Conductive wiring assembly and electric equipment with same

The design of the snap-fit ​​structure and snap-fit ​​mating structure solves the problem of damage to components caused by the locking method of the terminal block, realizes non-destructive disassembly and assembly and simplifies operation, ensures electrical safety, and is suitable for conductive wiring assemblies.

CN223471861UActive Publication Date: 2025-10-24GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202422970251.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-03
Publication Date
2025-10-24
Estimated Expiration
2034-12-03

AI Technical Summary

Technical Problem

The existing method of tightening the nuts or bolts on the terminals can damage the terminals, affecting the connection strength and effective current carrying area, posing electrical safety hazards, and making disassembly and assembly inconvenient, especially in confined spaces.

Method used

It adopts a snap-fit ​​structure and a snap-fit ​​engagement structure, which realizes the locking and unlocking of the terminal block through the snap-fit ​​engagement of the socket and the plug section, avoiding damage to the components and simplifying the disassembly and assembly process.

Benefits of technology

It enables non-destructive assembly and disassembly of terminal blocks, simplifies the operation process, avoids electrical safety hazards, reduces the number of parts used, and is suitable for environments with limited space.

✦ Generated by Eureka AI based on patent content.

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Abstract

The conductive wiring assembly comprises a conductive rod and a wiring terminal, an insertion hole is formed in the conductive rod, a clamping structure is arranged in the insertion hole, the wiring terminal is provided with an insertion section, the insertion section is provided with a clamping matching structure, and after the insertion section is inserted into the insertion hole, the clamping matching structure is matched with the clamping matching structure. The clamping structure and the clamping matching structure form clamping matching so that the wiring terminal can be locked on the conducting rod, and after the clamping matching between the clamping structure and the clamping matching structure is removed, the wiring terminal is unlocked from the conducting rod. According to the utility model, compared with a mode of locking the wiring terminal by using a nut or a bolt in the prior art, the mode of locking the wiring terminal by using the clamping connection does not damage any part in the process of disassembling and assembling the wiring terminal, so that the connection strength and the effective current-carrying area of the conductive wiring assembly are not influenced; and electrical potential safety hazards do not exist.
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Description

Technical Field

[0001] The utility model belongs to the technical field of electrical equipment, and in particular relates to a conductive wiring assembly and electrical equipment having the same. Background Art

[0002] Currently, the most common method for securing the terminals of high-power electrical equipment is threaded locking, primarily using a screw and nut or bolt connection. Current is conducted laterally from the threaded portion of the terminal to the nut (or bolt), and then from the end of the nut (bolt cap) to the terminal. Nuts, as both the connector and current-carrying component, have limited current-carrying area and poor electrical conductivity, which can easily cause the terminal to overheat and even spark, damaging the terminal and the motor. Furthermore, securing the terminal with nuts or bolts has two major drawbacks: First, it is inconvenient to install and remove the terminal. Connecting the terminal typically requires a torque wrench with a specific torque to tighten the nut or screw, a cumbersome process that requires a large amount of space and is unsuitable for confined spaces. Second, frequent installation and removal of the locking nut or bolt on the terminal can severely damage the threads and terminal, compromising the connection strength and effective current-carrying area of ​​the terminal, posing a significant electrical safety hazard over time. Utility Model Content

[0003] Therefore, the utility model provides a conductive terminal assembly, which can solve the technical problem that the existing terminal posts use nuts or bolts to lock the terminal posts. Frequent disassembly and assembly of the locking nuts or bolts on the terminal posts will cause serious damage to the threads or the terminal posts, affecting the connection strength and effective current-carrying area of ​​the terminal posts, and will pose a great electrical safety hazard in the long run.

[0004] In order to solve the above problems, the utility model provides a conductive wiring assembly, including a conductive rod and a wiring terminal, wherein the conductive rod is constructed with a socket extending along its length direction, and a snap-fit ​​structure is provided in the socket. The wiring terminal has an inserting section, and the inserting section has a snap-fit ​​structure. After the inserting section is inserted into the socket, a snap-fit ​​is formed between the snap-fit ​​structure and the snap-fit ​​structure to lock the wiring terminal on the conductive rod. After the snap-fit ​​between the snap-fit ​​structure and the snap-fit ​​structure is released, the wiring terminal is unlocked from the conductive rod.

[0005] In some embodiments, the snap-fit ​​structure is a protrusion provided in the socket, and the snap-fit ​​structure is a slot constructed on the plug-in section. After the plug-in section is inserted into the socket, a snap-fit ​​is formed between the protrusion and the slot to lock the terminal block on the conductive rod. After the snap-fit ​​between the protrusion and the slot is released, the terminal block is unlocked from the conductive rod.

[0006] In some embodiments, the slot includes a first groove segment, a second groove segment, and a third groove segment, the first groove segment extends axially along the plug-in segment and extends to the free end of the plug-in segment, the second groove segment extends circumferentially along the plug-in segment, and the third groove segment extends axially along the plug-in segment, and the first groove segment is connected to the third groove segment through the second groove segment; the protrusion can slide in the first groove segment, the second groove segment, and the third groove segment, and after the protrusion slides from the first groove segment via the second groove segment into the third groove segment, a snap-fit ​​is formed between the protrusion and the slot, and after the protrusion slides from the third groove segment via the second groove segment into the first groove segment, the snap-fit ​​between the protrusion and the slot is released.

[0007] In some embodiments, an elastic component is further provided in the socket. When a snap-fit ​​is formed between the snap-fit ​​structure and the snap-fit ​​structure, the elastic component is clamped between the free end of the plug-in section and the bottom of the socket. The elastic component and the snap-fit ​​structure cooperate to limit the axial and circumferential movement of the terminal relative to the conductive rod.

[0008] In some embodiments, a force-applying seat capable of sliding in the socket is further provided in the socket, and the elastic component is located between the force-applying seat and the bottom of the socket. When the snap-fit ​​structure and the snap-fit ​​structure form a snap-fitting state, the plug-in section and the elastic component respectively abut the force-applying seat from both sides.

[0009] In some embodiments, the force-applying seat is a conductor, and the force-applying seat is also in contact with the hole wall of the jack.

[0010] In some embodiments, the clamping structure is a protrusion provided in the socket, and after the terminal is unlocked and removed from the conductive rod, the force applying seat is clamped between the protrusion and the elastic component.

[0011] In some embodiments, two of the snap-fit ​​structures are provided in the socket, and the two snap-fit ​​structures are symmetrically arranged in the socket. The plug-in section has two snap-fitting structures, and the two snap-fitting structures are symmetrically arranged on the plug-in section. After the plug-in section is plugged into the socket, the two snap-fitting structures respectively form a snap-fitting with the two snap-fitting structures to lock the terminal block on the conductive rod. When the snap-fitting between the two snap-fitting structures and the two snap-fitting structures is released, the terminal block is unlocked from the conductive rod.

[0012] In some embodiments, two said sockets are configured in the conductive rod, the openings of the two said sockets are respectively located at two ends of the conductive rod, two said clamping structures are arranged in the two said sockets, the number of the wire terminals is two, the two said plug-in segments are provided with clamping matching structures, after the two said plug-in segments are respectively plugged into the two said sockets, the clamping matching between the two said clamping structures and the two said clamping matching structures is formed to lock the two said wire terminals on the conductive rod, and when the clamping matching between the two said clamping structures and the two said clamping matching structures is released, the two said wire terminals are unlocked from the conductive rod.

[0013] The utility model also provides a kind of electric equipment, including the conductive wiring assembly of preceding.

[0014] The utility model provides a kind of conductive wiring assembly and the electric equipment with it, with following beneficial effects:

[0015] After the plug-in segment is inserted into the socket, the clamping matching between the clamping structure and the clamping matching structure is formed to lock the wire terminal on the conductive rod, thereby realizing the installation of the wire terminal; after the clamping matching between the clamping structure and the clamping matching structure is released, the wire terminal is unlocked from the conductive rod, thereby realizing the disassembly of the wire terminal. By using the clamping locking mode of the wire terminal, the present application does not damage any component during the disassembly and assembly of the wire terminal, so it does not affect the connection strength and effective current-carrying area of the conductive wiring assembly, and there is no electrical safety hazard. At the same time, during the disassembly and assembly of the wire terminal, tools are not needed, so the entire disassembly and assembly process is simple and can be performed in a small space. Further, since the wire terminal is locked on the conductive rod by the clamping matching between the clamping structure and the clamping matching structure, it does not need to use other components for locking, thereby reducing the use of parts and simplifying the assembly of the component. BRIEF DESCRIPTION OF DRAWINGS

[0016] In order to more clearly illustrate the embodiments of the utility model or the technical solutions in the prior art, the following will briefly introduce the drawings needed to be used in the description of embodiments or prior art. Obviously, the drawings in the following description are only exemplary, and those skilled in the art can also obtain other implementation drawings according to the provided drawings without creating any creative labor.

[0017] Figure 1 The cross-sectional view of the wire terminal of the conductive wiring assembly of the utility model embodiment locked on the conductive rod;

[0018] Figure 2The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0019] Figure 3 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0020] Figure 4 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0021] Figure 5 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0022] Figure 6 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0023] Figure 7 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0024] Figure 8 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0025] Figure 9 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0026] Figure 10 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole;

[0027] Figure 11 The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole.

[0028] The utility model discloses a conductive wiring assembly's wiring terminal's structure schematic diagram of the conductive wiring assembly's wiring terminal is locked on the conductive pole.

[0029] 1, the conductive pole; 2, the wiring terminal; 21, the plug-in section; 22, the wiring section; 3, the jack; 4, the protrusion; 5, the clamping groove; 51, the first recess section; 52, the second recess section; 53, the third recess section; 6, the elastic component; 7, the force seat; 8, the insulating sleeve; 9, the iron shell; 10, the sealing ring; 11, the positioning hole; 12, the partition. Specific implementation

[0030] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. The description of the at least one exemplary embodiment is merely illustrative in nature and in no way should be taken as any limitation on the present application and its application or uses. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of the present application.

[0031] In the description of the present application, it should be understood that the orientation words such as "front, back, up, down, left, right", "horizontal, vertical, perpendicular, horizontal" and "top, bottom" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and in the absence of the opposite description, these orientation words do not indicate and imply that the indicated device or element must have a specific orientation or be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the scope of protection of the present application; the orientation words "inner, outer" refer to the inner and outer of the contour of each component itself.

[0032] For the convenience of description, spatial relative terms such as "over", "above", "upper surface", "upper" and the like can be used herein to describe the spatial positional relationship of one device or feature with other devices or features as shown in the drawings. It should be understood that the spatial relative terms are intended to include different orientations in use or operation in addition to the orientation of the device described in the drawings. For example, if the device in the drawings is inverted, the device described as "above" or "over" other devices or structures will be positioned "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below" orientations. The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein are interpreted accordingly.

[0033] In addition, it should be noted that the use of "first", "second" and the like to define parts is only for the convenience of distinguishing the corresponding parts, and the above words have no special meaning unless otherwise stated, and therefore cannot be understood as a limitation on the scope of protection of the present application.

[0034] For reference Figures 1 to 11As shown, according to the embodiment of the utility model, provide a kind of electrically conductive wiring assembly, including electrically conductive pole 1 and wiring terminal 2, electrically conductive pole 1 is constructed with the insertion hole 3 extending along its length direction, the insertion hole 3 is provided with clamping structure, wiring terminal 2 has plug-in section 21, plug-in section 21 has clamping cooperation structure.After plug-in section 21 is inserted in insertion hole 3, clamping structure and clamping cooperation structure form clamping cooperation to make wiring terminal 2 lock on electrically conductive pole 1;After the clamping cooperation between clamping structure and clamping cooperation structure is released, wiring terminal 2 is unlocked from electrically conductive pole 1.

[0035] In the technical scheme, after plug-in section 21 is inserted in insertion hole 3, clamping structure and clamping cooperation structure form clamping cooperation to make wiring terminal 2 lock on electrically conductive pole 1, so that the installation of wiring terminal 2 is realized;After the clamping cooperation between clamping structure and clamping cooperation structure is released, wiring terminal 2 is unlocked from electrically conductive pole 1, so that the disassembly of wiring terminal is realized.By using clamping locking mode for wiring terminal 2 compared with the mode of locking wiring terminal 2 by nut or bolt in prior art, any component will not be damaged in the process of disassembling wiring terminal 2, so that the connection strength and effective current-carrying area of electrically conductive wiring assembly are not affected, and there is no electrical safety hazard.Meanwhile, in the process of disassembling wiring terminal 2, it is not necessary to use tools, so that the whole disassembly process is simple and can be carried out in a small space.Further, since wiring terminal 2 is locked on electrically conductive pole 1 by clamping cooperation of clamping structure and clamping cooperation structure, it is not necessary to use other components for locking, so that the use of components can be reduced, and assembly of components is simplified.Electrically conductive pole 1 is made of copper metal material with low resistance, good conductivity and corrosion resistance, such as T3, H62, etc.

[0036] For reference Figure 1 and Figure 2As shown, the clamping structure can be a protrusion 4 arranged in the insertion hole 3, and the clamping fitting structure can be a clamping groove 5 configured on the insertion section 21. After the insertion section 21 is inserted into the insertion hole 3, the clamping fitting between the protrusion 4 and the clamping groove 5 is formed to lock the terminal 2 on the conductive rod 1; after the clamping fitting between the protrusion 4 and the clamping groove 5 is released, the terminal 2 is unlocked from the conductive rod 1. Of course, the protrusion 4 can also be arranged on the insertion section 21, and the clamping groove 5 can be configured on the hole wall of the insertion hole 3, so that the terminal 2 can be detachably mounted on the conductive rod 1 in a clamping manner. However, after the insertion hole is configured on the conductive rod 1, the structural strength of the conductive rod 1 has been reduced, and if the clamping groove 5 is further configured on the conductive rod 1, the structural strength of the conductive rod 1 will be further reduced. Therefore, from the overall structural strength of the conductive terminal assembly, the application is more inclined to arrange the protrusion 4 in the insertion hole 3 and configure the clamping groove 5 on the insertion section 21. The protrusion 4 is made of copper metal material with low resistance, good conductivity and corrosion resistance, such as T3, H62, etc.

[0037] Referring to Figure 4 As shown, the clamping groove 5 includes a first groove section 51, a second groove section 52 and a third groove section 53. The first groove section 51 extends along the axial direction of the insertion section 21 and extends to the free end of the insertion section 21. The second groove section 52 extends along the circumferential direction of the insertion section 21. The third groove section 53 extends along the axial direction of the insertion section 21. The first groove section 51 communicates with the third groove section 53 through the second groove section 52. The protrusion 4 can slide in the first groove section 51, the second groove section 52 and the third groove section 53. After the protrusion 4 slides from the first groove section 51 to the third groove section 53 through the second groove section 52, the clamping fitting between the protrusion 4 and the clamping groove 5 is formed. After the protrusion 4 slides from the third groove section 53 to the first groove section 51 through the second groove section 52, the clamping fitting between the protrusion 4 and the clamping groove 5 is released.

[0038] In the embodiment, during the process of inserting the plug-in section 21 into the socket 3, the protrusion 4 slides along the first groove section 51 first, and then the terminal 2 is rotated in the first direction to make the protrusion 4 slide along the second groove section 52 to the intersection of the second groove section 52 and the third groove section 53, and then the terminal 2 is pulled to make the protrusion 4 slide into the third groove section 53, and then the protrusion 4 and the clamping groove 5 are clamped together to lock the terminal 2 on the conductive rod 1. When the terminal 2 is pushed to make the protrusion 4 slide to the intersection of the second groove section 52 and the third groove section 53, and then the terminal 2 is rotated in the direction opposite to the first direction to make the protrusion 4 slide along the second groove section 52 to the intersection of the first groove section 51 and the second groove section 52, and then the protrusion 4 is made to slide out of the first groove section 51, and then the clamping of the protrusion 4 and the clamping groove 5 is released, and then the terminal 2 is unlocked from the conductive rod 1. The first direction can be clockwise or counterclockwise, and the length of the third groove section 53 is less than the length of the first groove section 51. The terminal 2 further comprises a connecting section 22 connected to the plug-in section 21, and the outer diameter of the connecting section 22 is greater than the diameter of the plug-in section 21. The connecting section 22 is provided with a receiving groove for crimping a power line. The terminal 2 is made of a metal material with low resistance, good conductivity, corrosion resistance, wear resistance, and good ductility, such as copper and aluminum.

[0039] With reference to Figure 1 and Figure 2 As shown, the socket 3 is further provided with an elastic member 6. In the state that the clamping structure and the clamping cooperation structure are clamped together, the elastic member 6 is clamped between the free end of the plug-in section 21 and the bottom of the socket 3, and the elastic member 6 cooperates with the clamping structure to limit the axial and circumferential movement of the terminal 2 relative to the conductive rod 1.

[0040] In the technical solution, the clamping cooperation between the clamping structure and the clamping cooperation structure can lock the terminal 2 on the conductive rod 1, but the locking is not firm. When the elastic component 6 is arranged in the socket 3, the elastic force of the elastic component 6 on the insertion segment 21 can cooperate with the clamping cooperation between the clamping structure and the clamping cooperation structure to lock the terminal 2 on the conductive rod 1 more firmly. For example, when the clamping structure is the protrusion 4 arranged in the socket 3 and the clamping cooperation structure is the clamping groove 5 arranged on the insertion segment 21, in the state that the terminal 2 is locked on the conductive rod 1, the elastic component 6 exerts the elastic force on the insertion segment 21 to make the protrusion 4 abut against the end of the third groove segment 53, and then the elastic component 6 and the protrusion 4 cooperate to limit the axial and circumferential movement of the terminal 2 relative to the conductive rod 1, so that the locking of the terminal 2 on the conductive rod 1 is more firm. When the clamping structure is the clamping groove 5 arranged on the wall of the socket 3 and the clamping cooperation structure is the protrusion 4 arranged on the insertion segment 21, in the state that the terminal 2 is locked on the conductive rod 1, the elastic component 6 exerts the elastic force on the insertion segment 21 to make the protrusion 4 abut against the end of the third groove segment 53, and then the elastic component 6 and the clamping groove 5 cooperate to limit the axial and circumferential movement of the terminal 2 relative to the conductive rod 1, so that the locking of the terminal 2 on the conductive rod 1 is more firm. The elastic component 6 can be a spring, and the spring is made of a metal material with good toughness, high hardness, good elasticity and corrosion resistance, such as spring steel and stainless steel.

[0041] For reference Figure 1 and Figure 2 As shown in Figs. 3 and 4, the elastic component 6 is arranged between the force applying seat 7 and the bottom of the socket 3, and the insertion segment 21 and the elastic component 6 abut against the force applying seat 7 from both sides in the state that the clamping structure and the clamping cooperation structure form the clamping cooperation.

[0042] In the embodiment, if the elastic component 6 directly contacts the insertion segment 21, the elastic component 6 is likely to exert force on only a part of the insertion segment 21, especially when the elastic component 6 is a spring, only a circle of the insertion segment 21 in contact with the spring is subjected to force, and the rest of the insertion segment 21 is not subjected to force. Therefore, local wear of the terminal 2 will inevitably occur after a long time. When the force applying seat 7 is arranged to separate the elastic component 6 and the insertion segment 21, the elastic component 6 exerts force on the insertion segment 21 through the force applying seat 7, so that the insertion segment 21 is subjected to more uniform force, thereby significantly slowing down the wear speed of the terminal 2.

[0043] As a specific embodiment, the force applying seat 7 is a conductor, and the force applying seat 7 also contacts with the hole wall of the insertion hole 3, which is equivalent to that the force applying seat 7 is also a part of the conductive rod 1. When the terminal 2 is locked on the conductive rod 1, the free end of the insertion segment 21 abutting against the force applying seat 7 can increase the contact area between the terminal 2 and the conductive rod 1, so that the current conduction effect is better. The force applying seat 7 is made of a metal material with low resistance, good conductivity and corrosion resistance, such as copper and stainless steel. One side of the force applying seat 7 is provided with a first accommodating groove, and the end of the elastic component 6 away from the bottom of the insertion hole 3 is located in the first accommodating groove, so that the force applying seat 7 and the elastic component 6 are not easy to be dislocated. The other side of the force applying seat 7 is provided with a second accommodating groove, and the recess shape of the second accommodating groove is a hemisphere, and the free end of the insertion segment 21 is also a hemisphere matched with the shape of the second accommodating groove. When the free end of the insertion segment 21 is inserted into the second accommodating groove, the contact area between the insertion segment 21 and the force applying seat 7 can be further increased.

[0044] Referring to Figure 2 As shown in the drawings, the clamping structure is a protrusion 4 arranged in the insertion hole 3, and after the terminal 2 is unlocked from the conductive rod 1 and removed, the force applying seat 7 is clamped between the protrusion 4 and the elastic component 6. That is, the protrusion 4 limits the force applying seat 7, so that after the terminal 2 is removed from the conductive rod 1, the elastic component 6 cannot push the force applying seat 7 out of the insertion hole 3.

[0045] Referring to Figure 1 and Figure 2 As shown in the drawings, two clamping structures are arranged in the insertion hole 3, and the two clamping structures are symmetrically arranged in the insertion hole 3. The insertion segment 21 has two clamping cooperation structures, and the two clamping cooperation structures are symmetrically arranged on the insertion segment 21. After the insertion segment 21 is inserted into the insertion hole 3, the two clamping structures and the two clamping cooperation structures form clamping cooperation respectively to lock the terminal 2 on the conductive rod 1, so that the terminal 2 is locked on the conductive rod 1 more firmly and uniformly. When the clamping cooperation between the two clamping structures and the two clamping cooperation structures is released, the terminal 2 is unlocked from the conductive rod 1.

[0046] Referring to Figure 1 and Figure 2As shown, two insertion holes 3 are formed in the conductive rod 1, the openings of the two insertion holes 3 are located at the two ends of the conductive rod 1 respectively, the two insertion holes 3 are provided with clamping structures respectively, the number of the wire terminals 2 is two, the two insertion sections 21 are provided with clamping matching structures respectively, after the two insertion sections 21 are inserted into the two insertion holes 3 respectively, the clamping structures and the clamping matching structures form clamping matching to lock the two wire terminals 2 on the conductive rod 1 respectively, when the clamping matching between the clamping structures and the clamping matching structures is released, the two wire terminals 2 are unlocked from the conductive rod 1 respectively. That is, the conductive wiring assembly has two groups of wire locking parts with the same structure, whether the conductive wiring assembly is used to press the power line outside or the power line inside the electrical equipment, during the process of disassembling the two wire terminals 2 respectively, any part on the conductive wiring assembly will not be damaged, so that the connection strength and the effective current-carrying area of the conductive wiring assembly will not be affected. It can be understood that, when the number of the insertion holes 3 and the number of the wire terminals 2 on the conductive rod 1 are both two, the number of the elastic components 6 and the number of the force applying seats 7 are also both two.

[0047] It should be noted that the conductive rod 1 is provided with a partition plate 12, the partition plate 12 separates the two insertion holes 3. The conductive rod 1 is provided with a positioning hole 11 which is communicated with the insertion hole 3, a positioning column is fixed in the positioning hole 11 by riveting or interference fit, and the positioning column also has a part which is located in the insertion hole 3, that is, the protrusion 4 provided in the insertion hole 3.

[0048] It should be further noted that the conductive wiring assembly also comprises an insulating sleeve 8, an iron shell 9 and a sealing ring 10, the insulating sleeve 8 is sleeved on the periphery of the conductive rod 1, the iron shell 9 is sleeved on the periphery of the insulating sleeve 8, and the iron shell 9, the insulating sleeve 8 and the conductive rod 1 are bonded by an adhesive, so as to form a fixed connection with no gap, which can withstand high temperature and high pressure environment, and can ensure that the conductive rod 1 is insulated from the iron shell 9 and does not conduct electricity, and does not cause leakage. One end of the iron shell 9 is a hexagonal nut, which provides an acting surface for a disassembling tool, the other end of the iron shell 9 is provided with external threads to facilitate the installation and fixation of the conductive wiring assembly and the box or shell of the electrical equipment, and a groove is arranged at the connection between the cylindrical part of the iron shell 9 and the hexagonal nut, which is used to accommodate the sealing ring 10, and the sealing ring 10 is arranged in the groove of the iron shell 9 to ensure the sealing performance of the connection between the conductive wiring assembly and the box or shell of the electrical equipment. The material of the insulating sleeve 8 can be resin, alumina porcelain or other materials. The sealing ring 10 is made of rubber material with good elasticity, good temperature resistance and corrosion resistance. The iron shell 9 is made of metal material with high strength, wear resistance and corrosion resistance, such as SUS304, cast iron and the like.

[0049] The utility model also provides a kind of electrical equipment, comprising the conductive wiring assembly of preceding description, the electrical equipment of the utility model can be motor, transformer etc.

[0050] Conductive wiring assembly use principle (installation steps) :

[0051] 1. First, install the conductive wiring assembly into the box, the threaded side of the iron shell 9 is placed inside the box or shell of the electrical equipment, and the conductive wiring assembly is locked by the iron shell 9, so that the conductive wiring assembly is connected stably with the box and does not come loose;

[0052] 2. Press the terminal 2 to loosen, rotate clockwise by 50°, and take out the terminal 2;

[0053] 3. Complete the crimping of the power cord of the terminal 2;

[0054] 4. Align the first groove segment 51 on the terminal 2 with the protrusion 4 in the jack 3, push the terminal 2 with a force greater than 30N until a significant resistance is felt, then rotate counterclockwise by 50°, and after the terminal 2 is loosened, observe that the terminal 2 pops out slightly and then stop immediately, and do not shake, rotate or shake, then the terminal 2 is installed in place and locked.

[0055] It is easy for those skilled in the art to understand that the advantageous technical features of the above-mentioned modes can be freely combined and superimposed without conflict.

[0056] The above is only a preferred embodiment of the present application and does not limit the present application. Any modification, equivalent replacement and improvement within the spirit and principles of the present application shall be included in the protection scope of the present application. The above is only a preferred embodiment of the present application, and it should be pointed out that for ordinary skilled in the art, without departing from the technical principles of the present application, a number of improvements and modifications can be made, and these improvements and modifications should be considered as the protection scope of the present application.

Claims

1. An electrically conductive wiring assembly, characterized by The utility model relates to a kind of electrically conductive rod (1) and terminal (2), the electrically conductive rod (1) is configured with the insertion hole (3) extending along its length direction inside, the insertion hole (3) is provided with the clamping structure, the terminal (2) has the plug-in section (21), the plug-in section (21) has clamping cooperation structure, after the plug-in section (21) is inserted in the insertion hole (3), the clamping structure and clamping cooperation structure form clamping cooperation to make the terminal (2) be locked on the electrically conductive rod (1), after the clamping cooperation between the clamping structure and clamping cooperation structure is released, the terminal (2) is unlocked from the electrically conductive rod (1).

2. The electrically conductive wiring assembly of claim 1, wherein, The clamping structure is the protrusion (4) arranged in the insertion hole (3), and the clamping cooperation structure is the clamping groove (5) configured on the plug-in section (21). After the plug-in section (21) is inserted in the insertion hole (3), the protrusion (4) and the clamping groove (5) form clamping cooperation to make the terminal (2) be locked on the electrically conductive rod (1), and after the clamping cooperation between the protrusion (4) and the clamping groove (5) is released, the terminal (2) is unlocked from the electrically conductive rod (1).

3. The electrically conductive wiring assembly of claim 2, wherein, The clamping groove (5) includes a first groove section (51), a second groove section (52) and a third groove section (53). The first groove section (51) extends along the axial direction of the plug-in section (21) and extends to the free end of the plug-in section (21). The second groove section (52) extends along the circumferential direction of the plug-in section (21). The third groove section (53) extends along the axial direction of the plug-in section (21). The first groove section (51) communicates with the third groove section (53) through the second groove section (52). The protrusion (4) can slide in the first groove section (51), the second groove section (52) and the third groove section (53). After the protrusion (4) slides from the first groove section (51) to the third groove section (53) through the second groove section (52), the protrusion (4) and the clamping groove (5) form clamping cooperation. After the protrusion (4) slides from the third groove section (53) to the first groove section (51) through the second groove section (52), the clamping cooperation between the protrusion (4) and the clamping groove (5) is released.

4. The electrically conductive wiring assembly of claim 1, wherein, The insertion hole (3) is also provided with an elastic component (6). In the state that the clamping structure and the clamping cooperation structure form clamping cooperation, the elastic component (6) is clamped between the free end of the plug-in section (21) and the bottom of the insertion hole (3). The elastic component (6) cooperates with the clamping structure to limit the axial and circumferential movement of the terminal (2) relative to the electrically conductive rod (1).

5. The electrically conductive wiring assembly of claim 4, wherein, The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3).

6. The electrically conductive wiring assembly of claim 5, wherein, The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3).

7. The electrically conductive wiring assembly of claim 5, wherein, The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3).

8. The electrically conductive wiring assembly of claim 1, wherein, The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3).

9. The electrically conductive wiring assembly of claim 1, wherein, The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3).

10. An electric device, characterized by The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3). The force applying seat (7) is a conductor, and the force applying seat (7) is in contact with the hole wall of the jack (3).