A natural water body rapid water-gas separation device

CN122608133APending Publication Date: 2026-08-21ZHANJIANG HONGZHEN MASCH EQUIP CO LTD
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Patent Information

Application Number
CN202311646374.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-04
Publication Date
2026-08-21

AI Technical Summary

Technical Problem

这样整个制氧过程比较复杂及成本高,及附带有害气体,制氧效率低等

Benefits of technology

[0014] 1. This invention simply separates dissolved oxygen from the oxygen content of natural water bodies directly into oxygen, and then filters the mist-like water molecules through a sponge net. The structure is simple and does not contain any other harmful gases. Furthermore, it can be installed and used on the water surface, on shore, and in deep water for water-air separation. After separation, the oxygen source is relatively abundant, which can be used for underwater development, underwater living and activities, deep-sea aquaculture, and deep-sea submersible oxygen supply.

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Abstract

The application relates to the technical field of water-oxygen separation in water bodies, and discloses a natural water body rapid water-gas separation device, which comprises a floating machine box, the inside of the floating machine box is provided with an intermediate partition plate, the inside of the floating machine box and one side of the intermediate partition plate are provided with a side partition plate, the height of the side partition plate is only two-thirds of the height of the intermediate partition plate, and the inside of the floating machine box comprises a motor working area, a water-gas separation area and a gas storage area. The dissolved oxygen in the natural water body is directly subjected to water-gas separation, then sponge net barrier filtration mist water molecules can be oxygen, the structure is simple, and no other harmful gas is attached. Moreover, the water-gas separation device can be installed and used on the water surface, a shore base and deep water for water-gas separation, the oxygen source is relatively sufficient after water-gas separation, and the oxygen source can be used for the development of underwater development, underwater life, activities and the like of people, and the oxygen source can be used for the oxygen supply of deep water aquaculture, the oxygen supply of deep water submersible and the like.
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Description

Technical Field

[0001] This invention relates to the field of water-oxygen separation technology in water bodies, and more specifically to a rapid water-air separation device for natural water bodies. Background Technology

[0002] Humans have long been able to separate freshwater from seawater and artificially increase dissolved oxygen in unsaturated natural water bodies. However, we have yet to effectively research how to separate dissolved oxygen from the oxygen content of native water bodies and widely apply it to the oxygen needed for underwater life and activities, as well as for oxygen supply to underwater vehicles, etc.

[0003] Traditional water-gas separation methods mainly involve electrolyzing water into hydrogen and oxygen, followed by decomposition of the hydrogen and oxygen, and other methods. This makes the entire oxygen production process complex and costly, produces harmful gases, and has low oxygen production efficiency. Summary of the Invention

[0004] The main technical problem solved by this invention is to provide a rapid water-air separation device for natural water bodies, thereby solving the problems mentioned in the background art.

[0005] To solve the above-mentioned technical problems, according to one aspect of the present invention, more specifically, a rapid water-air separation device for natural water bodies includes a floating chamber. The floating chamber has an internal intermediate partition and a side partition located on one side of the intermediate partition. The height of the side partition is only two-thirds of the height of the intermediate partition. The interior of the floating chamber includes a motor working area, a water-air separation area, and an air storage area. A spray nozzle is provided on the surface of the intermediate partition. A water-air separation motor is installed inside the motor working area. A water-air separation impeller is sleeved on the output shaft of the water-air separation motor, and a plurality of protruding contact points are provided on the surface of the water-air separation impeller.

[0006] Furthermore, a transparent sealing cover is installed on the top of the floating tank, and the edge of the floating tank and the upper edge of the middle partition are sealed to the transparent sealing cover.

[0007] Furthermore, two motor brackets are fixedly installed inside the motor working area, and the water-air separation motor and the floating water machine box are fixedly connected through the motor brackets. Several water inlet holes are opened inside the motor working area and at the bottom of the floating water machine box.

[0008] Furthermore, the motor working area and the water-air separation area are connected through a spray nozzle, the water-air separation impeller is located on one side of the spray nozzle, and several drainage holes are provided inside the water-air separation area and at the bottom of the floating water machine box.

[0009] Furthermore, a sponge is installed inside the gas storage area and on the surface of the side partition. The sponge has multiple layers, and the air generated in the water-gas separation area enters the interior of the gas storage area through the sponge.

[0010] Furthermore, the transparent sealing cover is provided with a hood-shaped oxygen outlet above it, which is connected to the gas storage area.

[0011] Furthermore, the water-air separation impeller includes a back impeller and a front impeller, with six water impeller blades arranged between the back impeller and the front impeller. The six water impeller blades are arranged in a central array. A water inlet ring is fitted at the center of the front impeller. Both the water inlet ring and the surface of the water impeller blades are provided with protruding contact points. Cutting strips are provided at the edges of both the back impeller and the front impeller.

[0012] Furthermore, a connecting collar is provided at the center of the rear impeller, and the water-air separation impeller and the output shaft of the water-air separation motor are fixedly connected by the connecting collar.

[0013] The beneficial effects of the rapid water-air separation device for natural water bodies of the present invention are as follows:

[0014] 1. This invention simply separates dissolved oxygen from the oxygen content of natural water bodies directly into oxygen, and then filters the mist-like water molecules through a sponge net. The structure is simple and does not contain any other harmful gases. Furthermore, it can be installed and used on the water surface, on shore, and in deep water for water-air separation. After separation, the oxygen source is relatively abundant, which can be used for underwater development, underwater living and activities, deep-sea aquaculture, and deep-sea submersible oxygen supply.

[0015] 2. In this invention, the water in the original environment is agitated to generate bubbles through several protruding contact points of the water-gas separator impeller. The cutting strip above the water-gas separator impeller can cut the bubbles into smaller bubbles at high speed. Then, the oxygen in the small bubbles in the water is thrown out at high speed and bursts to generate water-gas separation. Moreover, a strong airflow is generated when the water-gas is thrown out at high speed, and the airflow is collected and discharged. Attached Figure Description

[0016] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.

[0017] Figure 1 This is an exploded view of the present invention;

[0018] Figure 2 For the present invention Figure 1 Enlarged view of region A in the middle;

[0019] Figure 3 This is a schematic diagram of the internal structure of the floating water tank of the present invention;

[0020] Figure 4 This is a top view of the floating housing of the present invention;

[0021] Figure 5 This is an exploded view of the water impeller structure for water-air separation in this invention;

[0022] Figure 6 This is a schematic diagram of the structure of the present invention.

[0023] In the diagram: 1. Floating water chamber; 2. Transparent sealing cover; 3. Oxygen outlet in the shape of a hood; 4. Sponge body; 5. Connecting collar; 6. Middle partition; 7. Gas storage area; 8. Injector; 9. Water-air separation motor; 10. Motor bracket; 11. Water-air separation impeller; 12. Water inlet ring; 13. Protruding contact; 14. Cutting strip; 15. Motor working area; 16. Impeller blades; 17. Water-air separation area; 18. Side partition; 19. Water inlet hole; 20. Drain hole; 1101. Back impeller; 1102. Front impeller. Detailed Implementation

[0024] The present invention will be described in detail below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in the present application can be combined with each other.

[0025] like Figures 1-6 As shown, according to one aspect of the present invention, a rapid water-air separation device for natural water bodies is provided, comprising a floating chamber 1, an internal partition 6, and a side partition 18 located inside the floating chamber 1 and on one side of the internal partition 6. The height of the side partition 18 is only two-thirds of the height of the internal partition 6. The interior of the floating chamber 1 includes a motor working area 15, a water-air separation area 17, and an air storage area 7 (e.g., ...). Figure 4 As shown, natural water enters the interior of the motor working area 15 through the water inlet 19, and after the natural water enters the water-air separation area 17 from the motor working area 15, it can be discharged from the drain hole 20.

[0026] The surface of the intermediate partition 6 is provided with a spray nozzle 8. The motor working area 15 is equipped with a water-air separation motor 9. The output shaft of the water-air separation motor 9 is fitted with a water-air separation impeller 11. The surface of the water-air separation impeller 11 is provided with several protruding contacts 13. After the water-air separation impeller 11 rotates at high speed, the protruding contacts 13 on the water-air separation impeller 11 can break the natural water into bubble water droplets.

[0027] In this embodiment, a transparent sealing cover 2 is installed on the top of the floating tank 1, and the edges of the floating tank 1 and the upper edge of the middle partition 6 are sealed to the transparent sealing cover 2 (e.g., Figure 1As shown, the transparent sealing cover 2 prevents water from entering the gas storage area 7 from the middle partition 6. Furthermore, the transparent design of the sealing cover 2 allows direct observation of the operating status of the water-gas separation motor 9.

[0028] In this embodiment, two motor brackets 10 are fixedly installed inside the motor working area 15. The water-air separation motor 9 is fixedly connected to the floating housing 1 through the motor brackets 10. Several water inlet holes 19 are opened inside the motor working area 15 and at the bottom of the floating housing 1 (e.g., Figure 4 As shown, natural water can be easily allowed to enter the interior of the motor working area 15 using the water inlet hole 19.

[0029] In this embodiment, the motor working area 15 and the water-air separation area 17 are connected through the injection port 8. The water-air separation impeller 11 is located on one side of the injection port 8. Several drainage holes 20 are provided inside the water-air separation area 17 and at the bottom of the floating housing 1 (e.g., Figure 4 As shown, the water that naturally flows from the motor working area 15 to the water-air separation area 17 can be discharged using the drain hole 20.

[0030] In this embodiment, a sponge 4 is installed inside the gas storage area 7 and on the surface of the side partition 18. The sponge 4 has multiple layers. Air generated in the water-air separation zone 17 enters the interior of the gas storage area 7 through the sponge 4 (e.g., Figure 3 As shown in the figure, the sponge 4 can be used to prevent water in the water-gas separation zone 17 from entering the interior of the gas storage zone 7.

[0031] In this embodiment, a hood-shaped oxygen outlet 3 is provided above the transparent sealing cover 2, which is connected to the gas storage area 7. The water-gas separation impeller 11 includes a back impeller 1101 and a front impeller 1102. Six water impeller blades 16 are provided between the back impeller 1101 and the front impeller 1102. The six water impeller blades 16 are arranged in a central array. A water inlet ring 12 is sleeved at the center of the front impeller 1102. The surface of the water inlet ring 12 and the water impeller blades 16 are provided with protruding contact points 13. Cutting strips 14 are provided at the edges of the back impeller 1101 and the front impeller 1102. The cutting strips 14 and the protruding contact points 13 can cut the bubbles into smaller bubbles at high speed.

[0032] In this embodiment, a connecting collar 5 is provided at the center of the back impeller 1101, and the water-air separation impeller 11 and the output shaft of the water-air separation motor 9 are fixedly connected by the connecting collar 5.

[0033] The working principle of this device is as follows: This invention stirs up bubbles in the original water body, then cuts the bubbles into small bubbles at high speed, and then throws out the oxygen in the small bubbles at high speed to break them, resulting in water-gas separation. At this time, the water is heavy and falls down and is discharged, while the gas molecules are light and dispersed and float. Moreover, the high-speed throwing out of the water-gas separation generates a strong airflow, which is then collected and discharged.

[0034] After the floating unit 1 is placed above the water surface, due to the weight of the internal motor, the floating unit 1 will rise to a certain height above the water. Water enters the motor working area 15 through the water inlet 19 (e.g., Figure 4 As shown), the water-air separation motor 9 is started and drives the water-air separation impeller 11 to rotate at high speed, stirring the water to generate bubbles, and using the protruding contact 13 and the cutting strip 14 to cut the bubbles into smaller bubbles at high speed, and throw the air into the interior of the water-air separation zone 17 through the spray nozzle 8.

[0035] At this time, the water falls downwards into the water-air separation zone 17 and is discharged from the drain hole 20, while the air molecules are located above. The high-speed ejection of the water-air molecules generates a strong airflow, allowing them to pass through the sponge 4 and enter the gas storage zone 7. The air entering the gas storage zone 7 can be discharged from the dome-shaped oxygen outlet 3, thus ensuring that negative pressure does not occur inside the floating housing 1.

[0036] All electrical components mentioned in this article are real-world electrical components.

[0037] Of course, the above description is not a limitation of the present invention, and the present invention is not limited to the examples given above. Any changes, modifications, additions or substitutions made by those skilled in the art within the scope of the present invention are also within the protection scope of the present invention.

Claims

1. A rapid water-air separation device for natural water bodies, comprising a floating housing (1), characterized in that: The floating water machine box (1) is provided with a middle partition (6) inside. The floating water machine box (1) is provided with a side partition (18) on one side of the middle partition (6). The height of the side partition (18) is only two-thirds of the height of the middle partition (6). The floating water machine box (1) includes a motor working area (15), a water-air separation area (17) and an air storage area (7). The surface of the intermediate partition (6) is provided with a spray port (8), and a water-air separation motor (9) is installed inside the motor working area (15). The output shaft of the water-air separation motor (9) is fitted with a water-air separation impeller (11), and the surface of the water-air separation impeller (11) is provided with several protruding contacts (13).

2. The rapid water-air separation device for natural water bodies according to claim 1, characterized in that: A transparent sealing cover (2) is installed on the top of the floating machine box (1), and the edge of the floating machine box (1) and the upper edge of the middle partition (6) are sealed to the transparent sealing cover (2).

3. The rapid water-air separation device for natural water bodies according to claim 2, characterized in that: Two motor brackets (10) are fixedly installed inside the motor working area (15). The water-air separation motor (9) is fixedly connected to the floating water box (1) through the motor brackets (10). Several water inlet holes (19) are opened inside the motor working area (15) and at the bottom of the floating water box (1).

4. The rapid water-air separation device for natural water bodies according to claim 3, characterized in that: The motor working area (15) and the water-air separation area (17) are connected through the injection port (8). The water-air separation impeller (11) is located on one side of the injection port (8). Several drainage holes (20) are provided inside the water-air separation area (17) and at the bottom of the floating water box (1).

5. The rapid water-air separation device for natural water bodies according to claim 4, characterized in that: A sponge (4) is installed inside the gas storage area (7) and on the surface of the side partition (18). The sponge (4) has multiple layers. The air generated in the water-air separation area (17) enters the interior of the gas storage area (7) through the sponge (4).

6. The rapid water-air separation device for natural water bodies according to claim 5, characterized in that: The transparent sealing cover (2) is provided with a hood-shaped oxygen outlet (3) above it, and the hood-shaped oxygen outlet (3) is connected to the gas storage area (7).

7. The rapid water-air separation device for natural water bodies according to claim 6, characterized in that: The water-air separation impeller (11) includes a back impeller (1101) and a front impeller (1102). Six water impeller blades (16) are provided between the back impeller (1101) and the front impeller (1102). The six water impeller blades (16) are arranged in a central array. A water inlet ring (12) is sleeved at the center of the front impeller (1102). The surface of the water inlet ring (12) and the water impeller blades (16) are provided with protruding contact points (13). Cutting strips (14) are provided at the edges of the back impeller (1101) and the front impeller (1102).

8. The rapid water-air separation device for natural water bodies according to claim 7, characterized in that: A connecting collar (5) is provided at the center of the back impeller (1101), and its water-air separation impeller (11) is fixedly connected to the output shaft of the water-air separation motor (9) through the connecting collar (5).