Circulating cooling equipment for ceramsite production
By using a circulating cooling system that combines water pumps, sprayers, and blowers in the production of abrasive sand, the problems of complex structure and poor cooling effect of existing equipment have been solved, resulting in better cooling effect and ease of operation.
Patent Information
- Application Number
- CN202520307072.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2035-02-25
AI Technical Summary
Existing circulating cooling equipment for abrasive production has a complex structure, poor cooling effect, and a single cooling method. Furthermore, the contact area between the abrasive and the cooling device is small, requiring the use of conveying equipment.
A cooling tank consisting of a cooling water tank body, an upper plate type and a lower plate type cooling tank with vertical and horizontal inclination, is designed. Combined with a water pump, spray components and a blower, it achieves cooling through a combination of water cooling and air cooling. A vibration motor is used to drive the cooling tank to vibrate to prevent material jamming, increase the contact area and cooling effect.
It achieves a simple and easy-to-operate circulating cooling system with better cooling effect. It can simultaneously perform water cooling and air cooling, prevent material jamming, and improve cooling efficiency.
Smart Images

Figure CN223663612U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of abrasive sand production technology, specifically a circulating cooling device for abrasive sand production. Background Technology
[0002] Ceramic sand is a material used for lining the bottom of aquariums. It is usually composed of tiny glass beads or plastic granules with a special coating on its surface. This coating prevents aquatic plant roots from penetrating the sand and avoids bottom material from mixing into the water. Ceramic sand helps keep the aquarium clean and provides a good growing environment suitable for aquatic plants. During the production process, ceramic sand may need to be cooled to meet process requirements, reduce thermal stress, cure the coating, and improve production efficiency. Therefore, a ceramic sand cooling device is used to cool it. However, existing circulating cooling equipment has a complex structure and poor cooling effect. Cooling requires the use of conveying equipment, the cooling method is limited, and the contact area between the ceramic sand and the cooling device is small, meaning that only one side can be cooled during the conveying process. Utility Model Content
[0003] The technical problem to be solved by this utility model is to overcome the existing defects and provide a circulating cooling device for the production of abrasive sand. It has a simple structure and is easy to operate. It can not only circulate water cooling for raw materials, but also air cooling for raw materials. It has a better cooling effect and is more convenient to use, and can effectively solve the problems in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a circulating cooling device for abrasive production, comprising a cooling water tank body, with two elastic supports fixed on both the front and rear sides of the cooling water tank body. An inclined side plate is fixed to the upper end of each of the two elastic supports on the same side. An upper plate cooling box and a lower plate cooling box are arranged between the two side plates, the upper and lower plate cooling boxes being inclined and parallel. A protective plate is provided between the upper ends of the two side plates, forming a funnel-shaped structure between the protective plate and the upper surface of the lower plate cooling box. V-shaped baffles are evenly arranged between the lower and upper plate cooling boxes. The side of the side plate... The cooling water tank is equipped with a vibration motor to drive its vibration. A water pump is installed on one side of the cooling water tank to draw coolant from its interior. The outlet of the water pump is connected to a Y-shaped conduit. The two outlets of the Y-shaped conduit are respectively connected to the lower inlets of the upper plate cooling tank and the lower plate cooling tank. A spray element is provided on the upper part of the lower surface of the lower plate cooling tank. A Y-shaped conduit is connected to one inlet of the spray element. The two inlets of the Y-shaped conduit are connected to the upper outlets of the upper plate cooling tank and the lower plate cooling tank. The cooling water tank has an opening located below the spray element. A protective component is provided on one side of the opening of the cooling water tank. A blower is provided on the upper surface of the lower plate cooling tank. The inlet of the blower is located on one side of the protective component.
[0005] Furthermore, the elastic support includes a support leg fixed to one side of the cooling water tank body. A rubber elastic seat is fixed to the upper end of the support leg. The rubber elastic seat can drive the vibrating motor to vibrate the side plate, the upper plate cooling box and the lower plate cooling box up and down, thereby preventing the raw material from getting stuck between the upper plate cooling box and the lower plate cooling box, and making the material feeding effect better.
[0006] Furthermore, the spray component includes a spray housing, the upper end of which is uniformly fixed to the lower surface of the lower plate cooling box by support columns, and spray heads are uniformly arranged on the lower surface of the spray housing. Coolant from the lower plate cooling box and the upper plate cooling box enters the interior of the spray housing, and the coolant inside the spray housing falls from the spray heads, thereby cooling the coolant.
[0007] Furthermore, the protective assembly includes two protective plates fixed on both sides of the opening of the cooling water tank. Each protective plate has a sliding groove on its opposite side, and a frame is slidably connected between the two sliding grooves. A water mist filter cloth is provided on the frame. When the blower blows air, the air inlet draws in air and passes it through the sprayed coolant to dissipate heat from the coolant. The water mist is filtered through the water mist filter cloth to prevent water mist from entering the blower. The blown air then blows air onto the raw material to further cool it.
[0008] Compared with the prior art, the beneficial effects of this utility model are as follows: Raw materials enter through the funnel-shaped structure between the protective plate and the lower plate cooling tank, allowing them to pass between the lower and upper plate cooling tanks. A water pump draws coolant from inside the cooling tank into the lower and upper plate cooling tanks, thus cooling the raw materials as they enter. The coolant, having absorbed heat inside the lower and upper plate cooling tanks, enters the spray shell through a Y-shaped conduit. The coolant discharged from the lower and upper plate cooling tanks enters the spray shell, and the coolant inside the spray shell falls from the spray nozzles, further cooling the coolant. When the blower blows air, the air inlet draws in air, causing the air to pass through the sprayed coolant, thus dissipating heat from the coolant. The mist filter cloth filters water mist, preventing it from entering the blower. The blown air further cools the raw material. Simultaneously, a rubber elastic seat drives a vibrating motor to vibrate the side plates, upper cooling box, and lower cooling box, preventing material from getting stuck between them and improving the feeding effect. V-shaped baffles further turbulent the material as it passes through the upper and lower cooling boxes, increasing the sliding time and enhancing cooling efficiency. This circulating cooling equipment for abrasive sand production is simple in structure and easy to operate. It allows for both water and air cooling of the raw material, resulting in better cooling performance and greater convenience. Attached Figure Description
[0009] Figure 1 This is a schematic diagram of the structure of this utility model;
[0010] Figure 2 This is a side view of the present invention.
[0011] Figure 3 This is a schematic diagram of the rear structure of the present invention;
[0012] Figure 4 This is a partial structural diagram of the present invention.
[0013] In the diagram: 1 Cooling water tank, 2 Elastic support, 21 Support leg, 22 Rubber elastic seat, 3 Vibration motor, 4 V-shaped baffle, 5 Lower plate cooling box, 6 Upper plate cooling box, 7 Blower, 8 Water pump, 9 Protective components, 91 Protective plate II, 92 Sliding groove, 93 Frame, 94 Water mist filter cloth, 10 Sprayer components, 101 Support column, 102 Sprayer shell, 11 Protective plate I, 12 Y-type duct II, 13 Y-type duct I, 14 Side plate. Detailed Implementation
[0014] 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.
[0015] Please see Figure 1-4This utility model provides a technical solution: a circulating cooling device for the production of abrasive sand, including a cooling water tank 1. Two elastic supports 2 are fixed to both the front and rear sides of the cooling water tank 1. An inclined side plate 14 is fixed to the upper end of each of the two elastic supports 2 on the same side. An upper plate cooling box 6 and a lower plate cooling box 5 are arranged between the two side plates 14. The upper plate cooling box 6 and the lower plate cooling box 5 are inclined and parallel to each other. A protective plate 11 is arranged between the upper ends of the two side plates 14, forming a funnel-shaped structure between the protective plate 11 and the upper surface of the lower plate cooling box 5. V-shaped baffles 4 are evenly arranged between the lower plate cooling box 5 and the upper plate cooling box 6. The sides of the side plates 14 are provided with... A vibration motor 3 drives the vibration. A water pump 8 is installed on one side of the cooling water tank 1 to draw coolant from its interior. The outlet of the water pump 8 is connected to a Y-shaped conduit 13. The two outlets of the Y-shaped conduit 13 are respectively connected to the lower inlets of the upper plate cooling tank 6 and the lower plate cooling tank 5. A spray element 10 is provided on the upper part of the lower surface of the lower plate cooling tank 5. A Y-shaped conduit 12 is connected to one inlet of the spray element 10. The two inlets of the Y-shaped conduit 12 are connected to the upper outlets of the upper plate cooling tank 6 and the lower plate cooling tank 5. An opening is provided on the cooling water tank 1 below the spray element 10. A protective component 9 is provided on one side of the opening of the cooling water tank 1. A blower 7 is provided on the upper surface of the lower plate cooling tank 5. The inlet of the blower 7 is located on one side of the protective component 9. The support 2 includes a support leg 21 fixed to one side of the cooling water tank 1. A rubber elastic seat 22 is fixed to the upper end of the support leg 21. The rubber elastic seat 22 can drive the vibration motor 3 to vibrate the side plate 14, the upper plate cooling box 6, and the lower plate cooling box 5 up and down, thereby preventing raw materials from getting stuck between the upper plate cooling box 6 and the lower plate cooling box 5, and improving the material discharge effect. The spray component 10 includes a spray shell 102. The upper end of the spray shell 102 is evenly fixed to the lower surface of the lower plate cooling box 5 by the support column 101. Spray heads are evenly arranged on the lower surface of the spray shell 102. The coolant discharged from the lower plate cooling box 5 and the upper plate cooling box 6 enters the interior of the spray shell 102, and the coolant inside the spray shell 102 falls from the spray heads. This allows for the cooling of the coolant. The protective component 9 includes two protective plates 91 fixed to both sides of the opening of the cooling water tank 1. Each protective plate 91 has a sliding groove 92 on its opposite side, and a slidingly connected frame 93 is provided between the two sliding grooves 92. A water mist filter cloth 94 is provided on the frame 93. When the blower 7 blows air, the air inlet draws in air, causing the gas to pass through the sprayed coolant, thus dissipating heat from the coolant. The water mist is filtered through the water mist filter cloth 94, preventing water mist from entering the blower 7. The blown air further cools the raw material. This circulating cooling equipment for abrasive production has a simple structure and is easy to operate. It allows for both circulating water cooling and air cooling of the raw material.It offers better cooling and is more convenient to use.
[0016] In use: Raw materials enter through the funnel-shaped structure between the protective plate 11 and the lower plate cooling tank 5, allowing them to enter between the lower plate cooling tank 5 and the upper plate cooling tank 6. The water pump 8 draws coolant from inside the cooling water tank 1 into the lower plate cooling tank 5 and the upper plate cooling tank 6, thus cooling the raw materials as they enter. The coolant inside the lower plate cooling tank 5 and the upper plate cooling tank 6, after absorbing heat, enters the spray shell 102 through the Y-shaped conduit 12. The coolant discharged from the lower plate cooling tank 5 and the upper plate cooling tank 6 enters the spray shell 102, and the coolant inside the spray shell 102 falls from the spray nozzles, thus cooling the coolant. When the blower 7 blows air... The air inlet draws in air, which passes through the sprayed coolant to dissipate heat. The water mist is filtered by the water mist filter cloth 94 to prevent it from entering the blower 7. The blown air further cools the raw material. While the raw material is cooling, the rubber elastic seat 22 drives the vibrating motor 3 to vibrate the side plate 14, the upper plate cooling box 6, and the lower plate cooling box 5 up and down, preventing the raw material from getting stuck between the upper plate cooling box 6 and the lower plate cooling box 5, thus improving the material feeding effect. Furthermore, the V-shaped baffle 4 turbulents the raw material as it passes through the upper plate cooling box 6 and the lower plate cooling box 5, increasing the time for the raw material to slide down the upper plate cooling box 6 and the lower plate cooling box 5, resulting in a better cooling effect.
[0017] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention.
Claims
1. A circulating cooling device for the production of agate, comprising a cooling water tank (1), characterized in that: The cooling water tank (1) has two elastic supports (2) fixed on both the front and rear sides. The upper end of the two elastic supports (2) on the same side is fixed with an inclined side plate (14). An upper plate cooling tank (6) and a lower plate cooling tank (5) are arranged between the two side plates (14). The upper plate cooling tank (6) and the lower plate cooling tank (5) are inclined and parallel. A protective plate (11) is arranged between the upper ends of the two side plates (14). A funnel-shaped structure is formed between the protective plate (11) and the upper surface of the lower plate cooling tank (5). V-shaped baffles (4) are evenly arranged between the lower plate cooling tank (5) and the upper plate cooling tank (6). A vibration motor (3) is provided on the side of the side plate (14) to drive its vibration. One side of the cooling water tank (1) A water pump (8) is provided to draw coolant from its interior. The outlet of the water pump (8) is connected to a Y-shaped conduit (13). The two outlets of the Y-shaped conduit (13) are respectively connected to the lower inlet of the upper plate cooling box (6) and the lower plate cooling box (5). A spray element (10) is provided on the upper part of the lower surface of the lower plate cooling box (5). A Y-shaped conduit (12) is connected to one side inlet of the spray element (10). The two inlets of the Y-shaped conduit (12) are connected to the upper outlet of the upper plate cooling box (6) and the lower plate cooling box (5). An opening is provided on the cooling water tank body (1) below the spray element (10). A protective component (9) is provided on one side of the opening of the cooling water tank body (1). A blower (7) is provided on the upper surface of the lower plate cooling box (5). The inlet of the blower (7) is located on one side of the protective component (9).
2. The circulating cooling equipment for producing agate sand according to claim 1, characterized in that: The elastic support (2) includes a support leg (21) fixed to one side of the cooling water tank (1), and a rubber elastic seat (22) is fixed to the upper end of the support leg (21).
3. The circulating cooling equipment for producing agate sand according to claim 1, characterized in that: The spray component (10) includes a spray housing (102), the upper end of which is uniformly fixed to the lower surface of the lower plate cooling box (5) by a support column (101), and spray heads are uniformly arranged on the lower surface of the spray housing (102).
4. The circulating cooling equipment for producing agate sand according to claim 1, characterized in that: The protective component (9) includes two protective plates (91) fixed on both sides of the opening of the cooling water tank (1). Each protective plate (91) has a sliding groove (92) on its opposite side. A sliding frame (93) is provided between the two sliding grooves (92). A water mist filter cloth (94) is provided on the frame (93).