Electrical connector and electronic device

CN224733201UActive Publication Date: 2026-09-08SHEN ZHEN SHI JUN HAO JING MI GONG YE YOU XIAN GONG SI
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Patent Information

Application Number
CN202521879175.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2026-09-08
Estimated Expiration
2035-08-29

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于提供一种电连接器及电子设备,以解决现有技术中存在的电连接器中用于压紧导通件的抵顶件容易被导通件安装时损坏的技术问题

Benefits of technology

[0021]第二方面,提供一种电子设备,包括电子设备主体和上述的电连接器,所述电连接器设于所述电子设备主体上。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of electric connector and electronic equipment, wherein electric connector includes: connector main body, be equipped on the through piece of connector main body and abutting piece;Wherein, connector body is equipped with intercommunication groove, through piece is inserted in intercommunication groove, abutting piece is abutted on through piece;Intercommunication groove includes along first intercommunication groove section, second intercommunication groove section and third intercommunication groove section, first intercommunication groove section is communicated with first fixed groove, second intercommunication groove section is set in the direction of insertion of through piece abutting piece, so that through piece can avoid abutting piece when inserting to avoid cutting abutting piece, third intercommunication groove section is communicated with second fixed groove.By using the above technical scheme, effectively avoid the problem of cutting, long distance drag abutting piece when through piece inserts, shorten extrusion distance, improve reliability, protect the structural integrity of abutting piece, and reduce the possibility of through piece movement, ensure stability, ensure the reliability of entire product structure.
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Description

Technical Field

[0001] This utility model relates to the technical field of electronic devices, and more specifically, to an electrical connector and an electronic device. Background Technology

[0002] In many fields such as electronic equipment, power systems, new energy vehicles, and industrial automation, electrical connectors are the core components for connecting and disconnecting circuits. Their performance stability, reliability, and service life directly affect the normal operation of the entire system.

[0003] Existing electrical connectors typically include a connector body, electrical connectors disposed on the connector body, conductive elements for electrically connecting different electrical connectors, and abutting elements. The connector body generally has connecting slots for accommodating the electrical connectors and connecting slots for inserting the conductive elements and connecting the connecting slots.

[0004] However, the existing through-slot design of electrical connectors has certain flaws. When the conductive element is inserted along the through-slot, it is prone to interfering with the abutment element, leading to cutting, dragging, and squeezing of the abutment element. This not only damages the abutment element, rendering it unable to effectively abut the conductive element, resulting in poor stability and easy displacement of the conductive element, but it may also generate debris. If this debris enters the connector, it will further accelerate the wear of components and even cause safety hazards such as short circuits, seriously reducing the service life and reliability of the electrical connector. Utility Model Content

[0005] The purpose of this utility model is to provide an electrical connector and electronic device to solve the technical problem in the prior art where the abutment used to press the conductive element in the electrical connector is easily damaged during the installation of the conductive element.

[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0007] In a first aspect, an electrical connector is provided, comprising:

[0008] The connector body, the conductive element disposed on the connector body, and the abutment element for pressing the conductive element onto the connector body;

[0009] The connector body has a connecting groove, the conductive member is inserted into the connecting groove, and the abutting member is located on the side of the conductive member opposite to the bottom of the connecting groove and abuts against the conductive member. The connecting groove includes a first connecting groove segment, a second connecting groove segment, and a third connecting groove segment that are sequentially connected along the insertion direction of the conductive member. The first connecting groove segment is connected to the first fixing groove. The second connecting groove segment is arranged to avoid the abutting member in the insertion direction of the conductive member, so that the conductive member can avoid the abutting member during insertion to avoid cutting the abutting member. The third connecting groove segment is connected to the second fixing groove.

[0010] By segmenting the connecting groove and adding a second connecting groove segment to avoid the abutment, the problems of cutting and dragging the abutment over a long distance during the insertion of the conductor are effectively avoided. This shortens the pressing distance, improves reliability, and protects the structural integrity of the abutment, enabling it to continuously and reliably press the conductor onto the electrical connector body, ensuring the stability of the conductor. At the same time, it avoids safety hazards such as accelerated component wear and short circuits caused by debris generated during cutting, extends the service life of the electrical connector, improves its overall reliability, and effectively solves the defects existing in the prior art.

[0011] In one embodiment, the electrical connector further includes a first fixing member and a second fixing member spaced apart on the connector body and used for connection with a conductive member, wherein the abutting member is located between the first fixing member and the second fixing member.

[0012] In one embodiment, the connector body is provided with a first insulating member and a second insulating member spaced apart. The first insulating member is provided with a first fixing groove for accommodating the first fixing member, and the second insulating member is provided with a second fixing groove for accommodating the second fixing member.

[0013] In one embodiment, the depth of the first connecting groove segment is equal to the depth of the third connecting groove segment, and the depth of the second connecting groove segment is greater than the depth of the first connecting groove segment.

[0014] In one embodiment, a first transition section is connected between the first connecting slot segment and the second connecting slot segment, and the first transition section is inclined from the first connecting slot segment toward the second connecting slot segment; a second transition section is connected between the second connecting slot segment and the third connecting slot segment, and the second transition section is inclined from the second connecting slot segment toward the third connecting slot segment.

[0015] In one embodiment, in the insertion direction, the length of the first connecting slot segment is greater than the length of the third connecting slot segment.

[0016] In one embodiment, the connecting groove is provided with an inlet slot, which is located on the front side of the insertion direction and is gradually expanding.

[0017] In one embodiment, the connecting groove is provided with a limiting structure opposite to the inlet groove, the limiting structure being used to limit the movement of the conductive member in the insertion direction.

[0018] In one embodiment, the abutting member includes an abutting body and an abutting tip disposed on the abutting body; the abutting body is located on the side of the connector body opposite to the bottom of the communicating groove, and the abutting tip is disposed on the side of the abutting body close to the conductive member, and the abutting tip is used to abut the conductive member.

[0019] In one embodiment, the conductive member has a fixing hole, and the first fixing member and the second fixing member are respectively inserted into the fixing hole.

[0020] In one embodiment, the connector body has two rows of slot structures, each row of slot structures including a first fixing slot, a second fixing slot, and a connecting slot corresponding to and connecting the first fixing slot and the second fixing slot.

[0021] In a second aspect, an electronic device is provided, comprising an electronic device body and the aforementioned electrical connector, wherein the electrical connector is disposed on the electronic device body.

[0022] By adopting the above technical solution, the electronic device of this embodiment, in addition to having the advantages of the electrical connector in the above embodiments, also has the advantage of strong electrical connection stability. Attached Figure Description

[0023] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0024] Figure 1 This is the three-dimensional structure of the electrical connector provided in this embodiment of the utility model. Figure 1 .

[0025] Figure 2 This is a cross-sectional view of the electrical connector provided in an embodiment of the present invention. Figure 1 .

[0026] Figure 3 This is the three-dimensional structure of the electrical connector provided in this embodiment of the utility model. Figure 2 .

[0027] Figure 4 This is a cross-sectional view of the electrical connector provided in an embodiment of the present invention. Figure 2 .

[0028] The labels for the attached figures are as follows:

[0029] 1. Connector body; 2. First fixing component; 3. Second fixing component; 4. Conducting component; 5. Abutting component;

[0030] 11. First fixing groove; 12. Second fixing groove; 13. Connecting groove; 14. First insulating component; 15. Second insulating component; 51. Abutting body; 52. Abutting top; 20. Fixing hole;

[0031] 131. First connecting groove section; 132. Second connecting groove section; 133. Third connecting groove section; 134. First transition section; 135. Second transition section; 136. Inlet groove; 137. Limiting structure;

[0032] X, Insertion direction. Detailed Implementation

[0033] To make the technical problems, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0034] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be located directly on or indirectly on the other component. When a component is referred to as "connected to" another component, it can be directly or indirectly connected to the other component.

[0035] It should be understood that the terms "length", "width", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and do not indicate that the device or element must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0036] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating relative importance or the number of technical features. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified. The specific implementation of this utility model is described in more detail below with reference to specific embodiments:

[0037] like Figure 1 and Figure 2 As shown, an embodiment of this utility model provides an electrical connector, comprising:

[0038] Connector body 1, conductive element 4 disposed on connector body 1, and abutting element 5 for pressing conductive element 4 onto connector body;

[0039] The connector body has a connecting groove 13, in which the conductive member 4 is inserted. The abutment member 5 is located on the side of the conductive member 4 facing away from the bottom of the connecting groove 13 and abuts against the conductive member 4. The connecting groove 13 includes a first connecting groove segment 131, a second connecting groove segment 132, and a third connecting groove segment 133 connected sequentially along the insertion direction of the conductive member 4. The first connecting groove segment 131 communicates with the first fixing groove 11. The second connecting groove segment 132 is positioned to avoid the abutment member 5 in the insertion direction of the conductive member 4, so that the conductive member 4 can avoid the abutment member 5 during insertion to prevent cutting the abutment member 5. The third connecting groove segment 133 communicates with the second fixing groove 12. Please refer to the following: Figure 3 and Figure 4 Specifically, the electrical connector comprises a connector body 1, a conductive member 4, and a stop member 5. The stop member 5 presses the conductive member 4 onto the connector body 1. Simultaneously, the connector body 1 has a connecting groove 13 into which the conductive member 4 can be inserted. The connecting groove 13 includes a first connecting groove segment 131, a second connecting groove segment 132, and a third connecting groove segment 133, which are sequentially connected along the insertion direction X of the conductive member 4. The first connecting groove segment 131 is connected to the first fixing groove 11, the second connecting groove segment 132 is positioned to avoid the stop member 5 along the insertion direction X of the conductive member 4, and the third connecting groove segment 133 is connected to the second fixing groove 12.

[0040] It needs to be further explained that the connector body 1 can be a plastic body, the conductive part 4 can be a metal plate, and the abutting part 5 can be a plastic structure provided on the connector body 1.

[0041] The installation principle of the electrical connector in the above embodiment is as follows: when it is necessary to realize the electrical connection between the two ends of the conductive member 4, the conductive member 4 is inserted in the order of the first connecting groove segment 131, the second connecting groove segment 132, and the third connecting groove segment 133 of the connecting groove 13. First, the conductive member 4 is inserted into the connecting groove 13 at a relatively inclined position, and when the conductive member 4 reaches the second connecting groove segment 132, it gradually straightens and becomes parallel to the bottom of the connecting groove 13. Since the second connecting groove segment 132 avoids the abutment member 5 in the insertion direction X of the conductive member 4, the conductive member 4 can avoid the abutment member 5 during the insertion process, avoiding cutting, dragging, and squeezing of the abutment member 5. When the conductive member 4 is inserted in place, the abutment member 5 plays a role at this time, pressing the conductive member 4 tightly on the connector body 1, ensuring the stability of the conductive member 4 and reducing the displacement of the conductive member 4.

[0042] By segmenting the connecting groove 13 and setting a second connecting groove segment 132 to avoid the abutment 5, the problems of cutting and dragging the abutment 5 over a long distance during the insertion of the conductor 4 are effectively avoided, the pressing distance is shortened, reliability is improved, and the structural integrity of the abutment 5 is protected, enabling it to continuously and reliably press the conductor 4 onto the connector body 1, ensuring the stability of current transmission. At the same time, it avoids safety hazards such as accelerated wear of components and short circuits caused by debris generated by cutting, extends the service life of the entire product structure, improves its overall reliability, and effectively solves the defects existing in the prior art.

[0043] In one embodiment, the electrical connector further includes a first fixing member 2 and a second fixing member 3 spaced apart on the connector body 1 and used for connection with the conductive member 4, and a stop member 5 is located between the first fixing member 2 and the second fixing member 3.

[0044] Specifically, the two ends of the conductive member 4 are connected to the first fixing member 2 and the second fixing member 3, respectively.

[0045] By adopting the above technical solution, the first fixing member 2 and the second fixing member 3 can fix the electrical connector to both ends of the conductive member 4.

[0046] In one embodiment, a first insulating member 14 and a second insulating member 15 are provided on the connector body 1 at intervals. The first insulating member 14 is provided with a first fixing groove 11 for accommodating the first fixing member 2, and the second insulating member 15 is provided with a second fixing groove 12 for accommodating the second fixing member 3.

[0047] By adopting the above technical solution, the first insulating member 14 and the second insulating member 15 can insulate the first fixing member 2 and the second fixing member 3, avoiding large current breakdown. At the same time, the first fixing groove 11 and the second fixing groove 12 can form an adjustment space, so that when the first fixing member 2 and the second fixing member 3 are fixedly connected to the conductor 4, the first fixing groove 11 and the second fixing groove 12 can adapt to the insertion depth of the first fixing member 2 and the second fixing member 3 relative to the conductor 4.

[0048] In one embodiment, the depth of the first connecting groove segment 131 is equal to the depth of the third connecting groove segment 133, and the depth of the second connecting groove segment 132 is greater than the depth of the first connecting groove segment 131.

[0049] Specifically, in this embodiment, the depth of the first connecting groove segment 131 is further defined as equal to the depth of the third connecting groove segment 133, and the depth of the second connecting groove segment 132 is greater than the depth of the first connecting groove segment 131. The groove depth direction Y is shown in the figure. The first fixing member 2 and the second fixing member 3 are respectively disposed in the first fixing groove 11 and the second fixing groove 12. The conductive member 4 is inserted into the connecting groove 13 to realize the electrical connection between the first fixing member 2 and the second fixing member 3. The abutting member 5 is located between the two electrical connectors to press the conductive member 4 onto the connector body 1. The first connecting groove segment 131 is connected to the first fixing groove 11. The second connecting groove segment 132 avoids the abutting member 5 in the insertion direction X of the conductive member 4. The third connecting groove segment 133 is connected to the second fixing groove 12.

[0050] Its working principle is as follows: when the conductive member 4 is inserted along the connecting groove 13, it first passes through the first connecting groove section 131, which is connected to the first fixed groove 11. Since the groove depth of the first connecting groove section 131 is the same as that of the third connecting groove section 133, it can ensure the stability of the connection between the two ends of the conductive member 4 and the corresponding electrical connector. Then it enters the second connecting groove section 132, which has a greater groove depth. Because of its greater depth, this groove section can provide more space for the abutment 5 to avoid contact with the abutment 5 on the insertion path of the conductive member 4, ensuring that the conductive member 4 passes smoothly without contacting or cutting with the abutment 5. Finally, it connects to the second fixed member 3 through the third connecting groove section 133. At this time, the abutment 5 presses the conductive member 4 tightly, ensuring the stability of the conductive member 4.

[0051] By setting the depth of the second connecting groove segment 132 to be greater than that of the first and third connecting groove segments 133, while ensuring stable cooperation between the two ends of the conductive member 4 and the electrical connector, the avoidance effect on the abutment member 5 is further optimized. This can more reliably prevent the conductive member 4 from cutting the abutment member 5 during insertion, strengthen the integrity of the abutment member 5 structure and the continuity of its function, thereby more effectively ensuring the stability of current transmission, reducing component wear and short circuit risks caused by debris, further extending the service life of the connector and improving its reliability, and making the overall structural design more reasonable and efficient.

[0052] In one embodiment, a first transition section 134 is connected between the first connecting groove segment 131 and the second connecting groove segment 132, and the first transition section 134 is inclined from the first connecting groove segment 131 toward the second connecting groove segment 132; a second transition section 135 is connected between the second connecting groove segment 132 and the third connecting groove segment 133, and the second transition section 135 is inclined from the second connecting groove segment 132 toward the third connecting groove segment 133.

[0053] Specifically, this embodiment further includes a first transition section 134 and a second transition section 135. The first transition section 134 is connected between the first connecting groove section 131 and the second connecting groove section 132 and is inclined from the first connecting groove section 131 toward the second connecting groove section 132. The second transition section 135 is connected between the second connecting groove section 132 and the third connecting groove section 133 and is inclined from the second connecting groove section 132 toward the third connecting groove section 133.

[0054] Its working principle is as follows: when the conductor 4 is inserted along the connecting groove 13, it first passes through the first connecting groove section 131 connected by the first fixing groove 11, and then smoothly transitions to the second connecting groove section 132 through the inclined first transition section 134. Due to the avoidance design of the abutment 5 in the second connecting groove section 132, the conductor 4 can avoid the abutment 5 here to avoid cutting. Then, it smoothly transitions from the second connecting groove section 132 to the third connecting groove section 133 through the inclined second transition section 135, and finally connects with the second fixing member 3 in the second fixing groove 12. At this time, the abutment 5 presses the conductor 4 onto the two electrical connectors to ensure good electrical contact and achieve stable current transmission.

[0055] By adopting the above technical solution and setting the first transition section 134 and the second transition section 135, the movement of the conductive member 4 between each of the connecting slots 13 is smoother and more fluid, reducing jamming and resistance during insertion, reducing wear between the conductive member 4 and the slot, and further optimizing the avoidance path of the abutment member 5, ensuring that the conductive member 4 can more reliably avoid the abutment member 5, protecting the structural integrity of the abutment member 5 to maintain its clamping effect, thereby more effectively ensuring the stability of current transmission, reducing safety hazards caused by component wear and debris, extending the service life of the connector, improving overall reliability, and making the structural design more in line with actual usage requirements.

[0056] In one embodiment, in the insertion direction X, the length of the first connecting slot segment 131 is greater than the length of the third connecting slot segment 133.

[0057] Specifically, when the conductive member 4 is inserted along the connecting groove 13, it first enters the first connecting groove section 131, which has a longer groove length, to form a more sufficient contact guide with the first fixing member 2 in the first fixing groove 11, ensuring the stability of the initial connection. Then, it passes through the second connecting groove section 132, which avoids cutting with the abutment member 5. Subsequently, it enters the third connecting groove section 133, which has a shorter groove length, and quickly completes the connection with the second fixing member 3 in the second fixing groove 12. At this time, the abutment member 5 presses the conductive member 4 tightly onto the two electrical connectors, ensuring stable current transmission.

[0058] By setting the length of the first connecting slot 131 to be greater than that of the third connecting slot 133, the conductive member 4 obtains a longer guiding distance when connected to the first fixing member 2, which improves the accuracy and stability of the initial connection. Meanwhile, the shorter length of the third connecting slot 133 helps the conductive member 4 to quickly complete the connection with the second fixing member 3, improving the overall insertion efficiency. At the same time, in conjunction with the avoidance design of the second connecting slot 132, the connection process of the conductive member 4 is further optimized while ensuring that the cutting of the abutment member 5 is avoided. This reduces connection deviation and insertion resistance, enhances the reliability of current transmission, extends the service life of the connector, and achieves a better balance between functionality and efficiency in the structural design.

[0059] In one embodiment, the connecting groove 13 is provided with an inlet groove 136, which is located on the front side of the insertion direction X and is gradually expanding.

[0060] Specifically, its working principle is as follows: when the conductive member 4 needs to be inserted into the connecting groove 13, the gradually expanding entry groove 136 can play a good guiding role for the conductive member 4, making it easier for the conductive member 4 to be aligned with the groove and enter smoothly. Subsequently, the conductive member 4 passes through the first connecting groove section 131, the second connecting groove section 132 which avoids the abutment member 5, and the third connecting groove section 133 in sequence. Both ends are connected to the first fixing member 2 and the second fixing member 3 respectively. At this time, the abutment member 5 presses the conductive member 4 tightly on the two electrical connectors to ensure stable current transmission.

[0061] By setting a gradually expanding inlet slot 136, the alignment difficulty during insertion of the conductive component 4 is greatly reduced, making the insertion process more convenient and smooth. This reduces insertion resistance and component wear caused by alignment deviations. At the same time, the reasonable design of each section of the connecting slot 13, especially the avoidance of the abutment component 5 by the second connecting slot section 132, further improves the efficiency and reliability of the conductive component 4 insertion while ensuring that cutting of the abutment component 5 is avoided. This ensures the stability of current transmission, extends the service life of the connector, and makes the overall structure more in line with actual operational needs.

[0062] In one embodiment, the connecting groove 13 is provided with a limiting structure 137 opposite to the inlet groove 136, and the limiting structure 137 is used to limit the movement of the connecting member 4 in the insertion direction X.

[0063] Specifically, its working principle is as follows: when the conductor 4 is inserted into the connecting groove 13 through the gradually expanding inlet 136, it passes through the first connecting groove section 131, the second connecting groove section 132 which avoids the abutment 5, and the third connecting groove section 133 in sequence. During the insertion process, when the conductor 4 moves to the preset position, the limiting structure 137 opposite to the inlet 136 will block the conductor 4, restricting it from continuing to move along the insertion direction X, so that the conductor 4 is pushed out of the safety edge, ensuring that the two ends of the conductor 4 can be accurately connected to the first fixing member 2 and the second fixing member 3.

[0064] The limiting structure 137 can precisely control the insertion position of the conductive part 4, avoiding the connection effect with the electrical connector due to over-insertion or under-insertion of the conductive part 4, effectively improving the accuracy and stability of the connection. At the same time, in conjunction with the guiding effect of the gradually expanding inlet slot 136 and the avoidance design of the second connecting slot segment 132 on the abutment part 5, the insertion process of the conductive part 4 is both convenient and smooth, and can be accurately positioned, reducing problems such as poor contact caused by position deviation, further enhancing the reliability of current transmission, extending the service life of the connector, and achieving a better balance between ease of operation and connection accuracy in the overall structure.

[0065] In one embodiment, the abutting member 5 includes an abutting body 51 and an abutting tip 52 disposed on the abutting body 51; the abutting body 51 is located on the side of the connector body 1 opposite to the first fixing member 2 and the second fixing member 3, and the abutting tip 52 is disposed on the side of the abutting body 51 close to the conductive member 4, and the abutting tip 52 is used to abut the conductive member 4.

[0066] Specifically, when the conductor 4 is inserted into the inlet 136 of the connecting groove 13 and passes through each segment of the connecting groove 13 in sequence, and finally its two ends are connected to the first fixing member 2 and the second fixing member 3 respectively, the abutting part 52 of the abutting member 5 will apply pressure to the conductor 4 from the side close to the conductor 4 under the action of the abutting body 51, pressing the conductor 4 tightly onto the first fixing member 2 and the second fixing member 3. Since the abutting body 51 is located on the side of the connector body 1 opposite to the first fixing member 2 and the second fixing member 3, it can provide stable support for the abutting part 52 and ensure the effective transmission of the abutting force. At the same time, the avoidance design of the second connecting groove segment 132 to the abutting member 5 ensures that the conductor 4 will not interfere with or cut the abutting part 52 during the insertion process.

[0067] The abutting member 5 applies abutting force precisely to the conductive member 4 through the abutting tip 52, ensuring good contact between the conductive member 4 and the connector body 1 and improving the overall stability of the product. At the same time, this structural design, in conjunction with the avoidance function of the second connecting groove section 132, can more reliably avoid cutting the abutting tip 52 when the conductive member 4 is inserted, protect the structural integrity of the abutting member 5, extend its service life, and thus enhance the reliability and durability of the entire electrical connector, making the structural design more targeted and practical.

[0068] In one embodiment, the conductor 4 has a fixing hole 20, and the first fixing member 2 and the second fixing member 3 are respectively inserted into the fixing hole 20.

[0069] By using the fixing hole 20 in conjunction with the first fixing member 2 and the second fixing member 3, the conductive member 4 is detachably and fixedly connected to the first fixing member 2 and the second fixing member 3.

[0070] In one embodiment, the connector body 1 is provided with two rows of slot structures, each row of slot structures including a first fixing slot 11, a second fixing slot 12 and a connecting slot 13 corresponding to and connecting the first fixing slot 11 and the second fixing slot 12.

[0071] The technical advantage of this solution lies in the fact that by setting up a two-row slot structure, the electrical connector can simultaneously achieve two independent current connections, which greatly improves the integration and space utilization of the connector and meets the needs of multi-circuit circuit connections. Each row of slot structures retains the advantages of the aforementioned structures, such as enhanced robustness through threaded connections, tight contact ensured by the abutment 5, and the second connecting slot section 132 avoiding cutting the abutment 5. This allows both rows of structures to maintain stable and reliable performance when working independently, thereby improving the overall applicability and practicality of the connector. At the same time, the increase in structure does not reduce the connection quality and service life of a single circuit.

[0072] Secondly, an electronic device is provided, including an electronic device body and the aforementioned electrical connector, wherein the electrical connector is disposed on the electronic device body.

[0073] By adopting the above technical solution, the electronic device of this embodiment, in addition to having the advantages of the electrical connector in the above embodiments, also has the advantage of strong electrical connection stability.

[0074] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. An electrical connector, characterized in that, include: The connector body, the conductive element disposed on the connector body, and the abutment element for pressing the conductive element onto the connector body; The connector body has a connecting groove, the conductive member is inserted into the connecting groove, and the abutting member is located on the side of the conductive member opposite to the bottom of the connecting groove and abuts against the conductive member. The connecting groove includes a first connecting groove segment, a second connecting groove segment, and a third connecting groove segment that are sequentially connected along the insertion direction of the conductive member. The first connecting groove segment is connected to the first fixing groove. The second connecting groove segment is arranged to avoid the abutting member in the insertion direction of the conductive member, so that the conductive member can avoid the abutting member during insertion to avoid cutting the abutting member. The third connecting groove segment is connected to the second fixing groove.

2. The electrical connector as claimed in claim 1, characterized in that, The electrical connector further includes a first fixing member and a second fixing member spaced apart on the connector body and used for connection with the conductive member, and the abutting member is located between the first fixing member and the second fixing member.

3. The electrical connector as described in claim 1, characterized in that, The connector body is provided with a first insulating member and a second insulating member at intervals. The first insulating member is provided with a first fixing groove for accommodating the first fixing member, and the second insulating member is provided with a second fixing groove for accommodating the second fixing member.

4. The electrical connector as claimed in claim 1, characterized in that, The depth of the first connecting slot is equal to the depth of the third connecting slot, and the depth of the second connecting slot is greater than the depth of the first connecting slot; and / or, in the insertion direction, the length of the first connecting slot is greater than the length of the third connecting slot.

5. The electrical connector as claimed in claim 1, characterized in that, A first transition section connects the first connecting groove segment and the second connecting groove segment, and the first transition section is inclined from the first connecting groove segment toward the second connecting groove segment; a second transition section connects the second connecting groove segment and the third connecting groove segment, and the second transition section is inclined from the second connecting groove segment toward the third connecting groove segment.

6. The electrical connector as claimed in any one of claims 1 to 5, characterized in that, The connecting groove is provided with an inlet, the inlet is located on the front side of the insertion direction, and the inlet is gradually widening; and / or, The connecting groove is provided with a limiting structure opposite to the inlet groove, and the limiting structure is used to limit the movement of the conductive member in the insertion direction.

7. The electrical connector as claimed in any one of claims 1 to 5, characterized in that, The abutting member includes an abutting body and an abutting tip disposed on the abutting body; the abutting body is located on the side of the connector body opposite to the bottom of the communicating groove, and the abutting tip is disposed on the side of the abutting body close to the conductive member, and the abutting tip is used to abut the conductive member.

8. The electrical connector as claimed in any one of claims 1 to 5, characterized in that, The conductive component has two fixing holes, and the first fixing component and the second fixing component are respectively inserted into the fixing holes.

9. The electrical connector as claimed in any one of claims 1 to 5, characterized in that, The connector body has two rows of slot structures. Each row of slot structures includes a first fixing slot, a second fixing slot, and a connecting slot that connects the first fixing slot and the second fixing slot.

10. An electronic device, characterized in that, It includes an electronic device body and an electrical connector as described in any one of claims 1 to 9, wherein the electrical connector is disposed on the electronic device body.