A spraying system for plant cooling
Patent Information
- Application Number
- CN202522295231.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-30
- Publication Date
- 2026-09-15
- Estimated Expiration
- 2035-10-30
AI Technical Summary
[0016] Compared with the prior art, the beneficial effects of this utility model are: the spray system for cooling factory buildings has energy-saving effect and a large spray range. Through the use of the collector plate, water can be collected and reused multiple times, thereby achieving the purpose of energy saving. Furthermore, the use of the nozzles can efficiently spray and cool the factory building. The specific details are as follows:
Smart Images

Figure CN224757201U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of factory cooling technology, specifically a spray system for cooling factory buildings. Background Technology
[0002] During the hot summer months, the temperature inside the production plant can reach over 35°C. In steel structure production sites, most workers use welding machines for welding. The high temperature generated during welding, combined with the already high weather temperature, has a severe impact on the workers' physiology and working environment. Therefore, a sprinkler system is needed to cool the plant and avoid affecting the workers' working environment.
[0003] Existing sprinkler systems spray water through high-pressure nozzles, which atomize the water to cool the factory. However, since the high-pressure nozzles are mounted on trolleys, they take up usable space in the factory, making them inconvenient to use.
[0004] To address the aforementioned deficiencies, a factory cooling and dust removal spray atomizing device with authorization announcement number CN221005321U is described. This device utilizes a suspended mounting structure to fix the structure to a tee, which is then connected to a rigid suspension rod, ensuring effective installation of the tee. The mounting sleeve within the suspended mounting structure is equipped with a locking screw, allowing the tee to rotate relative to the mounting sleeve, thereby changing the angle of the atomizing nozzle and improving operational flexibility. The use of a suspension assembly for connection enables rapid suspension operation while ensuring the device does not detach from the rigid suspension rod, resulting in excellent stability. The limiting plate is removable, facilitating quick disassembly and removal of the suspension assembly. The device features a simple structure and convenient, quick operation.
[0005] In actual use, although the above-mentioned device can be sprayed by suspension, the atomizing nozzles require water during use. Since the factory area is large, the atomizing nozzles consume a lot of water, which leads to water waste and poor energy-saving effect.
[0006] Therefore, we proposed a spray system for cooling factory buildings that can effectively solve the above problems. Utility Model Content
[0007] The purpose of this utility model is to provide a spray system for cooling factory buildings, in order to solve the problem mentioned in the background art that the atomizing nozzles on the market require water during use, and the factory area is large, which leads to a large amount of water consumption by the atomizing nozzles, resulting in water waste and poor energy-saving effect.
[0008] To achieve the above objectives, this utility model provides the following technical solution: a spray system for cooling a factory building, comprising a factory building body, wherein the factory building body is installed on the ground;
[0009] The interior of the plant building is equipped with a water storage tank, and water supply pipes extend into and are connected to the left and right sides of the water storage tank. A water pump is installed at the top of the water supply pipes. The top of the water supply pipes penetrates the interior of the manifold, and the top of the water supply pipes is connected to the outside of the nozzles through a branch pipe. The nozzles are installed at the top of the manifold to form a cooling mechanism. The outside of the manifold is fixed to the interior of the plant building, and the bottom of the manifold extends into and is fixedly connected to the water storage tank.
[0010] Preferably, the diverter pipe is installed on the top of the manifold, and the diverter pipe is connected to the nozzle via a flexible hose.
[0011] Preferably, the collector plate is triangular in shape and inclined, and the bottom end of the collector plate has an opening, and the top of the water storage tank fits into the opening at the bottom end of the collector plate to form a sealing mechanism.
[0012] Preferably, an impeller is provided inside the rear end of the diverter, and the rear end of the impeller extends out of the interior of the diverter and is connected to the first gear.
[0013] Preferably, the teeth on the first gear are arranged in half and the other half is smooth, and the inner end of the first gear meshes with the second gear to form a transmission mechanism.
[0014] Preferably, the middle part of the second gear is keyed to the rear end of the rotary rod, and the rotary rod is connected to the top of the collector plate through a bearing, and nozzles are fixed on the rotary rod at equal intervals.
[0015] Preferably, a spiral spring is nested at the rear end of the rotating rod, and the rear end of the spiral spring is connected to the front end of the second gear, while the front end of the spiral spring is connected to the collector plate.
[0016] Compared with the prior art, the beneficial effects of this utility model are: the spray system for cooling factory buildings has energy-saving effect and a large spray range. Through the use of the collector plate, water can be collected and reused multiple times, thereby achieving the purpose of energy saving. Furthermore, the use of the nozzles can efficiently spray and cool the factory building. The specific details are as follows:
[0017] (1) When the spray nozzles spray water, they will cool down the main body of the plant. After use, the water can be transported back to the water storage tank through the collection plate, thus achieving the purpose of multiple recycling and thus achieving energy saving.
[0018] (2) It is equipped with a nozzle. The rotation of the second gear can drive the nozzle to swing, which in turn allows the nozzle to rotate back and forth, thus increasing the spray range of the nozzle and improving the cooling effect.
[0019] (3) An impeller is provided. An impeller is provided inside the rear end of the diversion pipe, and the rear end of the impeller extends out of the interior of the diversion pipe and is connected to the first gear. This allows the water flow to drive the impeller to rotate, thereby driving the first gear to rotate, thus reducing the energy consumption.
[0020] (4) A first gear is provided, with half of the upper teeth of the first gear being set and the other half being smooth. The inner end of the first gear meshes with the second gear to form a transmission mechanism, thereby enabling the first gear to drive the second gear to rotate intermittently, thus facilitating the second gear to drive the nozzle to swing.
[0021] (5) A vortex spring is provided, which is nested at the rear end of the rotating rod. The rear end of the vortex spring is connected to the front end of the second gear, and the front end of the vortex spring is connected to the collector plate. This allows the vortex spring to drive the rotating rod to rotate, thereby allowing the rotating rod to drive the nozzle to swing. Attached Figure Description
[0022] Figure 1 This is a front view structural diagram of the present invention;
[0023] Figure 2 This is a schematic diagram of the connection structure between the main body of the factory building and the collector plate of this utility model;
[0024] Figure 3 This is a schematic diagram of the connection structure between the collector plate and the swivel rod of this utility model;
[0025] Figure 4 This is a schematic diagram of the connection structure between the manifold and the water storage tank of this utility model;
[0026] Figure 5 This is a schematic diagram of the connection structure between the first gear and the second gear of this utility model;
[0027] Figure 6 This is a schematic diagram of the connection structure between the impeller and the first gear of this utility model.
[0028] In the diagram: 1. Plant body; 2. Water storage tank; 3. Water supply pipe; 4. Diversion pipe; 5. Nozzle; 6. Collector plate; 7. Rotary rod; 8. Impeller; 9. First gear; 10. Second gear; 11. Scroll spring. Detailed Implementation
[0029] 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.
[0030] Example 1: A spray system for cooling factory buildings solves the problem that existing atomizing nozzles require water during use, and since factory areas are large, the atomizing nozzles consume a lot of water, leading to water waste and poor energy-saving effects. The use of a water storage tank 2 reduces water waste, thereby achieving energy savings. The system discloses:
[0031] The main body of the factory building 1 is installed on the ground; the interior of the main body of the factory building 1 is equipped with a water storage tank 2, and water supply pipes 3 extend into and are connected to the left and right sides of the water storage tank 2. A water pump is installed at the top of the water supply pipes 3. The top of the water supply pipes 3 passes through the interior of the manifold 6, and the top of the water supply pipes 3 is connected to the outside of the nozzles 5 through the diversion pipes 4. The nozzles 5 are installed at the top of the manifold 6 to form a cooling mechanism. The outside of the manifold 6 is fixed inside the main body of the factory building 1, and the bottom of the manifold 6 extends into and is fixedly connected to the water storage tank 2.
[0032] refer to Figures 1 to 4 Water from the storage tank 2 is pumped through the water supply pipe 3 to the distribution pipe 4, which in turn distributes the water to each nozzle 5. The nozzles 5 compress the water into a mist for spraying, allowing the atomized water to cool the interior of the plant body 1. After use, the water falls onto the collecting plate 6 by gravity. Because the collecting plate 6 is tilted, the water flows downwards, allowing it to enter the storage tank 2 for storage. The water in the storage tank 2 can then... The water continues to be transported through the water pipe 3, and this process is repeated to recycle the water multiple times, thereby reducing water consumption and achieving energy saving. After a single spray cooling operation, the water will be collected inside the water storage tank 2, and the nozzle 5 will stop operating, waiting for the next spray operation. Because the water recycled in the water storage tank 2 absorbs heat, the water temperature will rise. However, while waiting for the next operation, the water in the water storage tank 2 will cool down naturally, thus avoiding the cooling effect being affected by the high water temperature in the next use.
[0033] Example 2: A spray system for cooling a factory building solves the problem that existing spray nozzles 5 spray people directly, thus wetting their clothes. Instead, the spray nozzles 5 spray the factory building itself 1, achieving efficient cooling while avoiding spraying people's clothes. The system discloses:
[0034] The collector plate 6 is triangular in shape and inclined, and the bottom end of the collector plate 6 has an opening. The top of the water storage tank 2 fits into the opening at the bottom end of the collector plate 6 to form a sealing mechanism. The diverter pipe 4 is installed on the top of the collector plate 6, and the diverter pipe 4 is connected to the nozzle 5 through a hose.
[0035] refer to Figure 2 and Figure 3 Since the top of the factory building 1 is mostly constructed of sheet metal, it absorbs heat when sunlight shines on it, causing the temperature inside the factory building 1 to rise rapidly. By spraying water onto the inner wall of the top of the factory building 1 through the nozzles 5, the nozzles 5 can prevent the heat from the top of the factory building 1 from being conducted into the interior of the factory building 1, thereby achieving the purpose of temperature control of the factory building 1 and thus having an effective and rapid cooling effect.
[0036] Example 3: A spray system for cooling factory buildings solves the problem that the existing spray range of the nozzle 5 is relatively limited, resulting in poor performance. By using the first gear 9, the nozzle 5 can be driven to swing, thereby increasing the spray range of the nozzle 5. The following is disclosed:
[0037] An impeller 8 is provided inside the rear end of the diverter pipe 4, and the rear end of the impeller 8 extends out of the interior of the diverter pipe 4 and is connected to the first gear 9. The first gear 9 has half of its teeth set and the other half is smooth. The inner end of the first gear 9 meshes with the second gear 10 to form a transmission mechanism. The middle part of the second gear 10 is keyed to the rear end of the rotating rod 7, and the rotating rod 7 is connected to the top of the collecting plate 6 through a bearing. The nozzles 5 are fixed at equal intervals on the rotating rod 7. A vortex spring 11 is nested at the rear end of the rotating rod 7, and the rear end of the vortex spring 11 is connected to the front end of the second gear 10. The front end of the vortex spring 11 is connected to the collecting plate 6.
[0038] refer to Figures 2 to 6 The water flow within the diversion pipe 4 drives the impeller 8 to rotate, which in turn drives the first gear 9 to rotate, which in turn drives the second gear 10 to rotate, which in turn drives the rotating rod 7 to rotate. The rotation of the rotating rod 7 causes the nozzle 5 to oscillate, and the rotation of the rotating rod 7 compresses the spiral spring 11. After the first gear 9 and the second gear 10 disengage, the force of the spiral spring 11 drives the rotating rod 7 to rotate in the opposite direction, which in turn causes the nozzle 5 to oscillate in the opposite direction. This process repeats, thereby increasing the spray range of the nozzle 5 and further improving the cooling efficiency of the plant body 1.
[0039] Working principle: When using this spray system for factory cooling, firstly, refer to... Figures 1 to 4 The water pump on the water supply pipe 3 can transport the water in the water storage tank 2 to the distribution pipe 4, and the water can be transported to each nozzle 5 through the distribution pipe 4, so that the atomized water can cool the interior of the plant body 1. The used water can fall onto the collecting plate 6 by gravity. Since the collecting plate 6 is set at an angle, the water can enter the interior of the water storage tank 2 for storage. This process can be repeated to recycle the water multiple times, thus achieving the purpose of energy saving.
[0040] refer to Figure 2 and Figure 3 Since the top of the factory building 1 is mostly made of sheet metal, when sunlight shines on it, the sheet metal on the top of the factory building 1 will absorb the heat. The spray nozzles 5 spray the inner wall of the top of the factory building 1, thereby achieving the purpose of temperature control of the factory building 1, thus having an effective and rapid cooling effect.
[0041] refer to Figures 2 to 6 The water flow in the diversion pipe 4 drives the impeller 8 to rotate, which in turn drives the first gear 9 to rotate, and the second gear 10 to rotate the rotating rod 7. This causes the spiral spring 11 to be compressed. After the first gear 9 and the second gear 10 disengage, the force of the spiral spring 11 drives the rotating rod 7 to rotate in the opposite direction. This process repeats, thereby increasing the spray range of the nozzle 5 and further improving the cooling efficiency of the plant body 1.
[0042] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0043] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A spray system for cooling a factory building, comprising a factory building body (1) installed on the ground; Its features are, The interior of the plant body (1) is provided with a water storage tank (2), and water supply pipes (3) extend into and are connected to the left and right sides of the water storage tank (2). A water pump is provided at the top of the water supply pipes (3). The top of the water supply pipes (3) penetrates the interior of the collector plate (6), and the top of the water supply pipes (3) is connected to the outside of the nozzles (5) through the diversion pipes (4). The nozzles (5) are set at the top of the collector plate (6) to form a cooling mechanism. The outside of the collector plate (6) is fixed inside the plant body (1), and the bottom of the collector plate (6) extends into and is fixedly connected to the water storage tank (2).
2. The spray system for cooling a factory building according to claim 1, characterized in that: The diverter pipe (4) is installed on the top of the collector plate (6), and the diverter pipe (4) is connected to the nozzle (5) by a hose.
3. A spray system for cooling factory buildings according to claim 1, characterized in that: The collector plate (6) is inclined in a triangular shape, and the bottom end of the collector plate (6) is provided with an opening. The top of the water storage tank (2) is attached to the opening at the bottom end of the collector plate (6) to form a sealing mechanism.
4. A spray system for cooling factory buildings according to claim 1, characterized in that: An impeller (8) is provided inside the rear end of the diversion pipe (4), and the rear end of the impeller (8) extends out of the interior of the diversion pipe (4) and is connected to the first gear (9).
5. A spray system for cooling factory buildings according to claim 4, characterized in that: The first gear (9) has a tooth block on one half and a smooth half. The inner end of the first gear (9) meshes with the second gear (10) to form a transmission mechanism.
6. A spray system for cooling a factory building according to claim 5, characterized in that: The middle key of the second gear (10) is connected to the rear end of the rotary rod (7), and the rotary rod (7) is connected to the top of the collector plate (6) by a bearing, and nozzles (5) are fixed at equal intervals on the rotary rod (7).
7. A spray system for cooling factory buildings according to claim 6, characterized in that: The rear end of the rotating rod (7) is nested with a vortex spring (11), and the rear end of the vortex spring (11) is connected to the front end of the second gear (10), and the front end of the vortex spring (11) is connected to the collector plate (6).
Citation Information
Patent Citations
A spray atomization device for cooling and dust removal in factory buildings
CN221005321U