Fuse detection device
By designing simplified installation and testing components and utilizing the cooperation between movable and fixed clamping parts, the problem of low installation efficiency in existing fuse testing devices has been solved, enabling a fast and reliable installation process and reducing costs.
Patent Information
- Application Number
- CN202422953606.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-12-26
- Estimated Expiration
- 2034-11-29
AI Technical Summary
Existing fuse detection devices are inefficient to install, requiring tools to secure the clamps to the fuse tubes, making installation complex and inconvenient.
A fuse testing device was designed, which employs an installation component and a testing component. The device includes an installation body, a movable clamping component, and an elastic component. The installation process is simplified by the cooperation between the movable clamping component and the fixed clamping component, and the clamping force is provided by the elastic component to achieve rapid installation.
The on-site installation of the fuse testing device has been simplified, improving installation efficiency. The integrated clamping mechanism has also enhanced installation reliability and reduced manufacturing costs.
Smart Images

Figure CN223727972U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of power equipment, in particular to a fuse detection device. BACKGROUND
[0002] In the existing power distribution network, the drop type fuse is widely used. When the line is overloaded or short-circuited, the fuse of the fuse is fused, causing the fuse tube to automatically drop. In the current power distribution system, the fuse itself does not have detection capability and cannot sense the opening and closing state of the fuse. Therefore, when the user experiences power failure, the line inspection needs to be arranged, which causes many inconveniences.
[0003] In order to facilitate the detection of the opening and closing state of the fuse, a fuse detection device is developed. The fuse detection device is fixedly installed on the fuse tube, and can move with the movement of the fuse tube. The fuse detection device determines the opening and closing state of the fuse through the movement.
[0004] The existing fuse detection device usually includes a clamp and a detection assembly. The detection assembly is fixed on the clamp, and then the clamp is used to fix the detection assembly on the fuse tube. However, the structure of the clamp is complex, and usually a tool is needed to fix the clamp on the fuse tube, which leads to low installation efficiency of the fuse detection device. Practical new type content
[0005] The main purpose of the present application is to provide a fuse detection device, which aims to improve the existing fuse detection device. The detection assembly is fixed on the fuse tube by using the clamp, and the problem of low installation efficiency is solved.
[0006] In order to achieve the above purpose, the fuse detection device provided by the present application is used to detect the state of the fuse. The fuse detection device includes a mounting assembly and a detection assembly. Wherein,
[0007] The mounting assembly includes a mounting body and a movable clamping piece. The mounting body has a mounting surface. A fixed clamping part is provided on one side of the mounting surface. The movable clamping piece is movably installed on the other side of the mounting surface. The movable clamping piece and the fixed clamping part are cooperatively clamped on the fuse tube of the fuse.
[0008] The detection assembly is installed on the mounting body and is used to detect the attitude change of the fuse tube.
[0009] In some embodiments of the present application, the movable clamping piece is rotatably installed on the mounting surface. The mounting assembly further includes a resilient member. The resilient member is elastically installed between the movable clamping piece and the mounting body. The movable clamping piece is clamped on the fuse tube together with the fixed clamping part under the elastic force of the resilient member.
[0010] In some embodiments of the present application, the movable clamping member is rotatably mounted on the mounting surface via a rotating shaft, the elastic member comprises a torsion spring, a helical body of the torsion spring is sleeved on the rotating shaft, and two elastic arms of the torsion spring are respectively elastically abutted against the movable clamping member and the mounting body.
[0011] In some embodiments of the present application, the movable clamping member is slidably mounted on the mounting surface, and the movable clamping member slides in a direction close to the fixed clamping part to jointly clamp the fuse tube with the fixed clamping part, and slides in a direction away from the fixed clamping part to release the fuse tube.
[0012] The mounting assembly further comprises a fixing member mounted on the movable clamping member and acting on the mounting body to fix the movable clamping member on the mounting surface when the movable clamping member jointly clamps the fuse tube with the fixed clamping part.
[0013] In some embodiments of the present application, the mounting body is provided with a mounting groove for mounting the detection assembly, and the mounting assembly further comprises a cover plate connected with the mounting body and covering a slot of the mounting groove to form a relatively sealed mounting cavity.
[0014] In some embodiments of the present application, a cavity wall of the mounting cavity is provided with a clamp for clamping and fixing the detection assembly.
[0015] In some embodiments of the present application, the cover plate is provided with an operation hole penetrating therethrough, and the mounting assembly further comprises a clamping cover detachably connected with the cover plate and covering the operation hole.
[0016] In some embodiments of the present application, the detection assembly comprises a posture detector for detecting a posture change of the fuse tube and a signal transmitter electrically connected with the posture detector, and the signal transmitter is configured to send a signal of the posture change outward.
[0017] In some embodiments of the present application, the fuse detection device further comprises a battery electrically connected with the detection assembly to provide electric energy required for operation of the detection assembly.
[0018] The detection assembly further comprises a power supply controller, and the battery is electrically connected with the power supply controller to control power supply of the posture detector and the signal transmitter via the power supply controller.
[0019] The power supply controller comprises a trigger configured to detect a posture change of the fuse tube and control the battery to supply power to the posture detector and the signal transmitter after the posture change of the fuse tube occurs.
[0020] In some embodiments of this application, the power supply controller includes a timer for disconnecting the battery from the attitude detector and the signal transmitter after a preset time.
[0021] The fuse testing device provided in this application, through the aforementioned structural configuration, allows for easy installation on the fuse tube. Simply bring the fixed clamping part into contact with the fuse tube, then drive the movable clamping member relative to the fixed clamping part. This allows the movable clamping member and the fixed clamping part to cooperate in clamping the fuse tube, thus enabling the fuse testing device to be installed on the fuse tube. As can be seen, the technical solution of this application eliminates the need for complex clamping clamps. During installation, simply driving the movable clamping member relative to the fixed clamping part is sufficient to install the fuse testing device on the fuse tube. This simplifies the on-site installation procedure of the fuse testing device, making installation simple and convenient for operators and significantly improving the installation efficiency. Furthermore, the fixed clamping part can be integrally molded with the mounting body, improving the reliability of the testing component's installation on the fuse tube via the mounting assembly and reducing the manufacturing cost of the mounting assembly. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0023] Figure 1 This is a schematic diagram of an embodiment of the fuse detection device of this application installed on a fuse;
[0024] Figure 2 This is another schematic diagram of the fuse detection device of this application installed on a fuse;
[0025] Figure 3 for Figure 1 Exploded view of a fuse detection device;
[0026] Figure 4 for Figure 1 A partial structural schematic diagram of a fuse detection device;
[0027] Figure 5 for Figure 1 Cross-sectional view of the fuse detection device.
[0028] Explanation of icon numbers:
[0029] 100, fuse detection device; 10, mounting assembly; 11, mounting body; 111, mounting surface; 1111, rotary mounting portion; 112, fixed clamping portion; 1121, abutting surface; 1122, gasket; 113, mounting groove; 12, movable clamping piece; 121, clamping surface; 122, rotating shaft; 13, torsional spring; 131, helical body; 132, elastic arm; 14, cover plate; 141, operation hole; 15, mounting cavity; 151, clamp; 16, clamping cover; 20, detection assembly; 30, battery; 200, fuse; 201, fuse tube.
[0030] The implementation, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION
[0031] 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 some of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0032] In the present application, unless otherwise explicitly specified and limited, the terms "connection", "fixation" and the like should be understood in a broad sense, for example, "fixation" can be fixed connection, or detachable connection, or integral; can be mechanical connection, or electrical connection; can be direct connection, or indirect connection through an intermediate medium; can be internal connection of two elements or interaction relationship between two elements, unless otherwise explicitly limited. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0033] In addition, the description such as "first", "second" and the like in the present application is only for the purpose of description, and cannot be understood as indicating or implying the relative importance of the indicated technical features or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can explicitly or implicitly include at least one of the features. In addition, the technical solutions of various embodiments can be combined with each other, but it must be based on the fact that the technical solutions can be realized by those skilled in the art. When the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the scope of protection claimed by the present application.
[0034] The present application provides a fuse detection device 100 for detecting the state of a fuse 200, which is installed at any position of a fuse tube 201, simplifying the installation operation procedure, making it convenient for the operator to operate, and enabling the fuse detection device 100 to be quickly installed at any position of the fuse tube 201.
[0035] Figure 1 Structure diagram of an embodiment of the fuse detection device 100 mounted on the fuse 200, Figure 2 Structure diagram of another embodiment of the fuse detection device 100 mounted on the fuse 200. Among them, Figure 1 In the normal state of the fuse 200, that is, the fuse 200 is in a normal closed state, Figure 2 In the falling state of the fuse 200, that is, the fuse 200 is in an open state, when the line is overloaded or short-circuited, the fuse of the fuse 200 is fused, causing the fuse tube 201 to automatically fall, that is, the fuse 200 is switched from the state of Figure 1 Switched to the state of Figure 2 .
[0036] Please refer to Figures 1 to 5 In the embodiments provided by the application, the fuse detection device 100 includes a mounting assembly 10 and a detection assembly 20, the mounting assembly 10 includes a mounting body 11 and a movable clamping piece 12, the mounting body 11 has a mounting surface 111, one side of the mounting surface 111 is provided with a fixed clamping part 112, and the other side of the mounting surface 111 movably installs the movable clamping piece 12, the movable clamping piece 12 cooperates with the fixed clamping part 112 to clamp the fuse tube 201 of the fuse 200. The detection assembly 20 is installed on the mounting body 11 and is used for detecting the attitude change of the fuse tube 201.
[0037] It should be emphasized that the fixed clamping part 112 is protruded on the mounting surface 111 of the mounting body 11, and the fixed clamping part 112 can be integrated with the mounting body 11, that is, the fixed clamping part 112 is part of the structure of the mounting body 11, which can be manufactured together with the mounting body 11 by an integral molding process when produced.
[0038] The specific way of movably installing the movable clamping piece 12 on the mounting surface 111 of the mounting body 11 is various, in one installation mode, the movable clamping piece 12 is rotatably installed on the mounting surface 111, and the movable clamping piece 12 rotates towards the direction close to the fixed clamping part 112, and cooperates with the fixed clamping part 112 to clamp the fuse tube 201 of the fuse 200; in another installation mode, the movable clamping piece 12 is slidably installed on the mounting surface 111, and the movable clamping piece 12 slides towards the direction close to the fixed clamping part 112, and cooperates with the fixed clamping part 112 to clamp the fuse tube 201 of the fuse 200.
[0039] The principle of detecting the open / close state of the fuse 200 by the fuse detection device 100 provided in the present application is as follows: when the line is overloaded or short-circuited, the fuse of the fuse 200 is blown, causing the fuse tube 201 to automatically drop, the fuse detection device 100 moves with the movement of the fuse tube 201, and then detects the attitude change of the fuse tube 201. The detection assembly 20 includes but is not limited to an inclination switch, an acceleration sensor, and the like.
[0040] The fuse detection device 100 provided in the embodiments of the present application is installed on the fuse tube 201 of the fuse 200 by the above structure, which only needs to abut the fixed clamping part 112 against the fuse tube 201, and then drives the movable clamping part 12 to move relative to the fixed clamping part 112, so that the movable clamping part 12 and the fixed clamping part 112 cooperate to clamp the fuse tube 201, and the fuse detection device 100 can be installed on the fuse tube 201. It can be seen that the technical solution of the present application does not need a complex clamp, and only needs to drive the movable clamping part 12 to move relative to the fixed clamping part 112 during installation, so that the fuse detection device 100 can be installed on the fuse tube 201. In this way, the operation procedure of the on-site installation of the fuse detection device 100 is simplified, the installation operation of the operator is simple and convenient, and the installation efficiency of the fuse detection device 100 is greatly improved. At the same time, the fixed clamping part 112 can be made by an integral molding process with the installation body 11, which improves the reliability of the detection assembly 20 installed on the fuse tube 201 by the installation assembly 10, and reduces the manufacturing cost of the installation assembly 10.
[0041] In some examples, as shown in Figures 1 to 4 The side of the fixed clamping part 112 facing the movable clamping part 12 is provided with an abutting surface 1121 matched with the fuse tube 201, and the side of the movable clamping part 12 facing the fixed clamping part 112 is provided with a clamping surface 121 matched with the fuse tube 201. It can be understood that the fuse tube 201 is usually cylindrical, and the abutting surface 1121 and the clamping surface 121 are matched arc surfaces.
[0042] In this way, the abutting surface 1121 and the clamping surface 121 can be closely attached to the outer circumferential side of the fuse tube 201, and the clamping effect of the fixed clamping part 112 and the movable clamping part 12 on the fuse tube 201 is improved.
[0043] In some examples, the abutting surface 1121 and / or the clamping surface 121 is further provided with a gasket 1122, which is generally elastic. The gasket 1122 is configured to increase the friction between the fixed clamping portion 112 and / or the movable clamping member 12 and the fuse tube 201, and further improve the clamping effect of the fixed clamping portion 112 and the movable clamping member 12 on the fuse tube 201. When the clamping force of the fixed clamping portion 112 and the movable clamping member 12 on the fuse tube 201 is too large, the gasket 1122 can serve as a buffer to protect the fuse tube 201.
[0044] In some examples, as shown in Figures 1 to 4 The movable clamping member 12 is rotatably installed on the mounting body 11, and the mounting assembly 10 further comprises an elastic member, which is elastically installed between the movable clamping member 12 and the mounting body 11. The elastic member provides an elastic force to the movable clamping member 12, so that the movable clamping member 12 always has a tendency to move towards the fixed clamping portion 112. That is, when the fuse tube 201 is slightly shaken, the movable clamping member 12 and the fixed clamping portion 112 can always clamp the fuse tube 201 together, thereby improving the stability of the fuse detection device 100 fixed on the fuse tube 201. Under the elastic force of the elastic member, the fuse detection device 100 can also be quickly installed on the fuse tube 201.
[0045] It can be understood that the elastic member provides an elastic force to the movable clamping member 12, so that the movable clamping member 12 always has a tendency to move towards the fixed clamping portion 112. That is, when the fuse tube 201 is slightly shaken, the movable clamping member 12 and the fixed clamping portion 112 can always clamp the fuse tube 201 together, thereby improving the stability of the fuse detection device 100 fixed on the fuse tube 201. Under the elastic force of the elastic member, the fuse detection device 100 can also be quickly installed on the fuse tube 201.
[0046] In some examples, as shown in Figures 1 to 4 The movable clamping member 12 is rotatably installed on the mounting surface 111 through a rotating shaft 122, and the elastic member comprises a torsion spring 13. The helical body 131 of the torsion spring 13 is sleeved on the rotating shaft 122, and the two elastic arms 132 of the torsion spring 13 are elastically abutted with the movable clamping member 12 and the mounting body 11, respectively. Figure 3 In the embodiment shown in
[0047] In this way, the installation of the movable clamping member 12 is facilitated, and the assembly efficiency of the fuse detection device 100 is improved. In addition, the rotating shaft 122 and the torsion spring 13 can be standard parts, which can be directly obtained on the market, thereby reducing the manufacturing cost of the fuse detection device 100.
[0048] In some specific examples, the mounting surface 111 is provided with a rotating installation portion 1111, and the rotating shaft 122 is rotatably installed on the mounting surface 111 through the rotating installation portion 1111.
[0049] In some examples, the movable clamping part 12 is slidingly mounted on the mounting surface 111, and slides towards the fixed clamping part 112 to jointly clamp the fuse tube 201 with the fixed clamping part 112, and slides away from the fixed clamping part 112 to release the fuse tube 201. The movable clamping part 12 can be slidingly mounted on the mounting surface 111 in various manners. In one specific manner, a guide groove is recessed on the mounting surface 111, and the movable clamping part 12 is provided with a sliding block that slidingly cooperates with the guide groove. In another specific manner, a guide rail is provided on the mounting surface 111, and the movable clamping part 12 is recessed with a sliding groove that slidingly cooperates with the guide rail.
[0050] The mounting assembly 10 further comprises a fixing member that is mounted on the movable clamping part 12 and acts on the mounting body 11 to fix the movable clamping part 12 on the mounting surface 111 when the movable clamping part 12 jointly clamps the fuse tube 201 with the fixed clamping part 112. In some specific examples, the fixing member is a bolt that is threadedly connected with the movable clamping part 12 and abuts against the mounting surface 111 to act on the mounting body 11, thereby fixing the movable clamping part 12 on the mounting surface 111.
[0051] In this way, the distance between the movable clamping part 12 and the fixed clamping part 112 can be adjusted by sliding the movable clamping part 12 towards or away from the fixed clamping part 112, thereby increasing the application range of the fuse detection device 100 and facilitating installation.
[0052] In some examples, as shown in Figures 3 to 5 The mounting body 11 is provided with a mounting groove 113 for mounting the detection assembly 20, and the mounting assembly 10 further comprises a cover plate 14 that is connected with the mounting body 11 and covers the opening of the mounting groove 113 to form a relatively sealed mounting cavity 15.
[0053] The cover plate 14 can be connected with the mounting body 11 in a detachable fixed connection manner, such as threaded connection, clamping, etc., or in a non-detachable fixed connection manner, such as welding, bonding, etc.
[0054] In this way, the detection assembly 20 is wrapped and protected by the relatively sealed mounting cavity 15, so that the detection assembly 20 can be protected from the external environment and the detection accuracy of the detection assembly 20 is improved.
[0055] To improve the sealing performance of the mounting cavity 15, a sealing ring can be further arranged between the cover plate 14 and the mounting body 11.
[0056] In some examples, as shown in Figure 5As shown, the cavity wall of the installation cavity 15 is provided with a clamp 151 for clamping and fixing the detection assembly 20. The number of clamps 151 can be multiple and arranged at intervals.
[0057] In this way, when the fuse detection device 100 is slightly shaken, the clamp 151 can absorb the vibration to avoid the detection device from colliding with the cavity wall, and the accuracy of the detection assembly 20 can be improved.
[0058] It is considered that after the installation of the fuse detection device 100, the parts in the installation cavity 15 need to be operated to be able to be normally used, for example: opening the main switch of the fuse detection device 100, installing the storage card and other operations.
[0059] In some examples, as shown in Figure 3 and Figure 5 As shown, the cover plate 14 is provided with an operation hole 141, and the installation assembly 10 further comprises a clamping cover 16, which is detachably connected with the cover plate 14 and covers the operation hole 141. The clamping cover 16 can be detachably connected with the cover plate 14 by screw connection, clamping or other ways.
[0060] In this way, it is convenient for the operator to operate the parts in the installation cavity 15 by detaching the clamping cover 16.
[0061] Similarly, in order to improve the sealing performance of the installation cavity 15, a sealing ring can also be arranged between the cover plate 14 and the clamping cover 16.
[0062] In some examples, the detection assembly 20 comprises a posture detector and a signal transmitter, the posture detector is used for detecting the posture change of the fuse tube 201, and the signal transmitter is electrically connected with the posture detector, and the signal transmitter is used for transmitting the posture change signal outward.
[0063] It should be emphasized that the posture detector usually has a preset value, and when the posture detector detects a value equal to or greater than the preset value, it is determined that the fuse tube 201 has fallen, and when the posture detector detects a value less than the preset value, it is determined that the fuse tube 201 has not fallen.
[0064] In some examples, the posture sensor is an acceleration sensor, and the acceleration sensor is configured to generate a posture change signal when detecting that the acceleration of itself is equal to or greater than a preset value.
[0065] In some embodiments, the acceleration sensor is a sensor capable of measuring acceleration. It is usually composed of a mass block, a damper, an elastic element, a sensitive element, etc. The acceleration sensor is due to the acceleration of a certain medium to produce deformation, by measuring its deformation and using the relevant circuit to convert into voltage output. When using the acceleration sensor, a preset threshold value needs to be set, and when the detected acceleration value is greater than or equal to the threshold value, the acceleration sensor generates a posture change signal, which can avoid the acceleration sensor from detecting the change of the acceleration value due to additional variables such as slight shaking, wind blowing, etc. to mistakenly generate a posture change signal.
[0066] In this way, the signal transmitter is arranged to realize the wireless communication function of the fuse detection device 100.
[0067] In some embodiments, the signal transmitter can also be a timing signal transmitter that sends signals outward at fixed intervals.
[0068] In some embodiments, wireless communication can also be completed by means of existing technologies such as Bluetooth, Global System for Mobile Communications, General Wireless Packet Service, and wireless communication technology.
[0069] In some examples, the signal transmitter includes a SIM card, and the installation of the SIM card can be realized by disassembling the above-mentioned cover 16.
[0070] In some examples, as shown in Figure 3 and Figure 4 The fuse detection device 100 further includes a battery 30, which is electrically connected with the detection assembly 20 to provide the power required for the operation of the detection assembly 20. In this way, the fuse detection device 100 does not need an external power supply and can realize wireless detection of the fuse 200.
[0071] In some examples, the detection assembly 20 further includes a power supply controller, and the battery 30 is electrically connected with the power supply controller to control the power supply of the attitude detector and the signal transmitter through the power supply controller. The power supply controller includes a trigger, which is used to detect the attitude change of the fuse tube 201 and control the power supply of the attitude detector and the signal transmitter by the battery 30 after the attitude change of the fuse tube 201.
[0072] It should be emphasized that the trigger has high sensitivity in detecting the attitude change of the fuse tube 201, that is, when the fuse tube 201 has slight vibration, the trigger can also recognize it and immediately control the power supply of the attitude detector and the signal transmitter by the battery 30 after the recognition, so that the attitude detector can further detect the attitude change of the fuse tube 201 to detect whether the fuse tube 201 has fallen. In this way, the time for the battery 30 to supply power to the attitude detector and the signal transmitter can be reduced, and the standby time of the fuse detection device 100 can be prolonged.
[0073] In some examples, the power supply controller comprises a timer for disconnecting the power supply of the battery 30 to the posture detector and the signal transmitter after a preset time. It can be understood that the posture detector can complete a detection within a certain time, and the time is defined as a first time length, and the signal transmitter can also complete the signal transmission within a certain time, and the time is defined as a second time length, and the preset time is greater than the sum of the first time length and the second time length. In this way, after the signal is sent out, the fuse detection device 100 enters a dormant state, further prolonging the standby time of the fuse detection device 100.
[0074] The above is only an optional embodiment of the present application, and does not limit the patent scope of the present application. Any equivalent structural transformation made by using the content of the present application specification and drawings, or directly / indirectly applied to other related technical fields within the inventive concept of the present application is included in the patent protection scope of the present application.
Claims
1. A fuse detection device for detecting the condition of a fuse, characterized in that, The fuse detection device includes an installation assembly and a detection assembly; wherein... The mounting assembly includes a mounting body and a movable clamping component. The mounting body has a mounting surface, and a fixed clamping part protrudes from one side of the mounting surface. The movable clamping component is movably mounted on the other side of the mounting surface. The movable clamping component and the fixed clamping part cooperate to clamp the fuse tube of the fuse. The detection component is mounted on the mounting body and is used to detect changes in the posture of the molten tube.
2. The fuse detection device as described in claim 1, characterized in that, The movable clamping member is rotatably mounted on the mounting surface. The mounting assembly also includes an elastic member, which is elastically mounted between the movable clamping member and the mounting body, so that the movable clamping member, under the elastic force of the elastic member, together with the fixed clamping part, clamps the fusion tube.
3. The fuse detection device as described in claim 2, characterized in that, The movable clamping member is rotatably mounted on the mounting surface via a rotating shaft. The elastic member includes a torsion spring, the spiral body of which is sleeved on the rotating shaft, and the two elastic arms of the torsion spring elastically abut against the movable clamping member and the mounting body, respectively.
4. The fuse detection device as described in claim 1, characterized in that, The movable clamping member is slidably mounted on the mounting surface. The movable clamping member slides in a direction close to the fixed clamping part to clamp the molten tube together with the fixed clamping part. The movable clamping member slides in a direction away from the fixed clamping part to release the molten tube. The mounting assembly further includes a fixing member, which is mounted on the movable clamping member and acts on the mounting body to fix the movable clamping member to the mounting surface when the movable clamping member and the fixed clamping part clamp the fusion tube together.
5. The fuse detection device as described in claim 1, characterized in that, The mounting body is provided with a mounting groove for mounting the detection component. The mounting component also includes a cover plate, which is connected to the mounting body and covers the opening of the mounting groove to form a relatively sealed mounting cavity.
6. The fuse detection device as described in claim 5, characterized in that, The cavity wall of the mounting cavity is provided with clamps for holding and fixing the detection component.
7. The fuse detection device as described in claim 5, characterized in that, The cover plate has an operating hole through it, and the mounting assembly also includes a clip cover, which is detachably connected to the cover plate and covers the operating hole.
8. The fuse detection device as described in claim 1, characterized in that, The detection component includes an attitude detector and a signal transmitter. The attitude detector is used to detect changes in the attitude of the molten tube. The signal transmitter is electrically connected to the attitude detector and is used to transmit the signal of the attitude change outward.
9. The fuse detection device as described in claim 8, characterized in that, The fuse detection device also includes a battery, which is electrically connected to the detection component to provide the electrical energy required for the detection component to operate. The detection component also includes a power supply controller, and the battery is electrically connected to the power supply controller to control the power supply to the attitude detector and the signal transmitter. The power supply controller includes a trigger for detecting changes in the attitude of the fused tube, and controlling the battery to supply power to the attitude detector and the signal transmitter after the attitude of the fused tube changes.
10. The fuse detection device as described in claim 9, characterized in that, The power supply controller includes a timer, which is used to disconnect the battery from the attitude detector and the signal transmitter after a preset time.