Compressor cooling system for conveying corrosive gas

By introducing filtering components and cooling components into the compressor cooling system, the problems of impurity ingress and poor cooling effect are solved, the service life and working efficiency of the compressor are improved, and energy consumption and costs are reduced.

CN120759738APending Publication Date: 2025-10-10WUXI QUANSHIQUAN FLUID TECH CO LTD
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Patent Information

Application Number
CN202511133588.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-13
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

The existing compressor cooling system has poor filtering effect on gas, causing impurities to enter the compressor, reducing service life and working efficiency; poor cooling effect causes gas temperature to rise, increasing energy consumption and cost.

Method used

The filter assembly is used to filter the gas to prevent impurities from entering the compressor, and the cooling water temperature is quickly reduced through the cooling assembly to improve the heat dissipation effect.

Benefits of technology

The service life and working efficiency of the compressor are prolonged, and energy consumption and costs are reduced.

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Abstract

The invention relates to the technical field of compressor cooling, and particularly discloses a compressor cooling system for conveying corrosive gas, which comprises a base and a compressor main body, the compressor main body is fixedly mounted on the upper surface of the base, a filter assembly is arranged at one end of the compressor main body, and a cooling pipe is fixedly connected to one end, away from the filter assembly, of the compressor main body; impurities in gas can be filtered through the filtering assembly, the impurities are prevented from entering the compressor, friction between a piston ring of the compressor and the wall of an air cylinder is avoided, the service life of the compressor is prolonged, a filtering net can be cleaned, the cooling effect is good, and the service life of the compressor is prolonged. The temperature of circulating cooling water can be rapidly reduced through the cooling assembly, the circulating cooling water makes full contact with outside air, water splashing and loss during circulation of the cooling water can be prevented, the heat dissipation effect of the heat dissipation fins is improved, and then the cooling effect on compressed air is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of compressor cooling, and in particular to a compressor cooling system for conveying corrosive gas. Background Art

[0002] The transportation and compression of corrosive gases like fluorine and hydrogen fluoride are critical processes in the chemical and energy industries. As core equipment, compressors generate significant heat during operation, requiring cooling systems to maintain stable operating conditions. With the increasing development of compressors, the development of efficient, reliable, and intelligent compressor cooling systems suitable for corrosive gas conditions is urgently needed.

[0003] The existing technology still has the following problems:

[0004] 1. The existing compressor cooling system has poor filtering effect on gas, which causes impurities to enter the compressor. In the compressor, impurities will accelerate the friction between the piston ring and the cylinder wall, resulting in seal failure, increased air leakage, and reduced compressor service life. In addition, the filter is prone to clogging during long-term use, which reduces the cross-sectional area of ​​the gas to be compressed and the flow rate, resulting in a significant reduction in the flow rate through the compressor per unit time, thereby reducing the working efficiency of the compressor.

[0005] 2. The existing compressor cooling system has poor cooling effect. The compression process causes the gas temperature to rise significantly, and the compressed gas needs to be cooled. Cooling can reduce the gas volume and reduce the subsequent storage and transportation energy consumption and cost. The gas temperature is reduced by water circulation heat dissipation. However, after the water circulation comes into contact with the high-temperature compressed gas, the water temperature rises, and the water temperature cannot drop quickly, resulting in a poor heat dissipation effect of the heat dissipation fins, which in turn affects the cooling effect of the compressed gas. Summary of the Invention

[0006] In order to overcome the poor filtering effect of the compressor cooling system on gas, which causes impurities to enter the compressor, the impurities in the compressor will accelerate the friction between the piston ring and the cylinder wall, resulting in seal failure, increased air leakage, and reduced service life of the compressor. In addition, the filter is prone to clogging during long-term use, and the cross-sectional area of ​​the gas to be compressed is reduced, the flow rate is reduced, resulting in a significant reduction in the flow through the compressor per unit time, thereby reducing the working efficiency of the compressor. The compressor cooling system has a poor cooling effect, and the compression process causes the gas temperature to rise significantly. The compressed gas needs to be cooled, and cooling can reduce the gas volume, reduce subsequent storage and transportation energy consumption and cost, and reduce the gas temperature by water circulation heat dissipation. However, after the water circulation comes into contact with the high-temperature compressed gas, the water temperature rises, and the water temperature cannot drop quickly, resulting in a poor heat dissipation effect of the heat dissipation fins, thereby affecting the cooling effect of the compressed gas. The purpose of the present invention is to provide a compressor cooling system for conveying corrosive gas to solve the above-mentioned shortcomings.

[0007] The present application provides a compressor cooling system for conveying corrosive gas, comprising a base and a compressor body, wherein the compressor body is fixedly mounted on the upper surface of the base, a filter assembly is provided at one end of the compressor body, a cooling pipe is fixedly connected to one end of the compressor body away from the filter assembly, a cooling assembly is provided on the upper surface of the base, the cooling pipe and the outer surface of the cooling assembly are tightly fitted, the cooling assembly comprises a cooling box, a heat dissipation fin is fixedly connected to the inner wall of the cooling box close to the cooling pipe, a water storage barrel is fixedly mounted on the inner wall of the cooling box, a cooling barrel is fixedly mounted on the inner wall of the cooling box, a first conduit is fixedly connected to the bottom end of the water storage barrel, a second conduit is fixedly connected to the top end between the water storage barrel and the cooling barrel, and a cooling mechanism is provided directly above the cooling barrel.

[0008] Furthermore, a water pump is provided on the inner wall of the bottom end of the water storage barrel, the water pump and the first conduit are sleeved, and the first conduit and the heat dissipation fins are tightly fitted.

[0009] Furthermore, the cooling mechanism includes a cooling cylinder, a second fixed bar is fixedly installed on the outer surface of the cooling cylinder, a diversion pipe is sleeved on the outer surface of the cooling cylinder, a rack is slidably connected to the outer surface of the cooling cylinder, a second motor is fixedly installed on the inner wall of the cooling box, a second rotating rod is sleeved on the output end of the second motor, a buffer mechanism is slidably connected to the inner cavity of the cooling cylinder, and a gear is sleeved on the end of the second rotating rod away from the second motor.

[0010] Furthermore, the end of the second fixed bar away from the cooling cylinder is fixedly connected to the inner wall of the cooling box, the rack and the buffer mechanism are fixedly connected, the gear and the rack are meshed, half of the gear is smooth, the end of the first conduit away from the water storage barrel is located directly above the cooling cylinder, the bottom end of the cooling cylinder is located in the middle part of the cooling cylinder, and the bottom end of the diverter pipe is located in the upper end inner cavity of the cooling barrel.

[0011] Furthermore, the buffer mechanism includes a buffer disk, a connecting tube is fixedly installed on the upper surface of the buffer disk, a connecting hole is opened on the outer surface of the connecting tube, the outer surface of the connecting tube is slidably connected to the flexural disk, a support disk is fixedly installed on the middle part of the buffer disk, the connecting hole is located between the flexural disk and the buffer disk, the inner wall of the support disk is fixedly connected to the fourth spring, the inner cavity of the support disk is slidably connected to the slide, the end of the slide away from the fourth spring is rotatably connected to the second connecting strip, the end of the second connecting strip away from the slide is rotatably connected to the buffer rod, the fourth spring is located between the inner wall of the support disk and the slide, the buffer rod and the buffer rod are slidably connected, the top of the buffer rod is tightly fitted with the lower surface of the flexural disk, the buffer disk and the rack are fixedly connected, the buffer disk and the flexural disk are tightly fitted with the inner wall of the cooling tube, and the buffer disk and the flexural disk are slidably connected to the cooling tube.

[0012] Furthermore, the filter assembly includes a sleeve, a fixed rod is fixedly installed on the inner wall of the sleeve, a filter screen is slidably connected to the inner cavity of the sleeve, the filter screen and the fixed rod are slidably connected, a first spring is sleeved on the outer surface of the fixed rod, the first spring is located between the sleeve and the filter screen, the first spring is close to the fixed rod end on the side of the compressor body, the upper surface of the sleeve is slidably connected to a slider, the outer surface of the slider is provided with a cleaning mechanism, the outer surface of the slider is provided with a limiting mechanism, the bottom end of the filter screen is provided with a dust collection mechanism, the outer surface of the filter screen is provided with a knocking mechanism, and the upper surface of the sleeve is provided with a slide groove.

[0013] Furthermore, the cleaning mechanism includes a first motor, the inner cavity of the slider is slidably connected to a belt, the output end of the first motor is sleeved on the belt, a button is provided on the upper surface of the slider, the button is electrically connected to the first motor, and pressing the button controls the operation of the first motor, the bottom end of the slider is fixedly installed with a first fixed bar, the bottom end of the first fixed bar is rotatably connected to a first rotating rod, the belt is sleeved on the first rotating rod, the first fixed bar is slidably connected to the slide groove on the sleeve, the first rotating rod is rotatably connected to the filter, one end of the first rotating rod is fixedly connected to a cleaning brush, the cleaning brush is in contact with the outer surface of the filter, and the slider and the sleeve fit tightly.

[0014] Furthermore, the limiting mechanism includes a fixing frame, the fixing frame and the sleeve are fixedly connected, the inner cavity of the fixing frame is slidably connected to a clamping rod, the outer surface of the clamping rod is sleeved with a second spring, the outer surface of the clamping rod is fixedly connected to a fixing ring, the second spring is located between the fixing ring and the bottom wall of the fixing frame, the bottom end of the clamping rod is movably connected to a rolling ball, the upper surface of the slider is provided with a clamping groove, the spacing between the clamping groove and the rolling ball is equal, and the clamping groove can be engaged with the rolling ball when the slider slides, and the button and the top of the fixing frame are flush in height.

[0015] Furthermore, the dust collecting mechanism includes a dust collecting box, the dust collecting box and the filter are fixedly connected, the bottom wall of the sleeve is fixedly connected with a connecting block, the inner cavity of the dust collecting box is slidably connected with a dust shielding plate, and the dust shielding plate and the connecting block are fixedly connected.

[0016] Furthermore, the knocking mechanism includes a connecting ring, which is fixedly connected to the filter screen, and a protrusion is fixedly connected to the side of the connecting ring away from the filter screen, and the protrusions are evenly distributed. The outer surface of the first rotating rod is fixedly installed with a rotating ring, and the outer surface of the rotating ring is fixedly connected to the first connecting strip. The inner cavity of the first connecting strip is provided with a third spring, and the inner cavity of the first connecting strip is slidably connected with an elastic rod. The third spring is located between the inner wall of the first connecting strip and the elastic rod, the elastic rod is in close contact with the outer surface of the connecting ring, and the belt is located between the first fixed strip and the first connecting strip.

[0017] The technical solution provided by this application has at least the following technical effects or advantages:

[0018] 1. The use of a filter assembly effectively solves the problem of poor gas filtering effect of the existing compressor cooling system, which causes impurities to enter the compressor. In the compressor, impurities will accelerate the friction between the piston ring and the cylinder wall, resulting in seal failure, increased air leakage, and reduced service life of the compressor. In addition, the filter is prone to clogging during long-term use, and the cross-sectional area of ​​the gas to be compressed is reduced, and the flow rate is reduced, resulting in a significant reduction in the flow rate through the compressor per unit time, thereby reducing the working efficiency of the compressor. The present invention can filter impurities in the gas through the filter assembly, prevent impurities from entering the compressor, avoid friction between the compressor piston ring and the cylinder wall, and improve the service life of the compressor. It can clean the filter and collect impurities generated by cleaning at a fixed point to prevent secondary pollution. During the cleaning process, the filter is knocked to keep the filter in a clear state, so that the gas flow cross-sectional area remains stable and the flow rate is increased, thereby increasing the gas flow through the compressor per unit time, thereby improving the working efficiency of the compressor.

[0019] 2. The use of a cooling component effectively solves the problem of poor cooling effect of the existing compressor cooling system. The compression process causes the gas temperature to rise significantly, and the compressed gas needs to be cooled. Cooling can reduce the gas volume and reduce the subsequent storage and transportation energy consumption and cost. The gas temperature is reduced by water circulation heat dissipation. However, after the water circulation comes into contact with the high-temperature compressed gas, the water temperature rises, and the water temperature cannot drop quickly, resulting in a poor heat dissipation effect of the heat dissipation fins, which in turn affects the cooling effect of the compressed gas. The present invention can quickly reduce the temperature of the circulating cooling water through the cooling component, and fully contact with the outside air, which can prevent the cooling water from splashing and losing water during circulation, improve the heat dissipation effect of the heat dissipation fins, and thus improve the cooling effect of the compressed gas. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the overall structure of Example 1 of the present application;

[0021] Figure 2 This is a schematic diagram of the structure of the filter assembly in Example 1 of the present application;

[0022] Figure 3 This is a schematic cross-sectional view of the filter assembly structure in Example 1 of the present application;

[0023] Figure 4 This is a schematic diagram of the structure of the first fixing bar in Example 1 of the present application;

[0024] Figure 5 This is a schematic diagram of the dust collection mechanism structure in Example 1 of the present application;

[0025] Figure 6 This is a schematic diagram of the structure of the limiting mechanism in Example 1 of the present application;

[0026] Figure 7 This is a schematic diagram of the structure of the striking mechanism in Example 1 of the present application;

[0027] Figure 8 This is a schematic cross-sectional view of the cooling assembly structure in Example 2 of the present application;

[0028] Figure 9 This is a schematic diagram of the structure of the first conduit in Example 2 of the present application;

[0029] Figure 10 This is a schematic diagram of the cooling mechanism structure in Example 2 of the present application;

[0030] Figure 11 This is a schematic diagram of the rack structure in Example 2 of the present application;

[0031] Figure 12 This is a schematic diagram of the connecting tube structure in Example 2 of the present application;

[0032] Figure 13 This is a schematic diagram of the support plate structure in Example 2 of the present application;

[0033] Figure 14 This is a schematic diagram of the buffer rod structure in Example 2 of the present application.

[0034] In the figure: 1. base; 2. compressor body; 3. filter assembly; 31. sleeve; 32. fixing rod; 33. filter screen; 34. first spring; 35. slider; 36. cleaning mechanism; 361. first motor; 362. belt; 363. button; 364. first fixing bar; 365. first rotating rod; 366. cleaning brush; 37. limiting mechanism; 371. fixing frame; 372. clamping rod; 373. second spring; 374. fixing ring; 375. rolling ball; 376. clamping slot; 38. dust collecting mechanism; 381. dust collecting box; 382. connecting block; 383. dust shield; 39. knocking mechanism; 391. connecting ring; 392. protrusion; 393. rotating ring; 394. A connecting strip; 395, a third spring; 396, an elastic rod; 4, a cooling tube; 5, a cooling assembly; 51, a cooling box; 52, heat dissipation fins; 53, a water storage tank; 54, a cooling tank; 55, a first conduit; 56, a second conduit; 57, a cooling mechanism; 571, a cooling tube; 572, a second fixing strip; 573, a diverter tube; 574, a rack; 575, a second motor; 576, a second rotating rod; 577, a buffer mechanism; 5771, a buffer plate; 5772, a connecting tube; 5773, a connecting hole; 5774, an amplitude plate; 5775, a supporting plate; 5776, a fourth spring; 5777, a slide; 5778, a second connecting strip; 5779, a buffer rod; 578, a gear. DETAILED DESCRIPTION

[0035] For the poor filtering effect of the compressor cooling system on the gas, the present invention can filter the impurities in the gas through the filtering component, prevent the impurities from entering the compressor, avoid friction between the compressor piston ring and the cylinder wall, increase the service life of the compressor, and clean the filter; for the poor cooling effect of the compressor cooling system, the present invention can quickly reduce the temperature of the circulating cooling water through the cooling component, fully contact with the outside air, and prevent the cooling water from splashing and losing water during circulation.

[0036] In order to better understand the above technical solution, the above technical solution will be described in detail below with reference to the accompanying drawings and specific implementation methods.

[0037] Example 1:

[0038] See also Figure 1As shown, a compressor cooling system for conveying corrosive gas, comprising a base 1 and a compressor body 2, the upper surface of the base 1 is fixedly installed with the compressor body 2, one end of the compressor body 2 is provided with a filter assembly 3, the end of the compressor body 2 away from the filter assembly 3 is fixedly connected with a cooling pipe 4, the upper surface of the base 1 is provided with a cooling assembly 5, the outer surfaces of the cooling pipe 4 and the cooling assembly 5 are closely attached, the gas entering the compressor body 2 is filtered through the filter assembly 3, preventing the friction between the piston ring and the cylinder wall of the compressor body 2 when compressing the gas, the cooling pipe 4 is used to convey the compressed gas, and the cooling assembly 5 is used to cool the compressed gas, facilitating subsequent conveying and use.

[0039] As shown in Figure 2 、 Figure 3 and Figure 4 , the filter assembly 3 comprises a sleeve 31, a fixed rod 32 fixedly installed on the inner wall of the sleeve 31, a filter screen 33 slidingly connected in the inner cavity of the sleeve 31, the filter screen 33 and the fixed rod 32 are slidingly connected, a first spring 34 is sleeved on the outer surface of the fixed rod 32, the first spring 34 is located between the sleeve 31 and the filter screen 33, the fixed rod 32 end of the side of the first spring 34 close to the compressor body 2, a sliding block 35 is slidingly connected to the upper surface of the sleeve 31, a cleaning mechanism 36 is provided on the outer surface of the sliding block 35, a limiting mechanism 37 is provided on the outer surface of the sliding block 35, a dust collecting mechanism 38 is provided at the bottom end of the filter screen 33, a knocking mechanism 39 is provided on the outer surface of the filter screen 33, and a sliding groove is provided on the upper surface of the sleeve 31, the gas entering the inner cavity of the sleeve 31 is filtered through the filter screen 33, when the filter screen 33 is blocked, the filter screen 33 slides on the fixed rod 32, at this time the filter screen 33 extrudes the first spring 34, driving the sliding block 35 to slide on the upper surface of the sleeve 31, the movement of the sliding block 35 drives the cleaning mechanism 36 to clean the filter screen 33, the limiting mechanism 37 is used to position the cleaning mechanism 36 to facilitate the cleaning mechanism 36 to stably dredge the outer surface of the filter screen 33, the dust collecting mechanism 38 is used to collect impurities generated during cleaning to prevent secondary pollution of impurities, and the knocking mechanism 39 is used to knock the filter screen 33 during cleaning of the filter screen 33, facilitating the impurities adhering to the filter screen 33 to fall down, thereby improving the cleaning effect of the filter screen 33.

[0040] As shown in Figure 4 、 Figure 5 、 Figure 6 and Figure 7As shown, the cleaning mechanism 36 includes a first motor 361, the inner cavity of the slider 35 is slidably connected to the belt 362, the output end of the first motor 361 is sleeved with the belt 362, and a button 363 is provided on the upper surface of the slider 35. The button 363 is electrically connected to the first motor 361, and pressing the button 363 controls the operation of the first motor 361. The bottom end of the slider 35 is fixedly installed with a first fixing bar 364, and the bottom end is rotatably connected to the first rotating rod 365. The belt 362 and the first rotating rod 365 are sleeved, and the first fixing bar 364 is slidably connected to the slide groove on the sleeve 31. The first rotating rod 365 is rotatably connected to the filter 33, and one end of the first rotating rod 365 is fixedly connected to a cleaning brush 366. The cleaning brush 366 and the outer surface of the filter 33 The surface contact, the slider 35 and the sleeve 31 are tightly fitted, the limiting mechanism 37 includes a fixing frame 371, the fixing frame 371 and the sleeve 31 are fixedly connected, the inner cavity of the fixing frame 371 is slidably connected with a clamping rod 372, the outer surface of the clamping rod 372 is sleeved with a second spring 373, the outer surface of the clamping rod 372 is fixedly connected with a fixing ring 374, the second spring 373 is located between the fixing ring 374 and the bottom wall of the fixing frame 371, the bottom end of the clamping rod 372 is movably connected with a rolling ball 375, the upper surface of the slider 35 is provided with a clamping groove 376, the spacing between the clamping groove 376 and the rolling ball 375 is equal, and the clamping groove 376 can be engaged with the rolling ball 375 when the slider 35 slides, the button 363 and the top height of the fixing frame 371 are flush, and the dust collection mechanism 38 includes a dust collection box 381, the dust box 381 and the filter 33 are fixedly connected, the bottom wall of the sleeve 31 is fixedly connected with a connecting block 382, ​​the inner cavity of the dust box 381 is slidably connected with a dust shielding plate 383, the dust shielding plate 383 and the connecting block 382 are fixedly connected, the knocking mechanism 39 includes a connecting ring 391, the connecting ring 391 and the filter 33 are fixedly connected, the side of the connecting ring 391 away from the filter 33 is fixedly connected with a protrusion 392, the protrusions 392 are evenly distributed, the outer surface of the first rotating rod 365 is fixedly installed with a rotating ring 393, the outer surface of the rotating ring 393 is fixedly connected with a first connecting strip 394, the inner cavity of the first connecting strip 394 is provided with a third spring 395, the inner cavity of the first connecting strip 394 is slidably connected with an elastic rod 396, the third spring 3 95 is located between the inner wall of the first connecting strip 394 and the elastic rod 396. The elastic rod 396 is in close contact with the outer surface of the connecting ring 391. The belt 362 is located between the first fixing strip 364 and the first connecting strip 394. When the filter screen 33 is blocked during the process, the resistance of the filter screen 33 increases, causing the filter screen 33 to squeeze the first spring 34. At this time, the filter screen 33 slides in the inner cavity of the sleeve 31, driving the slider 35 to slide on the outer surface of the sleeve 31. The sliding of the slider 35 drives the button 363 to move toward the fixing frame 371. When the slot 376 moves to the ball 375, the elastic force of the second spring 373 drives the fixing ring 374 to move downward, so that the locking rod 372 slides in the inner cavity of the fixing frame 371 to engage the ball 375 and the slot 376.The positions of the slider 35 and the fixing bracket 371 are kept relatively stable, that is, the fixing bracket 371 contacts the button 363 when the filter 33 is blocked. At this time, the button 363 is pressed by force to drive the first motor 361 to work. The operation of the first motor 361 drives the belt 362 to slide in the inner cavity of the slider 35. At this time, the belt 362 drives the first rotating rod 365 to rotate on the first fixing bar 364. The rotation of the first rotating rod 365 drives the cleaning brush 366 to clean the outer surface of the filter 33. When the filter 33 moves, it drives the dust box 381 The movement causes the dust shielding plate 383 to slide in the inner cavity of the dust collecting box 381, so that the dust cleaned by the cleaning brush 366 falls into the inner cavity of the dust collecting box 381. After the filter 33 is cleaned, the ball 375 and the card slot 376 are disengaged from the limit under the elastic force of the first spring 34. At this time, the button 363 and the fixing bracket 371 are disengaged from the first motor 361 and the dust collecting box 381 returns to its original position. At this time, the dust shielding plate 383 blocks the upper end of the dust collecting box 381 to prevent dust and impurities from causing secondary pollution to the sleeve 31 and the compressor body 2. At the same time, when the first rotating rod 365 rotates, the rotating ring 393 is driven to rotate, and the rotating ring 393 rotates to drive the first connecting bar 394 to rotate. The rotation of the first connecting bar 394 drives the elastic rod 396 to move on the connecting ring 391 and the protrusion 392. When the elastic rod 396 contacts the protrusion 392, the elastic rod 396 generates an extrusion force on the third spring 395, driving the elastic rod 396 to contract in the inner cavity of the first connecting bar 394. When the elastic rod 396 passes the protrusion 392, the elastic rod 396 is pressed against the connecting ring 391 under the elastic force of the third spring 395. 1 produces a knocking effect, thereby causing the filter 33 to receive a knocking effect, making it easier for dust and impurities attached to the outer surface of the filter 33 to fall into the inner cavity of the dust collection box 381 for centralized collection, preventing impurities from entering the interior of the compressor body 2 and preventing impurities from accelerating the friction between the piston ring and the cylinder wall inside the compressor body 2, thereby increasing the service life of the compressor body 2. The unblocked filter 33 can increase the gas flow cross-sectional area, achieve an increase in flow rate, and significantly increase the flow rate passing through the compressor body 2 per unit time, thereby improving the working efficiency of the compressor.

[0041] Example 2:

[0042] See also Figure 8 and Figure 9As shown, the cooling assembly 5 includes a cooling box 51, the inner wall of the cooling box 51 near the cooling pipe 4 is fixedly connected to a heat dissipation fin 52, the inner wall of the cooling box 51 is fixedly installed with a water storage barrel 53, the inner wall of the cooling box 51 is fixedly installed with a cooling barrel 54, the bottom end of the water storage barrel 53 is fixedly connected to a first conduit 55, the top between the water storage barrel 53 and the cooling barrel 54 is fixedly connected to a second conduit 56, a cooling mechanism 57 is provided just above the cooling barrel 54, the inner wall of the bottom end of the water storage barrel 53 is provided with a water pump, the water pump and the first conduit 55 are sleeved, and the first conduit 55 and the heat dissipation fin 52 are tightly connected. The gas in the cooling pipe 4 passes through the outer surface of the cooling box 51 and dissipates heat to the cooling pipe 4 on the outer surface of the cooling box 51 through the heat dissipation fins 52. The first conduit 55 is used to keep the heat dissipation of the heat dissipation fins 52. When the temperature of the water in the first conduit 55 rises, it is cooled by the cooling mechanism 57 and then enters the inner cavity of the cooling barrel 54. Then, it flows into the water storage barrel 53 through the second conduit 56 for circulation. The work of the water pump drives the cooled water to flow in the first conduit 55 to keep the heat dissipation of the heat dissipation fins 52, thereby realizing continuous cooling of the cooling pipe 4.

[0043] See also Figure 10 and Figure 11As shown, the cooling mechanism 57 includes a cooling cylinder 571, a second fixing bar 572 is fixedly mounted on the outer surface of the cooling cylinder 571, a shunt pipe 573 is sleeved on the outer surface of the cooling cylinder 571, a rack 574 is slidably connected to the outer surface of the cooling cylinder 571, a second motor 575 is fixedly mounted on the inner wall of the cooling box 51, a second rotating rod 576 is sleeved on the output end of the second motor 575, a buffer mechanism 577 is slidably connected to the inner cavity of the cooling cylinder 571, and a gear 576 is sleeved on the end of the second rotating rod 576 away from the second motor 575. 78, the end of the second fixing bar 572 away from the cooling cylinder 571 is fixedly connected to the inner wall of the cooling box 51, the rack 574 is fixedly connected to the buffer mechanism 577, the gear 578 is meshed with the rack 574, and the half side of the gear 578 is smooth. The end of the first conduit 55 away from the water storage barrel 53 is located directly above the cooling cylinder 571, the bottom end of the cooling cylinder 571 is located in the middle of the cooling barrel 54, and the bottom end of the shunt pipe 573 is located in the upper end inner cavity of the cooling barrel 54. The cooling mechanism 57 is used to cool the water in the first conduit 55. When the first When the water in the conduit 55 falls into the inner cavity of the cooling cylinder 571, the operation of the second motor 575 drives the second rotating rod 576 to rotate, and the rotation of the second rotating rod 576 drives the gear 578 to rotate. Since the half side of the gear 578 is smooth, the rotation of the gear 578 drives the rack 574 to move up and down on the outer surface of the cooling cylinder 571. The reciprocating movement of the rack 574 drives the buffer mechanism 577 to move back and forth, raising the water on the buffer mechanism 577, so that the water in the buffer mechanism 577 can flow into the inner cavity of the diversion pipe 573 into the cooling cylinder 5 4, so that the falling water can fully contact with the air, which is convenient for subsequent recycling. At the same time, the buffer mechanism 577 can have a buffering effect on the falling cooling water, preventing the cooling water from splashing above the buffer mechanism 577. When a lot of water accumulates above the buffer mechanism 577, it can flow from the buffer mechanism 577 into the inner cavity of the cooling barrel 54 for recycling, preventing the heat dissipation effect of the heat dissipation fins 52 from deteriorating, thereby affecting the cooling effect of the compressed gas, and avoiding the water above the cooling cylinder 571 from overflowing and affecting the water circulation cooling.

[0044] See also Figure 12 、 Figure 13 and Figure 14As shown, the buffer mechanism 577 includes a buffer disk 5771, a connecting cylinder 5772 is fixedly installed on the upper surface of the buffer disk 5771, a connecting cylinder 5772 is provided on the outer surface of the connecting cylinder 5772, an axial disk 5774 is slidably connected to the outer surface of the connecting cylinder 5772, a supporting disk 5775 is fixedly installed on the middle part of the buffer disk 5771, the connecting hole 5773 is located between the axial disk 5774 and the buffer disk 5771, a fourth spring 5776 is fixedly connected to the inner wall of the supporting disk 5775, and a sliding seat 5777 is slidably connected to the inner cavity of the supporting disk 5775. The seat 5777 is rotatably connected to the end of the fourth spring 5776 with the second connecting bar 5778, and the end of the second connecting bar 5778 is rotatably connected to the buffer rod 5779 away from the sliding seat 5777. The fourth spring 5776 is located between the inner wall of the support plate 5775 and the sliding seat 5777. The buffer rod 5779 is slidably connected to the buffer rod 5779. The top of the buffer rod 5779 is tightly fitted with the lower surface of the amplitude disk 5774. The buffer disk 5771 is fixedly connected to the rack 574. The buffer disk 5771 and the amplitude disk 5774 are both tightly fitted with the inner wall of the cooling cylinder 571. The buffer plate 5771 and the activating plate 5774 are both slidably connected to the cooling cylinder 571. When the water in the first conduit 55 falls into the cooling cylinder 571, it will be collected above the buffer mechanism 577. During the falling process, the activating plate 5774 will squeeze the buffer rod 5779. At this time, the buffer rod 5779 moves downward to drive the second connecting bar 5778 to rotate. The rotation of the second connecting bar 5778 drives the slide 5777 to slide in the inner cavity of the support plate 5775 and squeeze the fourth spring 5776, so that the connection of the activating plate 5774 on the buffer plate 5771 is The cylinder 5772 slides, so that the flexural disk 5774 has a buffering effect in the inner cavity of the cooling cylinder 571, preventing the cooling water from splashing when falling. In addition, when there is more water on the flexural disk 5774, the overall weight of the flexural disk 5774 increases, causing the position of the flexural disk 5774 sliding up and down on the connecting cylinder 5772 to increase. At this time, the connecting hole 5773 is exposed above the flexural disk 5774, and the water can be divided into streams through the connecting hole 5773 and fall from the bottom of the buffer disk 5771 into the inner cavity of the cooling barrel 54 for collection, thereby avoiding water overflow on the cooling cylinder 571 and achieving a good water cooling cycle.

[0045] In summary, the gas entering the compressor body 2 is filtered by the filter assembly 3 to prevent the friction between the piston ring and the cylinder wall of the compressor body 2 when compressing the gas. The cooling pipe 4 is used to transport the compressed gas, and the cooling assembly 5 is used to cool the compressed gas for subsequent transportation and use. The gas entering the compressor body 2 is filtered by the filter assembly 3 to prevent the friction between the piston ring and the cylinder wall of the compressor body 2 when compressing the gas. The cooling pipe 4 is used to transport the compressed gas, and the cooling assembly 5 is used to cool the compressed gas for subsequent transportation and use. The cooling pipe 4 on the outer surface of the cooling box 51 is dissipated by the heat dissipation fins 52. The first conduit 55 is used to keep the heat dissipation of the heat dissipation fins 52. When the temperature of the water in the first conduit 55 rises, it is cooled by the cooling mechanism 57 and enters the inner cavity of the cooling barrel 54. Then, it flows into the water storage barrel 53 through the second conduit 56 for circulation. The cooled water is driven by the work of the water pump to flow in the first conduit 55 to keep the heat dissipation of the heat dissipation fins 52, thereby achieving continuous cooling of the cooling pipe 4.

[0046] Obviously, those skilled in the art may make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if such changes and modifications fall within the scope of the claims and their equivalents, the present invention is intended to include such changes and modifications.

[0047] The above is only a preferred specific implementation method of the embodiment of the present application, but the scope of protection of the present application is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes based on the technical solution and concept of the present application within the technical scope disclosed in the present application, and they should be covered by the scope of protection of the present application.

Claims

1. A compressor cooling system for conveying corrosive gas, comprising a base (1) and a compressor body (2), characterized in that: A compressor body (2) is fixedly mounted on the upper surface of the base (1), a filter assembly (3) is provided at one end of the compressor body (2), a cooling pipe (4) is fixedly connected to one end of the compressor body (2) away from the filter assembly (3), a cooling assembly (5) is provided on the upper surface of the base (1), and the outer surfaces of the cooling pipe (4) and the cooling assembly (5) are tightly fitted; The cooling assembly (5) includes a cooling box (51), the inner wall of the cooling box (51) close to the cooling pipe (4) is fixedly connected to a heat dissipation fin (52), the inner wall of the cooling box (51) is fixedly mounted with a water storage barrel (53), the inner wall of the cooling box (51) is fixedly mounted with a cooling barrel (54), the bottom end of the water storage barrel (53) is fixedly connected to a first conduit (55), the top end between the water storage barrel (53) and the cooling barrel (54) is fixedly connected to a second conduit (56), and a cooling mechanism (57) is provided directly above the cooling barrel (54).

2. A compressor cooling system for conveying corrosive gas according to claim 1, characterized in that: A water pump is provided on the inner wall of the bottom end of the water storage barrel (53); the water pump is sleeved with the first conduit (55); and the first conduit (55) is tightly fitted with the heat dissipation fins (52).

3. A compressor cooling system for conveying corrosive gas according to claim 1, characterized in that: The cooling mechanism (57) includes a cooling cylinder (571), a second fixing bar (572) is fixedly mounted on the outer surface of the cooling cylinder (571), a shunt pipe (573) is sleeved on the outer surface of the cooling cylinder (571), a rack (574) is slidably connected to the outer surface of the cooling cylinder (571), a second motor (575) is fixedly mounted on the inner wall of the cooling box (51), a second rotating rod (576) is sleeved on the output end of the second motor (575), a buffer mechanism (577) is slidably connected to the inner cavity of the cooling cylinder (571), and a gear (578) is sleeved on the end of the second rotating rod (576) away from the second motor (575).

4. A compressor cooling system for conveying corrosive gas according to claim 3, characterized in that: The end of the second fixing bar (572) away from the cooling cylinder (571) is fixedly connected to the inner wall of the cooling box (51), the rack (574) and the buffer mechanism (577) are fixedly connected, the gear (578) and the rack (574) are meshed, and half of the gear (578) is smooth. The end of the first conduit (55) away from the water storage barrel (53) is located directly above the cooling cylinder (571), the bottom end of the cooling cylinder (571) is located in the middle of the cooling barrel (54), and the bottom end of the diversion pipe (573) is located in the upper end inner cavity of the cooling barrel (54).

5. A compressor cooling system for conveying corrosive gas according to claim 4, characterized in that: The buffer mechanism (577) includes a buffer disk (5771), a connecting tube (5772) is fixedly mounted on the upper surface of the buffer disk (5771), a connecting hole (5773) is provided on the outer surface of the connecting tube (5772), an axial disk (5774) is slidably connected to the outer surface of the connecting tube (5772), a supporting disk (5775) is fixedly mounted on the middle portion of the buffer disk (5771), the connecting hole (5773) is located between the axial disk (5774) and the buffer disk (5771), a fourth spring (5776) is fixedly mounted on the inner wall of the supporting disk (5775), a sliding seat (5777) is slidably connected to the inner cavity of the supporting disk (5775), and the sliding seat (5777) is away from the fourth spring (5776). ) is rotatably connected to a second connecting bar (5778), and the end of the second connecting bar (5778) away from the slide (5777) is rotatably connected to a buffer rod (5779), and the fourth spring (5776) is located between the inner wall of the support plate (5775) and the slide (5777), and the buffer rod (5779) and the buffer rod (5779) are slidably connected, and the top end of the buffer rod (5779) is tightly fitted with the lower surface of the axially movable plate (5774), and the buffer plate (5771) and the rack (574) are fixedly connected, and the buffer plate (5771) and the axially movable plate (5774) are both tightly fitted with the inner wall of the cooling cylinder (571), and the buffer plate (5771) and the axially movable plate (5774) are both slidably connected to the cooling cylinder (571).

6. A compressor cooling system for conveying corrosive gas according to claim 1, characterized in that: The filter assembly (3) comprises a sleeve (31), a fixing rod (32) is fixedly mounted on the inner wall of the sleeve (31), a filter screen (33) is slidably connected to the inner cavity of the sleeve (31), the filter screen (33) and the fixing rod (32) are slidably connected, a first spring (34) is sleeved on the outer surface of the fixing rod (32), the first spring (34) is located between the sleeve (31) and the filter screen (33), the first spring (34) is close to the end of the fixing rod (32) on one side of the compressor body (2), a slider (35) is slidably connected to the upper surface of the sleeve (31), a cleaning mechanism (36) is provided on the outer surface of the slider (35), a limiting mechanism (37) is provided on the outer surface of the slider (35), a dust collecting mechanism (38) is provided at the bottom end of the filter screen (33), a knocking mechanism (39) is provided on the outer surface of the filter screen (33), and a sliding groove is provided on the upper surface of the sleeve (31).

7. A compressor cooling system for conveying corrosive gas according to claim 6, characterized in that: The cleaning mechanism (36) includes a first motor (361), an inner cavity of the slider (35) is slidably connected to a belt (362), an output end of the first motor (361) and the belt (362) are sleeved, a button (363) is provided on the upper surface of the slider (35), the button (363) and the first motor (361) are electrically connected, and pressing the button (363) controls the operation of the first motor (361), and a first fixing bar (363) is fixedly installed at the bottom end of the slider (35). 4) is rotatably connected to a first rotating rod (365), the belt (362) and the first rotating rod (365) are sleeved, the first fixing bar (364) and the slide groove on the sleeve (31) are slidably connected, the first rotating rod (365) and the filter (33) are rotatably connected, one end of the first rotating rod (365) is fixedly connected to a cleaning brush (366), the cleaning brush (366) is in contact with the outer surface of the filter (33), and the slider (35) and the sleeve (31) are tightly fitted.

8. A compressor cooling system for conveying corrosive gas according to claim 7, characterized in that: The limiting mechanism (37) includes a fixing frame (371), the fixing frame (371) and the sleeve (31) are fixedly connected, the inner cavity of the fixing frame (371) is slidably connected to a clamping rod (372), the outer surface of the clamping rod (372) is sleeved with a second spring (373), the outer surface of the clamping rod (372) is fixedly connected to a fixing ring (374), the second spring (373) is located between the fixing ring (374) and the bottom wall of the fixing frame (371), the bottom end of the clamping rod (372) is movably connected to a rolling ball (375), the upper surface of the slider (35) is provided with a clamping groove (376), the spacing between the clamping groove (376) and the rolling ball (375) is equal, and the clamping groove (376) can be engaged with the rolling ball (375) when the slider (35) slides, and the top of the button (363) and the fixing frame (371) are flush with each other.

9. A compressor cooling system for conveying corrosive gas according to claim 8, characterized in that: The dust collecting mechanism (38) comprises a dust collecting box (381), the dust collecting box (381) and the filter (33) are fixedly connected, the bottom wall of the sleeve (31) is fixedly connected to a connecting block (382), the inner cavity of the dust collecting box (381) is slidably connected to a dust shielding plate (383), and the dust shielding plate (383) and the connecting block (382) are fixedly connected.

10. A compressor cooling system for conveying corrosive gas according to claim 9, characterized in that: The knocking mechanism (39) includes a connecting ring (391), the connecting ring (391) and the filter (33) are fixedly connected, a protrusion (392) is fixedly connected to the side of the connecting ring (391) away from the filter (33), and the protrusions (392) are evenly distributed. The outer surface of the first rotating rod (365) is fixedly mounted with a rotating ring (393), and the outer surface of the rotating ring (393) is fixedly connected to a first connecting bar (394). The inner cavity of the first connecting bar (394) is provided with a third spring (395), and the inner cavity of the first connecting bar (394) is slidably connected to an elastic rod (396), the third spring (395) is located between the inner wall of the first connecting bar (394) and the elastic rod (396), and the elastic rod (396) is in close contact with the outer surface of the connecting ring (391). The belt (362) is located between the first fixed bar (364) and the first connecting bar (394).