Electronic device
By setting a housing part and a flexible conductive part on the frame, the problem of breaking through the frame during the welding of the gold-plated gasket is solved, and the manufacturability and battery life of the electronic equipment are improved.
Patent Information
- Application Number
- CN202422714899.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-07
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-11-07
AI Technical Summary
After thinning the thickness of the mobile phone frame, the gold-plated gasket is prone to breaking through the frame during welding, resulting in poor manufacturability of electronic equipment.
A receiving part is provided on the frame, and a part of the conductive gasket is located in the receiving part and welded to the inner side wall. There is an angle between the welding direction and the thickness direction of the frame, and a flexible conductive member is combined to achieve grounding of the screen assembly.
It reduces the risk of breaking through the frame during welding, improves the manufacturability of electronic equipment, increases the installation space of the battery, and thus improves battery life.
Smart Images

Figure CN223297616U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of electronic equipment, and in particular to an electronic device. Background Art
[0002] A single piece of copper foil is typically placed beneath a mobile phone screen to support the screen. This foil absorbs antenna radiation, thus affecting the phone's antenna performance. To minimize this effect, conductive foam and a gold-plated gasket are typically placed between the screen and the phone's frame. The gold-plated gasket is soldered to the frame, which is typically grounded. Therefore, the screen is grounded through the conductive foam, gold-plated gasket, and frame.
[0003] In related technologies, mobile phones mainly increase their battery life by increasing battery capacity. Increasing battery capacity will increase battery thickness. In order to maintain the thickness of the mobile phone unchanged, the thickness of the mobile phone frame will be reduced. However, when the thickness of the frame is too thin, the gold-plated gasket can easily penetrate the frame during the welding process, resulting in poor manufacturability of the electronic device. Utility Model Content
[0004] The present application aims to provide an electronic device that at least solves the problem that after the thickness of the mobile phone frame is reduced, the gold-plated gasket will penetrate the frame during the welding process.
[0005] In order to solve the above technical problems, this application is implemented as follows:
[0006] An embodiment of the present application provides an electronic device, including:
[0007] A frame body, wherein a receiving portion is provided on the frame body;
[0008] a conductive gasket, at least a portion of which is located in the accommodating portion, and the conductive gasket is welded to an inner sidewall of the accommodating portion;
[0009] A flexible conductive member is attached to the conductive gasket, and at least a portion of the flexible conductive member extends out of the frame;
[0010] The screen assembly is located on a side of the flexible conductive member that is away from the conductive pad. The screen assembly is fitted with the flexible conductive member so that the screen assembly is grounded.
[0011] In an embodiment of the present application, a accommodating portion is provided on the frame, and a portion of the conductive gasket can be accommodated in the accommodating portion. The accommodating portion has an inner side wall, and a portion of the conductive gasket located in the accommodating portion is welded to the inner side wall. The inner side wall can extend along the thickness direction of the frame, or there is a certain angle between the inner side wall and the thickness direction of the frame.
[0012] In the related art, if the conductive gasket is attached to the top surface of the frame, when the conductive gasket is welded, the welding direction of the conductive gasket is perpendicular to the thickness direction of the frame. In order to avoid the conductive gasket from breaking through the frame during the welding process, the frame needs to have a larger thickness.
[0013] When the conductive gasket is attached to the inner wall, the welding direction of the conductive gasket is at an angle to the thickness direction of the frame, rather than being welded directly along the thickness direction of the frame, which makes it less likely to cause breakdown of the frame.
[0014] By embedding at least a portion of the conductive gasket into the accommodating portion and welding the conductive gasket to the inner side wall of the accommodating portion, the risk of the frame being penetrated during welding can be reduced, thereby improving the manufacturability of the electronic device. In the case where the frame is not easily penetrated, the thickness of the frame can be reduced, thereby providing more installation space for the battery in the electronic device. That is, when the thickness of the frame is reduced, the thickness of the battery can be appropriately increased, thereby increasing the capacity of the battery. While keeping the thickness of the electronic device basically unchanged, the larger capacity battery enables the electronic device to have a longer battery life, thereby improving the battery life of the electronic device.
[0015] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become obvious from the description below, or will be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:
[0017] Figure 1 is one of the exploded views of an electronic device according to an embodiment of the present application;
[0018] Figure 2 is a schematic structural diagram of a conductive gasket according to an embodiment of the present application;
[0019] Figure 3 is a schematic diagram of a partial structure of an electronic device according to an embodiment of the present application;
[0020] Figure 4 This is the second exploded view of the electronic device according to an embodiment of the present application.
[0021] Reference numerals:
[0022] 100 electronic device, 110 frame, 111 accommodating portion, 112 inner wall, 113 first opening, 114 accommodating groove, 115 second opening, 116 mounting hole, 120 battery, 130 conductive gasket, 131 supporting portion, 1311 first portion, 1312 second portion, 132 welding portion, 1321 first side surface, 1322 welding point, 1323 first welding portion, 1324 second welding portion, 140 flexible conductive part, 150 screen assembly, 151 screen, 152 copper foil. DETAILED DESCRIPTION
[0023] The embodiments of the present application will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals throughout represent the same or similar elements or elements with the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application and are not to be construed as limiting the present application. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0024] The terms "first" and "second" in the specification and claims of this application may explicitly or implicitly refer to one or more of the features. Throughout the description of this application, unless otherwise specified, "plurality" means two or more. Furthermore, "and / or" in the specification and claims refers to at least one of the connected entities, and the character " / " generally indicates an "or" relationship between the connected entities.
[0025] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on the specific circumstances.
[0026] The following combination Figures 1-4 An electronic device according to an embodiment of the present application is described.
[0027] Combine Figure 1 、 Figure 2 and Figure 3As shown, according to some embodiments of the present application, the electronic device 100 includes: a frame 110, a battery 120, a conductive gasket 130, a flexible conductive member 140, and a screen assembly 150. The battery 120 is connected to the frame 110. The frame 110 is provided with a receiving portion 111. At least a portion of the conductive gasket 130 is located within the receiving portion 111. The conductive gasket 130 is welded to the inner sidewall 112 of the receiving portion 111. The flexible conductive member 140 is attached to the conductive gasket 130, and at least a portion of the flexible conductive member 140 extends out of the frame 110 in a direction away from the battery 120. The screen assembly 150 is located on a side of the flexible conductive member 140 that is away from the conductive gasket 130. The screen assembly 150 is attached to the flexible conductive member 140 so that the screen assembly 150 is grounded.
[0028] The frame 110 may be the middle frame of the electronic device 100. The battery 120 is fixed to one side of the frame 110, and the screen assembly 150 is located on the other side of the frame 110. The battery 120 and the screen assembly 150 do not interfere with each other. The frame 110 in the electronic device 100 is usually grounded. A conductive gasket 130 is welded to the frame 110, and a flexible conductive member 140 is attached to the conductive gasket 130, so that both the flexible conductive member 140 and the conductive gasket 130 are grounded through the frame 110. The screen assembly 150 is attached to the flexible conductive member 140, so that the screen assembly 150 is grounded through the flexible conductive member 140, the conductive gasket 130, and the frame 110.
[0029] Screen assembly 150 typically includes a screen 151 and a metal support plate below screen 151. The metal support plate may be copper foil 152. This metal support plate can affect the antenna performance of electronic device 100. Grounding the metal support plate prevents this from affecting antenna performance. A flexible conductive member 140 is provided between conductive gasket 130 and screen 151. Once screen assembly 150 is installed, the softness of flexible conductive member 140 prevents damage to screen assembly 150.
[0030] The frame 110 is provided with a receiving portion 111, a portion of the conductive gasket 130 can be received in the receiving portion 111, the receiving portion 111 has an inner sidewall 112, a portion of the conductive gasket 130 located in the receiving portion 111 is welded to the inner sidewall 112, and the inner sidewall 112 can be along the thickness direction of the frame 110 ( Figure 1 The arrow at W in the middle points to the direction of the inner wall 112 extending therefrom, or there is a certain angle between the inner wall 112 and the thickness direction of the frame body 110.
[0031] In the related art, if the conductive gasket is attached to the top surface of the frame, when the conductive gasket is welded, the welding direction of the conductive gasket is perpendicular to the thickness direction of the frame. In order to avoid the conductive gasket from breaking through the frame during the welding process, the frame needs to have a larger thickness.
[0032] When the conductive gasket 130 is attached to the inner wall 112 , the welding direction of the conductive gasket 130 is at an angle to the thickness direction of the frame 110 , rather than being welded directly along the thickness direction of the frame 110 , which makes it less likely to cause breakdown of the frame 110 .
[0033] By embedding at least a portion of the conductive gasket 130 into the accommodating portion 111 and welding the conductive gasket 130 to the inner side wall 112 of the accommodating portion 111, the risk of breaking through the frame 110 during welding can be reduced, thereby improving the manufacturability of the electronic device 100. In the case where the frame 110 is not easily broken through, the thickness of the frame 110 can be reduced to provide more installation space for the battery 120. That is, when the thickness of the frame 110 is reduced, the thickness of the battery 120 can be appropriately increased, thereby increasing the capacity of the battery 120. While keeping the thickness of the electronic device 100 basically unchanged, the larger capacity battery 120 enables the electronic device 100 to have a longer battery life, thereby improving the battery life of the electronic device 100.
[0034] In one possible application, the screen assembly 150 in this embodiment includes a copper foil 152 and a screen 151, wherein the copper foil 152 is disposed below the screen 151. The conductive pad 130 may be a gold-plated pad to ensure grounding stability. The flexible conductive member 140 may be a conductive foam.
[0035] Combine Figure 1 、 Figure 2 and Figure 3 As shown, in some embodiments, optionally, the conductive gasket 130 includes a supporting portion 131 and a welding portion 132, the supporting portion 131 is connected to the welding portion 132, the supporting portion 131 is in contact with the flexible conductive member 140, an angle is provided between the supporting portion 131 and the welding portion 132, and the welding portion 132 is welded to the inner side wall 112 of the accommodating portion 111.
[0036] The flexible conductive member 140 is arranged between the screen assembly 150 and the support part 131, the support part 131 is connected to the welding part 132, and the welding part 132 is welded on the frame 110, so that the screen assembly 150 is grounded through the flexible conductive member 140, the support part 131, the welding part 132 and the frame 110.
[0037] The welding portion 132 is bent relative to the supporting portion 131 , so that an angle exists between the welding portion 132 and the supporting portion 131 . After the welding portion 132 is bent, the welding portion 132 can be attached to the inner wall 112 , thereby being welded to the inner wall 112 .
[0038] After a portion of the conductive gasket 130 is bent, the position to be welded (welding portion 132) in the conductive gasket 130 is no longer parallel to the upper surface of the frame 110 (herein, Figure 1 The upper surface of the middle viewing angle) can be formed so that the welding direction of the welding portion 132 is at an angle to the thickness direction of the frame 110, rather than welding directly along the thickness direction of the frame 110, which is less likely to cause breakdown of the frame 110, thereby ensuring the manufacturability of the electronic device 100.
[0039] Combine Figure 1 、 Figure 2 and Figure 3 As shown, in some embodiments, optionally, the first side surface 1321 of the welding portion 132 is attached to the inner side wall 112 of the accommodating portion 111 , and the first side surface 1321 extends along the thickness direction of the frame body 110 .
[0040] In this embodiment, the first side surface 1321 extends along the thickness direction of the frame body 110, so the welding portion 132 is attached to the inner side wall 112 along the thickness direction of the frame body 110. In this case, the welding direction of the welding portion 132 is perpendicular to the thickness direction of the frame body 110. The length and width of the frame body 110 are usually large. Therefore, during the welding process, the frame body 110 will not be penetrated along the length and width directions of the frame body 110, thereby ensuring the manufacturability of the electronic device 100.
[0041] In other embodiments, an angle is formed between the inner sidewall 112 and the thickness direction of the frame body 110 . The welding portion 132 is inclined at a certain angle relative to the thickness direction of the frame body 110 and is attached to the inner sidewall 112 .
[0042] When the welding portion 132 is tilted and attached to the inner wall 112 , the welding direction of the welding portion 132 is at an angle to the thickness direction of the frame 110 , rather than being welded directly along the thickness direction of the frame 110 . This also makes it less likely to cause breakdown of the frame 110 .
[0043] like Figure 1 As shown, in some embodiments, optionally, a welding point 1322 is provided on the welding portion 132, and along the thickness direction of the frame 110, the first side of the frame 110 and the second side of the frame 110 are both spaced apart from the welding point 1322. The battery 120 is located on the first side of the frame 110, and the screen assembly 150 is located on the second side of the frame 110.
[0044] During the welding process, if a portion of the welding point 1322 extends out of the outer surface of the frame 110 , the welding point 1322 will affect the flatness of the outer surface of the frame 110 , thereby causing the outer surface of the frame 110 to interfere with other structures.
[0045] In this embodiment, the battery 120 is located on the first side of the frame 110, and the welding point 1322 is spaced apart from the first side of the frame 110. That is, the welding point 1322 does not extend out of the first side of the frame 110. The welding point 1322 is unlikely to interfere with the battery 120, which can ensure that the battery 120 and the frame 110 are stably attached and avoid damage to the battery 120.
[0046] The screen assembly 150 is located on the second side of the frame 110, and the welding point 1322 is spaced apart from the second side of the frame 110, that is, the welding point 1322 does not extend out of the second side of the frame 110, and the welding point 1322 is not easy to interfere with the screen assembly 150, thereby avoiding damage to the screen assembly 150.
[0047] In order to achieve the above purpose, the welding point 1322 can be located close to the middle of the inner wall 112 so that a safe distance is left above and below the welding point 1322.
[0048] Combine Figure 1 、 Figure 2 and Figure 3 As shown, in some embodiments, optionally, the support portion 131 is at least partially accommodated in the accommodating portion 111 , and the flexible conductive member 140 is located between the screen assembly 150 and the support portion 131 .
[0049] The support portion 131 can be entirely housed within the accommodating portion 111, or a portion thereof can be housed within the accommodating portion 111. In this embodiment, the support portion 131 includes a first portion 1311 and a second portion 1312, with the second portion 1312 connected to the welding portion 132. The first portion 1311 of the support portion 131 is housed within the accommodating portion 111, and thus does not extend beyond the outer surface of the frame 110. The flexible conductive member 140 is located between the first portion 1311 and the screen assembly 150, separating the screen assembly 150 from the frame 110 via the flexible conductive member 140.
[0050] When the first portion 1311 does not extend out of the outer surface of the frame 110 , the flexible conductive member 140 can be closer to the frame 110 , thereby reducing the distance between the screen assembly 150 and the frame 110 and further reducing the thickness of the entire electronic device 100 .
[0051] Combine Figure 1 、 Figure 2 and Figure 3As shown, in some embodiments, optionally, based on the first side of the frame 110 , the first portion 1311 is lower than the second side of the frame 110 , so that a portion of the flexible conductive member 140 is accommodated in the accommodation portion 111 .
[0052] by Figure 1 Taking the middle perspective as an example, the bottom of the frame body 110 is the first side of the frame body 110, and the top of the frame body 110 is the second side of the frame body 110. With the bottom of the frame body 110 as a reference, the first portion 1311 is lower than the second side of the frame body 110, that is, the first portion 1311 is not only located in the accommodating portion 111, but there is also a height difference between the top of the first portion 1311 and the second side of the frame body 110. This height difference is used to provide space for the flexible conductive member 140, so that a portion of the flexible conductive member 140 can be accommodated in the accommodating portion 111.
[0053] By disposing a portion of the flexible conductive member 140 in the accommodating portion 111 , the thickness of the flexible support member extending out of the frame 110 can be reduced, thereby further reducing the distance between the screen assembly 150 and the frame 110 , thereby reducing the thickness of the electronic device 100 .
[0054] The flexible conductive member 140 is flexible. By compressing the flexible conductive member 140, the thickness of the flexible conductive member 140 can also be reduced. However, if the flexible conductive member 140 is compressed excessively, the hardness of the flexible conductive member 140 will increase, which may easily cause extrusion damage to the screen assembly 150. Therefore, by accommodating a portion of the flexible conductive member 140 in the accommodating portion 111, safe contact between the flexible conductive member 140 and the screen assembly 150 can be ensured.
[0055] In some embodiments, optionally, the flexible conductive member 140 is in a deformed state, and a pre-compression amount of the flexible conductive member 140 is greater than or equal to 60%.
[0056] The flexible conductive member 140 is located between the screen assembly 150 and the conductive gasket 130 . After the screen assembly 150 is installed, the flexible conductive member 140 between the screen assembly 150 and the conductive gasket 130 is in a compressed state, so that the flexible conductive member 140 is in a deformed state.
[0057] Due to the influence of processing accuracy, the surface of the flexible conductive member 140 may not be a flat surface. By compressing the flexible conductive member 140, the flexible conductive member 140 can be tightly attached to the screen assembly 150 and the conductive gasket 130, thereby ensuring the grounding stability of the screen assembly 150.
[0058] In this embodiment, to ensure the stable fit between the screen assembly 150 and the conductive gasket 130 and the flexible conductive member 140, the pre-compression of the flexible conductive member 140 is greater than or equal to 60%. Pre-compression = (uncompressed thickness of the flexible conductive member - assembled thickness of the flexible conductive member) / uncompressed thickness of the flexible conductive member × 100%. When the flexible conductive member 140 meets the above pre-compression, a gap is unlikely to form between the flexible conductive member 140 and the screen assembly 150, and a gap is unlikely to form between the flexible conductive member 140 and the conductive gasket 130, thereby improving the grounding stability of the screen assembly 150.
[0059] Combine Figure 1 and Figure 3 As shown, in some embodiments, optionally, the thickness T1 of the frame 110 satisfies, T1≤0.3mm; and / or the thickness T2 of the flexible conductive member 140 satisfies, 0.6mm≤T2≤0.65mm; and / or the thickness T3 of the conductive gasket 130 satisfies, 0.05mm≤T3≤0.15mm; and / or along the thickness direction of the frame 110, the spacing T4 between the screen assembly 150 and the conductive gasket 130 is ≥0.1mm.
[0060] Exemplarily, the thickness of the frame 110 may be 0.3 mm, 0.28 mm, or 0.25 mm.
[0061] The thickness of the flexible conductive member 140 may be 0.6 mm, 0.62 mm, or 0.65 mm.
[0062] The thickness of the conductive spacer 130 may be 0.05 mm, 0.1 mm, or 0.15 mm.
[0063] The distance between the screen assembly 150 and the conductive spacer 130 may be 0.1 mm, 0.12 mm, or 0.15 mm.
[0064] The above dimensions are exemplified below. In the related art, the thickness of the middle frame is 0.4 mm to meet the welding requirements of the conductive gasket, otherwise the frame will be penetrated. However, in order to increase the thickness of the battery while ensuring that the thickness of the electronic device remains unchanged, the thickness of the frame needs to be reduced. After the thickness of the frame is reduced, the frame is easily penetrated during the welding process, making it difficult to ensure manufacturability.
[0065] In this embodiment, the thickness of the frame 110 is 0.3 mm, the thickness of the conductive gasket 130 is 0.1 mm, and after the screen assembly 150 is assembled, the distance between the screen assembly 150 and the frame 110 is 0.2 mm. The safety distance between the screen assembly 150 and the non-contact position below the screen assembly 150 is required to be 0.1 mm.
[0066] Since there is a certain angle between the welding direction of the conductive gasket 130 and the thickness direction of the frame 110, it is not easy to penetrate the frame 110 along the thickness direction of the frame 110. Therefore, even if the thickness of the frame 110 is reduced, the frame 110 is not easy to be penetrated. Therefore, by reducing the thickness of the frame 110, the thickness of the battery 120 can be increased to achieve the purpose of increasing the capacity of the battery 120.
[0067] In some embodiments, optionally, the length of the accommodation portion 111 ( Figure 1 The arrow at X in the middle points to the length direction of the accommodation portion) is greater than or equal to the length of the conductive gasket 130, and the width of the accommodation portion 111 ( Figure 1 The arrow Y in the middle points to the width direction of the accommodation portion (which is greater than the width of the conductive gasket 130).
[0068] The length of the accommodating portion 111 is consistent with the length of the conductive gasket 130 , or the length of the accommodating portion 111 is slightly greater than the length of the conductive gasket 130 , so that the accommodating portion 111 limits the movement of the conductive gasket 130 in the length direction, ensuring stability during the welding process.
[0069] The width of the accommodating portion 111 is greater than the width of the conductive gasket 130 , which can facilitate adjustment of the position of the conductive gasket 130 , thereby facilitating adjustment of the conductive gasket 130 to a position suitable for welding.
[0070] In some embodiments, optionally, when a portion of the conductive gasket 130 extends out of the frame 110 , the thickness of the flexible conductive member 140 extending out of the frame 110 is greater than the thickness of the conductive gasket 130 extending out of the frame 110 .
[0071] The thickness of the conductive gasket 130 protruding from the frame 110 is relatively small, while the thickness of the flexible conductive member 140 protruding from the frame 110 is relatively large. When the flexible conductive member 140 is in contact with the screen assembly 150, the conductive gasket 130 is not in contact with the screen assembly 150, thereby preventing the conductive gasket 130 from causing collisions with the screen assembly 150 and reducing the damage rate of the screen assembly 150.
[0072] Combine Figure 1 、 Figure 2 and Figure 3 As shown, in some embodiments, optionally, the accommodating portion 111 includes a first opening 113, an accommodating groove 114 and a second opening 115, the accommodating groove 114 is located between the first opening 113 and the second opening 115, the welding portion 132 includes a first welding portion 1323 and a second welding portion 1324, the first welding portion 1323 extends into the first opening 113, and the second welding portion 1324 extends into the second opening 115, and at least a portion of the support portion 131 is accommodated in the accommodating groove 114.
[0073] In one embodiment, the thickness of the frame 110 is 0.3 mm, and the thickness of the conductive gasket 130 is 0.1 mm (the thickness of the conductive gasket 130 should be consistent at all locations. Figure 2 and Figure 3 The thickness difference of the conductive gasket 130 can be ignored), and the distance between the screen assembly 150 and the frame 110 after assembly is 0.2 mm.
[0074] The frame 110 is hollowed out on both sides of the conductive gasket 130. The hollowed-out areas (first opening 113 and second opening 115) on the frame 110 ensure that the conductive gasket 130 can be welded. The first opening 113 and second opening 115 both meet the requirements of 5mm in length and 3mm in width. The solder joints 1322 on the conductive gasket 130 are welded perpendicular to the inner wall 112. Since the thickness of the frame 110 is 0.3mm, only one row of solder joints 1322 can be arranged on the welding portion 132. The diameter of solder joints 1322 is 0.2mm, ensuring a tolerance of 0.05mm between the solder joints 1322 and the upper and lower surfaces of the frame 110.
[0075] Since the welding direction of the conductive gasket 130 is parallel to the battery 120 and the length of the flexible conductive member 140 on the conductive gasket 130 is generally 9 mm, welding in this direction can meet the welding thickness requirement of 0.4 mm.
[0076] The thickness of the portion of the conductive gasket 130 extending out of the frame 110 is 0.1 mm. The distance between the screen assembly 150 and the conductive gasket 130 is 0.2 mm - 0.1 mm = 0.1 mm, which just meets the safety distance requirement.
[0077] The thickness of the flexible conductive member 140 is typically 0.65 mm. In order to ensure that the flexible conductive member 140 meets a pre-compression of 60%, the conductive gasket 130 is sunken at the position where it is in contact with the flexible conductive member 140 . That is, a portion of the conductive gasket 130 is lower than the upper surface of the frame 110 , and the sunken height can be 0.06 mm. The pre-compression amount = (0.65-0.2-0.06) / 0.65×100% = 60%.
[0078] Compared with the related art, this embodiment ensures that the 0.3 mm frame 110 does not affect the capacity of the battery 120 or the thickness of the entire device during the welding process of the conductive gasket 130 .
[0079] The receiving groove 114 between the first opening 113 and the second opening 115 provides space for the support portion 131 to sink.
[0080] like Figure 4 As shown, in other embodiments, the accommodating portion 111 includes a mounting hole 116 , and the welding portion 132 and the supporting portion 131 are both located in the mounting hole 116 .
[0081] The accommodating portion 111 is a whole through-hole structure, and the welding portion 132 and the supporting portion 131 can both be arranged in the through-hole structure. The relevant dimensions in this embodiment are the same as the dimensions in the above-mentioned embodiment of setting the first opening 113 and the second opening 115, and will not be repeated here.
[0082] It should be noted that when the welding portion 132 extends into the first opening 113 and the second opening 115, the inner side surface of the welding portion 132 is attached to the inner side wall 112 of the accommodating portion 111. Figure 2 When the welding portion 132 extends into the mounting hole 116, the outer side surface of the welding portion 132 is attached to the inner side wall 112 of the accommodating portion 111. Figure 2 Reference numeral 1321 indicates the dorsal side of the location.
[0083] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that the specific features, structures, materials, or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0084] Although the embodiments of the present application have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and intent of the present application, and that the scope of the present application is defined by the claims and their equivalents.
Claims
1. An electronic device, characterized in that: include: a frame, wherein the frame is provided with a receiving portion; a conductive gasket, at least a portion of which is located in the accommodating portion, and the conductive gasket is welded to an inner sidewall of the accommodating portion; a flexible conductive member, attached to the conductive gasket, at least a portion of the flexible conductive member extending out of the frame; The screen assembly is located on a side of the flexible conductive member away from the conductive pad, and the screen assembly is in contact with the flexible conductive member so as to ground the screen assembly.
2. The electronic device according to claim 1, wherein The conductive gasket includes a supporting portion and a welding portion, the supporting portion is connected to the welding portion, the supporting portion is in contact with the flexible conductive member, an angle is provided between the supporting portion and the welding portion, and the welding portion is welded to the inner side wall of the accommodating portion.
3. The electronic device according to claim 2, wherein: A first side surface of the welding portion is attached to an inner side wall of the accommodating portion, and the first side surface extends along a thickness direction of the frame body.
4. The electronic device according to claim 2, wherein: A welding spot is provided on the welding portion, and along the thickness direction of the frame, the first side of the frame and the second side of the frame are both spaced apart from the welding spot.
5. The electronic device according to claim 4, characterized in that The support portion is at least partially accommodated in the accommodation portion, and the flexible conductive member is located between the screen assembly and the support portion.
6. The electronic device according to claim 5, characterized in that A portion of the flexible conductive member is accommodated in the accommodation portion.
7. The electronic device according to any one of claims 1 to 6, characterized in that: The flexible conductive member is in a deformed state, and a pre-compression amount of the flexible conductive member is greater than or equal to 60%.
8. The electronic device according to any one of claims 1 to 3, characterized in that: The thickness T1 of the frame satisfies T1≤0.3mm; and / or The thickness T2 of the flexible conductive member satisfies 0.6 mm ≤ T2 ≤ 0.65 mm; and / or The thickness T3 of the conductive gasket satisfies 0.05 mm ≤ T3 ≤ 0.15 mm; and / or Along the thickness direction of the frame, the distance T4 between the screen assembly and the conductive gasket is ≥0.1 mm.
9. The electronic device according to any one of claims 1 to 6, characterized in that: In a case where a portion of the conductive gasket extends out of the frame, the thickness of the flexible conductive member extending out of the frame is greater than the thickness of the conductive gasket extending out of the frame.
10. The electronic device according to any one of claims 2 to 6, characterized in that: The accommodating portion includes a first opening, an accommodating groove and a second opening, the accommodating groove is located between the first opening and the second opening, the welding portion includes a first welding portion and a second welding portion, the first welding portion extends into the first opening, the second welding portion extends into the second opening, and at least a portion of the supporting portion is accommodated in the accommodating groove.