Water treatment system, device and method

By combining weak alkalization, magnetization, ozonation and micro-nano bubble treatment technologies in the water treatment system, the problem of adding detergents and drying agents in the existing water treatment technology is solved, efficient cleaning and natural drying are achieved, and resource waste and environmental pollution are reduced.

CN120136342APending Publication Date: 2025-06-13ZHONGSHAN YOUJIA TECH CO LTD

Patent Information

Application Number
CN202510313860.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2025-06-13

AI Technical Summary

Technical Problem

The existing water treatment technology requires the addition of detergents and drying agents during the cleaning process, which leads to waste of resources and environmental pollution. At the same time, the drying agent is harmful to the human body and is easy to enter the food chain.

Method used

A water treatment system is designed, including a weak alkalization module, a water magnetization module, an ozone generation module and a micro-nano bubble generation module. Through weak alkalization, magnetization, ozonation and micro-nano bubble generation, the water cleaning and drying capacity is enhanced, and detergents and drying agents are avoided.

Benefits of technology

It achieves the improvement of water cleaning effect and drying capacity without additives, reduces resource waste and environmental pollution, and improves cleaning efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to the technical field of cleaning, in particular to a water treatment system, device and method.The water treatment system comprises a water flow channel, a weak alkalinization module, a water magnetization module, an ozone generation module and a micro-nano bubble generation module; the alkalescence module, the water magnetization module, the ozone generation module and the micro-nano bubble generation module are sequentially arranged in the water flow direction of the water flow channel, the alkalescence module can make water become alkalescent, the water magnetization module can magnetize the water into small molecular group water, and the micro-nano bubble generation module can generate micro-nano bubbles into the water flow channel; therefore, ozone generated by the ozone generation module can be stored in the micro-nano bubbles. Water can be weakly alkalized and magnetized into small molecular group water, the small molecular group water wraps and takes away oil dirt, the solubility of ozone in water can be increased through cooperation of the micro-nano bubble generation module and the ozone generation module, and therefore the sterilization and decontamination capacity is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of cleaning, and more specifically, to a water treatment system, device and method. Background Art

[0002] In various industries such as industrial production, daily life, and medical and health fields, scenarios where dirt needs to be cleaned are encountered. For example, cleaning of tobacco oil in the tobacco industry, cleaning of household or commercial tableware, cleaning of medical supplies, cleaning of oil tanks, cleaning of toilets, and so on.

[0003] In order to enhance the cleaning effect of water, additives such as detergents are usually added to water. Due to the addition of detergents, a special rinsing device is required during cleaning to remove the bubbles generated by the detergents, which not only increases the loss of water resources but also causes environmental pollution. In some cleaning scenarios where the cleaned object needs to be dried, a special drying module is also required to dry the cleaned object, such as the cleaning of tableware. To quickly dry the cleaned object, a common method is to add a drying agent and then use means such as hot air to accelerate the drying of the cleaned object. The drying method using a drying agent has the following problems: After drying with the drying agent, a non-disappearing film is formed on the surface of the cleaned object, and the drying agent is more harmful to the human body than the cleaning agent. In an application scenario such as tableware cleaning, when people use such tableware, some of the drying agent will inevitably enter the human body together with the food, causing harm. Summary of the Invention

[0004] To solve the above problems, the invention aims to provide a water treatment system, device and method that can treat water without adding additives to enhance the cleaning effect of water.

[0005] To achieve the above object, a water treatment system of the present invention includes a water flow channel having a water inlet and a water outlet, and further includes a weak alkalization module, a water magnetization module, an ozone generation module, and a micro-nano bubble generation module sequentially arranged between the water inlet and the water outlet of the water flow channel along the water flow direction of the water flow channel. A filter element capable of making water weakly alkaline is provided in the weak alkalization module. The weak alkalization module has an inlet and an outlet communicating with the filter element. The inlet of the weak alkalization module communicates with the inlet of the water flow channel. The water magnetization module includes a magnetizable tube with magnetism and a magnet arranged on the magnetizable tube for forming a magnetic field in the magnetizable tube area. The magnetizable tube has an inlet and an outlet. The inlet of the magnetizable tube communicates with the outlet of the weak alkalization module. The micro-nano bubble generation module has an inlet and an outlet. The inlet of the micro-nano bubble generation module communicates with the outlet of the magnetizable tube. The micro-nano bubble generation module is used for generating micro-nano bubbles in the water flow channel. The ozone generation module has an air outlet. The air outlet of the ozone generation module communicates with the water flow channel located between the magnetizable tube and the micro-nano bubble generation module. The ozone generation module is used for introducing ozone into the water flow channel.

[0006] In this technical solution, water enters the weak alkalization module from the water inlet of the water flow channel. The filter element of the weak alkalization module can adjust the water to be weakly alkaline. Weakly alkaline water has stronger decontamination ability. Subsequently, it enters the water magnetization module, and the water magnetization module magnetizes the water to form small molecule cluster water. During the process of water passing through the water magnetization module, the dipole moment of the two H-O bonds in the water molecule cannot be offset, the positive and negative charge centers do not coincide, and the whole molecule has a relatively high polarity. Utilizing the principle of attraction between the polarity of water molecules and the positive and negative charges of oil stains, water molecules can easily wrap and carry away the oil stains, achieving the purpose of cleaning stains without using cleaning agents. At the same time, after the water forms small molecule cluster water, the solubility of ozone can be increased. The magnetization treatment is arranged after the weak alkalization treatment so that the water obtained at the water usage end where water is needed is small molecule cluster water as small as possible. On the one hand, during the process of cleaning dirt, the water has stronger permeability, can better wrap the dirt, and thus clean it thoroughly. Moreover, during the cleaning process, it can better cooperate with the small molecule cluster water to remove the stains. On the other hand, the smaller the small molecule cluster water, the easier it is to volatilize, the less likely the items to be rinsed are to hang water droplets, and the easier the items are to dry. In this way, the purpose of natural drying can be achieved without using drying agents and other drying means. The water flows along the water flow channel. When the water flows through the ozone generation module, the ozone generation module introduces ozone into the water. Subsequently, the water enters the micro-nano bubble generation module, and the micro-nano bubble generation module can generate a large number of micro-nano bubbles in the water, enabling ozone to be stored in the micro-nano bubbles and increasing the solubility of ozone in the water, thereby increasing the bactericidal and decontamination ability of the water.

[0007] As a preferred solution, the weak alkalization module includes a number of water treatment components with the same structure and connection. The number of the filter elements corresponds to the number of the water treatment components, and each of the filter elements is arranged in each of the water treatment components. The aforenamed water treatment components respectively perform weak alkalization treatment on the water in the water flow channel. By appropriately increasing the number of the water treatment components, the ability of weak alkalization treatment can be enhanced.

[0008] As a preferred solution, in order to increase the water output of the water treatment components, a number of the water treatment components are arranged in parallel. Each of the water treatment components is respectively provided with a water inlet and a water outlet. The water inlets of the aforenamed water treatment components are connected and communicated with each other, and the water outlets of the aforenamed water treatment components are connected and communicated with each other.

[0009] As a preferred solution, the water treatment component includes a sleeve, a sealing cover and a connecting component. The sleeve has an accommodating cavity, and the filter element is arranged in the accommodating cavity. The sealing cover is detachably connected to the top of the sleeve to seal the accommodating cavity. The sealing cover has a water inlet and a water outlet that are communicated with the accommodating cavity. The connecting component has a water inlet and a water outlet. The water inlet of the sealing cover is communicated with the water inlet of the connecting component, and the water outlet of the sealing cover is communicated with the water outlet of the connecting component. There is a gap between the outer wall of the filter element and the inner wall of the accommodating cavity, and the gap is communicated with the water inlet of the sealing cover. The outer wall of the filter element is a permeable filter material. The filter element is provided with an inner cavity, and the inner cavity is communicated with the water outlet of the sealing cover. When this solution works: water first enters the gap. As the water pressure increases, the water gradually penetrates through the filter element and enters the inner cavity, and finally flows out from the water outlet of the sealing cover in sequence. The connecting component has a water inlet channel and a water outlet channel. The water inlet of the connecting component is communicated with the water inlet channel, and the water outlet of the connecting component is communicated with the water outlet channel. A number of the water treatment components are arranged side by side. The connection form of adjacent connecting components is that adjacent water inlet channels are connected and communicated with each other; adjacent water outlet channels are connected and communicated with each other. Each water treatment component realizes parallel connection through its respective connecting component.

[0010] As a preferred solution, in order to enhance the water magnetization effect, the magnet includes at least one magnet group arranged along the axial direction of the magnetization tube. Each magnet group includes two magnets. The magnets are fixedly arranged on the outer surface of the magnetization tube, and the opposite magnetic poles of the two magnets face each other. The magnetic force parameter between the two magnets is 5000 - 6000 gauss.

[0011] As a preferred solution, the water magnetization device further includes a housing, a filling medium and a magnetic locking member. The housing is of a cylindrical structure. The magnetization tube and the magnet are respectively placed in the housing. The magnetic locking member is sleeved on the outer periphery of the magnet for stabilizing the magnetic field. The magnetic locking member is an iron block. The filling medium is filled in the housing for heat conduction and magnetic locking.

[0012] As a preferred solution, in order to enhance the water magnetization effect, the water magnetization device further includes a temperature control component, which is arranged in the housing for temperature regulation of the magnetic field environment.

[0013] As a preferred solution, the water outlet of the water magnetization module is communicated with the first branch pipe of the provided three-way pipe, the second branch pipe of the three-way pipe is communicated with the water outlet of the water flow channel, and the third branch pipe of the three-way pipe is communicated with the water inlet of the micro-nano bubble generation module. If all the water flows through the micro-nano bubble generation module, it will cause a situation of too little water output. To avoid this situation, this solution uses a three-way pipe to divide the water coming out of the water magnetization module. The water coming out of the second branch pipe of the three-way pipe finally mixes with the water coming out of the water outlet of the micro-nano bubble generation module, so as to ensure the water output of the water treatment system of the present invention.

[0014] As a preferred solution, it further includes a water tank, which has a water inlet and a water outlet. The third branch pipe of the three-way pipe is communicated with the water inlet of the water tank, the water outlet of the water tank is communicated with the water inlet of the micro-nano bubble generation device, and the gas outlet of the ozone generation module is communicated with the water flow channel located between the water tank and the micro-nano bubble generation module. This water tank can reduce the pressure of the water coming out of the third branch pipe of the three-way pipe, thereby reducing the water pressure at the water inlet of the micro-nano bubble generation device and avoiding damage to the ozone generation module and the micro-nano bubble generation module due to excessive water pressure.

[0015] To achieve the above object, a water treatment device of the present invention includes a packaging body and the above-mentioned water treatment system. The water treatment system is arranged in the packaging body. The packaging body is provided with a water inlet and a water outlet. The water inlet of the weak alkalization module is communicated with the water inlet of the packaging body, the water outlet of the micro-nano bubble generation module is communicated with the water outlet of the packaging body, and it further includes a controller, which is arranged in the packaging body and is electrically connected to the ozone generation module and the micro-nano bubble generation module respectively.

[0016] As a preferred solution, the water outlet of the water magnetization module is communicated with the first branch pipe of the provided three-way pipe, the second branch pipe of the three-way pipe is communicated with the water outlet of the water flow channel, the third branch pipe of the three-way pipe is communicated with the water inlet of the micro-nano bubble generation module, and the second branch pipe of the three-way pipe and the water outlet of the micro-nano bubble generation module are communicated with the water outlet of the packaging body through a collecting pipe, so that the two water flows are collected together, thereby increasing the water output.

[0017] To achieve the above object, a water treatment method of the present invention is applied to the above-mentioned water treatment system and includes the following steps:

[0018] S1: Perform weak alkalization treatment on water and adjust the pH value of the water to 8.0 - 9.0;

[0019] S2: Place the weakly alkalized water in a magnetic field for magnetization to form small molecule cluster water with a half-width less than 60 Hz;

[0020] S3: Pass ozone with a concentration of 0.3 - 2 mg / L into the magnetized water;

[0021] S4: Pass bubbles with a diameter of 50 - 1000 nm into the water into which ozone has been passed.

[0022] As a preferred solution, in step S2, the magnetic force parameter of the magnetic field is 5000 - 6000 gauss.

[0023] Compared with the prior art, the beneficial effects of the present invention are:

[0024] 1. The weak alkalization module cooperates with the water magnetization module, and the magnetization process is set after the weak alkalization process, so that the water obtained at the water usage end where water is needed is small molecule cluster water as small as possible. The small molecule cluster water can easily entrap and carry away oil stains, achieving the purpose of cleaning stains without using a cleaning agent; at the same time, the smaller the small molecule cluster water, the easier it is to volatilize, the less likely the item being rinsed is to hang water droplets, and the easier it is for the item to dry, achieving the purpose of rapid natural drying without using drying aids such as drying agents.

[0025] 2. The treated water not only has good cleaning effect, but also, due to the absence of the addition of detergents, no bubbles will be generated, which can greatly shorten the rinsing time and improve the cleaning efficiency.

[0026] 3. Through the cooperation of the ozone generation module and the micro-nano bubble generation module, ozone is passed into the water and stored in the micro-nano bubbles, greatly increasing the dissolved amount of ozone, thereby improving the decontamination and sterilization capabilities.

[0027] 4. By passing micro-nano bubbles into the water through the micro-nano bubble generation module, when washing vegetables, the micro-nano bubbles can easily penetrate into the vegetables and generate a force when bursting inside the vegetables, thereby being able to carry out dirt, hormones, pesticides, etc. inside the vegetables. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 is a schematic structural diagram of the water treatment system of the present invention;

[0029] Figure 2 is a schematic structural diagram of the water magnetization module;

[0030] Figure 3 is a schematic diagram of the position of the magnet on the magnetization tube.

[0031] Figure 4It is a schematic structural diagram of the weak alkalization module;

[0032] Figure 5 It is an exploded schematic diagram of the water treatment component;

[0033] Figure 6 It is a schematic diagram of the water flow direction of the water treatment component;

[0034] Figure 7 It is a schematic structural diagram of the water treatment device of the present invention.

[0035] Figure 8 It is a flowchart of the water treatment method of the present invention.

[0036] In the figure: weak alkalization module 1; sleeve 11; accommodation cavity 111; sealing cover 12; filter element 13; inner cavity 131; connecting component 14; water inlet channel 141; water outlet channel 142; connecting pipe 2; water magnetization module 3; housing 31; filling medium 32; magnetization tube 33; magnet 34; magnetic locking part 35; temperature control component 36; temperature probe 361; heating rod 362; ozone generation module 4; micro-nano bubble generation module 5; control panel 6; power cord 61; encapsulation body 7; first water outlet pipe 71; second water outlet pipe 72; three-way pipe 8, water tank 9. Specific Embodiments

[0037] The accompanying drawings are only for illustrative purposes and should not be construed as limitations on this patent; for better illustration of this embodiment, some components in the accompanying drawings will be omitted, enlarged or reduced, and do not represent the dimensions of the actual product; for those skilled in the art, it is understandable that some well-known structures and their descriptions in the accompanying drawings may be omitted. The positional relationships described in the accompanying drawings are only for illustrative purposes and should not be construed as limitations on this patent.

[0038] In the accompanying drawings of the embodiments of the present invention, the same or similar reference numerals correspond to the same or similar components; in the description of the present invention, it should be understood that if there are terms such as "upper", "lower", "left", "right", "long", "short", etc. indicating the orientation or positional relationship, they are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, the terms describing the positional relationship in the accompanying drawings are only for illustrative purposes and should not be construed as limitations on this patent. For those of ordinary skill in the art, the specific meanings of the above terms can be understood according to specific circumstances.

[0039] The technical solutions of the present invention will be further specifically described below through specific embodiments in conjunction with the accompanying drawings:

[0040] Embodiment 1:

[0041] As Figures 1 to 6As shown in the figure, this embodiment provides a water treatment system, including a water flow channel with a water inlet and a water outlet, and further including a weak alkalization module 1, a water magnetization module 3, an ozone generation module 4, and a micro-nano bubble generation module 5 that are sequentially arranged between the water inlet and the water outlet of the water flow channel along the water flow direction of the water flow channel. A filter element 13 that can make water become weakly alkaline is provided in the weak alkalization module 1. The weak alkalization module 1 has an inlet and an outlet that communicate with the filter element 13. The inlet of the weak alkalization module 1 communicates with the inlet of the water flow channel. The water magnetization module 3 includes a magnetizable magnetization tube 33 and a magnet 34 arranged on the magnetization tube 33 for forming a magnetic field in the area of the magnetization tube 33. The magnetization tube 33 has an inlet and an outlet. The inlet of the magnetization tube 33 communicates with the outlet of the weak alkalization module 1. The micro-nano bubble generation module 5 has an inlet and an outlet. The inlet of the micro-nano bubble generation module 5 communicates with the outlet of the magnetization tube 33. The micro-nano bubble generation module 5 is used to generate micro-nano bubbles in the water flow channel. The ozone generation module 4 has an air outlet. The air outlet of the ozone generation module 4 communicates with the water flow channel located between the magnetization tube 33 and the micro-nano bubble generation module 5. The ozone generation module 4 is used to introduce ozone into the water flow channel.

[0042] In this embodiment, the filter element 13 makes water become weakly alkaline by physical means, which is prior art. There are various filter elements 13 in the prior art that can make water become weakly alkaline by physical means. In this embodiment, medical stone, tourmaline, ochre, six-ring stone, calcium sulfite, and nanozeolite are evenly mixed as the filter element 13.

[0043] In this embodiment, the ozone generation module 4 is prior art. It can generate ozone by the method of high-voltage discharge. Through the corona discharge between the high-voltage electrode and the ground electrode, oxygen molecules are ionized into oxygen atoms, and these oxygen atoms then combine with oxygen molecules to form ozone molecules.

[0044] In this embodiment, the micro-nano bubble generation module 5 is prior art. After gas (such as ozone, air, oxygen, etc.) enters the micro-nano bubble generation module 5 through a pipeline, it is fully mixed with water. This process is usually achieved by means of high pressure, shear force, etc. to ensure that the gas is evenly distributed in the water. Bubble generation: Under the action of high pressure and shear force, the gas is compressed and forms micro-nano bubbles. Micro-nano bubbles have the characteristics of a large surface area, a negatively charged surface, and a slow rising speed. Therefore, they stay in water for a long time, so that the solubility of ozone in water can be increased. The micro-nano bubble generation module 5 is provided with a bubble machine, and the bubble machine is connected to the micro-nano bubble generation device 5. The bubble machine supplies gas to the micro-nano bubble generation device 5 as a gas source.

[0045] Specifically, the weak alkalization module 1 includes a number of water treatment components with the same structure and connection. The number of the filter elements 13 corresponds to the number of the water treatment components, and each of the filter elements 13 is disposed in each of the water treatment components.

[0046] Specifically, a number of the water treatment components are arranged in parallel. Each of the water treatment components is provided with a water inlet and a water outlet. The water inlets of a number of the water treatment components are connected in communication, and the water outlets of a number of the water treatment components are connected in communication.

[0047] In this embodiment, the water treatment component 1 is made of a plastic material capable of withstanding high pressure.

[0048] Specifically, the water treatment component includes a sleeve 11, a sealing cover 12 and a connecting component 14. The sleeve 11 has an accommodating cavity 111. The filter element 13 is disposed in the accommodating cavity 111. The sealing cover 12 is detachably connected to the top of the sleeve 11 and seals the accommodating cavity 111. The sealing cover 12 has a water inlet and a water outlet communicating with the accommodating cavity 111. The connecting component 14 has a water inlet and a water outlet. The water inlet of the sealing cover 12 is communicated with the water inlet of the connecting component 14. The water outlet of the sealing cover 12 is communicated with the water outlet of the connecting component 14. The connecting component 14 has a water inlet channel 141 and a water outlet channel 142. The water inlet of the connecting component 14 is communicated with the water inlet channel 141. The water outlet of the connecting component 14 is communicated with the water outlet channel 142. A number of the water treatment components are arranged side by side. The connection form of adjacent connecting components 14 is that adjacent water inlet channels 141 are connected in communication; adjacent water outlet channels 142 are connected in communication.

[0049] In this embodiment, the water inlet channel 141 and the water outlet channel 142 of each connecting component 14 are connected by a connecting pipe 2. The port of the water inlet channel 141 of the connecting component 14 of the first (as Figure 4 shown, the leftmost) water treatment component 1 is used as the water inlet end 15, and the water outlet channel 142 of this connecting component 14 is blocked by a plug 17; the port of the water outlet channel 142 of the connecting component 14 of the last (as Figure 4 shown, the rightmost) water treatment component 1 is used as the water outlet end 16, and the water inlet channel 141 of this connecting component 14 is blocked by a plug 17.

[0050] Specifically, the magnet 34 includes at least one magnet group arranged along the axial direction of the magnetization tube 33. Each magnet group includes two magnets. The magnets are fixedly arranged on the outer surface of the magnetization tube 33, and the opposite magnetic poles of the two magnets face each other. The magnetic force parameter between the two magnets is 5000 - 6000 gauss.

[0051] In this embodiment, the magnetic force parameter of the magnetic field of the magnet is preferably 5500 gauss.

[0052] Specifically, the water magnetization device 3 further includes a housing 31, a filling medium 32, and a magnetic locking member 35. The housing 31 is of a cylindrical structure. The magnetization tube 33 and the magnet 34 are respectively placed inside the housing 31. The magnetic locking member 35 is sleeved on the outer periphery of the magnet 34 to stabilize the magnetic field. The magnetic locking member 35 is an iron block, and the filling medium 32 fills the remaining space inside the housing 31.

[0053] In this embodiment, the filling medium 32 is a prior art, which can lock the magnetic force and stimulate (conduct) magnetism, thereby improving the magnetization effect of water.

[0054] Specifically, the filling medium 32 includes at least one of graphene powder, tourmaline original stone powder, bian stone powder, germanium stone powder, biochar powder, medical stone powder, and volcanic rock silicate.

[0055] Specifically, the water magnetization device 3 further includes a temperature control component 36, which is arranged inside the housing 31 for temperature regulation of the magnetic field environment.

[0056] Specifically, the temperature control component 36 includes a temperature probe 361 and a heating rod 362. The temperature probe 361 is electrically connected to the heating rod 362. The temperature probe 361 is used to detect the temperature and control the heating rod 362 to heat, and can adjust the temperature inside the housing 31, so that the water magnetization device 3 works at a suitable temperature, thereby increasing the magnetization effect of water.

[0057] Specifically, the water outlet of the water magnetization module 3 is communicated with the first branch pipe of the provided three-way pipe 8. The second branch pipe of the three-way pipe 8 is communicated with the water outlet of the water flow channel. The third branch pipe of the three-way pipe 8 is communicated with the water inlet of the micro-nano bubble generation module 5.

[0058] Specifically, it further includes a water tank 9, which has a water inlet and a water outlet. The third branch pipe of the three-way pipe 8 is communicated with the water inlet of the water tank 9. The water outlet of the water tank 9 is communicated with the water inlet of the micro-nano bubble generation device 5. The gas outlet of the ozone generation module 4 is communicated with the water flow channel located between the water tank 9 and the micro-nano bubble generation module 5.

[0059] Embodiment 2:

[0060] As Figures 1 to 7As shown in the figure, this embodiment provides a water treatment device, which includes an encapsulation body 7 and the above-mentioned water treatment system. The water treatment system is arranged inside the encapsulation body 7. The encapsulation body 7 is provided with a water inlet and a water outlet. The water inlet of the weak alkalization module 1 is communicated with the water inlet of the encapsulation body 7, and the water outlet of the micro-nano bubble generation module 5 is communicated with the water outlet of the encapsulation body 7. It further includes a controller 6, which is arranged inside the encapsulation body 7 and is electrically connected to the ozone generation module 4 and the micro-nano bubble generation module 5 respectively.

[0061] In this embodiment, the control panel 6 has a power cord 61.

[0062] Specifically, the water outlet of the water magnetization module 3 is communicated with the first branch pipe of the provided three-way pipe 8. The second branch pipe of the three-way pipe 8 is communicated with the water outlet of the water flow channel. The third branch pipe of the three-way pipe 8 is communicated with the water inlet of the micro-nano bubble generation module 5. The second branch pipe of the three-way pipe 8 and the water outlet of the micro-nano bubble generation module 5 are communicated with the water outlet of the encapsulation body 7 through a collecting pipe.

[0063] In this embodiment, there are two water outlets of the encapsulation body 7. The two water outlets of the encapsulation body 7 are respectively provided with a first water outlet pipe 71 and a second water outlet pipe 72. The first water outlet pipe 71 is communicated with the water outlet of the micro-nano bubble generation module 5. The water inlet of the water magnetization device 3 is connected to the water outlet end 16 of the weak alkalization module 1 through a water pipe. The water outlet of the water magnetization device 3 is connected to the first branch pipe of the three-way pipe 8. The second branch pipe of the three-way pipe 8 is communicated with the second water outlet pipe 72. The first water outlet pipe 71 and the second water outlet pipe 72 can mix the split water through a collecting pipe.

[0064] Embodiment 3:

[0065] As Figure 8 shown in the figure, this embodiment provides a water treatment method, which is applied to the above-mentioned water treatment system and includes the following steps:

[0066] S1: Perform weak alkalization treatment on the water and adjust the pH value of the water to 8.0 - 9.0;

[0067] S2: Place the weakly alkalized water in a magnetic field for magnetization so that the water forms small molecule clusters with a half-width less than 60 Hz;

[0068] S3: Pass ozone with a concentration of 0.3 - 2 mg / L into the magnetized water;

[0069] S4: Pass bubbles with a diameter of 50 - 1000 nm into the water into which ozone has been passed.

[0070] Specifically, in step S2, the magnetic force parameter of the magnetic field is 5000 - 6000 Gauss.

[0071] In this embodiment, the magnetic force parameter of the magnetic field is preferably 5500 Gauss.

[0072] Although the embodiments of the present invention have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present invention.

[0073] Obviously, the above embodiments of the present invention are only examples for clearly illustrating the present invention, and are not limitations on the implementation manners of the present invention. For those of ordinary skill in the art, other different forms of changes or alterations can be made based on the above description. It is not necessary and impossible to enumerate all the implementation manners here. Any modifications, equivalent substitutions, and improvements made within the spirit and principle of the present invention shall be included in the protection scope of the claims of the present invention.

Claims

1. A water treatment system, characterized in that: The invention comprises a water flow channel having a water inlet and a water outlet, and also comprises a weak alkalization module (1), a water magnetization module (3), an ozone generation module (4) and a micro-nano bubble generation module (5) which are sequentially arranged between the water inlet and the water outlet of the water flow channel along the water flow direction of the water flow channel, wherein the weak alkalization module (1) is provided with a filter element (13) which can make water weakly alkaline, the weak alkalization module (1) has a water inlet and a water outlet which are connected to the filter element (13), the water inlet of the weak alkalization module (1) is connected to the water inlet of the water flow channel, the water magnetization module (3) comprises a magnetizing tube (33) having magnetic conductivity, a magnetic field which is arranged on the magnetizing tube (33) and is used to form a magnetic field in the magnetizing tube (33) region, and a magnetic field which is formed in the magnetizing tube (33) region. The invention relates to a body (34), wherein the magnetizing tube (33) has a water inlet and a water outlet, the water inlet of the magnetizing tube (33) is communicated with the water outlet of the weak alkalizing module (1), the micro-nano bubble generating module (5) has a water inlet and a water outlet, the water inlet of the micro-nano bubble generating module (5) is communicated with the water outlet of the magnetizing tube (33), the micro-nano bubble generating module (5) is used to generate micro-nano bubbles in the water flow channel, the ozone generating module (4) has an air outlet, the air outlet of the ozone generating module (4) is communicated with the water flow channel between the magnetizing tube (33) and the micro-nano bubble generating module (5), and the ozone generating module (4) is used to pass ozone into the water flow channel.

2. A water treatment system according to claim 1, characterized in that: The weak alkalization module (1) comprises a plurality of water treatment components having the same structure and being in communication with each other. The number of the filter elements (13) corresponds to the number of the water treatment components, and each of the filter elements (13) is respectively arranged in each of the water treatment components.

3. A water treatment system according to claim 2, characterized in that: Several water treatment components are arranged in parallel, and each of the water treatment components is provided with a water inlet and a water outlet. The water inlets of several water treatment components are connected, and the water outlets of several water treatment components are connected.

4. A water treatment system according to claim 3, characterized in that: The water treatment component comprises a sleeve (11), a sealing cover (12) and a connecting component (14); the sleeve (11) has a receiving chamber (111); the filter element (13) is arranged in the receiving chamber (111); the sealing cover (12) is detachably connected to the top of the sleeve (11) and seals the receiving chamber (111); the sealing cover (12) has a water inlet and a water outlet communicated with the receiving chamber (111); the connecting component (14) has a water inlet and a water outlet; the water inlet of the sealing cover (12) is connected to the water inlet of the connecting component (14); The water outlet of the sealing cover (12) is connected to the water outlet of the connecting component (14); the connecting component (14) has a water inlet channel (141) and a water outlet channel (142); the water inlet of the connecting component (14) is connected to the water inlet channel (141); the water outlet of the connecting component (14) is connected to the water outlet channel (142); a plurality of the water treatment components are arranged side by side, and the connection form of adjacent connecting components (14) is: adjacent water inlet channels (141) are connected; adjacent water outlet channels (142) are connected.

5. A water treatment system according to claim 1, characterized in that: The magnet (34) comprises at least one magnet group arranged along the axial direction of the magnetizing tube (33), each of the magnet groups comprising two magnets, the magnets being fixedly arranged on the outer surface of the magnetizing tube (33), and the opposite magnetic poles of the two magnets being opposite, and the magnetic field magnetic force parameter between the two magnets is 5000-6000 Gauss.

6. A water treatment system according to claim 1, characterized in that: The water magnetization device (3) further comprises a shell (31), a filling medium (32) and a magnet locking member (35); the shell (31) is a cylindrical structure; the magnetization tube (33) and the magnet (34) are respectively arranged in the shell (31); the magnet locking member (35) is sleeved on the outer circumference of the magnet (34) for stabilizing the magnetic field; the magnet locking member (35) is an iron block; and the filling medium (32) is filled in the shell (31) for heat conduction magnet locking.

7. A water treatment system according to claim 6, characterized in that: The water magnetization device (3) further comprises a temperature control component (36), wherein the temperature control component (36) is arranged in the housing (31) and is used for regulating the temperature of the magnetic field environment.

8. A water treatment system according to any one of claims 1 to 7, characterized in that: The water outlet of the water magnetization module (3) is connected to a first branch pipe of a three-way pipe (8), the second branch pipe of the three-way pipe (8) is connected to the water outlet of the water flow channel, and the third branch pipe of the three-way pipe (8) is connected to the water inlet of the micro-nano bubble generating module (5).

9. A water treatment system according to claim 8, characterized in that: It also comprises a water tank (9), the water tank (9) having a water inlet and a water outlet, the third branch pipe of the three-way pipe (8) is connected to the water inlet of the water tank (9), the water outlet of the water tank (9) is connected to the water inlet of the micro-nano bubble generating device (5), and the air outlet of the ozone generating module (4) is connected to the water flow channel between the water tank (9) and the micro-nano bubble generating module (5).

10. A water treatment device, characterized in that: The invention comprises a package (7), and a water treatment system according to any one of claims 1 to 9, wherein the water treatment system is arranged in the package (7), the package (7) is provided with a water inlet and a water outlet, the water inlet of the weak alkalization module (1) is communicated with the water inlet of the package (7), the water outlet of the micro-nano bubble generating module (5) is communicated with the water outlet of the package (7), and further comprises a controller (6), the controller (6) is arranged in the package (7), and the controller (6) is electrically connected to the ozone generating module (4) and the micro-nano bubble generating module (5), respectively.

11. A water treatment device according to claim 10, characterized in that: The water outlet of the water magnetization module (3) is connected to a first branch pipe of a three-way pipe (8), the second branch pipe of the three-way pipe (8) is connected to the water outlet of the water flow channel, the third branch pipe of the three-way pipe (8) is connected to the water inlet of the micro-nano bubble generating module (5), and the second branch pipe of the three-way pipe (8) and the water outlet of the micro-nano bubble generating module (5) are connected to the water outlet of the packaging body (7) through a collecting pipe.

12. A water treatment method, characterized in that: A water treatment system according to any one of claims 1 to 9, comprising the following steps: S1: weakly alkalize the water and adjust the pH value of the water to 8.0-9.0; S2: placing the weakly alkaline water in a magnetic field for magnetization, so that the water forms small molecular clusters with a half-width less than 60 Hz; S3: introducing ozone with a concentration of 0.3-2 mg / L into the magnetized water; S4: introducing bubbles with a diameter of 50-1000 nm into the water into which ozone is introduced.

13. A water treatment method according to claim 12, characterized in that: In step S2, the magnetic force parameter of the magnetic field is 5000-6000 Gauss.

Citation Information

Patent Citations

  • Highly-magnetized small-molecule direct drinking water purification treatment device

    CN107601730A

  • Washing water generating device

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