Oxidant sterilization algicide on-site generation tank and use method thereof

By incorporating a rotating bushing, an air outlet assembly, and a scraper into the oxidant sterilization and algaecide generation tank, the problems of uneven mixing and sediment accumulation were solved, achieving thorough mixing of raw materials and liquid and stability of reagent concentration, thereby improving generation efficiency and effectiveness.

CN121911276APending Publication Date: 2026-04-24QINGDAO OUYAMEI CHEM TECH DEV CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
QINGDAO OUYAMEI CHEM TECH DEV CO LTD
Filing Date
2026-02-03
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

Existing oxidant bactericide and algaecide generation tanks suffer from uneven stirring and limited coverage, resulting in insufficient contact and reaction between raw materials and liquids, poor mixing uniformity, and easy sediment accumulation at the bottom, affecting the accuracy of agent concentration.

Method used

An on-site generation tank for oxidant bactericides and algaecides was designed, comprising a PE storage tank, a stirring mechanism, a sampling component, and a drainage component. The rotating bushing drives the mounting arm and stirring part to perform multi-position stirring. Combined with the gas outlet component, gas is blown out from the bottom of the tank to form a longitudinal airflow, which drives the liquid to circulate and mix. The precipitate is scraped off by a scraper, and the sampling component accurately samples the agent and the drainage component quickly discharges the agent.

Benefits of technology

It achieves rapid and complete reaction between raw materials and liquid, reduces precipitation, improves mixing uniformity and agent concentration stability, and ensures the reliability of sterilization and algae removal effects.

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Abstract

The invention relates to the technical field of oxidizing agent sterilization algicide, and discloses an oxidizing agent sterilization algicide on-site generation tank which comprises a PE storage tank, a feeding port, an exhaust port, a liquid drainage assembly, a sampling assembly and a stirring mechanism are sequentially arranged above the PE storage tank, and a liquid level meter is installed on one side of the PE storage tank. The driving assembly drives the rotating shaft sleeve to rotate, and the rotating shaft sleeve drives the mounting arm and the stirring part to rotate, so that multi-position liquid disturbance is formed, and the contact area is enlarged; meanwhile, the pushing assembly can enable the hollow inserting shaft to drive the connecting part to be connected with the air outlet assembly, then air is input through the air conveying pipe, the air outlet assembly continuously blows out the air upwards, longitudinal air flow from the tank bottom to the liquid level is formed, liquid is driven to form up-down circulating convection, and stirring can cover all areas of the tank body; the bubbles rise to push the liquid at the bottom to be fully mixed with the upper layer, so that the raw materials are dissolved more quickly, the reaction is more sufficient, and the precipitation phenomenon is reduced.
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Description

Technical Field

[0001] This invention relates to the field of oxidant bactericides and algaecides, specifically to an on-site generation tank for oxidant bactericides and algaecides and its usage method. Background Technology

[0002] Oxidizing agents are chemical agents that use strong oxidizing properties to destroy the structure of microorganisms. They are widely used in industrial circulating water, swimming pools, sewage treatment and other scenarios. They achieve rapid sterilization, algae removal and inhibition of biological slime growth by oxidizing and decomposing the cell membranes, proteins and enzyme systems of bacteria and algae.

[0003] Sodium hypochlorite (NaClO) is a highly efficient and commonly used oxidant-based bactericide and algaecide. Its bactericidal and algaecidal principle is based on the synergistic effect of strong oxidizing properties and hypochlorous acid: when sodium hypochlorite dissolves in water, it reacts with water to produce hypochlorous acid (HClO). Hypochlorous acid has a very strong ability to penetrate the cell membrane of microorganisms, which can destroy the enzyme system and protein structure of bacteria, algae and other microorganisms, causing their metabolism to be disordered and their death. Thus, it can quickly kill bacteria, fungi, algae and biological slime in the environment such as circulating water, swimming pool water and sewage.

[0004] In existing technologies, when generating oxidizing bactericides and algaecides on-site, the liquid and corresponding raw materials are mixed in a storage tank to generate the oxidizing bactericide and algaecide, which is then stored in the generating tank. However, during use, the existing generating tanks suffer from uneven stirring and limited coverage, making it difficult for the raw materials and liquid to fully contact and react. This results in poor mixing uniformity, which not only affects the efficiency and concentration stability of the agent but may also produce ineffective impurities due to incomplete local reactions. At the same time, sedimentation is prone to occur at the bottom of the tank, and long-term sedimentation can affect the accuracy of subsequent agent concentrations, reducing the bactericidal and algaecidal effect.

[0005] Therefore, we propose an on-site generation tank for oxidizing bactericides and algaecides and its usage method. Summary of the Invention

[0006] (a) Technical problems to be solved To address the shortcomings of existing technologies, this invention provides an on-site generation tank for oxidant bactericides and algaecides and its usage method. This solves the problems of uneven stirring intensity and limited coverage, which leads to insufficient contact and reaction between raw materials and liquids, poor mixing uniformity, and easy sedimentation at the bottom. Long-term sedimentation can also affect the accuracy of subsequent agent concentrations.

[0007] (II) Technical Solution To achieve the above objectives, the present invention is implemented through the following technical solution: an on-site generation tank for an oxidant bactericide and algaecide, comprising a PE storage tank, wherein an inlet, an exhaust port, a drain assembly, a sampling assembly and a stirring mechanism are sequentially arranged on the top of the PE storage tank, and a level gauge is installed on one side of the PE storage tank; The stirring mechanism includes a rotating bushing rotatably connected to the inner wall of the PE storage tank. A hollow shaft is inserted into the inner wall of the rotating bushing. A connector is rotatably connected to the upper end of the hollow shaft. A gas supply pipe connected to a gas supply device is installed on the surface of the connector. Multiple mounting arms are fixedly connected to the surface of the rotating bushing. A stirring part is provided on the surface of the mounting arms for multi-position stirring. A connecting part is provided at the lower end of the hollow shaft. A gas outlet assembly is provided on the bottom inner wall of the PE storage tank. A pushing assembly is provided between the PE storage tank and the hollow shaft for connecting the connecting part to the gas outlet assembly, allowing gas to be blown out from the gas outlet assembly. A driving assembly is provided on the surface of the PE storage tank for controlling the rotation of the rotating bushing and the stirring part. The sampling component is used to extract samples stored in the PE storage tank for testing, and the draining component is used to extract samples from the PE storage tank for use.

[0008] Preferably, the gas outlet assembly includes a chassis installed on the inner wall of the bottom of the PE storage tank. A gas outlet pipe is installed on the inner wall of the chassis. A filter screen is fixedly connected to the inner wall of the gas outlet pipe. A connecting sleeve is rotatably connected to the inner wall of the gas outlet pipe. A gasket is fixedly connected to the inner wall of the connecting sleeve. Through the above components, when the connecting part is inserted into the connecting sleeve, the gasket can improve the sealing effect. Then, the gas supply pipe sequentially delivers gas to the hollow insert shaft, hollow rod, and plug, and then discharges through the gas outlet pipe. The gas moves upward, driving the sediment to move and improving the mixing effect.

[0009] Preferably, the surface of the connecting sleeve is fixedly connected with a plurality of scrapers arranged at equal intervals. The scrapers are in contact with the upper surface of the chassis. Through the above-mentioned components, when the hollow insert shaft rotates, the connecting part can drive the connecting sleeve to rotate, thereby driving the plurality of scrapers to rotate and scrape up the sediment accumulated on the scrapers, so as to better mix with the rising gas.

[0010] Preferably, the connecting part includes a hollow rod that is slidably connected to the inner wall of the hollow insert shaft. A plug is fixedly connected to one end of the hollow rod, and the plug is inserted into the inner wall of the connecting sleeve. A return spring is sleeved on the surface of the hollow rod, and both ends of the return spring are fixedly connected to the inner walls of the hollow rod and the hollow insert shaft, respectively. A duckbill one-way valve is installed on the inner wall of the hollow rod. Through the above components, the pushing assembly can drive the hollow insert shaft and the plug to move together. The plug can contact the connecting sleeve. If misaligned, the return spring can provide buffering. After alignment, the plug can be inserted into the connecting sleeve, thus realizing the connection operation. The duckbill one-way valve can reduce the amount of liquid entering the hollow insert shaft.

[0011] Preferably, the pushing assembly includes two cylinders mounted on the surface of the PE storage tank. The output end of each cylinder is fixedly connected to a push ring, which is rotatably connected to the surface of the hollow insert shaft. Through the above components, when pushing, the cylinder is opened, and the cylinder can drive the push ring to move, which in turn drives the hollow insert shaft to move.

[0012] Preferably, the stirring unit includes a rocker arm rotatably connected to the inner wall of the mounting arm, a stirring rod rotatably connected to the inner wall of the rocker arm, a gear ring fixedly connected to the inner wall of the PE storage tank, a gear fixedly connected to the surface of the rocker arm, the gear ring meshing with the gear, a gear two fixedly connected to the surface of the stirring rod, and a gear ring two fixedly connected to the lower surface of the mounting arm, the gear ring meshing with the gear. Through these components, when the rotating bushing rotates, it can drive the mounting arm to rotate. When the mounting arm moves, the gear ring engages with the gear to drive the rocker arm to rotate, and the rocker arm drives the stirring rod to move. Simultaneously, the gear ring engages with the gear to drive the stirring rod to rotate, thus enabling multi-position stirring during mixing and improving the mixing effect.

[0013] Preferably, the drive assembly includes a drive motor mounted on the surface of the PE storage tank, a first synchronous pulley mounted on the output end of the drive motor, a second synchronous pulley fixedly connected to the surface of the rotating bushing, and a synchronous belt installed between the first and second synchronous pulleys. Through the above components, during the driving process, the drive motor is first turned on, and the drive motor drives the second synchronous pulley and the rotating bushing to rotate through the first synchronous pulley and the synchronous belt, thereby realizing the overall stirring drive operation.

[0014] Preferably, the sampling assembly includes a sampling pump installed on one side of the PE storage tank. The input end of the sampling pump is equipped with a sampling tube, and the other end of the sampling tube extends into the inner wall of the PE storage tank and is fitted against the inner wall. The output end of the sampling pump is threadedly connected to a collection bottle, and the surface of the collection bottle is marked with graduations. With the above components, when sampling is performed, the sampling pump can be turned on, and the sampling pump, together with the sampling tube, can draw the sample into the collection bottle. Accurate sampling can be achieved through the graduations.

[0015] Preferably, the drainage assembly includes an air pump installed on the surface of the PE storage tank. The air pump has a suction pipe and a discharge pipe installed at its input and output ends, respectively. The other end of the suction pipe extends into the inner wall of the PE storage tank and is fitted onto the inner wall.

[0016] A method for using an on-site generation tank for an oxidizing agent bactericide and algaecide includes the following steps: Step 1: During the production process, water and the corresponding raw materials can first be discharged into the PE storage tank through the feed port. Then, the drive component is turned on, which drives the rotating bushing and the hollow insert shaft to rotate. The rotating bushing randomly drives the mounting arm and the stirring part to mix and stir the water and raw materials, so that they are mixed and prepared into an oxidant bactericide and algaecide. To further improve the stirring effect, the component is pushed to move the hollow insert shaft and the connecting part, so that the connecting part connects with the gas outlet component. The gas supply equipment supplies gas to the gas delivery pipe, which delivers the gas to the gas outlet component and blows it out from the bottom of the PE storage tank. This, together with the stirring part, improves the mixing effect. Step 2: After mixing and combining, the oxidant bactericide and algaecide in the PE storage tank can be extracted by the sampling component and collected by the collection bottle. The prepared oxidant bactericide and algaecide can be sampled and tested. Step 3: After passing the test, the oxidant bactericide and algaecide can be discharged through the drainage component for convenient use.

[0017] In summary, the technical effects and advantages of this invention are as follows: 1. In this invention, by setting up a stirring mechanism, the driving component drives the rotating bushing to rotate, and the rotating bushing drives the mounting arm and stirring part to rotate, forming liquid disturbance at multiple positions and expanding the contact area; at the same time, the pushing component allows the hollow insert shaft to drive the connecting part to connect with the gas outlet component, and then gas is input through the gas supply pipe, and the gas outlet component continuously blows gas upward, forming a longitudinal airflow from the bottom of the tank to the liquid surface, driving the liquid to form an up-and-down circulating convection, which allows the stirring to cover all areas of the tank, and can also push the bottom liquid and the upper layer to mix fully through the rising bubbles, so that the raw materials dissolve faster, the reaction is more complete, and the precipitation phenomenon is reduced.

[0018] 2. In this invention, by setting up a stirring part, when the rotating bushing drives the mounting arm to revolve, the rocker arm rotates under the cooperation of gear one and gear ring one, and at the same time the stirring rod rotates on its own under the action of gear two and gear ring two, which greatly expands the stirring coverage area.

[0019] 3. In this invention, by setting an air outlet component, after the connecting part is connected to the air outlet component, the gas is blown upward from the air outlet pipe, causing the bottom sediment to rise with the bubbles; at the same time, when the plug is rotated, it can drive the connecting sleeve and scraper to rotate, directly scraping off the sediment accumulated on the chassis, and further improving the mixing effect as it rises with the bubbles.

[0020] 4. In this invention, by setting up a sampling component, a sampling pump and a sampling tube can be used to extract samples from different PE storage tanks. The graduated collection bottle facilitates accurate collection and makes it convenient to sample and test oxidant bactericides and algaecides.

[0021] 5. In this invention, the drainage component is driven by an air pump, which quickly discharges the medicine through the suction pipe and the discharge pipe, facilitating subsequent use. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention; Figure 2 This is a side view of the on-site generation tank for an oxidant bactericide and algaecide according to the present invention. Figure 3 This is a cross-sectional structural schematic diagram of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention; Figure 4 This is a partial structural diagram of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention; Figure 5 This invention relates to an on-site generation tank for an oxidizing agent, bactericide, and algaecide. Figure 4 Schematic diagram of the structure at point A in the middle; Figure 6 This is a schematic diagram of the hollow insert shaft of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention. Figure 7 This is a schematic diagram of the hollow insert shaft cross-sectional structure of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention; Figure 8 This is a schematic diagram of the gas outlet component structure of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention; Figure 9 This is a cross-sectional structural diagram of the gas outlet component of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention. Figure 10 This is a schematic diagram of the exploded structure of the gas outlet component of an on-site generation tank for an oxidant bactericide and algaecide according to the present invention.

[0023] In the diagram: 1. PE storage tank; 2. Level gauge; 3. Inlet; 4. Vent; 5. Drainage assembly; 51. Air pump; 52. Suction pipe; 53. Discharge pipe; 6. Sampling assembly; 61. Sampling pump; 62. Collection bottle; 63. Scale; 64. Sampling tube; 7. Stirring mechanism; 71. Rotating bushing; 72. Hollow insert shaft; 73. Connector; 74. Gas supply pipe; 75. Drive assembly; 751. Motor; 752. Synchronous pulley one; 753. Synchronous pulley two; 76. Push assembly; 761. Cylinder; 762. Push ring; 77. Connecting part; 771. Hollow rod; 772. Return spring; 773. Duckbill one-way valve; 774. Plug; 78. Air outlet assembly; 781. Chassis; 782. Connecting sleeve; 783. Air outlet pipe; 784. Filter screen; 785. Washer; 786. Scraper; 79. Stirring part; 791. Gear ring one; 792. Rocker arm; 793. Stirring rod; 794. Gear one; 795. Gear two; 796. Gear ring two; 710. Mounting arm. Detailed Implementation

[0024] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0025] refer to Figure 1 - Figure 10 The oxidant bactericide and algaecide on-site generation tank shown includes a PE storage tank 1. The PE storage tank 1 is provided with an inlet 3, an exhaust port 4, a drain assembly 5, a sampling assembly 6 and a stirring mechanism 7 in sequence on the top. A level gauge 2 is installed on one side of the PE storage tank 1.

[0026] The stirring mechanism 7 includes a rotating bushing 71 rotatably connected to the inner wall of the PE storage tank 1. A hollow insert shaft 72 is inserted into the inner wall of the rotating bushing 71. A connector 73 is rotatably connected to the upper end of the hollow insert shaft 72. An air supply pipe 74 connected to an air supply device is mounted on the surface of the connector 73. Multiple mounting arms 710 are fixedly connected to the surface of the rotating bushing 71. A stirring part 79 is provided on the surface of the mounting arms 710 for multi-position stirring. A connecting part 77 is provided at the lower end of the hollow insert shaft 72. A gas venting assembly 78 is provided on the bottom inner wall of the storage tank 1. A pushing assembly 76 is provided between the PE storage tank 1 and the hollow insert shaft 72 to connect the connecting part 77 to the gas venting assembly 78, allowing gas to be blown out from the gas venting assembly 78. A driving assembly 75 is provided on the surface of the PE storage tank 1 to control the rotation of the rotating bushing 71 and the stirring part 79. The sampling assembly 6 is used to extract the sample stored in the PE storage tank 1 for testing, and the draining assembly 5 is used to extract the sample in the PE storage tank 1 for use.

[0027] The venting assembly 78 includes a chassis 781 installed on the inner wall of the bottom of the PE storage tank 1. A venting pipe 783 is installed on the inner wall of the chassis 781. A filter screen 784 is fixedly connected to the inner wall of the venting pipe 783. A connecting sleeve 782 is rotatably connected to the inner wall of the venting pipe 783. A washer 785 is fixedly connected to the inner wall of the connecting sleeve 782. A plurality of scrapers 786 arranged at equal intervals are fixedly connected to the surface of the connecting sleeve 782. The scrapers 786 are in contact with the upper surface of the chassis 781.

[0028] In this embodiment: after the connecting part 77 is inserted into the connecting sleeve 782, the gasket 785 can improve the sealing effect. Then, the gas supply pipe 74 sequentially delivers gas to the hollow insert shaft 72, the hollow rod 771, and the plug 774, and then discharges through the gas outlet pipe 783. The gas moves upward, causing the sediment to move and improving the mixing effect. When the hollow insert shaft 72 rotates, it can drive the connecting sleeve 782 to rotate through the connecting part 77, thereby driving multiple scrapers 786 to rotate and scrape up the sediment accumulated on the scrapers 786, so as to better mix with the rising gas.

[0029] The connecting part 77 includes a hollow rod 771 that is slidably connected to the inner wall of the hollow insert shaft 72. One end of the hollow rod 771 is fixedly connected to a plug 774, which is inserted into the inner wall of the connecting sleeve 782. A return spring 772 is sleeved on the surface of the hollow rod 771. The two ends of the return spring 772 are fixedly connected to the inner walls of the hollow rod 771 and the hollow insert shaft 72, respectively. A duckbill one-way valve 773 is installed on the inner wall of the hollow rod 771.

[0030] In this embodiment: the pushing component 76 can drive the hollow insert shaft 72 and the plug 774 to move together. The plug 774 can contact the connecting sleeve 782. If misaligned, the return spring 772 can provide buffer. After alignment, the plug 774 can be inserted into the connecting sleeve 782, thus realizing the connection operation. The duckbill one-way valve 773 can reduce the amount of liquid entering the hollow insert shaft 72.

[0031] The pushing component 76 includes two cylinders 761 mounted on the surface of the PE storage tank 1. The output end of the cylinders 761 is fixedly connected to a push ring 762, and the push ring 762 is rotatably connected to the surface of the hollow insert shaft 72.

[0032] In this implementation scheme: when pushing, the cylinder 761 is opened, and the cylinder 761 can drive the push ring 762 to move, and the push ring 762 randomly drives the hollow insert shaft 72 to move.

[0033] The stirring unit 79 includes a rocker arm 792 rotatably connected to the inner wall of the mounting arm 710. A stirring rod 793 is rotatably connected to the inner wall of the rocker arm 792. A gear ring 791 is fixedly connected to the inner wall of the PE storage tank 1. A gear 794 is fixedly connected to the surface of the rocker arm 792. The gear 794 meshes with the gear ring 791. A gear 795 is fixedly connected to the surface of the stirring rod 793. A gear ring 796 is fixedly connected to the lower surface of the mounting arm 710. The gear 795 meshes with the gear ring 796.

[0034] In this embodiment: when the rotating bushing 71 rotates, it can drive the mounting arm 710 to rotate. When the mounting arm 710 moves, the gear 794 and the gear ring 791 can drive the rocker arm 792 to rotate. The rocker arm 792 drives the stirring rod 793 to move. At the same time, the gear 795 and the gear ring 796 can drive the stirring rod 793 to rotate. Thus, stirring can be carried out at multiple positions during stirring, thereby improving the stirring and mixing effect.

[0035] The drive assembly 75 includes a drive motor 751 mounted on the surface of the PE storage tank 1. A first synchronous pulley 752 is mounted on the output end of the drive motor 751. A second synchronous pulley 753 is fixedly connected to the surface of the rotating bushing 71. A synchronous belt is installed between the first synchronous pulley 752 and the second synchronous pulley 753.

[0036] In this implementation scheme: During the driving process, the drive motor 751 is first turned on. The drive motor 751 drives the synchronous pulley 753 and the rotating bushing 71 to rotate through the synchronous pulley 752 and the synchronous belt, thereby realizing the overall stirring drive operation.

[0037] The sampling assembly 6 includes a sampling pump 61 installed on one side of the PE storage tank 1. A sampling tube 64 is installed at the input end of the sampling pump 61. The other end of the sampling tube 64 extends into the inner wall of the PE storage tank 1 and is fitted onto the inner wall. A collection bottle 62 is threadedly connected to the output end of the sampling pump 61. A scale 63 is provided on the surface of the collection bottle 62.

[0038] In this implementation scheme: when sampling, the sampling pump 61 can be turned on. The sampling pump 61, together with the sampling tube 64, can draw the sample into the collection bottle 62. Accurate sampling can be achieved by using the scale 63.

[0039] The drainage assembly 5 includes an air pump 51 installed on the surface of the PE storage tank 1. The air pump 51 has a suction pipe 52 and a discharge pipe 53 installed at its input and output ends, respectively. The other end of the suction pipe 52 extends into the inner wall of the PE storage tank 1 and is fitted onto the inner wall.

[0040] A method for using an on-site generation tank for an oxidizing agent bactericide and algaecide includes the following steps: Step 1: During the generation process, water and the corresponding raw materials can first be discharged into the PE storage tank 1 through the feed port 3. Then, the drive component 75 is turned on, which drives the rotating bushing 71 and the hollow insert shaft 72 to rotate. The rotating bushing 71 randomly drives the mounting arm 710 and the stirring part 79 to mix and stir the water and raw materials, so that they are mixed and prepared into an oxidant bactericide and algaecide. To further improve the stirring effect, the push component 76 drives the hollow insert shaft 72 and the connecting part 77 to move, so that the connecting part 77 is connected to the gas outlet component 78. The gas supply equipment supplies gas to the gas supply pipe 74, which delivers the gas to the gas outlet component 78 and blows it out from the bottom of the PE storage tank 1. This, together with the stirring part 79, improves the mixing effect. Step 2: After mixing and combining, the oxidant bactericide and algaecide in the PE storage tank 1 can be extracted through the sampling component 6 and collected through the collection bottle 62. The prepared oxidant bactericide and algaecide can be sampled and tested. Step 3: After passing the test, the oxidant bactericide and algaecide can be discharged through the drainage component 5, making it convenient for use.

[0041] Working principle of this invention: During the production process, water and corresponding raw materials are first discharged into the PE storage tank 1 through the feed inlet 3. The drive motor 751 is then turned on. The drive motor 751, through synchronous pulley 752 and synchronous belt, drives synchronous pulley 753 and rotating bushing 71 to rotate. Rotating bushing 71 drives mounting arm 710 and hollow insert shaft 72 to rotate. As mounting arm 710 rotates with rotating bushing 71, rocker arm 792 moves. At this time, gear 794, in conjunction with gear ring 791, drives rocker arm 792 to rotate. Rocker arm 792 drives stirring rod 793 to move. Simultaneously, gear 795, in conjunction with gear ring 796, drives stirring rod 793 to rotate, thus enabling multi-position stirring during mixing and improving the mixing effect. At the same time, cylinder 761 can be opened. 761 drives the push ring 762 to move, and the push ring 762 drives the hollow insert shaft 72 to move downward. At this time, the plug 774 and the connecting sleeve 782 are not aligned, and they are squeezed. The return spring 772 is under force. When the plug 774 and the connecting sleeve 782 are aligned, the return spring 772 drives the plug 774 to insert into the connecting sleeve 782 and squeeze it on the washer 785. At this time, the gas supply pipe 74 is connected to the gas supply equipment, and the gas is sequentially delivered to the connector 73, the hollow insert shaft 72, the hollow rod 771, the plug 774, the connecting sleeve 782 and the gas outlet pipe 783, and blown upward through the gas outlet pipe 783. In addition, during the rotation of the plug 774, it can drive the connecting sleeve 782 and the scraper 786 to rotate, scraping up the sediment on the chassis 781 and moving upward with the blown gas, which works with the stirring rod 793 to achieve uniform mixing. After mixing thoroughly, turn on the sampling pump 61. The sampling pump 61, together with the sampling tube 64, can draw the sample into the collection bottle 62. Accurate sampling can be achieved through the scale 63. Then, remove the collection bottle 62 and the testing operation can be carried out. After the test is completed, when it is needed, the air pump 51 can be turned on. The air pump 51, together with the suction tube 52 and the discharge tube 53, can be used to apply the oxidant bactericide and algaecide.

[0042] All electrical components mentioned in this article are connected to an external main controller and 220V AC mains power, and the main controller can be a conventional known device such as a computer that can control it.

[0043] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. 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 on-site generation tank for an oxidizing agent bactericide and algaecide, comprising a PE storage tank (1), characterized in that: The PE storage tank (1) is provided with a feed inlet (3), an exhaust port (4), a drain assembly (5), a sampling assembly (6) and a stirring mechanism (7) in sequence on the top. A level gauge (2) is installed on one side of the PE storage tank (1). The stirring mechanism (7) includes a rotating bushing (71) rotatably connected to the inner wall of the PE storage tank (1). A hollow insert shaft (72) is inserted into the inner wall of the rotating bushing (71). A connector (73) is rotatably connected to the upper end of the hollow insert shaft (72). An air supply pipe (74) connected to an air supply device is installed on the surface of the connector (73). Multiple mounting arms (710) are fixedly connected to the surface of the rotating bushing (71). A stirring part (79) is provided on the surface of the mounting arms (710) for multiple... The hollow insert shaft (72) is provided with a connecting part (77) at its lower end. The bottom inner wall of the PE storage tank (1) is provided with an air outlet assembly (78). A pushing assembly (76) is provided between the PE storage tank (1) and the hollow insert shaft (72) to connect the connecting part (77) and the air outlet assembly (78) so that gas can be blown out from the air outlet assembly (78). A driving assembly (75) is provided on the surface of the PE storage tank (1) to control the rotation of the rotating bushing (71) and the stirring part (79). The sampling component (6) is used to extract the sample stored in the PE storage tank (1) for testing, and the draining component (5) is used to extract the sample in the PE storage tank (1) for use.

2. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 1, characterized in that: The venting assembly (78) includes a chassis (781) installed on the inner wall of the bottom of the PE storage tank (1). An venting pipe (783) is installed on the inner wall of the chassis (781). A filter screen (784) is fixedly connected to the inner wall of the venting pipe (783). A connecting sleeve (782) is rotatably connected to the inner wall of the venting pipe (783). A gasket (785) is fixedly connected to the inner wall of the connecting sleeve (782).

3. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 2, characterized in that: The surface of the connecting sleeve (782) is fixedly connected with a plurality of scrapers (786) arranged at equal intervals, and the scrapers (786) are in contact with the upper surface of the chassis (781).

4. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 2, characterized in that: The connecting part (77) includes a hollow rod (771) that is slidably connected to the inner wall of the hollow insert shaft (72). One end of the hollow rod (771) is fixedly connected to a plug (774). The plug (744) is inserted into the inner wall of the connecting sleeve (782). A return spring (772) is sleeved on the surface of the hollow rod (771). The two ends of the return spring (772) are fixedly connected to the inner walls of the hollow rod (771) and the hollow insert shaft (72) respectively. A duckbill one-way valve (773) is installed on the inner wall of the hollow rod (771).

5. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 1, characterized in that: The pushing assembly (76) includes two cylinders (761) mounted on the surface of the PE storage tank (1). The output end of the cylinder (761) is fixedly connected to a push ring (762), and the push ring (762) is rotatably connected to the surface of the hollow insert shaft (72).

6. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 1, characterized in that: The stirring part (79) includes a rocker arm (792) rotatably connected to the inner wall of the mounting arm (710). The inner wall of the rocker arm (792) is rotatably connected to a stirring rod (793). The inner wall of the PE storage tank (1) is fixedly connected to a gear ring (791). The surface of the rocker arm (792) is fixedly connected to a gear (794). The gear (794) meshes with the gear ring (791). The surface of the stirring rod (793) is fixedly connected to a gear (795). The lower surface of the mounting arm (710) is fixedly connected to a gear ring (796). The gear (795) meshes with the gear ring (796).

7. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 1, characterized in that: The drive assembly (75) includes a drive motor (751) mounted on the surface of the PE storage tank (1). A first synchronous pulley (752) is mounted on the output end of the drive motor (751). A second synchronous pulley (753) is fixedly connected to the surface of the rotating bushing (71). A synchronous belt is installed between the first synchronous pulley (752) and the second synchronous pulley (753).

8. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 1, characterized in that: The sampling assembly (6) includes a sampling pump (61) installed on one side of the PE storage tank (1). The sampling pump (61) has a sampling tube (64) installed at its input end. The other end of the sampling tube (64) extends into the inner wall of the PE storage tank (1) and is fitted onto the inner wall. The sampling pump (61) has a collection bottle (62) threadedly connected to its output end. The surface of the collection bottle (62) is provided with a scale (63).

9. The on-site generation tank for an oxidizing agent bactericide and algaecide according to claim 1, characterized in that: The drainage assembly (5) includes an air pump (51) installed on the surface of the PE storage tank (1). The air pump (51) has a suction pipe (52) and a discharge pipe (53) installed at its input and output ends, respectively. The other end of the suction pipe (52) extends into the inner wall of the PE storage tank (1) and is fitted onto the inner wall.

10. A method of using an on-site generation tank for an oxidant bactericide and algaecide as described in any one of claims 1-9, characterized in that, Includes the following steps: S1: During the generation process, water and corresponding raw materials can first be discharged into the PE storage tank (1) through the feed port (3). Then, the drive assembly (75) is turned on, and the rotating bushing (71) and hollow insert shaft (72) are driven to rotate. The rotating bushing (71) randomly drives the mounting arm (710) and the stirring part (79) to mix and stir the water and raw materials, so that they are mixed and prepared into an oxidant bactericide and algaecide. To further improve the stirring effect, the push assembly (76) drives the hollow insert shaft (72) and the connecting part (77) to move, so that the connecting part (77) is connected to the gas outlet assembly (78). The gas supply equipment supplies gas to the gas pipe (74), and delivers the gas to the gas outlet assembly (78) and blows it out from the bottom of the PE storage tank (1). In conjunction with the stirring part (79), the mixing effect is improved. S2: After mixing and combining, the oxidant bactericide and algaecide in the PE storage tank (1) can be extracted by the sampling component (6) and collected by the collection bottle (62). The prepared oxidant bactericide and algaecide can be sampled and tested. S3: After passing the test, the oxidant bactericide and algaecide can be discharged through the drainage component (5) for convenient use.