A kind of safety shoe anti-corrosion testing equipment

By designing safety shoe corrosion-proof testing equipment with composite mechanisms and treatment mechanisms, the safety hazards existing in the existing testing methods are solved, and a safe and effective testing process is achieved.

CN118896892BActive Publication Date: 2025-05-16RUIAN JIAAN SHOES CO LTD
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Patent Information

Application Number
CN202410928944.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-11
Publication Date
2025-05-16
Estimated Expiration
2044-07-11

AI Technical Summary

Technical Problem

The existing anti-corrosion testing methods of safety shoes are likely to cause people to come into contact with the test liquid, which poses safety hazards.

Method used

A safety shoe anti-corrosion testing equipment including a composite mechanism and a treatment mechanism is designed. The safety shoe is fixed by a clamping mechanism, and the spraying mechanism conducts corrosion testing on the surface of the safety shoe, and air-drying treatment is carried out through the treatment mechanism to avoid liquid residue.

Benefits of technology

It realizes safe corrosion testing of safety shoes while reducing the risk of personnel contact, ensuring the safety and effectiveness of the testing process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a safety shoe anti-corrosion test device, which relates to the technical field of test devices and includes a composite mechanism. The safety shoe anti-corrosion test device is designed with a composite mechanism. A worker opens a door panel and then docks the safety shoe for testing with a clamping mechanism, thereby fixing the safety shoe, reducing contact with personnel and protecting the personnel. The door panel is then closed, and the safety shoe is extended to the inside of the lower shell through an electric push rod. After entering the lower shell, a test liquid pipeline is connected through one side of the spraying mechanism equipment outside, and then the safety shoe is sprayed through the spraying mechanism, thereby corroding the surface of the safety shoe, thereby achieving an anti-corrosion test. The separation membrane has a barrier effect on the liquid, preventing liquid splashing, avoiding internal pollution of the equipment, maintaining a closed space, and avoiding affecting the test effect. Finally, the internal liquid is discharged from the discharge port for subsequent treatment.
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Description

Technical Field

[0001] The invention relates to the technical field of testing devices, in particular to a safety shoe anti-corrosion testing device. Background Art

[0002] Safety shoes are special shoes designed to protect the safety of workers' feet. They have many important characteristics and protective functions. From a structural point of view, safety shoes usually include uppers, linings, soles and other parts. The uppers are mostly made of sturdy and durable materials, such as leather and synthetic materials, which have certain waterproof, dustproof and wear-resistant capabilities. The lining focuses on comfort and breathability to reduce the discomfort caused by long-term wear. In terms of protective functions, anti-smashing performance is one of the keys. The toe of safety shoes usually has a high-strength protective steel head or composite head built in, which can effectively resist the impact of heavy objects and avoid toe injuries. The anti-puncture function is achieved through a specially designed sole. The sole adopts a multi-layer structure with anti-puncture metal sheets or high-strength fiber materials in the middle to prevent sharp objects from piercing the sole and injuring the sole. Insulated safety shoes are made of insulating materials, which can play a good insulating role within a specific voltage range and reduce the risk of electric shock. They are often used in electrical work environments such as the power industry.

[0003] The existing test method for the corrosion resistance of safety shoes may come into contact with the test liquid, which is prone to safety hazards. Therefore, a new design was made to address these situations. Summary of the invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: a safety shoe anti-corrosion testing device, comprising:

[0005] A composite mechanism for clamping and soaking the safety shoes;

[0006] A processing mechanism, the processing mechanism is used to air-dry the composite mechanism;

[0007] The top of the composite mechanism is fixedly connected to the outside of the processing mechanism;

[0008] Wherein, the composite mechanism comprises an upper shell, an electric push rod is fixedly connected to the middle of the top of the upper shell, a processing mechanism is fixedly connected to the side of the top of the upper shell close to the electric push rod, and a clamping mechanism is fixedly connected to the bottom of the electric push rod. The staff opens the door panel and then connects the safety shoes for testing to the clamping mechanism, thereby fixing the safety shoes, reducing personnel contact and protecting personnel. A door panel is fixedly connected to one side of the outer side of the upper shell, the bottom of the upper shell is fixedly connected to the lower shell, and a separation mechanism is fixedly connected to the side of the top of the lower shell close to the upper shell. The diaphragm and the separation membrane have a barrier effect on the liquid, prevent the liquid from splashing, avoid internal pollution of the equipment, maintain a closed space, and avoid affecting the test effect. The outside of the lower shell is fixedly connected with a discharge port, and the discharge port discharges the internal liquid for subsequent treatment. The side of the lower shell away from the discharge port is fixedly connected with a spraying mechanism. Close the door panel, extend the safety shoe to the inside of the lower shell through the electric push rod, and after entering the inside of the lower shell, connect the test liquid pipeline through one side of the spraying mechanism equipment outside, and then spray the safety shoe through the spraying mechanism, so as to corrode the surface of the safety shoe, so as to achieve anti-corrosion test.

[0009] Preferably, the clamping mechanism includes a connecting block, the inner wall of the connecting block is fixedly connected to the outside of the electric push rod, the outside of the connecting block is fixedly connected to a connecting bracket, the support frame supports the connecting bracket, an elastic structure is provided inside the support frame to increase the supporting effect on the safety shoes, so as to achieve the effect of fixed clamping, a support frame is fixedly connected between the opposite surfaces of the connecting bracket, a trapezoidal plate is fixedly connected to the side of the connecting bracket away from the connecting block, the connecting bracket is connected to the trapezoidal plate, and the trapezoidal plate is elastically supported to provide an open support for the safety shoes to prevent them from falling off during the test.

[0010] Preferably, a friction plate is fixedly connected to the edge of the outer side of the trapezoidal plate away from the connecting bracket, and the friction plate is used to rub the inside of the safety shoe to improve the friction effect and enhance the fixing effect. A silicone block is fixedly connected to the side of the trapezoidal plate close to the friction plate. The silicone plate is made of silicone material and has certain elasticity, adsorption and chemical stability, so as to achieve the anti-corrosion effect and extend the service life of the equipment. The silicone material is used to improve the stability effect when fixing. The outer side of the silicone block is provided with a block-shaped incision. The friction is increased by opening the block-shaped incision and grooving. The grooves can increase the friction when the surface of the silicone block contacts other objects, prevent sliding, enhance stability and grip, and increase flexibility. Reasonably distributed grooves can change the mechanical properties of the silicone block to a certain extent, making it easier to bend and adapt to different shapes.

[0011] Preferably, the spraying mechanism includes a connecting pipe, the outside of the connecting pipe is fixedly connected to the outside of the lower shell, one side of the outside of the connecting pipe is fixedly connected to an annular block, the outside of the annular block is plugged into a docking tube, one side of the connecting pipe is connected to the liquid pipe for convenient feeding, and then the docking tube and the annular block are plugged into each other to achieve a quick connection effect, which is convenient for replacement and maintenance. The side of the docking tube away from the connecting pipe is fixedly connected to a spray shell, the inner wall of the spray shell is fixedly connected to a friction mechanism, the spray shell adopts a conical structure, and when the liquid passes through, it rolls inside, driving the friction mechanism to rotate, thereby achieving the effect of cleaning the inner wall, and the side of the spray shell away from the docking tube is rotatably connected to a nozzle mechanism.

[0012] Preferably, the friction mechanism includes a first fixed frame, the outside of the first fixed frame is fixedly connected to the inner wall of the spray shell, one side of the outside of the first fixed frame is rotatably connected to a rotating plate, the outside of the rotating plate is fixedly connected to a connecting frame on a side away from the first fixed frame, and the connecting frame is fixedly connected to a second fixed frame on a side away from the first fixed frame, and the outside of the connecting frame is fixedly connected to a scraper, and the scraper is impacted by liquid to make the scraper rotate on the inner wall of the spray shell, so as to achieve the effect of scraping the inner wall, which has a cleaning effect on the inner wall of the equipment, prevents impurities from accumulating, avoids blockage, maintains stable operation, and extends the service life of the equipment. A square incision is provided on the outside of the scraper, and the scraping effect is improved by providing the square incision. The presence of the groove enables the scraper to better accommodate and discharge the scraped material when scraping the object, reduces accumulation and residue, thereby improving the cleanliness of the scraping and enhancing the fluid conduction capacity. The grooving helps to guide the flow direction of the fluid, making it more evenly distributed and improving work efficiency.

[0013] Preferably, the nozzle mechanism includes a nozzle frame, the outside of the nozzle frame is fixedly connected with an arc tube, and one side of the outside of the arc tube is fixedly connected with a compression head, and the liquid is compressed by the compression head to improve the atomization effect, so that it is evenly spread on the surface of the safety shoes, thereby improving the test effect, increasing the penetration and adsorption effects, and small droplets can more easily penetrate into the surface or gap of the object, thereby improving the adsorption and action depth of the liquid, and improving the test results of the safety shoe corrosion resistance. The outside of the nozzle frame is fixedly connected with an external block on one side close to the spray shell, and the side of the external block away from the nozzle frame is fixedly connected with a paddle. The test liquid impacts the paddle, so that the paddle drives the nozzle frame to rotate, thereby increasing the spraying range and improving the spraying uniformity. The rotating action can avoid the liquid from being concentrated in a fixed area, so that the sprayed substance is more evenly distributed in space, which is conducive to improving the operation effect.

[0014] Preferably, the processing mechanism includes a fan assembly, the outside of which is fixedly connected to the top of the upper shell, the bottom of which is fixedly connected to an output pipe, the bottom of which is fixedly connected to a ventilation plate, and the top of which is fixedly connected to a filter mechanism. By starting the fan assembly to connect to the output pipe, the safety shoes and the inside of the equipment are air-dried to avoid liquid residue from causing harm to the human body, reduce the smell of the liquid, and finally spray it out through the ventilation plate.

[0015] Preferably, a funnel plate is fixedly connected to the bottom of the air-permeable plate, and the funnel plate concentrates the gas to prevent diffusion from affecting the air-drying effect. A straight tube is fixedly connected to the bottom of the funnel plate, and the straight tube adopts an upright structure to reduce resistance loss, reduce capacity loss, improve transportation efficiency, and improve air-drying effect. A connecting block is fixedly connected to the side of the straight tube away from the funnel plate, and an air cavity groove is provided inside the connecting block. When the gas passes through the air cavity groove, the sound is blocked multiple times by the air cavity groove, thereby achieving the effect of noise reduction and preventing noise from interfering with the working environment.

[0016] Preferably, the filtering mechanism includes a columnar block, the bottom of the columnar block is fixedly connected to the top of the air permeable plate, the top of the columnar block is rotatably connected to a filter table, and when the gas passes through the filter plate, the filter table and the columnar block are rotated, so as to achieve uniform filtration, extend the service life of the equipment, improve the utilization rate of the equipment, and avoid internal pollution caused by impurities; the top of the filter table is fixedly connected to a square block, and the top of the square block is plugged with a filter plate. The square block and the filter plate are plugged together to facilitate replacement and maintain the filtering operation; the top of the filter plate is plugged with a circular plate, and the circular plate fixes the filter plate.

[0017] The present invention provides a safety shoe anti-corrosion testing device, which has the following beneficial effects:

[0018] 1. The safety shoe anti-corrosion test equipment is designed with a composite mechanism. The staff opens the door panel and then connects the safety shoe for testing to the clamping mechanism, thereby fixing the safety shoe, reducing personnel contact and protecting personnel. Then the door panel is closed and the electric push rod is used to extend the safety shoe to the inside of the lower shell. After entering the lower shell, the test liquid pipeline is connected to the side of the spraying mechanism outside the equipment, and then the safety shoe is sprayed through the spraying mechanism, thereby corroding the surface of the safety shoe to achieve an anti-corrosion test. The separation membrane has a barrier effect on the liquid to prevent liquid splashing, avoid internal pollution of the equipment, maintain a closed space, and avoid affecting the test effect. Finally, the internal liquid is discharged from the discharge port for subsequent processing.

[0019] 2. The safety shoe anti-corrosion test equipment is designed with a clamping mechanism. The support frame supports the connecting bracket. An elastic structure is arranged inside the support frame to increase the supporting effect on the safety shoes, so as to achieve the effect of fixed clamping. The connecting bracket is connected to the trapezoidal plate. The trapezoidal plate is elastically supported to support the safety shoes and prevent them from falling off during the test. The friction plate is used to rub the inside of the safety shoe to improve the friction effect and enhance the fixing effect. The silicone plate is made of silicone material with certain elasticity, adsorption and chemical stability, so as to achieve the anti-corrosion effect and extend the service life of the equipment. The silicone material is used to improve the stability when fixing. The friction is increased by opening block incisions and grooving. The grooves can increase the friction when the surface of the silicone block contacts other objects, prevent sliding, enhance stability and grip, and increase flexibility. Reasonably distributed grooves can change the mechanical properties of the silicone block to a certain extent, making it easier to bend and adapt to different shapes.

[0020] 3. The safety shoe anti-corrosion testing equipment is designed with a spraying mechanism. The liquid impacts the scraper, causing the scraper to rotate on the inner wall of the spraying shell, so as to scrape the inner wall, clean the inner wall of the equipment, prevent impurities from accumulating, avoid blockage, maintain stable operation, and extend the service life of the equipment. The scraping effect is improved by opening a square incision. The presence of the groove allows the scraper to better accommodate and discharge the scraped material when scraping objects, reduce accumulation and residue, thereby improving the cleanliness of the scraping and enhancing the fluid conduction capacity. The grooving helps to guide the flow direction of the fluid, making it more evenly distributed and improving work efficiency.

[0021] 4. The safety shoe anti-corrosion test equipment is designed with a nozzle mechanism. The test liquid impacts the blades, so that the blades drive the nozzle frame to rotate, so as to increase the spraying range and improve the spraying uniformity. The rotating action can avoid the liquid from concentrating in a fixed area, so that the sprayed material is more evenly distributed in space, which is beneficial to improving the working effect. Then, the liquid is compressed by the compression head to improve the atomization effect, so that it is evenly spread on the surface of the safety shoes, improving the test effect, increasing the penetration and adsorption effects, and small droplets can more easily penetrate into the surface or gap of the object, thereby improving the adsorption and action depth of the liquid and improving the test results of the safety shoe anti-corrosion.

[0022] 5. The safety shoe corrosion protection test equipment is designed with a processing mechanism. By starting the fan assembly to connect the output pipe, the safety shoes and the inside of the equipment are air-dried to avoid liquid residue causing harm to the human body and reduce the liquid odor. Finally, the gas is sprayed out through the breathable plate. The funnel plate concentrates the gas to prevent diffusion from affecting the air-drying effect. The straight pipe adopts an upright structure to reduce resistance loss, reduce capacity loss, improve transportation efficiency, and improve air-drying effect. When the gas passes through the air cavity groove, the sound is blocked by the air cavity groove multiple times, thereby achieving the effect of noise reduction and avoiding noise interference with the working environment. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 This is a schematic diagram of the external structure of the safety shoe anti-corrosion testing equipment of the present invention;

[0024] Figure 2 This is a schematic diagram of the cross-sectional structure of the safety shoe anti-corrosion testing equipment of the present invention;

[0025] Figure 3 It is a schematic diagram of the cross-sectional structure of the composite mechanism of the present invention;

[0026] Figure 4 It is a schematic diagram of the structure of the clamping mechanism of the present invention;

[0027] Figure 5 It is a schematic diagram of the cross-sectional structure of the spraying mechanism of the present invention;

[0028] Figure 6 It is a schematic diagram of the friction mechanism structure of the present invention;

[0029] Figure 7 It is a schematic diagram of the cross-sectional structure of the nozzle mechanism of the present invention;

[0030] Figure 8 It is a schematic diagram of the cross-sectional structure of the processing mechanism of the present invention;

[0031] Fig. 9 It is a schematic diagram of the filtering mechanism structure of the present invention.

[0032] In the figure: 1. composite mechanism; 2. processing mechanism; 11. upper shell; 12. electric push rod; 13. clamping mechanism; 14. door panel; 15. lower shell; 16. separation membrane; 17. discharge port; 18. spraying mechanism; 131. connecting block; 132. connecting bracket; 133. supporting frame; 134. trapezoidal plate; 135. friction plate; 136. silica gel block; 137. block cutout; 181. connecting pipe; 182. annular block; 183. butt pipe; 184. spraying shell; 185. friction mechanism; 186. nozzle mechanism; 1851. first fixed frame; 1852. rotating plate; 1853. connecting frame; 1854. second fixed frame; 1855. scraper; 1856. square cutout; 1861. Nozzle frame; 1862. Arc tube; 1863. Compression head; 1864. External block; 1865. Paddle; 21. Fan assembly; 22. Output pipe; 23. Breathable plate; 24. Funnel plate; 25. Straight tube; 26. Connecting block; 27. Air cavity groove; 28. Filter mechanism; 281. Column block; 282. Filter table; 283. Square block; 284. Filter plate; 285. Round plate. DETAILED DESCRIPTION

[0033] The present invention is further described in detail below in conjunction with the accompanying drawings and specific embodiments. The embodiments of the present invention are provided for the purpose of illustration and description, and are not intended to be exhaustive or to limit the present invention to the disclosed forms. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are selected and described in order to better illustrate the principles and practical applications of the present invention, and to enable those of ordinary skill in the art to understand the present invention and thereby design various embodiments with various modifications suitable for specific uses.

[0034] The first embodiment, as Figures 1 to 3 As shown, the present invention provides a technical solution: a safety shoe anti-corrosion testing device, comprising a composite mechanism 1, the composite mechanism 1 is used to clamp and soak the safety shoe;

[0035] A processing mechanism 2, the processing mechanism 2 is used to air-dry the composite mechanism 1;

[0036] The top of the composite mechanism 1 is fixedly connected to the outside of the processing mechanism 2;

[0037] Among them, the composite mechanism 1 includes an upper shell 11, an electric push rod 12 is fixedly connected to the middle of the top of the upper shell 11, a processing mechanism 2 is fixedly connected to the side of the top of the upper shell 11 close to the electric push rod 12, a clamping mechanism 13 is fixedly connected to the bottom of the electric push rod 12, a door panel 14 is fixedly connected to one side of the outside of the upper shell 11, a lower shell 15 is fixedly connected to the bottom of the upper shell 11, a separation membrane 16 is fixedly connected to the side of the top of the lower shell 15 close to the upper shell 11, a discharge port 17 is fixedly connected to the outside of the lower shell 15, and a spraying mechanism 18 is fixedly connected to the side of the lower shell 15 away from the discharge port 17. The staff will open the door panel 14, and then connect the safety shoes for testing to the clamping mechanism 13, so as to fix the safety shoes, reduce personnel contact, and protect personnel. Then close the door panel 14, extend the safety shoes to the inside of the lower shell 15 through the electric push rod 12, and after entering the lower shell 15, connect the test liquid pipeline through the side of the outside of the equipment of the spraying mechanism 18, and then spray the safety shoes through the spraying mechanism 18, so as to corrode the surface of the safety shoes, so as to achieve the anti-corrosion test. The separation membrane 16 has a barrier effect on the liquid, prevents liquid splashing, avoids internal pollution of the equipment, maintains a closed space, and avoids affecting the test effect. Finally, the internal liquid is discharged from the discharge port 17 for subsequent treatment.

[0038] The second embodiment is based on the first embodiment. Figures 4 to 7 As shown, the clamping mechanism 13 includes a connection block 131, the inner wall of the connection block 131 is fixedly connected to the outside of the electric push rod 12, the connection block 131 is fixedly connected to the outside of the connection block 131 with a connection bracket 132, the opposite surfaces of the connection bracket 132 are fixedly connected with a support frame 133, and the side of the connection bracket 132 away from the connection block 131 is fixedly connected with a trapezoidal plate 134. The support frame 133 supports the connection bracket 132, and an elastic structure is provided inside the support frame 133 to increase the support effect on the safety shoes, thereby achieving the effect of fixed clamping, and the connection bracket 132 is connected to the trapezoidal plate 134, and the trapezoidal plate 134 plays an open support effect on the safety shoes through elastic support to prevent them from falling off during the test.

[0039] A friction plate 135 is fixedly connected to the edge of the outer side of the trapezoidal plate 134 away from the connecting bracket 132, and a silicone block 136 is fixedly connected to the side of the trapezoidal plate 134 close to the friction plate 135. A block cutout 137 is provided on the outer side of the silicone block 136. The friction plate 135 is used to rub the inside of the safety shoe to improve the friction effect and enhance the fixing effect. The silicone block 136 is made of silicone material, which has certain elasticity, adsorption and chemical stability, so as to achieve the effect of corrosion prevention and extend the service life of the equipment. The silicone material is used to improve the stability effect when fixing. The block cutout 137 is provided, and the friction is increased by grooving. The grooves can increase the friction force when the surface of the silicone block contacts other objects, prevent sliding, enhance stability and grip, and increase the flexibility effect. The reasonably distributed grooves can change the mechanical properties of the silicone block to a certain extent, making it easier to bend and adapt to different shapes.

[0040] The spray mechanism 18 includes a connecting pipe 181, the outside of the connecting pipe 181 is fixedly connected to the outside of the lower shell 15, one side of the outside of the connecting pipe 181 is fixedly connected to an annular block 182, the outside of the annular block 182 is plugged and connected to a butt joint 183, the side of the butt joint 183 away from the connecting pipe 181 is fixedly connected to a spray shell 184, the inner wall of the spray shell 184 is fixedly connected to a friction mechanism 185, and the side of the spray shell 184 away from the butt joint 183 is rotatably connected to a nozzle mechanism 186. One side of the connecting pipe 181 is connected to a liquid pipeline for convenient feeding, and then the butt joint 183 is plugged into the annular block 182 to achieve a quick connection effect, which is convenient for replacement and maintenance. The spray shell 184 adopts a conical structure, and when the liquid passes through, it rolls inside, driving the friction mechanism 185 to rotate, thereby achieving the effect of cleaning the inner wall.

[0041] The friction mechanism 185 includes a first fixed frame 1851, the outside of the first fixed frame 1851 is fixedly connected to the inner wall of the spray shell 184, one side of the outside of the first fixed frame 1851 is rotatably connected to a rotating plate 1852, the side of the outside of the rotating plate 1852 away from the first fixed frame 1851 is fixedly connected to a connecting frame 1853, the side of the connecting frame 1853 away from the first fixed frame 1851 is fixedly connected to a second fixed frame 1854, the outside of the connecting frame 1853 is fixedly connected to a scraper 1855, and the outside of the scraper 1855 is provided with a square incision 1856. The scraper 1855 is impacted by liquid, causing it to rotate on the inner wall of the spray housing 184, thereby scraping the inner wall, cleaning the inner wall of the equipment, preventing impurities from accumulating, avoiding blockage, maintaining stable operation, and extending the service life of the equipment. The scraping effect is improved by opening a square incision 1856. The presence of the groove allows the scraper to better accommodate and discharge the scraped material when scraping objects, reducing accumulation and residue, thereby improving the cleanliness of scraping and enhancing the fluid conduction capacity. The grooving helps to guide the flow direction of the fluid, making it more evenly distributed and improving work efficiency.

[0042] The nozzle mechanism 186 includes a nozzle frame 1861, the outside of the nozzle frame 1861 is fixedly connected to an arc tube 1862, one side of the outside of the arc tube 1862 is fixedly connected to a compression head 1863, the outside of the nozzle frame 1861 is fixedly connected to an external block 1864 on one side close to the spray shell 184, and the side of the external block 1864 away from the nozzle frame 1861 is fixedly connected to a paddle 1865. The test liquid impacts the blade 1865, causing the blade 1865 to drive the nozzle frame 1861 to rotate, thereby increasing the spraying range and improving the spraying uniformity. The rotating action can prevent the liquid from concentrating in a fixed area, making the sprayed material more evenly distributed in space, which is beneficial to improving the working effect. The liquid is then compressed by the compression head 1863 to improve the atomization effect, so that it is evenly spread on the surface of the safety shoes, improving the test effect, increasing the penetration and adsorption effects, and small droplets can more easily penetrate into the surface or gaps of objects, thereby improving the adsorption and action depth of the liquid and improving the test results of the safety shoes' corrosion resistance.

[0043] The third embodiment is based on the first and second embodiments. Figures 8 to 9 As shown, the processing mechanism 2 includes a fan assembly 21, the outside of the fan assembly 21 is fixedly connected to the top of the upper shell 11, the bottom of the fan assembly 21 is fixedly connected to an output pipe 22, the bottom of the output pipe 22 is fixedly connected to a ventilation plate 23, and the top of the ventilation plate 23 is fixedly connected to a filter mechanism 28. By starting the fan assembly 21 to connect the output pipe 22, the safety shoes and the inside of the equipment are air-dried to avoid liquid residue from causing harm to the human body and reduce the smell of the liquid, and finally sprayed out through the ventilation plate 23.

[0044] The bottom of the air permeable plate 23 is fixedly connected with a funnel plate 24, the bottom of the funnel plate 24 is fixedly connected with a straight tube 25, the side of the straight tube 25 away from the funnel plate 24 is fixedly connected with a connecting block 26, and an air cavity groove 27 is provided inside the connecting block 26. The funnel plate 24 concentrates the gas to prevent diffusion from affecting the air drying effect, and the straight tube 25 adopts an upright structure to reduce resistance loss, reduce capacity loss, improve transportation efficiency, and improve air drying effect. When the gas passes through the air cavity groove 27, the sound is blocked by the air cavity groove 27 for multiple times, thereby achieving the effect of noise reduction and preventing noise from interfering with the working environment.

[0045] The filter mechanism 28 includes a columnar block 281, the bottom of which is fixedly connected to the top of the air permeable plate 23, the top of which is rotatably connected to a filter table 282, the top of which is fixedly connected to a square block 283, the top of which is plugged with a filter plate 284, and the top of which is plugged with a circular plate 285. When the gas passes through the filter plate 284, the filter table 282 and the columnar block 281 are rotated to achieve uniform filtering, extend the service life of the equipment, improve the utilization rate of the equipment, and avoid contamination of the interior by impurities. The square block 283 is plugged with the filter plate 284, which is convenient for replacement and maintains the filtering operation.

[0046] When in use, the staff opens the door panel 14 inside the composite mechanism 1, puts the safety shoe on the outside of the clamping mechanism 13, and supports and fixes the safety shoe through the clamping mechanism 13, so as to achieve the clamping and fixing effect to prevent it from falling off during the subsequent test process, and then closes the door panel 14, controls the electric push rod 12 to make the clamping mechanism 13 sink to the inside of the lower shell 15, and connects the spraying mechanism 18 to the liquid pipeline. The spraying mechanism 18 improves the atomization effect and makes it evenly spread on the surface of the safety shoe, thereby improving the test effect, increasing the penetration and adsorption effect, and making it easier for small droplets to penetrate into the surface or gap of the object, thereby improving the adsorption and action depth of the liquid and improving the test results of the safety shoe corrosion resistance.

[0047] After a period of liquid atomization spraying, the clamping mechanism 13 is controlled by the electric push rod 12 to rise to the inside of the upper shell 11, and then the processing mechanism 2 is started. The inside of the composite mechanism 1 and the safety shoes are air-dried by the processing mechanism 2 to prevent the liquid from causing harm to the human body. After air-drying, it is convenient to check the corrosion effect, and the inside of the equipment is cleaned to dispel the liquid odor, and then the liquid is discharged through the discharge port 17.

[0048] Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without creative work should fall within the scope of protection of the present invention. The structures, devices and operating methods not specifically described and explained in the present invention are implemented according to the conventional means in the field unless otherwise specified and limited.

Claims

1. A safety shoe anti-corrosion testing device, characterized in that: include: A composite mechanism (1), the composite mechanism (1) being used for clamping and soaking safety shoes; A processing mechanism (2), the processing mechanism (2) is used to air-dry the composite mechanism (1); The top of the composite mechanism (1) is fixedly connected to the outside of the processing mechanism (2); The composite mechanism (1) comprises an upper shell (11), an electric push rod (12) is fixedly connected to the middle of the top of the upper shell (11), a processing mechanism (2) is fixedly connected to the side of the top of the upper shell (11) close to the electric push rod (12), a clamping mechanism (13) is fixedly connected to the bottom of the electric push rod (12), a door panel (14) is fixedly connected to the side of the outside of the upper shell (11), a lower shell (15) is fixedly connected to the bottom of the upper shell (11), a separation membrane (16) is fixedly connected to the side of the top of the lower shell (15) close to the upper shell (11), a discharge port (17) is fixedly connected to the outside of the lower shell (15), and a spraying mechanism (18) is fixedly connected to the side of the lower shell (15) away from the discharge port (17); The spray mechanism (18) comprises a connecting pipe (181), the outside of the connecting pipe (181) is fixedly connected to the outside of the lower shell (15), one side of the outside of the connecting pipe (181) is fixedly connected to an annular block (182), the outside of the annular block (182) is plug-connected to a butt joint pipe (183), the side of the butt joint pipe (183) away from the connecting pipe (181) is fixedly connected to a spray shell (184), the inner wall of the spray shell (184) is fixedly connected to a friction mechanism (185), and the side of the spray shell (184) away from the butt joint pipe (183) is rotatably connected to a spray head mechanism (186); The friction mechanism (185) comprises a first fixed frame (1851), the exterior of the first fixed frame (1851) is fixedly connected to the inner wall of the spray housing (184), one side of the exterior of the first fixed frame (1851) is rotatably connected to a rotating plate (1852), the exterior of the rotating plate (1852) away from the first fixed frame (1851) is fixedly connected to a connecting frame (1853), the exterior of the connecting frame (1853) away from the first fixed frame (1851) is fixedly connected to a second fixed frame (1854), the exterior of the connecting frame (1853) is fixedly connected to a scraper (1855), and the exterior of the scraper (1855) is provided with a square cutout (1856).

2. A safety shoe anti-corrosion testing device according to claim 1, characterized in that: The clamping mechanism (13) comprises a connecting block (131), the inner wall of the connecting block (131) being fixedly connected to the outside of the electric push rod (12), the outside of the connecting block (131) being fixedly connected to a connecting bracket (132), a supporting frame (133) being fixedly connected between opposite surfaces of the connecting bracket (132), and a trapezoidal plate (134) being fixedly connected to a side of the connecting bracket (132) away from the connecting block (131).

3. A safety shoe anti-corrosion testing device according to claim 2, characterized in that: A friction plate (135) is fixedly connected to the edge of the trapezoidal plate (134) on the side away from the connecting bracket (132), and a silicone block (136) is fixedly connected to the side of the trapezoidal plate (134) close to the friction plate (135), and a block-shaped cutout (137) is formed on the outside of the silicone block (136).

4. A safety shoe anti-corrosion testing device according to claim 1, characterized in that: The nozzle mechanism (186) comprises a nozzle frame (1861), the outside of the nozzle frame (1861) is fixedly connected to an arc tube (1862), one side of the outside of the arc tube (1862) is fixedly connected to a compression head (1863), the outside of the nozzle frame (1861) is fixedly connected to an external block (1864) on one side close to the spray housing (184), and the side of the external block (1864) away from the nozzle frame (1861) is fixedly connected to a paddle (1865).

5. The safety shoe anti-corrosion testing device according to claim 1, characterized in that: The processing mechanism (2) comprises a fan assembly (21), the exterior of the fan assembly (21) being fixedly connected to the top of the upper shell (11), the bottom of the fan assembly (21) being fixedly connected to an output pipe (22), the bottom of the output pipe (22) being fixedly connected to an air permeable plate (23), and the top of the air permeable plate (23) being fixedly connected to a filtering mechanism (28).

6. A safety shoe anti-corrosion testing device according to claim 5, characterized in that: The bottom of the air permeable plate (23) is fixedly connected to a funnel plate (24), the bottom of the funnel plate (24) is fixedly connected to a straight tube (25), a side of the straight tube (25) away from the funnel plate (24) is fixedly connected to a connecting block (26), and an air cavity groove (27) is provided inside the connecting block (26).

7. The safety shoe anti-corrosion testing device according to claim 5, characterized in that: The filtering mechanism (28) comprises a columnar block (281), the bottom of the columnar block (281) being fixedly connected to the top of the air permeable plate (23), the top of the columnar block (281) being rotatably connected to a filter platform (282), the top of the filter platform (282) being fixedly connected to a square block (283), the top of the square block (283) being plugged with a filter plate (284), and the top of the filter plate (284) being plugged with a circular plate (285).

Citation Information

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