Environment-friendly cabinet loop module debugging tool

By designing a cable end plate and adapter cable structure without anti-blocking, a simple connection between the environmentally friendly cabinet circuit module and the debugging equipment is achieved, and the operational cumbersome problems caused by the single type of connector device in the prior art are solved, and the convenience and efficiency of detection and debugging are improved.

CN223065367UActive Publication Date: 2025-07-04HUAYUAN ZHONGRUI TECH BEIJING CO LTD
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Patent Information

Application Number
CN202422101795.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-28
Publication Date
2025-07-04
Estimated Expiration
2034-08-28

AI Technical Summary

Technical Problem

During the inspection and debugging process of existing environmental protection cabinet circuit modules, the special connector devices are single, resulting in different types of connector devices that need to be disassembled and assembled separately. The operation is cumbersome, making it difficult to efficiently complete the inspection and debugging of multiple types of modules.

Method used

Design an environmentally friendly cabinet circuit module debugging tool, including the base body and the wiring end plate, the wiring end plate at the bottom of the substrate is not blocked, and the wiring jack array is arranged, which can be connected to the wiring needles of any type of module, and the stable communication with the debugging equipment is achieved through the adapter cable and the wiring connector.

Benefits of technology

The connection process between the measured module and the debugging equipment is simplified, the operation difficulty and working strength are reduced, and the convenience and efficiency of detection and debugging are improved. There is no need for multiple connector devices when adapting to different types of modules.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses an environment-friendly cabinet loop module debugging tool which comprises a base body in which a switching cable is arranged, and the bottom of the base body is provided with a flat cable end plate which can cover the wiring end face of a loop module to be tested in an aligned manner. The outer wall of the bottom of the flat cable end plate is provided with a plurality of flat cable jacks which can be inserted with flat cable needles on the flat cable end face of a detected loop module in an aligned manner, and the flat cable jacks are arranged in an array along the extension direction of the outer wall of the bottom of the flat cable end plate. The base body is further provided with a flat cable connector capable of being electrically connected with debugging equipment, and the flat cable connector is electrically connected with the flat cable end plate through the switching cable. The debugging tool for the loop module of the environment-friendly cabinet can effectively optimize the connection mode between the tested module and the debugging equipment, so that the line connection between the tested module and the debugging equipment is simpler and more convenient, the operation difficulty and the operation amount are reduced, and the detection and debugging of the loop module of the environment-friendly cabinet are more convenient and efficient.
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Description

Technical Field

[0001] The utility model relates to the technical field of detection and debugging supporting equipment for secondary circuit modules of environmental protection cabinets, and particularly relates to a debugging tool for environmental protection cabinet circuit modules. Background Art

[0002] Environmental protection cabinets are a type of distribution equipment that is extremely commonly used in the current power industry. With the continuous development of industry technology and the continuous improvement of working conditions requirements, at present, when arranging the secondary circuits supporting environmental protection cabinets in the industry, modular design is mostly required to improve the layout regularity of distribution electrical components and lines and optimize the operation convenience.

[0003] Generally, the modular circuit layout adopted at the present stage requires that each interval operation module in the environmental protection cabinet needs to be sealed separately. On this basis, rectangular connectors are used to connect between each circuit module to ensure that there is no exposed terminal structure in the module line connection structure, so as to reduce the workload during the later operation and maintenance of the equipment and reduce the operation difficulty of operation and maintenance and repair.

[0004] However, although the above modular circuit layout structure can meet the current requirements for the circuit layout of environmental protection cabinets, it is necessary to use sealing technology to make the original secondary chamber door panel operation components and other electrical components into sealed modules, or use sealing processes such as terminal sealant to seal relevant electrical components. This results in that when detecting and debugging the circuit supporting components of environmental protection cabinets, the traditional connection methods and supporting detection and debugging equipment can no longer meet the requirements, and special debugging equipment is required to perform the corresponding circuit and component detection and debugging processing.

[0005] At present, special debugging equipment is required to detect and debug the cables and relevant electrical components of the above-mentioned environmental protection cabinet supporting circuits. When connecting the lines, this type of special equipment usually needs to be equipped with a special connector device to ensure the line connection and conduction between the debugging equipment and the sealed module in the environmental protection cabinet circuit to be detected and debugged. In actual operation, this type of special connector device usually has a single-type special anti-misconnection design to ensure the exclusivity between the module to be measured and the special debugging equipment. That is, a single-type connector device can only be used to connect to the corresponding single-type module to be measured. In other words, any type of connector device cannot be connected to a module to be measured of a different type. Generally, considering that the line connection parts of the sealed module mostly adopt a flat cable needle head design, and the connector device adopts a flat cable jack structure that can be inserted and adapted to the flat cable needle head of the sealed module, the conventional anti-misconnection design usually defaults the flat cable needle head at a specific part and the corresponding flat cable jack at the corresponding position to distinguish different types of connector devices and the types of sealed modules, so as to prevent different types of connector devices from being able to complete the connection and assembly with the sealed module.

[0006] However, although the structural design of the above-mentioned fool-proof connection can improve the component adaptability and connection accuracy in actual operation, for simple circuit and module detection and debugging operations, a single type of connector device can only be used exclusively with the corresponding module under test, resulting in a large number of connector devices required to be operated when testing and debugging various types of sealing modules in the environmental protection cabinet. Different types of connector devices are respectively used for disassembly and assembly and connection and disconnection operations. The operation process is cumbersome and inconvenient, the work intensity of the staff is high, and the operation is difficult. Especially for some simple debugging involved in daily inspections or temporary detection and debugging and other working conditions, it is not realistic to carry multiple types of connector devices. If the corresponding type of connector device of the current module under test is not equipped in actual operation, the corresponding detection and debugging cannot be implemented, which seriously restricts the progress of the corresponding environmental protection cabinet operation, maintenance, debugging and overhaul, and has an adverse impact on the supporting operations of the related environmental protection cabinet.

[0007] In view of this, how to optimize the connection method between the module under test and the debugging equipment, make the line connection between the module under test and the debugging equipment simpler and easier, reduce the difficulty and amount of operation, and make the detection and debugging of the loop module of the environmental protection cabinet more convenient and efficient is an important technical problem that technical personnel in this field currently need to solve. Utility Model Content

[0008] The purpose of the utility model is to provide an environmental protection cabinet loop module debugging tool, which can effectively optimize the connection method between the module under test and the debugging equipment, make the line connection between the module under test and the debugging equipment simpler and easier, reduce the operation difficulty and operation amount, and make the detection and debugging of the loop module of the environmental protection cabinet more convenient and efficient.

[0009] In order to solve the above technical problems, the utility model provides an environmental protection cabinet loop module debugging tool, including a base body with a transfer cable arranged inside, the bottom of the base body has a wiring end plate that can be aligned and covered on the wiring end surface of the circuit module under test, and the bottom outer wall of the wiring end plate has a plurality of wiring jacks that can be aligned and inserted with the wiring needles on the wiring end surface of the circuit module under test, and each of the wiring jacks is arranged in an array along the extension direction of the bottom outer wall of the wiring end plate;

[0010] The base is also provided with a cable connector which can be electrically connected to the debugging device, and the cable connector is electrically connected to the cable end plate through the adapter cable.

[0011] Preferably, the middle portion of the cable connector has a wiring hole for the end of the adapter cable to extend from the inside to the outside, and the cable connector is also provided with a cable locking device capable of cooperating with the adapter cable.

[0012] Preferably, the cable locking device is a locking nut screwed onto the outer end of the cable connecting joint. The inner part of the locking nut has a wire locking cavity for the patch cord to pass through. The inner diameter of one end of the wire locking cavity facing the cable connecting joint is larger than that of the end of the wire locking cavity facing away from the cable connecting joint.

[0013] Preferably, the inner diameter of the wire locking cavity decreases linearly from the end facing the cable connecting joint to the end facing away from the cable connecting joint.

[0014] Preferably, on the outer wall of the end of the locking nut facing away from the cable connecting joint, there is a wiring annular surface that extends smoothly along the circumferential and axial directions of the locking nut.

[0015] Preferably, several force-bearing ribs are protrudingly arranged on the outer peripheral wall of the locking nut.

[0016] Preferably, the cable connecting joint is located at the top of the base body.

[0017] Preferably, in the middle of the bottom outer wall of the cable end plate, there is a wiring end surface arranged parallel to and in alignment with the cable end surface of the measured circuit module, and the wiring end surface and the cable end surface overlap in projection along the insertion direction of the cable needle into the cable socket. Each of the cable sockets is arranged in an array on the wiring end surface.

[0018] Preferably, there is a clearance fit between the edge of the wiring end surface and the outer edge of the bottom outer wall of the cable end plate to form an insulating annular surface on the bottom outer wall of the cable end plate.

[0019] Preferably, an insulating gasket is arranged on the cable end plate in alignment with the edge of the wiring end surface.

[0020] Compared with the above-mentioned background art, during the operation and use of the debugging tooling for the environmental protection cabinet circuit module provided by the present utility model, the bottom of the base body is arranged at the position of the circuit module to be measured, so that the wiring terminal plate is in alignment and cooperation with the wiring end face of the circuit module to be measured. Then, the bottom end of the base body is pressed towards the wiring end face of the circuit module to be measured, so that each wiring pin on the wiring end face can be inserted into the corresponding wiring socket on the wiring terminal plate in alignment. Since the wiring sockets are arranged in an array along the extension direction of the bottom outer wall of the wiring terminal plate, there is no anti-fooling blocking structure at the positions on the wiring terminal plate where the wiring sockets can be arranged. In this way, it can be ensured that the wiring pins on the wiring end faces of any type of circuit module can be smoothly inserted into the wiring sockets on the wiring terminal plate, so that the wiring terminal plate can be aligned and adapted to the wiring end faces of any type of circuit module to be measured, ensuring the reliable adaptation and accurate connection between the debugging tooling for the environmental protection cabinet circuit module and various types of circuit modules. In this way, in actual operation, only the debugging tooling for the environmental protection cabinet circuit module can ensure reliable connection with any type of circuit module. After the wiring terminal plate is aligned and installed in place with the wiring end face of the circuit module to be measured, the debugging tooling for the environmental protection cabinet circuit module is reliably connected to an external debugging device through a wiring connector, so as to realize the stable connection between the circuit module to be measured and the debugging device, and ensure the smooth implementation of subsequent related detection and debugging operations for the circuit module to be measured. The debugging tooling for the environmental protection cabinet circuit module can be reliably connected to any type of circuit module, effectively eliminating the cumbersome and complex detection and debugging operations of the circuit module caused by the fact that different types of connector devices in the prior art can only be adapted to a single type of circuit module, effectively reducing the debugging operation difficulty of the circuit module, improving the operation convenience, and correspondingly reducing the labor intensity of the staff, so that the detection and debugging of the circuit module of the environmental protection cabinet and the installation of related components and other supporting operations are more convenient and efficient.

[0021] In another preferred solution of the present utility model, the middle part of the wiring connector has a wiring hole for the end of the patch cable to extend out from the inside to the outside, and a cable locking device capable of cooperating with the patch cable is also provided on the wiring connector. The wiring hole can moderately radially converge and guide each patch cable passing through it, avoiding the confusion and entanglement of the patch cables and ensuring the corresponding cable connection accuracy. On this basis, the cable locking device can further converge and fix each patch cable passing through the wiring hole, avoiding the scattering and abnormal entanglement of the patch cables, making the arrangement and connection of the patch cables more regular, and the corresponding wiring space utilization rate higher. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0023] Figure 1 The front view of the assembly structure of the debugging tooling for the environmental protection cabinet circuit module and the circuit module provided by a specific embodiment of the present invention;

[0024] Figure 2 For Figure 1 the top view;

[0025] Figure 3 For Figure 1 the axonometric view of the mating structure of the wiring end face of the debugging tooling for the environmental protection cabinet circuit module and the circuit module in

[0026] Figure 4 For Figure 1 the bottom view of the debugging tooling for the environmental protection cabinet circuit module in

[0027] Wherein:

[0028] 10 - Substrate;

[0029] 11 - Ribbon cable end plate; 111 - Ribbon cable jack; 112 - Wiring end face; 113 - Insulating ring face; 114 - Insulating gasket;

[0030] 12 - Ribbon cable connector; 121 - Wiring hole; 122 - Locking nut; 123 - Wiring ring face; 124 - Force - receiving rib;

[0031] 20 - Circuit module; 201 - Wiring end face; 202 - Ribbon cable needle. Specific embodiments

[0032] The core of the present invention is to provide a debugging tooling for the environmental protection cabinet circuit module. This debugging tooling for the environmental protection cabinet circuit module can effectively optimize the connection method between the module under test and the debugging equipment, making the line connection between the module under test and the debugging equipment more convenient and easy, reducing the operation difficulty and operation amount, and making the detection and debugging of the circuit module of the environmental protection cabinet more convenient and efficient.

[0033] To enable those skilled in the art to better understand the solution of the present invention, the following will further elaborate on the present invention in conjunction with the drawings and specific embodiments.

[0034] It should be noted in advance that in the present utility model, unless otherwise clearly defined and limited, terms such as "installation", "connection", "linkage", "fixation" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a direct connection, or an indirect connection through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0035] In addition, in the present utility model, unless otherwise clearly defined and limited, the first feature being "above" or "below" the second feature may include the direct contact between the first and second features, or may include the situation where the first and second features are not in direct contact but in contact through other features therebetween.

[0036] In addition, the first feature being "above", "over" and "on the top of" the second feature includes that the first feature is directly above and obliquely above the second feature, or merely indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature being "under", "beneath" and "underneath" the second feature includes that the first feature is directly below and obliquely below the second feature, or merely indicates that the horizontal height of the first feature is lower than that of the second feature. The orientation or positional relationship indicated by terms such as "above", "below", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model.

[0037] Please refer to Figures 1 to 4 。

[0038] In the specific implementation manner, the debugging tooling for the environmental protection cabinet loop module provided by the present utility model includes a base body 10 internally provided with patch cables. The bottom of the base body 10 has a wiring end plate 11 that can be positioned and covered on the wiring end face 201 of the loop module 20 to be measured. On the bottom outer wall of the wiring end plate 11, there are a number of wiring jacks 111 that can be inserted in alignment with the respective wiring pins 202 on the wiring end face of the loop module 20 to be measured, and the wiring jacks 111 are arranged in an array along the extension direction of the bottom outer wall of the wiring end plate 11.

[0039] During the specific operation process, the bottom of the base body 10 is arranged at the measured circuit module 20, so that the wire arrangement end plate 11 is in alignment and cooperation with the wiring end face 201 of the measured circuit module 20. Then, the bottom end of the base body 10 is pressed towards the wiring end face 201 of the measured circuit module 20, so that each wire arrangement needle 202 on the wiring end face 201 can be inserted into the corresponding wire arrangement socket 111 on the wire arrangement end plate 11 in alignment. Since the wire arrangement sockets 111 are arranged in an array along the extension direction of the bottom outer wall of the wire arrangement end plate 11, there is no anti-fooling blocking structure at the position on the wire arrangement end plate 11 where the wire arrangement sockets 111 can be arranged. In this way, it can be ensured that the wire arrangement needles 202 on the wiring end face 201 of any type of circuit module 20 can be smoothly inserted into the wire arrangement sockets 111 on the wire arrangement end plate 11, so that the wire arrangement end plate 11 can complete the alignment and adaptation with the wiring end face 201 of any type of measured circuit module 20, ensuring the reliable adaptation and accurate connection between the environmental protection cabinet circuit module debugging tooling and various types of circuit modules 20. In this way, in actual operation, only the environmental protection cabinet circuit module debugging tooling can ensure the reliable connection with any type of circuit module 20.

[0040] Correspondingly, a wire arrangement connector 12 capable of being electrically connected to the debugging device is further provided on the base body 10, and the wire arrangement connector 12 is electrically connected to the wire arrangement end plate 11 through a patch cable.

[0041] After the wire arrangement end plate 11 is correctly installed in alignment with the wiring end face 201 of the measured circuit module 20, the environmental protection cabinet circuit module debugging tooling is reliably connected to an external debugging device through the wire arrangement connector 12, so as to realize the stable connection between the measured circuit module 20 and the debugging device, and ensure the smooth implementation of subsequent relevant detection and debugging operations for the measured circuit module 20.

[0042] The environmental protection cabinet circuit module debugging tooling can be reliably connected to any type of circuit module 20, thus effectively eliminating the cumbersome and complex detection and debugging operations of the circuit module 20 caused by the fact that different types of connector devices in the prior art can only be adapted to a single type of circuit module 20, effectively reducing the debugging operation difficulty of the circuit module 20, improving the operation convenience, and correspondingly reducing the labor intensity of the staff, so that the detection and debugging of the circuit module 20 of the environmental protection cabinet and the installation of related components and other supporting operations are more convenient and efficient.

[0043] Generally, for various dedicated connector devices used in the prior art, according to their different exclusive types, color-coded filling identification blocks of the same color are usually arranged on the connector devices of the same type that are mutually adapted and on the circuit module 20 respectively to ensure the operation accuracy in actual operation, realize the accurate adaptation and rapid assembly between the connector devices of the same type and the circuit module 20. This design of rapid adaptation of the same type achieved through the color-coded filling identification blocks also belongs to one of the specific forms of foolproof design. In this solution, since the cable end plate 11 structure that can be reliably adapted to the layout structure of the cable pins 202 of all types of circuit modules 20 is adopted, it is possible to save the color-coded filling identification blocks or similar visual discrimination and matching components in actual application, thereby further streamlining the number of components of the debugging tooling for the environmental protection cabinet circuit module, making its component structure more delicate and correspondingly reducing the production cost.

[0044] Considering the application requirements of the conventional working condition environment, the base body 10 is usually made of plastic parts or other insulating material parts to ensure the insulation performance of the non-electrically connected parts of the debugging tooling for the environmental protection cabinet circuit module and ensure the safety of the taking, disassembling and assembling operations of the debugging tooling for the environmental protection cabinet circuit module.

[0045] Specifically, in the middle of the bottom outer wall of the cable end plate 11, there is a wiring end face 112 arranged parallel to and in alignment with the cable end face of the circuit module 20 to be measured, and the wiring end face 112 and the cable end face overlap in projection along the insertion direction of the cable pins 202 and the cable jacks 111. Each cable jack 111 is arranged in an array on the wiring end face 112.

[0046] Integrating each cable jack 111 on the wiring end face 112 can further optimize the assembly structure layout of the cable jacks 111, improve their array arrangement effect, and utilize the full alignment and adaptation between the wiring end face 112 and the cable end face of the circuit module 20 to be measured to further ensure the alignment and insertion accuracy of each cable pin 202 and the cable jack 111, make the alignment and assembly of the debugging tooling for the environmental protection cabinet circuit module and the circuit module 20 to be measured smoother and more accurate, and improve the use convenience and related operation efficiency of the debugging tooling for the environmental protection cabinet circuit module.

[0047] More specifically, a clearance fit is provided between the edge portion of the wiring end face 112 and the outer edge portion of the bottom outer wall of the flexible cable end plate 11, so as to form an insulating toroidal surface 113 on the bottom outer wall of the flexible cable end plate 11. The insulating toroidal surface 113 can form a fitting clearance of a certain size between the outer edge portion of the wiring end face 112 and the outer edge portion of the flexible cable end plate 11. This fitting clearance forms an annular extended structure along the extension direction of the wiring end face 112, thereby preventing each flexible cable needle 202 and the electrical connection structure of the flexible cable socket 111 from being too close to the outer side wall of the base body 10. Thus, safety problems such as electric leakage can be avoided when the staff contacts the debugging tool for the environmental protection cabinet circuit module, the safety of the debugging tool for the environmental protection cabinet circuit module during operation and use can be improved, and the personal safety of the relevant staff can be ensured.

[0048] Correspondingly, an insulating gasket 114 is provided on the flexible cable end plate 11 and is in alignment fit with the edge portion of the wiring end face 112. The insulating gasket 114 can not only serve as an insulating fitting to provide further insulation protection for the mating portion of the insulating short board and the wiring end face 112, but also provide appropriate structural buffering for the mating and adapting surfaces of the debugging tool for the environmental protection cabinet circuit module and the circuit module 20 to be measured during the alignment and assembly process, so as to prevent the assembled structure of the debugging tool for the environmental protection cabinet circuit module and the circuit module 20 to be measured from interfering with or damaging the main functional structures such as the flexible cable needles 202 and the flexible cable sockets 111, and ensure the stability and reliability of the relevant electrical connection structures.

[0049] On the other hand, the middle part of the flexible cable connector 12 has a wiring hole 121 for the end portion of the patch cable to extend out from the inside to the outside, and a cable locking device capable of cooperating with the patch cable is also provided on the flexible cable connector 12. The wiring hole 121 can moderately radially converge and guide each patch cable passing through it, avoid the patch cables from being disordered and entangled, and ensure the corresponding cable connection accuracy. On this basis, the cable locking device can further converge and fix each patch cable passing through the wiring hole 121, avoid the patch cables from scattering and being abnormally entangled, make the arrangement and connection of the patch cables more regular, and the utilization rate of the corresponding wiring space is higher.

[0050] Further, the cable locking device is a locking nut 122 threadedly connected to the outer end portion of the flexible cable connector 12. The inside of the locking nut 122 has a cable locking cavity for the patch cable to pass through. The inner diameter of the end of the cable locking cavity facing the flexible cable connector 12 is larger than the inner diameter of the end of the cable locking cavity facing away from the flexible cable connector 12. In this way, the end of the cable locking cavity facing the flexible cable connector 12 serves as the cable inlet end, which can have sufficient space for the cable to smoothly enter the cable locking cavity; while the end of the cable locking cavity facing away from the flexible cable connector 12 serves as the cable outlet end, which can use its small inner diameter structure to efficiently converge the cables extending out of the cable locking cavity, making the cables extending out of the cable locking cavity more compact and regular, and facilitating the adaptation and connection requirements of the downstream wiring terminals and debugging equipment and other related electrical connection components.

[0051] On this basis, the inner diameter of the wire locking cavity decreases linearly from one end facing the cable connector 12 to the end facing away from the cable connector 12. In this way, a conical cavity structure is formed inside the wire locking cavity, so that the inner diameter change from one end to the other end of the wire locking cavity is smoother, avoiding interference and damage to the cable caused by the internal structure of the wire locking cavity, thereby further optimizing the locking cavity's effect on cable gathering and guiding.

[0052] Correspondingly, the outer wall of the end of the locking screw sleeve 122 facing away from the cable connector 12 has a wiring ring surface 123 that smoothly extends along the circumferential and axial directions of the locking screw sleeve 122. The wiring ring surface 123 is located at the end of the locking screw sleeve 122 facing away from the cable connector 12, that is, the end of the locking screw sleeve 122 that is connected to the downstream wiring terminal or debugging equipment. In this way, arranging the wiring ring surface 123 with a smoothly extended structure at this end can provide sufficient adaptation space for the end of the locking screw sleeve 122 that is adapted to the downstream electrical connection device, and avoid the sharp protruding structure at the end of the locking screw sleeve 122 from causing structural interference or damage to the cable or downstream matching equipment, thereby further optimizing the operational safety of the environmental protection cabinet loop module debugging tooling and its adaptation and connection effect with related matching equipment.

[0053] In addition, a plurality of force-bearing convex ribs 124 are protruding from the outer peripheral wall of the locking screw sleeve 122. In actual operation, the force-bearing convex ribs 124 can increase the contactable area of ​​the outer peripheral portion of the locking screw sleeve 122, so that the staff can more conveniently and smoothly screw the locking screw sleeve 122. In addition, the force-bearing convex ribs 124 can optimize the force effect of the staff when screwing the locking screw sleeve 122, improve the circumferential and tangential forces of the locking screw sleeve 122, and make the screwing of the locking screw sleeve 122 smoother and more efficient.

[0054] Generally, the stress-bearing ribs 124 extend axially along the locking screw sleeve 122, and each stress-bearing rib 124 is evenly and equidistantly distributed along the circumference of the locking screw sleeve 122, so as to fully utilize the layout space on the outer peripheral wall of the locking screw sleeve 122 and make the structural layout of each stress-bearing rib 124 more regular and reliable.

[0055] In addition, the cable connector 12 is located at the top of the base 10. In this way, the cable connector 12 and the cable end plate 11 are respectively placed at the upper and lower ends of the base 10, thereby effectively avoiding interference between the cable connector 12 and the related connection structure of the cable end plate 11, and optimizing the alignment connection effect between the environmental protection cabinet loop module debugging tool and the tested loop module 20 and the downstream debugging equipment, making the operation and use of the environmental protection cabinet loop module debugging tool more convenient and efficient, with higher installation accuracy and better component adaptation effect.

[0056] In summary, in the operation process of the debugging tooling for the environmental protection cabinet loop module provided in the present utility model, the bottom of the base body is arranged at the position of the loop module to be measured, so that the wiring end plate is in alignment and cooperation with the wiring end face of the loop module to be measured. Then, the bottom end of the base body is pressed towards the wiring end face of the loop module to be measured, so that each wiring needle on the wiring end face can be inserted into the corresponding wiring socket on the wiring end plate in alignment. Since the wiring sockets are arranged in an array along the extension direction of the bottom outer wall of the wiring end plate, there is no anti-fooling blocking structure at the positions on the wiring end plate where the wiring sockets can be arranged. In this way, it can be ensured that the wiring needles on the wiring end faces of any type of loop module can be smoothly inserted into the wiring sockets on the wiring end plate, so that the wiring end plate can be aligned and adapted to the wiring end faces of any type of loop module to be measured, ensuring the reliable adaptation and accurate connection of the debugging tooling for the environmental protection cabinet loop module to loop modules of various types. In this way, in actual operation, only the debugging tooling for the environmental protection cabinet loop module can ensure reliable connection with any type of loop module. After the wiring end plate is aligned and installed in place with the wiring end face of the loop module to be measured, the debugging tooling for the environmental protection cabinet loop module is reliably connected to an external debugging device through a wiring connector, so as to realize the stable connection between the loop module to be measured and the debugging device, and ensure the smooth implementation of subsequent related detection and debugging operations for the loop module to be measured. The debugging tooling for the environmental protection cabinet loop module can be reliably connected to any type of loop module, effectively eliminating the cumbersome and complex loop module detection and debugging operations caused by the fact that different types of connector devices in the prior art can only be adapted to a single type of loop module, effectively reducing the debugging operation difficulty of the loop module, improving the operation convenience, and correspondingly reducing the labor intensity of the staff, so that the detection and debugging of the loop module of the environmental protection cabinet and the installation of related components and other supporting operations are more convenient and efficient.

[0057] The debugging tooling for the environmental protection cabinet loop module provided by the present utility model has been introduced in detail above. Specific examples are used in this article to elaborate on the principle and implementation manner of the present utility model. The description of the above embodiments is only used to help understand the method and its core idea of the present utility model. It should be noted that for those of ordinary skill in the art in this technical field, without departing from the principle of the present utility model, several improvements and modifications can be made to the present utility model, and these improvements and modifications also fall within the protection scope of the claims of the present utility model.

Claims

1. An environmental protection cabinet circuit module debugging tooling, characterized in that, It includes a base body internally arranged with patch cables. The bottom of the base body has a cable arranging end plate that can be positioned to cover the wiring end face of the circuit module to be measured. On the bottom outer wall of the cable arranging end plate, there are several cable arranging jacks that can be inserted in alignment with each cable arranging needle on the wiring end face of the circuit module to be measured, and each of the cable arranging jacks is arranged in an array along the extension direction of the bottom outer wall of the cable arranging end plate. A cable arranging connector that can be electrically connected to a debugging device is also provided on the base body, and the cable arranging connector is electrically connected to the cable arranging end plate through the patch cable.

2. The debugging tooling for the environmental protection cabinet loop module according to claim 1, characterized in that The middle of the cable arranging connector has a wiring hole for the end of the patch cable to extend out from the inside to the outside, and a cable locking device that can cooperate with the patch cable is also provided on the cable arranging connector.

3. The debugging tooling for the environmental protection cabinet circuit module according to claim 2, characterized in that, The cable locking device is a locking nut threadedly connected to the outer end of the cable arranging connector. The inside of the locking nut has a wire locking cavity for the patch cable to pass through. The inner diameter of one end of the wire locking cavity facing the cable arranging connector is larger than the inner diameter of the end of the wire locking cavity facing away from the cable arranging connector.

4. The debugging tooling for the environmental protection cabinet circuit module according to claim 3, wherein The inner diameter of the wire locking cavity decreases linearly from the end facing the cable arranging connector to the end facing away from the cable arranging connector.

5. The debugging tooling for the environmental protection cabinet loop module according to claim 3, characterized in that, The outer wall of the end of the locking nut facing away from the cable arranging connector has a wiring annular surface that extends smoothly along the circumferential and axial directions of the locking nut.

6. The debugging tooling for the environmental protection cabinet loop module according to claim 3, characterized in that, Several force-bearing ribs are protrudingly provided on the outer peripheral wall of the locking nut.

7. The debugging tooling for the environmental protection cabinet loop module according to claim 1, characterized in that The cable arranging connector is located at the top of the base body.

8. The debugging tooling for the environmental protection cabinet loop module according to claim 1, wherein The middle of the bottom outer wall of the cable arranging end plate has a wiring end face that is arranged parallel to and in alignment with the wiring end face of the circuit module to be measured, and the wiring end face and the wiring end face are projected to coincide in the insertion direction of the cable arranging needle and the cable arranging jack. Each of the cable arranging jacks is arranged in an array on the wiring end face.

9. The debugging tooling for the environmental protection cabinet loop module according to claim 8, wherein The edge part of the wiring end face and the outer edge part of the bottom outer wall of the cable arranging end plate are in clearance fit to form an insulating annular surface on the bottom outer wall of the cable arranging end plate.

10. The debugging tooling for the environmental protection cabinet loop module according to claim 8, characterized in that An insulating gasket that is in alignment with the edge part of the wiring end face is provided on the cable arranging end plate.