Intelligent temperature measuring wire clamp
By using an arc-shaped slide rail and a buffer fixing mechanism, the problem of traditional wire clamps being unable to adapt to different specifications of wires is solved, achieving stable clamping and real-time temperature detection, thus improving the versatility and temperature measurement accuracy of the wire clamps.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHUHENGYUAN IND CHENGDU CO LTD
- Filing Date
- 2025-09-04
- Publication Date
- 2026-06-12
AI Technical Summary
Traditional wire clamps cannot flexibly adapt to different specifications of wires. They are prone to being too loose or too tight due to wire diameter deviations, and they are also prone to loosening under vibration, affecting connection stability and equipment lifespan.
The system employs an arc-shaped slide rail and a buffer fixing mechanism, combined with a buffer structure consisting of a damping sleeve and a spring, to achieve adaptive clamping of wires of different diameters. The articulated design allows the arc-shaped wire placement plate to be finely adjusted according to the wire's posture. Combined with a temperature sensor and a copper plate, it forms an efficient heat conduction path to ensure temperature measurement accuracy.
It enables reliable clamping of wires of different specifications, enhances connection stability and safety, ensures real-time and accurate temperature detection, and extends the service life of the equipment.
Smart Images

Figure CN224353942U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of power equipment technology, specifically an intelligent temperature measuring wire clamp. Background Technology
[0002] Wire clamps are devices used to hold, fix, or protect wires, cables, and other linear objects. They play an irreplaceable role in modern industry, communications, power, and daily life. Based on material, they can be divided into plastic wire clamps, metal wire clamps, nylon wire clamps, and self-adhesive wire clamps. Plastic wire clamps are lightweight, durable, and inexpensive, making them widely used in homes and construction. They can be used to conceal and protect indoor wiring, improving the aesthetics and safety of the environment. Metal wire clamps typically have high strength and excellent conductivity. For example, iron or aluminum metal wire clamps commonly used in power systems are indispensable connecting elements in high-voltage transmission lines. Nylon wire clamps have good weather resistance and are easy to install. In outdoor environments of communication networks, they are often used to fix optical cables, coaxial cables, and other communication lines. Self-adhesive wire clamps are very easy to install; they can be directly pasted onto the surface of an object.
[0003] Traditional wire clamps rely solely on bolts for fixation, resulting in a fixed clamping size that cannot flexibly adapt to different wire specifications. This can easily lead to the clamping being too loose or too tight due to wire diameter deviations. Being too loose can cause problems such as poor contact and overheating, while being too tight may damage the wire. At the same time, this single bolt fixing method is susceptible to vibration under wind conditions. Long-term vibration can cause the bolts to loosen and friction and wear between the wire clamp and the wire, which not only reduces connection stability but may also exacerbate localized heating, shorten equipment lifespan, and increase the risk of line failure. Utility Model Content
[0004] The purpose of this utility model is to provide an intelligent temperature measuring wire clamp in order to solve the problems mentioned above.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an intelligent temperature measuring wire clamp, comprising: a mounting base, a lower clamp body fixedly connected above the mounting base, an upper clamp body mounted above the lower clamp body, and multiple sets of symmetrical arc-shaped slide rails provided on the inner walls of both the lower clamp body and the upper clamp body, with a buffer fixing mechanism slidably connected to the arc-shaped slide rails;
[0006] The buffer fixing mechanism includes a slider and an arc-shaped wire placement plate. Multiple sets of damping sleeves are hinged between the slider and the arc-shaped wire placement plate, and a spring is sleeved on the outside of the damping sleeve.
[0007] The lower and upper clamps work together to hold and fix the wires. The sliding connection design of the arc-shaped slide rail and the buffer fixing mechanism can accommodate wires of different diameters. The buffer structure composed of the damping sleeve and spring can effectively absorb the displacement stress of the wires caused by thermal expansion and contraction or external vibration, and avoid damage to the wires due to excessive force. At the same time, the hinge design allows the arc-shaped wire plate to be finely adjusted with the posture of the wires, improving the clamping stability.
[0008] As a further embodiment of this utility model: a sensor placement box is fixedly connected to the center of the upper part of the mounting base, a temperature sensor is installed inside the sensor placement box, a placement box cover is installed on the upper part of the sensor placement box by four screws, and a copper plate is installed through the center of the placement box cover.
[0009] The sensor housing provides a sealed protective space for the temperature sensor, preventing external environmental interference or damage. The housing cover is secured with screws, facilitating future sensor maintenance and replacement. The copper plate, acting as a heat-conducting medium, quickly transfers heat from the wires to the temperature sensor, ensuring accurate and timely temperature detection.
[0010] As a further embodiment of this utility model: multiple sets of mounting holes are provided above the mounting base, and upper clamping body mounting ears are fixedly connected to both sides of the upper clamping body, with multiple sets of upper clamping body mounting holes provided above the upper clamping body mounting ears.
[0011] The mounting holes on the mounting base are used to fix the entire wire clamp to the mounting base such as the utility pole or bracket, ensuring the overall stability of the wire clamp installation; the mounting ears on the upper clamp body cooperate with the mounting holes on the upper clamp body, and the upper clamp body and the lower clamp body can be locked and fixed by bolts to achieve reliable clamping of the wire. The design of multiple sets of mounting holes makes it easy to adjust the clamping force according to actual needs.
[0012] As a further embodiment of this utility model: an insulating rubber pad is adhered to the inner wall of the arc-shaped wire plate, and multiple sets of anti-slip patterns are formed on the surface of the insulating rubber pad, with the anti-slip patterns being evenly distributed horizontally.
[0013] The insulating rubber pad provides electrical insulation between the clamp and the conductor, preventing the clamp from conducting electricity and causing safety hazards. The anti-slip texture increases the friction between the arc-shaped wire plate and the conductor, effectively preventing the conductor from sliding during clamping and ensuring the conductor's stable position. At the same time, the rubber material has a certain degree of elasticity, which can buffer the squeezing damage to the conductor caused by the clamping force.
[0014] As a further embodiment of this utility model: the upper part of the copper plate is attached to the wire, and the lower part of the copper plate is attached to the temperature sensor;
[0015] The copper plate is tightly attached to the wire and temperature sensor at the top and bottom, respectively, forming an efficient heat conduction path. This allows the heat from the wire to be transferred to the temperature sensor quickly and evenly, reducing losses and delays in the temperature transfer process. This enables the temperature sensor to detect the actual temperature of the wire in real time and accurately, thus improving temperature measurement accuracy.
[0016] As a further improvement of this utility model: the mounting hole of the upper clamp body is adapted to the threaded hole correspondingly opened on the upper part of the lower clamp body;
[0017] The matching design of the mounting hole of the upper clamp and the threaded hole of the lower clamp allows the bolt to pass smoothly through the mounting hole and engage with the threaded hole. By tightening the bolt, the upper clamp and the lower clamp can be tightly connected, thus reliably clamping the wire. The threaded connection method has the characteristics of simple structure, stable connection, and convenient disassembly and assembly, which facilitates the installation, debugging and subsequent maintenance of the wire clamp.
[0018] As a further improvement of this utility model: the outer surfaces of both the lower clamp and the upper clamp are anodized;
[0019] Anodizing forms a dense oxide film on the surface of the clamp, which can significantly improve the corrosion resistance, wear resistance and oxidation resistance of the lower and upper clamps, and extend the service life of the clamps in complex outdoor environments. At the same time, the treated surface has good insulation properties and aesthetics, improving the overall performance and practicality of the clamps.
[0020] Compared with the prior art, the beneficial effects of this utility model are:
[0021] In this invention, the cooperation between the lower and upper clamping bodies, combined with the matching design of the upper clamping body mounting ears and the upper clamping body mounting holes and the lower clamping body threaded holes, enables reliable locking of the wires. The sliding connection between the arc-shaped slide rail and the buffer fixing mechanism allows the arc-shaped wire-holding plate to adaptively adjust according to the wire diameter, easily adapting to wires of different specifications and greatly improving the versatility of the wire clamp. At the same time, the buffer structure composed of the damping sleeve and spring between the slider and the arc-shaped wire-holding plate can effectively absorb the displacement stress of the wire caused by thermal expansion and contraction or external vibration. The hinge design also allows the arc-shaped wire-holding plate to be finely adjusted with the posture of the wire. Combined with the anti-slip texture of the insulating rubber pad on the inner wall of the arc-shaped wire-holding plate, it can not only avoid excessive force damage to the wire, but also prevent the wire from slipping, significantly enhancing the stability and safety of clamping. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall structure of the intelligent temperature measuring clamp described in this utility model;
[0023] Figure 2 This is a schematic diagram of the disassembled structure of the intelligent temperature measuring clamp described in this utility model;
[0024] Figure 3 This is a schematic diagram of the buffer fixing mechanism in the intelligent temperature measuring clamp described in this utility model;
[0025] Figure 4 This is a schematic diagram of the internal structure of the sensor placement box in the intelligent temperature measuring clamp described in this utility model.
[0026] In the diagram: 1. Mounting base; 2. Lower clamp; 3. Upper clamp; 4. Arc-shaped slide rail; 5. Buffer fixing mechanism; 51. Slider; 52. Arc-shaped wire placement plate; 53. Damping sleeve; 54. Spring; 6. Sensor placement box; 7. Temperature sensor; 8. Placement box cover; 9. Copper plate; 10. Mounting hole of mounting base; 11. Mounting ear of upper clamp; 12. Mounting hole of upper clamp. Detailed Implementation
[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0028] In this description of the utility model, the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," indicating orientation or positional relationships, are based on the accompanying drawings and are only for ease of description and simplification. They do not indicate or imply that the device / component must have a specific orientation or structural operation, and therefore do not constitute a limitation. In addition, the terms "first," "second," and "third" are only used for description and do not imply relative importance. It should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "setting" should be interpreted broadly. For example, they can be fixedly connected, detachably connected, or integrally connected; they can be mechanically connected or electrically connected; they can be directly connected or indirectly connected through an intermediate medium; they can also refer to the internal connection of two components. The specific meaning can be understood by those skilled in the art in combination with the actual situation. The following describes the embodiments of the utility model in conjunction with its overall structure.
[0029] Reference Figures 1 to 4 In this embodiment of the utility model, an intelligent temperature measuring clamp includes: a mounting base 1, a lower clamp body 2 fixedly connected to the upper part of the mounting base 1, an upper clamp body 3 mounted on the upper part of the lower clamp body 2, and multiple sets of symmetrical arc-shaped slide rails 4 opened on the inner walls of both the lower clamp body 2 and the upper clamp body 3. A buffer fixing mechanism 5 is slidably connected on the arc-shaped slide rails 4. In actual operation, the mounting base 1 is the basic load-bearing component of the entire clamp. The clamp can be fixed on the basic carrier such as a utility pole or bracket through the mounting hole 10 above it, providing stable support for the clamping and temperature measurement of the subsequent wires.
[0030] The buffer fixing mechanism 5 includes a slider 51 and an arc-shaped wire-holding plate 52. Multiple sets of damping sleeves 53 are hinged between the slider 51 and the arc-shaped wire-holding plate 52. A spring 54 is sleeved on the outside of the damping sleeve 53. The clamping and fixing of the wire is achieved through the cooperation of the lower clamp and the upper clamp. The sliding connection design between the arc-shaped slide rail 4 and the buffer fixing mechanism 5 allows the slider 51 to slide along the arc-shaped slide rail 4, so that the arc-shaped wire-holding plate 52 can adaptively adjust its position according to the wire diameter, thereby adapting to wires of different specifications. At the same time, the buffer structure composed of the damping sleeve 53 and the spring 54 can effectively absorb displacement stress when the wire is displaced due to thermal expansion and contraction or external vibration, avoiding damage to the wire due to excessive force. The hinge design allows the arc-shaped wire-holding plate 52 to be finely adjusted with the posture of the wire, further improving the clamping stability. This process is the core link for the wire clamp to achieve stable clamping.
[0031] A sensor placement box 6 is fixedly attached to the center of the mounting base 1. A temperature sensor 7 is installed inside the sensor placement box 6. A box cover 8 is installed on top of the sensor placement box 6 by four screws. A copper plate 9 is installed through the center of the box cover 8. During temperature detection, the sensor placement box 6 provides a closed protective space for the temperature sensor 7, preventing interference or damage from the external environment. The box cover 8 is fixed with screws, which not only ensures the airtightness of the internal environment but also facilitates the later maintenance and replacement of the sensor. The copper plate 9 serves as a heat-conducting medium. Its upper part is in close contact with the wire, and its lower part is in contact with the temperature sensor 7, forming an efficient heat conduction path. It can quickly conduct heat from the wire to the temperature sensor 7, ensuring the accuracy and timeliness of temperature detection. This coordinated action enables real-time temperature monitoring of the wire held by the wire clamp.
[0032] Multiple sets of mounting holes 10 are provided on the top of the mounting base 1. Upper clamp body 3 is fixedly connected to both sides with upper clamp body mounting ears 11. Multiple sets of upper clamp body mounting holes 12 are provided above the upper clamp body mounting ears 11. The mounting holes 10 are used to fix the entire clamp to the installation base such as the utility pole or bracket, ensuring the overall installation stability of the clamp, which is a prerequisite for the normal operation of the clamp. The upper clamp body mounting ears 11 cooperate with the upper clamp body mounting holes 12. When installing the wire, the upper clamp body mounting holes 12 are aligned with the corresponding threaded holes on the top of the lower clamp body 2. The upper clamp body 3 and the lower clamp body 2 can be locked and fixed by screwing in the bolts, realizing reliable clamping of the wire. The design of multiple sets of mounting holes makes it easy to adjust the clamping force according to actual needs to adapt to different working conditions.
[0033] An insulating rubber pad is bonded to the inner wall of the arc-shaped cable holder 52. The surface of the insulating rubber pad has multiple sets of anti-slip textures, which are evenly distributed laterally. During the clamping process, the insulating rubber pad can achieve electrical insulation between the clamp and the wire, preventing the clamp from conducting electricity and causing safety hazards. The anti-slip texture can increase the friction between the arc-shaped cable holder 52 and the wire, effectively preventing the wire from sliding and shifting during clamping, ensuring the stability of the wire position. At the same time, the rubber material has a certain degree of elasticity, which can buffer the squeezing damage to the wire caused by the clamping force, further ensuring the safety and stability of the wire.
[0034] The copper plate 9 is attached to the wire at the top and to the temperature sensor 7 at the bottom. During the temperature transfer process, the copper plate 9 is in close contact with the wire and the temperature sensor 7 at the top and bottom respectively, forming an efficient heat conduction path. This allows the heat from the wire to be transferred to the temperature sensor 7 quickly and evenly, reducing the loss and delay during the temperature transfer process. This enables the temperature sensor 7 to detect the actual temperature of the wire in real time and accurately, improving the temperature measurement accuracy. This is the key to ensuring accurate temperature detection.
[0035] The mounting hole 12 of the upper clamp body is adapted to the corresponding threaded hole on the upper part of the lower clamp body 2. This adaptation design plays an important role in the installation and fixing of the wire, allowing the bolt to pass smoothly through the mounting hole and engage with the threaded hole. By tightening the bolt, the upper clamp body 3 and the lower clamp body 2 can be tightly connected, thereby reliably clamping the wire. The threaded connection method has the characteristics of simple structure, stable connection, and convenient disassembly and assembly, which facilitates the installation, debugging and subsequent maintenance of the wire clamp, and provides convenience for the installation and maintenance of the wire clamp.
[0036] The outer surfaces of both the lower clamp 2 and the upper clamp 3 are anodized. The anodizing process forms a dense oxide film on the surface of the clamps, which can significantly improve the corrosion resistance, wear resistance, and oxidation resistance of the lower clamp 2 and the upper clamp 3, extend the service life of the clamps in complex outdoor environments, and ensure that the clamps maintain stable performance during long-term operation. At the same time, the treated surfaces have good insulation properties and aesthetics, improving the overall performance and practicality of the clamps and providing structural protection for the long-term stable operation of the clamps.
[0037] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.
[0038] The working principle of this utility model is as follows: First, the entire intelligent temperature measuring clamp is fixed to the base carrier such as a utility pole or bracket through the mounting hole 10 on the mounting base 1, ensuring that the clamp is installed stably. Then, the wire is placed between the lower clamp body 2 and the upper clamp body 3. Using the upper clamp body mounting ears 11 on both sides of the upper clamp body 3, the upper clamp body mounting hole 12 is aligned with the corresponding threaded hole on the upper part of the lower clamp body 2. The upper clamp body 3 and the lower clamp body 2 are tightly connected by screwing in the bolts. During this process, the multiple sets of symmetrical arc-shaped slide rails 4 on the inner walls of the lower clamp body 2 and the upper clamp body 3 provide a sliding path for the slider 51 of the buffer fixing mechanism 5, so that the arc-shaped wire placement plate 52 can adaptively adjust its position according to the diameter of the wire. At the same time, the buffer structure composed of multiple sets of damping sleeves 53 hinged between the slider 51 and the arc-shaped wire placement plate 52 and the springs 54 sleeved on the outside will absorb the displacement stress when the wire is displaced due to thermal expansion and contraction or external vibration. The hinged design also allows the arc-shaped wire placement plate to... The clamp 52 is finely adjusted according to the wire's posture, and the insulating rubber pad on the inner wall of the arc-shaped clamp 52 provides electrical insulation between the clamp and the wire. The transverse anti-slip texture on its surface increases friction to prevent the wire from sliding, and the elasticity of the rubber can also buffer the clamping force on the wire. Then, the sensor placement box 6 at the center above the mounting base 1 provides a closed protective space for the internal temperature sensor 7. The placement box cover 8, which is fixed above the sensor placement box 6 by four screws, ensures the airtightness of the internal environment and facilitates the later maintenance and replacement of the temperature sensor 7. The copper plate 9 installed through the center of the cover plate is closely attached to the wire above and to the temperature sensor 7 below, forming an efficient heat conduction path to quickly and evenly transfer the heat of the wire to the temperature sensor 7, achieving real-time and accurate temperature measurement. At the same time, the dense oxide film formed by the anodizing treatment on the outer surfaces of the lower clamp 2 and the upper clamp 3 enhances their corrosion resistance, wear resistance and oxidation resistance, ensuring that the clamp works stably for a long time in complex outdoor environments.
[0039] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A smart temperature measuring clamp, characterized in that, include: Mounting base (1), a lower clamp (2) is fixedly connected above the mounting base (1), an upper clamp (3) is installed above the lower clamp (2), and multiple sets of symmetrical arc-shaped slide rails (4) are opened on the inner walls of the lower clamp (2) and the upper clamp (3), and a buffer fixing mechanism (5) is slidably connected on the arc-shaped slide rails (4). The buffer fixing mechanism (5) includes a slider (51) and an arc-shaped wire plate (52). Multiple sets of damping sleeves (53) are hinged between the slider (51) and the arc-shaped wire plate (52). A spring (54) is sleeved on the outside of the damping sleeve (53).
2. The intelligent temperature measuring clamp according to claim 1, characterized in that, A sensor placement box (6) is fixedly connected to the center of the mounting base (1). A temperature sensor (7) is installed inside the sensor placement box (6). A placement box cover plate (8) is installed on the top of the sensor placement box (6) by four screws. A copper plate (9) is installed through the center of the placement box cover plate (8).
3. The intelligent temperature measuring clamp according to claim 1, characterized in that, The mounting base (1) has multiple sets of mounting holes (10) on its upper side, and the upper clamp (3) has upper clamp mounting ears (11) fixed on both sides. The upper clamp mounting ears (11) have multiple sets of upper clamp mounting holes (12) on their upper sides.
4. The intelligent temperature measuring clamp according to claim 1, characterized in that, An insulating rubber pad is bonded to the inner wall of the arc-shaped wire placement plate (52). Multiple anti-slip patterns are opened on the surface of the insulating rubber pad, and the anti-slip patterns are evenly distributed in the transverse direction.
5. The intelligent temperature measuring clamp according to claim 2, characterized in that, The copper plate (9) is attached to the wire at the top and to the temperature sensor (7) at the bottom.
6. The intelligent temperature measuring clamp according to claim 3, characterized in that, The mounting hole (12) of the upper clamp is adapted to the threaded hole corresponding to the upper part of the lower clamp (2).
7. The intelligent temperature measuring clamp according to claim 1, characterized in that, Both the lower clamp (2) and the upper clamp (3) are made of high-strength aluminum alloy, and the outer surfaces of both the lower clamp (2) and the upper clamp (3) are anodized.