Suction type intelligent interface floating ball filter
By incorporating an inlet and a limiting ring structure into the float filter, the problems of unstable water intake depth and impurity intake in open water areas of traditional water intake devices are solved, thereby achieving water quality stability and improved filtration efficiency, extending equipment life and reducing maintenance costs.
Patent Information
- Application Number
- CN202520355246.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-03-03
AI Technical Summary
Traditional water intake devices have unstable water depths in open water areas, are prone to drawing in impurities, affecting the accuracy and purity of water sampling, and have limited effectiveness in removing suspended solids, increasing treatment costs and complexity.
Design an inhalation-type intelligent interface float filter with an inlet located at the bottom of the float. The float adaptively adjusts with changes in water level. Combined with a limiting ring and a bamboo-shaped outlet pipe, it ensures connection stability and filtration efficiency.
Maintaining clear water quality reduces maintenance workload, extends service life, improves filtration efficiency, reduces the risk of failure, and ensures continuous and effective operation under different water level conditions.
Smart Images

Figure CN223861485U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of filter technology, specifically to an inhalation-type intelligent interface float filter. Background Technology
[0002] When sampling or treating water in open water environments such as rivers and ponds, water intake devices are often required. Traditional water intake methods often rely on manual operation, such as using floats tied to hoses to make the pipes float. This method is not only cumbersome to operate, but also difficult to precisely control the size of the floats, resulting in unstable water depth and affecting the accuracy and representativeness of the water samples. In addition, when using net cages to sink to the bottom of the water for water intake, although a certain water depth can be ensured, the net cages easily adsorb and bring in sludge and impurities from the water, thus affecting the purity and accuracy of the water samples. Traditional water intake devices have limited effectiveness in removing suspended solids from the water surface, often requiring additional treatment steps after water intake to remove these suspended solids, increasing treatment costs and complexity. Therefore, it is necessary to design a suction-type intelligent interface float filter to solve the above problems. Utility Model Content
[0003] The purpose of this invention is to provide an inhalation-type intelligent interface float filter to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: an inhalation-type intelligent interface float filter, comprising a float, an inner liquid level line engraved at the middle position of the outer wall of the float, an outer liquid level line engraved at the upper end of the outer wall of the float, two sets of high and low water inlet holes opened at the lower end of the outer wall of the float, a water outlet pipe connected through the bottom end of the float, and a reinforcing member provided at the connection between the water outlet pipe and the float.
[0005] Preferably, the water inlet includes a first water inlet and a second water inlet. Multiple sets of the first water inlet are circumferentially spaced at the lower end of the outer wall of the float. Multiple sets of the second water inlet are circumferentially spaced at a position above the first water inlet and below the inner liquid level line on the outer wall of the float.
[0006] Preferably, the reinforcing member includes a limiting ring and limiting blocks. The limiting ring is sleeved on the outside of one end of the water outlet pipe. The outer wall of the limiting ring is integrally formed with four sets of limiting blocks at equal intervals around the circumference. The water outlet pipe is detachably connected to a flexible hose, which can be locked by a locking component.
[0007] Preferably, the locking component includes a flap and a knob. One end of the limiting ring is integrally formed with multiple sets of flaps at equal intervals around the circumference. Four sets of flaps form a flap-shaped clamping member. The flap-shaped clamping member is threadedly connected to the knob. The flexible tube can be inserted into the flap-shaped clamping member.
[0008] Preferably, the water outlet pipe is a bamboo-shaped structural component.
[0009] Compared with the prior art, the beneficial effects of this utility model are:
[0010] 1. Because the water inlet is located at the lower end of the float, and the float can float on the water surface, it is not easy to suck in large impurities or sediment. This helps to keep the water inside the float clear and reduces the workload of subsequent treatment or maintenance. The float filter can rise or fall accordingly with the rise or fall of the external water level, thereby keeping the outlet pipe pointing below the water surface. This adaptive characteristic enables it to operate continuously and effectively under different water level conditions. The use of reinforcing parts significantly improves the connection stability between the outlet pipe and the float, reducing the risk of failure due to loosening or damage. This helps to extend the service life of the float filter and reduce maintenance costs.
[0011] 2. By setting water inlets at different heights, this utility model allows the float filter to simultaneously receive water from multiple layers. This helps to make fuller use of the internal filtration space of the float and improve the overall filtration efficiency. When the first water inlet at the lower layer is blocked by impurities or floating objects in the water, the second water inlet at the higher layer can still remain unobstructed, ensuring that water continues to flow into the float. This design helps to prevent the entire filter from failing due to blockage of a single water inlet. As the external water level rises or falls, the float will rise or fall accordingly. Setting water inlets at different heights ensures that the float filter can effectively receive water under different water level conditions.
[0012] 3. One end of the water outlet pipe of this utility model is fitted with a limiting ring. The outer wall of the limiting ring is integrally formed with four sets of limiting blocks. These limiting blocks not only increase the strength of the structure, but also play a role in positioning and guiding. The water outlet pipe is designed as a bamboo joint structure. This design increases the strength of the water outlet pipe and facilitates the connection and fixation of the hose. The locking assembly composed of the petal-shaped clamp and the knob ensures a stable connection between the hose and the water outlet pipe, and can maintain the stability of the connection even under harsh water flow conditions. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0014] Figure 2 This is a cross-sectional view of the overall structure of this utility model;
[0015] Figure 3 This utility model Figure 2 Enlarged view of point A;
[0016] Figure 4 This is an exploded view of the overall structure of this utility model.
[0017] In the diagram: 1. Float, 2. Inner liquid level line, 3. Outer liquid level line, 4. Water outlet pipe, 5. First water inlet, 6. Second water inlet, 7. Limiting ring, 8. Limiting block, 9. Flexible hose, 10. Flap, 11. Knob. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0019] Example 1
[0020] Please refer to Figure 1-4 As shown, this utility model provides an inhalation-type intelligent interface float filter, including a float 1. An inner liquid level line 2 is engraved at the middle position of the outer wall of the float 1, an outer liquid level line 3 is engraved at the upper end of the outer wall of the float 1, and two sets of high and low water inlet holes are opened at the lower end of the outer wall of the float 1. A water outlet pipe 4 is connected through the bottom end of the float 1, and a reinforcing member is provided at the connection between the water outlet pipe 4 and the float 1.
[0021] When float 1 is submerged in water, due to its own weight and shape, the outlet pipe 4 will naturally droop downwards towards the water surface. At this time, the inlet hole at the lower end of the outer wall of float 1 begins to allow water to flow into the interior of float 1. As water continuously flows into float 1 from the inlet hole, the internal water level gradually rises. During this process, float 1 can effectively trap floating objects on the water surface, such as leaves and plastic fragments, while avoiding the intake of larger impurities or sediment. As the internal water level rises, it will stabilize near the inner liquid level line 2, while the external water level continues to rise until it reaches or exceeds the outer liquid level line 3. The liquid level difference between the inner and outer water levels generates buoyancy according to Archimedes' principle. This buoyancy is sufficient to overcome the weight of float 1 and the water inside, allowing the float filter to float on the water surface. As the external water level rises or falls, float 1 will also rise or fall accordingly, but always keeping the outlet pipe 4 pointing below or close to the water surface.
[0022] Because the inlet is located at the lower end of the float 1, and the float 1 can float on the water surface, it is not easy for it to suck in large impurities or sediment. This helps to keep the water inside the float 1 clear and reduces the workload of subsequent treatment or maintenance. The float filter can rise or fall accordingly with the rise or fall of the external water level, thereby keeping the outlet pipe 4 pointing below the water surface. This adaptive characteristic enables it to operate continuously and effectively under different water level conditions. The use of reinforcing parts significantly improves the connection stability between the outlet pipe 4 and the float 1, reducing the risk of failure due to loosening or damage. This helps to extend the service life of the float filter and reduce maintenance costs.
[0023] Specifically, the water inlet includes a first water inlet 5 and a second water inlet 6. Multiple sets of first water inlets 5 are equidistantly arranged in a circle at the lower end of the outer wall of the float 1. Multiple sets of second water inlets 6 are equidistantly arranged in a circle at the position above the first water inlets 5 and below the inner liquid level line 2 on the outer wall of the float 1.
[0024] By setting water inlets at different heights, the float filter can simultaneously receive water from multiple layers. This helps to make fuller use of the filtration space inside the float 1 and improve the overall filtration efficiency. When the first water inlet 5 at the lower layer is blocked by impurities or floating objects in the water, the second water inlet 6 at the higher layer can still remain unobstructed, ensuring that water continues to flow into the float 1. This design helps to prevent the entire filter from failing due to blockage of a single water inlet. As the external water level rises or falls, the float 1 will rise or fall accordingly. Setting water inlets at different heights can ensure that the float filter can effectively receive water under different water level conditions.
[0025] The reinforcing components include a limiting ring 7 and limiting blocks 8. A limiting ring 7 is fitted on the outside of one end of the water outlet pipe 4. The outer wall of the limiting ring 7 is integrally formed with four sets of limiting blocks 8 at equal intervals around the circumference. The water outlet pipe 4 is detachably connected to a hose 9, which can be locked by a locking assembly. The locking assembly includes a petal 10 and a knob 11. One end of the limiting ring 7 is integrally formed with multiple sets of petals 10 at equal intervals around the circumference. The four sets of petals 10 form a petal-shaped clamping component. The petal-shaped clamping component is threadedly connected to the knob 11. The hose 9 can be inserted into the petal-shaped clamping component. The water outlet pipe 4 is a bamboo-shaped structural component.
[0026] A limiting ring 7 is fitted around one end of the water outlet pipe 4. Four sets of limiting blocks 8 are integrally formed on the outer wall of the limiting ring 7. These limiting blocks 8 not only increase the strength of the structure, but also play a role in positioning and guiding. The water outlet pipe 4 is designed as a bamboo-joint structure. This design increases the strength of the water outlet pipe 4 and facilitates the connection and fixation of the flexible hose 9.
[0027] The hose 9 can be fitted over the outlet pipe 4. Its bamboo-like structure increases the stability of the connection. After the hose 9 is fitted, it is inserted into the petal-shaped clamp formed by four sets of petals 10 at one end of the limiting ring 7. The design of the petals 10 allows the hose 9 to maintain a stable connection even under certain pressure. The knob 11 is threadedly connected to the petal-shaped clamp. By rotating the knob 11, the petals 10 tighten inward, thereby clamping the hose 9 and achieving a fixing effect. This locking component design is both simple and effective, ensuring a secure connection between the hose 9 and the outlet pipe 4. When it is necessary to disassemble or replace the hose 9, simply rotate the knob 11 in the opposite direction to loosen the petals 10, and the hose 9 can be easily removed. This design facilitates daily maintenance and replacement work for users.
[0028] One end of the water outlet pipe 4 is fitted with a limiting ring 7. The outer wall of the limiting ring 7 is integrally formed with four sets of limiting blocks 8. These limiting blocks 8 not only increase the strength of the structure, but also play a role in positioning and guiding. The water outlet pipe 4 is designed as a bamboo joint structure. This design not only increases the strength of the water outlet pipe 4, but also facilitates the connection and fixation of the hose 9. The locking assembly composed of the petal-shaped clamp and the knob 11 ensures a stable connection between the hose 9 and the water outlet pipe 4, and can maintain the stability of the connection even under harsh water flow conditions.
[0029] Working Principle: When float 1 is submerged in water, due to its own weight and shape, the outlet pipe 4 will naturally droop downwards towards the water surface. At this time, the inlet hole at the lower end of the outer wall of float 1 begins to allow water to flow into the interior of float 1. As water continuously flows into float 1 from the inlet hole, the internal water level gradually rises. During this process, float 1 can effectively trap floating objects on the water surface, such as leaves and plastic fragments, while avoiding the intake of larger impurities or sediment. As the internal water level rises, it will stabilize near the inner liquid level line 2, while the external water level continues to rise until it reaches or exceeds the outer liquid level line 3. The liquid level difference between the inner and outer water levels generates buoyancy according to Archimedes' principle. This buoyancy is sufficient to overcome the weight of float 1 and the water inside, allowing the float filter to float on the water surface. As the external water level rises or falls, float 1 will also... The hose rises or falls accordingly, but always keeps the outlet pipe 4 pointing below or near the water surface. The hose 9 can be sleeved on the outside of the outlet pipe 4. The bamboo-like structure increases the stability of the connection. After the hose 9 is sleeved, it is inserted into the petal-shaped clamp formed by four sets of petals 10 at one end of the limiting ring 7. The design of the petals 10 allows the hose 9 to maintain a stable connection even when subjected to a certain pressure. The knob 11 is threadedly connected to the petal-shaped clamp. By rotating the knob 11, the petals 10 will tighten inward, thereby clamping the hose 9 and achieving a fixing effect. This locking component design is both simple and effective, ensuring a stable connection between the hose 9 and the outlet pipe 4. When it is necessary to disassemble or replace the hose 9, simply rotate the knob 11 in the opposite direction to loosen the petals 10, and the hose 9 can be easily removed. This design facilitates daily maintenance and replacement work for users.
[0030] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0031] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An inhalation-type intelligent interface float filter, comprising a float (1), characterized in that: An inner liquid level line (2) is engraved at the middle position of the outer wall of the float (1), an outer liquid level line (3) is engraved at the upper end of the outer wall of the float (1), two sets of water inlets (high and low) are opened at the lower end of the outer wall of the float (1), and a water outlet pipe (4) is connected through the bottom end of the float (1). A reinforcing member is provided at the connection between the water outlet pipe (4) and the float (1).
2. The inhalation-type intelligent interface float filter according to claim 1, characterized in that: The water inlet includes a first water inlet (5) and a second water inlet (6). Multiple sets of the first water inlet (5) are circumferentially and equidistantly opened at the lower end of the outer wall of the float (1). Multiple sets of the second water inlet (6) are circumferentially and equidistantly opened at the position above the first water inlet (5) and below the inner liquid level line (2) on the outer wall of the float (1).
3. The inhalation-type intelligent interface float filter according to claim 1, characterized in that: The reinforcing member includes a limiting ring (7) and a limiting block (8). The limiting ring (7) is sleeved on the outside of one end of the water outlet pipe (4). The outer wall of the limiting ring (7) is integrally formed with four sets of the limiting blocks (8) at equal intervals around the circumference. The water outlet pipe (4) is detachably connected to a hose (9) and can be locked by a locking component.
4. The inhalation-type intelligent interface float filter according to claim 3, characterized in that: The locking assembly includes a petal (10) and a knob (11). One end of the limiting ring (7) is integrally formed with multiple sets of the petals (10) at equal intervals around the circumference. The four sets of petals (10) form a petal-shaped clamping member. The petal-shaped clamping member is threadedly connected to the knob (11). The hose (9) can be inserted into the petal-shaped clamping member.
5. The inhalation-type intelligent interface float filter according to claim 3, characterized in that: The water outlet pipe (4) is a bamboo-shaped structural component.