Energy-saving cooling device for water permeable brick production
By combining spraying and air cooling, along with the design of guide plates and guide columns, the problem of low cooling efficiency in existing cooling devices has been solved, enabling rapid cooling and convenient operation of permeable bricks.
Patent Information
- Application Number
- CN202423000886.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Existing cooling devices for permeable brick production are inefficient when spraying water to cool the permeable bricks, cannot cool them quickly, and are inconvenient to place.
A cooling device was designed, comprising a housing, a spray water tank, an air-cooled plate, an air pump, a recovery tank, and a guide assembly. It achieves cooling through a combination of spraying and air cooling, and the cooling plate is slidably adjusted by guide plates and guide columns. It works in conjunction with filter plates to filter and collect water.
Rapid cooling of permeable bricks was achieved, improving cooling efficiency, and the convenient placement structure enhanced operational ease.
Smart Images

Figure CN223649527U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of permeable bricks, and in particular to a cooling device for the production of energy-saving permeable bricks. Background Technology
[0002] With urban development, the urban heat island effect has become increasingly pronounced, with urban temperatures significantly higher than those in the suburbs and rural areas. To reduce urban temperatures, urban planners have adopted new materials from various fields to cool cities, including permeable bricks. Due to their superior cooling effect, permeable bricks are widely used in urban construction. To meet market demand, permeable brick manufacturers need to increase their supply and also need to use cooling devices to cool the permeable bricks after production.
[0003] Existing cooling devices for permeable brick production involve placing the finished bricks into a cooling box and using a spray system inside the box for cooling. However, this method has the following problems:
[0004] When permeable bricks are placed inside the box for spray cooling, the inside of the box is in a semi-closed state. After the bricks are sprayed to cool them down, the inside of the box still has a certain temperature. Spray cooling alone is not enough to quickly cool the bricks down, making it impossible to put the high-temperature formed permeable bricks into use quickly. At the same time, the existing cooling device is not convenient enough when placing the bricks in.
[0005] Therefore, this utility model proposes an energy-saving cooling device for the production of permeable bricks. Utility Model Content
[0006] To address the shortcomings of existing technologies, this utility model provides an energy-saving cooling device for the production of permeable bricks, which solves the problems mentioned in the background art.
[0007] To achieve the above objectives, this utility model is implemented through the following technical solution: a cooling device for the production of energy-saving permeable bricks, including a box body, a placement component embedded inside the box body, a matching spray water tank and air-cooling plate fixedly connected to the top of the box body, an air pump fixedly connected to the surface of the air-cooling plate, a cover plate fixedly connected to the front of the box body, a recycling box fixedly connected to the inside of the box body, and an exhaust pipe fixedly connected to one side of the box body.
[0008] The placement assembly includes a guide side plate and a cooling plate with sliding connection. The surface of the cooling plate is fixedly provided with a first placement grid and a second placement grid. Guide plates are fixedly connected to both sides of the cooling plate. Guide columns are fixedly connected to the surface of the guide plates. A filter plate is embedded in the bottom of the cooling plate.
[0009] As a further technical solution of this utility model, the recycling bin is fixedly installed along the bottom inner wall of the bin body, the top surface of the recycling bin is grid-like, and a set of drain pipes is provided on the outside of the recycling bin.
[0010] As a further technical solution of this utility model, the guide side plate is arranged in two sets in an "L" shape, and is arranged along both sides of the box body. The guide side plate surface is provided with longitudinal guide grooves corresponding to the guide columns.
[0011] As a further technical solution of this utility model, the cooling plate is configured as a rectangular plate, with the middle section surface being a trapezoidal protrusion. The first placement grid is a rectangular grid recessed on the middle section surface of the cooling plate, and the second placement grid is a rectangular grid recessed on both sides of the cooling plate. Both the first placement grid and the second placement grid have honeycomb-shaped through holes on their surfaces.
[0012] As a further technical solution of this utility model, the filter plate is located directly below both the first placement grid and the second placement grid.
[0013] As a further technical solution of this utility model, the guide plate is arranged in an "L" shape and is vertically connected to both sides of the cooling plate. The guide post is arranged in a horizontally protruding manner, and the guide post is movably embedded in the guide groove on the surface of the guide side plate.
[0014] As a further technical solution of this utility model, the spray water tank and the air-cooling plate are staggered on the top of the box body, and the spray water tank and the air-cooling plate are arranged horizontally. The bottom of the spray water tank is provided with multiple sets of spray heads corresponding to the top of the inside of the box body, and the bottom of the air-cooling plate is provided with multiple sets of airflow nozzles corresponding to the top of the inside of the box body.
[0015] As a further technical solution of this utility model, multiple sets of air delivery pipes are connected to the corresponding air-cooling plate outside the air pump.
[0016] This utility model provides an energy-saving cooling device for the production of permeable bricks, which has the following advantages compared with the prior art:
[0017] 1. This design is an energy-saving cooling device for permeable brick production. It achieves the effect of temporarily storing and collecting the water generated during the cooling process through a recycling box, and achieves the effect of spraying and air cooling the external bricks placed on the cooling plate from the top of the box.
[0018] 2. This design provides an energy-saving cooling device for permeable brick production. The device uses a cooling plate and its surface, along with a first and second placement grid, to place the finished bricks. It also works with a filter plate to filter the cooling water source. A guide plate and guide column facilitate the sliding connection between the cooling plate and the guide side plate. The guide side plate allows the cooling plate to slide and adjust within the housing. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of a cooling device for the production of energy-saving permeable bricks.
[0020] Figure 2 An exploded view of the overall structure and connection of a cooling device for the production of energy-saving permeable bricks;
[0021] Figure 3 A cooling device for the production of energy-saving permeable bricks Figure 2 Enlarged view of the structure at point A in the middle;
[0022] Figure 4 A cooling device for the production of energy-saving permeable bricks Figure 2 Enlarged view of the structure at point B in the middle.
[0023] In the diagram: 1. Box body; 2. Placement components; 3. Cover plate; 4. Spray water tank; 5. Air-cooled plate; 6. Guide side plate; 7. Cooling plate; 8. Filter plate; 9. First placement compartment; 10. Second placement compartment; 11. Air pump; 12. Guide plate; 13. Guide column; 14. Recycling box; 15. Exhaust pipe. Detailed Implementation
[0024] 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. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.
[0025] Please see Figure 1-4This utility model provides a technical solution for an energy-saving cooling device for permeable brick production: it includes a box body 1, with a placement component 2 embedded inside the box body 1, a matching spray water tank 4 and a cooling plate 5 fixedly connected to the top of the box body 1, an air pump 11 fixedly connected to the surface of the cooling plate 5, a cover plate 3 fixedly connected to the front of the box body 1, a recycling box 14 fixedly connected inside the box body 1, an exhaust pipe 15 fixedly connected to one side of the box body 1, the recycling box 14 fixedly installed along the bottom inner wall of the box body 1, the top surface of the recycling box 14 is grid-shaped, and a set of drain pipes is provided on the outside of the recycling box 14. The recycling box 14 achieves the effect of temporarily storing and collecting the water generated during the cooling process. The water generated during the cooling process of the bricks is filtered through the grid-shaped top of the recycling box 14 and then collected in the recycling box 14.
[0026] like Figure 2-3 As shown, the placement assembly 2 includes a slidingly connected guide side plate 6 and a cooling plate 7. A first placement grid 9 and a second placement grid 10 are fixedly disposed on the surface of the cooling plate 7. Guide plates 12 are fixedly connected to both sides of the cooling plate 7, and guide posts 13 are fixedly connected to the surface of the guide plates 12. A filter plate 8 is embedded in the bottom of the cooling plate 7. The guide side plate 6 is arranged in two sets in an "L" shape, along both sides of the housing 1. A longitudinal guide groove is opened on the surface of the guide side plate 6 corresponding to the guide post 13. The cooling plate 7 is a rectangular plate with a trapezoidal raised section in its middle section. The first placement grid 9 is a rectangular recessed section on the middle section surface of the cooling plate 7, and the second placement grid 10 is a rectangular recessed section on both sides of the cooling plate 7. The first placement grid 9 and the second placement grid 10 are... The surface of each grid 10 is provided with honeycomb-shaped perforations. The filter plate 8 is located directly below both the first grid 9 and the second grid 10. The guide plate 12 is L-shaped and vertically connected to both sides of the cooling plate 7. The guide post 13 is laterally protruding and is movably embedded in the guide groove on the surface of the guide side plate 6. Through the cooling plate 7 and its surface, the first grid 9 and the second grid 10, the finished bricks are placed. At the same time, the filter plate 8 is used to filter the cooling water source. The guide plate 12 and the guide post 13 facilitate the sliding connection between the cooling plate 7 and the guide side plate 6. The guide side plate 6 facilitates the sliding adjustment of the cooling plate 7 inside the box 1.
[0027] When cooling the external permeable bricks, the user places the external bricks in sequence on the first placement grid 9 and the second placement grid 10 on the cooling plate 7, so that the guide post 13 is embedded in the guide groove on the surface of the guide plate 12. Then the entire cooling plate 7 is embedded into the box 1. The water source during the cooling process passes through the first placement grid 9, the second placement grid 10 and the filter plate 8 after cooling the bricks and is collected in the recycling box 14.
[0028] like Figure 2 and Figure 4 As shown, the spray water tank 4 and the air-cooled plate 5 are staggered on the top of the box 1 and are arranged horizontally. The bottom of the spray water tank 4 corresponds to the top of the box 1 with multiple sets of spray nozzles, while the bottom of the air-cooled plate 5 corresponds to the top of the box 1 with multiple sets of airflow nozzles. The air pump 11 is connected to the air-cooled plate 5 with multiple sets of air supply pipes. The spray water tank 4 and the air-cooled plate 5 achieve the effect of spraying and air-cooling the external bricks placed on the cooling plate 7 from the top of the box 1.
[0029] After the external bricks are placed on the cooling plate 7, the spray water tank 4 sprays water to cool the bricks. Then, multiple airflow nozzles at the bottom of the air-cooled plate 5 are activated to air-cool the bricks after spraying. During this process, the air-cooled plate 5 can quickly cool the inside of the box 1 and remove residual water from the surface of the bricks while air-cooling them.
[0030] The working principle of this utility model is as follows: When this device is in use, it first sprays the bricks to cool them down. The water generated by the spraying is recycled into the recycling box 14 through the first placement grid 9, the second placement grid 10 and the filter plate 8. In this cooling process, the combination of spraying and air cooling can quickly cool the temperature of the brick surface and the temperature inside the box 1.
[0031] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. Structures, devices, and operating methods not specifically described or explained in this utility model are implemented according to conventional methods in the art, unless otherwise specified or limited.
Claims
1. A cooling device for the production of energy-saving permeable bricks, characterized in that: The box includes a housing (1), a placement component (2) is embedded inside the housing (1), and a matching spray water tank (4) and a cooling plate (5) are fixedly connected to the top of the housing (1). An air pump (11) is fixedly connected to the surface of the cooling plate (5). A cover plate (3) is fixedly connected to the front of the housing (1). A recycling box (14) is fixedly connected inside the housing (1), and an exhaust pipe (15) is fixedly connected to one side of the housing (1). The placement assembly (2) includes a guide side plate (6) and a cooling plate (7) that are slidably connected. A first placement grid (9) and a second placement grid (10) are fixedly provided on the surface of the cooling plate (7). Guide plates (12) are fixedly connected to both sides of the cooling plate (7). Guide posts (13) are fixedly connected to the surface of the guide plates (12). A filter plate (8) is embedded in the bottom of the cooling plate (7).
2. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The recycling bin (14) is fixedly installed along the bottom inner wall of the box body (1), the top surface of the recycling bin (14) is grid-shaped, and a set of drain pipes is provided on the outside of the recycling bin (14).
3. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The guide side plate (6) is arranged in two sets in an "L" shape, and is arranged along both sides of the box body (1). The surface of the guide side plate (6) is provided with a longitudinal guide groove corresponding to the guide column (13).
4. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The cooling plate (7) is generally set as a rectangular plate, with the middle section surface being a trapezoidal platform protruding. The first placement grid (9) is a rectangular grid recessed on the middle section surface of the cooling plate (7), and the second placement grid (10) is a rectangular grid recessed on both sides of the cooling plate (7). The surfaces of the first placement grid (9) and the second placement grid (10) are both provided with honeycomb-shaped through holes.
5. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The filter plate (8) is located directly below both the first placement grid (9) and the second placement grid (10).
6. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The guide plate (12) is L-shaped and vertically connected to both sides of the cooling plate (7). The guide post (13) is laterally convex and is movably embedded in the guide groove on the surface of the guide side plate (6).
7. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The spray water tank (4) and the air-cooled plate (5) are staggered on the top of the box body (1). The spray water tank (4) and the air-cooled plate (5) are arranged horizontally. The bottom of the spray water tank (4) is provided with multiple sets of spray heads at the top inside the box body (1), and the bottom of the air-cooled plate (5) is provided with multiple sets of airflow nozzles at the top inside the box body (1).
8. The cooling device for energy-saving permeable brick production according to claim 1, characterized in that: The air pump (11) is connected to a corresponding air-cooled plate (5) with multiple sets of air supply pipes.