Construction cooling device with water resource recycling function

By introducing a water circulation system and a detachable support frame into the construction cooling device, the problem of water loss during spraying is solved, achieving efficient water recycling and cooling effects, and adapting to different construction environments.

CN224136159UActive Publication Date: 2026-04-17CHINA CONSTR FIFTH ENG DIV CORP LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHINA CONSTR FIFTH ENG DIV CORP LTD
Filing Date
2025-05-27
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing construction cooling devices cause water to flow around after being sprayed, resulting in resource waste and making it impossible to effectively recycle the water.

Method used

A construction cooling device combining spray cooling and water circulation technology was designed. It utilizes an inclined water inlet trough and water pump on the storage base to form a closed-loop water circulation system, collects water resources by gravity and reuses them, and combines the detachable connection of the support frame to adapt to different construction scenarios.

Benefits of technology

It achieves efficient recycling of water resources, reduces water loss, improves water utilization, and has a simple structure, strong adaptability, and significant cooling effect.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224136159U_ABST
    Figure CN224136159U_ABST
Patent Text Reader

Abstract

According to the technical scheme, the construction cooling device with the water resource recycling function is characterized by comprising a storage base, a supporting frame, a water storage spraying assembly and a water pump, the storage base comprises a water guide groove, the storage base inclines towards the water guide groove, the water guide groove is used for collecting water resources dripping on the storage base, and the supporting frame is used for supporting the water storage spraying assembly. The water pump is respectively communicated with the water guide groove and the water storage spraying assembly, the supporting frame is detachably connected with the storage base, and the water storage spraying assembly is installed on the supporting frame. By means of the integrated design of spraying, collecting and circulating, water resources are utilized to the maximum extent while efficient cooling is achieved, the structure is light, cost is low, and environmental protection benefits are achieved; the method is an ideal choice for high-temperature construction scenes.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to a cooling device, and more specifically, to a construction cooling device with water resource recycling function. Background Technology

[0002] In high-temperature environments under direct sunlight, the lack of shading or cooling devices at construction sites leads to excessively high overall temperatures. This not only causes discomfort for construction workers but also makes stored materials prone to deformation due to the heat. Existing technologies use spray systems to cool the site by spraying water, primarily for high-temperature environments such as construction sites and outdoor operations. These systems work by using water evaporation to remove heat. However, in practice, it has been found that water tends to flow around after being sprayed onto the ground, evaporating in areas far from the intended cooling point, resulting in ineffective cooling and wasted resources. Therefore, a construction cooling device with water recycling capabilities is needed. This device combines spray cooling with water recycling technology to prevent water from flowing around after being sprayed onto the ground, thus improving water utilization.

[0003] For the reasons mentioned above, how to prevent water resources from flowing around after being sprayed onto the ground is the problem that this application addresses. Utility Model Content

[0004] To address the shortcomings of existing technologies, a construction cooling device with water resource recycling function is provided. This device combines spray cooling and water recycling technology, which can prevent water resources from flowing around after being sprayed onto the ground, thereby improving the water resource utilization rate.

[0005] To achieve the above objectives, the following technical solution is provided: a construction cooling device with water resource recycling function, including a storage base, a support frame, a water storage spray assembly and a water pump. The storage base includes a water inlet trough, and the storage base is inclined toward the water inlet trough. The water inlet trough is used to collect water resources dripping onto the storage base. The water pump is connected to the water inlet trough and the water storage spray assembly respectively. The support frame is detachably connected to the storage base, and the water storage spray assembly is installed on the support frame.

[0006] In summary, the above technical solution has the following beneficial effects: energy saving and consumption reduction are achieved by combining a water circulation system with spray cooling. The water storage spray component can spray water onto the construction area by setting high-pressure nozzles or directly dripping water. The ambient temperature is quickly reduced by utilizing the principle of water mist evaporation and heat absorption. The water droplets dripping onto the material surface can reduce the material surface temperature even faster. After spraying, part of the water mist evaporates, and the remaining water droplets fall onto the storage base. Since the storage base is designed with an inclined water inlet, the water can be automatically collected into the water inlet by gravity. Then, the water pump transfers the water collected in the water inlet to the water storage spray component for reuse in spraying, forming a closed-loop water circulation. This can prevent water resources from flowing around after being sprayed onto the ground and improve the water resource utilization rate.

[0007] In addition, the support frame and storage base are detachably connected, which makes it easy to adjust the spray height, angle or position of the moving device to adapt to the needs of different construction scenarios;

[0008] The inclined water channel design on the storage base improves water collection efficiency and reduces water loss. It also serves as a support and water collection function, reducing the cost of additional water collection equipment. The detachable support frame facilitates transportation, assembly, and adjustment of the spray range, adapting to complex construction environments. The overall device has a simple structure, requires no complex piping, and has a low failure rate.

[0009] This utility model, through its integrated "spraying-collection-circulation" design, achieves efficient cooling while maximizing the use of water resources. It also features a lightweight structure, low cost, and environmental benefits, making it an ideal choice for high-temperature construction scenarios. Attached Figure Description

[0010] Figure 1 A three-dimensional structural diagram of a construction cooling device with water resource recycling function;

[0011] Figure 2 This is a cross-sectional view of the storage base in this utility model;

[0012] Figure 3 This is a cross-sectional view of the guide tube in this utility model;

[0013] Figure 4 This is a cross-sectional view of the water storage spray assembly in this utility model;

[0014] Figure 5 for Figure 4 A magnified view of a portion of point A in the middle.

[0015] Reference numerals: 1. Storage base; 2. Support frame; 3. Water storage spray assembly; 4. Water pump;

[0016] 11. Water inlet channel; 12. Connecting channel; 13. First mounting hole; 14. Guide component; 15. Second mounting hole;

[0017] 21. Frame; 22. Guide tube; 23. First absorbent resin; 24. Contact ring;

[0018] 221. Opening;

[0019] 31. Movable frame; 32. Water storage tank; 33. Diverter; 34. Second absorbent resin; 35. Baffle;

[0020] 321. Outlet; 322. Inlet; 323. Through hole. Detailed Implementation

[0021] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments. Identical components are indicated by the same reference numerals. It should be noted that the terms "front," "rear," "left," "right," "upper," and "lower" used in the following description refer to directions in the accompanying drawings, and the terms "bottom surface," "top surface," "inner," and "outer" refer to directions toward or away from the geometric center of a specific component, respectively.

[0022] Reference Figure 1-5 As shown, a construction cooling device with water resource recycling function includes a storage base 1, a support frame 2, a water storage spray assembly 3, and a water pump 4. The storage base 1 includes a water inlet trough 11, and the storage base 1 is inclined toward the water inlet trough 11. The water inlet trough 11 is used to collect water resources dripping onto the storage base 1. The water pump 4 is connected to the water inlet trough 11 and the water storage spray assembly 3 respectively. The support frame 2 is detachably connected to the storage base 1, and the water storage spray assembly 3 is installed on the support frame 2.

[0023] Energy saving and consumption reduction are achieved by combining a water circulation system with spray cooling. The water storage spray component 3 can spray water to the construction area by setting high-pressure nozzles or directly dripping water. The ambient temperature is quickly reduced by the principle of water mist evaporation and heat absorption. The water droplets that fall on the material surface can reduce the material surface temperature even faster. After spraying, part of the water mist evaporates, and the remaining water droplets fall onto the storage base 1. Since the storage base 1 is designed with an inclined water inlet trough 11, the water can be automatically collected into the water inlet trough 11 by gravity. Then, the water pump 4 transfers the water collected in the water inlet trough 11 to the water storage spray component 3 for reuse in spraying, forming a closed-loop water circulation. This can prevent water resources from flowing around after being sprayed onto the ground and improve the water resource utilization rate.

[0024] In addition, the support frame 2 and the storage base 1 are detachably connected, which makes it easy to adjust the spray height, angle or position of the moving device to adapt to the needs of different construction scenarios;

[0025] The inclined water channel 11 on the storage base 1 improves water collection efficiency and reduces water loss. It also serves as a support and water collection function, reducing the cost of additional water collection equipment. Combined with the detachable support frame 2, it facilitates transportation, assembly and adjustment of the spray range, adapts to complex construction environments, and has a simple overall structure. It does not require complex pipeline laying and has a low failure rate.

[0026] This utility model, through its integrated "spraying-collection-circulation" design, achieves efficient cooling while maximizing the use of water resources. It also features a lightweight structure, low cost, and environmental benefits, making it an ideal choice for high-temperature construction scenarios.

[0027] Furthermore, the support frame 2 includes a frame body 21, a guide tube 22, and a first absorbent resin 23. The guide tube 22 has an opening 221 facing the storage base 1. The first absorbent resin 23 is fixedly connected inside the guide tube 22. Both ends of the guide tube 22 are fixedly connected to the frame body 21 and the storage base 1, respectively. The first absorbent resin 23 abuts against the storage base 1.

[0028] When water drips onto the storage base 1, the first absorbent resin 23 can absorb the water. By utilizing the properties of the first absorbent resin 23 and the installation method of the frame 21 and the guide pipe 22, a three-dimensional cooling zone can be formed around the material. Furthermore, if water overflows from the water tank 11 in a short period of time, the first absorbent resin 23 can absorb the overflowing water, thereby preventing the water from flowing around after being sprayed onto the ground and improving the water utilization rate.

[0029] Furthermore, the support frame 2 also includes an abutment ring 24, which is fixedly connected to the guide tube 22 and abuts against the first absorbent resin 23.

[0030] Since the first absorbent resin 23 expands and contracts, it has no fixed shape. In order to prevent the first absorbent resin 23 from accumulating at the bottom of the guide tube 22 due to gravity, multiple abutment rings 24 are provided to distribute and bear the first absorbent resin 23, so that the bottom of the first absorbent resin 23 has enough expansion space.

[0031] Furthermore, the storage base 1 also includes a connecting groove 12 and a first mounting hole 13. The connecting groove 12 is disposed in the storage base 1 and is connected to the water inlet groove 11. The first mounting hole 13 is connected to the connecting groove 12 and is used to install the guide tube 22. The first absorbent resin 23 extends into the connecting groove 12.

[0032] Furthermore, the storage base 1 also includes a guide 14 and a second mounting hole 15. The guide 14 is disposed in the water inlet trough 11 and is used to guide water resources to the connecting trough 12. The second mounting hole 15 is connected to the connecting trough 12, and the water pump 4 is connected to the second mounting hole 15.

[0033] After spraying, the water droplets fall onto the storage base 1 and flow downwards through the inclined water inlet trough 11. The guide 14 concentrates the water flow and directs it to the inlet of the connecting trough 12, reducing water dispersion. The connecting trough 12 serves as a channel, working with the first absorbent resin 23 to quickly absorb the water flow and ensure continuous cooling of the area. At the same time, the first absorbent resin 23 has a limited water storage capacity, and most of the water resources are drawn from the connecting trough 12 by the water pump 4 through the second mounting hole 15 and transported to the water storage spray assembly 3. In addition, the first mounting hole 13 can be extended to connect external water storage equipment in addition to installing the guide pipe 22, enhancing the system flexibility.

[0034] Furthermore, the water storage spray assembly 3 includes a movable frame 31 and a water storage tank 32. The bottom of the water storage tank 32 is provided with a water outlet 321 and the top of the water storage tank 32 is provided with a water inlet 322. The movable frame 31 is fixedly connected to the water storage tank 32 and slidably connected to the frame body 21. The water pump 4 is connected to the water inlet 322.

[0035] Furthermore, the water storage spray assembly 3 includes a diverter 33, a second absorbent resin 34, and a baffle 35. The water storage tank 32 is provided with a through hole 323. The diverter 33 is fixedly connected inside the water storage tank 32 and is located below the inlet 322. The diverter 33 is used to divide the water storage tank 32 into a first space and a second space. The first space is connected to the movable frame 31 through the through hole 323, and the outlet 321 is connected to the second space. The second absorbent resin 34 and the baffle 35 are both located inside the movable frame 31. The two ends of the second absorbent resin 34 are fixedly connected to the movable frame 31 and the baffle 35, respectively. The baffle 35 is slidably connected to the movable frame 31 and is used to block the outlet 321.

[0036] When water enters the water storage tank 32 through the inlet 322, the diverter 33 guides a small portion of the water into the first space and the diverter 33 guides the majority of the water into the second space.

[0037] After the water enters the first space, the water enters the movable frame 31 through the through hole 323 and comes into contact with the second water-absorbing resin 34.

[0038] After the second absorbent resin 34 absorbs water and expands, the second absorbent resin 34 drives the baffle 35 to move, and the baffle 35 blocks the water outlet 321.

[0039] Water pump 4 injects water into water storage tank 32 through inlet 322. Most of the water is directed to the second space through diverter 33 and is stored before being sprayed through outlet 321. A small portion of the water is diverted to the first space and enters the moving frame 31 through through hole 323. The second absorbent resin 34 expands rapidly due to water absorption. The expanded second absorbent resin 34 generates thrust, pushing baffle 35 to slide along the moving frame 31. When it expands to its limit, baffle 35 completely covers outlet 321, blocking the water flow in the second space, thereby stopping the spraying and preventing excessive water consumption. When the water in storage base 1 is exhausted, water pump 4 can no longer transport water, so the second absorbent resin 34 will gradually dry. After the second absorbent resin 34 dries, it can drive baffle 35 to move in the opposite direction, thereby starting the spraying and forming a cycle.

[0040] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.

Claims

1. A construction cooling device with water resource recycling function, characterized in that, The device includes a storage base, a support frame, a water-storage spray assembly, and a water pump. The storage base includes a water inlet trough, which is inclined towards the water inlet trough. The water inlet trough is used to collect water resources that drip onto the storage base. The water pump is connected to both the water inlet trough and the water-storage spray assembly. The support frame is detachably connected to the storage base, and the water-storage spray assembly is mounted on the support frame.

2. The construction cooling device having a water resource recycling function according to claim 1, characterized in that, The support frame includes a frame body, a guide tube, and a first absorbent resin. The guide tube has an opening facing the storage base. The first absorbent resin is fixedly connected inside the guide tube. Both ends of the guide tube are fixedly connected to the frame body and the storage base, respectively. The first absorbent resin abuts against the storage base.

3. The construction cooling device having a water resource recycling function according to claim 2, characterized in that, The support frame also includes an abutment ring, which is fixedly connected inside the guide tube and abuts against the first absorbent resin.

4. The construction cooling device having a water resource recycling function according to claim 3, characterized in that, The storage base also includes a connecting groove and a first mounting hole. The connecting groove is located inside the storage base and is connected to a water inlet groove. The first mounting hole is connected to the connecting groove and is used to install a guide pipe. The first absorbent resin extends into the connecting groove.

5. The construction cooling device having a water resource recycling function according to claim 4, characterized in that, The storage base also includes a guide and a second mounting hole. The guide is located in the water inlet channel and is used to guide water resources to the connecting channel. The second mounting hole is connected to the connecting channel, and the water pump is connected to the second mounting hole.

6. The construction cooling device having a water resource recycling function according to claim 5, characterized in that, The water storage and spraying assembly includes a movable frame and a water storage tank. The bottom of the water storage tank is provided with a water outlet, and the top of the water storage tank is provided with a water inlet. The movable frame is fixedly connected to the water storage tank and slidably connected to the frame body. The water pump is connected to the water inlet.

7. The construction cooling device having a water resource recycling function according to claim 6, characterized in that, The water storage spray assembly includes a diverter, a second absorbent resin, and a baffle. The water storage tank has a through hole. The diverter is fixedly connected inside the water storage tank and is located below the water inlet. The diverter is used to divide the water storage tank into a first space and a second space. The first space is connected to the movable frame through the through hole, and the water outlet is connected to the second space. The second absorbent resin and the baffle are both located inside the movable frame. The two ends of the second absorbent resin are fixedly connected to the movable frame and the baffle, respectively. The baffle is slidably connected to the movable frame and is used to block the water outlet. When water enters the storage tank through the inlet, the diverter guides a small portion of the water into the first space, and the diverter guides the majority of the water into the second space. After the water enters the first space, it enters the movable frame through the through hole and comes into contact with the second absorbent resin. After the second absorbent resin absorbs water and expands, it causes the baffle to move, and the baffle blocks the water outlet.