Floating type oxygenation, filtration and temperature measurement all-in-one machine
By designing a floating aerobic filtration temperature measurement machine, integrating propellers, filtration systems and temperature sensors, the problems of large size and single functions of traditional aerobic devices are solved, portability and real-time monitoring are achieved, and the practicality and safety of the equipment are improved.
Patent Information
- Application Number
- CN202510547604.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-28
- Publication Date
- 2025-07-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional oxygen-enhancing devices are large in size, complex wiring, inconvenient installation, single functions, and cannot monitor water temperature and battery status in real time, affecting service life and breeding safety.
Design a floating aerobic filtration and temperature measurement integrated machine, integrating propellers, filtration systems, temperature sensors and intelligent power management, adopting a floating structure, with portability and waterproof performance, real-time temperature monitoring.
It improves the practicality and safety of the equipment, solves many pain points of traditional aerobic pumps, has good waterproof performance and portability, and is suitable for aquaculture, ornamental fish transportation and other scenarios.
Smart Images

Figure CN120381003A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of aquaculture equipment, and particularly to a floating oxygenation, filtration and temperature measurement integrated machine. Background Art
[0002] While oxygenating, the oxygenation device promotes the exchange of upper and lower layer water bodies by agitating the water body, brings the exhaust gas at the bottom and pollutants in the water body to the surface layer, and releases them into the air through the aeration effect, thereby purifying the water quality, reducing the odor of the water body and the accumulation of harmful substances. The oxygenation device can increase the dissolved oxygen in the water body, promote the activity of microorganisms in the bottom mud, accelerate the decomposition of pollutants, reduce harmful gases such as sulfides, methane and ammonia generated by the bottom mud, and reduce the odor of the water body. In addition, the oxygenation device can also eliminate the natural thermocline of the water body, reduce the temperature difference between the upper and lower layers of the water body, and is beneficial to maintaining ecological balance.
[0003] However, the traditional oxygenation device has the following disadvantages:
[0004] Most of the common oxygenation devices on the market at present are bottom-fixed or traditional battery-type oxygenation pumps that require external air pipes. They have problems such as large volume, complex wiring, inconvenient installation, and single function in use. In addition, some oxygenation pumps are extremely easy to be damaged when sucking water, and cannot monitor the water temperature and battery status in real time, affecting the service life and aquaculture safety. Summary of the Invention
[0005] The purpose of the present invention is to provide a floating oxygenation, filtration and temperature measurement integrated machine to solve the problems in the above-mentioned background art that most of the common oxygenation devices on the market at present are bottom-fixed or traditional battery-type oxygenation pumps that require external air pipes, which have problems such as large volume, complex wiring, inconvenient installation, and single function in use. In addition, some oxygenation pumps are extremely easy to be damaged when sucking water, and cannot monitor the water temperature and battery status in real time, affecting the service life and aquaculture safety.
[0006] To achieve the above object, the present invention provides the following technical solution: A floating aeration, filtration and temperature measurement integrated machine, comprising a lower shell, a filter chamber is provided at the bottom end of the lower shell, a filter cotton is arranged in the filter chamber, a filter chamber cover is installed at the opening at the bottom end of the filter chamber, and a plurality of water inlet holes communicating with the filter chamber are provided on the filter chamber cover. A bracket is fixedly installed inside the lower shell, a battery pack is installed outside the bracket, an air pump is fixedly installed in the middle of the bracket, the output end of the air pump is fixedly connected with a propeller, and the propeller rotates synchronously with the air pump piston. The negative pressure generated by the rotation is used to suck the water body into the filter chamber to form a circulating water flow. An air pump bottom cover communicating with the filter chamber is installed inside the bracket, and the propeller is located inside the air pump bottom cover. The top end of the lower shell is snap-fitted with an upper shell, an air inlet hole is provided on the upper shell, a PCB board is fixedly installed inside the upper shell, and a charging top pin, a knob and a display screen are installed on the PCB board. A temperature sensor is installed at the bottom end of one side of the bracket. Both the lower shell and the upper shell are of floating structures with buoyancy design, and can be directly floated on the water surface for use without additional fixing devices. The filter cotton is of a detachable structure, which is convenient for regular cleaning or replacement, improving the filtration efficiency and the service life of the equipment. The probe of the temperature sensor is arranged at the bottom of the lower shell, close to the water body, with high sensitivity and waterproof characteristics.
[0007] Preferably, a lens is snap-fitted on the top end of the upper shell. The charging top pin and the knob both pass through the upper shell and the lens and extend to the outside. The air inlet hole passes through the lens and extends to the outside. The display screen is snap-fitted with the opening provided on the upper shell. The lens protects the top surface of the upper shell and the display screen.
[0008] Preferably, the charging top pin, the knob and the temperature sensor are all electrically connected to the PCB board. The PCB board is electrically connected to the air pump, the display screen and the battery pack. The battery pack is charged by connecting a charging connector through the charging top pin. The battery pack serves as a power source to supply power to the equipment. The power of the air pump is controlled by the knob, and the temperature sensor senses the water temperature. The water temperature, power, working current, remaining time and other parameters are displayed on the display screen in real time through the PCB board.
[0009] Preferably, the air inlet of the air pump is fixedly communicated with an air inlet pipe, and the air outlet of the air pump is fixedly communicated with an air outlet pipe. The air pump intakes air and discharges air through the air inlet pipe and the air outlet pipe respectively.
[0010] Preferably, the end of the air inlet pipe far away from the air pump is communicated with the air inlet hole. An air outlet branch pipe fixedly communicated with the air outlet pipe is fixedly arranged at the bottom end of the bracket. The bottom end of the air outlet branch pipe sequentially passes through the filter cotton and the filter chamber cover and is fixedly communicated with an air stone. The air stone is located below the filter chamber cover. The air inlet pipe is communicated with the outside through the air inlet hole to realize air intake, and the air outlet pipe is connected with the air stone.
[0011] Preferably, inlet pipe joints are provided at both the connection between the inlet pipe and the air pump and the connection between the inlet pipe and the air inlet hole, and outlet pipe joints are provided at both the connection between the outlet pipe and the air pump and the connection between the outlet pipe and the outlet branch pipe. Both ends of the inlet pipe and both ends of the outlet pipe are connected through pipe joints.
[0012] Preferably, two symmetrically arranged water outlet holes are provided in the middle of the lower shell, and bottom cover water outlets are provided on both sides of the air pump bottom cover. The two water outlet holes are respectively communicated with the two bottom cover water outlets, and sealing plugs are snap-fitted and installed inside the two water outlet holes. Finally, the water is discharged through the water outlet holes, and the water outlet holes are closed by the sealing plugs.
[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: The device has a compact structure, high functional integration, good waterproof performance and portability, and can be widely applied to scenarios such as aquarium farming, ornamental fish transportation, fishing storage and survival, etc. Its integrated filtration system, temperature monitoring module and intelligent power management function effectively improve the practicability and safety of the device, solve many pain points existing in traditional aeration pumps, and have high market promotion potential and innovation value. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is an exploded view of the present invention;
[0015] Figure 2 is one of the side views of the present invention;
[0016] Figure 3 is a perspective view of the present invention;
[0017] Figure 4 is the other side view of the present invention;
[0018] Figure 5 is a top view of the present invention;
[0019] Figure 6 is a sectional view of the present invention.
[0020] In the figure: 1, lens; 2, charging thimble; 3, knob; 4, upper shell; 5, PCB board; 6, inlet pipe joint; 7, inlet pipe; 8, outlet pipe; 9, air pump; 10, propeller; 11, air pump bottom cover; 12, bracket; 13, outlet pipe joint; 14, temperature sensor; 15, battery pack; 16, lower shell; 17, water outlet hole; 18, sealing plug; 19, filter cotton; 20, filter chamber cover; 21, air stone; 22, water inlet hole; 23, display screen; 24, air inlet hole. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the embodiments of the present invention.
[0022] Please refer to Figure 1-6 , the present invention provides a floating aeration, filtration and temperature measurement integrated machine, including a lower shell 16. A filter chamber is provided at the bottom end of the lower shell 16. A filter cotton 19 is arranged in the filter chamber. A filter chamber cover 20 is installed at the opening at the bottom end of the filter chamber. A plurality of water inlet holes 22 communicating with the filter chamber are provided on the filter chamber cover 20. A bracket 12 is fixedly installed inside the lower shell 16. A battery pack 15 is installed outside the bracket 12. An air pump 9 is fixedly installed in the middle of the bracket 12. The output end of the air pump 9 is fixedly connected to a propeller 10. An air pump bottom cover 11 communicating with the filter chamber is installed inside the bracket 12. The propeller 10 is located inside the air pump bottom cover 11. An upper shell 4 is snap-fitted on the top end of the lower shell 16. An air inlet hole 24 is provided on the upper shell 4. A PCB board 5 is fixedly installed inside the upper shell 4. A charging top pin 2, a knob 3 and a display screen 23 are installed on the PCB board 5. A temperature sensor 14 is installed at the bottom end on one side of the bracket 12.
[0023] The filter cotton 19 is of a detachable structure, which is convenient for regular cleaning or replacement, improving the filtration efficiency and the service life of the equipment. The charging top pin 2 is specifically a magnetic waterproof charging interface with an automatic adsorption and positioning function. The charging process is waterproof, short-circuit-proof, safe and stable. An algorithm module is built in the control circuit on the PCB board 5, which is used to calculate and display the remaining available time by combining the current battery power and the air pump power. The display module on the PCB board 5 is an LED or OLED liquid crystal screen, which is used to display parameters such as water temperature, power, working current, remaining time, etc. in real time.
[0024] A lens 1 is snap-fitted on the top end of the upper shell 4. The charging top pin 2 and the knob 3 both pass through the upper shell 4 and the lens 1 and extend to the outside. The air inlet hole 24 passes through the lens 1 and extends to the outside. The display screen 23 is snap-fitted with the opening provided on the upper shell 4. The lens 1 protects the top surface of the upper shell 4 and the display screen 23.
[0025] The charging top pin 2, the knob 3 and the temperature sensor 14 are all electrically connected to the PCB board 5. The PCB board 5 is electrically connected to the air pump 9, the display screen 23 and the battery pack 15. The battery pack 15 is charged by connecting a charging connector through the charging top pin 2. The battery pack 15 serves as a power source to supply power to the equipment. The power of the air pump 9 is controlled by the knob 3. The temperature sensor 14 senses the water temperature, and parameters such as water temperature, power, working current, remaining time, etc. are displayed on the display screen 23 in real time through the PCB board 5.
[0026] The air inlet of the air pump 9 is fixedly communicated with an air inlet pipe 7, and the air outlet of the air pump 9 is fixedly communicated with an air outlet pipe 8. The air pump 9 intakes and discharges air through the air inlet pipe 7 and the air outlet pipe 8.
[0027] One end of the intake pipe 7 far away from the air pump 9 is communicated with the intake hole 24. The bottom end of the bracket 12 is fixedly provided with an air outlet branch pipe fixedly communicated with the outlet pipe 8. The bottom end of the air outlet branch pipe sequentially passes through the filter cotton 19 and the filter chamber cover 20 and is fixedly communicated with the air stone 21. The air stone 21 is located below the filter chamber cover 20. The intake pipe 7 is communicated with the outside through the intake hole 24, so as to realize air intake. The outlet pipe 8 is connected to the air stone 21, and air is discharged through the air stone 21.
[0028] Intake pipe joints 6 are provided at both the connection between the intake pipe 7 and the air pump 9 and the connection between the intake pipe 7 and the intake hole 24. Outlet pipe joints 13 are provided at both the connection between the outlet pipe 8 and the air pump 9 and the connection between the outlet pipe 8 and the air outlet branch pipe. Both ends of the intake pipe 7 and both ends of the outlet pipe 8 are connected by pipe joints for pipeline connection.
[0029] Two symmetrically arranged water outlet holes 17 are opened in the middle of the lower shell 16. Both sides of the air pump bottom cover 11 are provided with bottom cover water outlets. The two water outlet holes 17 are respectively communicated with the two bottom cover water outlets. Sealing plugs 18 are snap-fitted inside the two water outlet holes 17. The propeller 10 rotates synchronously with the piston of the air pump 9, and uses the negative pressure generated by the rotation to suck the water body into the filter chamber, forming a circulating water flow. The water finally discharges through the water outlet holes 17, and the water outlet holes 17 are closed by the sealing plugs 18.
[0030] When the embodiment of the present application is in use: Water is injected into the lower shell 16 through the water inlet hole 22. The filter cotton 19 is a detachable structure, which is convenient for regular cleaning or replacement, improving the filtration efficiency and the service life of the equipment. The charging thimble 2 is specifically a magnetic waterproof charging interface with an automatic adsorption and positioning function. The charging process is waterproof, short-circuit-proof, safe and stable. The control circuit on the PCB board 5 is built with an algorithm module for calculating and displaying the remaining available time by combining the current battery power and the air pump power. The display screen 23 on the PCB board 5 is an LED or OLED liquid crystal screen for real-time displaying parameters such as water temperature, power, working current, and remaining time. The propeller 10 rotates synchronously with the piston of the air pump 9, and uses the negative pressure generated by the rotation to suck the water body into the filter chamber, forming a circulating water flow. The water finally discharges through the water outlet holes 17;
[0031] Adopting a floating structure design, the device can directly float on the water surface without additional fixing devices. Users can directly put it into water bodies such as water tanks, buckets, and aquariums for use. The operation is simple. A propeller 10 structure is added to the tail end of the traditional air pump motor. The propeller 10 rotates synchronously with the piston, generating negative pressure during rotation, which can pump water into the internal filter chamber, improving the water circulation efficiency. A replaceable filter cotton 19 is provided inside the filter chamber. The dirty water is discharged after being treated by the filter cotton 19, having the function of initially purifying the water quality. It is applicable to scenarios with high water quality requirements such as aquatic product transportation and ornamental fish breeding. The device is equipped with a temperature control probe, which can detect and display the water temperature in real time. The displayed data is presented through an external screen to remind users to keep the water temperature stable and prevent the death of fish and shrimp due to abnormal water temperature;
[0032] Gas is injected into the device through the air inlet opened on the lens 1. The air pump 9 transports the gas injected into the air inlet through the air inlet pipe 7. Then, the air pump 9 transports the gas through the air outlet pipe 8. Water is injected into the device through the filter chamber cover 20. The filter cotton 19 removes impurities and particulate matters in the liquid or gas, ensuring the cleanliness of the medium. The air stone 21 converts the gas into bubbles and then releases the bubbles into the water, thus playing a role in increasing the oxygen concentration in the water.
[0033] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A floating oxygenation, filtration and temperature measurement integrated machine, comprising a lower shell (16), characterized in that: A filter chamber is provided at the bottom end of the lower housing (16). A filter cotton (19) is arranged inside the filter chamber. A filter chamber cover (20) is installed at the opening at the bottom end of the filter chamber. A number of water inlet holes (22) communicating with the filter chamber are provided on the filter chamber cover (20). A bracket (12) is fixedly installed inside the lower housing (16). A battery pack (15) is installed outside the bracket (12). An air pump (9) is fixedly installed in the middle of the bracket (12). The output end of the air pump (9) is fixedly connected to a propeller (10). An air pump bottom cover (11) communicating with the filter chamber is installed inside the bracket (12). The propeller (10) is located inside the air pump bottom cover (11). The upper housing (4) is snap-fitted on the top end of the lower housing (16). An air inlet hole (24) is provided on the upper housing (4). A PCB board (5) is fixedly installed inside the upper housing (4). A charging thimble (2), a knob (3) and a display screen (23) are installed on the PCB board (5). A temperature sensor (14) is installed at the bottom end on one side of the bracket (12).
2. The floating oxygenation, filtration and temperature measurement integrated machine according to claim 1, characterized in that: A lens (1) is snap-fitted on the top end of the upper housing (4). The charging thimble (2) and the knob (3) both extend through the upper housing (4) and the lens (1) to the outside. The air inlet hole (24) extends through the lens (1) to the outside. The display screen (23) is snap-fitted with the opening provided on the upper housing (4).
3. The floating oxygenation, filtration and temperature measurement integrated machine according to claim 1, characterized in that: The charging thimble (2), the knob (3) and the temperature sensor (14) are all electrically connected to the PCB board (5). The PCB board (5) is electrically connected to the air pump (9), the display screen (23) and the battery pack (15).
4. The floating oxygenation, filtration and temperature measurement integrated machine according to claim 1, wherein: An air inlet pipe (7) is fixedly communicated with the air inlet of the air pump (9). An air outlet pipe (8) is fixedly communicated with the air outlet of the air pump (9).
5. The floating oxygenation, filtration and temperature measurement integrated machine according to claim 4, characterized in that: One end of the air inlet pipe (7) far away from the air pump (9) is communicated with the air inlet hole (24). An air outlet branch pipe fixedly communicated with the air outlet pipe (8) is fixedly arranged at the bottom end of the bracket (12). The bottom end of the air outlet branch pipe sequentially passes through the filter cotton (19) and the filter chamber cover (20) and is fixedly communicated with an air stone (21). The air stone (21) is located below the filter chamber cover (20).
6. The floating oxygenation, filtration and temperature measurement integrated machine according to claim 4, wherein: Air inlet pipe joints (6) are provided at the connection between the air inlet pipe (7) and the air pump (9) and at the connection between the air inlet pipe (7) and the air inlet hole (24). Air outlet pipe joints (13) are provided at the connection between the air outlet pipe (8) and the air pump (9) and at the connection between the air outlet pipe (8) and the air outlet branch pipe.
7. A floating oxygenation, filtration and temperature measurement integrated machine according to claim 1, characterized in that: Two symmetrically arranged water outlet holes (17) are provided in the middle of the lower housing (16). Bottom cover water outlets are provided on both sides of the air pump bottom cover (11). The two water outlet holes (17) are respectively communicated with the two bottom cover water outlets. Sealing plugs (18) are snap-fitted inside the two water outlet holes (17).