Radio frequency connector and electronic equipment
By designing a sliding and adjustable RF connector, and using conductive plates to achieve electrical connection between the first and second connectors, the problem of connection stability and flexibility of RF connectors when facing position changes is solved, and the stability and convenience of electrical connection are achieved.
Patent Information
- Application Number
- CN202423228778.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2034-12-25
AI Technical Summary
Existing RF connectors suffer from connection failures due to misalignment between the pin and contact points when faced with errors in the positioning or assembly of the first electronic component.
An RF connector is designed, including a housing, a conductive sheet, and first and second connectors. The conductive sheet enables electrical connection between the first and second connectors. The first connector is adjustable to accommodate changes in the position of a first electronic component. The second connector is fixedly connected to a second electronic component, ensuring the stability and flexibility of the electrical connection.
It improves the adaptability and flexibility of RF connectors, enabling them to automatically adapt to changes in the position of the primary electronic components, ensuring the stability and convenience of electrical connections, and reducing the risk of wear between the pins and components.
Smart Images

Figure CN223797646U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of electronic equipment technology, and more particularly to a radio frequency connector and electronic equipment. Background Technology
[0002] During the connection process, the component is typically mounted to the second component via an RF connector, and two pins on the RF connector hold the first and second electronic components respectively to achieve an electrical connection between them. However, when the position of the first electronic component needs to be adjusted, or when assembly errors occur, the position of the contacts on the first electronic component also changes, causing a deviation between the positions of the pins on the RF connector and the contacts on the first electronic component. This results in the first and second components being unable to be connected via the RF connector.
[0003] Therefore, in order to overcome the above problems, a new type of radio frequency connector needs to be designed to solve these problems. Utility Model Content
[0004] This disclosure provides a radio frequency connector and electronic device to at least solve the above-mentioned problems in the prior art.
[0005] To achieve the above objectives, this disclosure provides the following technical solution: a radio frequency connector, the radio frequency connector comprising:
[0006] case;
[0007] A conductive sheet extends along a first direction and is connected to the inner wall of the housing;
[0008] A first connector extends through the shell wall of the housing along a second direction perpendicular to the first direction. The first connector is slidably connected to the housing and movably abuts against the conductive sheet. The first connector also extends out of the housing and is used for electrical connection to a first electronic component externally.
[0009] A second connector extends through the shell wall of the housing along the second direction. A portion of the second connector is electrically connected to the conductive sheet, and the second connector also extends out of the housing for electrical connection to a second external electronic component; wherein,
[0010] The first connector and the second connector are electrically connected through a conductive sheet, so that the first electronic component is electrically connected to the second electronic component.
[0011] In one possible implementation, the first connector includes:
[0012] The movable body is housed within the housing and slidably connected to the housing along the first direction;
[0013] A support body is connected to the movable body and movably supports the conductive sheet, and the support body is electrically connected to the conductive sheet;
[0014] A first ejector pin is connected to the movable body and penetrates the shell wall of the housing along the second direction. The first ejector pin is electrically connected to the support body and is used for electrical connection to the first electronic component externally.
[0015] In one embodiment, the inner wall of the housing is provided with a plurality of limiting protrusions, the plurality of limiting protrusions are spaced apart along a first direction, and a limiting groove is formed between any two adjacent limiting protrusions;
[0016] The first connector further includes an elastic bracket, one end of which is connected to the movable body, and the other end of which is used to hold in a corresponding limiting groove.
[0017] In one possible embodiment, the movable body is provided with a storage groove, and the first ejector pin is inserted into the storage groove;
[0018] The first connector further includes a first elastic body, which is housed in the receiving groove and sleeved on the first ejector pin. One end of the first elastic body is connected to the first ejector pin, and the other end of the first elastic body is connected to the movable body.
[0019] In one possible embodiment, a groove is formed on the inner wall of the housing, the groove extending along the first direction, and the movable body includes:
[0020] The movable part is housed within the housing and is slidably connected to the housing along the first direction;
[0021] A sliding part is connected to the movable part and slidably connected to the groove.
[0022] In one embodiment, the first connector further includes a toggle member that engages with the movable body.
[0023] In one possible implementation, the second connector includes:
[0024] A fixing body that penetrates the shell wall of the housing;
[0025] A connector is connected to the fixed body and movably abuts against the conductive sheet, and the connector is electrically connected to the conductive sheet;
[0026] The second ejector pin is connected to the fixing body and penetrates the shell wall of the housing along the second direction. The second ejector pin is electrically connected to the connecting body and is used for electrical connection to the second electronic component externally.
[0027] In one embodiment, the fixing body is provided with a receiving groove, and the second ejector pin is inserted into the receiving groove;
[0028] The second connector further includes a second elastic body, which is housed in the receiving groove and sleeved on the second ejector pin. One end of the second elastic body is connected to the second ejector pin, and the other end of the second elastic body is connected to the fixing body.
[0029] In one embodiment, a shielding baffle is connected to the middle of the housing, and there are two of each of the conductive sheet, the first connector, and the second connector;
[0030] Two conductive sheets are spaced apart on opposite sides of the shielding baffle along the first direction, two first connectors are spaced apart on opposite sides of the shielding baffle along the first direction, and two second connectors are spaced apart on opposite sides of the shielding baffle along the first direction.
[0031] This disclosure also provides the following technical solution: an electronic device, the electronic device including the above-mentioned radio frequency connector.
[0032] In the aforementioned RF connector, the housing is first installed onto the second electronic component, and the second connector abuts against the contacts on the second electronic component to achieve an electrical connection between the second connector and the second electronic component. Then, the first connector is slid in a first direction, and the first connector remains electrically connected to the conductive sheet during the sliding process, so that the first connector abuts against the contacts on the first electronic component to achieve an electrical connection between the first connector and the first electronic component. Since both the first and second connectors are electrically connected to the conductive sheet, an electrical connection between the first and second electronic components is achieved. Thus, by adjusting the position of the first connector, it can be aligned with and abut against the contacts on the first electronic component after the position adjustment, thereby achieving an electrical connection between the first connector and the first electronic component after the position change, thereby improving the adaptability and flexibility of the RF connector.
[0033] It should be understood that the description in this section is not intended to identify key or essential features of the embodiments of this disclosure, nor is it intended to limit the scope of this disclosure. Other features of this disclosure will become readily apparent from the following description. Attached Figure Description
[0034] The above and other objects, features, and advantages of this disclosure will become readily apparent from the following detailed description of exemplary embodiments, taken in conjunction with the accompanying drawings. Several embodiments of this disclosure are illustrated in the drawings by way of example and not limitation, in which:
[0035] In the accompanying drawings, the same or corresponding reference numerals indicate the same or corresponding parts.
[0036] Figure 1 A schematic diagram of the structure of the radio frequency connector in an embodiment of this disclosure is shown;
[0037] Figure 2 It shows Figure 1 A schematic diagram of the structure of the conductive sheet, the first connector, and the second connector;
[0038] Figure 3 It shows Figure 2 A cross-sectional view of the conductive sheet, the first connector, and the second connector along the III-III direction;
[0039] Figure 4 It shows Figure 1 A schematic diagram of the middle shell structure.
[0040] Explanation of the labels in the diagram:
[0041] In the diagram: 11. Shell; 111. Outer shell body; 1111. First side plate; 1112. Second side plate; 1113. Bottom plate; 1114. Top plate; 1115. Cavity; 1116. Strip hole; 1117. Limiting protrusion; 1118. Limiting groove; 1119. Sliding groove; 112. Mounting plate; 12. Conductive sheet; 13. First connector; 131. Movable body; 1311. Movable part; 1312. Sliding part; 132. Support body; 133. First ejector pin; 134. First elastic body; 135. Actuating element; 136. Elastic bracket; 14. Second connector; 141. Fixed body; 142. Connecting body; 143. Second ejector pin; 144. Second elastic body; 15. Shielding baffle. Detailed Implementation
[0042] To make the objectives, features, and advantages of this disclosure more apparent and understandable, the technical solutions in the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this disclosure, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.
[0043] It should be understood that the various forms of processes shown above can be used to rearrange, add, or delete steps. For example, the steps described in this disclosure can be executed in parallel, sequentially, or in different orders, as long as the desired result of the technical solution of this disclosure can be achieved, and this is not limited herein.
[0044] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this disclosure, "a plurality of" means two or more, unless otherwise explicitly specified.
[0045] The embodiments of this utility model are described below with reference to the accompanying drawings.
[0046] For ease of explanation, in Figure 1 A three-dimensional rectangular coordinate system is added, in which the X-axis is the first direction, that is, the extension direction of the conductive sheet 12; the Z-axis is the second direction, that is, the setting direction of the bottom plate 1113 and the top plate 1114; and the Y-axis is the third direction, that is, the setting direction of the two second side plates 1112. The first direction, the second direction and the third direction are perpendicular to each other.
[0047] Please refer to the following: Figure 1 and Figure 2 This disclosure provides an RF connector, which includes a housing 11, a conductive sheet 12, a first connector 13, and a second connector 14. The conductive sheet 12 extends along a first direction and is connected to the inner wall of the housing 11. The first connector 13 extends through the housing wall of the housing 11 along a second direction perpendicular to the first direction. The first connector 13 is slidably connected to the housing 11 and movably abuts against the conductive sheet 12. The first connector 13 also extends out of the housing 11 and is used for electrically connecting to a first electronic component externally. The second connector 14 extends through the housing wall of the housing 11 along the second direction. A portion of the second connector 14 is electrically connected to the conductive sheet 12. The second connector 14 also extends out of the housing 11 and is used for electrically connecting to a second electronic component externally. The first connector 13 and the second connector 14 are electrically connected through the conductive sheet 12 so that the first electronic component is electrically connected to the second electronic component. For example, the first electronic component can be an antenna with contacts, and the first connector 13 is used to hold and electrically connect to the contacts on the antenna. Correspondingly, the second electronic component can be a main circuit board with bare copper for grounding, and the second connector 14 is used to hold and electrically connect to the bare copper on the main circuit board.
[0048] In the aforementioned RF connector, the housing 11 is first installed onto the second electronic component, and the second connector 14 abuts against the contacts on the second electronic component to achieve an electrical connection between the second connector 14 and the second electronic component. Then, the first connector 13 is slid in a first direction. During the sliding process, the first connector 13 is always electrically connected to the conductive sheet 12 so that the first connector 13 abuts against the contacts on the first electronic component to achieve an electrical connection between the first connector 13 and the first electronic component. Since both the first connector 13 and the second connector 14 are electrically connected to the conductive sheet 12, an electrical connection between the first electronic component and the second electronic component is achieved. Thus, by adjusting the position of the first connector 13, the first connector 13 can be aligned with and abut against the contacts on the first electronic component after the position adjustment, thereby achieving an electrical connection between the first connector 13 and the first electronic component after the position change, thereby improving the adaptability and flexibility of the RF connector.
[0049] Understandably, existing antennas typically employ a fixed design, with the antenna electrically connected to the bare copper ground on the motherboard via a long conductive pin. This design restricts the antenna's position from being adjustable, and the long conductive pin carries a significant risk of breakage. Furthermore, the antenna design has a large clearance area, limiting the slot pattern on the antenna and resulting in strong system noise. It is impossible to adjust the antenna to a relatively quiet area, thus affecting antenna performance.
[0050] Please see Figure 3 In some embodiments, the first connector 13 includes a movable body 131, a supporting body 132, and a first ejector pin 133. The movable body 131 is housed within the housing 11 and slidably connected to the housing 11 along a first direction. The supporting body 132 is connected to the movable body 131 and movably supports the conductive sheet 12, and the supporting body 132 is electrically connected to the conductive sheet 12. The first ejector pin 133 is connected to the movable body 131 and penetrates the shell wall of the housing 11 along a second direction. The first ejector pin 133 is electrically connected to the supporting body 132 and is used for electrically connecting to an external first electronic component. Specifically, the first ejector pin 133 and the supporting body 132 are electrically connected via a cable.
[0051] Thus, by actuating the first connector 13 with external force, the first pin 133 abuts against the contact on the first electronic component, thereby achieving electrical connection between the first pin 133 and the first electronic component, electrical connection between the first pin 133 and the abutment 132, electrical connection between the abutment 132 and the conductive sheet 12, and electrical connection between the conductive sheet 12 and the second electronic component through the second connector 14. This achieves electrical connection between the first and second electronic components, enabling the video connector to automatically adapt to changes in the position of the first electronic component, improving the flexibility, adaptability, and ease of operation of the video connector.
[0052] Furthermore, the first ejector pin 133, the support body 132, and the conductive sheet 12 are all made of conductive metal; for example, the conductive metal can be copper, silver, aluminum, or aluminum alloy, etc.
[0053] Please refer to the following: Figure 1 and Figure 2 In some embodiments, the inner wall of the housing 11 is provided with a plurality of limiting protrusions 1117, the plurality of limiting protrusions 1117 are spaced apart along the first direction, and a limiting groove 1118 is formed between any two adjacent limiting protrusions 1117. The first connecting member 13 also includes an elastic bracket 136, one end of the elastic bracket 136 is connected to the movable body 131, and the other end of the elastic bracket 136 is used to hold in a corresponding limiting groove 1118.
[0054] Thus, when the first connector 13 is moved to the predetermined position by external force, the first pin 133 abuts against and connects to the contact on the first electronic component. At the same time, the elastic bracket 136 is held in a corresponding limiting groove 1118. The limiting groove 1118 limits and fixes the movable body 131 that has moved to the predetermined position, so as to prevent the first connector 13 from accidentally sliding when it is interfered with by external force, and to ensure the stability of the connection between the first connector 13 and the contact on the first electronic component.
[0055] Please see Figure 1 Furthermore, the inner wall of the housing 11 is also provided with an embedding groove. The embedding groove and the limiting groove 1118 are arranged on the same side of the housing 11. The embedding groove is connected to the limiting groove 1118. The conductive sheet 12 is embedded in the embedding groove. The abutment 132 is fixed to the other end of the elastic bracket 136 and is used to abut the conductive sheet 12, so as to be electrically connected to the conductive sheet 12.
[0056] Furthermore, the inner wall of the housing 11 is provided with an embedding groove, and the embedding groove and the limiting groove 1118 are arranged on opposite sides of the housing 11.
[0057] Please see Figure 3 In some embodiments, the movable body 131 is provided with a receiving groove, the first ejector pin 133 is inserted into the receiving groove, and the first connector 13 further includes a first elastic body 134. The first elastic body 134 is received in the receiving groove and sleeved on the first ejector pin 133. One end of the first elastic body 134 is connected to the first ejector pin 133, and the other end of the first elastic body 134 is connected to the movable body 131. For example, the first elastic body 134 can be a spring.
[0058] Thus, when the first ejector pin 133 abuts against the contact point on the first electronic component, the first ejector pin 133 will press against the first electronic component. At this time, the first ejector pin 133 will receive the reaction force from the first electronic component and press against the first elastic body 134, causing the first elastic body 134 to release its elastic force and buffer the first ejector pin 133. This achieves flexible contact between the first ejector pin 133 and the first electronic component, thereby reducing wear between them. Furthermore, the elastic force released by the first elastic body 134 can drive the first ejector pin 133 to always abut against the first electronic component, thus ensuring the stability of the connection between the first ejector pin 133 and the first electronic component.
[0059] Please refer to the following: Figure 3 and Figure 4 In some embodiments, a groove 1119 is provided on the inner wall of the housing 11. The groove 1119 extends along a first direction. The movable body 131 includes a movable part 1311 and a sliding part 1312. The movable part 1311 is housed in the housing 11 and is slidably connected to the housing 11 along the first direction. The sliding part 1312 is connected to the movable part 1311 and is slidably connected to the groove 1119.
[0060] Thus, the sliding connection between the first connector 13 and the housing 11 is achieved through the sliding groove 1119 and the sliding part 1312, so as to ensure that the first connector 13 can move stably along the first direction. Moreover, the structure of the sliding groove 1119 and the sliding part 1312 is simple and easy to process.
[0061] Please see Figure 2 In some embodiments, the first connector 13 further includes a toggle member 135, which is engaged with the movable body 131 so as to move the first connector 13 along a first direction by toggle member 135. Specifically, the toggle member 135 is made of insulating material.
[0062] Please see Figure 2 In some embodiments, the second connector 14 includes a fixing body 141, a connecting body 142, and a second pin 143. The fixing body 141 penetrates the shell wall of the housing 11. The connecting body 142 is connected to the fixing body 141 and movably abuts against the conductive sheet 12, and the connecting body 142 is electrically connected to the conductive sheet 12. The second pin 143 is connected to the fixing body 141 and penetrates the shell wall of the housing 11 along a second direction. The second pin 143 is electrically connected to the connecting body 142 and is used for electrically connecting to a second external electronic component. Specifically, the second pin 143 and the connecting body 142 are electrically connected via a cable.
[0063] Thus, the second conductive sheet 12 is electrically connected to the connector 142, the connector 142 is electrically connected to the second pin 143 through a cable, the second pin 143 is electrically connected to the contacts on the second electronic component, and the conductive sheet 12 is electrically connected to the contacts on the first electronic component through the first connector 13, thereby realizing the electrical connection between the first electronic component and the second electronic component.
[0064] Furthermore, the second ejector pin 143, the connector 142, and the conductive sheet 12 are all made of conductive metal; for example, the conductive metal can be copper, silver, aluminum, or aluminum alloy, etc.
[0065] Please see Figure 3 In some embodiments, the fixing body 141 is provided with a receiving groove, and the second ejector pin 143 is inserted into the receiving groove; the second connecting member 14 further includes a second elastic body 144, which is housed in the receiving groove and sleeved on the second ejector pin 143. One end of the second elastic body 144 is connected to the second ejector pin 143, and the other end of the second elastic body 144 is connected to the fixing body 141. For example, the second elastic body 144 can be a spring.
[0066] Thus, when the second ejector pin 143 abuts against the contact on the second electronic component, the second ejector pin 143 will squeeze the second electronic component. At this time, the second ejector pin 143 will be subjected to the reaction force of the second electronic component and squeeze the second elastic body 144, so that the second elastic body 144 releases its elastic force and buffers the second ejector pin 143, thereby achieving flexible abutment between the second ejector pin 143 and the second electronic component, thereby reducing wear between the second ejector pin 143 and the second electronic component. Moreover, the elastic force released by the second elastic body 144 can drive the second ejector pin 143 to always abut against the second electronic component, thereby ensuring the stability of the connection between the second ejector pin 143 and the second electronic component.
[0067] Please see Figure 1 In some embodiments, a shielding baffle 15 is connected to the middle of the housing 11, and there are two conductive sheets 12, two first connectors 13 and two second connectors 14. The two conductive sheets 12 are spaced apart along the first direction on opposite sides of the shielding baffle 15, the two first connectors 13 are spaced apart along the first direction on opposite sides of the shielding baffle 15, and the two second connectors 14 are spaced apart along the first direction on opposite sides of the shielding baffle 15.
[0068] Thus, by setting two sets of conductive sheets 12, a first connector 13, and a second connector 14, and with each set having the same connection method and structure for one conductive sheet 12, the first connector 13, and the second connector 14, two conductive circuits are formed between the first electronic component and the second electronic component. This allows the main contacts and auxiliary contacts on the first electronic component to form a conductive circuit with the main contacts and auxiliary contacts on the second electronic component, thereby forming an auxiliary conductive circuit to further improve the stability of the circuit. At the same time, by setting a shielding baffle 15, electromagnetic interference between the two sets of circuit structures is avoided.
[0069] Please see Figure 1 In this embodiment, the housing 11 includes a housing body 111 and two mounting plates 112. The mounting plates 112 are connected to opposite sides of the housing body 111 in a first direction. The mounting plates 112 are provided with mounting holes so that the radio frequency connector can be installed onto the second electronic component by passing screws through the mounting holes.
[0070] Please refer to the following: Figure 1 and Figure 4 Furthermore, the housing 11 has a cuboid structure and includes two first side plates 1111, two second side plates 1112, a bottom plate 1113, and a top plate 1114. The two first side plates 1111 are spaced apart along a first direction, and the two second side plates 1112 are spaced apart along a third direction. Specifically, the conductive sheet 12 is connected to the second side plate 1112 of the housing 11. The bottom plate 1113 and the top plate 1114 are spaced apart along a second direction. The two first side plates 1111, the two second side plates 1112, the bottom plate 1113, and the top plate 1114 surround to form a cavity 1115. A strip hole 1116 is provided on the top plate 1114. The strip hole 1116 extends along the first direction and communicates with the inside and outside of the cavity 1115. The first connecting member 13 can movably pass through the strip hole 1116 and penetrate through the strip hole 1116 to the top wall. The second connecting member 14 penetrates through the bottom wall and is fixedly connected to the bottom wall.
[0071] Please see Figure 4 Furthermore, the outer shell 111 is also provided with scale lines, which are used to indicate the position of the first connector 13 relative to the shell 11.
[0072] This disclosure also provides an electronic device, which includes the radio frequency connector described above. For example, the electronic device may be a laptop computer.
[0073] The above description is merely a specific embodiment of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A radio frequency connector, characterized by, The radio frequency connector comprises: a shell; a conductive sheet extending along a first direction and connected to an inner wall of the shell; a first connecting member penetrating a shell wall of the shell along a second direction perpendicular to the first direction, the first connecting member being slidably connected to the shell and movably abutting against the conductive sheet, and the first connecting member further extending out of the shell and being used for electrically connecting to an external first electronic element; a second connecting member penetrating the shell wall of the shell along the second direction, a part of the second connecting member being electrically connected to the conductive sheet, and the second connecting member further extending out of the shell and being used for electrically connecting to an external second electronic element; and the first connecting member and the second connecting member are electrically connected through the conductive sheet, so that the first electronic element is electrically connected to the second electronic element.
2. The radio frequency connector of claim 1, wherein, The first connecting member comprises: a movable body accommodated in the shell and slidably connected to the shell along the first direction; an abutting body connected to the movable body and movably abutting against the conductive sheet, and the abutting body being electrically connected to the conductive sheet; a first thimble connected to the movable body and penetrating the shell wall of the shell along the second direction, the first thimble being electrically connected to the abutting body and being used for electrically connecting to the first electronic element.
3. The radio frequency connector according to claim 2, wherein a plurality of limiting protrusions are arranged on the inner wall of the shell, the limiting protrusions being spaced apart along the first direction, and a limiting groove is formed between any two adjacent limiting protrusions; the first connecting member further comprises a resilient support, one end of the resilient support being connected to the movable body, and the other end of the resilient support being used for clamping a corresponding limiting groove.
4. The radio frequency connector of claim 2, wherein, a receiving groove is arranged on the movable body, and the first thimble is inserted into the receiving groove; the first connecting member further comprises a first elastic body, the first elastic body being accommodated in the receiving groove and sleeved on the first thimble, one end of the first elastic body being connected to the first thimble, and the other end of the first elastic body being connected to the movable body.
5. The radio frequency connector of claim 2, wherein, a sliding groove is arranged on the inner wall of the shell and extends along the first direction, and the movable body comprises: a movable part accommodated in the shell and slidably connected to the shell along the first direction; a sliding part connected to the movable part and slidably connected to the sliding groove.
6. The radio frequency connector of claim 2, wherein, the first connecting member further comprises a pushing member clamped to the movable body.
7. The radio frequency connector of claim 1, wherein, The second connecting member comprises: a fixed body penetrating the shell wall of the shell; a connecting body connected to the fixed body and movably abutting against the conductive sheet, and the connecting body being electrically connected to the conductive sheet; a second thimble connected to the fixed body and penetrating the shell wall of the shell along the second direction, the second thimble being electrically connected to the connecting body and being used for electrically connecting to the second electronic element.
8. The radio frequency connector according to claim 7, wherein the fixed body is provided with a receiving groove, and the second thimble is inserted into the receiving groove. The second connecting piece further comprises a second elastic body, the second elastic body is received in the accommodating groove and sleeved on the second thimble, one end of the second elastic body is connected to the second thimble, and the other end of the second elastic body is connected to the fixed body.
9. The radio frequency connector of claim 1, wherein, The middle part of the shell is connected with a shielding baffle, the number of the conductive sheets, the first connecting pieces and the second connecting pieces is two; Two of the conductive sheets are arranged on opposite sides of the shielding baffle along the first direction, two of the first connecting pieces are arranged on opposite sides of the shielding baffle along the first direction, and two of the second connecting pieces are arranged on opposite sides of the shielding baffle along the first direction.
10. An electronic device, comprising: The electronic device comprises the radio frequency connector of any one of claims 1-9.