Cooling device

By using adjustable support and agitation mechanisms, the applicability and cooling uniformity issues of existing angle steel cooling devices have been resolved, enabling efficient dynamic water flow cooling of angle steels of different sizes, thereby improving cooling efficiency and applicability.

CN223823643UActive Publication Date: 2026-01-23TANGSHAN FENGRUN DISTRICT GUOXIN STEEL CO LTD
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Patent Information

Application Number
CN202520061480.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-11
Publication Date
2026-01-23
Estimated Expiration
2035-01-11

AI Technical Summary

Technical Problem

Existing angle steel cooling devices cannot adapt to angle steel of different sizes, resulting in uneven cooling and low efficiency.

Method used

The design incorporates an adjustable support and agitation mechanism. A servo motor drives a metal support plate to adjust the angle, while a rotary motor drives spiral blades to agitate the water flow, achieving dynamic water cooling.

Benefits of technology

It achieves stable support and uniform cooling for angle steel of different sizes, improves cooling efficiency, expands the scope of application, and reduces the obstruction of bubble layer.

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Abstract

The utility model relates to the technical field of cooling devices, and discloses a cooling device which comprises a bottom plate and a cooling pond, and a supporting mechanism and a stirring mechanism are arranged in the cooling pond. The cooling device can adapt to cooling work of angle steel of different sizes, the angle steel can be stably placed between the two metal supporting plates through the adjustable supporting mechanism, a stirring mechanism is arranged in the device, static water can be changed into a dynamic flowing state, and when a motor is started, two spiral blades are driven to rotate at the same time through a chain wheel and a chain, so that the angle steel is cooled. And spiral stirring is generated to enable water in the cooling pond to flow, so that the angle steel can be cooled more uniformly, dynamic water flow accelerates heat diffusion, the cooling efficiency is improved, in addition, the dynamic water flow can reduce the hindering effect of a bubble layer on the surface of the angle steel on cooling, and in a word, the cooling effect is better through structural design and water flow control. Dynamic water flow cooling of different steel angles is achieved, the cooling efficiency is improved, and the application range is expanded.
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Description

Technical Field

[0001] This application relates to the field of cooling device technology, specifically a cooling device. Background Technology

[0002] Angle steel needs to be cooled during the production and processing process to improve its hardness and strength.

[0003] An existing patent (publication number: CN220062309U) discloses a cooling device for angle steel production and processing, which solves the problem of low cooling efficiency in existing angle steel production and processing cooling devices. It includes a cooling pool and a water storage pool. A water spray cooling assembly is fixedly installed at the top of the cooling pool, and an angle steel support and guiding assembly is fixedly installed inside the cooling pool. The water spray cooling assembly consists of a water pump, a water guide pipe, a fixed support plate, several water spray pipes, and several nozzles. The water pump is fixedly connected to one end of the top of the water storage pool, the fixed support plate is connected to one side of the top of the cooling pool, the water guide pipe is fixedly connected to the top of one side of the fixed support plate, the water spray pipes are connected to one side of the water guide pipe, and the nozzles are connected to one end of the water spray pipes and located directly above the angle steel support and guiding assembly. This cooling device can achieve spraying and immersion cooling of angle steel, effectively improving cooling efficiency. During the cooling process, it can guide the movement of the angle steel, improving the stability of the angle steel movement.

[0004] The included angle of the V-shaped support component in the aforementioned comparative document is a fixed angle that cannot be adjusted, which leads to mismatch when supporting angle steel of different sizes, thus affecting the cooling effect. In addition, the aforementioned device cools the angle steel by statically immersing it, which is prone to uneven cooling. To solve the above problems, a cooling device is proposed. Utility Model Content

[0005] To address the shortcomings of existing technologies, this application provides a cooling device that can quickly support angle steels with different included angles and achieve uniform cooling through a dynamic water flow immersion design.

[0006] To achieve the above objectives, this application provides the following technical solution: a cooling device, comprising a base plate and a cooling pool, wherein the cooling pool is provided with a support mechanism and a stirring mechanism, the support mechanism comprising two metal support plates rotatably sleeved on the inner wall of the cooling pool and a plurality of water-permeable holes opened on the surface of the metal support plates, and two planar gears fixedly connected to one end of the two metal support plates, a servo motor fixedly connected to one side of the cooling pool, a worm gear fixedly connected to the output shaft end of the servo motor, a worm wheel meshing above the worm gear, and the worm wheel fixedly connected to the rotating shaft end of the corresponding metal support plate.

[0007] The agitation mechanism includes a rotary motor fixedly connected to one side of the cooling pool and two spiral blades rotatably sleeved at the bottom of the cooling pool. The output shaft end of the rotary motor is fixedly connected to the shaft end of the corresponding spiral blade. One end of each of the two spiral blades is fixedly connected to a sprocket. A chain is provided outside the cooling pool, and the two sprockets are connected by chain drive. A water circulation mechanism is provided outside the cooling pool.

[0008] Through the above scheme, the support mechanism can be adjusted according to the included angle of the angle steel, so that angle steels of different sizes can be stably placed on the outer surface of the two metal support plates. This facilitates dynamic water immersion cooling of different angle steels, expanding the applicability of the device. The agitation mechanism can transform the static water inside the cooling pool into a dynamic flow state. When the rotary motor starts, the two spiral blades can be rotated simultaneously through the sprocket and chain. The rotation of the two spiral blades can agitate the water inside the cooling pool, allowing the angle steel placed on the support mechanism to be cooled more evenly. At the same time, the dynamic water flow can accelerate heat diffusion, improve cooling efficiency, and reduce the obstruction of cooling by the bubble layer formed on the surface of the angle steel.

[0009] Furthermore, the water circulation mechanism includes a cooling tower fixedly connected to the upper surface of the base plate, a first liquid pump installed on the back of the cooling pool, and a water storage tank fixedly connected to the upper surface of the base plate.

[0010] The above method can be used to cool hot water, which is beneficial for water recycling.

[0011] Furthermore, the input end of the first liquid pump is connected to the interior of the cooling pool, and the output end of the first liquid pump is installed at the water inlet at the top of the cooling tower through a water supply pipe.

[0012] With the above solution, when the first liquid pump starts, the water in the cooling pool can be transported to the cooling tower for cooling treatment, which is convenient to use.

[0013] Furthermore, a second liquid pump is fixedly connected to the outer surface of the water storage tank. The output end of the second liquid pump is connected to the inside of the water storage tank, and the input end of the second liquid pump is installed at the outlet at the bottom of the cooling tower through a water supply pipe.

[0014] With the above scheme, when the second liquid pump starts, the water cooled by the cooling tower can be transported to the water storage tank for use.

[0015] Furthermore, a submersible pump is fixedly connected to the inner bottom wall of the water storage tank, and a multi-hole nozzle is embedded in the inner wall of the cooling pool, with the multi-hole nozzle located above the support mechanism.

[0016] The above method allows for the convenient transfer of water from the storage tank to the cooling pool for cooling the angle steel.

[0017] Furthermore, the output end of the submersible pump is connected to the multi-hole nozzle via a water delivery pipe.

[0018] With the above method, when the submersible pump is started, the water in the storage tank can be transported to the multi-hole nozzle, and finally sprayed out of the multi-hole nozzle toward the angle steel submerged in the cooling pool.

[0019] Furthermore, an opening is provided on the upper surface of the water storage tank.

[0020] The above solution allows for convenient replenishment of cooling water into the water storage tank, while the open design accelerates the dissipation of heat from the water, which is beneficial for water recycling.

[0021] Furthermore, a drain outlet is installed on one side of the water storage tank, and a sealing plug is provided at one end of the drain outlet.

[0022] The above method allows for easy drainage of water from the storage tank, facilitating water replacement.

[0023] Compared with the prior art, the technical solution of this application has the following beneficial effects:

[0024] This cooling device is adaptable to cooling angle steel of different sizes. An adjustable support mechanism allows the angle steel to be stably placed between two metal support plates. The device has a built-in agitator that transforms static water into a dynamic flow. When the motor starts, a sprocket and chain drive two spiral blades to rotate simultaneously, generating a spiral agitation that circulates the water in the cooling tank. This allows the angle steel to be cooled more evenly, while the dynamic water flow accelerates heat diffusion and improves cooling efficiency. Furthermore, the dynamic water flow reduces the obstruction of cooling by air bubbles on the angle steel surface. In summary, this cooling device, through its structural design and water flow control, achieves dynamic water flow cooling for different angle steels, improving cooling efficiency and expanding its applicability. Attached Figure Description

[0025] Figure 1 This is a first overall top view of the structure of this application;

[0026] Figure 2 This is a second overall top view of the structure of this application;

[0027] Figure 3 This is a schematic cross-sectional view of the overall structure of this application;

[0028] Figure 4 This is a schematic diagram of the overall rear view of the structure of this application.

[0029] In the picture:

[0030] 1. Base plate; 2. Cooling pool; 3. Support mechanism; 301. Metal support plate; 302. Water permeable hole; 303. Planar gear; 304. Worm gear; 305. Worm; 306. Servo motor; 4. Agitation mechanism; 401. Rotary motor; 402. Spiral blade; 403. Sprocket; 404. Chain; 5. Water circulation mechanism; 501. Cooling tower; 502. First liquid pump; 503. Second liquid pump; 504. Submersible pump; 505. Multi-hole nozzle; 6. Water storage tank; 7. Inlet; 8. Drain outlet. Detailed Implementation

[0031] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0032] Please see Figure 1 , Figure 2 and Figure 4 A cooling device in this embodiment includes a base plate 1 and a cooling pool 2. The cooling pool 2 is internally equipped with a support mechanism 3 and a stirring mechanism 4. The support mechanism 3 includes two metal support plates 301 rotatably sleeved on the inner wall of the cooling pool 2 and multiple water-permeable holes 302 formed on the surface of the metal support plates 301. It also includes two planar gears 303 fixedly connected to one end of the two metal support plates 301. The two planar gears 303 mesh with each other; when one planar gear 303 rotates, it can drive the other planar gear 303 to rotate, thus causing the two metal support plates 301 to rotate towards each other. A servo motor 306 is fixedly connected to one side of the cooling pool 2. A worm gear 305 is fixedly connected to the output shaft end of the servo motor 306. A worm wheel 304 meshes above the worm gear 305. Wheel 304 is fixedly connected to the shaft end of the corresponding metal support plate 301. The worm gear 304 and worm 305 enable the corresponding metal support plate 301 to have a self-locking effect, preventing the metal support plate 301 from rotating arbitrarily and providing stable support for the angle steel. This allows the angle steel to be stably immersed in the cooling pool 2 for cooling. When the servo motor 306 is started, it can drive the corresponding metal support plate 301 to rotate. The two planar gears 303 can cause the two water holes 302 to rotate in opposite directions, achieving the effect of adjusting the included angle between the two metal support plates 301. This allows angle steels with different included angles to be placed on the two metal support plates 301 for cooling, expanding the applicability of the device and making it more practical.

[0033] Please see Figure 1 , Figure 2 and Figure 3 The agitation mechanism 4 includes a rotary motor 401 fixedly connected to one side of the cooling pool 2 and two spiral blades 402 rotatably sleeved at the bottom of the cooling pool 2. The output shaft end of the rotary motor 401 is fixedly connected to the shaft end of the corresponding spiral blade 402. One end of each spiral blade 402 is fixedly connected to a sprocket 403. A chain 404 is provided outside the cooling pool 2. The two sprockets 403 are connected by the chain 404. When the rotary motor 401 starts, it can drive the corresponding spiral blade 402 to rotate. Through the sprocket 403 and the chain 404, the other spiral blade 402 can also rotate. The rotation of the two spiral blades 402 can agitate the water inside the cooling pool 2, turning the static water inside the cooling pool 2 into dynamically flowing water. This allows for more uniform cooling of the angle steel placed on the support mechanism 3. At the same time, agitating the water can accelerate the evaporation of heat in the water and reduce the obstruction of the cooling effect of the bubble layer formed on the surface of the angle steel, making it more practical.

[0034] Please see Figure 1 , Figure 2 and Figure 4 The cooling pool 2 is equipped with a water circulation mechanism 5 on its exterior. The water circulation mechanism 5 includes a cooling tower 501 fixedly connected to the upper surface of the base plate 1. A first liquid pump 502 is installed on the back of the cooling pool 2. A water storage tank 6 is fixedly connected to the upper surface of the base plate 1. The cooling tower 501 can cool hot water, which is beneficial to the circulation of water. The input end of the first liquid pump 502 is connected to the interior of the cooling pool 2. The output end of the first liquid pump 502 is installed at the water inlet at the top of the cooling tower 501 through a water supply pipe. When the first liquid pump 502 is started, it can transport water from the cooling pool 2 to the cooling tower 501 for cooling treatment, which is convenient to use. A second liquid pump 503 is fixedly connected to the outer surface of the water storage tank 6. The output end of the second liquid pump 503 is connected to the interior of the water storage tank 6. The input end of the second liquid pump 503 is installed at the water outlet at the bottom of the cooling tower 501 through a water supply pipe. When the second liquid pump 503 is started, it can transport water cooled by the cooling tower 501 to the water storage tank 6 for use.

[0035] It should be noted that cooling tower 501 is an existing device and is not the object to be protected in this application, so it will not be described in detail. However, it should be understood that the working principle of cooling tower 501 is to spray hot water onto the packing material and use a fan or natural ventilation to introduce cold air into cooling tower 501, so that water and air can come into full contact. During the process, some water evaporates and takes away a large amount of heat. At the same time, the sensible heat of the water is transferred to the air through convection, thereby reducing the water temperature. The cooled water flows back to the system for recycling, while the hot air is discharged from the top of the base plate 1.

[0036] Please see Figure 2 , Figure 3 and Figure 4 A submersible pump 504 is fixedly connected to the inner bottom wall of the water storage tank 6. A perforated nozzle 505 is embedded in the inner wall of the cooling pool 2. The perforated nozzle 505 is located above the support mechanism 3, allowing for convenient transfer of water from the water storage tank 6 to the cooling pool 2 for cooling the angle steel. The output end of the submersible pump 504 is connected to the perforated nozzle 505 via a water supply pipe. When the submersible pump 504 starts, it delivers water from the water storage tank 6 to the perforated nozzle 505, ultimately cooling the angle steel submerged in the water. The angle steel in the cooling tank 2 protrudes, allowing water to flow rapidly on its surface and optimizing the cooling effect. The upper surface of the water storage tank 6 has an opening 7, through which cooling water can be easily added to the water storage tank 6. At the same time, the open design can accelerate the dissipation of heat in the water, which is beneficial to the recycling of water. A drain outlet 8 is installed on one side of the water storage tank 6, and one end of the drain outlet 8 is equipped with a sealing plug. The water in the water storage tank 6 can be easily drained through the drain outlet 8, making it convenient to replace the water in the water storage tank 6.

[0037] In this embodiment, a cooling device, through the set support mechanism 3, can be adjusted according to the included angle of the angle steel, so that angle steel of different sizes can be stably placed on the outer surface of two metal support plates 301, which facilitates the dynamic water immersion cooling of different angle steels and expands the applicability of the device. The set stirring mechanism 4 can make the static water inside the cooling pool 2 into a dynamic flow state. When the rotary motor 401 is started, the two spiral blades 402 can be rotated simultaneously through the sprocket 403 and the chain 404. The rotation of the two spiral blades 402 can spirally stir the water inside the cooling pool 2, so that the angle steel placed on the support mechanism 3 can be cooled more evenly. At the same time, the dynamic water flow can accelerate heat diffusion, improve cooling efficiency, and reduce the obstruction of cooling by the bubble layer formed on the surface of the angle steel.

[0038] The working principle of the above embodiment is as follows: First, the positions of the two metal support plates 301 should be adjusted according to the included angle of the angle steel. At this time, the position adjustment of the metal support plates 301 can be achieved by the servo motor 306. When the servo motor 306 is started, it can drive the worm gear 305 to rotate. The rotation of the worm gear 305 can drive the worm wheel 304 to rotate. When the worm wheel 304 rotates, it can drive the corresponding metal support plate 301 to rotate. With the help of the two planar gears 303, the two metal support plates 301 can rotate towards each other, so that the included angle of the two metal support plates 301 can be adjusted. This allows angle steels of different sizes to be stably placed on the two metal support plates 301. Then, an appropriate amount of water is added to both the cooling pool 2 and the water storage tank 6. The water in the cooling pool 2 will submerge the angle steel placed on the support mechanism 3. Then, the rotary motor 401 is started to stir the water inside the cooling pool 2, so that the static water inside the cooling pool 2 becomes dynamically flowing water, so that the angle steel can be cooled more evenly. At the same time, stirring the water can also... To accelerate the evaporation of heat in the water and make it more practical, when the rotary motor 401 starts, it drives the corresponding spiral blades 402 to rotate. Through the set sprocket 403 and chain 404, the two spiral blades 402 can rotate simultaneously, thereby agitating the water inside the cooling pool 2. Then, the cooling tower 501, the first liquid pump 502, the second liquid pump 503 and the submersible pump 504 can be started to cool the water in the cooling pool 2 and then recycle it. When the first liquid pump 502 starts, the water in the cooling pool 2 can be input into the cooling tower 501 for cooling treatment. The cooled water will be input into the water storage tank 6 through the second liquid pump 503 for use. Finally, the start of the submersible pump 504 can spray the water in the water storage tank 6 onto the surface of the angle steel through the multi-hole nozzle 505 to achieve water recycling. In addition, each metal support plate 301 is provided with a water permeable hole 302. Through the water permeable hole 302, water can pass through the metal support plate 301 and contact the bottom surface of the angle steel for cooling, optimizing the cooling effect of the angle steel.

[0039] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0040] Although embodiments of this application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of this application, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A cooling device, comprising a base plate (1) and a cooling pool (2), characterized in that: The cooling pool (2) is provided with a support mechanism (3) and an agitation mechanism (4). The support mechanism (3) includes two metal support plates (301) rotatably sleeved on the inner wall of the cooling pool (2) and multiple water-permeable holes (302) opened on the surface of the metal support plates (301), as well as two planar gears (303) fixedly connected to one end of the two metal support plates (301). A servo motor (306) is fixedly connected to one side of the cooling pool (2). A worm (305) is fixedly connected to the output shaft end of the servo motor (306). A worm wheel (304) meshes above the worm (305). The worm wheel (304) is fixedly connected to the shaft end of the corresponding metal support plate (301). The stirring mechanism (4) includes a rotary motor (401) fixedly connected to one side of the cooling pool (2) and two spiral blades (402) rotatably sleeved at the bottom of the cooling pool (2). The output shaft end of the rotary motor (401) is fixedly connected to the shaft end of the corresponding spiral blade (402). One end of each of the two spiral blades (402) is fixedly connected to a sprocket (403). A chain (404) is provided outside the cooling pool (2). The two sprockets (403) are connected by the chain (404). A water circulation mechanism (5) is provided outside the cooling pool (2).

2. The cooling device according to claim 1, characterized in that: The water circulation mechanism (5) includes a cooling tower (501) fixedly connected to the upper surface of the base plate (1), a first liquid pump (502) installed on the back of the cooling pool (2), and a water storage tank (6) fixedly connected to the upper surface of the base plate (1).

3. A cooling device according to claim 2, characterized in that: The input end of the first liquid pump (502) is connected to the interior of the cooling pool (2), and the output end of the first liquid pump (502) is installed at the water inlet at the top of the cooling tower (501) through a water supply pipe.

4. A cooling device according to claim 2, characterized in that: The outer surface of the water storage tank (6) is fixedly connected to a second liquid pump (503). The output end of the second liquid pump (503) is connected to the inside of the water storage tank (6). The input end of the second liquid pump (503) is installed at the outlet of the bottom of the cooling tower (501) through a water supply pipe.

5. A cooling device according to claim 2, characterized in that: The water storage tank (6) has a submersible pump (504) fixedly connected to its inner bottom wall, and the cooling pool (2) has a multi-hole nozzle (505) embedded in its inner wall. The multi-hole nozzle (505) is located above the support mechanism (3).

6. A cooling device according to claim 5, characterized in that: The output end of the submersible pump (504) is connected to the multi-hole nozzle (505) through a water delivery pipe.

7. A cooling device according to claim 2, characterized in that: The upper surface of the water storage tank (6) is provided with an opening (7).

8. A cooling device according to claim 2, characterized in that: A drain outlet (8) is installed on one side of the water storage tank (6), and a sealing plug is provided at one end of the drain outlet (8).

Citation Information

Patent Citations

  • Cooling device for angle steel production and processing

    CN220062309U