Wire clamp and electronic equipment

By designing an integrated wire clamp with a curved wire-holding protrusion on the inside, the problem of wire breakage when the wire clamp makes sharp turns is solved, achieving reliable signal transmission and cost reduction.

CN223514521UActive Publication Date: 2025-11-04VIVO MOBILE COMM CO LTD
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Patent Information

Application Number
CN202422498328.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-16
Publication Date
2025-11-04
Estimated Expiration
2034-10-16

AI Technical Summary

Technical Problem

Existing wire clamps are prone to damaging the protective layer of RF cables when making sharp bends, affecting the reliability of signal transmission.

Method used

Design a wire clamp with the clamping arm and the main body as an integral structure. The inner side has a wire-holding protrusion with a curved surface to avoid directly cutting the wire and ensure the integrity of the wire.

Benefits of technology

It effectively prevents damage to the wire protective layer, ensuring the accuracy, sensitivity, and reliability of signal transmission, and reducing processing costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a wire clamp and electronic equipment, and belongs to the technical field of electronic equipment. The clamping arm and the main body are of an integrated structure, the inner side of the clamping arm is provided with a wire clamping protrusion, the wire clamping protrusion is used for clamping a wire, and the adjacent surfaces of the wire clamping protrusion are in curved surface transition.
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Description

Technical Field

[0001] This application belongs to the field of electronic equipment technology, specifically relating to a wire clip and an electronic device. Background Technology

[0002] In related technologies, radio frequency (RF) cables in electronic devices are usually fixed by wire clamps. When the RF cable bends at a sharp angle, the side edge of the wire clamp comes into contact with the RF cable, which can easily damage the protective layer of the RF cable, thereby affecting the reliability of the RF cable's signal transmission. Utility Model Content

[0003] The purpose of this application is to provide a wire clamp and an electronic device that can effectively solve the technical problem that wire clamps easily damage the protective layer of wires.

[0004] In a first aspect, embodiments of this application provide a wire clamp, including:

[0005] main body;

[0006] The clamping arm is an integral part of the main body. The inner side of the clamping arm has a wire clamping protrusion for clamping the wire. The adjacent surfaces of the wire clamping protrusion are transitioned by curved surfaces.

[0007] Secondly, embodiments of this application provide an electronic device, including: a wire clip as provided in the first aspect.

[0008] In this embodiment, the wire clamp includes a main body and a clamping arm, which are integrally formed, thereby reducing the number of processing steps and lowering processing costs. The inner side of the clamping arm has a wire-holding protrusion that can clamp the wire. Furthermore, adjacent surfaces on the wire-holding protrusion are curved, preventing any cutting effect on the wire when it clamps it, thus ensuring the integrity of the wire, preventing short circuits between the wire and the wire clamp, and ensuring the accuracy, sensitivity, and reliability of the signal transmission. Attached Figure Description

[0009] The above and / or additional aspects and advantages of this application will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0010] Figure 1 One schematic diagram of a wire clamp provided in one embodiment of this application is shown;

[0011] Figure 2 A second schematic diagram of a wire clamp provided in one embodiment of this application is shown;

[0012] Figure 3 This illustration shows a schematic diagram of a wire clamp provided in one embodiment of the present application clamping two different diameters of wire;

[0013] Figure 4 The third schematic diagram shows a wire clamp provided in one embodiment of this application;

[0014] Figure 5 The fourth schematic diagram shows a wire clamp provided in one embodiment of this application;

[0015] Figure 6 A schematic diagram of a wire clamp holding a wire according to an embodiment of this application is shown;

[0016] Figure 7 A partial schematic diagram of a wire clamp provided in one embodiment of this application is shown;

[0017] Figure 8 The fifth schematic diagram shows a wire clamp provided in one embodiment of this application;

[0018] Figure 9 This is shown as a sixth schematic diagram of a wire clamp provided in one embodiment of this application;

[0019] Figure 10 The seventh schematic diagram shows a wire clamp provided in one embodiment of this application;

[0020] Figure 11 This is shown as diagram eight of a wire clamp provided in one embodiment of this application;

[0021] Figure 12 A schematic diagram of a wire clamp provided in one embodiment of this application is shown in Figure 9;

[0022] Figure 13 A schematic diagram of a portion of the structure of a wire clamp provided in one embodiment of this application is shown;

[0023] Figure 14 A schematic diagram of a wire clamp provided in one embodiment of this application is shown in Figure 10;

[0024] Figure 15 A schematic diagram of a wire clamp provided in one embodiment of this application is shown as eleven;

[0025] Figure 16 An exploded view of a wire clamp provided in one embodiment of this application is shown;

[0026] Figure 17 A schematic diagram of a wire clamp provided in one embodiment of this application is shown as 12;

[0027] Figure 18 A schematic diagram of a partial structure of an electronic device provided in one embodiment of this application is shown.

[0028] Figures 1 to 18 Figure label:

[0029] 100 Wire clamp, 110 Main body, 112 Body, 114 Extension, 120 Clamping arm, 122 Wire clamping protrusion, 1222 Clamping surface, 1224 First side surface, 1226 Second side surface, 1228 Third side surface, 130 Divider, 132 Wire clamping rib, 134 First dividing wall, 136 Second dividing wall, 138 First side wall, 140 Second side wall, 142 Third side wall, 144 Connecting part, 150 Vertical plate, 152 Injection molded part, 1522 Rounded corner structure, 200, 200a, 200b Wires, 300 Electronic equipment, 310 Frame, 320 Circuit board. Detailed Implementation

[0030] The embodiments of this application will now be described in detail. Examples of these embodiments are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0031] The terms "first" and "second" in the specification and claims of this application may explicitly or implicitly include one or more of the features. In the description of this application, unless otherwise stated, "multiple" means two or more. Furthermore, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.

[0032] In the description of this application, it should be understood that the terms "upper" and "inner", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0033] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0034] The following is combined Figures 1 to 18 This application describes a wire clip 100 and an electronic device according to embodiments thereof.

[0035] Firstly, such as Figure 1 , Figure 5 , Figure 7 , Figure 8 , Figure 9 , Figure 10 , Figure 11 , Figure 12 and Figure 14 As shown, this application embodiment provides a wire clamp 100, including: a main body 110; a clamping arm 120, which is an integral structure with the main body 110. The inner side of the clamping arm 120 has a wire-catching protrusion 122, and the adjacent surfaces of the wire-catching protrusion 122 are transitioned by curved surfaces, such as... Figure 18 As shown, the wire clamping protrusion 122 is used to clamp the wire 200.

[0036] In this embodiment, the wire clamp 100 includes a main body 110 and a clamping arm 120. The clamping arm 120 and the main body 110 are an integral structure, thereby reducing the processing steps of the wire clamp 100 and reducing the processing cost.

[0037] The inner side of the clamping arm 120 has a wire-clamping protrusion 122, which can clamp the wire 200. Furthermore, the adjacent surfaces of the wire-clamping protrusion 122 are curved, so that when the wire-clamping protrusion 122 clamps the wire 200, it will not cut the wire 200, thereby ensuring the integrity of the wire 200, avoiding short circuits between the wire 200 and the wire clamp 100, and ensuring the accuracy, sensitivity and reliability of the signal transmission of the wire 200.

[0038] Specifically, during the production line clamping process, the entire piece of material needs to be punched to obtain raw material for the wire clamp 100 of a specific shape. The punching process sharpens the edges of the raw material, resulting in sharp edges on the wire clamp 100. If the edge of the wire clamp 100 directly contacts the wire 200, it can cause the edge to cut through the protective layer of the wire 200. For example... Figure 1 and Figure 2 As shown, the wire clamp 100 provided in this application has a wire-holding protrusion 122 on the clamping arm 120. The wire-holding protrusion 122 can be a spoon-shaped structure. The entire wire-holding protrusion 122 has no gaps and the surface is smooth. The edge of the wire clamp 100 is not on the wire-holding protrusion 122, that is, the edge of the wire clamp 100 avoids the wire 200. Therefore, whether it is in the direction of the wire clamp 100 fastening or in any direction of the wire 200 bending on the patch surface, the protective layer of the wire 200 will not directly contact the edge of the wire clamp 100. This can effectively prevent the edge of the wire clamp 100 from damaging the protective layer of the wire 200, thereby ensuring the safety of the wire clamp 100 and reducing the possibility of damage to the protective layer of the wire 200.

[0039] The side of the main body 110 facing the clamping arm 120 can serve as a suction surface to enable patch mounting of the wire clamp 100. Furthermore, since the main body 110 and the clamping arm 120 are an integral structure, the cost will not increase, and the size of the wire clamp 100 can be well controlled.

[0040] Optionally, the clamping arm 120 can be made of metal or plastic and has elasticity, such as... Figure 3 As shown, the clamping arm 120 deforms differently and has different openings when clamping wires 200 of different diameters. Specifically, when there are two clamping arms 120, the distance between the two clamping arms 120 is d2 when the wire clamp 100 clamps the wire 200a, and the first position of the wire clamping protrusion 122 restricts the wire 200a.

[0041] For example, when the clamp 100 holds a wire 200 without a grounding ring, after the wire 200 is inserted, the wire 200 is just not under pressure. The wire clamping protrusion 122 of the clamp 100 is tangent to the wire 200 or has a certain gap. That is, after clamping the wire, the wire 200 can move in the direction of the wire diameter, which is convenient for straightening the wire during assembly and prevents the protective layer from being torn after the clamp 100 clamps the wire during the straightening process. At the same time, it is convenient for the replacement and maintenance of the wire, ensuring that the wire 200 can be disassembled and reassembled many times without being damaged and can be reused. Of course, the wire clamping protrusion 122 can press against the wire 200, so that the wire 200 is under pressure.

[0042] Figure 3 In this context, L indicates the position of the wire clamping protrusion 122 when the clamping arm 120 clamps the wire 200b, such as... Figure 3 As shown, when the wire clamp 100 clamps the wire 200b, the distance between the two clamping arms 120 is d1. The second position of the wire clamping protrusion 122 abuts against the wire 200b, and the contact length between the wire clamping protrusion 122 and the wire 200b is h, which is greater than 0, to ensure the reliability of the grounding of the wire 200b. That is, when the clamping arm 120 clamps the wire 200b, the wire clamping protrusion 122 or the wire 200b undergoes a certain deformation, so that the contact length h between the wire clamping protrusion 122 and the wire 200b is greater than 0. As shown above, the wire clamp 100 can clamp and fix wires 200 of various diameters.

[0043] For example, when the clamp 100 holds the wire 200 with a metal grounding ring, after the wire 200 is inserted, the metal grounding ring will spread the two clamping arms 120 apart. After the two clamping arms 120 are spread apart, it is necessary to ensure that the wire clamping protrusion 122 of the clamping arm 120 presses on the tangent point of the wire 200, that is, h must be greater than 0, to ensure the reliability of the contact between the clamping arm 120 and the metal grounding ring, so as to achieve the purpose of grounding. Similarly, it can prevent the wire 200 from slipping out after being inserted into the clamp 100.

[0044] Furthermore, regardless of whether the wire 200 has a grounding ring or not, after being inserted into the clamp 100, the openings d1 and d2 of the clamp 100 are both smaller than the corresponding diameter of the wire 200, reducing the possibility of the wire 200 slipping out of the clamp 100.

[0045] Among them, wire 200 can be a coaxial cable or other conductors.

[0046] like Figure 4 As shown, in one possible implementation, the wire clamping protrusion 122 includes: a clamping surface 1222; a first side surface 1224 located on one side of the clamping surface 1222, the angle between the first side surface 1224 and the clamping surface 1222 being greater than 180°, and the first side surface 1224 and the clamping surface 1222 being transitioned by a curved surface; and a second side surface 1226 located on the side of the clamping surface 1222 away from the first side surface 1224, the angle between the second side surface 1226 and the clamping surface 1222 being greater than 180°, and the second side surface 1226 and the clamping surface 1222 being transitioned by a curved surface.

[0047] Specifically, the wire clamping protrusion 122 includes a clamping surface 1222, a first side surface 1224, and a second side surface 1226. The first side surface 1224 and the second side surface 1226 are located on opposite sides of the clamping surface 1222. The first side surface 1224 and the clamping surface 1222 are connected by a curved surface, and the included angle R1 between the first side surface 1224 and the clamping surface 1222 is greater than 180°. The second side surface 1226 and the clamping surface 1222 are also connected by a curved surface, and the included angle R2 between the second side surface 1226 and the clamping surface 1222 is greater than 180°. Thus, when the clamping surface 1222 clamps the wire 200, the wire 200 can be bent to a certain extent by the space avoided by the first side surface 1224 and the second side surface 1226, thereby facilitating the adjustment of the wire routing path.

[0048] like Figure 4 As shown, the wire 200 can be bent in directions A, B, C or D, thereby making the wire 200 adaptable to more wiring needs.

[0049] The clamping surface 1222 can be a plane or a curved surface, the first side surface 1224 can be a plane or a curved surface, and the second side surface 1226 can be a plane or a curved surface.

[0050] Optionally, such as Figure 4 As shown, the wire clamping protrusion 122 also includes a third side surface 1228. The third side surface 1228 is located on the side of the clamping surface 1222 away from the main body 110 and is located between the first side surface 1224 and the second side surface 1226. The third side surface 1228 and the clamping surface 1222 are transitioned by a curved surface, the first side surface 1224 and the third side surface 1228 are transitioned by a curved surface, and the second side surface 1226 and the third side surface 1228 are transitioned by a curved surface.

[0051] The first side 1224, the second side 1226, and the third side 1228 can all be flat. Furthermore, the first side 1224, the second side 1226, and the third side 1228 form the edges of the wire clamping protrusion 122, thereby providing support for the pressing process and ensuring the dimensional stability of the wire clamping protrusion 122.

[0052] like Figure 1 and Figure 2 As shown, in one possible implementation, the wire clamping protrusion 122 is formed by stretching a portion of the clamping arm 120.

[0053] Specifically, the wire clamping protrusion 122 is formed by stretching a portion of the clamping arm 120, thereby reducing the manufacturing difficulty of the wire clamp 100 and making the entire wire clamp 100 form an integral structure, thus improving the strength of the wire clamp 100.

[0054] That is, a wire-clamping protrusion 122 is made on the clamping arm 120 through a stretching process. The structure of the wire-clamping protrusion 122 is similar to a spoon shape. Furthermore, a certain width of the die pressing straight edge is reserved on the edge of the wire-clamping protrusion 122, namely the first side 1224, the second side 1226, and the third side 1228, to ensure the stability of the forming dimensions of the wire-clamping protrusion 122.

[0055] Furthermore, compared to the folding process of bending edges, the wire clamp 100 provided in this application adopts a stretching process, which is a three-dimensional structure, and can ensure that the surface of the entire wire clamping protrusion 122 is seamless.

[0056] As one possible implementation method, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, there are two clamping arms 120, and the clamping protrusions 122 of the two clamping arms 120 are opposite each other; or as shown Figure 6 and Figure 7 As shown, there is one clamping arm 120. The main body 110 includes a body 112 and an extension 114 disposed on the body 112. The clamping arm 120 is located on the extension 114, and the clamping protrusion 122 of the clamping arm 120 faces the body 112.

[0057] Specifically, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, there are two clamping arms 120. The wire clamping protrusions 122 of the two clamping arms 120 are opposite each other. The two clamping arms 120 are set on the same side of the main body 110. Thus, the main body 110 and the two clamping arms 120 together clamp the wire 200 to fix the wire 200.

[0058] The main body 110 can be a plate-like structure for welding or a shielding cover. Part of the shielding cover forms a clamping arm 120, and corresponding positions are hollowed out or filled by other components, thereby realizing that the shielding cover has a built-in wire clamp 100.

[0059] Or, such as Figure 6 and Figure 7 As shown, the main body 110 includes a body 112 and an extension 114. The extension 114 is disposed on the body 112. There is one clamping arm 120 disposed on the extension 114. The wire clamping protrusion 122 faces the body 112. Thus, the body 112, the extension 114 and the clamping arm 120 together clamp the wire 200 to fix the wire 200.

[0060] The main body 112 can be a shielding cover, the extension 114 extends from the side of the shielding cover, and the clamping arm 120 is opposite to the side of the shielding cover, thereby realizing that the shielding cover has a built-in wire clamp 100.

[0061] In other words, the wire clamp 100 can be designed as an integral part of the structural component, or installed on the structural component through welding or snap-fit ​​processes. The structural component can be a shielding cover or a circuit board, etc.

[0062] like Figure 8 , Figure 9 , Figure 10 , Figure 11 , Figure 12 , Figure 15 , Figure 16 and Figure 17 As shown, in one possible implementation, there are two clamping arms 120. The wire clamp 100 also includes a partition 130, which protrudes from the main body 110. The partition 130 is located between the two clamping arms 120 and is spaced apart from the clamping arms 120.

[0063] Specifically, there are two clamping arms 120. The wire clamp 100 also includes a partition 130, which is spaced apart from the clamping arms 120. The partition 130 is disposed between the two clamping arms 120. The clamping arms 120, the partition 130 and the main body 110 together clamp the wire 200. That is, one clamping arm 120 and the partition 130 can clamp one section of the wire 200, and the other clamping arm 120 and the partition 130 can clamp the other end of the wire 200.

[0064] As described above, the partition 130 allows the wire clamp 100 to clamp at least two wire segments 200 simultaneously. The two wire segments 200 can be two positions of the same wire 200, or they can be two separate wires 200.

[0065] The main body 110 can be a welding plate structure or a shielding cover. Part of the shielding cover forms a clamping arm 120, and a corresponding position is formed with a hollow or filled by other components, thereby realizing that the shielding cover has a built-in wire clamp 100. The partition 130 is set on the shielding cover.

[0066] like Figure 8 , Figure 9 , Figure 10 , Figure 12 , Figure 15 , Figure 16 and Figure 17 As shown, in one possible implementation, the partition 130 has a wire-locking rib 132, which is opposite to the wire-locking protrusion 122.

[0067] Specifically, the partition 130 has a wire-clamping rib 132, which is opposite to the wire-clamping protrusion 122, thereby using the wire-clamping rib 132 to clamp the wire 200 and increase the reliability of the wire clamp 100.

[0068] In other words, by adding a wire-clamping rib 132 to the partition 130, the phenomenon that the wire 200 is easy to slip out after the wire is clamped can be optimized. Similarly, the wire-clamping rib 132 is a protruding structure, which can separate the wire 200 from the edge of the partition 130. Then, during the wire clamping process, the wire 200 will be guided by the rib, reducing the possibility of the edge of the partition 130 and the wire 200 coming into contact, and further reducing the possibility of damage to the protective layer of the wire 200.

[0069] The wire clamp 100 has two clamping arms 120, a partition 130 is located between the two clamping arms 120, and a wire-clamping rib 132 protrudes from the partition 130. The wire-clamping rib 132 is provided corresponding to the two clamping arms 120. The entire wire-clamping rib 132 can be integrally formed to form a "U" shaped structure.

[0070] like Figure 8 , Figure 9 , Figure 10 and Figure 11 As shown, in one possible implementation, the partition 130 includes: a first partition wall 134, protruding from the main body 110 and integrally formed with the main body 110; and a second partition wall 136, protruding from the main body 110 and integrally formed with the main body 110, wherein the first partition wall 134 and the second partition wall 136 are integrally formed; wherein, as Figure 8 and Figure 9 As shown, the side of the first partition wall 134 has a first sidewall 138, and the first sidewall 138 and the first partition wall 134 are transitioned by a curved surface; the side of the second partition wall 136 has a second sidewall 140, and the second sidewall 140 and the second partition wall 136 are transitioned by a curved surface; or as shown Figure 10 and Figure 11 As shown, the side of the first partition wall 134 has a third side wall 142, which is curved and the end of the third side wall 142 faces the second partition wall 136.

[0071] Specifically, such as Figure 8 and Figure 9 As shown, the partition 130 includes a first partition wall 134 and a second partition wall 136. The first partition wall 134 is formed by protruding from the main body 110 and is an integral structure with the main body 110. The second partition wall 136 is formed by protruding from the main body 110 and is an integral structure with the main body 110. The first partition wall 134 and the second partition wall 136 are integral structures, that is, the middle of the main body 110 is bent to form a "U"-shaped partition 130. The side of the first partition wall 134 has a first side wall 138, and the first side wall 138 and the first partition wall 134 are transitioned by a curved surface. The side of the second partition wall 136 has a second side wall 140, and the second side wall 140 and the second partition wall 136 are transitioned by a curved surface. By using the first side wall 138 and the second side wall 140, the chamfer of the edge of the partition 130 is prevented from contacting the wire 200, thereby improving the protection effect on the wire 200.

[0072] The first sidewall 138 has two parts, which are respectively disposed on the two sides of the first partition wall 134, and the second sidewall 140 has two parts, which are respectively disposed on the two sides of the second partition wall 136. Thus, the first sidewall 138 and the second sidewall 140 form a scratch-resistant structure. The first sidewall 138 and the first partition wall 134 are bent together, and the angle between them is greater than 180°. The second sidewall 140 and the second partition wall 136 are bent together, and the angle between them is greater than 180°. That is, the first sidewall 138 and the second sidewall 140 are inclined in opposite directions, thereby reducing the possibility that the wire 200 will be scratched by the edge of the partition 130.

[0073] Or such as Figure 10 and Figure 11 As shown, the partition 130 includes a first partition wall 134 and a second partition wall 136. The first partition wall 134 is formed by protruding from the main body 110 and is an integral structure with the main body 110. The second partition wall 136 is formed by protruding from the main body 110 and is an integral structure with the main body 110. The first partition wall 134 and the second partition wall 136 are an integral structure, that is, the middle of the main body 110 is bent to form a "U"-shaped partition 130. The side of the first partition wall 134 has a third side wall 142. The third side wall 142 is bent to form a "U" shape. The end of the third side wall 142 faces the second partition wall 136. In this way, the first side wall 138 and the second side wall 140 are used to prevent the wire 200 from contacting the chamfer of the edge of the partition 130, thereby improving the protection effect of the wire 200.

[0074] The third sidewall 142 has two parts, which are respectively set on the two sides of the first partition wall 134, so that the third sidewall 142 forms a scratch-resistant structure. The third sidewall 142 is pressed into a "U"-shaped dead edge structure to cover the edges of the first partition wall 134 and the second partition wall 136, thereby reducing the possibility that the edges of the first partition wall 134 and the second partition wall 136 will scratch the wire 200.

[0075] like Figure 12 and Figure 13 As shown, in one possible implementation, the partition 130 includes: a vertical plate 150 protruding from the main body 110 and integral with the main body 110; and an injection molded part 152 covering the vertical plate 150, wherein the adjacent sides of the injection molded part 152 have rounded corner structures 1522.

[0076] Specifically, the partition 130 includes a vertical plate 150 and an injection molded part 152. The injection molded part 152 is disposed on the vertical plate 150. The vertical plate 150 is formed by protruding from the main body 110 and is an integral structure with the main body 110. The adjacent sides of the injection molded part 152 have rounded corner structures 1522. That is, the injection molded part 152 is used to reduce the sharpness of the edge of the partition 130 and improve the protection effect on the wire 200.

[0077] Among them, the injection molded part 152 is injection molded onto the upright plate 150 by means of an insert process. The upright plate 150 is formed by bending part of the main body 110, and the corresponding position of the main body 110 is hollowed out or filled with other materials.

[0078] Furthermore, the upright plate 150 has raised ribs to form barbs or dovetail structures, thereby ensuring the bonding strength between the injection molded part 152 and the upright plate 150, reducing the possibility of the injection molded part 152 detaching from the upright plate 150, and the edges of the injection molded part 152 are rounded.

[0079] The injection molded part 152 is connected to the body 110. The connection surface between the injection molded part 152 and the body 110 can be flat, reducing the risk of excess material in the injection molded part 152. For example... Figure 14 As shown, the main body 110 has a groove on the side opposite to the injection molded part 152, which creates a height difference on the bottom surface of the main body 110. This ensures that after the wire clamp 100 is installed on the circuit board or other structural components, there is a certain gap between the injection molded part 152 and the structural components, thereby reducing the possibility that the burrs of the injection molded part 152 will lift the wire clamp 100 and improving the reliability of the connection between the wire clamp 100 and the structural components.

[0080] The clamping arm 120 can be made of metal to ground the wire 200.

[0081] Furthermore, the injection molded part 152 covers part of the upright plate 150, so that when the injection molded part 152 is injection molded, the molded part can resist the upright plate 150, thereby preventing the upright plate 150 from deforming and reducing the stress on the injection molded part 152.

[0082] The upright plate 150 can form a 90° angle with the main body 110, thereby partially removing the glue from the injection molded part 152. The molded part is held against the upright plate 150 to reduce the possibility of deformation of the upright plate 150.

[0083] like Figure 15 , Figure 16 and Figure 17 As shown, in one possible implementation, the partition 130 includes: a first partition wall 134, which protrudes from the main body 110 and is integral with the main body 110, and the side of the first partition wall 134 has a connecting portion 144; a second partition wall 136, which protrudes from the main body 110 and is integral with the main body 110, the first partition wall 134 and the second partition wall 136 are integral with each other, and the side of the second partition wall 136 has a second connecting portion 144; and an injection molded part 152, which is disposed on the connecting portion 144 and the second connecting portion 144, and the adjacent sides of the injection molded part 152 have a rounded corner structure 1522.

[0084] Specifically, the partition 130 includes a first partition wall 134 and a second partition wall 136. The first partition wall 134 is formed by protruding from the main body 110 and is integral with the main body 110. The second partition wall 136 is formed by protruding from the main body 110 and is integral with the main body 110. The first partition wall 134 and the second partition wall 136 are integral, that is, the middle of the main body 110 is bent to form a "U"-shaped partition 130. The side of the first partition wall 134 has a connecting portion 144, and the side of the second partition wall 136 has a second connecting portion 144. The injection molded part 152 is disposed on the connecting portion 144 and the second connecting portion 144. The adjacent sides of the injection molded part 152 have a rounded corner structure 1522. That is, the injection molded part 152 is used to reduce the sharpness of the edge of the partition 130 and improve the protection effect on the wire 200.

[0085] That is, the two sides of the first partition wall 134 and the second partition wall 136 are sealed with glue to form the injection molded part 152. The two ends of the injection molded part 152 are rounded to reduce the possibility of the wire clamp 100 damaging the wire 200. The connection surface between the injection molded part 152 and the main body 110 can be flat to reduce the risk of glue overflow in the injection molded part 152 and to ensure the size of the injection molded part 152.

[0086] like Figure 17 As shown, in one possible implementation, a portion of the injection molded part 152 is located between the first partition wall 134 and the second partition wall 136.

[0087] Specifically, a portion of the injection molded part 152 is located between the first partition wall 134 and the second partition wall 136, which reduces the possibility of the injection molded part 152 detaching and improves the reliability of the injection molded part 152.

[0088] Optionally, the injection molded part 152 located between the first partition wall 134 and the second partition wall 136 is higher than the side of the main body 110 away from the clamping arm 120, thereby creating a height difference on the bottom surface of the main body 110. This ensures that after the wire clamp 100 is installed on the circuit board or other structural components, there is a certain gap between the injection molded part 152 and the structural components, thereby reducing the possibility that the burrs of the injection molded part 152 will lift the wire clamp 100 and improving the reliability of the connection between the wire clamp 100 and the structural components.

[0089] The clamping arm 120 can be made of metal to ground the wire 200.

[0090] Furthermore, the connecting part 144 has raised ribs, forming barbs or dovetail structures, thereby ensuring the bonding strength between the injection molded part 152 and the connecting part 144, reducing the possibility of the injection molded part 152 detaching from the upright plate 150, and the edges of the injection molded part 152 are rounded.

[0091] The wire clamp 100 provided in this application can clamp a single wire 200 or two wires 200. The clamping arm 120 of the wire clamp 100 creates a spoon-shaped wire-holding protrusion 122 through a stretching operation.

[0092] For the clamp 100 that holds two wires 200, a partition 130 is provided, and an injection molded part 152 is used to reduce the possibility of the clamp 100 damaging the wires 200. In addition, during the wire loading and unloading process, the clamp 100 can reduce the risk of the clamp 100 scratching the wires 200. Furthermore, the grounding requirements of the wires 200 can be met, and the reliability of the grounding of the wires 200 with the grounding ring can be ensured.

[0093] The clamp 100 holds two wires 200, and the grounding and non-grounding requirements of the two wires 200 do not conflict, improving the flexibility of wiring.

[0094] By optimizing the structure of the clamp 100 that holds the two wires 200, the problem of the clamp 100 damaging the protective layer of the wire 200 is solved. In particular, for wires 200 that require bending, the problem of the shielding layer of the wire 200 coming into contact with the clamp 100, which would cause passive intermodulation (PIM) and antenna clutter issues due to grounding inconsistency is avoided.

[0095] It simultaneously meets the grounding requirements of both wires 200, and the two wires 200 do not affect each other. That is, both coaxial cables are grounded with grounding rings, or neither is grounded, or only one is grounded. All of these can achieve reliable fixing and reliable grounding, improving the flexibility of cable routing.

[0096] Secondly, such as Figure 18 As shown, this application provides an electronic device 300, including: a wire clip 100 as provided in the first aspect embodiment.

[0097] The electronic device 300 provided in this application includes the wire clip 100 as provided in the first aspect embodiment, and therefore has all the beneficial effects of the wire clip 100 as provided in the first aspect embodiment, which will not be described in detail here.

[0098] Optionally, such as Figure 18 As shown, the electronic device 300 also includes a frame 310 and a circuit board 320, with the wire clamp 100 disposed on the circuit board 320 or the frame 310.

[0099] Among them, electronic device 300 can be a mobile phone, tablet computer, television, computer or wearable device, etc.

[0100] In the description of this specification, references to terms such as "an embodiment" or "specific embodiment" indicate that a particular feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0101] Although embodiments of this application have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the claims and their equivalents.

Claims

1. A wire clamp, characterized in that, include: main body; The clamping arm and the main body are integrally structured. The inner side of the clamping arm has a wire-clamping protrusion for clamping the wire. The adjacent surfaces of the wire-clamping protrusion are transitioned by curved surfaces. The wire clip protrusion includes: Clamping surface; A first side surface is located on one side of the clamping surface, and the angle between the first side surface and the clamping surface is greater than 180°. The first side surface and the clamping surface are transitioned by a curved surface. The second side is located on the side of the clamping surface that is opposite to the first side, and the angle between the second side and the clamping surface is greater than 180°. The second side and the clamping surface are transitioned by a curved surface. The cable clamping protrusion also includes a third side surface, which is located on the side of the clamping surface away from the main body and between the first side surface and the second side surface. The third side surface and the clamping surface are transitioned by a curved surface, the first side surface and the third side surface are transitioned by a curved surface, and the second side surface and the third side surface are transitioned by a curved surface.

2. The wire clamp according to claim 1, characterized in that, The wire clamping protrusion is formed by stretching a portion of the clamping arm.

3. The wire clamp according to claim 1 or 2, characterized in that, The clamping arms are of two types, and the clamping wire protrusions of the two clamping arms are opposite each other; or The number of clamping arms is one. The main body includes a body and an extension disposed on the body. The clamping arm is located on the extension, and the clamping wire protrusion of the clamping arm faces the body.

4. The wire clamp according to claim 1 or 2, characterized in that, The clamping arms are of two types, and the wire clamp further includes: A partition protrudes from the main body and is located between the two clamping arms, with the partition and the clamping arms spaced apart.

5. The wire clamp according to claim 4, characterized in that, The partition has a wire-locking rib, and the wire-locking rib and the wire-locking protrusion are opposite to each other.

6. The wire clamp according to claim 4, characterized in that, The partition includes: The first partition wall protrudes from the main body and is an integral structure with the main body; The second partition wall protrudes from the main body and is an integral structure with the main body; the first partition wall and the second partition wall are an integral structure. Wherein, the side of the first partition wall has a first sidewall, the first sidewall and the first partition wall are transitioned by a curved surface, the side of the second partition wall has a second sidewall, the second sidewall and the second partition wall are transitioned by a curved surface; or the side of the first partition wall has a third sidewall, the third sidewall is curved, and the end of the third sidewall faces the second partition wall.

7. The wire clamp according to claim 4, characterized in that, The partition includes: The upright plate protrudes from the main body and is an integral structure with the main body; The injection molded part covers the vertical plate, and the adjacent sides of the injection molded part have a rounded corner structure in the circumferential direction.

8. The wire clamp according to claim 4, characterized in that, The partition includes: The first partition wall protrudes from the main body and is an integral structure with the main body. The side of the first partition wall has a connecting part. The second partition wall protrudes from the main body and is an integral structure with the main body; the first partition wall and the second partition wall are an integral structure. An injection molded part is disposed on the connecting portion, and the adjacent sides of the injection molded part have a rounded corner structure in the circumferential direction.

9. An electronic device, characterized in that, include: The wire clamp as described in any one of claims 1 to 8.