Material suction machine with cooling function

By introducing a cooling function into the suction machine, using a cyclone separator and filter to separate dust, and using a cooler to reduce the return air temperature, the problem of exhaust pollution from the suction machine is solved, ensuring environmental protection and equipment cleanliness.

CN223530163UActive Publication Date: 2025-11-11GUANGZHOU WENSUI PLASTICS MACHINERY
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Patent Information

Application Number
CN202423118202.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-11-11
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

Existing suction machines discharge gaseous grease during the exhaust process, polluting the environment and damaging the internal structure of the high-pressure air pump.

Method used

The design incorporates a cooling system for the suction machine, which utilizes a high-pressure air pump, dust collection bin, cyclone separator, and filter. Dust is removed through cyclone dust removal and filter separation, while the cooler lowers the return air temperature and precipitates liquid waste oil and wastewater, ensuring that the discharged gas is clean and pollution-free.

Benefits of technology

It effectively removes dust and grease from the return air, protects the high-pressure air pump, prevents environmental pollution, and keeps the equipment clean.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223530163U_ABST
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Abstract

The utility model relates to the technical field of material suction machines, and discloses a material suction machine with a cooling function, which comprises a high-pressure air pump and a dust collection barrel, a dust collection barrel cover is arranged at the top of the dust collection barrel, the dust collection barrel cover is connected with the dust collection barrel in a buckling way through a buckle, negative pressure is generated through the high-pressure air pump, return air with heat of other equipment is absorbed into the dust collection barrel, and the cooling function is realized. Most dust is separated from the dust collecting barrel through the cyclone dust removal principle and falls into the dust barrel, secondary filtering is conducted through the filter below the dust collecting barrel cover, clean return air with heat is obtained, the return air enters the cooler through the first high-temperature hose, the temperature is lowered through the liquefaction principle, the return air with heat is instantly cooled, and the air is cooled through the air inlet pipe. Liquid waste oil and waste water are separated out from return air, clean return air is sucked by the high-pressure air pump from the second high-temperature hose and then discharged, and it is ensured that the discharged return air is clean and does not pollute the environment or pollute the internal structure of the high-pressure air pump.
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Description

Technical Field

[0001] This utility model relates to the field of material suction machine technology, specifically a material suction machine with cooling function. Background Technology

[0002] The application of injection molding products is becoming more and more widespread and involves more and more fields. Since the suction machine operates on the principle of negative pressure, some of the raw materials sucked up may release gaseous grease, which is then discharged directly from the exhaust port of the suction machine. However, direct discharge will cause environmental pollution. At the same time, the airflow containing grease can also easily contaminate the internal structure of the high-pressure air pump after entering it. Utility Model Content

[0003] The purpose of this invention is to provide a material suction machine with a cooling function to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a material suction machine with cooling function, including a high-pressure air pump and a dust collection bin. The top of the dust collection bin is provided with a dust collection bin cover, which is connected to the dust collection bin by a snap fastener. A feed pipe assembly is connected to the dust collection bin, and a dust bin is connected to the bottom of the dust collection bin. The dust collection bin and the dust bin are connected by a snap fastener. A high-temperature hose is fixedly connected to the top of the dust collection bin cover, and the interior of the high-temperature hose is connected to the interior of the dust collection bin. A cooler is provided in front of the high-pressure air pump. The end of the high-temperature hose away from the dust collection bin cover is connected to the air inlet of the cooler. A high-temperature hose is connected to the air outlet of the cooler, and the end of the high-temperature hose away from the cooler is connected to the air inlet of the high-pressure air pump.

[0005] Furthermore, a cyclone separator is installed inside the dust collection bin, and a filter is installed under the dust collection bin lid.

[0006] Furthermore, a base is provided below the high-pressure air pump, the high-pressure air pump is fixedly connected to the base, the cooler is fixedly installed on the base, a column is fixedly installed on the top of the base, and the dust collection bin is fixedly installed on the column.

[0007] Furthermore, an electrical control box is fixedly installed on the top of the column. The electrical control box is located on the right side of the dust collection bin, and gaps are left between the electrical control box and the dust collection bin, the high-pressure air pump, and the cooler.

[0008] Furthermore, a cooling water inlet and a cooling water outlet are provided on one side of the cooler, and both the cooling water inlet and the cooling water outlet are connected to the workshop cooling water pipeline network.

[0009] Furthermore, a drain pipe is connected to the bottom drain outlet of the cooler, and a wastewater discharge outlet is connected to the left end of the drain pipe. The wastewater discharge outlet is fixedly installed on the outer wall of the cooler.

[0010] Compared with the prior art, the beneficial effects of this utility model are:

[0011] 1. A negative pressure is generated by a high-pressure air pump to draw the hot return air from other equipment into the dust collection bin. The dust collection bin separates most of the dust using the cyclone dust removal principle, and the dust falls into the ash bin. Then, it undergoes secondary filtration through the filter under the dust collection bin lid to obtain clean, hot return air. The return air enters the cooler through the first high-temperature hose. Using the liquefaction principle, the temperature is reduced, and the hot return air is instantly cooled, causing liquid waste oil and wastewater to be released from the return air. The clean return air is then drawn into the high-pressure air pump through the second high-temperature hose and then discharged, ensuring that the discharged return air is clean and will not pollute the environment or the internal structure of the high-pressure air pump.

[0012] 2. Cold water from the workshop's cooling water network is introduced into the cooler through the cooling water inlet. The cold water exchanges heat with the return air entering the cooler, thereby cooling the return air. The cold water that has participated in the heat exchange is then introduced back into the workshop's cooling water network through the cooling water outlet, so that the cold water in the cooler circulates and ensures that the return air can be continuously cooled. Attached Figure Description

[0013] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0014] Figure 2 This utility model Figure 1 A structural diagram of the front view;

[0015] Figure 3 This utility model Figure 1 Left perspective view;

[0016] Figure 4 This utility model Figure 1 A schematic diagram of the enlarged structure at point A.

[0017] In the diagram: 1. Dust collection bin cover; 101. Filter; 2. Buckle 1; 3. Dust collection bin; 4. Feed pipe assembly; 5. Buckle 2; 6. Ash bin; 7. Electrical control box; 8. High-temperature hose 1; 9. Cooler; 10. High-temperature hose 2; 11. Cooling water inlet; 12. Cooling water outlet; 13. Wastewater discharge outlet; 1301. Drain pipe; 14. Base; 15. High-pressure air pump; 16. Column. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0019] Please see Figures 1-4 This utility model provides a technical solution: a suction machine with a cooling function, including a high-pressure air pump 15 and a dust collection bin 3. A dust collection bin cover 1 is provided on the top of the dust collection bin 3, and the dust collection bin cover 1 is snapped to the dust collection bin 3 via a first buckle 2. A feed pipe assembly 4 is connected to the dust collection bin 3, and a dust bin 6 is connected to the bottom of the dust collection bin 3. The dust collection bin 3 and the dust bin 6 are snapped together via a second buckle 5. A high-temperature hose 8 is fixedly connected to the top of the dust collection bin cover 1, and the interior of the high-temperature hose 8 is connected to the interior of the dust collection bin 3. A cooler 9 is provided in front of the high-pressure air pump 15. The end of the high-temperature hose 8 away from the dust collection bin cover 1 is connected to the air inlet of the cooler 9. A high-temperature hose 10 is connected to the air outlet of the cooler 9, and the end of the high-temperature hose 10 away from the cooler 9 is connected to the high-pressure air pump 15. The air inlet is connected, and a cyclone separator is installed inside the dust collection bin 3. A filter 101 is installed under the dust collection bin cover 1. The high-pressure air pump 15 generates negative pressure to draw the hot return air from other equipment into the dust collection bin 3. The dust collection bin 3 separates most of the dust through the cyclone dust removal principle and it falls into the ash bin 6. Then, it undergoes secondary filtration through the filter 101 under the dust collection bin cover 1 to obtain clean, hot return air. The return air enters the cooler 9 through the high-temperature hose 1 8. The temperature is reduced by the liquefaction principle, and the hot return air is instantly cooled, causing liquid waste oil and wastewater to be released from the return air. The clean return air is drawn into the high-pressure air pump 15 through the high-temperature hose 2 10 and then discharged, ensuring that the discharged return air is clean and will not pollute the environment or the internal structure of the high-pressure air pump 15.

[0020] A base 14 is provided below the high-pressure air pump 15. The high-pressure air pump 15 is fixedly connected to the base 14. The cooler 9 is fixedly installed on the base 14. A column 16 is fixedly installed on the top of the base 14. The dust collection bin 3 is fixedly installed on the column 16. The base 14 is set up to fix the high-pressure air pump 15 and the cooler 9. The column 16 is set up to fix the dust collection bin 3.

[0021] An electrical control box 7 is fixedly installed on the top of the column 16. The electrical control box 7 is located on the right side of the dust collection bin 3, and there are gaps between the electrical control box 7 and the dust collection bin 3, the high-pressure air pump 15, and the cooler 9. The electrical control box 7 is used to control the various electrical devices and to supply power to the various electrical devices.

[0022] Cooler 9 is provided with a cooling water inlet 11 and a cooling water outlet 12 on one side. Both the cooling water inlet 11 and the cooling water outlet 12 are connected to the workshop cooling water pipeline network. The cooling water in the workshop cooling water pipeline network is input into the cooler 9 through the cooling water inlet 11. The cooling water exchanges heat with the return air entering the cooler 9, thereby cooling the return air. The cooling water that has participated in the heat exchange is introduced back into the workshop cooling water pipeline network through the cooling water outlet 12, so that the cooling water in the cooler 9 circulates and can continuously cool the return air.

[0023] A drain pipe 1301 is connected to the bottom drain outlet of the cooler 9. A wastewater drain outlet 13 is connected to the left end of the drain pipe 1301. The wastewater drain outlet 13 is fixedly installed on the outer wall of the cooler 9. Liquid waste oil and wastewater that are separated in the return air drip onto the bottom inner wall of the cooler 9, and then flow into the wastewater drain outlet 13 along the drain pipe 1301, and then are discharged from the wastewater drain outlet 13.

[0024] Working principle: During use, open the valves at the cooling water inlet 11 and cooling water outlet 12, allowing the workshop cooling water network to enter the cooler 9 from the cooling water inlet 11 and then flow back into the workshop cooling water network from the cooling water outlet 12, allowing the cold water to circulate within the cooler 9. Turn on the high-pressure air pump 15 to generate negative pressure, drawing the hot air from other equipment into the dust collection bin 3. The dust collection bin 3 uses a cyclone dust removal principle to separate most of the dust, which falls into the ash bin 6. The dust then undergoes secondary filtration through the filter 101 under the dust collection bin cover 1, resulting in clean, cool air. The return air enters the cooler 9 through the high-temperature hose 8. At this time, the circulating cold water in the cooler 9 cools the return air, instantly cooling the hot return air, causing liquid waste oil and wastewater to precipitate in the return air. The clean return air is sucked in by the high-pressure air pump 15 through the high-temperature hose 10 and then discharged, ensuring that the discharged return air is clean and will not pollute the environment or the internal structure of the high-pressure air pump 15. The liquid waste oil and wastewater precipitated in the cooler 9 drips onto the inner wall of the bottom of the cooler 9, and then flows into the wastewater discharge port 13 along the drain pipe 1301, and is then discharged from the wastewater discharge port 13.

[0025] Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

Claims

1. A suction feeder with cooling function, comprising a high-pressure air pump (15) and a dust collection bin (3), characterized in that: The top of the dust collection bin (3) is provided with a dust collection bin cover (1), which is connected to the dust collection bin (3) by a buckle (2). The dust collection bin (3) is connected to a feed pipe assembly (4), and the bottom of the dust collection bin (3) is connected to a ash bin (6). The dust collection bin (3) and the ash bin (6) are connected by a buckle (5). The top of the dust collection bin cover (1) is fixedly connected to a high-temperature hose (8), which is connected to the inside of the dust collection bin (3). A cooler (9) is provided in front of the high-pressure air pump (15). The end of the high-temperature hose (8) away from the dust collection bin cover (1) is connected to the air inlet of the cooler (9). The air outlet of the cooler (9) is connected to a high-temperature hose (10), which is connected to the air inlet of the high-pressure air pump (15).

2. The suction feeder with cooling function according to claim 1, characterized in that: The dust collection bin (3) is equipped with a cyclone separator inside, and a filter (101) is installed under the dust collection bin cover (1).

3. The suction feeder with cooling function according to claim 1, characterized in that: A base (14) is provided below the high-pressure air pump (15). The high-pressure air pump (15) is fixedly connected to the base (14). The cooler (9) is fixedly installed on the base (14). A column (16) is fixedly installed on the top of the base (14). The dust collection bin (3) is fixedly installed on the column (16).

4. The suction feeder with cooling function according to claim 3, characterized in that: An electrical control box (7) is fixedly installed on the top of the column (16). The electrical control box (7) is located on the right side of the dust collection bin (3), and there are gaps between the electrical control box (7) and the dust collection bin (3), the high-pressure air pump (15), and the cooler (9).

5. The suction feeder with cooling function according to claim 1, characterized in that: The cooler (9) is provided with a cooling water inlet (11) and a cooling water outlet (12) on one side, and both the cooling water inlet (11) and the cooling water outlet (12) are connected to the workshop cooling water pipeline network.

6. The suction feeder with cooling function according to claim 1, characterized in that: The bottom drain of the cooler (9) is connected to a drain pipe (1301), and the left end of the drain pipe (1301) is connected to a wastewater drain outlet (13), which is fixedly installed on the outer wall of the cooler (9).