Socket
By designing the electrical connection and locking mechanism between the removable data cable assembly and the socket body, the existing socket is solved and the problem that it cannot be removed and cannot be replaced after damage is solved, achieving the versatility of the socket and the cleanliness of the desktop, and extending the service life.
Patent Information
- Application Number
- CN202421659172.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-12
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-07-12
AI Technical Summary
The existing built-in telescopic cable module has a single number of desktop inserts and is not detachable, resulting in an untidy desktop. The telescopic cable module cannot be replaced after it is damaged, and its service life is short.
A socket body is designed, including a detachable data line assembly, and the electrical connection between the socket body and the data line assembly is realized through a removable connection between the accommodating cavity and the data line assembly, and is fixed by a locking mechanism, supporting the replacement and replacement of multiple data line components.
It realizes the versatility of the socket and the neatness of the desktop, extends the service life of the socket, and facilitates users to replace the data cable components of different interfaces as needed, meeting the charging needs of multiple devices.
Smart Images

Figure CN223181518U_ABST
Abstract
Description
Technical Field
[0001] The embodiment of the utility model relates to the technical field of electrical connectors, and particularly relates to a socket. Background Art
[0002] Currently, for the existing desktop socket with a built-in telescopic wire module, generally only one fixed telescopic wire module is built in, with a single quantity and non-detachable. This makes it impossible to achieve an extremely tidy desktop, and the user cannot replace the telescopic wire module after it is damaged, resulting in a short service life. Summary of the Utility Model
[0003] In view of the above problems, the embodiment of the utility model provides a socket to solve the technical problems that the existing socket cannot achieve an extremely tidy desktop and the user cannot replace it after damage.
[0004] According to one aspect of the embodiment of the utility model, a socket is provided. The socket includes a socket body and at least one data line component; at least one receiving cavity with one end open is arranged on the socket body, the data line component is detachably arranged in the receiving cavity, and can be inserted into or removed from the receiving cavity through the opening of the receiving cavity; when the data line component is in the receiving cavity, the socket body is electrically connected to the data line component.
[0005] In an optional manner, a first electrical connector is arranged in the receiving cavity, and the data line component includes a second electrical connector;
[0006] When the data line component is inserted into the receiving cavity, the first electrical connector is electrically connected to the second electrical connector.
[0007] In an optional manner, the first electrical connector is arranged at one end of the receiving cavity far from the opening of the receiving cavity;
[0008] One of the first electrical connector and the second electrical connector is a blade terminal convex part; the other of the first electrical connector and the second electrical connector is a blade terminal concave part; or,
[0009] One of the first electrical connector and the second electrical connector is an elastic pin, and the other of the first electrical connector and the second electrical connector is a copper column or a conductive metal surface; or,
[0010] One of the first electrical connector and the second electrical connector is a metal elastic sheet, and the other of the first electrical connector and the second electrical connector is a conductive metal surface.
[0011] In an alternative embodiment, the data cable assembly includes an assembly housing, a data cable, a rotating assembly, and a circuit board disposed within the assembly housing; one end of the assembly housing is provided with a housing opening; the data cable is wound around the rotating assembly, with one end electrically connected to the circuit board and the other end extending out of the housing opening; the second electrical connector is exposed on the assembly housing, and one end of the second electrical connector passes through the assembly housing and is connected to the circuit board;
[0012] The socket body further includes a power supply assembly, and one end of the first electrical connector is electrically connected to the power supply assembly of the socket body.
[0013] In an alternative embodiment, at least one power socket is provided on the socket body, a first locking mechanism is further provided on the data cable assembly, and a second locking mechanism is further provided within the socket body; when the data cable assembly is within the receiving cavity, the first locking mechanism and the second locking mechanism are locked together.
[0014] In an alternative embodiment, the first locking mechanism is a locking groove, and the second locking mechanism is a locking member; the locking member extends into the receiving cavity and engages in the locking groove to fix the data cable assembly within the receiving cavity.
[0015] In an alternative embodiment, the locking member includes a first elastic member, a second elastic member, an unlocking button, and a locking slider;
[0016] The locking slider is provided with an upper end portion, a lower end portion, and first inclined surfaces disposed on both sides; two second inclined surfaces for cooperating with the first inclined surfaces are correspondingly provided on both sides of the end of the unlocking button facing the locking slider;
[0017] One end of the first elastic member is connected to the socket housing of the socket body, and the other end is connected to the upper end portion of the locking slider. The lower end portion of the locking slider extends into the receiving cavity for engaging with the locking groove; one end of the second elastic member is connected to the unlocking button, and the other end is connected to the socket housing of the socket body;
[0018] When the unlocking button is pressed, the second inclined surface and the first inclined surface move relative to each other, causing the locking slider to move upward and the lower end portion to leave the locking groove.
[0019] In an alternative embodiment, the other end of the data cable is provided with a data cable interface, and a fixing structure is provided at the housing opening for detachably fixing the data cable interface.
[0020] In an alternative embodiment, at least one third elastic member is further disposed at the bottom of the accommodation cavity away from the opening of the accommodation cavity. When the data cable assembly is fixedly received in the accommodation cavity, the data cable assembly presses against the third elastic member to compress it.
[0021] In an alternative embodiment, the first locking mechanism is a stepped groove provided on the component housing of the data cable assembly, and a stepped portion is provided on the bottom surface of the stepped groove;
[0022] The second locking mechanism is a hook assembly, which includes an elastic deformation portion and a rotation locking portion; the elastic deformation portion is used to provide an elastic force for pressing against the component housing for the rotation locking portion, and the rotation locking portion is used to slide along the stepped groove when the data cable assembly is inserted into or removed from the accommodation cavity, and lock with the stepped groove when the data cable assembly is inserted to a preset position.
[0023] In an alternative embodiment, the first locking mechanism includes a convex hook provided on the component housing of the data cable assembly; the second locking mechanism is a push-button switch module provided at the bottom of the accommodation cavity away from the opening of the accommodation cavity; when the data cable assembly is received in the accommodation cavity, the push-button switch module locks the convex hook.
[0024] The socket of the embodiment of the present invention includes a socket body and at least one data cable assembly; at least one accommodation cavity with one end open is provided on the socket body, and the data cable assembly is inserted into or removed from the accommodation cavity through the opening of the accommodation cavity; when the data cable assembly is in the accommodation cavity, the socket body is electrically connected to the data cable assembly. By providing a detachable connection between the data cable assembly and the socket body, when one data cable assembly is damaged, a new data cable assembly can be replaced at any time; furthermore, data cable assemblies with different interfaces can also be replaced, so that when the user needs to charge with different data cable interfaces, they can easily disassemble and replace. Further, by providing a plurality of data cable assemblies on the socket body, and the data cable assemblies are telescopic data cables, a plurality of charging data cables are integrated on one socket, so that multiple electronic devices can use this socket at the same time without additionally connecting external data cables, making the desktop cleaner.
[0025] The above description is only an overview of the technical solution of the present invention. In order to be able to understand the technical means of the present invention more clearly, it can be implemented according to the content of the description. And in order to make the above and other purposes, features and advantages of the present invention more obvious and understandable, the specific embodiments of the present invention are specifically described below. Brief Description of the Drawings
[0026] Various other advantages and benefits will become apparent to those of ordinary skill in the art upon reading the following detailed description of the preferred embodiments. The drawings are only for the purpose of showing the preferred embodiments and are not to be considered as limiting the present utility model. Also, throughout the drawings, the same reference numerals are used to represent the same components. In the drawings:
[0027] Figure 1 Shows a three-dimensional schematic diagram of a socket provided by an embodiment of the present utility model;
[0028] Figure 2 Shows a structural schematic diagram of a socket body provided by an embodiment of the present utility model;
[0029] Figure 3 Shows an exploded structural schematic diagram of a second locking mechanism provided by an embodiment of the present utility model;
[0030] Figure 4 Shows a structural schematic diagram of a data line assembly provided by another embodiment of the present utility model;
[0031] Figure 5 Shows an enlarged structural schematic diagram of a first locking mechanism provided by another embodiment of the present utility model;
[0032] Figure 6 Shows an exploded structural schematic diagram of a second locking mechanism and a receiving cavity provided by another embodiment of the present utility model;
[0033] Figure 7 Shows a cross-sectional structural schematic diagram of a socket body provided by yet another embodiment of the present utility model;
[0034] Figure 8 Shows a structural schematic diagram of a data line assembly provided by yet another embodiment of the present utility model;
[0035] Figure 9 Shows an enlarged structural schematic diagram of the locked state of a first locking mechanism and a second locking mechanism provided by yet another embodiment of the present utility model;
[0036] Figure 10 Shows an exploded structural schematic diagram of a data line assembly provided by an embodiment of the present utility model;
[0037] Figure 11 Shows a structural schematic diagram of a socket body provided by another embodiment of the present utility model;
[0038] Figure 12 Shows an exploded structural schematic diagram of a data line assembly provided by another embodiment of the present utility model;
[0039] Figure 13Shows a schematic structural diagram of a socket body provided by another embodiment of the present utility model;
[0040] Figure 14 Shows a schematic structural diagram of a socket body provided by another embodiment of the present utility model;
[0041] Figure 15 Shows a schematic structural diagram of a metal elastic piece provided by another embodiment of the present utility model;
[0042] Figure 16 Shows a schematic structural diagram of a data line assembly provided by another embodiment of the present utility model.
[0043] The reference numerals in the specific embodiments are as follows:
[0044] Socket body 10, accommodation cavity 110, second locking mechanism 120, first elastic member 1201, second elastic member 1202, unlocking button 1203, locking slider 1204, fixing plate 1205, upper cover plate 1206, fourth elastic member 1207, rotating shaft 1208, rotating hook 121, flat plate 1210, cylinder 1211, first through hole 1209, lower side plate 1101 of the accommodation cavity, sliding groove 1101A, rotating shaft groove 1101B, recessed pliers 1214, blade terminal recess 130a, elastic pin 130b, metal elastic piece 130c, bending structure 1301, base groove 1302, socket panel 1401, jack 1401a, front cover plate 1402, button mounting hole 1402a, third elastic member 150, data line assembly 20, upper housing 2101, lower housing 2102, first locking mechanism 220, stepped groove 220A, first step 2201, second step 2202, locking groove 2203, rotating shaft abutting portion 2204, guiding inclined surface 2205, convex hook 220B, blade terminal convex portion 230a, copper column 230b, conductive metal surface 230c, component circuit board 240, rotating assembly 250, data line 260, data line interface 2601. Specific embodiments
[0045] The embodiments of the technical solution of the present utility model will be described in detail below with reference to the accompanying drawings. The following embodiments are only used to illustrate the technical solution of the present utility model more clearly, so they are only examples and cannot be used to limit the protection scope of the present utility model.
[0046] Please refer to Figure 1 , Figure 1The perspective view of the socket embodiment of the present utility model is shown. The socket includes a socket body 10 and at least one data line assembly 20. Among them, at least one receiving cavity 110 with one end open is provided on the socket body 10. The data line assembly 20 is detachably arranged in the receiving cavity 110 and can be inserted into or removed from the receiving cavity 110 through the opening of the receiving cavity 110. When the data line assembly 20 is in the receiving cavity 110, the socket body 10 is electrically connected to the data line assembly 20, and the data line assembly 20 is connected to the power supply through the socket body 10 to supply power to the data line assembly 20, so as to supply power to the electronic device when the electronic device is connected to the data line interface 2601 of the data line assembly 20. By setting the data line assembly 20 to be detachably connected to the receiving cavity 110, when a data line assembly 20 is damaged, a new data line assembly 20 can be replaced at any time, effectively extending the service life of the socket body 10.
[0047] Among them, there are multiple data line assemblies 20, and the receiving cavity 110 can be one or more. For example, multiple data line assemblies 20 can be accommodated in one receiving cavity 110, or one data line assembly 20 can be accommodated in one receiving cavity 110. The embodiments of the present utility model do not make specific limitations. To ensure beauty and neatness, when the data line assembly 20 is integrally arranged in the receiving cavity 110, the end face at the opening of the receiving cavity 110 is flush with the end face of the socket body 10. For the convenience of taking, the data line assembly 20 can also partially protrude from the receiving cavity 110. As Figure 2 shown, the socket body 10 further includes a socket housing, and the socket housing includes a socket panel 1401 and a front cover plate 1402. Figure 2 It is a schematic structural view for separating the front cover plate 1402 from the socket body. At least one power socket 1401a for connecting the plug of an electrical device is provided on the socket panel 1401, so that the socket in the embodiment of the present utility model can not only obtain power for electrical devices (such as a TV or a fan, etc.) through the power socket 1401a, but also charge a mobile phone, etc. through the data line assembly.
[0048] In the embodiment of the present utility model, the data line assembly 20 is detachably connected to the receiving cavity 110. Among them, a first locking mechanism 220 is provided on the data line assembly 20, and a second locking mechanism 120 is provided in the socket body 10. When the data line assembly 20 is in the receiving cavity 110, the first locking mechanism 220 is locked with the second locking mechanism 120. Among them, the first locking mechanism 220 can be a locking groove, and the second locking mechanism 220 is a locking part; or the first locking mechanism 220 is a locking part, and the second locking mechanism 120 is a locking groove.
[0049] In a specific implementation, the first locking mechanism 220 is a locking groove (asFigure 10 It can be seen). As Figure 2 shown, the second locking mechanism 120 is a locking member. The locking member extends into the accommodating cavity 110 and engages in the locking groove to fix the data line assembly 20 in the accommodating cavity 110. Specifically, as Figure 3As shown, the locking member includes a first elastic member 1201, a second elastic member 1202, an unlocking button 1203 and a locking slider 1204. The locking slider 1204 is provided with an upper end portion, a lower end portion and first inclined surfaces disposed on both sides; two second inclined surfaces for cooperating with the first inclined surfaces are correspondingly disposed on both sides of one end of the unlocking button 1203 facing the locking slider. One end of the first elastic member 1201 is connected to the socket housing of the socket body 10, and the other end is connected to the upper end portion of the locking slider 1204. Specifically, an installation post is provided on the upper side of the locking slider 1204, and the first elastic member 1201 is a spring sleeved on the installation post. The lower end portion of the locking slider 1204 extends into the receiving cavity 110 for engaging with the locking groove. One end of the second elastic member 1202 is connected to the unlocking button 1203, and the other end is connected to the socket housing of the socket body 10. Among them, the first elastic member 1201 is used to provide a restoring force for the locking slider 1204, and the second elastic member 1202 is used to provide a pressing elastic restoring force for the unlocking button 1203, so that the unlocking button 1203 can be reset after being pressed. After the unlocking button 1203 is released, the locking slider 1204 can be reset. Among them, the socket housing includes a front cover plate 1402. A button installation hole 1402 is provided on the front cover plate 1402. One end of the unlocking button 1203 extends out of the button installation hole 1402 for convenient user pressing, and the other end is connected to the second elastic member 1202 and can abut against the locking slider 1204 when pressed. When the unlocking button 1203 is pressed, the second inclined surface of the unlocking button 1203 moves inward, pushing the first inclined surface upward and away from the receiving cavity 110, so that the locking slider 1204 moves upward, and the lower end portion leaves the locking groove, and the data cable assembly 20 is separated from the socket body 10. Among them, the lower end portion of the locking slider 1204 is a bevel structure, and this bevel structure faces the opening of the receiving cavity 110, so that when the user inserts the data cable assembly 20 into the receiving cavity 110, the lower end portion is pushed upward during the inward sliding process, and at the same time, the first elastic member 1201 is squeezed upward. After the data cable assembly 20 is inserted in place, under the elastic restoring force of the first elastic member 101, the lower end portion of the locking slider 1204 is pushed to engage in the locking groove, thereby locking the data cable assembly 20 in the socket body 10. Among them, a fixing plate 1205 is included on the socket housing. A through hole is included in the middle of the locking slider 1204, and the second elastic member 1202 passes through the through hole and abuts against the fixing plate 1205. In the embodiment of the present invention, in order to facilitate taking out, at least one third elastic member 150 is further provided at the bottom of the receiving cavity 110. When the data cable assembly 20 is fixedly received in the receiving cavity 110, the third elastic member 150 is pressed and compressed by the data cable assembly 20; when the locking slider 1204 is disengaged from the locking groove, the elastic force of the third elastic member 150 is released, and the data cable assembly 20 is pushed out of the receiving cavity 110 to facilitate the user to take the data cable assembly 20.
[0050] As Figure 4 shown, in another specific implementation, the first locking mechanism is a stepped groove 220A provided on the component housing of the data line component 20. The bottom surface of the stepped groove 220A is provided with a stepped portion, including a plurality of steps. The stepped groove 220A can be specifically provided on the lower surface of the component housing. Specifically, as Figure 5 shown in the enlarged structural schematic diagram of the stepped groove 220A, the stepped groove 220A includes a first groove, a locking groove 2203, and a second groove, which generally form a U shape. The first groove includes at least two first steps 2201, and the second groove includes at least two second steps 2202. The heights of the at least two first steps 2201 first increase and then decrease along the insertion direction Y of the data line component 20; the height of the locking groove 2203 is lower than the height of the nearest first step 2201 and higher than or equal to the height of the nearest second step 2202. The at least two second steps 2202 decrease successively along the removal direction of the data line component; the opening of the locking groove 2203 faces away from the insertion direction. Among them, the locking groove 2203 can be a V-shaped groove. In the embodiment of the present utility model, a rotating shaft abutting portion 2204 and a guiding inclined surface 2205 are further provided on the stepped groove 220A. The guiding inclined surface 2205 is formed on the partition block between the first groove and the second groove. The partition block separates the first step 2201 from the second step 2202. The rotating shaft abutting portion 2204 is provided at the middle position of the guiding inclined surface 2205 of the partition block.
[0051] Among them, the second locking mechanism is a hook assembly, and the hook assembly includes an elastic deformation portion and a rotating locking portion. The elastic deformation portion is used to provide an elastic force for the rotating locking portion to press against the component housing. The rotating locking portion is used to slide along the stepped groove 220A when the data line component is inserted into or removed from the accommodating cavity, and is locked with the locking groove 2203 of the stepped groove 220A after being inserted to a preset position. Among them, the elastic deformation portion includes an upper cover plate 1206 and a fourth elastic member 1207, and the rotating locking portion includes a rotating shaft 1208 and a rotating hook 121. The rotating hook 121 is used to slide in the first groove, the locking groove 2203, and the second groove of the stepped groove 220A. As Figure 6As shown, specifically, the receiving cavity includes an upper side plate, a lower side plate 1101 and a bottom side plate away from the opening of the receiving cavity. The hook assembly can be disposed on the outer surface of the lower side plate 1101 of the receiving cavity. The upper cover plate 1206 is fixedly connected to the outer surface of the lower side plate 1101 of the receiving cavity. The fourth elastic member 1207, the rotating shaft 1208 and the rotating hook 121 are disposed between the upper cover plate 1206 and the outer surface of the receiving cavity. A first through hole 1209 is provided on the upper cover plate 1206. The upper end portion of the rotating shaft 1208 can pass through the first through hole 1209. The rotating hook 121 includes a flat plate 1210 and a cylinder 1211 disposed at one end of the flat plate 1210. The other end of the flat plate 1210 is provided with the rotating shaft 1208. The fourth elastic member 1207 is sleeved on the rotating shaft 1208. One end of the fourth elastic member 1207 abuts against the inner surface of the upper cover plate 1206, and the other end abuts against the upper surface of the flat plate 1210. A sliding groove 1101A and a rotating shaft groove 1101B communicating the outer surface and the inner surface are provided on the receiving cavity. The cylinder 1211 passes through the sliding groove 1101A and extends into the receiving cavity for abutting against the step groove 220A. The sliding groove 1101A is preferably arc-shaped. The end portion of the rotating shaft 1208 passes through the rotating shaft groove 1101B and extends into the receiving cavity for abutting against the rotating shaft abutting portion 2204 in the step groove 220A. Among them, during the process of inserting the data line assembly 20 into the receiving cavity, the end portion of the cylinder 1211 abuts against the rotating shaft abutting portion 2204. As the data line assembly continues to be inserted, the cylinder 1211 slides in the sliding groove 1101A. The end portion of the cylinder 1211 is guided by the guiding inclined surface 2205 to move along the first groove. Since the step heights of the plurality of first steps 2201 gradually increase and then decrease along the insertion direction, at this time, the rotating hook 121 is lifted upward, and the fourth elastic member 1207 is compressed. When moving to the maximum distance in the Y direction, the user cannot continue to push the data line module forward. After the user releases the hand, the data line assembly is affected by the elastic force of the fourth elastic member 1207 and will move forward to a preset position in the V-shaped groove. The preset position is the bottom of the V-shaped groove. Due to the design of the V-shaped locking groove 2203 and its height being lower than the nearest first step 2201, at this time, the end portion of the cylinder 1211 will hook the V-shaped groove and be restricted from moving forward. At the same time, the data line assembly is affected by the elastic force of the fourth elastic member 1207, and the cylinder 1211 will be restricted from being pushed out backward from the groove. Therefore, the cylinder 1211 is locked in the V-shaped groove, and the data line assembly and the socket body are locked. When it is necessary to remove the data line assembly from the receiving cavity, the user pushes the data line assembly again. Since the first step 2201 is higher than the height of the V-shaped groove and the second step 2202 is lower than the height of the V-shaped groove, the cylinder 1211 will not return along the original path and will move along the second step 2202 and move out of the step groove 220A from the second groove. Through such a setting, it is convenient to lock and unlock the data line assembly and the socket body.
[0052] In yet another specific implementation, as Figure 7 shown, the first locking mechanism includes a convex hook 220B disposed on the component housing. Among them, as Figure 8 shown, the second locking mechanism is a push switch module disposed on the side of the accommodation cavity away from the opening of the accommodation cavity. When the data cable assembly is received in the accommodation cavity, the push switch module locks the convex hook 220B. The push switch module is provided with a concave pliers 1214, and the concave pliers 1214 has two claws and presents an open state when the data cable assembly is not inserted. As Figure 9 shown, when the telescopic cable module is pushed to the corresponding position, the concave pliers 1214 will hold the convex hook 220B of the data cable assembly and reach the locked state. When the user pushes the data cable assembly again, the two claws of the concave pliers 1214 will release the convex hook 220B, and the data cable assembly returns to the free state.
[0053] In the embodiment of the present invention, a first electrical connector is provided in the accommodation cavity 110, and the data cable assembly 20 includes a second electrical connector. When the data cable assembly 20 is inserted into the accommodation cavity 110, the first electrical connector is electrically connected to the second electrical connector. Among them, as Figure 10 shown, the data cable assembly 20 is a telescopic data cable, and the data cable assembly 20 includes a component housing, a data cable 260, a rotating assembly 250, and a component circuit board 240 disposed in the component housing. The component housing includes an upper housing 2101 and a lower housing 2102. One end of the component housing is provided with a housing opening. The data cable 260 is wound around the rotating assembly 250, one end is electrically connected to the component circuit board 240, and the other end is a data cable interface 2601. The data cable interface 2601 extends out of the housing opening for connecting to an electronic device. The second electrical connector is disposed on the component housing and exposed outside the component housing. One end of the second electrical connector passes through the component housing and is electrically connected to the component circuit board 240 in the component housing. The socket body 10 further includes a socket housing and a power supply component. One end of the first electrical connector is electrically connected to the power supply component of the socket body 10. Among them, the socket body 10 further includes a power supply component, and the power supply component includes a high-voltage circuit board, a low-voltage circuit board, and a power supply connection line extending into the socket body 10. The power jack 1401a is electrically connected to the high-voltage circuit board through a conductive wire. The low-voltage circuit board is electrically connected to the high-voltage circuit board. One end of the first electrical connector is electrically connected to the low-voltage circuit board. When the data cable assembly 20 is inserted into the accommodation cavity 110, the second electrical connector is electrically connected to the low-voltage circuit board through one end of the first electrical connector, thereby realizing power supply for the data cable assembly 20.
[0054] One end of the other end of the data line 260 is provided with at least one data line interface 2601 for connecting to an electronic device. A fixing structure is provided at the opening of the housing of the data line assembly 20 according to an embodiment of the present invention for detachably fixing the end of the other end of the data line 260. Among them, in a specific implementation, the fixing structure can be a groove structure for accommodating the data line interface 2601. In another specific implementation, the fixing structure can also be a magnetic member, and a magnetic metal member is provided at the data line interface 2601 for adsorption connection with the magnetic member, so as to accommodate the data line 260 in the assembly housing, and the data line interface 2601 is accommodated and fixed at the opening of the housing of the data line assembly 20, making the appearance of the desktop socket more tidy.
[0055] Among them, in a specific implementation of the present invention, the first electrical connector is the blade terminal recess 130a; the second electrical connector is the blade terminal protrusion 230a; or, the first electrical connector is the blade terminal recess 130a; the second electrical connector is the blade terminal protrusion 230a. The blade terminal recess 130a includes a plurality of grooves arranged in sequence, and the blade terminal protrusion 230a includes a plurality of tabs. As Figure 10 shown, the second connector on the data line assembly 20 is the blade terminal protrusion 230a, which is provided on one side surface of the assembly housing. As Figure 11 shown, the first electrical connector of the socket body 10 is the blade terminal recess 130a, which is provided at the bottom of the accommodation cavity 110. When the data line assembly 20 is inserted into the accommodation cavity 110, the blade terminal protrusion 230a on the data line assembly 20 is inserted into the blade terminal recess 130a of the socket body 10.
[0056] In another specific implementation of the present invention, the first electrical connector is an elastic pin 130b provided on the side of the accommodation cavity 110 away from the opening of the accommodation cavity 110, and the second electrical connector is a copper column 230b or a conductive metal surface 230c; or, the first electrical connector is a copper column 230b or a conductive metal surface 230c provided on the side of the accommodation cavity 110 away from the opening of the accommodation cavity 110, and the second electrical connector is an elastic pin 130b. As Figure 12 and Figure 13As shown, the first electrical connector can be a plurality of elastic pins 130b disposed on a side of the accommodating cavity 110 away from the opening of the accommodating cavity 110, and the second electrical connector can be a plurality of copper pillars 230b or a conductive metal surface 230c. The plurality of elastic pins 130b are secured within the socket housing via a fixing member, with one end electrically connected to the power source and the other end elastically deformable to contact the copper pillars 230b or the conductive metal surface 230c on the data cable assembly 20. The plurality of copper pillars 230b or the conductive metal surface 230c are electrically connected to the circuit board 240 within the assembly housing. When the data cable assembly 20 is accommodated within the accommodating cavity 110, the elastic pins 130b are compressed and in a compressed state. When the data cable assembly 20 is removed from the accommodating cavity 110, the elastic pins 130b release their elasticity and return to their natural state. In this way, the first electrical connector itself can function as an elastic member, eliminating the need for a third elastic member 150 to push the data cable assembly 20 out of the accommodating cavity 110. This simplifies the structure and facilitates removal. Furthermore, to more securely secure the data cable assembly 20 to the socket body 10 and facilitate removal, the aforementioned third elastic member 150 and second locking mechanism 120 can be disposed within the socket body 10, interacting with the first locking mechanism 220 on the data cable assembly 20 to facilitate removal and securement.
[0057] In another specific implementation of the present invention, the first electrical connector is a metal spring 130c provided in the accommodating cavity 110 on a side away from the opening of the accommodating cavity 110, and the second electrical connector is a conductive metal surface 230c; or, the first electrical connector is a conductive metal surface 230c provided in the accommodating cavity 110 on a side away from the opening of the accommodating cavity 110, and the second electrical connector is a metal spring 130c. Figure 14 As shown, the first electrical connection member is a metal spring 130c disposed in the accommodating cavity 110 away from the side of the opening of the accommodating cavity 110, and the second electrical connection member is a conductive metal surface 230c. Figure 15 As shown, a spring base is provided above or below the side of the accommodating cavity 110 away from the opening of the accommodating cavity 110. The spring base includes at least one base groove 1302. A plurality of metal springs 130c are arranged side by side in the at least one base groove 1302. Preferably, one base groove 1302 corresponds to one metal spring 130c. One end of the metal spring 130c is fixed in the base groove 1302, and the other end is a bent structure 1301, which protrudes from the base groove 1302. Figure 16As shown, the data line assembly 20 includes a groove structure, and a plurality of metal conductive surfaces 230c are arranged in the groove structure. Among them, the bent structure 1301 of the metal elastic piece 130c is engaged in the groove structure of the data line assembly 20 and contacts the metal conductive surface to achieve electrical connection. Among them, the metal conductive surface can be integrated onto the circuit board 240, and the conductive surface is directly made on the circuit board 240. By providing the metal elastic piece 130c, when the data line assembly 20 is received in the accommodation cavity 110, a fixed connection between the data line assembly 20 and the socket body 10 can be achieved. When it is necessary to replace or take out the data line assembly 20, an outward force is applied to the data line assembly 20, and the metal elastic piece 130c is bounced upward, so that the data line assembly 20 is separated from the socket body 10, eliminating the need for an additional locking mechanism. Further, in order to fix the data line assembly 20 and the socket body 10 more firmly and make it more convenient to take out, the aforementioned third elastic member 150 and second locking mechanism 120 can also be arranged in the socket body 10 and cooperate with the first locking mechanism 220 on the data line assembly 20, thus facilitating taking and fixing.
[0058] In the embodiment of the present utility model, by providing a detachable connection between the socket body 10 and the data line assembly 20, when the data line assembly is in the accommodation cavity, the socket body 10 is electrically connected to the data line assembly 20. When a data line assembly 20 is damaged, a new data line assembly 20 can be replaced at any time; furthermore, data line assemblies 20 with different interfaces can also be replaced, enabling users to conveniently disassemble and replace when they need to use different data line interfaces for charging. Further, by providing a plurality of data line assemblies 20 on the socket body 10 and the data line assemblies 20 being telescopic data lines, a plurality of charging data lines are integrated on one socket, so that multiple electronic devices can use this socket simultaneously without the need for additional external data lines, making the desktop cleaner.
[0059] It should be noted that unless otherwise specified, the technical terms or scientific terms used in the embodiments of the present utility model should have the ordinary meanings understood by those skilled in the art to which the embodiments of the present utility model belong.
[0060] In the description of the embodiments of the present utility model, the technical terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the embodiments of the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the embodiments of the present utility model.
[0061] In addition, technical terms such as "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. In the description of the embodiments of the present utility model, the meaning of "a plurality of" is more than two, unless otherwise specifically defined.
[0062] In the description of the embodiments of the present utility model, unless otherwise clearly specified and defined, technical terms such as "installed", "connected", "joined", "fixed", etc. should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may also be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present utility model can be understood according to specific circumstances.
[0063] In the description of the embodiments of the present utility model, unless otherwise clearly specified and defined, the first feature being "on" or "under" the second feature may be that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on top of" the second feature may be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature has a higher horizontal height than the second feature. The first feature being "under", "beneath" and "underneath" the second feature may be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature has a lower horizontal height than the second feature.
[0064] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present utility model and are not intended to limit them. Although the present utility model has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present utility model, and they should all be covered by the scope of the claims and the description of the present utility model. In particular, as long as there is no structural conflict, the technical features mentioned in each embodiment can be combined in any way. The present utility model is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A socket, characterized in that, The socket includes a socket body and at least one data line component; at least one receiving cavity with an open end is provided on the socket body, the data line component is detachably arranged in the receiving cavity, and can be inserted into or removed from the receiving cavity through the opening of the receiving cavity; when the data line component is in the receiving cavity, the socket body is electrically connected to the data line component.
2. The socket according to claim 1, characterized in that, A first electrical connector is arranged in the receiving cavity, and the data line component includes a second electrical connector; when the data line component is inserted into the receiving cavity, the first electrical connector is electrically connected to the second electrical connector.
3. The socket according to claim 2, characterized in that, The first electrical connector is arranged at one end of the receiving cavity far from the opening of the receiving cavity. One of the first electrical connector and the second electrical connector is a blade terminal convex part; the other of the first electrical connector and the second electrical connector is a blade terminal concave part; or, One of the first electrical connector and the second electrical connector is an elastic pin; the other of the first electrical connector and the second electrical connector is a copper post or a conductive metal surface; or, One of the first electrical connector and the second electrical connector is a metal elastic sheet; the other of the first electrical connector and the second electrical connector is a conductive metal surface.
4. The socket according to claim 2, characterized in that, The data line component includes a component housing, and a data line, a rotating component and a circuit board arranged in the component housing; one end of the component housing is provided with a housing opening; the data line is wound around the rotating component, one end is electrically connected to the circuit board, and the other end extends out of the housing opening; the second electrical connector is exposed on the component housing, and one end of the second electrical connector passes through the component housing and is connected to the circuit board. The socket body further includes a power supply component, and one end of the first electrical connector is electrically connected to the power supply component.
5. The socket according to any one of claims 1-4, characterized in that, At least one power socket is arranged on the socket body, a first locking mechanism is further arranged on the data line component, and a second locking mechanism is further arranged in the socket body; when the data line component is in the receiving cavity, the first locking mechanism is locked with the second locking mechanism.
6. The socket according to claim 5, characterized in that, The first locking mechanism is a locking groove, and the second locking mechanism is a locking member; the locking member extends into the receiving cavity and is engaged in the locking groove to fix the data line component in the receiving cavity.
7. The socket according to claim 6, wherein The locking member includes a first elastic member, a second elastic member, an unlocking button and a locking slider. The locking slider is provided with an upper end portion, a lower end portion and first inclined surfaces arranged on both sides; two second inclined surfaces for cooperating with the first inclined surfaces are correspondingly arranged on both sides of one end of the unlocking button facing the locking slider. One end of the first elastic member is connected to the socket housing of the socket body, and the other end is connected to the upper end portion of the locking slider. The lower end portion of the locking slider extends into the receiving cavity for engaging with the locking groove; one end of the second elastic member is connected to the unlocking button, and the other end is connected to the socket housing of the socket body.
8. The socket according to claim 5, characterized in that, At least one third elastic member is further disposed at the bottom of the accommodating cavity away from the opening of the accommodating cavity. When the data line assembly is fixedly received in the accommodating cavity, the data line assembly presses against the third elastic member to make it in a compressed state.
9. The socket according to claim 5, characterized in that, The first locking mechanism is a stepped groove provided on the component housing of the data line assembly, and a stepped portion is provided on the bottom surface of the stepped groove; The second locking mechanism is a hook assembly, and the hook assembly includes an elastic deformation portion and a rotating locking portion; the elastic deformation portion is used to provide an elastic force for pressing against the component housing for the rotating locking portion, and the rotating locking portion is used to slide along the stepped groove when the data line assembly is inserted into or removed from the accommodating cavity, and lock with the stepped groove when the data line assembly is inserted to a preset position.
10. The socket according to claim 5, characterized in that, The first locking mechanism includes a convex hook provided on the component housing of the data line assembly; the second locking mechanism is a push switch module provided at the bottom of the accommodating cavity away from the opening of the accommodating cavity; When the data line assembly is received in the accommodating cavity, the push switch module locks the convex hook.