Socket with novel wire pressing structure

By incorporating a conductive sheet limiting structure and a quick-release wire clamping structure, the problem of loose quick-release wiring in sockets is solved, achieving a stable and reliable electrical connection and improving the installation efficiency and safety of sockets.

CN223986803UActive Publication Date: 2026-03-10WENZHOU ZHENGRUI TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2026-01-14
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

The existing socket's quick-release wiring structure and split design affect the structural strength of the junction box, making installation cumbersome and prone to loosening, leading to unstable use and safety hazards. Furthermore, loose copper contacts can cause poor contact.

Method used

It adopts an internal quick-release wire clamping component, including a conductive sheet limiting structure and a quick-release wire clamping structure. By pressing the quick-release wire clamping structure, the wire clamping gap is widened, making it easier to insert the wire, and the wire is restored to a tight state under the action of elasticity, ensuring a stable connection.

Benefits of technology

It improves the installation efficiency and stability of the socket, reduces installation difficulty and cost, avoids poor contact and safety hazards caused by loosening, and extends its service life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223986803U_ABST
    Figure CN223986803U_ABST
Patent Text Reader

Abstract

The utility model relates to a socket with a novel wire pressing structure. The arrangement of a quick-release wire pressing piece can flexibly adjust a wire pressing gap formed on a conducting strip assembly. When a wire needs to be connected, only one end, extending out of the inner cavity, of the quick-release wire pressing structure needs to be pressed, the end, abutting against the conducting strip assembly, of the quick-release wire pressing structure can exert pressure on the conducting strip assembly, and therefore the wire pressing gap is enlarged, and the wire can be easily inserted into the wire pressing gap through the wire inlet hole.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to a switch socket technical field, concretely relates to a socket with novel line pressing structure. BACKGROUND

[0002] In prior art, the quick release wiring structure of the socket is usually split type and is directly mounted on the wiring box outside the wiring box of the socket, a larger mounting hole needs to be formed on the wiring box, which not only affects the overall structural strength of the wiring box, but also makes the mounting process more complicated, meanwhile, the split type structure is prone to loosening and falling off during long-term use, which affects the use safety and stability of the socket. SUMMARY

[0003] Therefore, the utility model provides a socket with novel line pressing structure.

[0004] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:

[0005] A socket with novel line pressing structure, comprising a wiring box and a socket panel, the socket panel is arranged on one side of the wiring box, an inner cavity is formed in the wiring box, the inner cavity has a conductive sheet assembly, a line pressing gap is formed on the conductive sheet assembly, a quick release line pressing piece for limiting and fixing the conductive sheet assembly is arranged in the inner cavity, the quick release line pressing piece has a conductive sheet limiting structure and a quick release line pressing structure, the conductive sheet limiting structure presses the conductive sheet assembly in the inner cavity, a line pressing hole is formed on the wiring box, the quick release line pressing structure is swing-connected with the conductive sheet limiting structure, one end of the quick release line pressing structure extends out of the inner cavity through the line pressing hole, the other end of the quick release line pressing structure abuts against the conductive sheet assembly, and pressing one end of the quick release line pressing structure extending out of the inner cavity makes the quick release line pressing structure abutting against one end of the conductive sheet assembly to exert pressure on the conductive sheet assembly and further expand the line pressing gap.

[0006] Preferably, the quick release line pressing structure has a pressing end and a line pressing end, the pressing end is protruded on the conductive sheet limiting structure, the pressing end extends out of the inner cavity through the line pressing hole, the line pressing end is protruded on the side end face of the pressing end close to the conductive sheet assembly, a line pressing groove is formed on the inner side of the wiring box close to the conductive sheet assembly and communicates with the inner cavity and the outer part of the inner cavity, the line pressing groove is communicated with the line pressing hole, and the line pressing end away from the pressing end extends into the inner cavity through the line pressing groove and abuts against the conductive sheet assembly.

[0007] Preferably, the inner cavity has a conductive sheet positioning part, the conductive sheet assembly is disposed in the conductive sheet positioning part, and the conductive sheet limiting structure is disposed in a cap shape on one side of the conductive sheet positioning part to limit and fix the conductive sheet assembly in the conductive sheet positioning part.

[0008] Preferably, the conductive sheet assembly includes a plurality of conductive sheet bodies and an elastic clamping member disposed on the conductive sheet bodies. The conductive sheet body has a plug-in portion and a wiring portion. The wiring portion has two wiring arms, and a mounting groove for placing the elastic clamping member is formed between the two wiring arms. The elastic clamping member is disposed in the mounting groove. The wire clamping gap is formed between the elastic clamping member and the groove wall of the mounting groove. The mounting groove has a slot for a quick-release wire clamping structure to extend into. One end of the quick-release wire clamping structure extends into the mounting groove through the slot of the mounting groove and abuts against the elastic clamping member.

[0009] Preferably, the elastic clamping member has a body portion and a first pressure line structure and a second pressure line structure disposed on the body portion. The first pressure line structure and the second pressure line structure are respectively formed by bending the two sides of the body portion toward the mounting groove opening. The first pressure line structure includes two first pressure line arms. The two first pressure line arms protrude near the center of the body portion to form a lower pressure portion that connects with the quick-release pressure line structure. The lower pressure portion is bent toward the center of the body portion.

[0010] Preferably, the second pressure structure includes two S-shaped second pressure arms, and the pressure gap is formed at the top of the two second pressure arms and the top of the two first pressure arms, respectively.

[0011] Preferably, the junction box is also provided with a multi-functional interface, the junction box has an interface mounting slot, the multi-functional interface is disposed in the interface mounting slot, a rear cover is provided on the side of the junction box away from the socket panel, a rear cover groove is formed in the rear cover, the rear cover groove communicates with the interface mounting slot, a circuit board is disposed in the rear cover groove, and the circuit board is connected to the multi-functional interface.

[0012] Preferably, a connecting line is provided between the circuit board and the conductive sheet assembly, and the conductive sheet assembly is provided with a connecting end for welding the connecting line, and the connecting line is welded and fixed between the connecting end and the circuit board.

[0013] Preferably, the conductive sheet limiting structure and the quick-release pressure wire structure are integrally formed by injection molding.

[0014] The beneficial effects of this invention are as follows: the quick-release wire clamping mechanism allows for flexible adjustment of the wire clamping gap formed on the conductive sheet assembly. When a wire needs to be connected, simply press one end of the quick-release wire clamping mechanism extending from the inner cavity. The quick-release wire clamping mechanism presses against one end of the conductive sheet assembly, applying pressure to the assembly and widening the wire clamping gap, allowing the wire to be easily inserted through the inlet hole. After the wire is inserted, releasing the pressure allows the quick-release wire clamping mechanism to return to its original shape under its own elasticity or the action of related structures, continuing to firmly press against the conductive sheet assembly, ensuring sufficient pressure on the wire and achieving a stable and reliable electrical connection. This design not only greatly improves the installation efficiency of the socket but is also simple and convenient to operate, requiring no additional tools and reducing installation difficulty and cost. Furthermore, the conductive sheet limiting structure in the quick-release wire clamping mechanism provides a stable limiting effect on the conductive sheet assembly, ensuring that the assembly does not shake or shift within the inner cavity, thus guaranteeing the stability and reliability of the entire socket structure. During long-term use, even if the socket is subjected to certain external impacts or vibrations, the conductive sheet limiting structure can firmly fix the conductive sheet assembly, avoiding electrical faults such as poor contact and short circuits caused by loose conductive sheet assembly, thereby extending the service life of the socket and improving the safety of use. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Appendix Figure 1 This is a schematic diagram of the structure of this utility model;

[0017] Appendix Figure 2 The attached diagram shows another angle of view.

[0018] Appendix Figure 3 For the appendix Figure 1 Structural breakdown diagram;

[0019] Appendix Figure 4 This is a schematic diagram showing the connection between the junction box and the rear seat cover.

[0020] Appendix Figure 5 This is an exploded view of the junction box structure;

[0021] Appendix Figure 6 This is a schematic diagram of the junction box structure;

[0022] Appendix Figure 7 This is a schematic diagram showing the connection between the quick-release pressure wire component and the conductive sheet assembly;

[0023] Appendix Figure 8 This is a schematic diagram of the conductive sheet assembly structure;

[0024] Appendix Figure 9 For the appendix Figure 8 Structural breakdown diagram. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0026] The present invention will now be further described with reference to the accompanying drawings.

[0027] This utility model provides the following technical solution:

[0028] As attached Figures 1-9As shown, this utility model discloses a socket with a novel wire clamping structure, including a junction box 1 and a socket panel 2. The socket panel 2 is disposed on one side of the junction box 1. An inner cavity 3 is formed inside the junction box 1. The inner cavity 3 has a conductive sheet assembly 4. A wire clamping gap 5 is formed on the conductive sheet assembly 4. A quick-release wire clamping component 6 is disposed inside the inner cavity 3 to limit and fix the conductive sheet assembly 4. The quick-release wire clamping component 6 has a conductive sheet limiting structure 7 and a quick-release wire clamping structure 8. The conductive sheet limiting structure 7 presses the conductive sheet assembly 4 inside the inner cavity 3. A wire clamping hole 9 is opened on the junction box 1. The quick-release wire clamping structure 8 swings and connects with the conductive sheet limiting structure 7. One end of the quick-release wire clamping structure 8 extends out of the inner cavity 3 through the wire clamping hole 9. The other end of the quick-release wire clamping structure 8 abuts against the conductive sheet assembly 4. Pressing the end of the quick-release wire clamping structure 8 extending out of the inner cavity 3 causes the end of the quick-release wire clamping structure 8 abutting against the conductive sheet assembly 4 to apply pressure to the conductive sheet assembly 4, thereby widening the wire clamping gap 5. Specifically, in this design, the quick-release wire clamping component 6 allows for flexible adjustment of the wire clamping gap 5 formed on the conductive sheet assembly 4. When a wire needs to be connected, simply press one end of the quick-release wire clamping structure 8 extending from the inner cavity 3. The quick-release wire clamping structure 8 will press against one end of the conductive sheet assembly 4, thereby widening the wire clamping gap 5 and allowing the wire to be easily inserted into the wire clamping gap 5 through the inlet hole 32. After the wire is inserted, releasing the pressing hand will allow the quick-release wire clamping structure 8 to return to its original shape under its own elasticity or the action of related structures, continuing to firmly press against the conductive sheet assembly 4, ensuring that the conductive sheet assembly 4 exerts sufficient pressure on the wire, achieving a stable and reliable electrical connection. This design not only greatly improves the installation efficiency of the socket but also makes operation simple and convenient, requiring no additional tools and reducing the difficulty and cost of installation. Furthermore, the conductive sheet limiting structure 7 in the quick-release wire clamping component 6 in this design provides a stable limiting effect on the conductive sheet assembly 4, ensuring that the conductive sheet assembly 4 will not shake or shift arbitrarily within the inner cavity 3, thus guaranteeing the stability and reliability of the entire socket structure. During long-term use, even if the socket is subjected to certain external impacts or vibrations, the conductive sheet limiting structure 7 can firmly fix the conductive sheet assembly 4, avoiding electrical faults such as poor contact and short circuits caused by the loose conductive sheet assembly 4, thereby extending the service life of the socket and improving the safety of use.

[0029] Specifically, the quick-release wire clamp 6 in this design adopts an internal structure. This internal structure means that the quick-release wire clamp 6 is installed entirely within the inner cavity 3 of the junction box 1, forming a tight whole with the junction box 1. Compared with the external structure, the internal structure can better protect the quick-release wire clamp 6 from external environmental corrosion and damage, such as dust, moisture, and corrosive substances. At the same time, the internal structure also makes the socket look cleaner and more aesthetically pleasing, reducing external protrusions and gaps, and lowering the risk of failure caused by external factors. Moreover, the internal structure is more convenient to install and disassemble. Only the corresponding part of the junction box 1 needs to be opened to operate the quick-release wire clamp 6, without the need for large-scale disassembly of the entire socket, further improving the efficiency of installation and maintenance.

[0030] Furthermore, the quick-release wire clamping structure 8 has a pressing end 10 and a wire clamping end 11. The pressing end 10 protrudes from the conductive sheet limiting structure 7 and extends out of the inner cavity 3 through the wire clamping hole 9. The wire clamping end 11 protrudes from the end face of the pressing end 10 near the conductive sheet assembly 4. A wire clamping groove 12 is formed on the inner side of the junction box 1 near the conductive sheet assembly 4, connecting the inner cavity 3 and the outside of the inner cavity 3. The wire clamping groove 12 communicates with the wire clamping hole 9. The side of the wire clamping end 11 away from the pressing end 10 extends into the inner cavity 3 through the wire clamping groove 12 and abuts against the conductive sheet assembly 4. Specifically, in this embodiment, the pressing end 10 allows for easy control of the wire clamping end 11's movement during wiring by pressing. When the user presses the pressing end 10, the wire clamping end 11 moves synchronously, applying pressure to the conductive sheet assembly 4, thereby widening the wire clamping gap 5 and providing sufficient space for wire insertion. This design simplifies and speeds up the wiring process, eliminating the need for complex procedures or specialized tools. Simultaneously, the crimping end 11 applies precise pressure to the conductive sheet assembly 4 under the action of the pressing end 10. The design of the crimping end 11 fully considers the contact area and pressure distribution with the conductive sheet assembly 4, ensuring a uniform and stable expansion of the crimping gap 5 during pressure application, avoiding difficulties in wire insertion or poor contact caused by uneven pressure. Furthermore, the crimping end 11 extends into the inner cavity 3 through the crimping groove 12 to abut against the conductive sheet assembly 4. This design makes the connection between the crimping end 11 and the conductive sheet assembly 4 tighter and more reliable, less prone to loosening or detachment due to external forces. In addition, the crimping groove 12 also serves as a guide and positioning feature, allowing the crimping end 11 to accurately locate and abut against the conductive sheet assembly 4, improving the accuracy and efficiency of the wiring.

[0031] Furthermore, the inner cavity 3 has a conductive sheet positioning part 13, and the conductive sheet assembly 4 is disposed within the conductive sheet positioning part 13. The conductive sheet limiting structure 7 is disposed in a cap shape on one side of the conductive sheet positioning part 13 to limit and fix the conductive sheet assembly 4 within the conductive sheet positioning part 13. Specifically, in this embodiment, the conductive sheet positioning part 13 provides a precise installation position for the conductive sheet assembly 4, ensuring that the conductive sheet assembly 4 can be accurately placed in the inner cavity 3, avoiding electrical connection problems caused by inaccurate installation position. The conductive sheet limiting structure 7 is cap-shaped, which can fit tightly against one side of the conductive sheet positioning part 13 to securely limit and fix the conductive sheet assembly 4. This cap-shaped design not only increases the stability of the limiting and fixing but also makes the entire structure more compact, reducing unnecessary space occupation. At the same time, the cap-shaped design also facilitates the installation and removal of the conductive sheet assembly 4. Simply opening or closing the conductive sheet limiting structure 7 allows for easy operation of the conductive sheet assembly 4 without complicated tools or steps. This design not only improves the installation efficiency of the socket, but also reduces the difficulty of installation and maintenance, making it easier for users to use and maintain the socket.

[0032] Furthermore, the conductive sheet assembly 4 includes a plurality of conductive sheet bodies 14 and elastic clamping members 15 disposed on the conductive sheet bodies 14. Each conductive sheet body 14 has a plug-in portion 16 and a wiring portion 17. The wiring portion 17 has two wiring arms 18, and a mounting groove 19 for placing the elastic clamping member 15 is formed between the two wiring arms 18. The elastic clamping member 15 is disposed within the mounting groove 19. The wire clamping gap 5 is formed between the elastic clamping member and the groove wall of the mounting groove 19. The mounting groove 19 has a slot for a quick-release wire clamping structure 8 to extend into. One end of the quick-release wire clamping structure 8 extends into the mounting groove 19 through the slot and abuts against the elastic clamping member 15. Specifically, in this embodiment, the plug-in portion 16 of the conductive sheet body 14 is designed for electrical connection with an external plug to ensure smooth current transmission. The wiring portion 17, through its unique two wiring arms 18 structure, forms the mounting groove 19 for placing the elastic clamping member 15. This design not only allows the elastic clamping member 15 to be securely mounted on the conductive sheet body 14, but also provides flexible space for wire insertion through the wire clamping gap 5 formed between the elastic clamping member 15 and the groove wall of the mounting groove 19. When the quick-release wire clamping structure 8 extends into the mounting groove 19 and abuts against the elastic clamping member 15, the elastic clamping member 15 deforms, thereby widening the wire clamping gap 5, allowing the wire to be easily inserted. At the same time, the elasticity of the elastic clamping member 15 ensures that when the quick-release wire clamping structure 8 is released, it can return to its original shape and continue to tightly clamp the wire, ensuring the stability and reliability of the electrical connection. In addition, the groove design of the mounting groove 19 also fully considers the insertion requirements of the quick-release wire clamping structure 8, making the entire wiring process smoother and more unobstructed.

[0033] Furthermore, the elastic clamping member 15 has a body portion 20 and a first clamping structure 21 and a second clamping structure 22 disposed on the body portion 20. The first clamping structure 21 and the second clamping structure 22 are respectively formed by bending both sides of the body portion 20 towards the opening of the mounting groove 19. The first clamping structure 21 includes two first clamping arms 23. Both first clamping arms 23 protrude near the center of the body portion 20 to form a pressing portion 24 that connects with the quick-release clamping structure 8. The pressing portion 24 is bent towards the center of the body portion 20. Specifically, in this embodiment, the body portion 20 of the elastic clamping member 15 serves as the basic structure of the entire elastic clamping member 15, providing stable support for the first clamping structure 21 and the second clamping structure 22. The first clamping structure 21 and the second clamping structure 22 are respectively formed by bending both sides of the body portion 20 towards the opening of the mounting groove 19. This unique design allows them to apply pressure to the wire in different directions, enhancing the stability and reliability of the clamping. In the first wire clamping structure 21, the two first wire clamping arms 23 protrude on the side near the center of the main body 20 to form a pressing portion 24 that connects with the quick-release wire clamping structure 8. The pressing portion 24 is bent towards the center of the main body 20. This design allows the pressing portion 24 to effectively transfer pressure to the first wire clamping arms 23 when the quick-release wire clamping structure 8 extends into the mounting groove 19 and abuts against the pressing portion 24. This allows the first wire clamping arms 23 to apply uniform pressure to the wire, ensuring that the wire is securely connected to the conductive sheet assembly 4. At the same time, this bending arrangement increases the contact area between the pressing portion 24 and the quick-release wire clamping structure 8, improving the efficiency of pressure transmission and reducing the risk of component damage due to pressure concentration.

[0034] Furthermore, the second wire clamping structure 22 includes two S-shaped second wire clamping arms 25, with clamping gaps 5 formed at the top ends of the two second wire clamping arms 25 and the top ends of the two first wire clamping arms 23, respectively. Specifically, in this embodiment, the unique shape design of the two S-shaped second wire clamping arms 25 of the second wire clamping structure 22 allows them to generate a gentler and more uniform pressure when in contact with the wire. The S-shaped bends better adapt to the shape of the wire, reducing wire damage caused by concentrated pressure and improving the stability of the clamping. The clamping gaps 5 formed at the top ends of the two second wire clamping arms 25 and the top ends of the two first wire clamping arms 23 not only provide ample space for wire insertion but also ensure that the wire is fixed by pressure from multiple directions after insertion, further enhancing the reliability of the electrical connection. When the wire is inserted, it is simultaneously subjected to pressure from the first wire clamping arms 23 and the second wire clamping arms 25. This multi-directional clamping method makes the wire more secure in the socket and less prone to loosening or falling off due to external forces.

[0035] In another embodiment, the junction box 1 is further provided with a multi-functional interface 26. An interface mounting slot 27 is formed on the junction box 1, and the multi-functional interface 26 is disposed within the interface mounting slot 27. A rear cover 28 is provided on the side of the junction box 1 away from the socket panel 2. A rear cover groove 29 is formed within the rear cover 28, communicating with the interface mounting slot 27. A circuit board 30 is disposed within the rear cover groove 29, and the circuit board 30 is connected to the multi-functional interface 26. Specifically, in this embodiment, the multi-functional interface 26 includes both a USB interface and a Type-C interface. The addition of these two interfaces greatly expands the usage scenarios and convenience of the socket. Placing the multi-functional interface 26 within the interface mounting slot 27 of the junction box 1 effectively protects the interface, preventing damage from external impacts. Simultaneously, the design of the rear cover 28 not only makes the overall appearance of the socket neater and more aesthetically pleasing but also provides a stable mounting space for the internal circuit board 30. The circuit board 30 is connected to the multi-functional interface 26, enabling power supply and signal transmission control of the interface, ensuring its normal and stable operation. Moreover, this design facilitates subsequent maintenance and upgrades. When it is necessary to replace or repair the circuit board 30, the operation can be carried out simply by opening the rear cover 28, without the need for large-scale disassembly of the entire socket, which greatly improves maintenance efficiency.

[0036] Furthermore, a connecting wire (not shown) is provided between the circuit board 30 and the conductive sheet assembly 4, and they are electrically connected through the connecting wire. The conductive sheet assembly 4 is provided with a connecting end 31 for welding the connecting wire, and the connecting wire, the connecting end 31, and the circuit board 30 are welded and fixed together. Specifically, in this embodiment, the circuit board 30 and the conductive sheet assembly 4 are electrically connected through a connecting wire, which ensures that the current can be stably transmitted between them. The conductive sheet assembly 4 is specially provided with a connecting end 31 for welding the connecting wire, which makes the fixing of the connecting wire more secure and reliable. During the welding process, the connecting wire, the connecting end 31, and the circuit board 30 are tightly connected by melting metal at high temperature. This welding method not only has high connection strength but also stable electrical performance and can effectively resist interference and vibration from the external environment.

[0037] Furthermore, the conductive sheet limiting structure 7 and the quick-release pressure wire structure 8 are integrally formed by injection molding. Specifically, in this embodiment, the conductive sheet limiting structure 7 and the quick-release pressure wire structure 8 are integrally formed by injection molding. After injection molding, the quick-release pressure wire structure 8 can swing to a certain extent on the conductive sheet limiting structure 7, thereby pressing down the conductive sheet assembly 4 to expand the pressure wire gap 5.

[0038] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A socket with a new type of wire pressing structure, comprising a terminal box and a socket panel, the socket panel is arranged on one side of the terminal box, an inner cavity is formed in the terminal box, the inner cavity has a conductive sheet assembly, a wire pressing gap is formed on the conductive sheet assembly, characterized in that: The quick release wire pressing part is provided in the inner cavity for limiting and fixing the conductive sheet assembly, the quick release wire pressing part has a conductive sheet limiting structure and a quick release wire pressing structure, the conductive sheet limiting structure is pressed against the conductive sheet assembly in the inner cavity, the wire pressing hole is formed on the junction box, the quick release wire pressing structure is swing connected with the conductive sheet limiting structure, one end of the quick release wire pressing structure extends out of the inner cavity through the wire pressing hole, the other end of the quick release wire pressing structure abuts against the conductive sheet assembly, and pressing one end of the quick release wire pressing structure extending out of the inner cavity makes the other end of the quick release wire pressing structure abutting against the conductive sheet assembly to exert pressure on the conductive sheet assembly and further expand the wire pressing gap.

2. The socket with a novel wire pressing structure according to claim 1, characterized in that: The quick release wire pressing structure has a pressing end and a wire pressing end, the pressing end is protruded on the conductive sheet limiting structure, the pressing end extends out of the inner cavity through the wire pressing hole, the wire pressing end is protruded on the side end face of the pressing end close to the conductive sheet assembly, the wire pressing groove is formed in the inner side of the junction box close to the conductive sheet assembly and communicates with the inner cavity and the outer cavity, the wire pressing groove is communicated with the wire pressing hole, and the wire pressing end away from the pressing end extends into the inner cavity through the wire pressing groove and abuts against the conductive sheet assembly.

3. The socket with novel wire pressing structure according to claim 1, characterized in that: The inner cavity has a conductive sheet positioning part, the conductive sheet assembly is arranged in the conductive sheet positioning part, and the conductive sheet limiting structure is arranged on one side of the conductive sheet positioning part in a cover shape to limit and fix the conductive sheet assembly in the conductive sheet positioning part.

4. The socket with novel wire pressing structure according to claim 1, characterized in that: The conductive sheet assembly comprises a plurality of conductive sheet bodies and elastic pressing parts arranged on the conductive sheet bodies, the conductive sheet body has a plug-in part and a wire connecting part, the wire connecting part has two wire connecting arms, an installation groove for arranging the elastic pressing part is formed between the two wire connecting arms, the elastic pressing part is arranged in the installation groove, the wire pressing gap is formed between the elastic pressing part and the groove wall of the installation groove, the installation groove has a groove opening for extending the quick release wire pressing structure, and one end of the quick release wire pressing structure extends into the installation groove through the groove opening of the installation groove and abuts against the elastic pressing part.

5. The socket with novel wire pressing structure according to claim 4, characterized in that: The elastic pressing part has a body part and first and second wire pressing structures arranged on the body part, the first and second wire pressing structures are respectively formed by bending the two sides of the body part towards the installation groove opening, the first wire pressing structure comprises two first wire pressing arms, the two first wire pressing arms close to the center of the body part are respectively protruded to form a pressing part which is swing connected with the quick release wire pressing structure, and the pressing part is arranged by bending towards the center of the body part.

6. The socket with novel wire pressing structure according to claim 5, characterized in that: The second wire pressing structure comprises two second wire pressing arms arranged in an S shape, and the wire pressing gap is respectively formed at the top end of the two second wire pressing arms and the top end of the two first wire pressing arms.

7. The socket with novel wire pressing structure according to claim 1, characterized in that: A multifunctional interface is further arranged on the junction box, an interface installation groove is formed on the junction box, the multifunctional interface is arranged in the interface installation groove, a rear seat cover is arranged on the side of the junction box away from the socket panel, a rear cover groove is formed in the rear seat cover, the rear cover groove is communicated with the interface installation groove, a circuit board is arranged in the rear cover groove, and the circuit board is connected with the multifunctional interface.

8. The socket with novel wire pressing structure according to claim 7, characterized in that: The connecting line is arranged between the circuit board and the conductive sheet assembly and is electrically connected through the connecting line, the conductive sheet assembly is provided with a connecting end for welding the connecting line, and the connecting line is welded and fixed between the connecting end and the circuit board.

9. The socket with novel wire pressing structure according to claim 1, characterized in that: The conductive sheet limiting structure and the quick-release wire pressing structure are integrally formed through injection molding.