Connector, insertion part, receiving part, and electronic product

By introducing elastic components and guide surface design into the connector, combined with push block and knob operation, the problem of connector falling off under external force interference is solved, realizing the reliability and convenience of the connector, and ensuring stable power or signal transmission.

CN224053531UActive Publication Date: 2026-03-27HUAWEI TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-26
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing connectors are easily detached due to external interference when connected, causing power or signal transmission interruptions and affecting reliability.

Method used

A connector is designed that automatically locks and unlocks the insertion part by setting an elastic component and a guide surface between the insertion part and the receiving part, and by utilizing the design of the gradually decreasing distance between the guide surface and the geometric center line of the socket. Combined with the operation of the push block and the knob, the smoothness of the insertion part during insertion and removal is ensured.

Benefits of technology

It improves the reliability of the connector, prevents the insertion part from falling off when connected, ensures stable power or signal transmission, and facilitates user operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of connectors. The utility model discloses a connector. The connector comprises an insertion part and a receiving part, a clamping groove is formed in the side wall of the inserting part. The receiving part is provided with a jack which is used for accommodating the insertion part. A containing groove is formed in the side wall of the inserting opening, an elastic assembly is arranged in the containing groove, the end, facing the inserting opening, of the elastic assembly is a clamping end, and the clamping end can stretch into the inserting opening under the elastic force effect of the elastic assembly. The end face of the clamping end is provided with a guide face which is close to the opening direction of the socket. A receding groove is formed in the outer wall of the receiving part, a push block is arranged in the receding groove, and the push block can move along a specific movement track. When the push block is located at a first position on the motion trail, the push block is in contact with the clamping end, and the clamping end is moved out of the socket. According to the utility model, the insertion part can be prevented from falling off from the receiving part, thereby guaranteeing the transmission of electric power or signals, and improving the use reliability. The invention also discloses an insertion part, a receiving part and an electronic product.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of connectors, in particular to a connector, an insertion part, a receiving part and an electronic product. BACKGROUND

[0002] At present, connectors are usually used in the field of communication technology to charge devices or transmit signals. The connector usually comprises an insertion part (commonly known as a male head) and a receiving part (commonly known as a female head). The insertion part can be inserted into the receiving part to connect the insertion part and the receiving part, so as to realize power transmission or signal transmission.

[0003] However, if the current connector is disturbed by external force in the connected state, the insertion part often falls off from the receiving part, which causes the connector to be disconnected and affects the transmission of power or signals. SUMMARY

[0004] The present application provides a connector, an insertion part, a receiving part and an electronic product. The present application can prevent the insertion part from falling off from the receiving part, thereby ensuring the transmission of power or signals and improving the reliability of use.

[0005] In a first aspect, the present application provides a connector comprising an insertion part and a receiving part.

[0006] The side wall of the insertion part is provided with a clamping groove.

[0007] The receiving part is provided with a socket for accommodating the insertion part. The side wall of the socket is provided with an accommodation groove, and the accommodation groove is provided with an elastic assembly. One end of the elastic assembly facing the socket is a clamping end, which can extend into the socket under the elastic force of the elastic assembly. The shape of the clamping end at least partially matches the shape of the clamping groove. The end face of the clamping end is provided with a guide surface, which is close to the opening direction of the socket. The distance between the guide surface and the geometric center line of the socket gradually decreases along the insertion direction of the insertion part. The outer wall of the receiving part is provided with a displacement slot, which at least partially communicates with the accommodation groove. The displacement slot is provided with a push block, which can move along a specific movement track. When the push block is located at a first position on the movement track, the push block is in contact with the clamping end, and the clamping end moves out of the socket.

[0008] When the insertion part is inserted into the socket, the insertion part can be in contact with the guide surface. Since the distance between the guide surface and the geometric center line of the socket gradually decreases along the insertion direction of the insertion part, the insertion part can exert a force on the guide surface in a direction away from the socket. The clamping end moves into the accommodation groove under the pushing force of the force, thereby avoiding the clamping end hindering the movement of the insertion part.

[0009] When the insertion part is inserted to the preset position, the connector is in the connected state. At this time, the clamping groove on the insertion part corresponds to the position of the clamping end, and the insertion part no longer exerts force on the clamping end. The elastic assembly restores the elastic deformation in the absence of external force and pushes the clamping end to be inserted into the clamping groove, so that the clamping end is clamped with the clamping groove. When the clamping end is clamped with the clamping groove, the clamping end can lock the insertion part to avoid the insertion part from being pulled out of the insertion opening.

[0010] When the user needs to pull out the insertion part from the insertion opening, the user only needs to push the push block to the first position, and the push block can push the clamping end to move away from the insertion opening. When the push block is pushed to the first position, the clamping end is moved out of the insertion opening, and the locking of the insertion part is released. Then, the user can smoothly pull out the insertion part from the insertion opening to disconnect the connector.

[0011] When the insertion part is pulled out of the insertion opening, the user no longer exerts force on the push block. In the absence of external force, the elastic assembly restores the elastic deformation, and the elastic assembly pushes the clamping end to move towards the insertion opening until the clamping end is inserted into the insertion opening again. In the process of moving the clamping end towards the insertion opening, the clamping end also pushes the push block to move along the movement track away from the first position. When the clamping end is inserted into the insertion opening and stops moving, the push block stays at the second position on the movement track.

[0012] The present application sets the elastic assembly and sets the guide surface on the end surface of the clamping end. When the insertion part needs to be inserted into the insertion opening, the user only needs to make an insertion action to automatically avoid the clamping end from exerting force on the insertion part during the insertion of the insertion part, and to automatically lock the insertion part when the insertion part is inserted to the preset position. Thus, the user can operate conveniently, and the connector in the connected state can be prevented from being disconnected. The transmission of power or signal is ensured, and the reliability of the connector is improved.

[0013] In addition, the present application sets the push block, and the push block can exert force on the clamping end by being pushed to move the clamping end out of the clamping groove, so as to release the locking of the clamping end on the insertion part, and facilitate the user to pull out the insertion part.

[0014] In some implementations of the present application, the connector further includes a knob rotatably arranged on the outer wall of the receiving part, and the push block is arranged on the knob. The movement track is arc-shaped, and the knob can drive the push block to rotate along the movement track. The two endpoints of the movement track are the first position and the second position, respectively. When the push block is located at the second position on the movement track, the clamping end is inserted into the insertion opening. The present application sets the knob to facilitate the user to rotate the push block. When the push block needs to be rotated, the user only needs to rotate the knob.

[0015] In some implementations of the present application, the elastic assembly comprises a slider and an elastic member.

[0016] The slider is arranged in the accommodating groove, the clamping end is located on the slider, and the slider is capable of sliding in the accommodating groove towards or away from the insertion port;

[0017] The elastic member is arranged on the side of the slider away from the insertion port, and the two ends of the elastic member are respectively in abutment with the inner wall of the accommodating groove and the slider.

[0018] In some implementations of the present application, the slider comprises a connecting portion and a clamping portion, the connecting portion is located between the clamping portion and the elastic member, the side of the connecting portion facing the insertion port is a contact surface, and the clamping portion protrudes from the contact surface; when the push block is located at the first position, the push block is in contact with the contact surface.

[0019] In some implementations of the present application, the contact surface is not parallel to the tangential direction of the second position.

[0020] In some implementations of the present application, a limiting protrusion is arranged on the side wall of the accommodating groove, the limiting protrusion is arranged close to the opening of the accommodating groove; when the slider is located at the second position, the contact surface is in contact with the limiting protrusion.

[0021] In some implementations of the present application, the side of the clamping portion facing the insertion port is a first arc surface, the axis of the first arc surface is perpendicular to the insertion direction of the insertion portion, and the first arc surface is curved towards the side away from the connecting portion.

[0022] In some implementations of the present application, the elastic member is a compression spring, the extension direction of the compression spring is perpendicular to the insertion direction of the insertion portion, and the compression spring is elastically deformed when the push block is located at the first position.

[0023] In some implementations of the present application, one clamping groove is arranged on each of the two oppositely arranged side walls of the insertion portion, one accommodating groove is arranged on each of the two oppositely arranged side walls of the insertion port, a slider and an elastic member are arranged in each of the accommodating grooves, and the positions of the two sliders correspond to the positions of the two clamping grooves one by one when the insertion portion is inserted into the insertion port.

[0024] The knob is provided with two push blocks arranged at intervals along the circumference thereof, the knob is capable of rotating between a locked position and an unlocked position, when the knob is rotated to the locked position, the two push blocks are located at the second position, and the two sliders are capable of being clamped with the two clamping grooves into which the insertion port is inserted; when the knob is rotated to the unlocked position, the two push blocks are located at the first position, and the two push blocks are in contact with the sliders corresponding thereto and apply force to the sliders away from the insertion port, so that the two sliders can be removed from the two clamping grooves into which the insertion port is inserted.

[0025] In some implementations of the present application, the outer wall of the push block is provided with a second arc surface, and the second arc surface can be in contact with the sliding block when the push block moves between the first position and the second position. By providing the second arc surface, the friction between the push block and the clamping end can be reduced when the push block is rotated, thereby preventing damage to the device.

[0026] In a second aspect, the present application provides an insertion part for the connector of the first aspect, and the side wall of the insertion part is provided with a clamping groove.

[0027] In a third aspect, the present application provides a receiving part for the connector of the first aspect, and the receiving part is provided with a socket, the side wall of the socket is provided with a containing groove, the containing groove is provided with an elastic assembly, one end of the elastic assembly facing the socket is a clamping end, the clamping end can extend into the socket under the elastic force of the elastic assembly, the socket is used for containing the insertion part, the side wall of the insertion part is provided with a clamping groove, and the shape of the clamping end at least partially matches the shape of the clamping groove. The end face of the clamping end is provided with a guide surface, the guide surface is close to the opening direction of the socket, and the distance between the guide surface and the geometric center line of the socket gradually decreases along the insertion direction of the insertion part. The outer wall of the receiving part is provided with a displacement slot, the displacement slot at least partially communicates with the containing groove, and the displacement slot is provided with a push block, and the push block can move along a specific movement track. When the push block is located at a first position on the movement track, the push block is in contact with the clamping end, and the clamping end is moved out of the socket.

[0028] In some implementations of the present application, a knob is further included, the knob is rotatably arranged on the outer wall of the receiving part, the push block is arranged on the knob, the movement track is arc-shaped, the knob can drive the push block to rotate along the movement track, and two end points of the movement track are respectively the first position and a second position. When the push block is located at the second position on the movement track, the clamping end extends into the socket.

[0029] In some implementations of the present application, the elastic assembly includes a sliding block and an elastic piece.

[0030] The sliding block is arranged in the containing groove, the clamping end is located on the sliding block, and the sliding block can slide in the containing groove towards or away from the socket.

[0031] The elastic piece is arranged on the side of the sliding block away from the socket, and the two ends of the elastic piece are respectively in abutment with the inner wall of the containing groove and the sliding block.

[0032] In some implementations of the present application, the sliding block includes a connecting part and a clamping part, the connecting part is located between the clamping part and the elastic piece, the side surface of the connecting part on the side facing the socket is a contact surface, and the clamping part protrudes from the contact surface; when the push block is located at the first position, the push block is in contact with the contact surface.

[0033] In some implementations of the present application, the contact surface is not parallel to the tangent direction of the second position.

[0034] In some implementations of the present application, the side wall of the accommodating groove is provided with a limiting protrusion, which is arranged close to the opening of the accommodating groove; when the sliding block is in the second position, the contact surface is in contact with the limiting protrusion.

[0035] In some implementations of the present application, the side surface of the clamping portion towards the side of the socket is a first arc surface, the axis of the first arc surface is perpendicular to the insertion direction of the insertion portion, and the first arc surface is curved towards the side away from the connecting portion.

[0036] In some implementations of the present application, the elastic member is a compression spring, the extension direction of the compression spring is perpendicular to the insertion direction of the insertion portion, and the compression spring is elastically deformed when the push block is in the first position.

[0037] In some implementations of the present application, the two oppositely arranged side walls of the insertion portion are each provided with a clamping groove, the two oppositely arranged side walls of the socket are each provided with an accommodating groove, and each accommodating groove is provided with a sliding block and an elastic member; when the insertion portion is inserted into the socket, the positions of the two sliding blocks correspond to the positions of the two clamping grooves one by one.

[0038] The knob is provided with two push blocks arranged at intervals along the circumference thereof, the knob can rotate between a locked position and an unlocked position, when the knob is rotated to the locked position, the two push blocks are both in the second position, and the two sliding blocks can be clamped with the two clamping grooves into which the socket is inserted; when the knob is rotated to the unlocked position, the two push blocks are both in the first position, and the two push blocks are in contact with the sliding blocks corresponding thereto and apply forces to the sliding blocks in the direction away from the socket, so that the two sliding blocks can be moved out of the two clamping grooves into which the socket is inserted.

[0039] In some implementations of the present application, the outer wall of the push block is provided with a second arc surface, which can be in contact with the sliding block when the push block moves between the first position and the second position.

[0040] In a fourth aspect, the present application provides an electronic product, which comprises a main body and a receiving portion as in the third aspect. BRIEF DESCRIPTION OF DRAWINGS

[0041] Figure 1 Fig. 1 shows a schematic view of a connector in some embodiments;

[0042] Fig. 2(a) shows a schematic view of a receiving portion of a connector in some other embodiments;

[0043] Fig. 2(b) shows a schematic view of an insertion portion of a connector in some other embodiments;

[0044] Fig. 2(c) shows a cross-sectional view of a connector in a connected state in some other embodiments;

[0045] Figure 3(a) shows a schematic view of the connector in a connected state according to some embodiments of the application;

[0046] Figure 3(b) shows a schematic view of the connector in a disconnected state according to some embodiments of the application;

[0047] Figure 4(a) shows a cross-sectional view of the receiving portion of Figure 3(a) in the A-A direction when the push block is in the second position;

[0048] Figure 4(b) shows a cross-sectional view of the receiving portion of Figure 3(a) in the A-A direction when the push block is in the first position;

[0049] Figure 5(a) shows a schematic view of the resilient assembly and the socket of Figure 4(a) in the B direction; Figure 1

[0050] Figure 5(b) shows a schematic view of the resilient assembly and the socket of Figure 4(a) in the B direction;

[0051] Figure 6(a) shows a cross-sectional view of the insertion portion and the receiving portion of Figure 3(a) in the A-A direction when the push block is in the first position;

[0052] Figure 6(b) shows a cross-sectional view of the insertion portion and the receiving portion of Figure 3(a) in the A-A direction when the push block is in the second position;

[0053] Figure 7(a) shows a schematic view of the push block and the resilient assembly of Figure 6(a) in the C direction;

[0054] Figure 7(b) shows a schematic view of the push block and the resilient assembly of Figure 6(b) in the D direction;

[0055] Figure 8 Figure 8 shows a perspective view of Figure 4(a);

[0056] Figure 9 Figure 9 shows a schematic view of the slider according to some embodiments of the application;

[0057] Figure 10(a) shows a schematic view of the push block and the resilient assembly of Figure 6(a) in the C direction when there are multiple push blocks;

[0058] Figure 10(b) shows a schematic view of the push block and the resilient assembly of Figure 6(b) in the D direction when there are multiple push blocks;

[0059] Figure 11 Figure 11 shows a schematic view of the knob according to some embodiments of the application;

[0060] Figure 12 Figure 12 shows a schematic view of the insertion portion according to some embodiments of the application;

[0061] Figure 13 Figure 13 shows a schematic view of the receiving portion according to some embodiments of the application;​

[0062] Figure 14 A schematic diagram of an electronic device in some embodiments of the present application is shown. DETAILED DESCRIPTION

[0063] For the purpose of making the purpose, technical solutions and advantages of the present application clearer, the embodiments of the present application will be further described in detail below with reference to the drawings.

[0064] The present application provides a connector which can be applied to wearable devices such as XR glasses and other electronic devices. The present application will be described below with the connector applied to XR glasses as an example.

[0065] XR glasses include AR glasses, VR glasses, MR glasses and other categories. Due to the limitations of power consumption, weight and other factors, individual components on the glasses sometimes separate from the main body of the glasses. For ease of description, the components that can be separated from the main body of the XR glasses will be referred to as separated components in the following. Exemplarily, the separated components can be power supplies or signal processing modules, etc. In order to realize charging or signal transmission of the XR glasses, two optional embodiments are provided below, which can wirelessly connect the main body of the glasses with the separated components.

[0066] The first optional embodiment provides a connector 100a. The structure of the connector 100a is shown in Figure 1 The connector 100a includes an insertion part 1a and a receiving part 2a. Among them, the insertion part 1a is commonly known as a male head, and the receiving part 2a is commonly known as a female head. The insertion part 1a is connected with the separated component, and the receiving part 2a is connected with the main body of the glasses. The receiving part 2a is provided with a socket 21a, and the insertion part 1a can be at least partially inserted into the socket 21a, so as to realize power transmission or signal transmission between the main body of the glasses and the separated component. However, in the present embodiment, the insertion part 1a is prone to wear after long-term use, which causes the connection between the insertion part 1a and the receiving part 2a to be loose. When the connector 100a in the connected state is disturbed by external force, the insertion part 1a is easy to come out of the socket 21a, which causes the connector 100a to be disconnected, thereby affecting the transmission of power or signal and poor reliability.

[0067] The second alternative embodiment provides a connector 100b. The connector 100b comprises an insertion part 1b and a receiving part 2b. Fig. 2(a) is a schematic view of the insertion part 1b. Referring to Fig. 2(a), the insertion part 1b is a cylinder, and the clamping end of the insertion part 1b is provided with a plurality of blocking pieces 11b which are evenly distributed along the circumference of the insertion part 1b, and each of the blocking pieces 11b protrudes from the outer circumferential surface of the insertion part 1b. Fig. 2(b) is a schematic view of the receiving part 2b. Referring to Fig. 2(b), the receiving part 2b is provided with a circular socket 21b, and the opening of the socket 21b is provided with a plurality of blocking pieces 22b which are evenly distributed along the circumference of the socket 21b, and each of the blocking pieces 22b protrudes from the circumferential surface of the socket 21b. The number of the blocking pieces 11b is equal to the number of the blocking pieces 22b.

[0068] When it is necessary to connect the connector 100b, first, the clamping end of the insertion part 1b is aligned with the socket 21b, and each of the blocking pieces 11b is aligned with the gap between each of the blocking pieces 22b. Then, the insertion part 1b is inserted into the socket 21b. After the insertion part 1b is inserted into place, the insertion part 1b is rotated by a certain angle, so that each of the blocking pieces 11b is rotated to the inner side of each of the blocking pieces 22b, as shown in Fig. 2(c). At this time, the insertion part 1b and the receiving part 2b are in a connected state, and the blocking pieces 22b can stop the blocking pieces 11b to prevent the insertion part 1b from being pulled out of the socket 21b.

[0069] When it is necessary to disconnect the connector 100b, first, the insertion part 1b is rotated by a certain angle, so that each of the blocking pieces 11b is aligned with the gap between each of the blocking pieces 22b, to remove the stopping effect of the blocking pieces 22b on the blocking pieces 11b. Then, the insertion part 1b is pulled out of the socket 21b.

[0070] Although the present embodiment can prevent the insertion part 1b from being pulled out of the socket 21b when the connector 100b is in a connected state, the user needs to rotate the insertion part 1b when inserting and pulling out the insertion part 1b, which causes inconvenience to the user.

[0071] In summary, the connectors provided in the above-mentioned first and second alternative embodiments can realize wired connection of the eyeglass body and the separated part, but it is difficult to ensure connection reliability while facilitating user operation, thereby affecting the user experience.

[0072] In order to solve the above-mentioned problems, the present application provides a connector which has the characteristics of strong connection reliability and convenience for users.

[0073] Fig. 3(a) shows a schematic view of the connector 100 provided by the present application in a connected state, and Fig. 3(b) shows a schematic view of the connector 100 provided by the present application in a disconnected state.

[0074] Referring to FIG. 3(a) and FIG. 3(b), the connector 100 provided by the present application comprises an insertion part 1 and a receiving part 2. The side wall of the insertion part 1 is provided with a clamping groove 11. The receiving part 2 is provided with a socket 21. The socket 21 is used to accommodate the insertion part 1. When the insertion part 1 is inserted into the socket 21, the connector 100 is in a connected state, as shown in FIG. 3(a). When the insertion part 1 is pulled out of the socket 21, the connector 100 is in a disconnected state, as shown in FIG. 3(b).

[0075] FIG. 4(a) shows a cross-sectional view of the receiving part 2 along A-A direction in FIG. 3(a). Referring to FIG. 4(a), the side wall of the socket 21 is provided with an accommodating groove 22, and the accommodating groove 22 is provided with an elastic assembly 3. The end of the elastic assembly 3 facing the socket 21 is a clamping end 31, and the clamping end 31 can move in the X direction shown in FIG. 4(a) within the accommodating groove 22. The elastic assembly 3 can apply a force to the clamping end 31 in the X1 direction shown in FIG. 4(a). In the absence of an obstruction in the socket 21, for example, when the insertion part 1 is not inserted into the socket 21, the clamping end 31 can extend into the socket 21 under the pushing force of the elastic assembly 3.

[0076] FIG. 5(a) is a B-directional schematic view of the elastic assembly 3 and the socket 21 in FIG. 4(a). Referring to FIG. 5(a), the end face of the clamping end 31 is provided with a guide surface 311, and the guide surface 311 is close to the opening direction of the socket 21. The distance between the guide surface 311 and the geometric center line (as shown by the dotted line L1 in FIG. 5(a)) of the socket 21 gradually decreases along the insertion direction of the insertion part (as shown by the Y direction in FIG. 5(a)).

[0077] The present application does not limit the specific shape of the guide surface 311. In some embodiments, the guide surface 311 can be an inclined surface as shown in FIG. 5(a). In other embodiments, the guide surface 311 can also be an arc surface as shown in FIG. 5(b).

[0078] When the insertion part 1 is inserted into the socket 21 along the Y direction, the insertion part 1 can contact the guide surface 311. Since the distance between the guide surface 311 and the geometric center line L1 gradually decreases along the Y direction, the insertion part 1 can exert a component force in the X2 direction on the guide surface 311. This component force can overcome the force in the X1 direction generated by the elastic assembly 3 on the clamping end 31. The clamping end 31 moves in the X2 direction into the accommodating groove 22 under the action of the component force, and the elastic assembly 3 is deformed in compression, thereby avoiding the clamping end 31 from hindering the movement of the insertion part 1.

[0079] The connector 100 is in the connected state when the insertion portion 1 is inserted to the preset position (i.e. the position where the insertion portion 1 contacts the terminals of the receiving portion 2). At this time, the clamping groove 11 on the insertion portion 1 corresponds to the position of the clamping end 31, and the insertion portion 1 no longer exerts a force on the clamping end 31. The elastic assembly 3 restores the elastic deformation in the absence of external force, and pushes the clamping end 31 to move in the X1 direction. In the present application, the shape of the clamping end 31 at least partially matches the shape of the clamping groove 11, i.e. the clamping end 31 can be inserted into the clamping groove 11 and restricts the movement of the insertion portion 1 in the Y direction or the direction opposite to the Y direction. When the clamping end 31 is inserted into the clamping groove 11, the clamping end 31 is clamped with the clamping groove 11. The clamping end 31 can lock the insertion portion 1 to avoid the insertion portion 1 from being pulled out of the insertion opening 21.

[0080] Figure 6(a) shows the A-A cross-sectional view of Figure 3(a) when the clamping end 31 moves out of the clamping groove 11. Figure 6(b) shows the A-A cross-sectional view of Figure 3(a) when the clamping end 31 is clamped with the clamping groove 11. Referring to Figures 6(a) and 6(b), the outer wall of the receiving portion 2 is provided with a displacement slot 23, and the displacement slot 23 at least partially communicates with the accommodating slot 22. The displacement slot 23 is provided with a push block 41. The push block 41 can move along a specific movement track in the displacement slot 23.

[0081] When the push block 41 is located at a position Q1 (e.g. the position of the push block 41 in Figure 6(a), which is an example of the first position) on the movement track, the push block 41 contacts the clamping end 31, and the push block 41 can exert a force on the clamping end 31 in the X2 direction to move the clamping end 31 out of the insertion opening 21, as shown in Figure 6(a). When the user needs to pull out the insertion portion 1 from the insertion opening 21, the user only needs to push the push block 41 to the position Q1, and the push block 41 can push the clamping end 31 to move in the X2 direction. When the push block 41 is pushed to the position Q1, the clamping end 31 moves out of the insertion opening 21, and the locking of the insertion portion 1 is released. Subsequently, the user can smoothly pull out the insertion portion 1 from the insertion opening 21 to disconnect the connector 100.

[0082] When the insertion portion 1 is pulled out of the insertion opening 21, the user no longer exerts a force on the push block 41. In the absence of external force, the elastic assembly 3 restores the elastic deformation, and the elastic assembly 3 pushes the clamping end 31 to move in the X1 direction until the clamping end 31 re-extends into the insertion opening 21, as shown in Figure 4(a). During the movement of the clamping end 31 in the X1 direction, the clamping end 31 also pushes the push block 41 to move in the movement track away from the position Q1. When the clamping end 31 extends into the insertion opening 21 and stops moving, the push block 41 stays at a position Q2 (e.g. the position of the push block 41 in Figure 4(a), which is an example of the second position) on the movement track.

[0083] The application can avoid disconnection of the connector 100 in the connected state while facilitating user use by setting the elastic assembly 3 and the guide surface 311 on the end surface of the clamping end 31. Specifically, when the insertion part 1 needs to be inserted into the socket 21, the user only needs to make an insertion action, which can make the clamping end 31 automatically avoid the insertion part 1 during insertion of the insertion part 1 and automatically lock the insertion part 1 when the insertion part 1 is inserted to the preset position. Thus, the user operation is facilitated, and the connector 100 in the connected state is prevented from being disconnected. Further, the transmission of power or signals is ensured, and the reliability of the connector is improved.

[0084] In addition, the application sets the push block 41, which can exert a force on the clamping end 31 by pushing the push block 41 to move the clamping end 31 out of the clamping groove 11, thereby releasing the locking of the clamping end 31 on the insertion part 1, facilitating the user to pull out the insertion part 1.

[0085] The movement trajectory of the push block 41 is not limited in the application. The movement trajectory of the push block 41 can be a straight line or a curve. The embodiments of the application are introduced below with the movement trajectory of the push block 41 being arc-shaped as an example.

[0086] FIG. 7(a) is a C-directional schematic view of the push block 41 and the elastic assembly 3 in FIG. 6(a), and FIG. 7(b) is a D-directional schematic view of the push block 41 and the elastic assembly 3 in FIG. 6(b). Referring to FIGS. 7(a) and 7(b), the movement trajectory of the push block 41 is shown as the arc-shaped dashed line L2 in FIGS. 7(a) and 7(b). The position Q1 and the position Q2 are two end points of the movement trajectory L2.

[0087] Referring to FIG. 7(a), when the push block 41 rotates to the position Q1 along the movement trajectory L2, the push block 41 exerts a force on the clamping end 31 in the X2 direction, and the clamping end 31 moves out of the clamping groove 11. Specifically, the position Q1 is not the only force point of the push block 41 on the clamping end 31. When the push block 41 moves from the position Q2 to the position Q1, the push block 41 gradually exerts a force on the clamping end 31 to move the clamping end 31 in the X2 direction. When the push block 41 moves to the position Q1, the displacement of the clamping end 31 in the X2 direction is maximum.

[0088] Referring to FIG. 7(b), when the push block 41 rotates to the position Q2 along the movement trajectory L2, the push block 41 does not exert a force on the clamping end 31, and the clamping end 31 is inserted into the clamping groove 11 under the elastic force of the elastic assembly 3. Exemplarily, the position Q2 can be a critical position where the interaction force between the push block 41 and the clamping end 31 is 0.

[0089] In some implementations of the present application, referring to FIGS. 7(a) and 7(b), the outer wall of the push block 41 is provided with an arc surface 411 (marked as an example of a second arc surface). When the push block 41 rotates between the position Q1 and the position Q2, the arc surface 411 can be in contact with the clamping end 31. By providing the arc surface 411, the friction between the push block 41 and the clamping end 31 can be reduced when the push block 41 is rotated, thereby preventing damage to the device.

[0090] In some implementations of the present application, referring to Figure 8 , the connector 100 further comprises a knob 4 rotatably arranged on the outer wall of the receiving portion 2. The push block 41 is fixedly arranged on the end face of the knob 4 facing the receiving portion 2, and the knob 4 can drive the push block 41 to rotate along the movement trajectory. For example, the knob 4 is circular, and the knob 4 can rotate around its own axis. By providing the knob 4, the user can conveniently rotate the push block 41. When it is necessary to rotate the push block 41, the user only needs to rotate the knob 4.

[0091] The present application does not limit the structure of the elastic assembly 3, which can be one part (such as a spring or a rubber elastic body) or can be composed of multiple parts. When the elastic assembly 3 is composed of multiple parts, the clamping end 31 and the elastic body are not an integral structure. In some implementations of the present application, referring to Figure 8 , the elastic assembly 3 comprises a sliding block 32 and an elastic piece 33. The sliding block 32 is arranged in the accommodating groove 22, and one end of the sliding block 32 facing the socket 21 is the clamping end 31. The sliding block 32 can slide in the accommodating groove 22 towards or away from the socket 21 (as indicated by the X direction in Figure 8 ). Figure 8 The elastic piece 33 is arranged on the side of the sliding block 32 away from the socket 21, and the two ends of the elastic piece 33 abut against the inner wall of the accommodating groove 22 and the sliding block 32, respectively. For example, the sliding direction of the sliding block 32 is perpendicular to the insertion direction of the insertion portion 1 (as indicated by the Y direction in

[0092] The elastic piece 33 can be a compression spring. When the push block 41 is at the position Q1, the sliding block 32 is retracted into the accommodating groove 22, and at this time the compression spring is elastically deformed. When the push block 41 is at the position Q2, the compression spring restores the elastic deformation, and the part of the sliding block 32 close to the socket 21 extends into the socket 21.

[0093] In some implementations of the present application, referring to Figure 9 , the sliding block 32 comprises a connecting portion 321 and a clamping portion 322. The connecting portion 321 is provided with a contact surface 323, and the clamping portion 322 is arranged on the contact surface 323, and the clamping portion 322 protrudes from the contact surface 323.

[0094] Referring to FIG. 6(a), the connecting portion 321 is located between the clamping portion 322 and the elastic member 33, and the contact surface 323 faces the socket 21. When the push block 41 is located at the position Q1, the push block 41 is in contact with the contact surface 323.

[0095] Referring to FIG. 6(b), the side wall of the accommodating groove 22 is provided with a limiting protrusion 24, which is located close to the opening of the accommodating groove 22. When the sliding block 32 is located at the position Q2, the contact surface 323 is in contact with the limiting protrusion 24. By limiting the sliding block 32 through the limiting protrusion 24, the sliding block 32 can be prevented from colliding with the insertion portion 1 when being inserted into the card slot 11.

[0096] In some implementations of the present application, referring to FIG. 7(b), the contact surface 323 is not parallel to the tangent direction of the position Q2 on the movement track L2. Specifically, the tangent direction of the position Q2 on the movement track L2 is shown as the T direction in FIG. 7(b), and the contact surface 323 is not parallel to the T direction, so that the push block 41 can exert a force in the X2 direction on the sliding block 32 during the rotation from the position Q2 to the position Q1.

[0097] In some implementations of the present application, referring Figure 9 The side surface of the clamping portion 322 facing the socket 21 is an arc surface 324 (an example of a first arc surface). The axis of the arc surface 324 is perpendicular to the insertion direction of the insertion portion 1, and the arc surface 324 is curved toward the side away from the connecting portion 321. The region of the arc surface 324 facing the opening direction of the socket 21 is the guide surface 311, as shown in FIG. 5(b).

[0098] The present application does not limit the number of the card slots 11 and the elastic assemblies 3. In some implementations of the present application, referring to FIG. 10(a), the two oppositely arranged side walls of the insertion portion 1 are each provided with a card slot 11, the two oppositely arranged side walls of the socket 21 are each provided with an accommodating groove 22, and the positions of the two accommodating grooves 22 correspond to the positions of the two card slots 11, respectively. The sliding block 32 and the elastic member 33 are arranged in each of the accommodating grooves 22. When the insertion portion 1 is inserted into the socket 21, the two sliding blocks 32 can be inserted into the two card slots 11, respectively. Figure 11 Referring to FIG. 6(a), the connecting portion 321 is located between the clamping portion 322 and the elastic member 33, and the contact surface 323 faces the socket 21. When the push block 41 is located at the position Q1, the push block 41 is in contact with the contact surface 323.

[0099] The knob 4 can be rotated around the center point thereof between the locked position and the unlocked position. The center point of the knob 4 is shown as the point O in FIG. 6(a). Figure 10(a) and 10(b)When the knob 4 is turned to the locked position, as shown in Fig. 10(b), both push blocks 41 are located at position Q2, and both sliding blocks 32 can be engaged with the two clamping grooves 11 inserted into the insertion port 21. When the knob 4 is turned to the unlocked position, as shown in Fig. 10(a), both push blocks 41 are located at position Q1, and both push blocks 41 are in contact with the sliding blocks 32 corresponding thereto and apply force to the sliding blocks 32 in a direction away from the insertion port 21, so that both sliding blocks 32 can be moved out of the two clamping grooves 11 inserted into the insertion port 21.

[0100] In a second aspect, the application provides an insertion part, which is used in combination with any of the connectors 100 described in the foregoing embodiments. Figure 3(a) to Figure 11 Figure 12 The insertion part 1 provided by the application is provided with a clamping groove 11 on the side wall thereof, which is used for clamping the clamping end 31 described in the foregoing embodiments in combination with any of the connectors 100 described in the foregoing embodiments. Figure 6(a) 6(b) The number of the clamping grooves 11 can be one or multiple. When the number of the clamping grooves 11 is multiple, each clamping groove 11 is arranged on the two oppositely arranged side walls of the insertion part 1.

[0101] In a third aspect, the application provides a receiving part, which is used in combination with any of the connectors 100 described in the foregoing embodiments. Figure 3(a) to Figure 11 Figure 13 The receiving part 2 provided by the application is provided with an insertion port 21, which is used for accommodating the insertion part 1 shown in Fig. 3(b).

[0102] Referring to Fig. 4(a), the side wall of the insertion port 21 is provided with an accommodating groove 22, and the accommodating groove 22 is provided with an elastic assembly 3. The end of the elastic assembly 3 facing the insertion port 21 is a clamping end 31, which can extend into the insertion port 21 under the elastic force of the elastic assembly 3.

[0103] Fig. 5(a) is a B-directional schematic view of the elastic assembly 3 and the insertion port 21 in Fig. 4(a). Referring to Fig. 5(a), the end face of the clamping end 31 is provided with a guide surface 311, which is close to the opening direction of the insertion port 21. The distance between the guide surface 311 and the geometric center line (as shown by the dotted line L1 in Fig. 5(a)) of the insertion port 21 gradually decreases along the insertion direction of the insertion part (as shown by the Y direction in Fig. 5(a)).

[0104] The application does not limit the specific shape of the guide surface 311. In some embodiments, the guide surface 311 can be an inclined surface as shown in Fig. 5(a). In other embodiments, the guide surface 311 can also be an arc surface as shown in Fig. 5(b).

[0105] ​​​When the insertion portion 1 is inserted into the insertion opening 21 along the Y direction, the insertion portion 1 can contact the guide surface 311 and apply a component force along the X2 direction to the guide surface 311. The clamping end 31 is moved into the receiving groove 22 along the X2 direction under the action of the component force, and the elastic assembly 3 is compressed and deformed, so that the clamping end 31 does not hinder the movement of the insertion portion 1.

[0106] When the insertion portion 1 is inserted to the preset position (i.e., the position where the insertion portion 1 contacts the terminal of the receiving portion 2), the connector 100 is in a connected state. At this time, the clamping groove 11 on the insertion portion 1 corresponds to the position of the clamping end 31, and the insertion portion 1 no longer applies a force to the clamping end 31. The elastic assembly 3 recovers the elastic deformation under the action of no external force, and pushes the clamping end 31 to move along the X1 direction. In the present application, the shape of the clamping end 31 at least partially matches the shape of the clamping groove 11, i.e., the clamping end 31 can be inserted into the clamping groove 11 and restricts the movement of the insertion portion 1 along the Y direction or the direction opposite to the Y direction. When the clamping end 31 is inserted into the clamping groove 11, the clamping end 31 is clamped with the clamping groove 11. The clamping end 31 can lock the insertion portion 1 to avoid the insertion portion 1 from being pulled out of the insertion opening 21.

[0107] FIG. 4(a) shows a cross-sectional view of the receiving portion 2 when the clamping end 31 extends into the insertion opening 21. FIG. 4(b) shows a cross-sectional view of the receiving portion 2 when the clamping end 31 is moved out of the insertion opening 21. Referring to FIGS. 4(a) and 4(b), the outer wall of the receiving portion 2 is provided with a displacement groove 23, and the displacement groove 23 at least partially communicates with the receiving groove 22. The displacement groove 23 is provided with a push block 41. The push block 41 can move along a specific movement track in the displacement groove 23.

[0108] When the push block 41 is located at a position Q1 (e.g., the position of the push block 41 in FIG. 4(b), which is an example of the first position) on the movement track, the push block 41 contacts the clamping end 31, and the push block 41 can apply a force along the X2 direction to the clamping end 31 to move the clamping end 31 out of the insertion opening 21. Then, the user can smoothly pull the insertion portion 1 out of the insertion opening 21 to disconnect the connector 100.

[0109] When the insertion portion 1 is pulled out of the insertion opening 21, the user no longer applies a force to the push block 41. Under the action of no external force, the elastic assembly 3 recovers the elastic deformation, and the elastic assembly 3 pushes the clamping end 31 to move along the X1 direction until the clamping end 31 re-extends into the insertion opening 21, as shown in FIG. 4(a). In the process of moving the clamping end 31 along the X1 direction, the clamping end 31 also pushes the push block 41 to move along the movement track away from the position Q1. When the clamping end 31 extends into the insertion opening 21 and stops moving, the push block 41 stays at a position Q2 (e.g., the position of the push block 41 in FIG. 4(a), which is an example of the second position) on the movement track.

[0110] The application does not limit the movement trajectory of the push block 41. The movement trajectory of the push block 41 can be a straight line or a curve. The embodiments of the application are described below by taking the movement trajectory of the push block 41 as an arc.

[0111] Referring to FIGS. 7(a) and 7(b), the movement trajectory of the push block 41 is shown as an arc dotted line L2 in FIGS. 7(a) and 7(b). The position Q1 and the position Q2 are two end points of the movement trajectory L2.

[0112] Referring to FIG. 7(a), when the insertion part 1 is inserted into the insertion opening 21 and the push block 41 rotates along the movement trajectory L2 to the position Q1, the push block 41 exerts a force on the clamping end 31 in the X2 direction, and the clamping end 31 is moved out of the clamping groove 11.

[0113] Referring to FIG. 7(b), when the insertion part 1 is inserted into the insertion opening 21 and the push block 41 rotates along the movement trajectory L2 to the position Q2, the push block 41 does not exert a force on the clamping end 31, and the clamping end 31 is inserted into the clamping groove 11 under the elastic force of the elastic assembly 3.

[0114] In some embodiments of the application, referring to FIGS. 7(a) and 7(b), an arc surface 411 (an example of a second arc surface) is arranged on the outer wall of the push block 41. When the push block 41 rotates between the position Q1 and the position Q2, the arc surface 411 can be in contact with the clamping end 31. By arranging the arc surface 411, the friction between the push block 41 and the clamping end 31 can be reduced when the push block 41 is rotated, thereby preventing damage to the device.

[0115] In some embodiments of the application, referring to Figure 8 The connector 100 further comprises a knob 4 rotatably arranged on the outer wall of the receiving part 2. The push block 41 is fixedly arranged on the end surface of the knob 4 facing the receiving part 2, and the knob 4 can drive the push block 41 to rotate along the movement trajectory. For example, the knob 4 is circular and can rotate around its own axis. By arranging the knob 4, the user can conveniently rotate the push block 41. When it is necessary to rotate the push block 41, the user only needs to rotate the knob 4.

[0116] The application does not limit the structure of the elastic assembly 3, which can be one part (for example, a spring) or composed of multiple parts. In some embodiments of the application, referring to Figure 8 The elastic assembly 3 comprises a sliding block 32 and an elastic piece 33. The sliding block 32 is arranged in the accommodating groove 22, and one end of the sliding block 32 facing the insertion opening 21 is the clamping end 31. The sliding block 32 can move in the accommodating groove 22 towards or away from the insertion opening 21 (for example, in the X2 direction). Figure 8sliding direction of the sliding block 32 is perpendicular to the insertion direction of the insertion part 1 (as shown by the Y direction in FIG. 4(a)). Figure 8

[0117] The elastic member 33 can be a compression spring. When the push block 41 is at the position Q1, the sliding block 32 is retracted into the accommodating groove 22, and at this time the compression spring is elastically deformed. When the push block 41 is at the position Q2, the compression spring restores the elastic deformation, and the part of the sliding block 32 close to the insertion port 21 extends into the insertion port 21.

[0118] In some implementations of the present application, referring to Figure 9 The sliding block 32 includes a connecting portion 321 and a clamping portion 322. The connecting portion 321 is provided with a contact surface 323, and the clamping portion 322 is arranged on the contact surface 323 and protrudes from the contact surface 323.

[0119] Referring to FIG. 4(b), the connecting portion 321 is located between the clamping portion 322 and the elastic member 33, and the contact surface 323 faces the insertion port 21. When the push block 41 is at the position Q1, the push block 41 is in contact with the contact surface 323.

[0120] Referring to FIG. 4(a), the side wall of the accommodating groove 22 is provided with a limiting protrusion 24 close to the opening of the accommodating groove 22. When the sliding block 32 is at the position Q2, the contact surface 323 is in contact with the limiting protrusion 24. By limiting the sliding block 32 through the limiting protrusion 24, the impact between the sliding block 32 and the insertion part 1 when the sliding block 32 is inserted into the insertion slot 11 can be prevented.

[0121] In some implementations of the present application, referring to FIG. 7(b), the contact surface 323 is not parallel to the tangent direction of the position Q2. Specifically, the tangent direction of the position Q2 on the movement track L2 is shown as the T direction in FIG. 7(b), and the contact surface 323 is not parallel to the T direction, so that the push block 41 can exert a force in the X2 direction on the sliding block 32 during the rotation from the position Q2 to the position Q1.

[0122] In some implementations of the present application, referring to Figure 9 The side surface of the clamping portion 322 facing the insertion port 21 is an arc surface 324 (an example of a first arc surface). The axis of the arc surface 324 is perpendicular to the insertion direction of the insertion part 1, and the arc surface 324 is curved toward the side away from the connecting portion 321. The area of the arc surface 324 facing the opening direction of the insertion port 21 is a guide surface 311, as shown in FIG. 5(b).

[0123] ​This application does not limit the number of elastic components 3. In some implementations of this application, referring to FIG10(a), each of the two oppositely arranged side walls of the insertion port 21 is provided with a receiving groove 22, and the positions of the two receiving grooves 22 correspond to the positions of the two slots 11 on the insertion part 1. Each receiving groove 22 is provided with a slider 32 and an elastic element 33. When the insertion part 1 is inserted into the insertion port 21, the two sliders 32 can be inserted into the two slots 11 respectively. Reference Figure 11 The knob 4 is provided with two push blocks 41 spaced apart along its circumference, and the two push blocks 41 are mirror images of the center point of the knob 4.

[0124] Knob 4 can rotate around its center between the locked and unlocked positions, and the center point of knob 4 is as follows: Figure 10(a) and 10(b) As shown in point Q in Figure 10(b), when knob 4 is turned to the locked position, both push blocks 41 are located at position Q2, and the two sliders 32 can respectively engage with the two slots 11 in the insertion socket 21. When knob 4 is turned to the unlocked position, as shown in Figure 10(a), both push blocks 41 are located at position Q1, and the two push blocks 41 respectively contact their corresponding sliders 32 and apply a force to the sliders 32 away from the insertion socket 21, so that the two sliders 32 can be moved out of the two slots 11 in the insertion socket 21.

[0125] Fourthly, this application also provides an electronic device, including a main body and the combination thereof in the foregoing embodiments. Figure 4(a) to Figure 11 The receiving unit 2 described herein is disposed on the main body. Exemplarily, the electronic device can be XR glasses or other electronic devices. Taking XR glasses as an example, refer to... Figure 14 The receiving unit 2 can be installed on the temple 10 of the XR glasses.

[0126] The specific embodiments described above illustrate the implementation of this application. Those skilled in the art can easily understand other advantages and effects of this application from the content disclosed in this specification. Although the description of this application is presented in conjunction with some embodiments, this does not mean that the features of this application are limited to this embodiment. On the contrary, the purpose of describing the application in conjunction with embodiments is to cover other options or modifications that may be derived based on the claims of this application. This application may also be implemented without using these details. Furthermore, to avoid confusion or obscuring the focus of this application, some specific details have been omitted in the description. It should be noted that, unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other.

[0127] In the embodiments of the present application, the terms "first", "second" are used only for descriptive purposes, and cannot be construed as indicating or implying relative importance or implying the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features.

[0128] In the embodiments of the present application, "and / or" is only a description of the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can represent the three cases of A alone, A and B together, and B alone. In addition, the character " / " in this paper generally represents that the front and rear associated objects are in an "or" relationship.

[0129] In the description of the embodiments of the present application, it should be explained that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting" should be understood in a broad sense, for example, "connecting" can be detachable connection, or can be non-detachable connection; can be direct connection, or indirect connection through intermediate medium.

[0130] In the description of the present application, it should be explained that the terms "upper", "lower", "top", "bottom" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore cannot be understood as a limitation on the present application.

[0131] In the description of the present application, it should be explained that, unless otherwise explicitly specified and limited, the terms "setting", "mounting", "connecting", "fitting" should be understood in a broad sense, for example, it can be fixed connection, or detachable connection, or integrally connected; can be mechanical connection, or electrical connection; can be directly connected, or indirectly connected through intermediate medium, can be the communication inside two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0132] Obviously, those skilled in the art can make various modifications and variations to the present application without departing from the spirit and scope of the present application. Thus, if these modifications and variations of the present application fall within the scope of the claims of the present application and their equivalent technologies, the present application also intends to include these modifications and variations.

Claims

1. A connector characterized by comprising: The utility model relates to a kind of plug-in connector, including: Insert part, the side wall of the insert part is equipped with card slot; Receiving part, the receiving part is equipped with socket, the socket is used to accommodate the insert part, the side wall of the socket is equipped with accommodating slot, the accommodating slot is equipped with elastic component, the end of the elastic component towards the socket is clamping end, the clamping end can be stretched into the socket under the elastic force of the elastic component, the shape of the clamping end is at least partially compatible with the shape of the card slot, the end surface of the clamping end is equipped with guide surface, the guide surface is close to the opening direction of the socket, the distance between the guide surface and the geometric center line of the socket gradually decreases along the insertion direction of the insert part;The outer wall of the receiving part is equipped with let go slot, the let go slot is at least partially communicated with the accommodating slot, the let go slot is equipped with push block, the push block can move along specific motion trajectory; When the push block is located at the first position on the motion trajectory, the push block is in contact with the clamping end, and the clamping end is removed from the socket.

2. The connector of claim 1, wherein It also includes a knob, the knob is rotatably provided on the outer wall of the receiving part, the push block is provided on the knob, the motion trajectory is arc-shaped, the knob can drive the push block to rotate along the motion trajectory, and the two endpoints of the motion trajectory are the first position and the second position respectively. When the push block is located at the second position on the motion trajectory, the clamping end is inserted into the socket.

3. The connector of claim 2, wherein, The elastic component includes: A sliding block is provided in the accommodating slot, and the clamping end is located on the sliding block. The sliding block can slide in the accommodating slot towards or away from the socket. An elastic member is provided on the side of the sliding block away from the socket. The two ends of the elastic member are respectively in contact with the inner wall of the accommodating slot and the sliding block.

4. The connector of claim 3, wherein The sliding block includes a connecting portion and a clamping portion. The connecting portion is located between the clamping portion and the elastic member. The side of the connecting portion towards the socket is a contact surface, and the clamping portion protrudes from the contact surface. When the push block is located at the first position, the push block is in contact with the contact surface.

5. The connector of claim 4, wherein, The tangent direction of the contact surface and the second position is not parallel.

6. The connector of claim 4, wherein, A limiting protrusion is provided on the side wall of the accommodating slot, and the limiting protrusion is close to the opening of the accommodating slot. When the sliding block is located at the second position, the contact surface is in contact with the limiting protrusion.

7. The connector of claim 4, wherein The side of the clamping portion towards the socket is a first curved surface. The axis of the first curved surface is perpendicular to the insertion direction of the insert part. The first curved surface curves away from the connecting portion.

8. The connector of claim 3, wherein The elastic member is a compression spring. The extension direction of the compression spring is perpendicular to the insertion direction of the insert part. When the push block is located at the first position, the compression spring is elastically deformed.

9. The connector of claim 3, wherein Two oppositely arranged side walls of the insertion part are respectively provided with a clamping groove, two oppositely arranged side walls of the socket are respectively provided with a receiving groove, and each receiving groove is provided with the sliding block and the elastic member. The knob is provided with two push blocks which are arranged along the circumference of the knob, and the knob can rotate between a locking position and an unlocking position. When the knob is rotated to the locking position, the two push blocks are located at the second position, and the two sliding blocks can be clamped with the two clamping grooves inserted into the socket. When the knob is rotated to the unlocking position, the two push blocks are located at the first position, and the two push blocks are in contact with the sliding blocks corresponding thereto and apply a force to the sliding blocks in a direction away from the socket, so that the two sliding blocks can be removed from the two clamping grooves inserted into the socket.

10. The connector of claim 3, wherein The outer wall of the push block is provided with a second arc surface, and when the push block moves between the first position and the second position, the second arc surface can be in contact with the sliding block.

11. An insertion portion characterized by comprising: The side wall of the insertion part is provided with a clamping groove.

12. A receiving portion, characterized by The receiving part is provided with a socket, the side wall of the socket is provided with a receiving groove, the receiving groove is provided with an elastic assembly, one end of the elastic assembly facing the socket is a clamping end, the clamping end can extend into the socket under the elastic force of the elastic assembly, the socket is used for accommodating an insertion part, the side wall of the insertion part is provided with a clamping groove, the shape of the clamping end is at least partially matched with the shape of the clamping groove, the end face of the clamping end is provided with a guide surface, the guide surface is close to the opening direction of the socket, the distance between the guide surface and the geometric center line of the socket gradually decreases along the insertion direction of the insertion part; the outer wall of the receiving part is provided with a displacement slot, the displacement slot is at least partially communicated with the receiving groove, and the push block is arranged in the displacement slot and can move along a specific movement track. When the push block is located at the first position on the movement track, the push block is in contact with the clamping end, and the clamping end is removed from the socket.

13. The receiving portion according to claim 12, characterized in that The knob is rotatably arranged on the outer wall of the receiving part, the push block is arranged on the knob, the movement track is arc-shaped, the knob can drive the push block to rotate along the movement track, and two endpoints of the movement track are the first position and the second position respectively. When the push block is located at the second position on the movement track, the clamping end extends into the socket.

14. The receiving portion according to claim 13, characterized in that The elastic assembly comprises: The sliding block is arranged in the receiving groove, the clamping end is located on the sliding block, and the sliding block can slide in the receiving groove in a direction close to or away from the socket. The elastic member is arranged on the side of the sliding block away from the socket, and the two ends of the elastic member are respectively in contact with the inner wall of the receiving groove and the sliding block.

15. The receiving portion according to claim 14, characterized in that The slider comprises a connecting portion and a clamping portion, the connecting portion is located between the clamping portion and the elastic member, a side of the connecting portion facing the socket is a contact surface, and the clamping portion protrudes from the contact surface; when the push block is in the first position, the push block is in contact with the contact surface.

16. The receiving portion according to claim 15, characterized in that The contact surface is not parallel to the tangent direction of the second position.

17. The receiving portion according to claim 15, characterized in that A limiting protrusion is arranged on the side wall of the accommodating groove, and the limiting protrusion is arranged close to the opening of the accommodating groove; when the slider is in the second position, the contact surface is in contact with the limiting protrusion.

18. The receiving portion according to claim 15, characterized by A side of the clamping portion facing the socket is a first arc surface, an axis of the first arc surface is perpendicular to the insertion direction of the insertion portion, and the first arc surface curves away from the connecting portion.

19. The receiving portion of claim 14, wherein, The elastic member is a compression spring, an extension direction of the compression spring is perpendicular to the insertion direction of the insertion portion, and the compression spring is elastically deformed when the push block is in the first position.

20. The receiving portion of claim 14, wherein, Opposite two side walls of the insertion portion are each provided with a clamping groove, opposite two side walls of the socket are each provided with an accommodating groove, the slider and the elastic member are arranged in each of the accommodating grooves, and the positions of the two sliders correspond to the positions of the two clamping grooves one by one when the insertion portion is inserted into the socket. The knob is provided with two push blocks arranged along the circumference of the knob, the knob can rotate between a locked position and an unlocked position, when the knob is rotated to the locked position, the two push blocks are both in the second position, and the two sliders can be clamped with the two clamping grooves inserted into the socket; when the knob is rotated to the unlocked position, the two push blocks are both in the first position, and the two push blocks are in contact with the sliders corresponding to the push blocks and apply force to the sliders in a direction away from the socket, so that the two sliders can be removed from the two clamping grooves inserted into the socket.

21. The receiving portion of claim 14, wherein, A second arc surface is arranged on the outer wall of the push block, and the second arc surface can be in contact with the slider when the push block moves between the first position and the second position.

22. An electronic product, characterized by The receiving portion comprises a main body and the receiving portion of any one of claims 12 to 21.