Device for simulating atomized rainfall by uniformly distributing multiple nozzles
By using a multi-nozzle uniformly distributed simulated atomized rainfall device, and through the design of the spray module and docking components, the problem of poor rainfall uniformity in existing devices has been solved, achieving a highly efficient and uniform rainfall simulation effect, and improving the accuracy and aesthetics of scientific research and landscape creation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-04-14
AI Technical Summary
Existing single-nozzle or simple array nozzle devices suffer from poor rainfall uniformity during simulated rainfall, failing to realistically simulate the uniform distribution of natural rainfall. This affects the accuracy of scientific research and the efficiency of agricultural irrigation, and also damages the aesthetic appeal of the landscape.
The device employs a multi-nozzle uniformly distributed simulated atomized rainfall device, which is connected by several spray modules and docking components. Each spray module is equipped with a bend, connecting pipe, and liquid inlet tee to ensure the pressure uniformity of each atomizing nozzle. The device's flexibility and stability are improved through quick-connect fittings and detachable connection design.
It improves the uniformity and realism of rainfall, simplifies the installation process, reduces maintenance costs, enhances the applicability and reliability of the device, and meets the simulation needs of different scenarios.
Smart Images

Figure CN224114336U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of simulated rainfall technology, and in particular to a device for simulating atomized rainfall with multiple nozzles evenly distributed. Background Technology
[0002] Simulated atomized rainfall is a widely used technology in various fields such as scientific research, agriculture, environmental monitoring, and landscape design. It simulates the natural rainfall process artificially to achieve purposes such as research, testing, or environmental beautification. In the development of devices for simulating atomized rainfall with multiple nozzles, this device, as the core equipment, has a decisive impact on the uniformity and realism of the rainfall. In the application of multi-nozzle simulated atomized rainfall, especially in scenarios requiring a high degree of fidelity to natural rainfall distribution, existing single-nozzle or simple array nozzle devices are gradually revealing significant limitations.
[0003] Specifically, existing single-nozzle or simple array sprinkler systems face the prominent problem of poor rainfall uniformity during simulated rainfall. Due to deficiencies in sprinkler layout or design, these systems often result in high rainfall intensity in the central area and low intensity in the peripheral areas, creating a significant rainfall gradient and failing to realistically simulate the uniform distribution of natural rainfall. This uneven rainfall pattern not only affects the accuracy and reliability of simulated rainfall but may also introduce errors in scientific research experiments, cause water waste in agricultural irrigation, or damage the overall aesthetics in landscape design.
[0004] Therefore, to address the shortcomings of existing technologies, we urgently need a device for simulating atomized rainfall with multiple nozzles evenly distributed to solve this problem. This device should significantly improve the uniformity and realism of rainfall, while better meeting the modern needs of scientific research, agriculture, environmental monitoring, and landscape design, providing strong support for the sustainable development of these industries. Utility Model Content
[0005] The purpose of this invention is to provide a device for simulating atomized rainfall by uniformly distributing multiple nozzles, which solves the problem of poor rainfall uniformity faced by existing single-nozzle or simple array nozzle devices in the process of simulating rainfall.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] A device for simulating atomized rainfall with multiple nozzles evenly distributed includes several spray modules, and each pair of adjacent spray modules are connected by a docking component.
[0008] The spray module includes four bends, several connecting pipes, and a liquid inlet tee. Several connecting tee pipes are provided between each pair of adjacent bends and inside the space enclosed by the four bends. The liquid inlet tee pipe is located at the center of one side of the spray module. The ends of the several connecting pipes are connected to adjacent bends, liquid inlet tee pipes, or connecting tee pipes. An atomizing nozzle is connected to the bottom of each connecting tee pipe.
[0009] Preferably, the four bends are located at the four corners of the spray module, and the liquid inlet tee is located at the center between two of the bends.
[0010] Preferably, the lengths of the connecting tubes are all different, and the atomizing nozzle is detachably connected to the bottom of the connecting tee tube.
[0011] Preferably, quick-connect fittings are provided at the interfaces of both the connecting tee and the liquid inlet tee, and one interface of the liquid inlet tee is connected to the liquid delivery device.
[0012] Preferably, the docking assembly includes a connecting plate, with connecting grooves formed on both sides of the connecting plate, and the side wall of the connecting pipe is detachably connected to the inner wall of the connecting groove.
[0013] Preferably, each of the top two sides of the connecting plate is provided with a limiting screw with one end threaded through the connecting plate.
[0014] This utility model has at least the following beneficial effects:
[0015] By combining and flexibly arranging multiple spray modules, precise coverage of the simulated misting rainfall area is achieved. Whether linear, matrix, ring-shaped, or irregularly shaped, it can easily handle these configurations, greatly improving the applicability and flexibility of the device.
[0016] Secondly, each spray module receives liquid independently via a liquid inlet tee, ensuring that the atomizing nozzles within each module experience the same pressure. This feature is crucial for improving the uniformity of rainfall. It effectively solves the problem of poor rainfall uniformity commonly found in existing single-nozzle or simple array nozzle devices, enabling the entire device to form a uniform and continuous rainfall surface during simulated rainfall, highly replicating the distribution of natural rainfall.
[0017] Furthermore, the ingenious design of the bends, connecting pipes, and connecting tees in the device not only provides a stable installation interface for the atomizing nozzles but also ensures smooth liquid flow within the module. This structural design not only improves the stability and reliability of the device but also reduces maintenance costs and ease of use. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the structure of this utility model;
[0020] Figure 2 This is a schematic diagram of the bend and connecting tee structure of this utility model;
[0021] Figure 3 This is a schematic diagram of the atomizing nozzle structure of this utility model;
[0022] Figure 4 This is a schematic diagram of the connecting plate and connecting groove structure of this utility model;
[0023] Figure 5 This is a schematic diagram of the quick-connect connector and connecting tee of this utility model.
[0024] In the diagram: 1. Spray module; 2. Connecting plate; 3. Bend; 4. Connecting tee; 5. Liquid inlet tee; 6. Atomizing nozzle; 7. Connecting groove; 8. Limiting screw; 9. Connecting pipe; 10. Quick connector. Detailed Implementation
[0025] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0026] Example 1
[0027] Please see Figure 1-5 As shown, this embodiment of a device for simulating atomized rainfall with multiple nozzles evenly distributed includes several spray modules 1, and each pair of adjacent spray modules 1 are connected by a docking component.
[0028] The spray module 1 includes four bends 3, several connecting pipes 9, and a liquid inlet tee pipe 5. Several connecting tee pipes 4 are provided between each pair of adjacent bends 3 and inside the space enclosed by the four bends 3. The liquid inlet tee pipe 5 is located at the center of one side of the spray module 1. The ends of the several connecting pipes 9 are connected to the adjacent bends 3, liquid inlet tee pipe 5, or connecting tee pipe 4. Atomizing nozzles 6 are connected to the bottom of each connecting tee pipe 4.
[0029] The working process of this multi-nozzle uniformly distributed simulated atomized rainfall device begins with its unique structural design. The device consists of several spray modules 1, and each pair of adjacent spray modules 1 are flexibly connected through docking components. This allows the entire device to be arranged linearly, in a matrix, in a ring, or in an irregular shape according to actual needs, such as the shape of the area simulating atomized rainfall.
[0030] Each spray module 1 is its core functional unit, containing four bends 3, several connecting pipes 9, and a liquid inlet tee 5. The arrangement of the bends 3 forms the basic framework of the device, while several connecting tee 4 are cleverly arranged between each pair of adjacent bends 3 and within the space enclosed by the four bends 3. These connecting tee 4 not only serve a connecting function but also provide installation interfaces for the subsequent atomizing nozzles 6.
[0031] The liquid inlet tee 5 is located at the center of one side of the spray module 1, serving as the main channel for liquid inlet. Several connecting pipes 9, like meridians, distribute the liquid introduced by the liquid inlet tee 5 to various bends 3 and connecting tee 4. Finally, each connecting tee 4 is connected to an atomizing nozzle 6 at its bottom. After receiving the liquid, these nozzles use their internal atomization mechanism to transform the liquid into a fine water mist, thereby simulating the effect of misty rainfall.
[0032] In practical operation, the liquid enters each spray module 1 independently through the inlet tee 5, ensuring that the atomizing nozzles 6 inside each module experience the same pressure. This design is crucial for ensuring the uniformity of rainfall across the entire system. Regardless of the arrangement of the system, each nozzle can spray water mist at the same pressure, thus forming a uniform and continuous rainfall surface.
[0033] Example 2
[0034] Please see Figure 1-5 As shown in this embodiment, a multi-nozzle uniformly distributed simulated atomized rainfall device has four bends 3 positioned at the four corners of the spray module 1, and an inlet tee pipe 5 positioned at the center between two of the bends 3. Specifically, the four bends 3 serve as the basic framework of the spray module 1, cleverly arranged at the four corners to form a stable support structure. The inlet tee pipe 5 is located at the center between two of the bends 3. This positioning allows the liquid entering from the inlet tee pipe 5 to be more evenly distributed to each bend 3 and the connecting tee pipe 4 via the connecting pipe 9. In the workflow, the liquid first enters the inlet tee pipe 5 and then flows along the connecting pipe 9 to each nozzle installation point, ensuring that each nozzle receives a sufficient and uniformly pressurized liquid supply. This design achieves the effect of improving rainfall uniformity and reducing local rainfall intensity differences.
[0035] Both the connecting tee pipe 4 and the liquid inlet tee pipe 5 are equipped with quick-connect fittings 10. One side of the liquid inlet tee pipe 5 connects to the liquid delivery equipment. Specifically, the use of quick-connect fittings 10 makes the connection between the tee pipe 4 and the liquid inlet tee pipe 5 quicker and more convenient. In the workflow, the user only needs to align the quick-connect fitting 10 with the corresponding interface and gently insert it to complete the connection, without the need for additional tools or screws. Simultaneously, the connection of one side of the liquid inlet tee pipe 5 to the liquid delivery equipment ensures a stable liquid supply. This design simplifies the installation and disassembly process, improves work efficiency, and makes the maintenance and upgrades of the device easier.
[0036] Example 3
[0037] Please see Figure 1-5 As shown in this embodiment, a device for simulating atomized rainfall with multiple nozzles evenly distributed has several connecting pipes 9 of different lengths. The atomizing nozzles 6 are detachably connected to the bottom of the connecting tee pipes 4. Specifically, the different lengths of the connecting pipes 9 allow for adjustment of the nozzle positions according to actual needs during installation, achieving the best rainfall simulation effect. Furthermore, the detachable connection between the atomizing nozzles 6 and the bottom of the connecting tee pipes 4 facilitates user replacement or adjustment of the nozzles as needed. During operation, users can flexibly adjust the position and number of nozzles based on the shape of the simulated rainfall area and the required rainfall intensity. This design improves the adaptability and flexibility of the device, meeting the rainfall simulation needs of different scenarios.
[0038] The docking assembly includes a connecting plate 2, with connecting grooves 7 on both sides. The sidewall of the connecting pipe 9 is detachably connected to the inner wall of the connecting groove 7. Specifically, the connecting plate 2, as the main part of the docking assembly, provides stable support and fixation for the connecting pipe 9 through the connecting grooves 7 on both sides. In operation, when the user needs to connect multiple spray modules 1 together, simply insert the sidewall of the connecting pipe 9 into the connecting groove 7 to achieve a stable connection between the modules. This detachable connection method also allows the user to adjust or disassemble the modules as needed. This design achieves flexible connection and stable support for the spray modules, improving the scalability and practicality of the device.
[0039] Both sides of the top of the connecting plate 2 are provided with a limiting screw 8, one end of which is threaded through the connecting plate 2. Specifically, the limiting screw 8, through its threaded penetration into the connecting plate 2, can seal the opening of the connecting groove 7, and its end can make tight contact with and fix the corresponding part of the spray module 1. During operation, when the spray module 1 is subjected to liquid pressure or external wind force, the limiting screw 8 can effectively resist these forces, maintaining the stability and connection of the module. This design enhances connection stability and prevents the module from shaking or falling off, improving the safety and reliability of the device.
[0040] This solution includes the following work process:
[0041] The device consists of several spray modules 1, with each pair of adjacent spray modules 1 flexibly connected via a docking assembly. Specifically, the docking assembly includes a connecting plate 2, with connecting grooves 7 on both sides. The sidewall of the connecting pipe 9 is detachably connected to the inner wall of the connecting groove 7. During operation, the user simply inserts the sidewall of the connecting pipe 9 into the connecting groove 7 to achieve a stable connection between the modules. This detachable connection method also allows the user to adjust or disassemble the modules as needed, improving the device's scalability and practicality. Furthermore, each side of the top of the connecting plate 2 is equipped with a limiting screw 8, one end of which is threaded through the connecting plate 2. The limiting screw 8 can be tightened to close the opening of the connecting groove 7, and its end is in close contact with and fixed to the corresponding part of the spray module 1, thereby enhancing connection stability, preventing the module from shaking or falling off during operation, and improving the device's safety and reliability.
[0042] Each spray module 1 is its core functional unit, comprising four bends 3, several connecting pipes 9, and a liquid inlet tee 5. The four bends 3, forming the basic framework of the spray module 1, are cleverly arranged at the four corners of the module, creating a stable support structure. The liquid inlet tee 5 is located at the center between two bends 3, serving as the main channel for liquid inlet into the module. The connecting pipes 9, each of varying lengths, act like meridians, distributing the liquid introduced by the liquid inlet tee 5 to the various bends 3 and connecting tee 4. Several connecting tee 4 are cleverly placed between each pair of adjacent bends 3 and within the space enclosed by the four bends 3. These connecting tee 4 not only serve a connecting function but also provide installation interfaces for the subsequent atomizing nozzles 6.
[0043] Both the connecting tee tube 4 and the liquid inlet tee tube 5 are equipped with quick-connect fittings 10, making the connection faster and more convenient. During operation, the user simply aligns the quick-connect fitting 10 with the corresponding interface and inserts it easily to complete the connection, without the need for additional tools or screws. Simultaneously, one side of the liquid inlet tee tube 5 connects to the liquid delivery equipment, ensuring a stable liquid supply.
[0044] The atomizing nozzle 6 is detachably connected to the bottom of the connecting tee tube 4, allowing users to easily replace or adjust the nozzle as needed. In the workflow, liquid first enters the inlet tee tube 5 and then flows along the connecting tube 9 to each nozzle mounting point. Because the lengths of the connecting tubes 9 are designed to vary, users can adjust the nozzle position according to actual needs when installing the atomizing nozzle 6 to achieve the best rainfall simulation effect. Each connecting tee tube 4 has an atomizing nozzle 6 connected to its bottom. Upon receiving liquid, these nozzles use their internal atomization mechanism to transform the liquid into a fine water mist, thus simulating atomized rainfall.
[0045] In practical operation, liquid enters each spray module 1 independently through the inlet tee 5, ensuring that the atomizing nozzles 6 inside each module experience the same pressure. This design is crucial for ensuring the uniformity of rainfall across the entire system. Regardless of the device's arrangement—linear, matrix, ring, or irregular—each nozzle can spray water mist at the same pressure, thus forming a uniform and continuous rainfall surface, improving the realism and accuracy of rainfall simulation.
[0046] In summary, this multi-nozzle uniformly distributed simulated atomized rainfall device achieves efficient, uniform, and adjustable rainfall simulation effects through its ingenious structural design and flexible connection methods. Its beneficial effects include: improved realism and accuracy of rainfall simulation; enhanced scalability and practicality of the device; simplified installation and disassembly processes, improving work efficiency; enhanced connection stability and safety; and meeting the rainfall simulation needs of different scenarios.
[0047] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A device for simulating atomized rainfall with multiple nozzles evenly distributed, characterized in that, include: Several spray modules (1) are connected to each other by a docking component; The spray module (1) includes four bends (3), several connecting pipes (9) and liquid inlet tee pipes (5). Several connecting tee pipes (4) are provided between each pair of adjacent bends (3) and inside the space enclosed by the four bends (3). The liquid inlet tee pipes (5) are located at the center of one side of the spray module (1). The ends of several connecting pipes (9) are connected to adjacent bends (3), liquid inlet tee pipes (5) or connecting tee pipes (4). Atomizing nozzles (6) are connected to the bottom of each connecting tee pipe (4).
2. The device for simulating atomized rainfall with multiple nozzles evenly distributed according to claim 1, characterized in that, The four bends (3) are located at the four corners of the spray module (1), and the liquid inlet tee (5) is located at the center between two of the bends (3).
3. The device for simulating atomized rainfall with multiple nozzles evenly distributed according to claim 1, characterized in that, The lengths of the connecting pipes (9) are all different, and the atomizing nozzle (6) is detachably connected to the bottom of the connecting tee pipe (4).
4. The device for simulating atomized rainfall with multiple nozzles evenly distributed according to claim 2, characterized in that, The interfaces of the connecting tee pipe (4) and the liquid inlet tee pipe (5) are both connected to quick-connect fittings (10), and one side of the liquid inlet tee pipe (5) is connected to the liquid delivery device.
5. The device for simulating atomized rainfall with multiple nozzles evenly distributed according to claim 3, characterized in that, The docking assembly includes a connecting plate (2), with connecting grooves (7) on both sides of the connecting plate (2), and the side wall of the connecting pipe (9) is detachably connected to the inner wall of the connecting groove (7).
6. The device for simulating atomized rainfall with multiple nozzles evenly distributed according to claim 5, characterized in that, Both sides of the top of the connecting plate (2) are provided with a limiting screw (8) with one end threaded through the connecting plate (2).