Anti-overheating air compressor station
By installing plug-in filters and a coolant circulation system in the air compressor station, the problems of difficult filter replacement and frequent air conditioner malfunctions are solved, achieving convenient filter replacement and low-cost cooling system maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANXI GUOKE ENERGY SAVING
- Filing Date
- 2025-05-28
- Publication Date
- 2026-05-15
AI Technical Summary
The filters in existing air compressor stations are not easy to replace, and the air conditioning cooling system is prone to failure and has high maintenance costs.
A plug-in filter is installed in the vent, and the coolant is driven by the pump to circulate between the coolant pipe and the heat sink, forming a simple cooling circulation system. Combined with the fan, the air in the air compressor room is circulated and cooled.
The filter is easy to replace, and the cooling system is easy and inexpensive to maintain, achieving an effective cooling effect for the air compressor.
Smart Images

Figure CN224245029U_ABST
Abstract
Description
Technical Field
[0001] This utility model provides an air compressor station that is protected against overheating, belonging to the technical field of heat dissipation devices for air compressors. Background Technology
[0002] An air compressor station is a power facility used to provide compressed air. It consists of one or more air compressors, air tanks, dryers, filters, and related control and distribution systems. The air compressor compresses ambient air into high-pressure gas, which is then purified and dried before being delivered to various points of use through a pipeline network.
[0003] Existing air compressor stations are all located inside air compressor rooms. They rely on their own cooling systems, along with ventilation fans and air conditioners installed in the air compressor room, to achieve cooling. However, the ventilation fans cause air exchange between the inside and outside of the air compressor room. Although this can cool the room to some extent, the effect is not very good. Furthermore, the air exchange can easily cause the environment inside and outside the room to become interconnected. To prevent dust, powder, and other impurities from entering the air compressor room, filters are used. However, current filters are fixed with bolts, making them difficult to replace. Air conditioners need to be run for extended periods, which can easily lead to malfunctions and high repair costs. Utility Model Content
[0004] The technical problem this utility model aims to solve is that when air compressor stations are used in air compressor rooms, the filter is inconvenient to replace when using ventilation fans for heat dissipation, and when using air conditioning for heat dissipation, it is prone to failure and has high maintenance costs.
[0005] To solve the above problems, the proposed technical solution is as follows: an air compressor station with overheat protection, comprising an air compressor body and an air compressor room; ventilation openings are provided on both sides of the air compressor room, a fan is provided in the ventilation opening, an installation groove is provided on the inner side of the ventilation opening, a filter screen is provided in the installation groove, and several coolant pipes are provided in the air compressor room, one end of the several coolant pipes is connected to a coolant tank, the coolant tank is connected to a heat sink, the heat sink is connected to a pump body, and the pump body is connected to the other end of the several coolant pipes.
[0006] As an improvement, the upper surface of the air compressor room is a slope, the outer edge of which extends beyond the perimeter of the air compressor room, and a hinged door is provided on the front.
[0007] As an improvement, the vent is circular in shape, and the mounting groove is U-shaped;
[0008] As an improvement, one fan blows air into the air compressor room, and the other fan blows air out of the air compressor room;
[0009] As an improvement, the coolant pipe located in the air compressor room is fitted to the air compressor body located in the air compressor room;
[0010] As an improvement, the coolant tank connects the middle and upper parts of the heat sink, and the middle and lower parts of the heat sink connect the pump body.
[0011] As an improvement, the heat sink is located at the rear of the air compressor room.
[0012] The beneficial effects of this utility model are:
[0013] By setting an installation groove inside the vent and installing a plug-in filter screen in the groove, the filter screen is easy to replace. By setting a pump body in the air compressor room, the coolant in the coolant tank is driven to circulate between the coolant pipe and the heat sink. This allows the coolant to cool the air compressor body while in the air compressor room. After absorbing heat, the coolant is cooled by the heat sink and then cools the air compressor body again, thus forming a cycle. This cooling structure is relatively simple, and the pump body is easy to maintain and has low cost. Attached Figure Description
[0014] Figure 1 This is a structural schematic diagram of an air compressor station designed to prevent overheating according to this utility model.
[0015] Figure 2 This is a schematic diagram of the internal structure of the air compressor room of an air compressor station designed to prevent overheating, according to this utility model. Figure 1 .
[0016] Figure 3 This is a schematic diagram of the internal structure of the air compressor room of an air compressor station designed to prevent overheating, according to this utility model. Figure 2 .
[0017] Figure 4 This is a schematic diagram showing the position of the one-way valve in an air compressor station designed to prevent overheating, according to this utility model.
[0018] 1. Air compressor body; 2. Air compressor room; 201. Door; 3. Ventilation opening; 4. Fan; 5. Mounting slot; 6. Filter screen; 7. Coolant pipe; 701. Check valve; 8. Coolant tank; 9. Radiator plate; 10. Pump body. Detailed Implementation
[0019] The present invention will be further described below with reference to the accompanying drawings.
[0020] according to Figure 1 —4 shows: This utility model provides an air compressor station that is protected against overheating: including an air compressor body 1 and an air compressor room 2; the upper surface of the air compressor room 2 is a slope, the outer edge of the slope extends beyond the four sides of the air compressor room 2, and a hinged door 201 is provided on the front; the air compressor room 2 is the room where the air compressor 1 is installed, and the design of the slope and the door are existing.
[0021] The air compressor room 2 has ventilation openings 3 on both sides, each with a fan 4 inside. The inner side of each ventilation opening 3 has a mounting groove 5, which contains a plug-in filter 6. The ventilation opening 3 is circular, and the mounting groove 5 is U-shaped. One fan 4 blows air into the air compressor room 2, while the other fan 4 blows air out of the air compressor room 2. By activating both fans 4, the air inside the air compressor room 2 can be circulated. The filter 6 prevents dust from entering, and the U-shaped mounting groove 5 allows the filter 6 to be easily removed for cleaning or replacement.
[0022] The air compressor room 2 is equipped with several coolant pipes 7 passing through it. One end of each coolant pipe 7 is connected to a coolant tank 8, which in turn is connected to a heat sink 9. The heat sink 9 is connected to a pump body 10, which is connected to the other end of the coolant pipes 7. A one-way valve 701 is provided at the end of each coolant pipe 7 near the coolant tank 8 to prevent coolant backflow. The coolant pipes 7 located in the air compressor room 2 are fitted against the air compressor body 1, which is also located within the air compressor room 2. The coolant tank 8 connects the middle and upper parts of the heat sink 9. The middle and lower parts of the heat sink 9 are connected to the pump body 10; the heat sink 9 is located at the rear of the air compressor room 2; in this way, by starting the pump body 10, the coolant in the coolant tank 8 can circulate between the coolant pipe 7 and the heat sink 9, so that the coolant can cool the air compressor body 1 when it is in the air compressor room 2. After absorbing heat, the coolant will be cooled down by the heat sink 9 and then cool the air compressor body 1 again, thus forming a cycle. This cooling structure is relatively simple, and the pump body 10 is easy to maintain and has low cost.
[0023] The principle of this invention is as follows: During use, two fans 4 and the pump body 10 are started simultaneously. One fan 4 delivers outside air into the air compressor room 2, while the other fan 4 exhausts the air inside the air compressor room 2, creating a circulation of air within the air compressor room 2. This cools the air compressor body 1. Simultaneously, the filter screen 6 blocks dust from the air. After a period of time, a significant amount of dust accumulates on the filter screen 6. At this point, the filter screen 6 can be removed from the air compressor room 2 for cleaning or replacement. The pump body 10 circulates the coolant in the coolant tank 8 between the coolant pipe 7 and the heat sink 9, allowing the coolant to cool the air compressor body 1 within the air compressor room 2. After absorbing heat, the coolant is cooled by the heat sink 9 and then cools the air compressor body 1 again, thus creating a circulation. This cooling structure is relatively simple, and the pump body 10 is easy to maintain and has low cost.
[0024] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the inventive spirit of the present invention, such designs should fall within the protection scope of the present invention.
Claims
1. An air compressor station protected against overheating, comprising an air compressor body (1) and an air compressor room (2); characterized in that: The air compressor room (2) is provided with ventilation openings (3) on both sides. A fan (4) is provided in the ventilation opening (3). An installation groove (5) is provided inside the ventilation opening (3). A filter screen (6) is installed in the installation groove (5). Several coolant pipes (7) pass through the air compressor room (2). One end of several coolant pipes (7) is connected to a coolant tank (8). The coolant tank (8) is connected to a heat sink (9). The heat sink (9) is connected to a pump body (10). The pump body (10) is connected to the other end of several coolant pipes (7).
2. The overheat-resistant air compressor station according to claim 1, characterized in that: The upper surface of the air compressor room (2) is a slope, and the outer edge of the slope extends beyond the four sides of the air compressor room (2). A hinged door (201) is provided on the front.
3. The overheat-resistant air compressor station according to claim 1, characterized in that: The vent (3) is circular in shape, and the mounting groove (5) is U-shaped.
4. The overheat-resistant air compressor station according to claim 1, characterized in that: One fan (4) blows air into the air compressor room (2), and the other fan (4) blows air out of the air compressor room (2).
5. The overheat-resistant air compressor station according to claim 1, characterized in that: The coolant pipe (7) is equipped with a one-way valve (701) to prevent coolant backflow at one end near the coolant tank (8).
6. The overheat-resistant air compressor station according to claim 1, characterized in that: The coolant pipe (7) located in the air compressor room (2) is attached to the air compressor body (1) located in the air compressor room (2).
7. The overheat-resistant air compressor station according to claim 1, characterized in that: The coolant tank (8) is connected to the middle and upper part of the heat sink (9), and the middle and lower part of the heat sink (9) are connected to the pump body (10).
8. An overheat-resistant air compressor station according to claim 1, characterized in that: The heat sink (9) is located behind the air compressor room (2).