Cooling device for producing metal working fluid
By designing a cooling device with cooling and filtering components, the problem of low cooling efficiency of existing cooling devices in high-temperature environments is solved, achieving high-efficiency cooling and durability, and making it suitable for cooling metalworking fluids.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUXI JUNTELAI EQUIP MFG CO LTD
- Filing Date
- 2025-05-15
- Publication Date
- 2026-04-17
AI Technical Summary
Existing cooling devices struggle to quickly and effectively reduce the temperature of metalworking fluids under high ambient temperatures, impacting cooling efficiency and device performance.
A cooling device comprising a cooling component and a filtering component is designed. The cooling component extends the airflow path to reduce the air temperature through a hollow frustum structure cooling block and a spiral groove structure. The filtering component improves the filtration effect through a detachable pyramidal mesh filter plate.
It improves the cooling efficiency of metalworking fluids, enhances the durability of the equipment, facilitates dust cleaning, and ensures effective cooling in high-temperature environments.
Smart Images

Figure CN224136220U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of metalworking fluid production technology, specifically a cooling device for producing metalworking fluid. Background Technology
[0002] Metalworking fluid is a liquid that plays an auxiliary role in metal processing. Its main functions include lubrication, rust prevention, cooling, and cleaning. It is widely used in various metal processing scenarios, such as cutting, grinding, and stamping, and can significantly improve processing efficiency and quality.
[0003] A cooling device for producing metalworking fluid, as disclosed in Chinese Utility Model Patent Publication No. CN213515158U, includes a housing and a fan. A liquid storage tank is located on the left side of the housing, with an inlet pipe connected to the upper left end of the tank. A first delivery pipe is connected to the right side of the tank. A water pump is fixedly installed on the upper left side of the housing, with its left side connected to the end of the first delivery pipe. A second delivery pipe is connected to the right side of the water pump, with the end of the second delivery pipe penetrating the housing and connecting to a nozzle. A straight pipe is connected to the left side of the fan, penetrating the right side of the housing on its left side. An outlet pipe is connected to the upper right side of the housing. This utility model effectively reduces energy consumption and improves cooling efficiency through the nozzle on the second delivery pipe and the straight pipe on the fan, making it practical and suitable for widespread promotion and use.
[0004] In the production process of metalworking fluids, cooling devices are required to cool the fluids. However, existing cooling devices often use fans to drive ambient air to accelerate the airflow over the surface of the metalworking fluid, thus carrying away heat from the fluid. However, the air temperature is affected by the ambient temperature. When the ambient temperature is high, the temperature difference between the air and the metalworking fluid becomes small, making it difficult to cool the fluid quickly. This reduces the cooling efficiency of the metalworking fluid and also affects the effectiveness of the cooling device. Utility Model Content
[0005] The purpose of this invention is to provide a cooling device for producing metalworking fluids, so as to solve the problems mentioned in the prior art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a cooling device for producing metalworking fluid, comprising a cooling device body and a cooling assembly for cooling the metalworking fluid; the cooling device body includes a fan body, an inlet pipe, an outlet pipe, and a support frame; the inlet pipe is fixed to the inlet end of the fan body; the outlet pipe is fixed to the outlet end of the fan body, and the outlet pipe has a plurality of outlets; at least two support frames are symmetrically fixed to the inlet pipe and the outlet pipe; the cooling assembly is arranged on the outlet of the outlet pipe; the cooling assembly includes a cooling block and a cooling groove; the cooling block is fixed to the outlet of the outlet pipe; the cooling block has a plurality of cooling grooves arranged in a ring array within it.
[0007] Preferably, the cooling block has a hollow frustum structure, and the dimension of the cooling block on the side closer to the air outlet duct is larger than the dimension of the cooling block on the side farther from the air outlet duct.
[0008] Preferably, the cooling groove has a spiral structure.
[0009] Preferably, it also includes a filter assembly; the filter assembly is arranged on the air inlet duct.
[0010] Preferably, the filter assembly includes a movable slot, a movable frame, and a filter plate; the air inlet pipe has a movable slot; the movable frame slides through the movable slot; and the filter plate is fixed to the movable frame.
[0011] Preferably, the movable groove has a U-shaped structure.
[0012] Preferably, the filter plate has a pyramidal mesh structure, and the tip of the filter plate is positioned close to the cooling block.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] 1. This utility model, by setting up a cooling component, places the cooling device body next to the container holding the metalworking fluid. Then, the fan body is started, causing the fan body to draw in room temperature air through the air inlet pipe. After entering the air inlet pipe, the room temperature air passes through the fan body into the air outlet pipe and is discharged from the cooling block. Since the cooling block has a hollow frustum structure, the room temperature air is compressed, its volume expands, and its pressure drops, thus lowering the temperature of the room temperature air. At the same time, since the cooling tank has a spiral structure, it prolongs the flow path of the room temperature air and reduces the flow speed of the room temperature air, further reducing the temperature of the room temperature air. Compared with the prior art, this utility model has a simple and reasonable structure and ingenious design. By converting room temperature air into cold air, it can improve the cooling efficiency of the metalworking fluid. Furthermore, by cooling the metalworking fluid mechanically, it can improve the durability of the cooling device body.
[0015] 2. This utility model, by setting up a filter assembly, allows for cleaning by pulling the handle on the movable frame upwards, causing the movable frame to slide upwards within the movable groove, thus moving the filter plate upwards until the movable frame moves out of the movable groove, allowing the dust inside the filter plate to be cleaned. After cleaning, the movable frame is inserted into the movable groove and slid downwards within the groove, causing the filter plate to move downwards until the bottom surface of the movable frame contacts the bottom wall of the movable groove. The filter plate is set as a pyramidal mesh structure, which not only extends the filtration area between the filter plate and room temperature air, improving the filtration effect, but also allows the dust filtered by the filter plate to accumulate inside the filter plate, facilitating the cleaning of the dust inside the filter plate. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of a cooling device for producing metalworking fluid according to the present invention.
[0017] Figure 2 This is a cross-sectional view of the overall structure of a cooling device for producing metalworking fluid according to this utility model.
[0018] Figure 3 This is a cross-sectional view of the cooling device body of a cooling device for producing metalworking fluid according to this utility model.
[0019] Figure 4 This is a cross-sectional view of the cooling block structure of a cooling device for producing metalworking fluid according to this utility model;
[0020] Figure 5 This is a partial structural breakdown diagram of a cooling device for producing metalworking fluid according to this utility model.
[0021] Numbering on the map:
[0022] 1. Cooling device body; 2. Cooling components; 3. Filter components; 101. Fan body; 102. Air inlet pipe; 103. Air outlet pipe; 104. Support frame; 201. Cooling block; 202. Cooling tank; 301. Movable slot; 302. Movable frame; 303. Filter plate. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Example: Figures 1-5As shown, this utility model provides a technical solution for a cooling device for producing metalworking fluid, including a cooling device body 1 and a cooling assembly 2 for cooling the metalworking fluid; the cooling device body 1 includes a fan body 101, an air inlet pipe 102, an air outlet pipe 103, and a support frame 104; the air inlet pipe 102 is fixedly connected to the air inlet end of the fan body 101; the air outlet pipe 103 is fixedly connected to the air outlet end of the fan body 101, and nine air outlets are provided on the air outlet pipe 103; two support frames 104 are symmetrically fixedly connected. It is connected to the air inlet pipe 102 and the air outlet pipe 103; the cooling component 2 is arranged on the air outlet of the air outlet pipe 103; the cooling component 2 includes a cooling block 201 and a cooling groove 202; the cooling block 201 is fixedly connected to the air outlet of the air outlet pipe 103; nine cooling grooves 202 are arranged in a ring array inside the cooling block 201; the cooling block 201 is a hollow frustum structure, and the size of the side of the cooling block 201 near the air outlet pipe 103 is larger than the size of the side of the cooling block 201 away from the air outlet pipe 103; the cooling groove 202 is a spiral structure.
[0025] This invention, by setting up a cooling component 2, places the cooling device body 1 next to a container holding metalworking fluid. Then, the fan body 101 is started, causing the fan body 101 to draw in room temperature air through the air inlet pipe 102. After entering the air inlet pipe 102, the room temperature air enters the air outlet pipe 103 through the fan body 101 and is discharged from the cooling block 201. Since the cooling block 201 is a hollow frustum structure, the room temperature air is compressed, its volume expands, and its pressure drops, thus lowering the temperature of the room temperature air. At the same time, since the cooling tank 202 is a spiral structure, it prolongs the flow path of the room temperature air and reduces the flow speed of the room temperature air, further reducing the temperature of the room temperature air. Compared with the prior art, this invention has a simple and reasonable structure and ingenious design. By converting room temperature air into cold air, it can improve the cooling efficiency of metalworking fluid. Furthermore, by cooling the metalworking fluid mechanically, it can improve the durability of the cooling device body 1.
[0026] As a preferred embodiment, the system further includes a filter assembly 3; the filter assembly 3 is arranged on the air inlet duct 102; the filter assembly 3 includes a movable slot 301, a movable frame 302, and a filter plate 303; the air inlet duct 102 has a movable slot 301; the movable frame 302 is slidably inserted into the movable slot 301; the filter plate 303 is fixedly connected to the movable frame 302; the movable slot 301 has a U-shaped structure; the filter plate 303 has a pyramidal mesh structure, and the tip of the filter plate 303 is positioned close to the cooling block 201.
[0027] This utility model, by setting up a filter assembly 3, allows for cleaning by pulling the handle on the movable frame 302 upwards, causing the movable frame 302 to slide upwards within the movable groove 301, thus moving the filter plate 303 upwards until the movable frame 302 moves out of the movable groove 301, allowing the dust inside the filter plate 303 to be cleaned. After cleaning, the movable frame 302 is inserted into the movable groove 301 and slid downwards within the movable groove 301, causing the filter plate 303 to move downwards until the bottom surface of the movable frame 302 contacts the bottom wall of the movable groove 301. The filter plate 303 is set as a pyramidal mesh structure, which not only extends the filtration area between the filter plate 303 and room temperature air, improving the filtration effect of the filter plate 303, but also allows the dust filtered by the filter plate 303 to accumulate inside the filter plate 303, facilitating the cleaning of the dust inside the filter plate 303.
[0028] Working Principle: In use, the cooling device body 1 is placed next to the container holding the metalworking fluid. Then, the fan body 101 is started, drawing in room temperature air through the air inlet pipe 102. After entering the air inlet pipe 102, the room temperature air passes through the filter plate 303, which filters out dust from the air. The filtered room temperature air then enters the air outlet pipe 103 and is discharged from the cooling block 201. Because the cooling block 201 has a hollow frustum structure, the room temperature air is compressed, its volume expands, and its pressure drops, thus lowering the air temperature. Simultaneously, because the cooling tank 202 has a spiral structure, it extends the cooling time... The flow path of warm air reduces the flow speed of room temperature air, further lowering the temperature of the room temperature air. When cleaning the filter plate 303, by pulling the handle on the movable frame 302 upward, the movable frame 302 slides upward in the movable groove 301, causing the filter plate 303 to move upward until the movable frame 302 moves out of the movable groove 301, allowing the dust inside the filter plate 303 to be cleaned. After cleaning, the movable frame 302 is inserted into the movable groove 301 and slid downward in the movable groove 301, causing the filter plate 303 to move downward until the bottom surface of the movable frame 302 contacts the bottom wall of the movable groove 301.
[0029] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A cooling device for producing a metal working fluid, characterized by, The device includes a cooling device body (1) and a cooling assembly (2) for cooling metalworking fluid; the cooling device body (1) includes a fan body (101), an air inlet pipe (102), an air outlet pipe (103), and a support frame (104); the air inlet pipe (102) is fixed to the air inlet end of the fan body (101); the air outlet pipe (103) is fixed to the air outlet end of the fan body (101), and the air outlet pipe (103) has several openings. Air outlet; at least two of the support frames (104) are symmetrically fixed on the air inlet pipe (102) and the air outlet pipe (103); the cooling assembly (2) is arranged on the air outlet of the air outlet pipe (103); the cooling assembly (2) includes a cooling block (201) and a cooling groove (202); the cooling block (201) is fixed on the air outlet of the air outlet pipe (103); a plurality of cooling grooves (202) are arranged in a ring array inside the cooling block (201).
2. The cooling device for producing a metal working fluid according to claim 1, characterized by, The cooling block (201) has a hollow frustum structure, and the size of the side of the cooling block (201) closer to the air outlet pipe (103) is larger than the size of the side of the cooling block (201) farther away from the air outlet pipe (103).
3. The cooling device for producing a metal working fluid according to claim 1, characterized by, The cooling tank (202) has a spiral structure.
4. The cooling device for producing a metal working fluid according to claim 3, characterized by It also includes a filter assembly (3); the filter assembly (3) is arranged on the air inlet duct (102).
5. The cooling device for producing a metal working fluid according to claim 4, wherein The filter assembly (3) includes a movable slot (301), a movable frame (302), and a filter plate (303); the air inlet pipe (102) has a movable slot (301); the movable frame (302) slides through the movable slot (301); and the filter plate (303) is fixed on the movable frame (302).
6. The cooling device for producing a metal working fluid according to claim 5, wherein The movable groove (301) has a U-shaped structure.
7. A cooling apparatus for producing metalworking fluid according to claim 5, characterized in that, The filter plate (303) has a pyramidal mesh structure, and the tip of the filter plate (303) is positioned close to the cooling block (201).
Citation Information
Patent Citations
Cooling device for producing metal working fluid
CN213515158U