Three-dimensional swing type fountain spraying device
By using a support frame system and a multi-axis drive system, combined with motor and sensor control, a three-dimensional oscillating fountain is realized, solving the problem that fountain equipment cannot move in multiple dimensions, and providing a fountain device with dynamic scenery effects and low-cost maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING GOLD CASCADE LANDSCAPE ART CO LTD
- Filing Date
- 2025-03-26
- Publication Date
- 2026-05-08
AI Technical Summary
Existing fountain equipment has a fixed water spray pattern, which cannot achieve multi-dimensional movements, affecting the fountain's visual effect and failing to meet people's demand for dynamic scenery.
It adopts a support frame system and a multi-axis drive system, combined with motor and sensor control, to achieve three-dimensional swinging motion. It is equipped with a lighting system and a submersible pump. The equipment has a modular design, is easy to install, and has low operation and maintenance costs.
It achieves a three-dimensional fountain effect, the equipment is compact with no safety hazards, easy to install, low in maintenance cost, and suitable for fountain pools up to 0.85 meters deep.
Smart Images

Figure CN224208374U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fountain jetting equipment, and in particular to a three-dimensional swing-type fountain jetting device. Background Technology
[0002] Fountains are a flowing art form, offering endless enjoyment through their exquisite beauty. With rapid socio-economic development and a significant improvement in living standards, people's demands for a better life are constantly increasing, and fountains have become an indispensable part of modern urban landscape design. Fountains used for landscape arrangement and atmosphere creation generally employ fixed structures with controller-controlled water pumps, or fixed structures like vertical air-blast fountains. However, existing fountain equipment often features fixed water spray patterns or can only be programmed to spray water in a few directions, failing to generate dynamic movements as needed. While some fountains incorporate two-dimensional oscillating motion, the overall special effects remain insufficient, affecting the viewing experience and failing to meet people's needs for dynamic fountain displays.
[0003] Therefore, it is desirable to have a three-dimensional oscillating fountain jet device that can overcome or at least mitigate the aforementioned defects of the prior art. Utility Model Content
[0004] The purpose of this utility model is to provide a three-dimensional swing fountain jet device, which can produce complex three-dimensional movements, has a compact size, is easy to install, has low operation and maintenance costs, and has no safety hazards.
[0005] To achieve the above objectives, this utility model provides a three-dimensional swinging fountain jet device, comprising a support frame system, an X-axis drive system, an X-axis support frame system, a Y-axis drive system, a Y-axis support frame system, a Z-axis drive system, a Z-axis support frame system, a nozzle system, and a lighting system. The support frame system includes two parallel frames, one of which is integrated with a water inlet pipe, with an inlet at the bottom of the water inlet pipe. The X-axis drive system is located on the top of the support frame system, next to the water inlet pipe, and includes an X-axis motor, an X-axis motor reducer, and an X-axis sensor. The X-axis motor is connected to the X-axis motor reducer, and the X-axis sensor is mounted on the X-axis motor reducer. The X-axis motor reducer drives the X-axis support frame system to swing along the X-axis, and the swing angle is controlled by the X-axis sensor. The two ends of the X-axis support frame system are pivotally connected to the support frame system, and the X-axis drive system is connected to the X-axis support frame system. The Y-axis... The drive system includes a Y-axis motor, a Y-axis motor reducer, and a Y-axis sensor. The Y-axis motor is connected to the Y-axis motor reducer, and the Y-axis sensor is mounted on the Y-axis motor reducer. The Y-axis drive system is fixedly mounted on the X-axis support frame system. The Y-axis motor reducer drives the Y-axis support frame system to swing along the Y-axis, and the swing angle is controlled by the Y-axis sensor. One end of the Y-axis support frame system is pivotally mounted on the X-axis support frame system. The Z-axis drive system includes a Z-axis motor, a Z-axis motor reducer, and a Z-axis sensor. The Z-axis motor is connected to the Z-axis motor reducer, and the Z-axis sensor is mounted on the Z-axis motor reducer. The Z-axis motor reducer drives the Z-axis support frame system to rotate along the Z-axis, and the rotation angle is controlled by the Z-axis sensor. The Z-axis support frame system is connected to the other end of the Y-axis support frame system, and the Z-axis support frame system is pivotally connected to the nozzle system. The lighting system is mounted on both the Y-axis drive system and the nozzle system.
[0006] Preferably, the device further includes a power supply system, which includes a first power supply system, a second power supply system, and a third power supply system, respectively connected to the X-axis support frame system, the Y-axis support frame system, and the nozzle system, and provides power to the X-axis drive system, the Y-axis drive system, the Z-axis drive system, the X-axis sensor, the Y-axis sensor, the Z-axis sensor, and the lighting system.
[0007] Preferably, the device further includes an electrical control unit that controls the X-axis motor, Y-axis motor, Z-axis motor and lighting system through the power supply system; the X-axis motor, Y-axis motor and Z-axis motor are all waterproof stepper motors.
[0008] Preferably, the top of the support frame system is provided with a pivot sleeve, which is rotatably connected to the X-axis support frame system.
[0009] Preferably, the Z-axis support frame system is equipped with a rotary bearing.
[0010] Preferably, the top end of the water inlet pipe is connected to one end of the X-axis water pipe via a universal structure, the other end of the X-axis water pipe is connected to one end of the Y-axis water pipe via a universal structure, and the other end of the Y-axis water pipe is connected to one end of the nozzle system via a universal structure.
[0011] Preferably, the nozzle system is truncated cone-shaped, with a replaceable multi-nozzle unit at the top.
[0012] Preferably, the Y-axis drive system is disposed inside a first rectangular protective cover, and its upper surface is provided with an opening for a lighting system; the nozzle system is disposed near the bottom with a second rectangular protective cover, and its upper surface is provided with at least one opening for a lighting system; the Z-axis drive system is disposed inside the second rectangular protective cover.
[0013] Preferably, the lighting system is provided with colored LED lights, which are disposed in the opening of the lighting system.
[0014] Preferably, the device is further provided with a submersible pump system, which is connected to the water inlet via a connector.
[0015] The three-dimensional swing fountain jet device of this utility model has the following advantages: the device can generate three-dimensional movements according to different user needs; the device is compact and can be installed in a fountain pool with a depth of 0.85 meters without safety hazards; the main equipment of the fountain adopts a modular design, which is simple and convenient to install; the water level in the pool is low; and the structure of each component of the device is simple and reliable, resulting in low operating and maintenance costs. Attached Figure Description
[0016] Figure 1 This is the front view of the three-dimensional swing fountain jet device of this utility model;
[0017] Figure 2 This is a top view of the three-dimensional swing fountain jet device of this utility model;
[0018] Figure 3 This is a side view of the three-dimensional swing fountain jet device of this utility model (including the submersible pump system).
[0019] Figure 4 This is a first perspective view of the three-dimensional swing-type fountain jet device of this utility model;
[0020] Figure 5 This is a second perspective view of the three-dimensional swing-type fountain jet device of this utility model. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of the embodiments of this utility model will be described in more detail below with reference to the accompanying drawings. In the drawings, the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The described embodiments are some, but not all, embodiments of this utility model. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are within the scope of protection of this utility model. The embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0022] A three-dimensional oscillating fountain jet device includes a support frame system 1, an X-axis drive system 2, an X-axis support frame system 3, a Y-axis drive system 4, a Y-axis support frame system 5, a Z-axis drive system 9, a Z-axis support frame system 10, a nozzle system 6, and a lighting system 7. The support frame system 1 includes two parallel frames, with one frame 1.3 integrally formed with a water inlet pipe 1.1. The bottom end of the water inlet pipe 1.1 has a water inlet 1.2. The X-axis drive system 2 is located at the top of the water inlet of the support frame system 1. On pipe 1.1, it includes an X-axis motor (obscured in the figure), an X-axis motor reducer (obscured in the figure), and an X-axis sensor (obscured in the figure). The X-axis motor is connected to the X-axis motor reducer, and the X-axis sensor is mounted on the X-axis motor reducer. The X-axis motor reducer drives the X-axis support frame system 3 to swing along the X-axis, and the swing angle is controlled by the X-axis sensor. The two ends of the X-axis support frame system 3 are pivotally connected to the support frame system 1, and the X-axis drive system 2 is connected to the X-axis support frame system 3. The Y-axis drive system 4 includes a Y-axis motor... The system includes a Y-axis motor (obscured in the image), a Y-axis motor reducer (obscured in the image), and a Y-axis sensor (obscured in the image). The Y-axis motor is connected to the Y-axis motor reducer, and the Y-axis sensor is mounted on the Y-axis motor reducer. The Y-axis drive system 4 is fixedly mounted on the X-axis support frame system 3. The Y-axis motor reducer drives the Y-axis support frame system 5 to swing along the Y-axis, and the swing angle is controlled by the Y-axis sensor. One end of the Y-axis support frame system 5 is pivotally mounted on the X-axis support frame system 3. The Z-axis drive system 9 includes a Z-axis motor 9.1, a Z... The Z-axis motor reducer (obscured in the figure) and the Y-axis sensor (obscured in the figure) are connected to the Z-axis motor reducer. The Z-axis sensor is mounted on the Z-axis motor reducer. The Z-axis motor reducer drives the Z-axis support frame system 10 to rotate along the Z-axis and the rotation angle is controlled by the Z-axis sensor. The Z-axis support frame system 10 is connected to the other end of the Y-axis support frame system 5 and is pivotally connected to the nozzle system 6. The lighting system 7 is mounted on the Y-axis drive system 4 and the nozzle system 6 respectively.
[0023] The device also includes a power supply system, which includes a first power supply system 8.1, a second power supply system 8.2, and a third power supply system (obscured in the figure), which are respectively connected to the X-axis support frame system 3, the Y-axis support frame system 5, and the nozzle system 6, and supply power to the X-axis drive system 2, the Y-axis drive system 4, the Z-axis drive system 9, and the lighting system 7.
[0024] The device also includes an electrical control unit that controls the X-axis motor, Y-axis motor, Z-axis motor 9.1 and the lighting system 7 through the power supply system; the X-axis motor, Y-axis motor and Z-axis motor 9.1 are all waterproof stepper motors.
[0025] The top of the support frame system 1 is provided with a pivot sleeve, which is rotatably connected to the X-axis support frame system 3.
[0026] The Z-axis support frame system 10 is equipped with a rotary bearing 10.1.
[0027] The top end of the water inlet pipe 1.1 is connected to one end of the X-axis water pipe via a universal structure, and the other end of the X-axis water pipe is connected to one end of the Y-axis water pipe via a universal structure. The other end of the Y-axis water pipe is connected to one end of the nozzle system 6 via a universal structure.
[0028] The nozzle system 6 is generally truncated cone-shaped, with a replaceable multi-nozzle unit 6.1 at the top.
[0029] The Y-axis drive system 4 is located inside the first rectangular protective cover 4.1, and its upper surface is provided with an illumination system opening 7.1; the nozzle system 6 is located near the bottom with a second rectangular protective cover 6.2, and its upper surface is provided with at least one illumination system opening 7.1; the Z-axis drive system 9 is located inside the second rectangular protective cover 6.2.
[0030] The lighting system 7 is equipped with colored LED lights, which are installed in the opening 7.1 of the lighting system.
[0031] The device is also equipped with a submersible pump system, which is connected to the water inlet 1.2 via a connector.
[0032] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating this utility model, and are not intended to limit the implementation of this utility model. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all embodiments here. However, these obvious variations or modifications derived from the spirit of this utility model are still within the protection scope of this utility model.
Claims
1. A three-dimensional oscillating fountain jet device, characterized in that: The system includes a support frame system, an X-axis drive system, an X-axis support frame system, a Y-axis drive system, a Y-axis support frame system, a Z-axis drive system, a Z-axis support frame system, a nozzle system, and a lighting system. The support frame system comprises two parallel frames, one of which is integrated with a water inlet pipe, with an inlet at the bottom of the water inlet pipe. The X-axis drive system is located at the top of the support frame system on the side of the water inlet pipe and includes an X-axis motor, an X-axis motor reducer, and an X-axis sensor. The X-axis motor is connected to the X-axis motor reducer, and the X-axis sensor is mounted on the X-axis motor reducer. The X-axis motor reducer drives the X-axis support frame system to swing along the X-axis, and the swing angle is controlled by the X-axis sensor. The two ends of the X-axis support frame system are pivotally connected to the support frame system, and the X-axis drive system is connected to the X-axis support frame system. The Y-axis drive system includes a Y-axis motor and a Y-axis motor... The system comprises a reducer and a Y-axis sensor. A Y-axis motor is connected to the Y-axis motor reducer, and the Y-axis sensor is mounted on the Y-axis motor reducer. The Y-axis drive system is fixedly mounted on the X-axis support frame system. The Y-axis motor reducer drives the Y-axis support frame system to swing along the Y-axis, and the swing angle is controlled by the Y-axis sensor. One end of the Y-axis support frame system is pivotally mounted on the X-axis support frame system. The Z-axis drive system includes a Z-axis motor, a Z-axis motor reducer, and a Z-axis sensor. The Z-axis motor reducer is connected to the Z-axis motor reducer, and the Z-axis sensor is mounted on the Z-axis motor reducer. The Z-axis motor reducer drives the Z-axis support frame system to rotate along the Z-axis, and the rotation angle is controlled by the Z-axis sensor. The Z-axis support frame system is connected to the other end of the Y-axis support frame system and is pivotally connected to the nozzle system. The lighting system is respectively mounted on the Y-axis drive system and the nozzle system.
2. The three-dimensional oscillating fountain jet device according to claim 1, characterized in that: The device also includes a power supply system, which comprises a first power supply system, a second power supply system, and a third power supply system, respectively connected to the X-axis support frame system, the Y-axis support frame system, and the nozzle system, and provides power to the X-axis drive system, the Y-axis drive system, the Z-axis drive system, and the lighting system.
3. The three-dimensional oscillating fountain jet device according to claim 2, characterized in that: The device also includes an electrical control unit that controls the X-axis motor, Y-axis motor, Z-axis motor, X-axis sensor, Y-axis sensor, Z-axis sensor and lighting system through the power supply system; the X-axis motor, Y-axis motor and Z-axis motor are all waterproof stepper motors.
4. The three-dimensional oscillating fountain jet device according to claim 3, characterized in that: The top of the support frame system is provided with a pivot sleeve, which is rotatably connected to the X-axis support frame system.
5. The three-dimensional oscillating fountain jet device according to claim 4, characterized in that: The Z-axis support frame system is equipped with a rotary bearing.
6. The three-dimensional oscillating fountain jet device according to claim 5, characterized in that: The top end of the water inlet pipe is connected to one end of the X-axis water pipe via a universal structure, and the other end of the X-axis water pipe is connected to one end of the Y-axis water pipe via a universal structure. The other end of the Y-axis water pipe is connected to one end of the nozzle system via a universal structure.
7. The three-dimensional oscillating fountain jet device according to claim 6, characterized in that: The nozzle system is truncated cone-shaped, with a replaceable multi-nozzle unit at the top.
8. The three-dimensional oscillating fountain jet device according to claim 7, characterized in that: The Y-axis drive system is housed within a first rectangular protective cover, with an opening for a lighting system on its upper surface; the nozzle system is housed near the bottom within a second rectangular protective cover, with at least one opening for a lighting system on its upper surface; and the Z-axis drive system is housed within the second rectangular protective cover.
9. The three-dimensional oscillating fountain jet device according to claim 8, characterized in that: The lighting system is equipped with colored LED lights, which are installed in the opening of the lighting system.
10. The three-dimensional oscillating fountain jet device according to claim 9, characterized in that: The device is also equipped with a submersible pump system, which is connected to the water inlet via a connector.