Wiring assembly for socket and switching device
By integrating the conductive section, support component, and elastic component into the socket's insertion section, and combining static and dynamic guiding paths, the problem of complex existing terminal block structures and difficulties in connecting multi-core cables is solved, thereby improving the stability and safety of cable insertion.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SCHNEIDER ELECTRIC IND SAS
- Filing Date
- 2025-02-10
- Publication Date
- 2026-05-15
AI Technical Summary
The existing switches and power sockets have complex terminal structures, resulting in high manufacturing costs. They also have poor contact when multi-core cables are connected, posing potential electrical fault risks, and cannot meet the connection requirements of various types of cables.
A wiring assembly is provided, including a conductive segment, a support member, and an elastic member, which, through the combination of a static guide path and a dynamic guide path, ensures the stability and accuracy of cable insertion, simplifies the structure, and improves durability.
It improves the stability and safety of cable insertion, reduces manufacturing costs, enhances the durability of wiring components and the reliability of electrical connections, and adapts to the access of various types of cables.
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Figure CN224249057U_ABST
Abstract
Description
Technical Field
[0001] The exemplary embodiments disclosed herein generally relate to the field of household appliances, and particularly to a wiring assembly for a socket and a switching device. Background Technology
[0002] Switches and power sockets are fundamental electrical devices in modern homes and power distribution systems, widely used in residential, commercial, and industrial sectors. As components that connect to cables within electrical equipment, terminal blocks play a crucial role in the stability and safety of electrical connections. The function of existing switch and power socket terminal blocks is to connect the cable conductors to the internal circuitry of the switch or socket. In other words, terminal blocks directly affect the performance of electrical equipment, especially the contact quality and long-term safety when connecting multi-core cables. Utility Model Content
[0003] In a first aspect of this disclosure, a wiring assembly for a socket is provided. The wiring assembly includes: at least one conductive segment integrally formed on a socket insert segment and adapted for electrical connection to a cable; each of the at least one conductive segment includes: a body including an opening and at least one bent edge extending parallel to an insertion direction of the cable, the edge of the opening along the insertion direction forming at least one static guide path with the at least one bent edge; a support member coupled to the body to form, together with the body, at least one insertion port for cable insertion; and an elastic member coupled to the support member and including: at least one guide portion disposed in the opening and adapted to form at least one dynamic guide path with the at least one bent edge to guide a cable inserted from the at least one insertion port along with the at least one static guide path.
[0004] In embodiments according to this disclosure, the stability and accuracy of cable insertion are significantly improved through static and dynamic guide paths, resilient crimping, and an integrated conductive segment structure. This wiring assembly ensures reliable contact between the cable and the conductive segment, reducing the risk of poor contact and electrical faults, while also improving the smoothness of the insertion process. Other benefits will be described below in conjunction with corresponding embodiments.
[0005] In some embodiments, the support includes: a first support body coupled to the body, and the first support body dividing at least one insertion port into a first insertion port and a second insertion port for inserting two cables respectively.
[0006] In some embodiments, the support member forms a first insertion port and a second insertion port, and the portion opposite to the body is formed as a concave arc shape.
[0007] In some embodiments, the support further includes: a second support body arranged opposite to the first support body in the insertion direction for an elastic member to be disposed between the first support body and the second support body, and wherein the body includes a pair of coupling holes for the first support body and the second support body to pass through the body respectively, wherein the ends of the first support body and the second support body that pass through the body are formed with bends.
[0008] In some embodiments, the resilient member includes at least one pressing portion arranged at least partially aligned with a static guide path to press a cable inserted into the wiring assembly between the resilient member and at least one conductive segment.
[0009] In some embodiments, the body has a planar structure, and the edge of the opening along the insertion direction has an arc-shaped structure.
[0010] In some embodiments, the elastic member includes: an overlap portion arranged to abut against an overlap wall of a support member opposite to at least one insertion port; an actuating portion having at least one pressing portion and at least one guiding portion at its end; and an elastic bending portion arranged between the overlap portion and the actuating portion and adapted to provide an elastic force for pressing the cable against the elastic member and at least one conductive segment.
[0011] In some embodiments, at least one pressing portion includes: a first pressing portion arranged aligned with a first insertion port so that a first cable of two cables is pressed between the first pressing portion and the body, and at least one guide portion includes: a first guide portion coupled to the first pressing portion so that the first cable can move in an insertion direction.
[0012] In some embodiments, at least one pressing portion includes: a second pressing portion arranged aligned with a second insertion port so that a second cable of two cables is pressed between the second pressing portion and the body, and the second pressing portion has a predetermined distance from the first pressing portion, and at least one guide portion includes: a second guide portion coupled to the second pressing portion so that the second cable can move in the insertion direction.
[0013] In some embodiments, the elastic member is further formed with a separation gap that extends along the extension direction of the elastic member from the end of the actuating portion to a portion of the overlapping portion to separate the first guide portion and the second guide portion.
[0014] In a second aspect of this disclosure, a switching device is provided. The switching device includes: a socket section; and a wiring assembly according to the first aspect described above, wherein at least one conductive segment of the wiring assembly is integrally formed on the socket section, and is adapted to supply power to an external device via the socket section when the wiring assembly is electrically connected to a cable.
[0015] It should be understood that the content described in this content section is not intended to limit the key or essential features of the embodiments of this disclosure, nor is it intended to restrict the scope of this disclosure. Other features of this disclosure will become readily apparent from the following description. Attached Figure Description
[0016] The above and other features, advantages, and aspects of the embodiments of this disclosure will become more apparent from the accompanying drawings and the following detailed description. In the drawings, the same or similar reference numerals denote the same or similar elements, wherein:
[0017] Figure 1 and Figure 2 A schematic diagram of the wiring assembly according to some embodiments of the present disclosure is shown;
[0018] Figure 3 A schematic diagram of the structure of a conductive segment according to some embodiments of the present disclosure is shown; and
[0019] Figure 4 A schematic diagram of the structure of an elastic element according to some embodiments of the present disclosure is shown. Detailed Implementation
[0020] Embodiments of this disclosure will now be described in more detail with reference to the accompanying drawings. While some embodiments of this disclosure are shown in the drawings, it should be understood that this disclosure can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of this disclosure. It should be understood that the accompanying drawings and embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of protection of this disclosure.
[0021] In the description of embodiments of this disclosure, the term "comprising" and similar terms should be understood as open-ended inclusion, i.e., "including but not limited to". The term "based on" should be understood as "at least partially based on". The term "one embodiment" or "the embodiment" should be understood as "at least one embodiment". The term "some embodiments" should be understood as "at least some embodiments". Other explicit and implicit definitions may also be included below. The terms "first", "second", etc., may refer to different or the same objects. Other explicit and implicit definitions may also be included below.
[0022] As briefly mentioned earlier, existing switch and power socket terminals still have some technical problems that urgently need improvement. First, the existing terminals employ a relatively complex structure, resulting in higher material usage and increased manufacturing costs. Especially when connecting multi-core cables to round terminals, existing terminals often fail to effectively clamp multiple wires, leading to poor contact and potentially causing electrical faults or fire hazards. Second, existing terminals cannot meet the connection requirements of various cable types, particularly when inserting thicker or multi-core cables, where problems such as incomplete insertion and poor wire contact may occur. Furthermore, in some terminals, the cable insertion is easily obstructed by the terminal components, causing uneven insertion and affecting the stable connection of the cable.
[0023] To address, or at least partially address, the aforementioned problems or other potential problems of conventional switching devices, embodiments of this disclosure provide a wiring assembly for a socket and a switching device solution. According to an embodiment of this disclosure, the wiring assembly includes at least one conductive segment integrally formed on a socket insert segment and adapted for electrical connection to a cable. Each of the at least one conductive segment includes: a body including an opening and at least one bent edge extending parallel to the insertion direction of the cable, the edge of the opening along the insertion direction forming at least one static guide path with the at least one bent edge. Further, the wiring assembly includes a support member coupled to the body to form at least one insertion port for cable insertion together with the body. Further, the wiring assembly includes an elastic member coupled to the support member and includes: at least one guide portion disposed in the opening and adapted to form at least one dynamic guide path with the at least one bent edge to guide a cable inserted from the at least one insertion port along with the at least one static guide path.
[0024] In this way, the bent edge and the opening together form a static guide path, guiding cable insertion and reducing the risk of poor contact and electrical faults due to improper insertion. Simultaneously, the bent edge and the guide together form a dynamic guide path, further ensuring that the cable enters along the correct trajectory, avoiding interference or damage. This dual combination of dynamic and static guide paths not only improves cable insertion efficiency but also enhances the stability and durability of the wiring assembly.
[0025] An example structure of a switching device will be described below. A switching device according to embodiments of this disclosure may include a switch and a power outlet. For example, the switch may be a home and power distribution / connected living / light switch. The concept of this disclosure will be described below using a power outlet as an example; it should be understood that the same applies to the case where the switching device is a switch, and will not be described in detail below.
[0026] The switching device according to an embodiment of this disclosure includes a socket section 110 and a wiring assembly 120. Specifically, the socket section 110 is used for connecting the switching device to an external device. The socket section 110 has the function of electrically connecting to the external device. Further, at least one conductive segment 121 of the wiring assembly 120 is integrally formed on the socket section 110, and an electrical connection with a cable is achieved through the conductive segment 121. The conductive segment 121 will be described in detail below.
[0027] Furthermore, the conductive segment 121 of the wiring assembly 120 is connected to the socket segment 110, thereby forming a complete electrical path. When the cable is connected to the wiring assembly 120, current is transmitted from the socket segment 110 to the external device through the conductive segment 121, thereby providing power to the external device.
[0028] The conductive segment 121 of the wiring assembly 120 is integrally formed on the socket segment 110, which not only simplifies the structure of the switching device, but also reduces manufacturing costs, while improving the durability and safety of the wiring assembly 120.
[0029] In some embodiments, the socket section 110 of the switching device includes a socket 1101. The socket 1101 is used to insert the electrical pins of a plug. The socket 1101 can be a structural component of appropriate size and shape, capable of precisely mating with the electrical pins of the plug; this is not specifically limited in the embodiments disclosed herein. When the plug is inserted into the socket, the electrical pins of the plug can be inserted into the socket 1101, forming a stable electrical connection. The inner wall of the socket 1101 ensures that the electrical pins of the plug can firmly contact the conductive terminals of the socket, thereby ensuring normal current transmission.
[0030] In some embodiments, the socket 1101 may be made of a material with good electrical conductivity and durability to ensure the stability and safety of the electrical connection during long-term use.
[0031] In this way, the socket can improve its applicability, be compatible with a variety of plug types, and ensure a stable and reliable electrical connection during insertion.
[0032] The following will combine Figures 1 to 4 To describe the specific structure of the wiring assembly 120. For example... Figures 1 to 4 As shown, the wiring assembly 120 according to an embodiment of this disclosure generally includes at least one conductive segment 121, a support member 130, and an elastic member 140. This wiring assembly 120 aims to improve the stability and convenience of cable connection, while solving the problems of difficult multi-core wire crimping and insertion obstacles in existing terminal blocks, thereby ensuring the insertion path and crimping reliability of cables (especially multi-core flexible conductors), and ensuring the safety and stability of electrical connections.
[0033] Specifically, the at least one conductive segment 121 is integrally formed on the socket's insertion segment 110 and is adapted for electrical connection with a cable. For example, the conductive segment 121 can be integrally formed with the socket's insertion segment 110 by stamping, bending, or other processes. Further, the body 1201 of each conductive segment 121 includes an opening 1211 and at least one bent edge 1202. The extension direction of the at least one bent edge 1202 is parallel to the cable insertion direction.
[0034] In the wiring assembly 120, at least one bent edge 1202 is integrally formed on the body 1201 and forms at least one static guide path with the edge of the opening 1211 along the insertion direction A. This static guide path helps guide the cable to be correctly inserted into the wiring assembly 120, avoiding misalignment or incomplete contact during cable insertion. In this way, the cable can be smoothly inserted and make firm contact with the conductive section 121.
[0035] Furthermore, the support member 130 is coupled to the body 1201. In some embodiments, at least one insertion port 150 is formed between the support member 130 and the body 1201, the width of which is slightly larger than the diameter of the cable, for cable insertion. In some embodiments, the inlet end of the insertion port may be configured as an inclined structure to reduce interference between the cable end and the wiring assembly 120.
[0036] Furthermore, the elastic element 140 is coupled to the support element 130, for example, by riveting or snap-fitting. In some embodiments, the elastic element 140 includes at least one pressing portion 141. This pressing portion continuously abuts against the inner side of the body 1201 by the elastic force generated by the pre-compression deformation of the elastic element 140, forming an initial crimping force, and part of the pressing portion is aligned with the static guide path, thereby ensuring that an effective crimping force is obtained when the cable is inserted, avoiding unstable wiring during insertion.
[0037] The resilient element 140 is further described. The resilient element 140 includes at least one guide portion 142. This guide portion is integrally formed on the pressing portion and is disposed within the opening 1211. In other words, the guide portion extends from the pressing portion into the opening 1211 of the body 1201. This guide portion, together with at least one bent edge 1202, constitutes at least one dynamic guide path. The cable is inserted into the wiring assembly 120 via the insertion port through this dynamic and static guide paths and is stably crimped between the resilient element 140 and the conductive segment 121. This not only ensures correct cable insertion but also achieves precise guidance of the cable insertion process through the cooperation of the dynamic and static guide paths.
[0038] In this way, the wiring assembly 120 can solve the problems of weak crimping and obstructed insertion of existing multi-core wires, which not only improves the efficiency of cable access, but also improves the overall stability and safety of the wiring assembly 120.
[0039] like Figure 1 As shown, in some embodiments, the support 130 includes a first support body 1301. The first support body 1301 is coupled to the body 1201. The first support body 1301 allows for the simultaneous insertion of multiple cables by dividing at least one insertion port 150 into two insertion ports. Specifically, the first support body 1301 divides the insertion port into a first insertion port 1501 and a second insertion port 1502, respectively for the insertion of two cables.
[0040] This structural design allows users to simultaneously insert two cables into a single wiring assembly 120, enabling parallel access for multiple cables. The first insertion port 1501 and the second insertion port 1502 ensure that each cable makes contact with its corresponding portion of the conductive segment 121 upon insertion, and is guided into the wiring assembly 120 via dynamic and static guide paths. This not only improves the adaptability of the wiring assembly 120 but also simplifies the installation process, especially in scenarios requiring multiple cable connections, reducing installation time and increasing work efficiency.
[0041] In addition, the first support 1301 ensures the spacing between the two insertion ports, avoiding mutual interference or poor contact during cable insertion.
[0042] In some embodiments, the portion of the support 130 that forms the first insertion port 1501 and the second insertion port 1502 and is opposite to the body 1201 has a recessed arcuate shape. This arcuate structure provides better guidance and support for the inserted cable through its curved shape.
[0043] Specifically, the recessed arc-shaped portion guides the cable to maintain a smooth trajectory during insertion, thereby reducing friction between the cable and the support 130 during insertion and preventing poor contact or cable damage caused by uneven cable insertion. Simultaneously, the arc shape provides a certain degree of enclosure for the cable through its inner curved surface, helping to prevent the cable from deviating or twisting during insertion and ensuring smooth insertion and good contact with the conductive section 121.
[0044] Furthermore, the arc shape of the support member 130 also provides a certain mechanical strength distribution, allowing the insertion port to evenly distribute stress when the cable is inserted, further improving the durability and reliability of the wiring assembly 120. This structure not only makes cable insertion smoother and more stable, but also improves the overall performance of the wiring assembly 120 and enhances the user experience.
[0045] like Figure 1 and Figure 2As shown, in some embodiments, the support member 130 further includes a second support body 1302, which cooperates with the first support body 1301 to form a reliable cable insertion support structure. The second support body 1302 is arranged opposite to the first support body 1301 in the insertion direction A, and provides space for the arrangement of the elastic member 140. Specifically, the elastic member 140 is arranged between the first support body 1301 and the second support body 1302. Through the cooperation of the first support body 1301 and the second support body 1302, the elastic member 140 can provide the necessary elasticity to ensure stable crimping of the cable during insertion.
[0046] In addition, the body 1201 also includes a pair of coupling holes 1204, which are respectively used for the first support 1301 and the second support 1302 to pass through the corresponding coupling holes 1204 and extend to the outside of the body 1201 for fixation to the body 1201. This not only ensures that the first support 1301 and the second support 1302 can be stably connected to the body 1201, but also facilitates the installation and fixation of the support member 130 in the wiring assembly 120.
[0047] Furthermore, the ends of the first support 1301 and the second support 1302 that pass through the body 1201 are formed with bends 1303. The bends 1303 are used for coupling the support 130 to the body 1201, which can improve the stability of the structure and prevent the support from loosening or shifting during use. The bends 1303 enhance the mechanical strength of the support 130.
[0048] like Figure 3 As shown, in some embodiments, the body 1201 can have a planar structure, and the edge of the opening 1211 along the insertion direction A can have an arc-shaped structure. Specifically, the planar structure of the body 1201 makes the entire wiring assembly 120 more concise and compact, and facilitates mass production and installation. The planar structure can ensure that the cable makes close contact with the conductive section 121 when connected through uniform pressure distribution, preventing poor contact or electrical faults.
[0049] The edge of the opening 1211 along the insertion direction A adopts an arc-shaped structure to improve the stability and guidance when the cable contacts the conductive section 121. The arc-shaped structure allows for a more natural fit with the surface of the inserted cable, reducing friction between the cable and the opening 1211 during insertion and ensuring a smooth entry of the cable into the wiring assembly 120. The arc-shaped structure provides a more uniform contact area with the cable, offering more stable electrical contact and ensuring the stability and safety of current transmission. Furthermore, the arc-shaped structure reduces potential interference or deformation during cable insertion, especially with multi-core cables, preventing poor contact due to uneven stress.
[0050] In some embodiments, the protrusion direction of the arc-shaped structure at the edge of the opening 1211 is consistent with the bending direction of the bent edge 1202. Specifically, the arc-shaped structure at the edge of the opening 1211 is provided along the cable insertion direction A, and its protrusion direction is the same as the bending direction of the bent edge 1202 on the body 1201. This allows the cable to form a static guide path between the opening 1211 and the bent edge 1202 during insertion, thereby ensuring that the cable can be inserted smoothly and easily, and maintain good contact with the conductive section 121.
[0051] This static guide path prevents cable misalignment or jamming during insertion. During insertion, the cable is guided by both the opening 1211 and the bend 1202, ensuring it enters the wiring assembly 120 along a predetermined path, thus avoiding incomplete insertion or poor contact. This structure makes the insertion process more precise and efficient, reducing potential electrical safety hazards caused by improper cable insertion.
[0052] The height of the arc-shaped protrusion at the edge of the opening 1211 and the bending depth of the bend 1202 can be arranged according to the actual needs of the cable, and no specific limitation is made in the embodiments of this disclosure. Furthermore, for multi-core cables, it can better solve problems such as difficulty in insertion and poor contact, ensuring the safety and reliability of the electrical connection.
[0053] In some embodiments, the elastic element 140 of the wiring assembly includes an overlapping portion, an actuating portion, and an elastic bending portion to ensure stable crimping after cable insertion and to improve cable guidance and contact reliability.
[0054] The overlapping portion is arranged on the support member 130 and abuts against the overlapping wall of the support member 130, which is located on the opposite side of at least one insertion port 150. This arrangement ensures that the elastic member 140 can be stably fixed on the support member 130, providing appropriate elastic force when the cable is inserted.
[0055] The end of the actuating part has at least one pressing part 141 and at least one guiding part 142. When the cable is inserted, the pressing part 141 can press the cable between the elastic member 140 and the conductive section 121 under the action of elastic force, thereby ensuring the reliability of the electrical connection. The guiding part 142 is used to form a dynamic guiding path when the cable is inserted, so that the cable can be inserted in a predetermined direction and avoid cable misalignment or incomplete insertion.
[0056] Furthermore, a flexible bending portion is arranged between the overlapping portion and the actuating portion to provide elastic force. Its bending structure allows the elastic element 140 to deform appropriately when subjected to cable insertion force, thereby achieving automatic adaptation and stable clamping of the cable. After cable insertion, the flexible bending portion returns to its proper position, firmly pressing the cable into the wiring assembly, thus ensuring long-term reliable electrical contact.
[0057] See also Figure 1 , Figure 2 and Figure 4 In some embodiments, at least one pressing portion 141 of the elastic member 140 includes a first pressing portion 1401. This first pressing portion 1401 is positioned aligned with the first insertion port 1501 to provide reliable crimping force for the first cable of the two cables. Specifically, when the first cable is inserted into the first insertion port 1501, the first cable is pressed between the first pressing portion 1401 and the body 1201, ensuring a stable electrical connection between the cable and the wiring assembly 120. The first pressing portion 1401, through the elastic force of the elastic member 140, maintains tight contact between the cable and the conductive section 121, preventing poor contact or electrical safety hazards caused by incomplete insertion or weak contact.
[0058] The first guide portion 1403 is coupled to the first pressing portion 1401 and configured to guide the first cable to move along the insertion direction A. The first guide portion 1403 and at least one of the bending edges 1202 provide a dynamic guide path, ensuring that the first cable is undisturbed during insertion and can enter the wiring assembly 120 along a predetermined direction. The first guide portion 1403 prevents the cable from rubbing against or misaligning with other components, thereby improving the accuracy of cable insertion.
[0059] In this way, the first cable is well guided and crimped during insertion, ensuring stable cable connection and efficient transmission. The combination of the first pressing part 1401 and the first guiding part 1403 simplifies the insertion operation and improves the reliability and safety of the electrical connection. This structure can solve problems such as poor contact, misalignment, and insertion difficulties that may occur during cable insertion.
[0060] In some embodiments, at least one pressing portion 141 of the elastic member 140 includes a second pressing portion 1402. The second pressing portion 1402 is arranged aligned with the second insertion port 1502 to provide crimping force to the second cable of the two cables. Specifically, when the second cable is inserted into the second insertion port 1502, the second cable is pressed between the second pressing portion 1402 and the body 1201, ensuring a stable electrical connection between the second cable and the wiring assembly 120. The second pressing portion 1402, through the elastic force of the elastic member 140, maintains tight contact between the second cable and the conductive section 121, preventing poor contact or electrical safety hazards caused by incomplete insertion or weak contact.
[0061] It is worth noting that there is a preset distance between the second pressing part 1402 and the first pressing part 1401. This ensures that the first cable and the second cable will not interfere with each other during the crimping process, and ensures that each cable can independently and securely contact the body 1201 of the conductive section 121 of the wiring assembly 120, thereby improving the overall safety and stability of the wiring. In this way, parallel connection of two cables can be handled, avoiding the common contact problems when multiple cables are connected in parallel.
[0062] Furthermore, the second guide portion 1404 is coupled to the second pressing portion 1402 to guide the second cable to move smoothly along the insertion direction A. The second guide portion 1404 and the second bending edge 1202 of at least one bending edge 1202 provide a dynamic guiding path, enabling the second cable to enter the wiring assembly 120 accurately and smoothly along the predetermined insertion direction A, avoiding cable misalignment or friction during insertion, and ensuring tight contact and stable electrical connection between the cable and the conductive section 121.
[0063] In this way, the second cable can be reliably guided and crimped during insertion, ensuring stable cable access and efficient transmission. The combination of the second pressing part 1402 and the second guiding part 1404 improves the overall performance of the wiring assembly 120, while also providing the ability to connect multiple cables, ensuring the efficiency and safety of the electrical connection.
[0064] In some embodiments, the elastic member 140 is further formed with a separation gap extending along the extending direction of the elastic member 140 from the end of the actuating portion to a portion of the overlapping portion. This separation gap separates the first guide portion 1403 and the second guide portion 1404 from each other, preventing them from interfering with each other during cable insertion, thereby improving the cable's guidance and insertion stability.
[0065] Specifically, the separation gap allows the first guide portion 1403 and the second guide portion 1404 to guide the corresponding cables into their respective insertion ports, ensuring that the two cables maintain independent movement paths during insertion and preventing the cables from squeezing or misaligning. Furthermore, the extension of the separation gap to a portion of the overlap portion gives the elastic element 140 better flexibility and adjustment capabilities when deformed under stress, enabling it to adapt to cables of different specifications and maintain a stable clamping force.
[0066] Various implementations of this disclosure have been described above. These descriptions are exemplary and not exhaustive, nor are they limited to the disclosed implementations. Many modifications and variations will be apparent to those skilled in the art without departing from the scope and spirit of the described implementations. The terminology used herein is chosen to best explain the principles, practical applications, or improvements to technology in the market, or to enable others skilled in the art to understand the various implementations disclosed herein.
Claims
1. A wiring assembly for a socket, characterized in that, include: At least one conductive segment (121) is integrally formed on the socket's insert segment (110) and adapted for electrical connection to a cable, each of the at least one conductive segment (121) comprising: The body (1201) includes an opening (1211) and at least one bent edge (1202) extending parallel to the insertion direction (A) of the cable, wherein the edge of the opening (1211) along the insertion direction (A) and the at least one bent edge (1202) form at least one static guide path; Support member (130), coupled to the body (1201) to form together with the body (1201) at least one insertion port (150) for insertion of the cable; and An elastic element (140) is coupled to the support element (130) and includes: At least one guide portion (142) is arranged in the opening (1211) and adapted to form at least one dynamic guide path with the at least one bent edge (1202) to guide the cable inserted from the at least one insertion port (150) along with the at least one static guide path.
2. The wiring assembly according to claim 1, characterized in that, The support member (130) includes: A first support (1301) is coupled to the body (1201), and the first support (1301) divides the at least one insertion port (150) into a first insertion port (1501) and a second insertion port (1502) for inserting the two cables respectively.
3. The wiring assembly according to claim 2, characterized in that, The support member (130) is formed with the first insertion port (1501) and the second insertion port (1502), and the portion opposite to the body (1201) is formed as a concave arc shape.
4. The wiring assembly according to claim 2, characterized in that, The support member (130) also includes: The second support (1302) is arranged opposite the first support (1301) in the insertion direction (A) so that the elastic element (140) is arranged between the first support (1301) and the second support (1302), and The body (1201) includes a pair of coupling holes (1204) for the first support (1301) and the second support (1302) to pass through the body (1201). The ends of the first support (1301) and the second support (1302) that pass through the body (1201) are formed with bends (1303).
5. The wiring assembly according to any one of claims 2-4, characterized in that, The elastic element (140) includes: At least one pressing portion (141) is arranged to be at least partially aligned with the static guide path to press the cable inserted into the wiring assembly between the elastic member (140) and the at least one conductive segment (121).
6. The wiring assembly according to any one of claims 1-4, characterized in that, The body (1201) has a planar structure, and the edge of the opening (1211) along the insertion direction (A) has an arc-shaped structure.
7. The wiring assembly according to claim 5, characterized in that, The elastic element (140) includes: The overlapping portion is arranged to abut against the overlapping wall of the support (130) opposite to the at least one insertion port (150); The actuating part, wherein at least one pressing part (141) and at least one guiding part (142) are formed at its end; and An elastic bending portion is disposed between the overlapping portion and the actuating portion and is adapted to provide an elastic force that presses the cable against the elastic member (140) and the at least one conductive segment (121).
8. The wiring assembly according to claim 7, characterized in that, The at least one pressing part (141) includes: A first pressing portion (1401) is arranged aligned with the first insertion port (1501) so that the first cable of the two cables is pressed between the first pressing portion (1401) and the body (1201), and the at least one guide portion (142) includes: The first guide portion (1403) is coupled to the first pressing portion (1401) so that the first cable can move along the insertion direction (A).
9. The wiring assembly according to claim 8, characterized in that, The at least one pressing part (141) includes: A second pressing part (1402) is arranged aligned with the second insertion port (1502) so that the second cable of the two cables is pressed between the second pressing part (1402) and the body (1201), and there is a predetermined distance between the second pressing part (1402) and the first pressing part (1401), and the at least one guide part (142) includes: The second guide portion (1404) is coupled to the second pressing portion (1402) so that the second cable can move along the insertion direction (A).
10. The wiring assembly according to claim 9, characterized in that, The elastic member (140) also has a separation gap that extends from the end of the actuating part to a portion of the overlapping part along the extending direction of the elastic member (140) to separate the first guide part (1403) and the second guide part (1404).
11. A switching device, characterized in that, include: Insert segment (110); and According to any one of claims 1-10, at least one conductive segment (121) of the wiring assembly (120) is integrally formed on the socket segment (110), and is adapted to supply power to an external device via the socket segment (110) when the wiring assembly is electrically connected to a cable.