一种节能环保型水车式增氧装置
By using a reduction gear and spur gear transmission design and a solar power supply system, the problems of high energy consumption and transmission mismatch in waterwheel-type aeration devices have been solved, achieving low-energy and high-efficiency aeration effects that are adaptable to different environmental conditions.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN LUODE TRANSMISSION EQUIP CO LTD
- Filing Date
- 2025-08-20
- Publication Date
- 2026-07-17
AI Technical Summary
Existing waterwheel-type aeration devices consume significantly more energy when the aeration range is increased. The unreasonable design of the transmission system leads to energy waste, and the lack of a speed reduction design makes it difficult to concentrate the motor output power on water lifting and agitation.
It adopts a reduction transmission design of bevel gear and spur gear set, combined with a solar panel and battery power supply system, to achieve low-speed, high-torque rotation of the impeller through the transmission component, thereby expanding the aeration range, and enhances oxygen transfer efficiency through arc-shaped mesh blades and dynamic adjustment of the aeration radius.
Expanding the oxygenation range under low energy consumption conditions, improving energy utilization efficiency, reducing motor idling losses, achieving stable and efficient oxygen transfer and dissolution, and adapting to different weather conditions.
Smart Images

Figure CN224504355U_ABST
Abstract
Claims
1. An energy-saving and environmentally friendly waterwheel-type aeration device, characterized in that: The system includes a motor (1), a control module (101), a housing (2), a bevel gear (3), a rotating shaft (4), a spur gear set (5), a rotating shaft (6), a floating platform (7), a transmission rod (13), an impeller (14), and a transmission assembly. The housing (2) is fixedly installed at the center of the top of the floating platform (7). The motor (1) is installed on the top of the housing (2). The control module (101) is installed on the front side of the upper part of the motor (1). The motor (1) is electrically connected to the control module (101). The output shaft of the motor (1) passes through the inside of the housing (2) and is connected to a bevel gear (3). The rotating shaft (4) is rotatably connected to the rear side of the inside of the housing (2). Another bevel gear (3) is connected to the left end of the rotating shaft (4). The bevel gear (3) meshes at 90 degrees. A rotating shaft (6) is rotatably connected through the front of the housing (2). A spur gear set (5) located inside the housing (2) is connected between the rotating shaft (6) and the rotating shaft (4). The spur gear set (5) consists of a large gear and a small gear. The large gear is connected to the middle of the rotating shaft (6), and the small gear is connected to the right end of the rotating shaft (4). The two mesh with each other. Spline grooves are opened on the left and right ends of the rotating shaft (6). A transmission rod (13) is slidably connected to the left and right ends of the rotating shaft (6) through the spline grooves. Impellers (14) are installed on the outer ends of the transmission rods (13). The two impellers (14) are located on the left and right sides of the floating vessel (7). A transmission assembly is provided on the floating vessel (7).
2. The energy-saving and environment-friendly waterwheel type oxygenation device according to claim 1, characterized in that: The impeller (14) is made of corrosion-resistant glass fiber reinforced nylon material, with the blades being arc-shaped mesh and the surface being frosted.
3. The energy-saving and environment-friendly waterwheel type oxygenation device according to claim 2, characterized in that: The transmission assembly includes pulleys (8), flat belts (9), double screws (10), sliding blocks (11), and connecting blocks (12). The top of the floating vessel (7) is symmetrically connected to the double screws (10) through bearing seats. The inner ends of the two double screws (10) are connected to the left and right ends of the rotating shaft (6) respectively, and the two pulleys (8) are symmetrically connected to each other. A flat belt (9) is wound between the two pulleys (8). Sliding blocks (11) are threaded on the double screws (10). Connecting blocks (12) are rotatably connected to the upper end of the sliding blocks (11). The connecting blocks (12) are connected to the corresponding transmission rods (13).
4. The energy-saving and environment-friendly waterwheel type oxygenation device according to claim 3, characterized in that: It also includes a protective net frame (15). The protective net frame (15) is slidably connected to the left and right sides of the floating vessel (7) through a sliding frame. The protective net frame (15) is fitted on the outside of the impeller (14), and the protective net frame (15) is rotatably connected to the outer end of the transmission rod (13) through a bearing.
5. The energy-saving and environment-friendly waterwheel type oxygenation device according to claim 4, characterized in that: It also includes a storage battery (16) and a solar panel (17). The solar panel (17) is installed at an angle on the left rear side of the top of the floating vessel (7) via a bracket. The storage battery (16) is installed on the top of the floating vessel (7) in front of the solar panel (17). The storage battery (16) and the solar panel (17) are electrically connected to the control module (101) via wires to form an independent power supply system.
6. The energy-saving and environment-friendly waterwheel type oxygenation device according to claim 5, characterized in that: The solar panel (17) is made of monocrystalline silicon and its surface is covered with a layer of UV-resistant and wear-resistant tempered glass.