Micro-nano bubble generating device loaded with bioactive substances

By designing a micro-nano bubble generator that integrates filtration, input, mixing, temperature regulation, injection, and aeration, the temperature control problem was solved, ensuring that bioactive substances operate within the optimal temperature range and improving water purification efficiency.

CN224132749UActive Publication Date: 2026-04-17HUBEI SUOGUAN CONSTR CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUBEI SUOGUAN CONSTR CO LTD
Filing Date
2025-04-21
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing micro-nano bubble generators loaded with bioactive substances cannot effectively control the temperature, causing the bioactive substances to fail to operate within the optimal temperature range, thus affecting purification efficiency.

Method used

A micro-nano bubble generator was designed, which includes a filtration device, an input device, a mixing device, a temperature control device, an injection device, and an aeration device. The filtration device filters wastewater, the input device extracts wastewater, the mixing device mixes the wastewater, the temperature control device regulates the temperature, the injection device injects bioactive substances, and the aeration device generates micro-nano bubbles.

Benefits of technology

It enables temperature regulation of bioactive substances, ensuring they operate within the optimal temperature range, thereby improving the efficiency and effectiveness of water purification.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of water purification, in particular to a micro-nano bubble generating device loaded with bioactive substances, which is characterized in that sewage is filtered through a filtering device, the sewage in the filtering device is extracted into a mixing device through an input device, and the sewage is mixed through the mixing device; the temperature of mixed liquid in the mixing device is adjusted through the temperature adjusting device, bioactive substances are injected into the mixing device through the injection device, and aeration is performed through the aeration device; comprising a console; the device further comprises a filtering device, an input device, a mixing device, a temperature adjusting device, an injection device and an aeration device, the filtering device, the input device and the mixing device are all installed on the operation table, and the temperature adjusting device, the injection device and the aeration device are all installed on the mixing device.
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Description

Technical Field

[0001] This utility model relates to the technical field of water purification, and in particular to a micro-nano bubble generator loaded with bioactive substances. Background Technology

[0002] The micro / nano bubble generator loaded with bioactive substances is an innovative water purification device. Its core function is to load and release bioactive substances while generating micro / nano bubbles, thereby improving the efficiency and effectiveness of water purification. Micro / nano bubbles are characterized by large specific surface area, slow rise velocity, high dissolution efficiency, and good mass transfer effect, which can significantly improve the treatment efficiency of wastewater. By loading bioactive substances, the degradation of organic pollutants can be further accelerated, improving the quality of effluent.

[0003] For example, in a class of prior art represented by application number CN201920409878.9, the main structure includes a water pump, an air inlet pipe, an ejector, a water tank, a Venturi mixing pipe, a one-way valve, and at least one aeration unit. The water tank is connected to the water pump via the one-way valve, and the water pump is connected to the Venturi mixing pipe via a pipe. The air inlet pipe is installed on the Venturi mixing pipe, and the other opening of the Venturi mixing pipe is connected to the ejector. The ejector is connected to the aeration unit via a pipe, and the aeration unit is equipped with a one-way valve. A one-way valve is also installed on the air inlet pipe. The aeration unit of this utility model adopts a structure with a porous inner core ball encased in a shell. It uses a spherical shape with a large specific surface area for nano-aeration, resulting in high aeration efficiency, a longer residence time in water, and a significantly improved oxygen utilization rate, reaching 80%-90%. This utility model has a reasonable structural design, is easy to install and use, and has strong functionality.

[0004] During use, it was found that the performance and activity of many bioactive substances are affected by temperature. Existing micro-nano bubble generators loaded with bioactive substances are inconvenient to control the temperature and cannot ensure that the bioactive substances work within the optimal temperature range. Therefore, there is an urgent need for a micro-nano bubble generator loaded with bioactive substances. Utility Model Content

[0005] To solve the above-mentioned technical problems, this utility model provides a micro-nano bubble generator loaded with bioactive substances, which filters sewage through a filtration device, extracts sewage from inside the filtration device into a mixing device through an input device, mixes the mixture through the mixing device, regulates the temperature of the mixture inside the mixing device through a temperature regulating device, injects bioactive substances into the mixing device through an injection device, and aerates the mixture through an aeration device.

[0006] This invention discloses a micro / nano bubble generator loaded with bioactive substances, comprising an operating platform; and further comprising a filtration device, an input device, a mixing device, a temperature regulating device, an injection device, and an aeration device. The filtration device, input device, and mixing device are all mounted on the operating platform, while the temperature regulating device, injection device, and aeration device are all mounted on the mixing device. The filtration device performs filtration, the input device performs extraction, the mixing device performs mixing, the temperature regulating device regulates the temperature, the injection device injects bioactive substances, and the aeration device performs aeration. Wastewater is filtered through the filtration device, the wastewater inside the filtration device is extracted into the mixing device through the input device, mixed through the mixing device, the temperature of the mixture inside the mixing device is regulated by the temperature regulating device, the bioactive substances are injected into the mixing device through the injection device, and aeration is performed by the aeration device.

[0007] Preferably, the operating table includes a base, which is installed in the work area; the base provides support.

[0008] Preferably, the filtration device includes a storage chamber and a feed hopper. The storage chamber is installed at the top of the base, and the feed hopper is connected to the top of the storage chamber. The storage chamber is equipped with a primary filtration layer, a secondary filtration layer, and a high-level filtration layer. The storage chamber provides a filtration site, and wastewater enters through the input end of the feed hopper and is filtered by the primary filtration layer, the secondary filtration layer, and the high-level filtration layer.

[0009] Preferably, the input device includes a power pump, a first pipe, and a second pipe. The power pump is installed at the top of the base, and the input end of the power pump is connected to the output end of the first pipe. The input end of the first pipe is connected to the output end of the storage tank. A one-way valve is installed on the first pipe, and the output end of the power pump is connected to the input end of the second pipe. When the power pump is started, the one-way valve is opened, allowing water inside the storage tank to enter through the input end of the first pipe and exit through the output end of the second pipe.

[0010] Preferably, the mixing device includes a mixing chamber and a third pipe. The mixing chamber is installed at the top of the base, and the output end of the third pipe extends into the interior of the mixing chamber. A valve is installed on the third pipe, and a pressure gauge is installed on the side end of the mixing chamber. The input end of the mixing chamber is connected to the output end of the second pipe. When the valve is opened, air enters through the input end of the third pipe and is discharged into the interior of the mixing chamber through the output end of the third pipe. The pressure gauge allows for easy monitoring of the pressure inside the mixing chamber.

[0011] Preferably, the temperature regulating device includes a temperature regulator and a temperature sensor. The temperature regulator is fitted onto the outer wall of the mixing chamber, and the temperature sensor is installed on the side of the mixing chamber. The temperature regulator regulates the temperature of the solution inside the mixing chamber, and the temperature sensor allows for easy monitoring of the temperature inside the mixing chamber.

[0012] Preferably, the injection device includes an input pump, a fourth pipe, and a fifth pipe. The input pump is installed at the top of the mixing chamber. The output end of the input pump is connected to the input end of the fourth pipe, the output end of the fourth pipe is connected to the input end of the mixing chamber, and the output end of the fifth pipe is connected to the input end of the input pump. A second valve is provided on the fifth pipe. By starting the input pump, the second valve is opened, and the bioactive substance is injected into the interior of the mixing chamber.

[0013] Preferably, the aeration device includes a sixth pipe, an ejector, a seventh pipe, and multiple sets of aeration balloons. The input end of the sixth pipe is connected to the output end of the mixing chamber, and the output end of the sixth pipe is connected to the input end of the ejector. The input end of the seventh pipe is connected to the output end of the ejector. Multiple sets of aeration balloons are connected and installed on the output end of the seventh pipe, and each set of aeration balloons is provided with multiple sets of openings. By activating the ejector, the mixed liquid inside the mixing chamber enters through the input end of the sixth pipe, is pressurized by the ejector, and is injected at high speed into the seventh pipe. The pressure is released by the aeration balloons, forming microbubbles ranging in size from tens of nanometers to hundreds of nanometers.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: the wastewater is filtered by the filtration device, the wastewater inside the filtration device is extracted into the mixing device by the input device, the mixing is carried out by the mixing device, the temperature of the mixed liquid inside the mixing device is regulated by the temperature regulating device, the bioactive substances are injected into the mixing device by the injection device, and the aeration is carried out by the aeration device. Attached Figure Description

[0015] Figure 1 This is the structural isometric drawing of this utility model;

[0016] Figure 2 yes Figure 1 Structural isometric drawing of the operating table and filter device in this utility model;

[0017] Figure 3 yes Figure 1 Enlarged structural diagram of the input device and mixing device of this utility model;

[0018] Figure 4 yes Figure 1 Structural cross-sectional view of the mixing device and aeration device in this utility model;

[0019] Figure 5 yes Figure 4 A partially enlarged schematic diagram of the aeration device.

[0020] The attached diagram is labeled as follows: 01, operating platform; 11, base; 02, filtration device; 21, storage bin; 22, feed hopper; 23, primary filter layer; 24, intermediate filter layer; 25, advanced filter layer; 03, input device; 31, power pump; 32, first pipe; 33, one-way valve; 34, second pipe; 04, mixing device; 41, mixing bin; 42, third pipe; 43, valve one; 44, pressure gauge; 05, temperature control device; 51, temperature regulator; 52, temperature sensor; 06, injection device; 61, input pump; 62, fourth pipe; 63, fifth pipe; 64, valve two; 07, aeration device; 71, sixth pipe; 72, jet injector; 73, seventh pipe; 74, aeration balloon. Detailed Implementation

[0021] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete.

[0022] Example 1

[0023] A micro / nano bubble generator loaded with bioactive substances includes an operating table 01; characterized in that it further includes a filtration device 02, an input device 03, a mixing device 04, a temperature regulating device 05, an injection device 06, and an aeration device 07, wherein the filtration device 02, the input device 03, and the mixing device 04 are all mounted on the operating table 01, and the temperature regulating device 05, the injection device 06, and the aeration device 07 are all mounted on the mixing device 04.

[0024] The filtration device 02 performs filtration, the input device 03 performs extraction, the mixing device 04 performs mixing, the temperature regulating device 05 regulates the temperature, the injection device 06 injects bioactive substances, and the aeration device 07 performs aeration.

[0025] The operating console 01 includes a base 11, which is installed in the work area;

[0026] The filtration device 02 includes a storage chamber 21 and a feed hopper 22. The storage chamber 21 is installed on the top of the base 11, and the feed hopper 22 is connected to the top of the storage chamber 21. The storage chamber 21 is provided with a primary filter layer 23, a secondary filter layer 24 and a high-level filter layer 25.

[0027] The input device 03 includes a power pump 31, a first pipe 32 and a second pipe 34. The power pump 31 is installed on the top of the base 11. The input end of the power pump 31 is connected to the output end of the first pipe 32. The input end of the first pipe 32 is connected to the output end of the storage compartment 21. A one-way valve 33 is provided on the first pipe 32. The output end of the power pump 31 is connected to the input end of the second pipe 34.

[0028] The mixing device 04 includes a mixing chamber 41 and a third pipe 42. The mixing chamber 41 is installed on the top of the base 11. The output end of the third pipe 42 extends into the interior of the mixing chamber 41. A valve 43 is provided on the third pipe 42. A pressure gauge 44 is provided on the side end of the mixing chamber 41. The input end of the mixing chamber 41 is connected to the output end of the second pipe 34.

[0029] The injection device 06 includes an input pump 61, a fourth pipe 62, and a fifth pipe 63. The input pump 61 is installed at the top of the mixing chamber 41. The output end of the input pump 61 is connected to the input end of the fourth pipe 62, and the output end of the fourth pipe 62 is connected to the input end of the mixing chamber 41. The output end of the fifth pipe 63 is connected to the input end of the input pump 61. A valve 64 is provided on the fifth pipe 63.

[0030] The aeration device 07 includes a sixth pipe 71, an ejector 72, a seventh pipe 73, and multiple sets of aeration balloons 74. The input end of the sixth pipe 71 is connected to the output end of the mixing chamber 41, the output end of the sixth pipe 71 is connected to the input end of the ejector 72, the input end of the seventh pipe 73 is connected to the output end of the ejector 72, and multiple sets of aeration balloons 74 are connected and installed on the output end of the seventh pipe 73. Each set of aeration balloons 74 is provided with multiple sets of openings.

[0031] The filtration device 02 performs filtration, the input device 03 performs extraction, the mixing device 04 performs mixing, the injection device 06 injects bioactive substances, and the aeration device 07 performs aeration.

[0032] Wastewater enters through the inlet of feed hopper 22 and is filtered by the primary filter layer 23, intermediate filter layer 24, and advanced filter layer 25. Then, by starting the power pump 31, the one-way valve 33 is opened, allowing water from the storage chamber 21 to enter through the inlet of the first pipe 32 and exit through the outlet of the second pipe 34 into the mixing chamber 41. Next, valve 1 43 is opened, allowing air to enter through the inlet of the third pipe 42 and exit through the outlet of the third pipe 42 into the mixing chamber 41. The pressure inside the mixing chamber 41 is easily monitored using pressure gauge 44. Simultaneously, by starting the input pump 61, valve 2 64 is opened, injecting bioactive substances into the mixing chamber 41. Then, by starting the ejector 72, the mixture inside the mixing chamber 41 enters through the inlet of the sixth pipe 71, is pressurized by the ejector 72, and is injected at high speed into the seventh pipe 73. The mixture is then depressurized and released through the aeration balloon 74, forming microbubbles ranging from tens to hundreds of nanometers in size, thus reducing pollutants in the water.

[0033] Example 2

[0034] like Figures 1 to 5 As shown, the device includes a temperature control device 05, based on Example 1.

[0035] The temperature regulating device 05 includes a temperature regulator 51 and a temperature sensor 52. The temperature regulator 51 is fitted onto the outer wall of the mixing chamber 41, and the temperature sensor 52 is installed on the side of the mixing chamber 41.

[0036] Temperature regulation device 05 performs temperature regulation;

[0037] The temperature of the solution inside the mixing chamber 41 is regulated by the temperature regulator 51, and the temperature inside the mixing chamber 41 is easily monitored by the temperature sensor 52.

[0038] This invention discloses a micro / nano bubble generator loaded with bioactive substances. During operation, wastewater first enters through the inlet of the feed hopper 22 and is filtered by a primary filter layer 23, a secondary filter layer 24, and a high-grade filter layer 25. Then, by starting the power pump 31, the one-way valve 33 is opened, allowing water from the storage chamber 21 to enter through the inlet of the first pipe 32 and exit through the outlet of the second pipe 34 into the mixing chamber 41. Next, valve 43 is opened, allowing air to enter through the inlet of the third pipe 42 and exit through the outlet of the third pipe 42 into the mixing chamber 41. Pressure is easily monitored using a pressure gauge 44. The pressure inside the mixing chamber 41 is monitored. Simultaneously, by starting the input pump 61, valve 64 is opened to inject bioactive substances into the mixing chamber 41. Then, the temperature of the solution inside the mixing chamber 41 is regulated by the temperature regulator 51, and the temperature inside the mixing chamber 41 is easily monitored by the temperature sensor 52. Then, by starting the ejector 72, the mixed liquid inside the mixing chamber 41 enters through the input end of the sixth pipe 71. The ejector 72 pressurizes the mixed liquid and injects it at high speed into the seventh pipe 73. The pressure is then released by the aeration balloon 74, forming microbubbles ranging from tens to hundreds of nanometers in size, thereby reducing pollutants in the water.

[0039] The power pump 31, pressure gauge 44, temperature regulator 51, temperature sensor 52, input pump 61, jet injector 72, and ventilator 74 of this utility model are commercially available. Technical personnel in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from those skilled in the art.

[0040] The main function of this invention is to regulate the temperature of bioactive substances to achieve a suitable temperature.

[0041] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. A micro-nano bubble generating device loaded with a bioactive substance, comprising an operation table (01); characterized in that, It also includes a filter device (02), an input device (03), a mixing device (04), a temperature control device (05), an injection device (06), and an aeration device (07). The filter device (02), the input device (03), and the mixing device (04) are all installed on the operating table (01), and the temperature control device (05), the injection device (06), and the aeration device (07) are all installed on the mixing device (04). The filtration device (02) performs filtration, the input device (03) performs extraction, the mixing device (04) performs mixing, the temperature regulating device (05) regulates the temperature, the injection device (06) injects bioactive substances, and the aeration device (07) performs aeration.

2. The micro-nano bubble generating device loaded with a bioactive substance according to claim 1, characterized by, The operating console (01) includes a base (11), which is installed in the work area.

3. The micro-nano bubble generating apparatus for loading a bioactive substance according to claim 2, wherein The filtration device (02) includes a storage chamber (21) and a feed hopper (22). The storage chamber (21) is installed at the top of the base (11), and the feed hopper (22) is connected to the top of the storage chamber (21). The storage chamber (21) is provided with a primary filter layer (23), a secondary filter layer (24) and a high-level filter layer (25).

4. The micro-nano bubble generating apparatus for loading a bioactive substance according to claim 3, wherein The input device (03) includes a power pump (31), a first pipe (32) and a second pipe (34). The power pump (31) is installed on the top of the base (11). The input end of the power pump (31) is connected to the output end of the first pipe (32). The input end of the first pipe (32) is connected to the output end of the storage chamber (21). A one-way valve (33) is provided on the first pipe (32). The output end of the power pump (31) is connected to the input end of the second pipe (34).

5. The micro-nano bubble generating apparatus for loading a bioactive substance according to claim 4, wherein The mixing device (04) includes a mixing chamber (41) and a third pipe (42). The mixing chamber (41) is installed on the top of the base (11). The output end of the third pipe (42) extends into the interior of the mixing chamber (41). A valve (43) is provided on the third pipe (42). A pressure gauge (44) is provided on the side end of the mixing chamber (41). The input end of the mixing chamber (41) is connected to the output end of the second pipe (34).

6. The micro-nano bubble generating apparatus for loading a bioactive substance according to claim 5, wherein The temperature regulating device (05) includes a temperature regulator (51) and a temperature sensor (52). The temperature regulator (51) is fitted on the outer wall of the mixing chamber (41), and the temperature sensor (52) is installed on the side of the mixing chamber (41).

7. The micro-nano bubble generating apparatus for loading a bioactive substance according to claim 5, wherein The injection device (06) includes an input pump (61), a fourth pipe (62) and a fifth pipe (63). The input pump (61) is installed at the top of the mixing chamber (41). The output end of the input pump (61) is connected to the input end of the fourth pipe (62). The output end of the fourth pipe (62) is connected to the input end of the mixing chamber (41). The output end of the fifth pipe (63) is connected to the input end of the input pump (61). A valve (64) is provided on the fifth pipe (63).

8. The micro-nano bubble generating apparatus for loading a bioactive substance according to claim 5, wherein The aeration device (07) includes a sixth pipe (71), an ejector (72), a seventh pipe (73), and multiple sets of aeration balloons (74). The input end of the sixth pipe (71) is connected to the output end of the mixing chamber (41), the output end of the sixth pipe (71) is connected to the input end of the ejector (72), the input end of the seventh pipe (73) is connected to the output end of the ejector (72), and multiple sets of aeration balloons (74) are connected and installed on the output end of the seventh pipe (73). Each set of aeration balloons (74) is provided with multiple sets of openings.

Citation Information

Patent Citations

  • Micro-nano bubble generating device loaded with bioactive substances

    CN209815798U