Device for measuring vibration value of shaving board production equipment based on mechanical sensor

Through the supporting cylinder and gas pressure-driven installation components, the measurement process of vibration values ​​of particleboard production equipment is simplified, the complex and inaccurate problems of traditional methods are solved, and the simple installation and real-time monitoring of vibration values ​​of equipment is achieved.

CN120593884AActive Publication Date: 2025-09-05FUREN WOOD (FUZHOU) CO LTD
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Patent Information

Application Number
CN202511110438.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-08
Publication Date
2025-09-05
Estimated Expiration
2045-08-08

AI Technical Summary

Technical Problem

In the prior art, the vibration value measurement operation of particleboard production equipment is cumbersome and inaccurate, making it difficult to realize real-time monitoring, and the traditional installation method is complex and disassembly difficult.

Method used

The structures of support cylinder, flow guide, shunt pipe and installation components are adopted to fix the sensor by driving the suction cup through gas pressure, which can achieve simple installation and disassembly, and the vibration value is detected in combination with the sensor and the detection position can be adjusted.

Benefits of technology

It realizes simple installation and disassembly of vibration values ​​of particleboard production equipment, improves the practicality and accuracy of measurement, and can monitor equipment vibration in real time.

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Abstract

The invention provides a device for measuring the vibration value of shaving board production equipment based on a mechanical sensor, and belongs to the field of vibration value measurement. The two flow guide pipes are used for conveying gas in the supporting cylinder, and the two flow guide pipes are symmetrically installed on the two sides of the supporting cylinder. When the device is used, the multiple suction cups are pressed on the two sides of a detection position, meanwhile, pressure is applied to the two bottom plates under the action of the gas, the fixing effect of the multiple suction cups is improved, and the detection precision is improved. After detection is finished, an output shaft of a first driving source is controlled to rotate anticlockwise, so that a rack slides upwards, at the moment, a plurality of circular plates are not extruded by gas, two bottom plates can be pulled, a plurality of suction cups are taken down from the detection position, the detection device is further taken down, and the detection efficiency is improved. When the detection device is used, the installation mode of the detection device is simple, and the detection device is convenient to use.
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Description

Technical Field

[0001] The present invention relates to the field of vibration value measurement, and in particular to a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor. Background Art

[0002] In particleboard production equipment, the operating status of the equipment directly affects product quality and production efficiency. Vibration, as one of the early indicators of mechanical equipment failure, is often used to monitor the health of the equipment. Therefore, accurately measuring the vibration value of the equipment is crucial to timely detect potential failures and perform effective maintenance.

[0003] In the existing technology, some use handheld sensors for vibration detection. Operators need to manually move the sensors to different parts of the equipment for measurement. This method is cumbersome and easily affected by human factors, which may lead to inaccurate measurement results and make real-time monitoring difficult. Some devices also use the method of installing the sensor at the detection location. The traditional installation method is usually to fix the detection device to the equipment with screws. Although this fixing method can ensure the stability of the sensor, it has the problems of complex installation and difficult disassembly in actual operation. Summary of the Invention

[0004] The present invention provides a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor. When using the detection device, the detection device is simple to install and easy to use. When detecting the vibration value, different positions can be detected, thereby improving the practicality of the detection device.

[0005] In order to achieve the above-mentioned object, the present invention adopts the following technical solution: a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor, the device comprising: Support tube; Two flow guide pipes, the two flow guide pipes are used to transport the gas inside the support tube, and the two flow guide pipes are symmetrically installed on both sides of the support tube; Two diverter pipes are used to separate and transport the gas inside the two guide pipes to different locations. The two diverter pipes are respectively arranged at the other end of the two guide pipes, and a mounting assembly is provided on one side of the two diverter pipes; The mounting assembly includes a plurality of hollow cylinders, each of which is respectively provided at both ends of the two shunt pipes. A circular plate capable of sliding laterally is provided inside each of the hollow cylinders. The circular plates are tightly attached to the inner walls of the hollow cylinders. A transmission rod is fixedly provided on one side of each of the circular plates. The transmission rods are grouped in pairs, and a bottom plate is fixedly provided on one end of each of the two groups of transmission rods. A pressure plate, which is used to squeeze the gas inside the support tube, and the pressure plate is tightly fitted to the inner wall of the support tube to achieve compression of the gas inside the support tube; A pressing assembly for applying pressure to the pressing plate is provided on one side of the pressing plate, and the pressing assembly includes a slide rail, a rack is slidably provided on the inner wall of the slide rail, a gear is meshed with one side of the rack to drive the rack to slide up and down, and a rotating rod is provided on the inner wall of the gear to drive the gear to rotate in a circle; A transmission plate is fixedly provided on one side of the pressure plate, and the transmission plate is movably embedded in the center of one side of the support cylinder. An adjustment component with adjustable detection position is installed on one side of the transmission plate, and the adjustment component includes an adjustment box, and threaded rods are provided on both sides of the inner wall of the adjustment box through bearings. A sleeve is threadedly sleeved on the outer surface of the threaded rod, and a slide that can slide on the inner wall of the adjustment box is fixedly provided on the outer surface of the sleeve.

[0006] As a further improvement scheme of the present invention: multiple suction cups for adsorbing objects are installed on the opposite side of the two base plates, and the multiple suction cups are evenly distributed on the opposite side of the two base plates. The multiple suction cups are pressed on both sides of the detection position, and at the same time, pressure is applied to the two base plates under the action of gas to improve the fixing effect of the multiple suction cups, and then the detection device is installed at the position to be detected of the equipment.

[0007] As a further improvement of the present invention: the regulating box is connected to the transmission plate by screws, and can be installed and disassembled by rotating the screws. The regulating box can be removed from the transmission plate by rotating the screws, and the regulating box can be further removed.

[0008] As a further improvement of the present invention: a first driving source is installed on one side of the inner wall of the support tube, and the output shaft of the first driving source is connected to one end of the rotating rod to realize power transmission. The external power switch of the first driving source is turned on, and then the output shaft of the first driving source drives the rotating rod to rotate.

[0009] As a further improvement of the present invention: a second driving source is installed on one side of the regulating box, and the output shaft of the second driving source is fixedly set at one end of the threaded rod to provide force for the rotation of the threaded rod. The external power switch of the second driving source is turned on to control the rotation direction of the output shaft of the second driving source, and then the output shaft of the second driving source drives the threaded rod to rotate in different directions.

[0010] As a further improvement of the present invention: the first driving source and the second driving source are bidirectional motors whose output shafts can rotate forward and backward. The output shafts of the first driving source and the second driving source can rotate forward and backward. By controlling the rotation direction of the output shafts of the first driving source and the second driving source, the position can be adjusted.

[0011] As a further improvement of the present invention: a mounting plate is fixedly provided on one side of the sleeve, and a sensor that can detect the vibration value is installed on one side of the mounting plate. The detection probe on the sensor contacts the surface of the detection position. When the sensor detects the vibration value, the vibration of the equipment will cause the mass block of the sensor to displace, and an electrical signal proportional to the vibration acceleration is generated according to this displacement change to detect the vibration value of the equipment.

[0012] As a further improvement of the present invention: one side of the rack is fixedly arranged at the center of one side of the pressure plate to drive the pressure plate to move up and down to squeeze the gas inside the support cylinder, and the rack moves up and down to drive the pressure plate to move up and down.

[0013] As a further improvement of the present invention: baffles are fixedly provided on the inner walls of the multiple hollow cylinders to block the positions of the multiple circular plates. The multiple baffles have a limiting effect on the multiple circular plates, which can prevent the multiple circular plates from sliding to one side of the multiple baffles and affecting the passage of gas.

[0014] As a further improvement of the present invention: handles for picking up the entire device are fixedly provided on both sides of the support tube, and a layer of rubber sleeve is provided on the outer surface of the two handles to increase the comfort and anti-slip performance of the two handles. The entire measuring device can be picked up by the two handles and taken to the measurement location.

[0015] Compared with the prior art, the advantages and positive effects of the present invention are: 1. In the present invention, when measuring the vibration value of the particleboard production equipment, the external power switch of the first driving source is turned on, and then the output shaft of the first driving source drives the rotating rod to rotate, and further drives the gear to rotate in different directions. The slide rail has a supporting effect on the rack, and the rack can slide on the inner wall of the slide rail. When the rotating rod rotates clockwise, it drives the gear to rotate, and further causes the gear to drive the rack to slide downward inside the slide rail, and further causes the pressure plate to move downward inside the support cylinder, thereby squeezing the gas below the pressure plate inside the support cylinder, squeezing the gas into the inside of the two guide pipes, and further causing the gas to be transported to the inside of multiple hollow cylinders through the two ends of the two diversion pipes. Multiple circular plates can be in multiple hollow cylinders. The inner wall of the core cylinder slides, and at this time, multiple circular plates are squeezed by the gas, and further drive the two bottom plates to move relative to each other through multiple transmission rods, further making multiple suction cups pressed on both sides of the detection position, and at the same time, under the action of gas, pressure is applied to the two bottom plates to improve the fixing effect of the multiple suction cups, and then the detection device is installed at the position to be detected by the equipment. After the detection is completed, the output shaft of the first driving source is controlled to rotate counterclockwise, so that the rack slides upward. At this time, the multiple circular plates are not squeezed by the gas, and the two bottom plates can be pulled at this time to remove the multiple suction cups from the detection position, and further remove the detection device. Therefore, when using the detection device, the installation method of the detection device is simple and easy to use.

[0016] 2. According to the present invention, when the pressure plate moves downward, it drives the transmission plate to move, further making the detection probe on the sensor contact the surface of the detection position. When the sensor detects the vibration value, the vibration of the equipment will cause the mass block of the sensor to displace, and an electrical signal proportional to the vibration acceleration is generated according to this displacement change to detect the vibration value of the equipment. The slide plate can slide on the inner wall of the adjustment box, and the slide plate and the sleeve are connected together. Then, when the threaded rod rotates, the sleeve moves laterally on the outer surface of the threaded rod. By turning on the external power switch of the second driving source, the direction of rotation of the output shaft of the second driving source is controlled, and then the output shaft of the second driving source drives the threaded rod to rotate in different directions, so that the sleeve drives the slide plate to move to different positions, and further drives the sensor to move to different positions through the mounting plate, so that different positions can be detected, so that when detecting the vibration value, different positions can be detected, thereby improving the practicality of the detection device. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 The present invention provides a schematic diagram of a frontal stereoscopic structure of a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor.

[0018] Figure 2 The present invention provides a side view of a stereoscopic structure of a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor.

[0019] Figure 3 The present invention provides a schematic diagram of the upward-looking three-dimensional structure of a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor.

[0020] Figure 4 The present invention provides a schematic diagram of a sectional three-dimensional structure of a support cylinder in a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor.

[0021] Figure 5 The present invention provides a schematic internal stereoscopic diagram of a support cylinder in a device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor.

[0022] Figure 6 The present invention provides a schematic cross-sectional three-dimensional structural diagram of an adjustment box in a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor.

[0023] Figure 7 The present invention provides a schematic diagram of a sectional three-dimensional structure of a hollow cylinder in a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor.

[0024] Figure 8 The present invention proposes a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor Figure 4Enlarged view of point A in the middle.

[0025] Legend: 1. Support tube; 2. Guide tube; 201. Diverter tube; 202. Hollow tube; 203. Circular plate; 204. Transmission rod; 205. Baffle; 206. Bottom plate; 207. Suction cup; 3. Slide rail; 301. Rack; 302. Gear; 303. First drive source; 304. Rotating rod; 305. Pressing plate; 306. Handle; 4. Transmission plate; 401. Adjustment box; 402. Threaded rod; 403. Sleeve; 404. Slide plate; 405. Second drive source; 406. Mounting plate; 407. Sensor. DETAILED DESCRIPTION

[0026] In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention is further described below in conjunction with the accompanying drawings and embodiments. It should be noted that, in the absence of conflict, the embodiments of the present application and the features therein can be combined with each other.

[0027] In the following description, many specific details are set forth to facilitate a full understanding of the present invention. However, the present invention may also be implemented in other ways than those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0028] See also Figures 1 to 8 , this embodiment provides a device for measuring the vibration value of particleboard production equipment based on a mechanical sensor, the device comprising: a support tube 1; two guide tubes 2, the two guide tubes 2 are used to transport the gas inside the support tube 1, the two guide tubes 2 are symmetrically installed on both sides of the support tube 1, the pressure plate 305 moves downward inside the support tube 1, and then squeezes the gas below the pressure plate 305 inside the support tube 1, and squeezes the gas into the two guide tubes 2; two diversion tubes 201, the two diversion tubes 201 are used to separately transport the gas inside the two guide tubes 2 to different positions, the two diversion tubes 201 are respectively arranged at the other end of the two guide tubes 2, and a mounting assembly is provided on one side of the two diversion tubes 201, and the gas is respectively transported to the interior of multiple hollow tubes 202 through the two ends of the two diversion tubes 201; The mounting assembly includes a plurality of hollow cylinders 202, and the plurality of hollow cylinders 202 are respectively arranged at the two ends of the two shunt pipes 201. The interiors of the plurality of hollow cylinders 202 are provided with circular plates 203 that can slide laterally. The plurality of circular plates 203 are all tightly attached to the inner walls of the plurality of hollow cylinders 202. A transmission rod 204 is fixedly provided on one side of the plurality of circular plates 203. The plurality of transmission rods 204 are grouped in pairs, and a bottom plate 206 is fixedly provided on one end of the two groups of transmission rods 204. The measuring device can be installed at the measuring position through the mounting assembly. The plurality of circular plates 203 can slide on the inner walls of the plurality of hollow cylinders 202. At this time, the plurality of circular plates 203 are affected by air. The extrusion of the body is further driven by the multiple transmission rods 204 to drive the two bottom plates 206 to move relative to each other, further making the multiple suction cups 207 pressed on both sides of the detection position, and at the same time, under the action of the gas, pressure is applied to the two bottom plates 206 to improve the fixing effect of the multiple suction cups 207, and the measuring device is installed; the pressing plate 305, the pressing plate 305 is used to squeeze the gas inside the support tube 1, and the pressing plate 305 is tightly attached to the inner wall of the support tube 1 to achieve compression of the gas inside the support tube 1, the pressing plate 305 can slide on the inner wall of the support tube 1, and the pressing plate 305 will squeeze the gas inside the support tube 1 when it moves downward; one side of the pressing plate 305 The extrusion assembly is provided to apply pressure to the pressure plate 305. The extrusion assembly includes a slide rail 3. A rack 301 is slidingly provided on the inner wall of the slide rail 3. A gear 302 is meshed with one side of the rack 301 to drive the rack 301 to slide up and down. A rotating rod 304 is provided on the inner wall of the gear 302 to drive the gear 302 to rotate in a circle. The slide rail 3 supports the rack 301, and the rack 301 can slide on the inner wall of the slide rail 3. When the rotating rod 304 rotates, the gear 302 is driven to rotate, and the gear 302 further drives the rack 301 to slide inside the slide rail 3, and a downward force is applied to the pressure plate 305 through the extrusion assembly. A transmission plate 4 is fixedly provided on one side of the pressure plate 305, and the transmission plate 4 is movably embedded in the center of one side of the support tube 1. An adjustment component with adjustable detection position is installed on one side of the transmission plate 4, and the adjustment component includes an adjustment box 401. Threaded rods 402 are provided on both sides of the inner wall of the adjustment box 401 through bearings, and a sleeve 403 is threadedly sleeved on the outer surface of the threaded rod 402. A slide plate 404 that can slide on the inner wall of the adjustment box 401 is fixedly provided on the outer surface of the sleeve 403. The transmission plate 4 can move up and down on one side of the support tube 1, and the position to be detected can be controlled by the adjustment component. The threaded rod 402 can rotate through the bearing.

[0029] See also Figures 1 to 8In one embodiment, a plurality of suction cups 207 for adsorbing objects are installed on opposite sides of the two bottom plates 206. The plurality of suction cups 207 are evenly distributed on opposite sides of the two bottom plates 206. The plurality of suction cups 207 are pressed on both sides of the detection position. At the same time, pressure is applied to the two bottom plates 206 under the action of gas to improve the fixing effect of the plurality of suction cups 207, thereby installing the detection device at the position to be detected of the equipment.

[0030] See also Figures 1 to 8 In one embodiment, the adjustment box 401 is connected to the transmission plate 4 by screws and can be installed and removed by turning the screws. The adjustment box 401 can be removed from the transmission plate 4 by turning the screws, and the adjustment box 401 can be further removed.

[0031] See also Figures 1 to 8 In one embodiment, a first driving source 303 is installed on one side of the inner wall of the support tube 1, and the output shaft of the first driving source 303 is connected to one end of the rotating rod 304 to realize power transmission. The external power switch of the first driving source 303 is turned on, and then the output shaft of the first driving source 303 drives the rotating rod 304 to rotate.

[0032] See also Figures 1 to 8 In one embodiment, a second driving source 405 is installed on one side of the regulating box 401, and the output shaft of the second driving source 405 is fixedly set at one end of the threaded rod 402 to provide a force for the threaded rod 402 to rotate. The external power switch of the second driving source 405 is turned on to control the direction of rotation of the output shaft of the second driving source 405, and then the output shaft of the second driving source 405 drives the threaded rod 402 to rotate in different directions.

[0033] See also Figures 1 to 8 In one embodiment, the first driving source 303 and the second driving source 405 are bidirectional motors whose output shafts can rotate forward and backward. The output shafts of the first driving source 303 and the second driving source 405 can rotate forward and backward. By controlling the rotation direction of the output shafts of the first driving source 303 and the second driving source 405, the position can be adjusted.

[0034] See also Figures 1 to 8 In one embodiment, a mounting plate 406 is fixedly provided on one side of the sleeve 403, and a sensor 407 capable of detecting vibration values ​​is installed on one side of the mounting plate 406. The detection probe on the sensor 407 contacts the surface of the detection position. When the sensor 407 detects the vibration value, the vibration of the device will cause the mass block of the sensor 407 to displace, and an electrical signal proportional to the vibration acceleration is generated according to the displacement change to detect the vibration value of the device.

[0035] See also Figures 1 to 8In one embodiment, one side of the rack 301 is fixedly arranged at the center of one side of the pressure plate 305 to drive the pressure plate 305 to move up and down to squeeze the gas inside the support tube 1. When the rack 301 moves up and down, it drives the pressure plate 305 to move up and down.

[0036] See also Figures 1 to 8 In one embodiment, baffles 205 are fixedly provided on the inner walls of the multiple hollow cylinders 202 to block the positions of the multiple circular plates 203. The multiple baffles 205 have a limiting effect on the multiple circular plates 203, which can prevent the multiple circular plates 203 from sliding into one side of the multiple baffles 205 and affecting the passage of gas.

[0037] See also Figures 1 to 8 In one embodiment, handles 306 for picking up the entire device are fixed on both sides of the support tube 1. A layer of rubber sleeve is provided on the outer surface of the two handles 306 to increase the comfort and anti-slip performance of the two handles 306. The entire measuring device can be picked up by the two handles 306 and taken to the measurement location.

[0038] Working principle: When measuring the vibration value of particleboard production equipment, the entire measuring device can be picked up by the two handles 306 and taken to the measurement location. At this time, the position of the equipment to be measured is in the middle position of the two bottom plates 206. At this time, the external power switch of the first driving source 303 is turned on, and then the output shaft of the first driving source 303 drives the rotating rod 304 to rotate, and further drives the gear 302 to rotate in different directions. The slide rail 3 has a supporting effect on the rack 301, and the rack 301 can slide on the inner wall of the slide rail 3. When the rotating rod 304 rotates clockwise, it drives the gear 302 to rotate, and further makes the gear 302 drive the rack 301 downward inside the slide rail 3. The sliding further causes the pressure plate 305 to move downward inside the support tube 1, thereby squeezing the gas below the pressure plate 305 inside the support tube 1, squeezing the gas into the inside of the two flow guide tubes 2, and further causing the gas to be transported to the inside of the multiple hollow tubes 202 through the two ends of the two diversion tubes 201. The multiple circular plates 203 can slide on the inner walls of the multiple hollow tubes 202. At this time, the multiple circular plates 203 are squeezed by the gas, and further drive the two bottom plates 206 to move relative to each other through the multiple transmission rods 204, further causing the multiple suction cups 207 to be pressed on both sides of the detection position. At the same time, under the action of the gas, pressure is applied to the two bottom plates 206 to improve the fixing effect of the multiple suction cups 207. , and then install the detection device at the position of the equipment to be detected. When the pressure plate 305 moves downward, it will drive the transmission plate 4 to move, and further make the detection probe on the sensor 407 contact the surface of the detection position. When the sensor 407 detects the vibration value, the vibration of the equipment will cause the mass block of the sensor 407 to displace. According to this displacement change, an electrical signal proportional to the vibration acceleration is generated to detect the vibration value of the equipment. The slide plate 404 can slide on the inner wall of the adjustment box 401. The slide plate 404 and the sleeve 403 are connected together. When the threaded rod 402 rotates, the sleeve 403 moves laterally on the outer surface of the threaded rod 402. By turning on the external power supply of the second driving source 405 The switch controls the direction of rotation of the output shaft of the second driving source 405, and then the output shaft of the second driving source 405 drives the threaded rod 402 to rotate in different directions, so that the sleeve 403 drives the slide plate 404 to move to different positions, and further drives the sensor 407 to move to different positions through the mounting plate 406, so that different positions can be detected. After the detection is completed, the output shaft of the first driving source 303 is controlled to rotate counterclockwise, so that the rack 301 slides upward. At this time, the multiple circular plates 203 are not squeezed by the gas. At this time, the two bottom plates 206 can be pulled to remove the multiple suction cups 207 from the detection position, and further the detection device can be removed to complete the detection of the equipment vibration value.

[0039] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any other form. Any person skilled in the art may use the technical contents disclosed above to change or modify them into equivalent embodiments with equivalent changes for application in other fields. However, any simple modification, equivalent change and modification of the above embodiments made in accordance with the technical essence of the present invention without departing from the technical solution of the present invention shall still fall within the scope of protection of the technical solution of the present invention.

Claims

1. A device for measuring the vibration value of particleboard production equipment based on a mechanical sensor, characterized in that: The device includes: Support tube (1); Two flow guide tubes (2), the two flow guide tubes (2) are used to transport the gas inside the support tube (1), and the two flow guide tubes (2) are symmetrically installed on both sides of the support tube (1); Two diversion pipes (201), the two diversion pipes (201) are used to separately transport the internal gas of the two guide pipes (2) to different positions, the two diversion pipes (201) are respectively arranged at the other ends of the two guide pipes (2), and a mounting assembly is provided on one side of the two diversion pipes (201); The mounting assembly comprises a plurality of hollow cylinders (202), the plurality of hollow cylinders (202) being respectively arranged at both ends of the two diversion pipes (201), the interiors of the plurality of hollow cylinders (202) being provided with a circular plate (203) capable of sliding laterally, the plurality of circular plates (203) being closely attached to the inner walls of the plurality of hollow cylinders (202), a transmission rod (204) being fixedly arranged on one side of the plurality of circular plates (203), the plurality of transmission rods (204) being grouped in pairs, and a bottom plate (206) being fixedly arranged on one end of the two groups of transmission rods (204); A pressure plate (305), the pressure plate (305) is used to squeeze the gas inside the support tube (1), and the pressure plate (305) is tightly fitted to the inner wall of the support tube (1) to achieve compression of the gas inside the support tube (1); A pressing assembly for applying pressure to the pressing plate (305) is provided on one side of the pressing plate (305), the pressing assembly comprising a slide rail (3), a rack (301) being slidably provided on the inner wall of the slide rail (3), a gear (302) for driving the rack (301) to slide up and down being meshed with one side of the rack (301), and a rotating rod (304) for driving the gear (302) to rotate in a circle being provided on the inner wall of the gear (302); A transmission plate (4) is fixedly provided on one side of the pressure plate (305), and the transmission plate (4) is movably embedded in the center of one side of the support cylinder (1). An adjustment component capable of adjusting the detection position is installed on one side of the transmission plate (4), and the adjustment component comprises an adjustment box (401), threaded rods (402) are provided on both sides of the inner wall of the adjustment box (401) through bearings, a sleeve (403) is threadedly provided on the outer surface of the threaded rod (402), and a slide plate (404) that can slide on the inner wall of the adjustment box (401) is fixedly provided on the outer surface of the sleeve (403).

2. The device for measuring the vibration value of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: A plurality of suction cups (207) for adsorbing objects are installed on opposite sides of the two bottom plates (206), and the plurality of suction cups (207) are evenly distributed on the opposite sides of the two bottom plates (206).

3. The device for measuring the vibration value of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: The regulating box (401) is connected to the transmission plate (4) via screws and can be installed and removed by rotating the screws.

4. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: A first driving source (303) is installed on one side of the inner wall of the support cylinder (1), and an output shaft of the first driving source (303) is connected to one end of a rotating rod (304) to achieve power transmission.

5. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 4, characterized in that: A second driving source (405) is installed on one side of the regulating box (401), and an output shaft of the second driving source (405) is fixedly arranged on one end of the threaded rod (402) to provide a force for rotating the threaded rod (402).

6. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 5, characterized in that: The first driving source (303) and the second driving source (405) are bidirectional motors whose output shafts can rotate forward and backward.

7. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: A mounting plate (406) is fixedly provided on one side of the sleeve (403), and a sensor (407) capable of detecting a vibration value is installed on one side of the mounting plate (406).

8. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: One side of the rack (301) is fixedly arranged at the center of one side of the pressing plate (305) to drive the pressing plate (305) to move up and down to squeeze the gas inside the support cylinder (1).

9. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: Baffles (205) for blocking the positions of the multiple circular plates (203) are fixedly provided on the inner walls of the multiple hollow cylinders (202).

10. The device for measuring vibration values ​​of particleboard production equipment based on a mechanical sensor according to claim 1, characterized in that: Handles (306) for picking up the entire device are fixedly provided on both sides of the support tube (1), and a layer of rubber sleeve is provided on the outer surface of the two handles (306) to increase the comfort and anti-slip performance of the two handles (306).

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