A general vibration measurement module installation structure with convenient disassembly and assembly

By designing convenient adjustment components, effective protective components and stable components, the problems of cumbersome installation structure, poor heat dissipation and easy dissipation of rubber pads in the prior art are solved, and the effects of rapid installation and disassembly, efficient heat dissipation and stable installation are achieved.

CN115823465BActive Publication Date: 2025-06-13HUANENG YANTAI BAJIAO THERMOELECTRIC CO LTD
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Patent Information

Application Number
CN202211609567.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-14
Publication Date
2025-06-13
Estimated Expiration
2042-12-14

AI Technical Summary

Technical Problem

The built-in installation structure of the existing anti-fall buffer WiFi module is complicated and complicated when installed and disassembled, and the through hole position cannot be adjusted, and the scope of application is small; and the heat dissipation of the colloidal structure may lead to an increase in the module temperature; the glue pads are easily dissipated and need to be replaced frequently.

Method used

Design a universal vibration measurement module installation structure that is convenient to disassemble and assemble. By adjusting the plug-in position according to the limit hole position, it can achieve rapid installation and disassembly; use a double-layer heat sink and heat sink to improve heat dissipation efficiency; use annular frame and air cushion to increase installation stability.

Benefits of technology

It realizes the convenience of installation and disassembly, has a wide range of application, and improves work efficiency; through effective heat dissipation and buffering measures, the module is prevented from being damaged due to rising temperatures, and reduces the loss of the glue pad.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a general vibration measurement module installation structure with convenient disassembly and assembly, which relates to the technical field of measurement equipment and its related accessories. The present invention includes a mounting plate, and limiting holes are provided at the front, rear, both sides of the upper surface of the mounting plate. An installation seat is installed on the upper surface of the mounting plate. A T-shaped groove is provided at the central position inside the installation seat, and rectangular grooves are provided on both sides inside the T-shaped groove. A heat dissipation groove is provided at the central position of the upper surface of the installation seat; the adjustment component includes a knob and a first rotating shaft; the installation component includes an insertion cylinder and a stopper; the protection component includes a double-layer heat dissipation rack and a module body; the stability component includes an annular frame and a cover plate. The present invention is convenient to make corresponding adjustments according to the position of the limiting holes through the adjustment component, and has high working efficiency. At the same time, the protection component can play an effective heat dissipation effect while playing a buffering role, and the stability of the installation of the mounting plate and the installation seat can be increased through the stability component.
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Description

Technical Field

[0001] The present invention belongs to the technical field of measuring devices and their related accessories, and particularly relates to a general-purpose vibration measurement module installation structure that is convenient for disassembly and assembly. Background Art

[0002] With the development of technology, various mechanical devices are used in people's daily life and production. Generally, modules with various functions are installed inside the mechanical devices, and the general-purpose vibration measurement module is one of them. Generally, an installation structure is required to assist in fixing the general-purpose vibration measurement module for normal use, installation, etc.

[0003] After retrieval, the publication number CN113329111A, the application date is June 9, 2021, and it discloses an anti-drop buffer type built-in installation structure for a wifi module, which relates to the field of WiFi modules, including an outer fixing plate. The top and bottom surfaces of the outer fixing plate are fixedly bonded with isolation rubber pads. A connection through hole is opened on the top surface of the isolation rubber pad. A middle buckling groove is horizontally opened on the top surface of the outer fixing plate. A buckling plate is horizontally clamped on the inner side of the middle buckling groove. A through groove is horizontally opened on the top surface of the buckling plate. A clamping groove is vertically opened on one side of the outer fixing plate. A clamping plate is clamped on the inner side of the clamping groove. An insertion hole is opened on one side of the outer fixing plate. A fixed middle plate is horizontally arranged on the bottom surface of the buckling plate. A middle through groove is horizontally opened on the top surface of the fixed middle plate.

[0004] However, it still has the following disadvantages in actual use:

[0005] 1. When the above anti-drop buffer type built-in installation structure for a wifi module is in use, the outer fixing plate is fixed at a specified position by inserting bolts through the through holes. This method is relatively cumbersome and complex for staff to install and disassemble. Moreover, the position of the through holes is fixed and cannot be changed, which is not convenient to change the position according to actual needs, and the applicable range is small.

[0006] 2. When the above anti-drop buffer type built-in installation structure for a wifi module is in use, a multi-layer colloid structure is designed to buffer and shock-absorb the main module board. This method will wrap the main module board inside, and because the colloid structure has poor heat dissipation, the internal temperature may rise, resulting in damage to the main module board.

[0007] 3. When the above anti-drop buffer type built-in installation structure for a wifi module is in use, the stability is increased by setting isolation rubber pads on the through holes. This method is relatively cumbersome and complex for staff to operate, is easily worn out, and needs to be replaced frequently, which is not convenient to use. Summary of the Invention

[0008] The object of the present invention is to provide a general-purpose vibration measurement module installation structure that is convenient for disassembly and assembly. By using the adjustment component, it is easy to make corresponding adjustments according to the positions of the limit holes on the mounting plate, with a wide range of applications, convenient and rapid installation and disassembly, high working efficiency. At the same time, the protection component can play a buffering role and can also achieve an effective heat dissipation effect, preventing the module body from being damaged due to poor heat dissipation and high temperature. And through the stabilizing component, the air cushion can be squeezed between the mounting plate and the mounting seat, thereby increasing the stability of the installation of the mounting plate and the mounting seat.

[0009] To solve the above technical problems, the present invention is realized through the following technical solutions:

[0010] The present invention is a general-purpose vibration measurement module installation structure that is convenient for disassembly and assembly, including a mounting plate. Limit holes are provided at the front, rear, left, and right ends on both sides of the upper surface of the mounting plate. A mounting seat is installed on the upper surface of the mounting plate. A T-shaped groove is provided at the center position inside the mounting seat. Rectangular grooves are provided on both sides inside the T-shaped groove. A heat dissipation groove is provided at the center position on the upper surface of the mounting seat. An installation groove is provided at the center position on the bottom of the mounting seat; an adjustment component is provided inside the T-shaped groove. The adjustment component includes a knob and a first rotating shaft. A first rotating shaft is welded to the center position of the rear end face of the knob; mounting components are provided on both sides in front of and behind the mounting seat. The mounting component includes an insertion cylinder and a stop block. Receiving holes are provided at the bottom ends of the outer walls on both sides of the insertion cylinder. A stop block is welded to the top of the receiving hole; a protection component is provided at the center position on the upper surface of the mounting seat. The protection component includes a double-layer heat dissipation frame and a module body. A module body is installed at the center position on the upper surface of the double-layer heat dissipation frame; a stabilizing component is provided on the outer side of the upper surface of the mounting seat. The stabilizing component includes an annular frame and a cover plate. One outer wall of the annular frame is movably connected to the cover plate through a hinge. Both ends of the T-shaped groove penetrate through the outer walls on both sides of the mounting seat. Three sides of the rectangular groove penetrate through the outer wall of the mounting seat. The heat dissipation groove can improve the heat dissipation efficiency. The size of the receiving hole is larger than the size of the limit block. The stop block can limit the limit block. The double-layer heat dissipation frame can absorb the heat generated by the module body. The other outer wall of the cover plate is clamped to the outer wall of the annular frame through a fixing member.

[0011] Furthermore, the other end of the first rotating shaft penetrates through the bearing on the front end face of the T-shaped groove and is connected to a first bevel gear. A second bevel gear is provided on one side behind the first bevel gear. A threaded rod is installed on the inner wall of the second bevel gear. The gear on the outer wall of the first bevel gear is meshed with the gear on the outer wall of the second bevel gear, playing a role in transmission.

[0012] Further, both ends of the threaded rod sequentially penetrate through the bearings on the end faces of the fixed plates on both sides and the threaded holes on the inner wall of the threaded cylinder. Connecting plates are welded to the front and rear ends of the outer wall of the threaded cylinder. External threads are provided on both sides of the outer wall of the threaded rod, and the external threads are threadedly engaged with the internal threads on the inner wall of the threaded cylinder. When the threaded rod rotates, it can drive the threaded cylinders on both sides to move in opposite or the same directions, and the ends of the connecting plates penetrate through the rectangular grooves.

[0013] Further, a first limiting plate is arranged on the upper surface of the insertion cylinder. A pull ring is installed at the center position of the upper surface of the first limiting plate. Connecting ropes are arranged on both sides of the bottom of the first limiting plate. The first limiting plate and the limiting block are connected through the connecting ropes, playing a connecting role.

[0014] Further, the other end of the connecting rope sequentially penetrates through the through hole on the upper surface of the insertion cylinder and the limiting ring and is connected to the bottom of the inner side wall of the limiting block. Both ends of the front and rear edges of one side of the top of the limiting block are connected to the second rotating shaft through the connecting block. A torsion spring is sleeved on the outer side of the outer wall of the second rotating shaft. The limiting ring is fixed on the inner wall of the insertion cylinder. When the limiting block is stressed, it will rotate around the second rotating shaft, and it can drive the limiting block to rotate under the elastic performance of the torsion spring.

[0015] Further, heat dissipation fins are installed inside the double-layer heat dissipation rack. Second limiting plates are arranged at the four corners above the double-layer heat dissipation rack. A limiting rod is welded at the center position of the bottom of the second limiting plate. The heat dissipation fins can improve the heat dissipation efficiency.

[0016] Further, the other end of the limiting rod penetrates through the through hole on the upper surface of the double-layer heat dissipation rack and is connected to the upper surface of the mounting seat. A first spring is sleeved on the outer side of the outer wall of the limiting rod. The first spring is located between the double-layer heat dissipation rack and the mounting seat. The limiting rod mainly plays a role in limiting the double-layer heat dissipation rack. Through the first spring, a part of the acting force can be absorbed when stressed, playing a shock-absorbing role.

[0017] Further, a porous sponge pad is embedded at the center position of the bottom of the cover plate. Second springs are evenly spaced at the inner top of the annular frame. Rubber plugs are installed at the bottom ends of the second springs. The porous sponge pad can be used to prevent the heat generated by the module body from not being discharged, and the elastic performance of the second spring can apply force to the rubber plug.

[0018] Further, an air pipe is arranged on one side of the bottom of the annular frame. The other end of the air pipe is connected to the connecting pipe through a pipe joint. The other end of the connecting pipe penetrates through the upper surface of the mounting seat and is connected to the air cushion through a pipe joint. The pipe joint plays a role in pipeline connection, and the gas in the annular frame and the air cushion can circulate.

[0019] The present invention has the following beneficial effects:

[0020] 1. By providing an adjustment component, when the staff uses it and needs to install and fix the installation structure, first align the positions of the surrounding insertion cylinders with the limiting holes on the upper surface of the mounting plate. When aligning, rotate the knob. The rotation of the knob drives the rotation of the first rotating shaft, and thus the rotation of the first rotating shaft drives the rotation of the first bevel gear. Since the gear on the outer wall of the first bevel gear is meshed and connected with the gear on the outer wall of the second bevel gear, therefore, when the first bevel gear rotates, it drives the rotation of the second bevel gear. The rotation of the second bevel gear drives the rotation of the threaded rod on the inner wall. The external thread on the outer wall of the threaded rod is threadedly meshed with the internal thread on the inner walls of the two threaded cylinders on both sides. Therefore, when the threaded rod rotates, it drives the two threaded cylinders on both sides to move in opposite or the same directions, and further can adjust the positions of the threaded cylinders, and adjust the positions of the outer insertion cylinders through the connecting plate, so as to facilitate corresponding adjustments according to the positions of the limiting holes on the mounting plate, with a wide range of applications. Then, pull up the pull ring. The pull ring moves upward under force and drives the first limiting plate to move upward. The bottom of the first limiting plate is connected to the limiting blocks on both sides through two connecting ropes. Therefore, when the first limiting plate moves upward, it pulls the bottom of the limiting blocks through the connecting ropes, causing the limiting blocks to rotate around the second rotating shaft and compress the torsion spring, so that the limiting blocks can be pulled into the storage holes. Then, insert the insertion cylinder into the corresponding limiting hole. Then, stop applying force to the pull ring. At this time, under the elastic performance of the torsion spring, the limiting blocks are ejected and play a role in limiting the bottom of the mounting plate, completing the installation. When disassembling, repeat the above operation to remove the insertion cylinder from the limiting hole. The installation and disassembly are convenient, solving the problem that when the anti-drop buffer type wifi module built-in installation structure is used, it is fixed at a specified position by inserting bolts through the through holes, and this method is relatively cumbersome and complex for the staff to install and disassemble, and the positions of the through holes are fixed and cannot be changed, making it inconvenient to change the positions according to actual needs, and the scope of application is small.

[0021] 2. The present invention sets up a protection component. After the installation structure is fixedly installed, the module body is placed on the upper surface of the double-layer heat sink. Then, under the action of the hinge, the cover plate is rotated so that the cover plate covers above the module body and is fixed by the outer clamping parts, thus completing the installation of the module body. If an external force is applied, at this time, the external force is transmitted to the inside, the module body vibrates and presses the double-layer heat sink, the double-layer heat sink moves downward under the force and compresses the first spring located below. At this time, the first spring absorbs a part of the force under the action of its own elastic performance and bounces up the double-layer heat sink, so that the top of the module body contacts the porous sponge pad, which can play a buffering role. At the same time, when the module body is in use, the heat generated by it is absorbed by the double-layer heat sink and the heat sink, and then the heat is discharged through the heat dissipation slots, thus achieving an effective heat dissipation effect and preventing the module body from being damaged due to poor heat dissipation and high temperature, solving the problem that the anti-drop and buffer type wifi module built-in installation structure uses a multi-layer colloid structure to buffer and shock the main module board during use, but this method will wrap the main module board inside, and due to the poor heat dissipation of the colloid structure, the internal temperature may rise, resulting in damage to the main module board.

[0022] 3. The present invention sets up a stabilizing component. When the staff inserts the insertion cylinder, the upper surface of the mounting plate will first contact and squeeze the air cushion in the bottom mounting groove of the mounting seat. After the mounting seat is installed on the mounting plate, the air cushion is squeezed more, and the gas inside enters the annular frame through the connecting pipe and the air pipe, increasing the gas in the annular frame, which will then push the rubber plug upward, causing the rubber plug to move upward and squeeze the second spring above. At the same time, under the elastic performance of the second spring, a elastic force will be generated on the rubber plug, so that the air cushion can be squeezed between the mounting plate and the mounting seat, thus increasing the stability of the installation of the mounting plate and the mounting seat, solving the problem that the anti-drop and buffer type wifi module built-in installation structure uses an isolation rubber pad on the through hole to increase stability during use, but this method is more cumbersome and complex during the operation of the staff, is prone to wear and tear, needs to be replaced frequently, and is not convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0024] Figure 1 It is a structural diagram of a general vibration measurement module installation structure with convenient disassembly and assembly;

[0025] Figure 2 It is a cross-sectional view of the mounting seat;

[0026] Figure 3 Structural diagram of the adjustment component;

[0027] Figure 4 Exploded view of the installation component;

[0028] Figure 5 Structural schematic of the mounting base Figure 1 ;

[0029] Figure 6 Structural schematic of the mounting base Figure 2 ;

[0030] Figure 7 Structural diagram of the protection component;

[0031] Figure 8 Cross-sectional view of the stabilizing component.

[0032] In the accompanying drawings, the list of components represented by each reference numeral is as follows:

[0033] 1. Mounting plate; 101. Limit hole; 102. Mounting base; 103. T-shaped groove; 104. Rectangular groove; 105. Heat dissipation groove; 106. Mounting groove; 2. Adjustment component; 201. Knob; 202. First rotating shaft; 203. First bevel gear; 204. Second bevel gear; 205. Threaded rod; 206. Fixed plate; 207. Threaded barrel; 208. Connecting plate; 3. Installation component; 301. Insertion cylinder; 3011. Storage hole; 302. Block; 303. First limiting plate; 304. Pull ring; 305. Connecting rope; 306. Limiting ring; 307. Limiting block; 308. Second rotating shaft; 309. Torsion spring; 4. Protection component; 401. Double-layer heat dissipation rack; 402. Module body; 403. Second limiting plate; 404. Heat dissipation fin; 405. Limiting rod; 406. First spring; 5. Stabilizing component; 501. Ring frame; 5011. Air pipe; 502. Cover plate; 503. Porous sponge pad; 504. Second spring; 505. Rubber plug; 506. Connecting pipe; 507. Air cushion. Detailed implementation manners

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention.

[0035] Please refer to Figures 1 to 8As shown in the figure, the present invention is a general vibration measurement module installation structure with convenient disassembly and assembly, including an installation plate 1. On both sides of the upper surface of the installation plate 1, limit holes 101 are provided at the front and rear ends. An installation seat 102 is installed on the upper surface of the installation plate 1. At the center position inside the installation seat 102, a T-shaped groove 103 is provided. On both sides inside the T-shaped groove 103, rectangular grooves 104 are provided. At the center position on the upper surface of the installation seat 102, a heat dissipation groove 105 is provided. At the center position at the bottom of the installation seat 102, an installation groove 106 is provided; inside the T-shaped groove 103, an adjustment component 2 is provided. The adjustment component 2 includes a knob 201 and a first rotating shaft 202. At the center position of the rear end face of the knob 201, the first rotating shaft 202 is welded; on both sides in the front and rear directions of the installation seat 102, installation components 3 are provided. The installation component 3 includes an insertion cylinder 301 and a stop block 302. At the bottom ends of the outer walls on both sides of the insertion cylinder 301, receiving holes 3011 are provided. At the top of the receiving hole 3011, the stop block 302 is welded; at the center position on the upper surface of the installation seat 102, a protection component 4 is provided. The protection component 4 includes a double-layer heat dissipation rack 401 and a module body 402. At the center position on the upper surface of the double-layer heat dissipation rack 401, the module body 402 is installed; on the outer side of the upper surface of the installation seat 102, a stabilizing component 5 is provided. The stabilizing component 5 includes an annular frame 501 and a cover plate 502. One side outer wall of the annular frame 501 is movably connected to the cover plate 502 through a hinge. Both ends of the T-shaped groove 103 penetrate through the outer walls on both sides of the installation seat 102. Three sides of the rectangular groove 104 penetrate through the outer wall of the installation seat 102. The heat dissipation groove 105 can improve the heat dissipation efficiency. The size of the receiving hole 3011 is larger than the size of the limit block 307. The stop block 302 can play a role in limiting the limit block 307. The double-layer heat dissipation rack 401 can absorb the heat generated by the module body 402. The other side outer wall of the cover plate 502 is clamped to the outer wall of the annular frame 501 through a fixing member.

[0036] As shown in Figures 1 to 3 the figure, the other end of the first rotating shaft 202 penetrates through the bearing on the front end face of the T-shaped groove 103 and is connected to the first bevel gear 203. On one side behind the first bevel gear 203, a second bevel gear 204 is provided. On the inner wall of the second bevel gear 204, a threaded rod 205 is installed. The gear on the outer wall of the first bevel gear 203 is meshed with the gear on the outer wall of the second bevel gear 204 to play a role in transmission. The two ends of the threaded rod 205 respectively penetrate through the bearings on the end faces of the two sides of the fixing plate 206 and the threaded holes on the inner wall of the threaded cylinder 207 in sequence. At the front and rear ends of the outer wall of the threaded cylinder 207, connecting plates 208 are welded. On both sides of the outer wall of the threaded rod 205, external threads are provided, and the external threads are threadedly meshed with the internal threads on the inner wall of the threaded cylinder 207. When the threaded rod 205 rotates, it can drive the two sides of the threaded cylinder 207 to move in opposite or opposite directions. The end of the connecting plate 208 penetrates through the rectangular groove 104.

[0037] As shown inFigures 3 to 4 As shown in the figure, a first limiting plate 303 is provided on the upper surface of the insertion cylinder 301. A pull ring 304 is installed at the center position of the upper surface of the first limiting plate 303. Connecting ropes 305 are provided on both sides of the bottom of the first limiting plate 303. The first limiting plate 303 and the limiting block 307 are connected by the connecting ropes 305 to play a connecting role. The other ends of the connecting ropes 305 sequentially pass through the through holes on the upper surface of the insertion cylinder 301 and the limiting ring 306 and are connected to the bottom of the inner side wall of the limiting block 307. Both front and rear ends of the edge of one side of the top of the limiting block 307 are connected to the second rotating shaft 308 through connecting blocks. A torsion spring 309 is sleeved on the outer side of the outer wall of the second rotating shaft 308. The limiting ring 306 is fixed on the inner wall of the insertion cylinder 301. When the limiting block 307 is stressed, it will rotate around the second rotating shaft 308, and the limiting block 307 can be driven to rotate under the elastic performance of the torsion spring 309.

[0038] Among them, as Figure 2 、 7 shown, heat dissipation fins 404 are installed inside the double-layer heat dissipation rack 401. Second limiting plates 403 are provided at the four corners above the double-layer heat dissipation rack 401. A limiting rod 405 is welded at the center position of the bottom of the second limiting plate 403. The heat dissipation fins 404 can improve the heat dissipation efficiency. The other end of the limiting rod 405 passes through the through hole on the upper surface of the double-layer heat dissipation rack 401 and is connected to the upper surface of the mounting seat 102. A first spring 406 is sleeved on the outer side of the outer wall of the limiting rod 405. The first spring 406 is located between the double-layer heat dissipation rack 401 and the mounting seat 102. The limiting rod 405 mainly plays a role in limiting the double-layer heat dissipation rack 401. When stressed, a part of the acting force can be absorbed through the first spring 406 to play a shock-absorbing role.

[0039] Among them, as Figure 2 、 8 shown, a porous sponge pad 503 is embedded at the center position of the bottom of the cover plate 502. Second springs 504 are evenly spaced at the top end inside the annular frame 501. A rubber plug 505 is installed at the bottom end of the second spring 504. The porous sponge pad 503 can be used to prevent the heat generated by the module body 402 from not being discharged. The elastic performance of the second spring 504 can apply force to the rubber plug 505. An air pipe 5011 is provided on one side of the bottom of the annular frame 501. The other end of the air pipe 5011 is connected to the connecting pipe 506 through a pipe joint. The other end of the connecting pipe 506 passes through the upper surface of the mounting seat 102 and is connected to the air cushion 507 through a pipe joint. The pipe joint plays a role in pipeline connection. The gas in the annular frame 501 and the air cushion 507 can flow.

[0040] A specific application of this embodiment is as follows: When in use by staff, when it is necessary to install and fix the installation structure, first align the positions of the surrounding insertion cylinders 301 with the limiting holes 101 on the upper surface of the mounting plate 1. When aligning, rotate the knob 201. The rotation of the knob 201 drives the rotation of the first rotating shaft 202. Thus, the rotation of the first rotating shaft 202 drives the rotation of the first bevel gear 203. Since the gear on the outer wall of the first bevel gear 203 is meshed and connected with the gear on the outer wall of the second bevel gear 204, therefore, when the first bevel gear 203 rotates, it drives the rotation of the second bevel gear 204. The rotation of the second bevel gear 204 drives the rotation of the threaded rod 205 on the inner wall. The external thread on the outer wall of the threaded rod 205 is threadedly meshed with the internal thread on the inner walls of the two side threaded cylinders 207. Therefore, when the threaded rod 205 rotates, it drives the two side threaded cylinders 207 to move in opposite or the same directions, thereby adjusting the positions of the threaded cylinders 207 and adjusting the positions of the outer insertion cylinders 301 through the connecting plate 208, so as to facilitate corresponding adjustments according to the positions of the limiting holes 101 on the mounting plate 1. Then, pull up the pull ring 304. The pull ring 304 moves upward under the force, driving the first limiting plate 303 to move upward. The bottom of the first limiting plate 303 is connected to the two side limiting blocks 307 through two connecting ropes 305. Therefore, when the first limiting plate 303 moves upward, it pulls the bottom of the limiting block 307 through the connecting ropes 305, causing the limiting block 307 to rotate around the second rotating shaft 308 and compressing the torsion spring 309. Thus, the limiting block 307 can be pulled into the storage hole 3011. Then, insert the insertion cylinder 301 into the corresponding limiting hole 101. Then, stop applying force to the pull ring 304. At this time, under the elastic performance of the torsion spring 309, the limiting block 307 is ejected and plays a role in limiting the bottom of the mounting plate 1, completing the installation. When disassembling, repeat the above operations to remove the insertion cylinder 301 from the limiting hole 101, which is convenient for installation and disassembly. When the staff inserts the insertion cylinder 301, the upper surface of the mounting plate 1 will first contact and squeeze the air cushion 507 in the bottom mounting groove 106 of the mounting seat 102. After installing the mounting seat 102 on the mounting plate 1, the air cushion 507 is squeezed more, and the gas inside enters the annular frame 501 through the connecting pipe 506 and the air pipe 5011, increasing the gas in the annular frame 501. Thus, it will push up the rubber plug 505, causing the rubber plug 505 to move upward and squeeze the upper second spring 504. At the same time, under the elastic performance of the second spring 504, a elastic force is generated on the rubber plug 505, enabling the air cushion 507 to be squeezed between the mounting plate 1 and the mounting seat 102, which can increase the stability of the installation of the mounting plate 1 and the mounting seat 102. After the installation structure is fixedly installed, place the module body 402 on the upper surface of the double-layer heat dissipation rack 401. Then, rotate the cover plate 502 under the action of the hinge so that the cover plate 502 covers above the module body 402 and is fixed by the external fasteners, thereby completing the installation of the module body 402. If subjected to external force,At this time, the external force is transmitted to the inside, and the module body 402 vibrates and presses the double-layer heat dissipation rack 401. The double-layer heat dissipation rack 401 moves downward under the force and compresses the first spring 406 located below. At this time, the first spring 406 absorbs a part of the force under the action of its own elastic performance and bounces the double-layer heat dissipation rack 401, so that the top of the module body 402 contacts the porous sponge pad 503, thus playing a buffering role. At the same time, when the module body 402 is in use, the heat generated by it is absorbed by the double-layer heat dissipation rack 401 and the heat sink 404, and then the heat is discharged through the heat dissipation groove 105, which can achieve an effective heat dissipation effect.

[0041] The above are only the preferred embodiments of the present invention and do not limit the present invention. Any modification of the technical solutions recorded in the foregoing embodiments, any equivalent replacement of some technical features, and any modification, equivalent replacement, and improvement made are all within the protection scope of the present invention.

Claims

1. A general vibration measurement module installation structure with convenient disassembly and assembly, including a mounting plate (1). Characterized in that: Limit holes (101) are provided at the front, rear, and both sides of the upper surface of the mounting plate (1). An installation seat (102) is installed on the upper surface of the mounting plate (1). A T-shaped groove (103) is provided at the center position inside the installation seat (102). Rectangular grooves (104) are provided on both sides inside the T-shaped groove (103). A heat dissipation groove (105) is provided at the center position on the upper surface of the installation seat (102). An installation groove (106) is provided at the center position on the bottom of the installation seat (102). An adjustment component (2) is arranged inside the T-shaped groove (103). The adjustment component (2) includes a knob (201) and a first rotating shaft (202). The center position of the rear end face of the knob (201) is welded with the first rotating shaft (202). The other end of the first rotating shaft (202) passes through the bearing on the front end face of the T-shaped groove (103) and is connected to a first bevel gear (203). A second bevel gear (204) is arranged on one side behind the first bevel gear (203). A threaded rod (205) is installed on the inner wall of the second bevel gear (204). Installation components (3) are arranged on both the front and rear sides of the installation seat (102). The installation component (3) includes an insertion cylinder (301) and a stop block (302). Receiving holes (3011) are provided at the bottom ends of the outer walls on both sides of the insertion cylinder (301). The stop block (302) is welded to the top of the receiving hole (3011). A first limiting plate (303) is arranged on the upper surface of the insertion cylinder (301). A pull ring (304) is installed at the center position on the upper surface of the first limiting plate (303). Connecting ropes (305) are arranged on both sides of the bottom of the first limiting plate (303). A protection component (4) is arranged at the center position on the upper surface of the installation seat (102). The protection component (4) includes a double-layer heat dissipation rack (401) and a module body (402). The module body (402) is installed at the center position on the upper surface of the double-layer heat dissipation rack (401). A stabilizing component (5) is arranged on the outer side of the upper surface of the installation seat (102). The stabilizing component (5) includes an annular frame (501) and a cover plate (502). One side outer wall of the annular frame (501) is movably connected to the cover plate (502) through a hinge.

2. A general vibration measurement module installation structure with convenient disassembly and assembly according to claim 1, Characterized in that: The two ends of the threaded rod (205) respectively pass through the bearings on the end faces of the two fixed plates (206) in sequence and the threaded holes on the inner wall of the threaded cylinder (207). Connecting plates (208) are welded to the front and rear ends of the outer wall of the threaded cylinder (207).

3. A general vibration measurement module installation structure with convenient disassembly and assembly according to claim 1, Characterized in that: The other end of the connecting rope (305) sequentially passes through the through hole on the upper surface of the inserting cylinder (301) and the inner side wall bottom of the limiting ring (306) and is connected to the limiting block (307). At the front and rear ends of one side of the top of the limiting block (307), both are connected to the second rotating shaft (308) through connecting blocks. A torsion spring (309) is sleeved on the outer side of the outer wall of the second rotating shaft (308).

4. A convenient disassembly and assembly general vibration measurement module installation structure according to claim 1, characterized in that: A heat sink (404) is installed inside the double-layer heat dissipation rack (401). Second limiting plates (403) are provided at the four upper corners of the double-layer heat dissipation rack (401). A limiting rod (405) is welded at the center position of the bottom of the second limiting plate (403).

5. A convenient disassembly and assembly general vibration measurement module installation structure according to claim 4, characterized in that: The other end of the limiting rod (405) passes through the through hole on the upper surface of the double-layer heat dissipation rack (401) and is connected to the upper surface of the mounting seat (102). A first spring (406) is sleeved on the outer side of the outer wall of the limiting rod (405). The first spring (406) is located between the double-layer heat dissipation rack (401) and the mounting seat (102).

6. A convenient disassembly and assembly general vibration measurement module installation structure according to claim 1, characterized in that: A porous sponge pad (503) is embedded at the center position of the bottom of the cover plate (502). Second springs (504) are evenly spaced at the inner top of the annular frame (501). A rubber plug (505) is installed at the bottom end of the second spring (504).

7. A convenient disassembly and assembly general vibration measurement module installation structure according to claim 6, characterized in that: A trachea (5011) is provided on one side of the bottom of the annular frame (501). The other end of the trachea (5011) is connected to a connecting pipe (506) through a pipe joint. The other end of the connecting pipe (506) passes through the upper surface of the mounting seat (102) and is connected to an air cushion (507) through a pipe joint.

Citation Information

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