100 is made of a non-conductive material as a whole.
[0045] In one implementation of the present application, the conductive metal may include one or more of copper, silver, gold, nickel, and tin. When the conductive layer has a single-layer structure, the conductive layer may be formed by one type of conductive metal, for example, a single copper layer or a single nickel layer, or may be formed by two or more types of conductive metals. For example, the conductive layer is formed by nickel and gold. A local region of the conductive layer may be a gold layer, and another region other than the gold layer is a nickel layer. In another example, the conductive layer is formed by nickel and copper. A local region of the conductive layer is a copper layer, and another region other than the copper layer is a nickel layer. Alternatively, copper and nickel are used in all regions of the conductive layer. When the conductive layer has a multi-layer structure, the materials of different layers may be the same or different, and each layer may be formed by one type of conductive metal, or may be formed by two or more types of conductive metals. For example, the conductive layer includes an inner layer and an outer layer, the inner layer is disposed on the substrate layer, and the outer layer is disposed on the inner layer away from the substrate layer. Specifically, the inner layer includes at least one of gold, silver, and copper, and the outer layer includes at least one of nickel and tin, and the outer layer can protect the inner layer. Alternatively, the inner layer can be a nickel layer, and the gold layer is locally plated on the nickel layer. The flexible display support structure 30 has an electrical conduction function and can meet electrical connection requirements.
[0046] The conductive layer can be formed on the substrate layer 100 by adhesion, electroless plating, bonding of electroless plating and electroplating, or pressing a metal sheet. In one implementation, the conductive layer is formed on the substrate layer 100 by electroless plating. A specific process may include the following.
[0047] (1) Both sides of the substrate layer 100 are acid- or alkali-cleaned to remove oil stains on the surface. If the area of the bendable connecting member contains non-metal, the area of the bendable connecting member of the substrate layer needs to be covered during acid or alkali cleaning. If the area of the bendable connecting member is made of a metal material, it is not necessary to cover the area of the bendable connecting member.
[0048] (2) Subsequently, catalysis is performed to deposit a catalyst layer on the surface of the substrate layer 100. The catalyst may specifically be a palladium-containing catalyst.
[0049] (3) The substrate layer 100 is immersed in a plating solution for electroless plating to form a metal conductive layer, and is washed and dried to obtain a composite structure having a conductive layer. When the area of the bendable connecting member is covered, the conductive layer only covers the surfaces of the support members on both sides, and does not cover the surfaces of the bendable connecting member. When the bendable connecting member is not covered, the conductive layer covers the entire surface of the substrate layer, in other words, covers the surfaces of the bendable connecting member and the support members on both sides. In the process of plating the conductive layer, the bendable connecting member containing non-metal is covered, so that the bendable connecting member can be protected from corrosion and damage.
[0050] In one implementation of the present application, the thermally conductive layer may include one or more of a thermally conductive silicone sheet, a thermally conductive silicone grease, a thermally conductive double-sided tape, a thermally conductive graphite sheet, a graphene sheet, and a graphene oxide sheet. The thermally conductive layer may have a single-layer structure or a multi-layer structure. The thermally conductive layer may be arranged to provide the flexible display support structure 30 with a good thermal conductivity function and facilitate heat dissipation of the flexible display and the entire terminal product. Specifically, the flexible display support structure 30 has a thermal conductivity function and can transfer heat generated by a battery or the like inside the terminal to the display side, and finally dissipate the heat to the outside of the terminal. The thermally conductive layer may be formed on the substrate layer 100 by adhesion or heat fusion (thermocompression) manner.
[0051] In one implementation of the present application, the impact-resistant layer may include one or more of silicone rubber, thermoplastic elastomer (TPE), polyurethane acrylate (PUA), polyvinyl chloride (PVC) soft rubber, and polyurethane (PU). The impact-resistant layer has a buffer function, and the impact-resistant layer may be a single-layer structure or a multi-layer structure. The thermoplastic elastomer (TPE) may include, but is not limited to, one or more of thermoplastic polyurethane (TPU), thermoplastic polyester elastomer (TPEE), styrene-based thermoplastic elastomer, polyolefin-based thermoplastic elastomer (POE), polyetherester-based thermoplastic elastomer, and polyamide-based thermoplastic elastomer. The impact-resistant layer may be disposed to give the flexible display support structure 30 the ability to withstand external impact, help protect the display, and improve the drop-resistant performance of the terminal product. When the impact-resistant layer is disposed on only one side of the substrate layer 100, the impact-resistant layer is located on the side of the substrate layer facing the display, so that the impact-resistant layer can better protect the display from drop impact. The impact resistant layer can be formed on the substrate layer 100 by adhesive or heat sealing.
[0052] Please refer to FIG. 14. The hard rubber fiber composite material 110 in the present application includes at least one fiber layer 111 and a hard rubber material 112 cured on the fiber layer 111. In one implementation of the present application, the hard rubber material 112 includes hard resin and / or hard rubber. In the present application, the specific types of hard resin and hard rubber are not particularly limited, and as long as the hard resin and hard rubber cooperate with the fiber to provide sufficient rigid support for the flexible display, it can meet the application requirements of the electronic device. Specifically, the hard rubber material 112 includes, but is not limited to, one or more of epoxy resin, phenolic resin, amino resin, unsaturated polyester, silyl ether resin, polyolefin, polyamide, polyoxymethylene, polycarbonate, polyphenylene ether, and polysulfone. It can be understood that a hard rubber material with a relatively small mass can be selected on the premise that mechanical support is met, in order to reduce the overall weight of the flexible display support structure as much as possible. The hard rubber material 112 can be cured onto the fabric layer 111 by using a solution impregnation method or a hot melt method in combination with a hot pressing process.
[0053] In one implementation of the present application, the fibers in the fiber layer 111 are continuous fibers, and may specifically include, but are not limited to, one or more of glass fibers, carbon fibers, aramid fibers, aluminum oxide fibers, ultra-high molecular weight polyethylene fibers, and poly(p-phenylene benzobisoxazole) fibers. Ultra-high molecular weight polyethylene fibers are spun using polyethylene with a molecular weight of more than 1 million. The fiber layer 111 may be woven with one type of fiber or two or more types of fibers. The performance advantages of various types of fibers can be combined by weaving different types of fibers.
[0054] In one implementation of the present application, the mass content of fiber in the hard rubber fiber composite material can be 10% to 80%. Specifically, the mass content of fiber in the hard rubber fiber composite material can be, for example, 10%, 20%, 30%, 40%, 50%, 60%, 70%, or 80%. The fiber content in the hard rubber fiber composite material can be adjusted according to specific rigid support requirements and in combination with the mechanical properties of the selected hard resin or hard rubber. In general, the higher the fiber content, the larger the total weight of the hard rubber fiber composite material, which is advantageous for weight reduction. In some implementations, in combination with rigid support performance and weight reduction requirements, the mass content of fiber in the hard rubber fiber composite material is 30% to 70%.
[0055] In one implementation of the present application, the weave of the fibers in each fiber layer 111 may be unidirectional or multidirectional. In other words, the fiber layer 111 may be a unidirectional fiber fabric or a woven fiber fabric. A unidirectional fiber fabric, or fiber single axial-direction weaving, is a fabric that has many fiber threads in one direction (usually a warp or weft unidirectional weaving) and only a few, usually thin, threads in another direction. Thus, the strength of the fabric is all unidirectional. A woven fiber fabric is a fabric where the fibers are woven in multiple axial directions, there are many fiber threads in multiple directions, and the strength of the final fabric is distributed in multiple axial directions. For example, warp and weft biaxial weaving, or 0° / 90° weaving, means that the fibers of the textile fabric are distributed in two axial directions, the angles of the two axial directions are 0° and 90°, respectively, and the angle between the fibers of the two axial directions is 90°. In another example, 45° weaving, or +45° / −45°, means that the fibers of the textile fabric are distributed in two axial directions, the angles of the two axial directions are +45° and −45°, respectively, and the included angle between the fibers of the two axial directions is 90°.
[0056] In one implementation of the present application, the specific weaving form of the fiber multi-directional weave is not limited. Specifically, the multi-directional weave form may be a plain weave as shown in (a) of Fig. 15, a twill weave as shown in (b) of Fig. 15, a satin weave as shown in (c) of Fig. 15, or other. In Fig. 15, (a), (b), and (c) all show a 0° / 90° biaxial weave.
[0057] In one implementation of the present application, the hard rubber fiber composite material may include only one fiber layer 111, or may include multiple (two or more) fiber layers 111. For example, the hard rubber fiber composite material in FIG. 14 has one fiber layer 111, and the hard rubber fiber composite material in FIG. 16 and FIG. 17 has three fiber layers 111. When there is one fiber layer 111, the fiber layer 111 is usually a multi-directional woven fiber layer to meet the strength requirements. When there are multiple fiber layers 111, the multiple fiber layers 111 may be stacked at different angles (multiple angles), and each fiber layer 111 may be woven in one direction or multi-direction, in order to better enhance the mechanical strength of the hard rubber fiber composite material and improve the strength of the hard rubber fiber composite material in all directions. In some embodiments, the multiple fiber layers 111 may be multiple layers of unidirectional fiber fabric stacked at different angles, in other words, each fiber layer 111 is a unidirectional fiber fabric. In one implementation of the present application, the stacking direction of the multiple fiber layers 111 can be any angle within the range of 0° to 90°. The multiple fiber layers are stacked at different angles, so that the fibers are distributed in multiple directions and a fiber network is formed to meet the mechanical strength requirements of the hard rubber fiber composite material in different directions and better provide rigid support for the flexible display. FIG. 18 is a schematic diagram of stacking four layers of unidirectional fiber fabric at different angles. The four layers of unidirectional fiber fabric are stacked at 0°, +45°, 90°, and -45°, respectively. In this way, the fibers can be continuously distributed in multiple directions, which improves the strength of the hard rubber fiber composite material in those directions and improves the overall mechanical performance of the hard rubber fiber composite material. In the present application, the 0° direction is the X direction in FIG. 2, that is, the direction in which the first support member 101, the bendable connecting member 103, and the second support member 103 are arranged side by side. In some embodiments, when multiple fiber layers are stacked, to avoid warping, the multiple fiber layers are stacked symmetrically on two sides from the center in the stacking direction, for example, +45° / 0° / 0° / -45°, 0° / 90° / 0° / 0° / 90° / 0°, 0° / +45° / -45° / -45° / +45° / 0°, and 0° / 90° / 0° / 90° / 90° / 0° / 90° / 0° / .
[0058] In some implementations of the present application, as shown in FIG. 16, multiple fiber layers 111 and hard rubber materials form a composite laminate in which fibers and hard rubber are alternately laminated. The fiber materials of the fiber layers 111 may be the same or different. The materials of the hard rubber layers may be the same or different. Due to different fabrication processes, both sides of each fiber layer 111 are usually impregnated with hard rubber materials, for example, by using a solution impregnation method. When multiple fiber layers are laminated, if different fiber layers are impregnated with different hard rubber materials, the hard rubber layer located in the middle of the laminate may include two different hard rubber materials. By selecting the same hard rubber material for impregnation, different fiber layers are more likely to form a strong bond. In some other implementations of the present application, as shown in FIG. 17, multiple fiber layers 111 may be stacked together in contact and then impregnated with a hard rubber material; in other words, the hard rubber fiber composite material includes a fiber stack 11 formed by stacking multiple fiber layers and a hard rubber material impregnated and cured on the fiber stack 11.
[0059] In one implementation of the present application, the material of the bendable connecting member 103 may include one or more of soft rubber fiber composite material, bendable metal material, bendable hard rubber fiber composite material, or organic flexible material. By using the aforementioned materials, the bendable connecting member 103 may have good bending performance, so that the first support member 101 and the second support member 102 can be folded or unfolded relative to each other.
[0060] In one implementation, the bendable connecting member 103 is a soft rubber fiber composite material, specifically a soft rubber fiber composite panel. Both sides of the soft rubber fiber composite panel are respectively connected to the first support member 101 and the second support member 102 formed by the hard rubber fiber composite panel. In this case, the substrate layer 100 is a composite panel structure in the order of hard rubber fiber composite material, soft rubber fiber composite material, and hard rubber fiber composite material. The soft rubber fiber composite material is used in the middle area to realize the flexible bending function, and the hard rubber fiber composite material is used on both sides to provide under-screen support for the flexible display. In one implementation of the present application, the soft rubber fiber composite material includes at least one fiber layer and a soft rubber material impregnated and cured on the fiber layer. In one implementation of the present application, the selection of fiber, the specific structure of the fiber layer, the structure of the soft rubber fiber composite material, the fabrication method, and the like of the soft rubber fiber composite material, please refer to the relevant description of the hard rubber fiber composite material. Details will not be described again here. The difference between the soft rubber fiber composite material and the hard rubber fiber composite material in this application is that the soft rubber fiber composite material is a soft rubber material bonded to fibers, and the hard rubber fiber composite material is a hard rubber material bonded to fibers. The soft rubber fiber composite material is soft and bendable, and can be used as a bendable connecting member that conforms to the bending of the bending area of the flexible display. The hard rubber fiber composite material has high rigidity and can effectively support the non-bending area of the flexible display. The soft rubber material may include, but is not limited to, one or more of fluororubber, silicone rubber, and thermoplastic elastomer. The thermoplastic elastomer, in other words, artificial rubber or synthetic rubber, may specifically include, but is not limited to, one or more of thermoplastic polyurethane (TPU), thermoplastic polyester elastomer (TPEE), styrene-based thermoplastic elastomer, polyolefin-based thermoplastic elastomer (POE), polyetherester-based thermoplastic elastomer, and polyamide-based thermoplastic elastomer.
[0061] In one implementation of the present application, the mass content of fibers in the soft rubber fiber composite material is 10% to 80%. Specifically, the mass content of fibers in the soft rubber fiber composite material may be, for example, 10%, 20%, 30%, 40%, 50%, 60%, 70%, or 80%. The fiber content in the soft rubber fiber composite material may be adjusted according to the specific bending performance requirements, rigidity support requirements, and the performance of the selected soft rubber material. In general, the higher the fiber content, the higher the strength of the entire soft rubber fiber composite material, the lower the bending property, and the lighter the weight relatively. In some implementations, in combination with the bending performance, rigidity support performance, and weight reduction requirements, the mass content of fibers in the soft rubber fiber composite material may be 10% to 50%.
[0062] In one implementation of the present application, in the substrate layer 100, the fiber layers in the first support member 101 and the second support member 102 and the fiber layers in the bendable connecting member 103 may be designed to be independent of each other or may be an integrally woven structure. The materials of the fiber layers may be the same or different. The number of layers of the fiber layers may be the same or different. The stacking methods of the fiber layers may be the same or different. The fiber contents may be the same or different. The fiber contents in the hard rubber fiber composite material and the soft rubber fiber composite material may be selected according to certain conditions. In general, the fiber content in the soft rubber fiber composite material is lower than the fiber content in the hard rubber fiber composite material.
[0063] In some implementations of the present application, as shown in FIG. 19, when the bendable connecting member 103 is a soft rubber fiber composite material, the substrate layer 100 can be an integrally woven fiber layer 111 that is continuously present in the first support member 101, the second support member 102, and the bendable connecting member 103. The flexible display support structure 30 can be an integrally woven fiber layer that includes one or more layers. As shown in FIG. 19, two integrally woven fiber layers are included. The integrally woven fiber layer can simplify the fabrication process and ensure a reliable connection between the first support member 101, the second support member 102, and the bendable connecting member 103.
[0064] In one implementation of the present application, the soft rubber fiber composite material includes multiple fiber layers, where the multiple fiber layers and the soft rubber material may form a composite laminate with alternating fiber and soft rubber layers, or multiple fiber layers may be stacked to form a fiber stack, where the soft rubber material is impregnated and cured onto the fiber stack.
[0065] In one implementation of the present application, the bendable connecting member 103 may be formed by using a single layer of woven fiber fabric or by stacking multiple layers of unidirectional fiber fabric at multiple angles.
[0066] In one implementation of the present application, the specific manufacturing method of the substrate layer 100 formed in the order of hard rubber fiber composite material, soft rubber fiber composite material, and hard rubber fiber composite material is not limited. For example, the substrate layer 100 can be manufactured in the following two ways.
[0067] Method 1:
[0068] Step 101: Taking a plurality of fiber layers and stacking the plurality of fiber layers at a plurality of angles to form a fiber stack.
[0069] The multiple fiber layers are typically multiple layers of unidirectional fiber fabric, and the multiple fiber layers may be stacked at any angle ranging from 0° to 90°.
[0070] Step 102: By using solvent impregnation or hot melting, both sides of the fiber stack are impregnated with hard rubber material, and the middle is impregnated with soft rubber material, and after hot pressing, the substrate layer 100 is obtained. The substrate layer 100 thus prepared is an integrally woven fiber layer which is continuous with the first support member 101, the second support member 102, and the bendable connecting member 103.
[0071] Method 2:
[0072] Step 201: Take a fiber layer, and impregnate both sides of the fiber layer with hard rubber material by using a solvent impregnation method or a hot melt method to form a hard rubber fiber single layer prepreg, and perform multi-layer stacking at multiple angles on the hard rubber fiber single layer prepreg to obtain a hard rubber fiber laminate prepreg.
[0073] Step 202: Take a fiber layer, impregnate both sides of the fiber layer with soft rubber material by using solvent impregnation method or hot melt method to form a soft rubber fiber single layer prepreg, perform multi-layer stacking at multiple angles on the soft rubber fiber single layer prepreg, and then perform hot pressing to obtain a soft rubber fiber composite panel. In this step, a single fiber layer of a target thickness can be directly selected, and multi-layer stacking is not used. The fiber layer with multiple layers stacked is usually a unidirectional fiber fabric, and when a single fiber layer is directly selected, the fiber layer is usually a woven fiber fabric.
[0074] Step 203: The hard rubber fiber laminate prepreg, the soft rubber fiber composite panel, and the hard rubber fiber laminate prepreg are arranged side by side, and then thermal compression bonding is carried out to obtain the substrate layer 100.
[0075] In this implementation, the substrate layer 100 is a composite panel of a hard rubber fiber composite material, a soft rubber fiber composite material, and a hard rubber fiber composite material in this order. The substrate layer 100 has a generally flat plate-like or sheet-like structure.
[0076] In order to better bond the hard rubber fiber composite material and the soft rubber fiber composite material at the connection, when the two materials are arranged side by side, the hard rubber fiber laminate prepregs on both sides can be partially cross-connected to the middle soft rubber fiber composite panel. Specifically, the width of the single layer prepreg located in the middle few layers of the hard rubber fiber laminate prepreg can be reduced, in other words, the single layer prepreg is recessed to a certain width to ensure a clamping space. The middle soft rubber fiber composite panel is partially clamped in the clamping space, and after pressing, a composite panel made in the order of hard rubber fiber composite material, soft rubber fiber composite material, and hard rubber fiber composite material is made without any steps. After hot pressing, the hard rubber fiber laminate prepreg forms a hard rubber fiber composite panel, specifically a panel made of hard rubber fiber composite material.
[0077] In some other implementations of the present application, multi-layer stacking can be performed at multiple angles on the soft rubber fiber single layer prepreg to obtain a soft rubber fiber laminate prepreg, then the hard rubber fiber laminate prepreg, the soft rubber fiber laminate prepreg, and the hard rubber fiber laminate prepreg are arranged side by side, and then heat compression is performed to obtain a flexible display support structure. In some other implementations of the present application, multi-layer stacking can be performed at multiple angles on the hard rubber fiber single layer prepreg to obtain a hard rubber fiber laminate prepreg, then heat compression is performed to obtain a hard rubber fiber composite panel, then the hard rubber fiber composite panel, the soft rubber fiber composite panel, and the hard rubber fiber composite panel are arranged side by side, and then heat compression is performed to obtain a flexible display support structure.
[0078] Figure 20 is a flow chart of the process for producing hard rubber fiber composite material using the solvent impregnation method. Figure 21 is a flow chart of the process for producing hard rubber fiber composite material using the hot melt method.
[0079] In one implementation of the present application, the hard rubber fiber composite material and the soft rubber fiber composite material may be spliced and bonded by the above-mentioned thermocompression bonding method, or may be spliced and bonded by another method that can achieve good bonding, such as adhesion, fusion, laser welding, etc.
[0080] In another implementation of the present application, the bendable connecting member 103 is a bendable metal connecting member, and both sides of the bendable metal connecting member are respectively connected to the first supporting member 101 and the second supporting member 102 formed by hard rubber fiber composite panels. The bendable metal connecting member can be specifically made of metal materials such as stainless steel, titanium alloy, aluminum alloy, etc. The bendable metal connecting member 103 can be joined to the first supporting member 101 and the second supporting member 102 by methods such as thermocompression, adhesion, splicing, clamping, etc., or can be connected by a connecting mechanism.
[0081] In one implementation of the present application, the specific manufacturing method of the substrate layer 100 formed in the order of the hard rubber fiber composite material, the metal material, and the hard rubber fiber composite material is not limited. The substrate layer 100 can be manufactured, for example, as follows.
[0082] Step 301: Take a fiber layer, and impregnate both sides of the fiber layer with hard rubber material by using a solvent impregnation method or a hot melt method to form a hard rubber fiber single layer prepreg, and perform multi-layer stacking at multiple angles on the hard rubber fiber single layer prepreg to obtain a hard rubber fiber laminate prepreg.
[0083] Step 302: Take a metal sheet with a target thickness, arrange the hard rubber fiber laminate prepreg, the metal sheet, and the hard rubber fiber laminate prepreg side by side, and then perform thermocompression bonding to obtain the substrate layer 100.
[0084] In this implementation, the substrate layer 100 is a composite panel made of a hard rubber fiber composite material, a metal material, and a hard rubber fiber composite material in that order. The substrate layer 100 has a generally flat or sheet-like structure.
[0085] In order to better bond the hard rubber fiber composite material and the metal sheet at the connection, when the two materials are arranged side by side, the hard rubber fiber laminate prepregs on both sides can be partially cross-connected to the middle metal sheet. Specifically, the width of the single layer prepreg located in the middle few layers of the hard rubber fiber laminate prepreg can be reduced, in other words, the single layer prepreg is recessed to a certain width to ensure the clamping space. The two ends of the middle metal sheet are reduced by a certain thickness to form a clamping part (a stepped surface is formed by the reduced surface) that matches the clamping space, and the clamping part is clamped into the clamping space of the hard rubber fiber laminate prepreg. After thermocompression bonding, a composite panel made in the order of the hard rubber fiber composite material, the metal material, and the hard rubber fiber composite material is produced without any steps. The clamping parts at both ends of the metal sheet can be etched to form openings to strengthen the bonding between the hard rubber fiber composite material and the metal sheet. Prior to thermocompression bonding, the surface of the metal sheet may be treated with plasma to improve surface roughness and enhance the bond between the hard rubber fiber composite and the metal sheet.
[0086] In one implementation of the present application, the metal sheet used as the bendable connecting member is required to have good bending performance and is usually a porous metal sheet, with the porous holes extending vertically (in other words, in the Y direction).
[0087] In one implementation of the present application, the hard rubber fiber composite material and the metal material may be joined and bonded by the above-mentioned thermocompression bonding method, or by another method that can achieve good bonding, such as adhesive bonding, fusion bonding, laser welding, etc.
[0088] In another implementation of the present application, the bendable connecting member 103 is an organic flexible material film. Both sides of the organic flexible material film are respectively connected to the first supporting member 101 and the second supporting member 102 formed by hard rubber fiber composite panels, and specifically, may be joined together by thermocompression, adhesion, welding, or clamping, or may be connected by a connecting mechanism. The organic flexible material film can achieve flexible and bending functions. The organic flexible material may include one or more of fluororubber, silicone rubber, thermoplastic elastomer, polyvinyl chloride (PVC), polyimide (PI), polyethylene terephthalate (PET), cyclic olefin polymer (COP), liquid crystal polymer (LCP), and polydimethylsiloxane (PDMS). In other words, the thermoplastic elastomer is artificial or synthetic rubber. Specifically, the thermoplastic elastomer may include one or more of a thermoplastic polyurethane (TPU), a thermoplastic polyester elastomer (TPEE), a styrene-based thermoplastic elastomer, a polyolefin-based thermoplastic elastomer (POE), a polyetherester-based thermoplastic elastomer, and a polyamide-based thermoplastic elastomer.
[0089] In one implementation of the present application, the specific manufacturing method of the substrate layer 100 formed in the order of the hard rubber fiber composite material, the organic flexible material, and the hard rubber fiber composite material is not limited. The substrate layer 100 can be manufactured, for example, as follows.
[0090] Step 301: Take a fiber layer, and impregnate both sides of the fiber layer with hard rubber material by using a solvent impregnation method or a hot melt method to form a hard rubber fiber single layer prepreg, and perform multi-layer stacking at multiple angles on the hard rubber fiber single layer prepreg to obtain a hard rubber fiber laminate prepreg.
[0091] Step 302: Take an organic flexible material film with a target thickness, arrange the hard rubber fiber laminated prepreg, the organic flexible material film, and the hard rubber fiber laminated prepreg side by side, and then perform thermocompression bonding to obtain the substrate layer 100.
[0092] In this implementation, the substrate layer 100 is a composite panel made of a hard rubber fiber composite material, an organic flexible material, and a hard rubber fiber composite material in that order. The substrate layer 100 has an overall plate-like or sheet-like structure.
[0093] In this implementation, the structure of the joint between the hard rubber fiber composite panel 101 and the organic flexible material film 103 is not limited. The combination may be a wire combination as shown in FIG. 22A, or a tooth combination, i.e., a clamp, as shown in FIG. 22B, FIG. 22C, and FIG. 22D. Alternatively, as shown in FIG. 22E, a connection mechanism 104, for example, a buckle combination, is used to realize the connection between the two. The specific tooth shape of the tooth combination is not limited, and the tooth may be formed on the hard rubber fiber composite panel 101 or on the organic flexible material film 103.
[0094] In another implementation of the present application, the bendable connecting member 103 is a bendable hard rubber fiber composite. In order to realize the bending performance of the hard rubber fiber composite in the region of the bendable connecting member 103, the hard rubber fiber composite in the region of the bendable connecting member 103 may be formed into a porous structure by a method such as laser drilling. In other words, the bendable hard rubber fiber composite is a hard rubber fiber composite having a porous structure. In order to better obtain the bending performance, the porous structure may be arranged to extend in the longitudinal direction (in other words, in the Y direction in FIG. 3). The bendable connecting member 103 may be a structure integrally formed with the first support member 101 and / or the second support member 102. In some embodiments, the entire substrate layer 100 includes an entire integrally formed hard rubber fiber composite panel. The bendable connecting member 103 is made of the same material as the first support member 101 and the second support member 102. The substrate layer 100 is continuous (in other words, continuous without a connection interface) with the first support member 101, the second support member 102, and the bendable connecting member 103, and includes an integrally woven fiber layer and a hard rubber layer. When the bendable connecting member 103 is a bendable hard rubber fiber composite material, the substrate layer 100 is an integrally formed structure, which helps to achieve high structural stability of the substrate layer as a whole.
[0095] In one embodiment of the present application, the specific manufacturing method of the substrate layer 100 formed in the order of the hard rubber fiber composite material, the bendable hard rubber fiber composite material, and the hard rubber fiber composite material is not limited. The substrate layer 100 can be manufactured, for example, as follows.
[0096] Step 401: Take a fiber layer, and impregnate both sides of the fiber layer with hard rubber material by using a solvent impregnation method or a hot melting method to form a hard rubber fiber single layer prepreg, and perform multi-layer stacking at multiple angles on the hard rubber fiber single layer prepreg, and then perform hot pressing to obtain a hard rubber fiber panel.
[0097] Step 402: Using a laser drilling method, form a porous structure in the predetermined bendable connecting member area of the hard rubber fiber panel to obtain the substrate layer 100, so that the bendable connecting member area has bendable performance.
[0098] In this implementation, the substrate layer 100 is a composite panel made of hard rubber fiber composite, bendable hard rubber fiber composite, and hard rubber fiber composite, in that order, and the substrate layer 100 is an integrally formed plate or sheet structure.
[0099] In one implementation of the present application, the thickness of the substrate layer 100 may be about 0.1 mm to 5 mm. Specifically, the foldable terminal may be designed according to the actual requirements of the foldable terminal. A larger thickness indicates a larger supporting strength. In some implementations, the thickness of the substrate layer 100 may be 0.15 mm to 0.2 mm. In some other implementations, the thickness of the substrate layer 100 may be 0.25 mm to 0.8 mm. In some other implementations, the thickness of the substrate layer 100 may be 1 mm to 2 mm, or 2 mm to 4 mm. The thin thickness of the substrate layer 100 helps to reduce the weight and also helps to reduce the total thickness of the foldable terminal, improving the user experience.
[0100] In one implementation of the present application, the thickness of the flexible display support structure 30 may be 0.1 mm to 5 mm. In some implementations, the thickness of the flexible display support structure 30 may be 0.15 mm to 0.22 mm. In some other implementations, the thickness of the flexible display support structure 30 may be 0.25 mm to 0.8 mm. In some other implementations, the thickness of the flexible display support structure 30 may be 1 mm to 2 mm, or 2.5 mm to 4 mm. The total thickness of the flexible display support structure 30 mainly depends on the sum of the thicknesses of the substrate layer 100 and the functional layer 200.
[0101] In this application, "multiple types" means two or more types. In this application, "to" indicates a range value including both end values. For example, when the thickness of the functional layer 200 is 5 μm to 500 μm, it indicates that the thickness of the functional layer 200 is between 5 μm and 500 μm, including the end values of 5 μm and 500 μm.
[0102] The embodiments of the present application are further described below by using several embodiments. EMBODIMENT 1
[0103] Please refer to FIG. 6B. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a conductive layer 200 disposed on both sides of the substrate layer 100. The conductive layer 200 covers the surfaces of the first support member and the second support member of the substrate layer 100, and does not cover the bendable connecting member. The substrate layer 100 uses an epoxy resin continuous carbon fiber-polyurethane (TPU) continuous carbon fiber-epoxy resin continuous carbon fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161 mm x 146 mm, the thickness of the substrate layer is 0.15 mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member, is 20 mm, and the width of the support members on both sides is 63 mm. Three panels, specifically, an epoxy resin continuous carbon fiber composite panel, a polyurethane continuous carbon fiber composite panel, and an epoxy resin continuous carbon fiber composite panel, are arranged in sequence and combined to form a substrate layer. The conductive layer 200 is a nickel layer.
[0104] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0105] (1) Select a carbon unidirectional fiber fabric with a thickness of 0.02 mm, and dip the surfaces on both sides into epoxy resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the prepregs according to stacking angles of 0° / 90° / 0° / 0° / 90° / 0° to form an epoxy resin carbon fiber laminated prepreg with a thickness of 0.15 mm.
[0106] (2) A 0.1 mm thick, 30 mm wide 45° woven carbon fiber fabric is dipped into TPU to form a 0.15 mm thick TPU continuous carbon fiber composite panel.
[0107] (3) Three materials, specifically, epoxy resin continuous carbon fiber laminate prepreg, polyurethane continuous carbon fiber composite panel, and epoxy resin continuous carbon fiber laminate prepreg are arranged in sequence, and the polyurethane continuous carbon fiber composite panel and the epoxy resin continuous carbon fiber laminate prepreg on both sides are cross-connected. The hot press temperature is increased to 150°C, the mold gap is 0.15mm, and compression is performed at 150°C for 30 minutes to obtain a 0.15mm thick epoxy resin continuous carbon fiber-polyurethane (TPU) continuous carbon fiber-epoxy resin continuous carbon fiber composite panel.
[0108] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0109] (5) Covering the bendable region of the substrate layer, and subjecting the support member panels on both sides of the bendable region to acid cleaning to remove surface oil stains.
[0110] (6) Both surfaces of the support member are catalyzed and a layer of a palladium-containing catalyst is deposited on the surface of the support member.
[0111] (7) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited on the surface of the support member, and the nickel layer is washed and dried to obtain a flexible display support structure.
[0112] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%. In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated. In addition, the carbon fiber in the bending region may be stretched and deformed during bending. This is because the bending region is carbon fiber woven at 45°. Therefore, deformation may occur during bending, and the displacement difference between the folded state and the unfolded state is absorbed. The flexible display support structure made in this embodiment has an electrical conduction function and can meet the electrical connection requirements. EMBODIMENT 2
[0113] Please refer to FIG. 6B. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a conductive layer 200 disposed on both sides of the substrate layer 100. The conductive layer 200 covers the surfaces of the first support member and the second support member of the substrate layer 100, and does not cover the bendable connecting member. The substrate layer 100 uses an epoxy resin continuous carbon fiber-TPU continuous carbon fiber-epoxy resin continuous carbon fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161mm×146mm, the thickness of the substrate layer is 0.15mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member is 20mm, and the width of the support members on both sides is 63mm. Three panels, specifically, an epoxy resin continuous carbon fiber composite panel, a TPU continuous carbon fiber composite panel, and an epoxy resin continuous carbon fiber composite panel, are arranged in sequence and bonded to form a substrate layer. Each conductive layer 200 includes a copper layer and a nickel layer disposed in sequence on the substrate layer 100 .
[0114] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0115] (1) Select a carbon unidirectional fiber fabric with a thickness of 0.02 mm, and dip the surfaces on both sides into epoxy resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the prepregs according to stacking angles of 0° / 90° / 0° / 0° / 90° / 0° to form an epoxy resin carbon fiber laminated prepreg with a thickness of 0.15 mm.
[0116] (2) A 0.1 mm thick, 30 mm wide woven 0° / 90° carbon fiber fabric is dipped into TPU to form a 0.15 mm thick TPU continuous carbon fiber composite panel.
[0117] (3) Three panels, specifically, epoxy resin continuous carbon fiber laminate prepreg, TPU continuous carbon fiber composite panel, and epoxy resin continuous carbon fiber laminate prepreg are arranged in sequence, and the polyurethane continuous carbon fiber composite panel and the epoxy resin continuous carbon fiber laminate prepreg on both sides are cross-connected. The hot press temperature is increased to 150°C, the mold gap is 0.15mm, and compression is performed at 150°C for 30 minutes to obtain a 0.15mm thick epoxy resin continuous carbon fiber-TPU continuous carbon fiber-epoxy resin continuous carbon fiber composite panel.
[0118] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0119] (5) Covering the bendable region of the substrate layer, and subjecting the support member panels on both sides of the bendable region to acid cleaning to remove surface oil stains.
[0120] (6) Both surfaces of the support member are catalyzed and a layer of a palladium-containing catalyst is deposited on the surface of the support member.
[0121] (7) The substrate layer is immersed in a first plating solution for chemical copper plating for 4 to 12 hours. A copper layer of 5 μm to 10 μm is deposited on the surface of the support member. After washing, the substrate layer is immersed in a second plating solution for chemical nickel plating for 4 to 12 hours. A nickel layer of 2 μm to 10 μm is deposited, and the nickel layer is washed and dried to obtain a flexible display support structure.
[0122] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%. In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test. Compared with embodiment 1, the bending region of the flexible display support structure in this embodiment has continuous carbon fibers in the 0° direction, so it is relatively difficult to absorb the displacement difference between when unfolded and when folded. Compared with embodiment 1, in this embodiment, a copper layer is added to the conductive layer, and the conductivity of copper is better than that of nickel. Therefore, the conductivity of the flexible display support structure in this embodiment is better than that in embodiment 1. EMBODIMENT 3
[0123] Please refer to FIG. 5. The flexible display support structure 30 of this embodiment includes a substrate layer 100 and an impact-resistant layer 200 disposed on one side of the substrate layer 100. The substrate layer 100 uses an epoxy resin continuous carbon fiber-polyimide (PI)-epoxy resin continuous carbon fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimensions of the flexible display support structure are 161 mm x 146 mm, the thickness of the substrate layer is 0.15 mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member, is 20 mm, and the width of the support members on both sides is 63 mm. Three panels, specifically, an epoxy resin continuous carbon fiber composite panel, a PI film, and an epoxy resin continuous carbon fiber composite panel, are arranged in sequence and combined to form a flexible display support structure. The impact-resistant layer 200 is a TPU thin film.
[0124] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0125] (1) Select a carbon unidirectional fiber fabric with a thickness of 0.03 mm, and dip the surfaces on both sides into epoxy resin to obtain a single-layer prepreg with a thickness of 0.05 mm. Then, stack the prepregs according to a stacking angle of 0° / 90° / 0° to form an epoxy resin carbon fiber laminated prepreg with a thickness of 0.15 mm.
[0126] (2) Prepare a PI film that is 25 mm wide and 0.15 mm thick.
[0127] (3) The epoxy resin carbon fiber laminated prepreg, the PI film, and the epoxy resin carbon fiber laminated prepreg are arranged side by side, and the PI film and the epoxy resin carbon fiber laminated prepreg are arranged with a shift of 2 mm to 5 mm.
[0128] (4) The temperature of the hot press is increased to 200°C, and the mold gap is set to 0.15 mm. Pressing is carried out at 200°C for 20 minutes to obtain a 0.15 mm thick epoxy resin continuous carbon fiber-PI film-epoxy resin continuous carbon fiber composite panel.
[0129] (5) An edge cut is performed on the composite panel obtained in step (4) to cut the composite panel into the required dimensions to obtain a substrate layer.
[0130] (6) A thin TPU film having a thickness of 50 μm to 150 μm is coated on one side of the substrate layer.
[0131] (7) The substrate layer and the TPU thin film are laminated and placed in a hot press. Pressing is performed at a temperature of 150°C for 30 minutes. After cooling, a flexible display support structure is obtained.
[0132] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%. In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test. In the flexible display support structure in this embodiment, the bending region is made of pure PI material and has no fiber, so the flexible display support structure has better bending performance than soft rubber fiber composite material, but there is no fiber network and the support strength is slightly weaker. The flexible display support structure made in this embodiment has impact resistance function and can effectively protect the flexible display from drop impact. EMBODIMENT 4
[0133] Please refer to FIG. 6A. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a thermally conductive layer 200 disposed on both sides of the substrate layer 100. The substrate layer 100 uses a phenolic resin continuous glass fiber-TPU continuous glass fiber-phenolic resin continuous glass fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161mm×146mm, the thickness of the substrate layer is 0.2mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member is 20mm, and the width of the supporting members on both sides is 63mm. Three panels, specifically, a phenolic resin continuous glass fiber composite panel, a TPU continuous glass fiber composite panel, and a phenolic resin continuous glass fiber composite panel, are arranged in sequence and combined to form a substrate layer. The material of the thermally conductive layer 200 is a thermally conductive graphite sheet.
[0134] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0135] (1) Select a 0.02 mm thick unidirectional glass fiber fabric, and dip both surfaces into phenolic resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the prepregs according to stacking angles of 0° / 90° / 0° / 90° / 90° / 0° / 90° / 0° to form a 0.2 mm thick phenolic resin glass fiber laminated prepreg.
[0136] (2) A 45° woven fiberglass fabric with a thickness of 0.15 mm and a width of 30 mm is dipped into TPU to form a 0.2 mm thick TPU continuous fiberglass composite panel.
[0137] (3) Three panels, specifically, a phenolic resin continuous glass fiber laminate prepreg, a polyurethane continuous glass fiber composite panel, and a phenolic resin continuous glass fiber laminate prepreg are arranged in sequence, and the polyurethane continuous glass fiber composite panel and the phenolic resin continuous glass fiber laminate prepreg are cross-connected on both sides. The hot press temperature is increased to 150°C, the mold gap is 0.2mm, and compression is performed at 150°C for 30 minutes to obtain a phenolic resin continuous glass fiber-TPU continuous glass fiber-phenolic resin continuous glass fiber composite panel with a thickness of 0.2mm.
[0138] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0139] (5) Two graphite sheets having a thickness of 30 μm to 100 μm are bonded to both sides of the substrate layer with a double-sided tape having a thickness of 10 μm to 20 μm to obtain a flexible display support structure.
[0140] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%. In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test. The flexible display support structure made in this embodiment has a heat conduction function, which makes it easy to transfer heat generated by the battery inside the terminal to the flexible display side. EMBODIMENT 5
[0141] Please refer to FIG. 8B. The flexible display support structure 30 in this embodiment includes a substrate layer 100, a conductive layer 201 and an impact-resistant layer 202 disposed on both sides of the substrate layer 100. The substrate layer 100 uses an epoxy resin continuous glass fiber-silicone rubber continuous glass fiber-epoxy resin continuous glass fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161 mm x 146 mm, the thickness of the substrate layer is 0.2 mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member, is 20 mm, and the width of the support members on both sides is 63 mm. Three panels, specifically, an epoxy resin continuous glass fiber composite panel, a silicone rubber continuous glass fiber composite panel, and an epoxy resin continuous glass fiber composite panel, are arranged in sequence and combined to form a substrate layer. The material of the conductive layer 201 includes nickel and gold. The material of the impact-resistant layer 202 includes a TPU thin film.
[0142] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0143] (1) Select a 0.02 mm thick unidirectional glass fiber fabric, and dip both surfaces into epoxy resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the prepregs according to stacking angles of 0° / 90° / 0° / 90° / 90° / 0° / 90° / 0° to form a 0.2 mm thick epoxy resin glass fiber laminated prepreg.
[0144] (2) A 45° woven fiberglass fabric having a thickness of 0.15 mm and a width of 30 mm is immersed in silicone rubber to form a 0.2 mm thick silicone rubber continuous fiberglass composite panel.
[0145] (3) Three panels, specifically, an epoxy resin continuous glass fiber laminated prepreg, a silicone rubber continuous glass fiber composite panel, and an epoxy resin continuous glass fiber laminated prepreg are arranged in sequence, and the silicone rubber continuous glass fiber composite panel and the epoxy resin continuous glass fiber laminated prepreg are cross-connected on both sides. The hot press temperature is raised to 150°C, the mold gap is set to 0.2mm, and compression is performed at 150°C for 30 minutes to obtain an epoxy resin continuous glass fiber-silicone rubber continuous glass fiber-epoxy resin continuous glass fiber composite panel with a thickness of 0.2mm.
[0146] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0147] (5) Covering the bendable region of the substrate layer, and subjecting the support member panels on both sides of the bendable region to acid cleaning to remove surface oil stains.
[0148] (6) Both surfaces of the support member are catalyzed and a layer of a palladium-containing catalyst is deposited on the surface of the support member.
[0149] (7) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited on the surface of the support member, and the nickel layer is washed and dried.
[0150] (8) Then, cover the outer nickel layer of the pre-gold plating area, and immerse in a plating solution to perform chemical gold plating for 2 to 4 hours, thereby depositing a gold layer with a thickness of 1 μm to 2 μm on the pre-gold plating area, and wash and dry the gold layer to form a conductive layer.
[0151] (9) Coat a thin TPU film with a thickness of 50 μm to 150 μm on the two conductive layers separately, and then place the conductive layers into a hot press. Pressing is carried out at a temperature of 150°C for 30 minutes. After cooling, a flexible display support structure is obtained.
[0152] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%.In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test.The flexible display support structure made in this embodiment has both electrical conduction and impact resistance functions. EMBODIMENT 6
[0153] Please refer to FIG. 8B. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a conductive layer 201 and a thermally conductive layer 202 disposed on both sides of the substrate layer 100. The substrate layer 100 uses a phenolic resin continuous glass fiber-silicone rubber continuous glass fiber-phenolic resin continuous glass fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161 mm x 146 mm, the thickness of the substrate layer is 0.2 mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member, is 20 mm, and the width of the support members on both sides is 63 mm. Three panels, specifically, a phenolic resin continuous glass fiber composite panel, a silicone rubber continuous glass fiber composite panel, and a phenolic resin continuous glass fiber composite panel, are arranged in sequence and combined to form a substrate layer. The material of the conductive layer 201 includes nickel and gold. The material of the thermally conductive layer 202 is a thermally conductive silicone sheet.
[0154] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0155] (1) Select a 0.02 mm thick unidirectional glass fiber fabric, and dip both surfaces into phenolic resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the prepregs according to stacking angles of 0° / -45° / +45° / 0° / 0° / +45° / -45° / 0° to form a 0.2 mm thick phenolic resin glass fiber laminated prepreg.
[0156] (2) A 45° woven fiberglass fabric with a thickness of 0.15 mm and a width of 30 mm is dipped into silicone rubber to form a 0.2 mm thick TPU continuous fiberglass composite panel.
[0157] (3) Three panels, specifically, a phenolic resin continuous glass fiber laminated prepreg, a silicone rubber continuous glass fiber composite panel, and a phenolic resin continuous glass fiber laminated prepreg are arranged in sequence, and the silicone rubber continuous glass fiber composite panel and the phenolic resin continuous glass fiber laminated prepreg are cross-connected on both sides. The hot press temperature is raised to 150°C, the mold gap is set to 0.2mm, and compression is performed at 150°C for 30 minutes to obtain a phenolic resin continuous glass fiber-silicone rubber continuous glass fiber-phenolic resin continuous glass fiber composite panel with a thickness of 0.2mm.
[0158] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0159] (5) Covering the bendable region of the substrate layer, and subjecting the support member panels on both sides of the bendable region to acid cleaning to remove surface oil stains.
[0160] (6) Both surfaces of the support member are catalyzed and a layer of a palladium-containing catalyst is deposited on the surface of the support member.
[0161] (7) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited on the surface of the support member, and the nickel layer is washed and dried.
[0162] (8) Then, cover the outer nickel layer of the pre-gold plating area, and immerse in a plating solution to perform chemical gold plating for 2 to 4 hours, thereby depositing a gold layer with a thickness of 1 μm to 2 μm on the pre-gold plating area, and wash and dry the gold layer to form a conductive layer.
[0163] (9) Coat the thermally conductive silicone sheets with a thickness of 30 μm to 100 μm on the two conductive layers separately, and then place the conductive layers into a hot press. Pressing is carried out at a temperature of 100° C. for 30 minutes. After cooling, a flexible display support structure is obtained.
[0164] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%.In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test.The flexible display support structure made in this embodiment has both electrical conduction and thermal conduction functions. EMBODIMENT 7
[0165] Please refer to FIG. 8A. The flexible display support structure 30 in this embodiment includes a substrate layer 100, a thermally conductive layer 201 and an impact-resistant layer 202 arranged on both sides of the substrate layer 100. The substrate layer 100 uses an epoxy resin continuous aramid fiber-polyurethane (TPU) continuous aramid fiber-epoxy resin continuous aramid fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161 mm×146 mm, the thickness of the substrate layer is 0.15 mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member, is 20 mm, and the width of the supporting members on both sides is 63 mm. Three panels, specifically, an epoxy resin continuous aramid fiber composite panel, a polyurethane continuous aramid fiber composite panel, and an epoxy resin continuous aramid fiber composite panel, are arranged in sequence and combined to form a substrate layer. The material of the thermally conductive layer 201 is thermally conductive silicone. The material of the impact resistant layer 202 is a thin TPU film.
[0166] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0167] (1) Select an aramid unidirectional fiber fabric with a thickness of 0.02 mm, and dip the surfaces on both sides into epoxy resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the prepregs according to stacking angles of 0° / +45° / -45° / -45° / +45° / 0° to form an epoxy resin aramid fiber laminated prepreg with a thickness of 0.15 mm.
[0168] (2) A 45° woven aramid fiber fabric with a thickness of 0.1 mm and a width of 30 mm is immersed in TPU to form a TPU continuous aramid fiber composite panel with a thickness of 0.15 mm.
[0169] (3) Three panels, specifically, an epoxy resin continuous aramid fiber laminated prepreg, a polyurethane continuous aramid fiber composite panel, and an epoxy resin continuous aramid fiber laminated prepreg are arranged in sequence, and the polyurethane continuous aramid fiber composite panel and the epoxy resin continuous aramid fiber laminated prepregs on both sides are cross-connected. The hot press temperature is increased to 150°C, the mold gap is 0.15mm, and compression is performed at 150°C for 30 minutes to obtain an epoxy resin continuous aramid fiber-polyurethane (TPU) continuous aramid fiber-epoxy resin continuous aramid fiber composite panel with a thickness of 0.15mm.
[0170] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0171] (5) Coat the upper and lower surfaces of the substrate layer with a thermally conductive silicone sheet having a thickness of 30 μm to 100 μm separately, and then place the substrate layer in a hot press. Press the substrate layer at a temperature of 100° C. for 30 minutes to form a thermally conductive layer.
[0172] (6) Coat a thin TPU film with a thickness of 50 μm to 150 μm on the two thermally conductive layers separately, and then place the thermally conductive layers into a hot press. Pressing is carried out at a temperature of 150°C for 30 minutes. After cooling, a flexible display support structure is obtained.
[0173] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 75%.In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test.The flexible display support structure made in this embodiment has both heat conduction and impact resistance functions. EMBODIMENT 8
[0174] Please refer to FIG. 11A. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a functional layer 200 disposed on both sides of the substrate layer 100. The functional layer 200 on one side includes a conductive layer 201 and an impact-resistant layer 202, and the functional layer 200 on the other side includes a conductive layer. The substrate layer 100 uses the flexible display support structure of this embodiment as an epoxy resin continuous carbon fiber-stainless steel-epoxy resin continuous carbon fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161mm×146mm, the thickness of the flexible display support structure is 0.15mm, the flexible bendable area, i.e. the width of the bendable connecting member is 20mm, and the width of the support members on both sides is 63mm. Three panels, specifically an epoxy resin continuous carbon fiber composite panel, a stainless steel sheet, and an epoxy resin continuous carbon fiber composite panel, are arranged in sequence and assembled, and both sides of the stainless steel sheet are clamped to the epoxy resin continuous carbon fiber composite panel structures on both sides respectively to form a substrate layer. The conductive layer is a nickel layer, and the material of the impact-resistant layer is a TPU thin film.
[0175] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0176] (1) Select a carbon unidirectional fiber fabric with a thickness of 0.02 mm, and dip the surfaces on both sides into epoxy resin to obtain a single-layer prepreg with a thickness of 0.025 mm. Then, stack the single-layer prepreg according to stacking angles of 0° / 90° / 0° / 0° / 90° / 0° to form an epoxy resin carbon fiber laminated prepreg with a thickness of 0.15 mm.
[0177] (2) Prepare a porous stainless steel sheet with a width of 30 mm and a thickness of 0.15 mm. The middle porous area (used as a flexible bendable area) is 20 mm. Lower both the left and right sides to form a step structure with a thickness of 0.05 mm and a width of 5 mm to be used as the clamping part (a hole can be drilled in the clamping part).
[0178] (3) The epoxy resin carbon fiber laminated prepreg, the porous stainless steel sheet, and the epoxy resin carbon fiber laminated prepreg are arranged in sequence. Each of the two sides of the epoxy resin carbon fiber laminated prepreg and the porous stainless steel sheet has a bonding area of 5 mm wide. The temperature of the hot press is increased to 150°C, the mold gap is 0.15 mm, and compression is performed at 150°C for 30 minutes to obtain an epoxy resin continuous carbon fiber-stainless steel-epoxy resin continuous carbon fiber composite panel with a thickness of 0.15 mm.
[0179] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0180] (5) The substrate layer is subjected to acid cleaning to remove surface oil stains.
[0181] (6) Catalysis is performed on both surfaces of the substrate layer to deposit a catalytic layer comprising palladium on the surfaces of the substrate layer.
[0182] (7) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited, and the nickel layer is washed and dried to form a conductive layer.
[0183] (8) A thin TPU film with a thickness of 50 μm to 150 μm is coated on one side of the conductive layer, and the conductive layer is placed in a hot press. Pressing is performed at a temperature of 150° C. for 30 minutes. After cooling, a flexible display support structure is obtained.
[0184] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 62%.In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test.The flexible display support structure made in this embodiment has both electrical conduction and impact resistance functions. EMBODIMENT 9
[0185] Please refer to FIG. 10. The flexible display support structure 30 of this embodiment includes a substrate layer 100, a conductive layer 201, a heat conductive layer 202, and an impact-resistant layer 203 arranged on both sides of the substrate layer 100. The substrate layer 100 uses an epoxy resin continuous glass fiber-titanium alloy-epoxy resin continuous glass fiber composite panel. A certain model of a folding mobile phone is used as an example. In the design solution of the flexible display support structure in this embodiment, the outer dimension of the flexible display support structure is 161mm×146mm, the thickness of the substrate layer is 0.15mm, the width of the flexible bendable area, i.e., the width of the bendable connecting member is 20mm, and the width of the support members on both sides is 63mm. Three panels, specifically, an epoxy resin continuous carbon fiber composite panel, a titanium alloy, and an epoxy resin continuous carbon fiber composite panel, are arranged in sequence and combined, and both sides of the titanium alloy sheet are clamped to the epoxy resin continuous carbon fiber composite panel structure on both sides respectively to form a substrate layer. The conductive layer is a nickel layer, the thermally conductive layer includes a thermally conductive double-sided tape, and the material of the impact-resistant layer is a TPEE thin film.
[0186] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0187] (1) Select a 0.02 mm thick carbon unidirectional fiber fabric, and dip the surfaces on both sides into epoxy resin to obtain a 0.025 mm thick prepreg. Then, stack the prepregs according to stacking angles of 0° / 90° / 0° / 0° / 90° / 0° to form a 0.15 mm thick epoxy resin carbon fiber laminated prepreg.
[0188] (2) Prepare a porous titanium alloy sheet with a width of 30 mm and a thickness of 0.15 mm. The middle porous area (used as a flexible bendable area) is 20 mm. Lower both the left and right sides to form a step structure with a thickness of 0.05 mm and a width of 5 mm to be used as the clamping part (a hole can be drilled in the clamping part).
[0189] (3) The epoxy resin carbon fiber laminated prepreg, the porous titanium alloy sheet, and the epoxy resin carbon fiber laminated prepreg are arranged in sequence. Each of the two sides of the epoxy resin carbon fiber laminated prepreg and the porous titanium alloy sheet has a bonding area of 5 mm wide. The temperature of the hot press is increased to 150°C, the mold gap is 0.15 mm, and the compression is carried out at 150°C for 30 minutes to obtain a 0.15 mm thick epoxy resin continuous carbon fiber-titanium alloy-epoxy resin continuous carbon fiber composite panel.
[0190] (4) The composite panel obtained in step (3) is edge-cut to cut the composite panel to the required dimensions to obtain the substrate layer.
[0191] (5) The substrate layer is subjected to acid cleaning to remove surface oil stains.
[0192] (6) Catalysis is performed on both surfaces of the substrate layer to deposit a catalytic layer comprising palladium on the surfaces of the substrate layer.
[0193] (7) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited, and the nickel layer is washed and dried to form a conductive layer.
[0194] (8) A 30 μm-100 μm thick double-sided conductive tape is bonded to both sides of the conductive layer, and then a 50 μm-150 μm thick layer of TPEE thin film is bonded to the opposite sides of the tape to obtain a flexible display support structure.
[0195] Compared with a flexible display support structure made entirely of stainless steel and having the same size, the weight of the flexible display support structure made in this embodiment is reduced by more than 70%.In addition, the flexible display support structure made in this embodiment was bent 200,000 times for testing, but no cracks were generated, and it could still maintain good flatness after the test.The flexible display support structure made in this embodiment has both electrical conduction function, heat conduction function, and impact resistance function. EMBODIMENT 10
[0196] Please refer to FIG. 11B. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a functional layer 200 disposed on both sides of the substrate layer 100. The functional layer 200 on one side includes a conductive layer 201 and an impact-resistant layer 202, and the functional layer 200 on the other side includes a thermally conductive layer. The substrate layer 100 is the same as that in the first embodiment, and the size design is also the same as that in the first embodiment. The conductive layer is a nickel layer, and the material of the impact-resistant layer is a TPU thin film. The material of the thermally conductive layer is a thermally conductive graphite sheet.
[0197] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0198] (1) Prepare a substrate layer by using the same method as in embodiment 1.
[0199] (2) Covering the bendable region of the substrate layer, and subjecting the support member panels on both sides of the bendable region to acid cleaning to remove surface oil stains.
[0200] (3) Both surfaces of the support member are catalyzed and a layer of a catalyst containing palladium is deposited on the surface of the support member.
[0201] (4) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited on one surface of the substrate layer, and the nickel layer is washed and dried to form a conductive layer.
[0202] (5) A thin TPU film having a thickness of 50 μm to 150 μm is coated on the conductive layer, and the conductive layer is placed in a hot press. Pressing is performed at a temperature of 150° C. for 30 minutes to form an impact-resistant layer.
[0203] (6) A thermally conductive graphite sheet having a thickness of 30 μm to 100 μm is bonded to the other surface of the substrate layer with an adhesive to obtain a flexible display support structure.
[0204] The flexible display support structure fabricated in this embodiment has electrical conductive, thermal conductive and impact resistant functions. EMBODIMENT 11
[0205] Please refer to FIG. 8B. The flexible display support structure 30 in this embodiment includes a substrate layer 100 and a functional layer 200 disposed on both sides of the substrate layer 100. The functional layer 200 on one side includes a conductive layer 201 and an impact-resistant layer 202, and the functional layer 200 on the other side includes a conductive layer 201 and a heat-conducting layer 202. The substrate layer 100 is the same as that in the first embodiment, and the size design is also the same as that in the first embodiment. The conductive layer is a nickel layer, and the material of the impact-resistant layer is a TPEE thin film. The material of the heat-conducting layer is a heat-conducting double-sided tape.
[0206] The fabrication process of the flexible display support structure in this embodiment is as follows:
[0207] (1) Prepare a substrate layer by using the same method as in embodiment 1.
[0208] (2) Covering the bendable region of the substrate layer, and subjecting the support member panels on both sides of the bendable region to acid cleaning to remove surface oil stains.
[0209] (3) Both surfaces of the support member are catalyzed and a layer of a catalyst containing palladium is deposited on the surface of the support member.
[0210] (4) The substrate layer is immersed in a plating solution to perform chemical nickel plating for 4 to 12 hours. A nickel layer of 5 μm to 10 μm is deposited on both sides of the substrate layer, and the nickel layer is washed and dried to form a conductive layer.
[0211] (5) A TPEE thin film having a thickness of 50 μm to 150 μm is coated on the conductive layer on one side of the substrate layer, and the conductive layer is placed in a hot press. Pressing is performed at a temperature of 220° C. for 30 minutes to form a thermally conductive layer.
[0212] (6) A thermally conductive double-sided tape having a thickness of 30 μm to 100 μm is bonded to the conductive layer on the other side of the substrate layer by adhesion to obtain a flexible display support structure.
[0213] The flexible display support structure fabricated in this embodiment has electrical conductive, thermal conductive and impact resistant functions.
[0214] According to the flexible display support structure in the embodiment of the present application, a composite material of organic material and fiber is used as the body material. Compared with the existing flexible display support structure made entirely of metal materials such as stainless steel, the weight of the flexible display support structure is greatly reduced, and good rigid support can be provided for the flexible display. In addition, the bending region may be made of metal materials, or made of organic flexible materials or soft rubber fiber composite materials, thereby further reducing the total weight of the support structure while ensuring bending reliability, helping to reduce the weight of the foldable terminal product, enhancing product competitiveness, and improving the user experience. In addition, the flexible display support structure in the embodiment of the present application has a low manufacturing cost. In addition, the flexible display support structure in the embodiment of the present application further has functions such as electrical conduction, heat conduction, and impact resistance by disposing functional layers, so as to meet the functional requirements of the support structure and improve the performance of the terminal product.
Claims
1. A composite structure including a substrate layer and a functional layer disposed on at least one surface of the substrate layer, the substrate layer including a first support member and a second support member disposed side by side, and a flexible connecting member disposed between the first support member and the second support member and connected to the first support member and the second support member, the material of the first support member and the second support member including a hard resin fiber composite material, the functional layer including at least a conductive layer, The composite structure, wherein the conductive layer comprises a conductive metal, and the conductive layer has a single layer structure or a multi-layer structure.
2. The composite structure described in claim 1, wherein the functional layer further includes one or more of a thermally conductive layer and an impact resistant layer.
3. The composite structure of claim 1 , wherein the conductive metal comprises one or more of copper, silver, gold, nickel, and tin.
4. 3. The composite structure of claim 2, wherein the thermally conductive layer comprises one or more of a thermally conductive silicone sheet, a thermally conductive silicone grease, a thermally conductive double-sided tape, a thermally conductive graphite sheet, a graphene sheet, and a graphene oxide sheet.
5. 3. The composite structure of claim 2, wherein the impact resistant layer comprises one or more of silicone rubber, thermoplastic elastomer, polyurethane acrylate, polyvinyl chloride soft rubber, and polyurethane.
6. 10. The composite structure of claim 1, wherein the hard resin fiber composite material comprises at least one fiber layer and a hard resin material cured on the fiber layer.
7. The composite structure of claim 6 , wherein the fiber layer comprises a unidirectional fiber fabric and / or a woven fiber fabric.
8. 7. The composite structure of claim 6, wherein the hard resin material comprises one or more of epoxy resins, phenolic resins, amino resins, unsaturated polyesters, silyl ether resins, polyolefins, polyamides, polyoxymethylene, polycarbonates, polyphenylene ethers, and polysulfones.
9. 7. The composite structure of claim 6, wherein the fibrous layer comprises one or more of glass fibers, carbon fibers, aramid fibers, aluminum oxide fibers, ultra-high molecular weight polyethylene fibers, and poly(p-phenylene benzobisoxazole) fibers.
10. 2. The composite structure according to claim 1, wherein the mass content of fibres in the hard resin fibre composite material is between 10% and 80%.
11. 7. A composite structure according to claim 6, wherein the hard resin fibre composite material comprises a plurality of fibre plies, the plurality of fibre plies and the hard resin material forming a composite laminate of alternating fibres and hard resin, or the plurality of fibre plies are laminated to form a fibre stack and the hard resin material is cured on the fibre stack.
12. The composite structure of claim 1 , wherein the material of the bendable connecting member comprises one or more of an organic flexible material, a soft rubber fiber composite material, a bendable hard resin fiber composite material, and a bendable metal material.
13. 13. The composite structure of claim 12, wherein the organic flexible material comprises one or more of fluororubber, silicone rubber, thermoplastic elastomer, polyvinyl chloride, polyimide, polyethylene terephthalate, cyclic olefin polymer, liquid crystal polymer, and polydimethylsiloxane.
14. 13. The composite structure of claim 12, wherein the soft rubber fiber composite material comprises at least one fiber layer and a soft rubber material cured on the fiber layer, the soft rubber material comprising one or more of a fluororubber, a silicone rubber, and a thermoplastic elastomer.
15. The composite structure according to claim 12, wherein the mass content of the fibers in the soft rubber fiber composite material is 10% to 80%.
16. 15. The composite structure of claim 14, wherein the soft rubber fiber composite material comprises a plurality of fiber layers, the plurality of fiber layers and the soft rubber material forming a composite laminate of alternating fiber and soft rubber, or the plurality of fiber layers are laminated to form a fiber stack, and the soft rubber material is cured on the fiber stack.
17. The composite structure of claim 12 , wherein the bendable metallic material comprises one or more of a stainless steel, a titanium alloy, and an aluminum alloy.
18. 13. The composite structure of claim 12, wherein when the bendable connecting member is made of the soft rubber fiber composite material, the composite structure includes an integrally woven fiber layer that is continuous through the first support member, the second support member, and the bendable connecting member.
19. 13. The composite structure of claim 12, wherein the bendable rigid resin fiber composite material has a porous structure.
20. 13. The composite structure of claim 12, wherein when the bendable connecting member is made of the bendable hard resin fiber composite material, the bendable connecting member and the first support member and / or the second support member have an integrally formed structure.
21. The composite structure of claim 1, wherein the thickness of the composite structure is between 0.1 mm and 5 mm.
22. A terminal comprising a composite structure according to any one of claims 1 to 21.
23. 22. A flexible display assembly, the flexible display assembly comprising a flexible display and a flexible display support structure used to support the flexible display, the flexible display support structure being made by using a composite structure according to any one of claims 1 to 21.
24. 24. A foldable terminal comprising the flexible display assembly of claim 23.
25. 25. The foldable terminal of claim 24, wherein the flexible display includes a bent region and non-bent regions on both sides of the bent region, the flexible display support structure is disposed on an outer surface of the flexible display, the first support member and the second support member respectively correspond to the non-bent regions on both sides of the flexible display, and the bendable connecting member corresponds to the bent regions of the flexible display.
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