Water treatment system and water treatment device

By combining water-based weak alkalization and magnetization technology with ozone disinfection, the problems of cleaning agent residue and drying agent residue are solved, achieving residue-free cleaning and rapid drying, which is suitable for various cleaning scenarios.

CN223921249UActive Publication Date: 2026-02-17ZHONGSHAN YOUJIA TECH CO LTD
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Patent Information

Application Number
CN202520021400.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-03
Publication Date
2026-02-17
Estimated Expiration
2035-01-03

AI Technical Summary

Technical Problem

Existing cleaning technologies often result in cleaning agent residues that cause harm to human health and environmental pollution. Drying agent residues are also highly harmful to human health, and the cleaning and drying processes are costly.

Method used

By combining a water weak alkalization module and a water magnetization module, water is made weakly alkaline and magnetized into small molecular clusters through physical means. Combined with an ozone generation module, it is used for sterilization and disinfection, achieving cleaning without detergent and rapid drying.

Benefits of technology

It effectively cleans stains without the need for detergents and drying agents, shortens rinsing time, improves cleaning efficiency, dries quickly and naturally, and reduces environmental pollution and harm to the human body.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water treatment system, which aims to solve the problem that chemical reagents are remained on cleaned articles, and belongs to the technical field of cleaning. Comprising a water weakening module, a first water magnetizing module and a water flow channel. The water weakening module comprises a shell with a water inlet and a water outlet, and a filter material which is packaged in the shell and can make water be weakly alkaline; the first water magnetization module comprises a first pipe and a magnet which is arranged on the first pipe and is used for forming a magnetic field in the area of the first pipe; the water weakening module and the first water magnetizing module are sequentially arranged between a water inlet and a water outlet of the water flow channel in the water flow direction of the water flow channel. The utility model further provides a water treatment device with the water treatment system. According to water treated by the system, dirt can be removed under the condition that a cleaning agent is not added, so that the use of the cleaning agent is avoided from the source; and meanwhile, quick drying after cleaning can be realized under the condition of not adopting a drying assisting measure.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the technical field of cleaning, and particularly relates to a water treatment system and a water treatment device, which are suitable for any occasion requiring cleaning of dirt, especially oil-stained occasions. BACKGROUND

[0002] In various industries such as industrial production, daily life, medical and health care, scenarios requiring cleaning of dirt are encountered. For example, cleaning of tobacco tar, cleaning of household or commercial tableware, cleaning of medical supplies, cleaning of oil tanks, cleaning of toilets, and the like. The cleaning means of the prior art generally adds a cleaning agent to remove dirt such as oil stains, blood stains, urine alkali, and the like that are difficult to clean. Since the cleaning agent is added, a dedicated rinsing device is required to remove bubbles generated by the cleaning agent. A dedicated drying measure is also required to dry the cleaned object.

[0003] The cleaning means adding a cleaning agent has the following problems:

[0004] 1. After the cleaning agent is used, cleaning agent residues will exist no matter how much washing is performed. As long as residues exist, some damage will be caused. For example, in the scenario of cleaning of tableware, the tableware with chemical residues will cause damage to the human body after being used; in the scenario of cleaning of laundry, the laundry with chemical residues can cause skin allergy or skin disease.

[0005] 2. After the cleaning agent is used, the discharged cleaning agent will cause soil compaction and pollution of underground water, and will seriously damage the living environment. If the cleaning agent is treated at the discharge end, professional environmental protection equipment is required, which will inevitably cause additional expenditure and increase the cost of cleaning.

[0006] In some cleaning scenarios requiring drying of the cleaned object, such as cleaning of tableware. In order to quickly dry the cleaned object, a common method is to add a drying catalyst and then use hot air or the like to accelerate drying of the cleaned object. The drying means adding a drying catalyst has the following problems: after the drying catalyst is used, the drying catalyst forms a film on the surface of the cleaned object that will not disappear, and the drying catalyst is more harmful to the human body than the cleaning agent. For example, in the scenario of cleaning of tableware, part of the drying catalyst will inevitably enter the human body with food when the tableware is used, causing damage. CONTENT OF THE UTILITY MODEL

[0007] In view of the above problems, the utility model aims to provide a water treatment system. The water treated by the system can remove dirt without adding a cleaning agent, thereby eliminating use of the cleaning agent from the source. The system can also achieve rapid drying after cleaning without using a drying measure.

[0008] The technical solution of the utility model is:

[0009] A water treatment system comprises:

[0010] A water weak alkalization module comprising a shell with a water inlet and a water outlet, and a filter capable of making water weak alkaline encapsulated in the shell;

[0011] A first water magnetization module comprising a first pipe with magnetic permeability, and a magnet arranged on the first pipe to form a magnetic field in the region of the first pipe, the first pipe having a water inlet and a water outlet;

[0012] A water flow channel comprising a water inlet and a water outlet;

[0013] The water weak alkalization module and the first water magnetization module 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;

[0014] The water inlet of the water weak alkalization module is in communication with the water flow channel, the water outlet of the water weak alkalization module is in communication with the water inlet of the first pipe of the first water magnetization module, and the water outlet of the first pipe of the first water magnetization module is in communication with the water outlet of the water flow channel.

[0015] In the above technical solution, the main function of the water weak alkalization module is to make water weak alkaline, and the main function of the first water magnetization module is to magnetize water to form small molecular group water. During the process of water passing through the water weak alkalization module and the first water magnetization module, the dipole moment of water molecules cannot be offset by the dipole moments of the two H-O bonds, the positive and negative charge centers do not coincide, and the whole molecule has a high polarity. Using the polarity of water molecules and the positive and negative electricity of oil stains to form the principle of attraction, water molecules can easily wrap and carry oil stains (because there is no emulsification reaction) and take them away, so as to achieve the purpose of cleaning stains without cleaning agent.

[0016] The magnetization program is arranged after the weak alkalization program, so that the water obtained at the use end where water is needed is as small as possible. On the one hand, the water has stronger permeability in the process of cleaning stains, can better wrap the stains, and thus clean them thoroughly; on the other hand, the smaller the small molecular group water is, the easier it is to evaporate, and the washed articles are less likely to hang water droplets, and thus the articles are easier to dry. Thus, the purpose of natural drying without drying agent and other drying means is achieved.

[0017] As a further improvement of the above solution, an ozone generation module is further included, which comprises an ozone generator and a delivery pipe connected with the ozone generator and connecting the ozone into the water flow channel; the access point of the delivery pipe is located between the water outlet of the water weak alkalization module and the water inlet of the first pipe of the first water magnetization module.

[0018] The ozone generation module has two main functions: first, sterilization and disinfection. In some application scenarios that require disinfection (such as dishwashing), there are relevant detection standards, and ozone is added to meet the relevant requirements. Second, ozone is a strong oxidizing agent and has a certain decontamination ability. During the cleaning process, it can better interact with small molecular cluster water to remove stains.

[0019] A feasible implementation scheme is that a second water magnetization module is arranged between the water outlet of the water weak alkalization module and the access point of the delivery pipe of the ozone generation module, and the second water magnetization module has the same structure as the first water magnetization module.

[0020] The first pipe water inlet of the second water magnetization module is in communication with the water outlet of the water weak alkalization module, and the first pipe water outlet of the second water magnetization module is in communication with the water inlet of the first pipe of the first water magnetization module.

[0021] The above scheme adds multiple levels of water magnetization modules, which aims to enhance the magnetization effect and make the water form small molecular cluster water as much as possible.

[0022] A feasible implementation scheme is that a plurality of second water magnetization modules are arranged between the water outlet of the water weak alkalization module and the access point of the delivery pipe of the ozone generation module, and adjacent two second water magnetization modules are sequentially connected.

[0023] And / or, a plurality of first water magnetization modules are arranged between the water outlet of the water flow channel and the access point of the delivery pipe of the ozone generation module, and adjacent two first water magnetization modules are sequentially connected.

[0024] The above scheme adds more levels of water magnetization modules, which also aims to enhance the magnetization effect and make the water form small molecular cluster water as much as possible.

[0025] As another improved scheme, an ozone generation module is further included, the ozone generation module comprises an ozone generator and a delivery pipe connected with the ozone generator and connecting ozone into the water flow channel; the access point of the delivery pipe is located between the first pipe water outlet of the first water magnetization module and the water outlet of the water flow channel.

[0026] The above another improved scheme, the ozone generation module is mainly used for sterilization and disinfection and decontamination.

[0027] A feasible implementation scheme is that a plurality of first water magnetization modules are arranged between the water outlet of the water weak alkalization module and the access point of the delivery pipe of the ozone generation module, and adjacent two first water magnetization modules are sequentially connected.

[0028] The above scheme adds more levels of water magnetization modules, which also aims to enhance the magnetization effect and make the water form small molecular cluster water as much as possible.

[0029] Optionally, the water flowing out of the outlet of the first pipe of the last water magnetization module has a half-width less than 60 Hz.

[0030] In one embodiment, the magnet includes at least one magnet group arranged along the axial direction of the first pipe, each magnet group including two magnets fixedly arranged on the outer surface of the first pipe, and the opposite poles of the two magnets face each other.

[0031] The magnetic field magnetic force parameter between the two magnets is 5000-6000 Gauss.

[0032] Further, the magnet group is provided with a plurality of magnet groups, and the arrangement form of adjacent magnet groups is that the orthographic projection in the axial direction of the first pipe is perpendicular to each other. The purpose of the vertical arrangement is to allow the water to be magnetized when flowing through the pipe.

[0033] Further, the first water magnetization module further includes a housing provided with a sealed cavity, the first pipe is arranged in the sealed cavity of the housing, and the sealed cavity is filled with a rare earth filler having heat conduction and magnetic locking effect. A heating assembly is arranged in the peripheral area of the first pipe, and a temperature sensor is arranged to monitor the temperature.

[0034] Specifically, the rare earth filler includes at least one of graphene powder, bixbite electrical stone powder, chisel stone powder, germanite powder, biochar powder, zeolite powder, and volcanic rock silicate.

[0035] In one embodiment, each magnet group is wrapped with a magnetic locking member to prevent magnetic leakage.

[0036] In one embodiment, the distance between the opposite poles of the two magnets is 4-6 mm.

[0037] In one embodiment, the shell of the water weak alkalization module includes a cavity, and the filter material is packaged in the cavity.

[0038] Alternatively, the shell of the water weak alkalization module includes a plurality of adjacent or separated cavities, and the plurality of cavities are sequentially connected, and the filter material is packaged in different cavities.

[0039] Specifically, the filter material is a uniform mixture of zeolite, tourmaline, ocher, hexacyclic stone, calcium sulfite, and nano zeolite.

[0040] In one embodiment, the static mixer with a water inlet and a water outlet is further included, and the water inlet of the static mixer is connected with the water outlet of the water flow channel.

[0041] The purpose of arranging the static mixer is to mix the ozone and water sufficiently, so as to facilitate the sterilization and disinfection and the exertion of the decontamination ability.

[0042] Correspondingly, the utility model also provides a water treatment device, include: package body and water treatment system of above-mentioned scheme,

[0043] The water treatment system is arranged in the package body.

[0044] The package body is provided with a liquid inlet and a liquid outlet, the liquid inlet is communicated with the water inlet of the water weak alkalization module, and the liquid outlet is connected with the water outlet of the water flow channel.

[0045] The water treatment device makes the water treatment system into a modular device, which can be sold independently and is suitable for any scene requiring decontamination and cleaning.

[0046] Further, it also includes a static mixer with a water inlet and a water outlet, the water inlet of the static mixer is connected with the water outlet of the water flow channel, and the water outlet of the static mixer is connected with the liquid outlet.

[0047] The utility model has the remarkable effect that:

[0048] 1. The water weak alkalization module cooperates with the water magnetization module, and the magnetization program is arranged after the weak alkalization program, so that the water obtained at the use end requiring water is as small as possible small molecular cluster water, the small molecular cluster water can easily carry and take away the oil stains, and the purpose of cleaning the stains without cleaning agent can be achieved.

[0049] 2. The water treatment device with the water treatment system is suitable for any scene requiring decontamination and cleaning, and only needs to connect the liquid inlet of the package body with the water source and connect the liquid outlet of the package body with the water inlet end of the cleaning equipment when used, so that the cleaning work can be implemented without changing the original structure of the cleaning equipment.

[0050] 3. The design of the magnetic lock makes the magnetic field formed by the magnet group not leak magnetic, further improving the magnetization effect. BRIEF DESCRIPTION OF DRAWINGS

[0051] The utility model will be further described below in combination with the drawings.

[0052] Figure 1 It is the structural schematic diagram of the utility model water treatment system embodiment 1.

[0053] Figure 2 It is the first water magnetization module structure schematic view of the utility model.

[0054] Figure 3 It is the first pipe and its assembly structure view of the utility model embodiment 1.

[0055] Figure 4 It is the structure schematic view of water treatment system embodiment 2 of the utility model.

[0056] Figure 5 It is the structure schematic view of water treatment device embodiment of the utility model.

[0057] In the drawing,

[0058] 1-water flow passage, 2-water weak alkalization module, 3-first water magnetization module, 4-ozone generation module, 5-second water magnetization module, 6-static mixer, 7-encapsulation body;

[0059] 21-housing;

[0060] 31-first pipe, 32-magnet, 33-lock magnetic piece, 34-outer shell, 35-sensor, 36-heating assembly;

[0061] 71-liquid inlet, 72-liquid outlet. DETAILED DESCRIPTION

[0062] In order to make the personnel in the technical field better understand the utility model scheme, the technical scheme in the embodiment of the utility model will be described clearly and completely in the embodiment of the utility model below, obviously, the described embodiment is only a part of the embodiment of the utility model, rather than all the embodiments. Based on the embodiment in the utility model, all other embodiments obtained by the person skilled in the art without creative labor should belong to the scope of the utility model protection.

[0063] In order to facilitate the description, the relative position relationship (such as: up, down, left, right, etc.) of each component is described according to the layout direction of the drawing of the specification, and does not limit the structure of the patent.

[0064] Embodiment 1

[0065] Figures 1 to 3 An embodiment of the utility model is shown, a kind of water treatment system, including water flow passage 1, water weak alkalization module 2 and first water magnetization module 3.

[0066] The water weak alkalization module 2 includes a shell 21 with a water inlet and a water outlet, and a filter material (not shown in the figure) capable of making water weakly alkaline, which is encapsulated in the shell 21. The filter material makes water weakly alkaline by physical means, which is the prior art. There are many filter materials capable of making water weakly alkaline by physical means in the prior art. In this embodiment, the filter material is a uniform mixture of medical stone, tourmaline, ocher, hexagonal stone, calcium sulfite and nano zeolite.

[0067] The shell 21 can be designed in different forms according to the amount of water to be treated. For example, in the case of small water treatment, a specific embodiment can be that the shell 21 of the water weak alkalization module 2 includes one chamber, and the filter material is encapsulated in the chamber. In the case of large water treatment, a specific embodiment can be that the shell 21 of the water weak alkalization module 2 includes several adjacent or separated chambers, and the chambers are sequentially connected, and the filter material is encapsulated in different chambers. In this way, the amount of filter material can be increased, thereby increasing the treatment capacity. In this embodiment, a design of multiple separated chambers is adopted.

[0068] The first water magnetization module 3 includes a first pipe 31 with magnetic permeability, and a magnet 32 arranged on the first pipe 31 to form a magnetic field in the area of the first pipe 31. The first pipe 31 has a water inlet and a water outlet. In a specific embodiment, the magnet 32 includes at least one magnet group arranged axially along the first pipe 31. Each magnet group includes two magnets. The magnets are fixedly arranged on the outer surface of the first pipe 31, and the unlike poles of the two magnets face each other. The magnetic field between the two magnets has a magnetic force parameter of 5000-6000 Gauss. Preferably, it is 5500 Gauss.

[0069] An alternative embodiment is that the magnet group is provided with multiple magnet groups. The arrangement form of adjacent magnet groups is that the orthographic projection in the axial direction of the first pipe is perpendicular to each other.

[0070] A feasible embodiment is that the distance between the unlike poles of the two magnets is 4-6 mm, so as to ensure sufficient magnetic field strength.

[0071] A feasible embodiment is that the half width of the water flowing out of the water outlet of the first pipe of the last water magnetization module is less than 60 HZ. Preferably, it is 40-50 HZ. Half width is a key detection index of small molecular cluster water, which directly reflects the tightness of water molecular cluster. It is mainly determined by nuclear magnetic resonance (NMR) and 170-NMR technology. By measuring the half width of the vibration frequency of water, the size of water molecular cluster can be known. The smaller the HZ value, the smaller the water molecular cluster.

[0072] A feasible embodiment is that each magnet group is wrapped with a magnetic lock 33 to prevent magnetic leakage. The magnetic lock 33 is a cylindrical iron block. A hole matching the size of the magnet group is formed in the center of the iron block, and the magnet group is sleeved in the hole. Due to the wrapping of the iron block, the magnetic field formed by the magnet group does not leak, further improving the magnetization effect.

[0073] A further improved embodiment can be that the first water magnetization module 3 further comprises a shell 34 provided with a sealed cavity. The first pipe 31 is arranged in the sealed cavity of the shell 34. The sealed cavity is filled with a rare earth filler having heat conduction and magnetic locking effects. The first pipe 31 is provided with a heating assembly 36 and a temperature sensor 35 for monitoring the temperature in the peripheral region. The heating assembly 36 in the peripheral region of the first pipe 31 means that the position of the heating assembly 36 can be adjusted according to the actual design, which can be arranged in the sealed cavity or on the shell. In principle, it can guarantee the required temperature. The heating assembly 36 in the embodiment is arranged in the sealed cavity, and the temperature sensor is arranged on the shell 34.

[0074] The rare earth filler is a prior art, including at least one of graphene powder, bixbite electrical original stone powder, chisel stone powder, germanite powder, biochar powder, medical stone powder, and volcanic rock silicate.

[0075] The water flow channel 1 comprises a water inlet and a water outlet.

[0076] The water weak alkalization module 2 and the first water magnetization module 3 are sequentially arranged along the water flow direction of the water flow channel 1 between the water inlet and the water outlet of the water flow channel 1.

[0077] The water inlet of the water weak alkalization module 2 is in communication with the water flow channel 1. The water outlet of the water weak alkalization module 2 is in communication with the water inlet of the first pipe 31 of the first water magnetization module 3. The water outlet of the first pipe 31 of the first water magnetization module 3 is in communication with the water outlet of the water flow channel 1.

[0078] An improved embodiment scheme further comprises an ozone generation module 4. The ozone generation module 4 comprises an ozone generator and a delivery pipe connected with the ozone generator and connecting the ozone into the water flow channel 1. The access point of the delivery pipe is located between the water outlet of the water weak alkalization module 2 and the water inlet of the first pipe 31 of the first water magnetization module 3. The ozone generation module 4 is a prior art, and the main purpose is to generate ozone, which can be connected into the water flow channel.

[0079] An embodiment can be implemented as follows: a second water magnetization module 5 is arranged between the water outlet of the water weak alkalization module 2 and the delivery pipe access point of the ozone generation module 4. The second water magnetization module 5 has the same structure as the first water magnetization module 1. The first pipe 31 inlet of the second water magnetization module 5 is connected to the water outlet of the water weak alkalization module 2. The first pipe 31 outlet of the second water magnetization module 5 is connected to the water inlet of the first pipe 31 of the first water magnetization module 3. The water magnetization module is added to enhance the magnetization effect and make the water form small molecular clusters as much as possible.

[0080] Of course, in order to achieve stronger magnetization effect and make the water form small molecular clusters as much as possible, more water magnetization modules can be connected at different positions according to different application scenarios. For example, an embodiment can be implemented as follows: a plurality of second water magnetization modules 5 are arranged between the water outlet of the water weak alkalization module 2 and the delivery pipe access point of the ozone generation module 4, and adjacent two second water magnetization modules 5 are sequentially connected.

[0081] And / or, a plurality of first water magnetization modules 3 are arranged between the water outlet of the water flow channel 1 and the delivery pipe access point of the ozone generation module 4, and adjacent two first water magnetization modules 3 are sequentially connected.

[0082] As a further improvement of the embodiment, an embodiment can be implemented as follows: a static mixer 6 with a water inlet and a water outlet is further included. The water inlet of the static mixer 6 is connected to the water outlet of the water flow channel 1. The static mixer 6 is arranged to mix the ozone and water sufficiently to facilitate the sterilization and disinfection and the decontamination effect.

[0083] The working principle of the embodiment is as follows:

[0084] After the tap water enters the water flow channel 1, it is treated by the water weak alkalization module 2 to form weak alkaline water, and then is magnetized by one or more levels of water magnetization modules to form small molecular cluster water. After being uniformly mixed with ozone, the water forms weak alkaline water with strong sterilization and disinfection and strong penetration. In this process, the dipole of the water molecule cannot be offset by the dipole moments of the two H-O bonds, the positive and negative charge centers do not coincide, and the whole molecule has a high polarity. Using the polarity of the water molecule and the positive and negative electrical properties of the oil stain, the water molecule can easily wrap and carry the oil stain (because there is no emulsification reaction) and thus achieve the purpose of cleaning the stains without cleaning agent.

[0085] One important innovation of the embodiment is that the magnetization program is arranged after the weak alkalization program, which produces unexpected technical effects, which are reflected in the rapid drying aspect. Because the magnetization program is in the rear, the water obtained at the use end that needs to use water is as small as possible small molecular cluster water, on the one hand, in the process of cleaning dirt, the water has stronger penetration performance, can better wrap the dirt, and then clean it; on the other hand, the smaller the small molecular cluster water, the easier it is to evaporate, the more difficult it is for the washed article to hang water droplets, and the more easily the article dries. In this way, the purpose of natural drying without using drying agent and other drying means can be achieved.

[0086] Embodiment 2

[0087] The main structure of the embodiment is basically the same as that of embodiment 1, and the difference is that the ozone inlet position of the ozone generation module 4 is after all the magnetization programs are completed. As shown in Figure 4 , the specific scheme is:

[0088] A water treatment system, comprising a water flow channel 1, a water weak alkalization module 2 and a first water magnetization module 3.

[0089] The water weak alkalization module 2 comprises a shell 21 with a water inlet and a water outlet, and a filter material capable of making water weakly alkaline encapsulated in the shell 21. The filter material makes water weakly alkaline by physical means. There are many filter materials in the prior art that can make water weakly alkaline by physical means, and the embodiment uses uniformly mixed tourmaline, ocher, hexagonal stone, calcium sulfite and nano zeolite as the filter material.

[0090] The first water magnetization module 3 comprises a first pipe 31 with magnetic conductivity, and a magnet 32 arranged on the first pipe 31 to form a magnetic field in the area of the first pipe 31. The first pipe 31 has a water inlet and a water outlet.

[0091] The water flow channel 1 comprises a water inlet and a water outlet.

[0092] The water weak alkalization module 2 and the first water magnetization module 3 are sequentially arranged along the water flow direction of the water flow channel 1 between the water inlet and the water outlet of the water flow channel 1. The water inlet of the water weak alkalization module 2 is in communication with the water flow channel 1. The water outlet of the water weak alkalization module 2 is in communication with the water inlet of the first pipe 31 of the first water magnetization module 3. The water outlet of the first pipe 31 of the first water magnetization module 3 is in communication with the water outlet of the water flow channel 1.

[0093] Also included is an ozone generation module 4, which includes an ozone generator and a delivery pipe connected to the ozone generator and connecting the ozone to the water flow channel 1. The access point of the delivery pipe is located between the water outlet of the first pipe 31 of the first water magnetization module 3 and the water outlet of the water flow channel 1. Also included is a static mixer 6 with a water inlet and a water outlet. The water inlet of the static mixer 6 is connected to the water outlet of the water flow channel 1.

[0094] A feasible embodiment is that a plurality of first water magnetization modules 3 are provided between the water outlet of the water weak alkalization module 2 and the access point of the delivery pipe of the ozone generation module 4, and adjacent two first water magnetization modules 3 are sequentially connected. More stages of water magnetization modules are added, and the purpose is also to enhance the magnetization effect, so that the water forms small molecular cluster water as much as possible.

[0095] The position where the ozone is introduced is determined according to the actual application scene requirements. If the purpose of fast drying is pursued, the introduction position of embodiment 1 is better than that of embodiment 2, and the fast drying effect of embodiment 1 is better.

[0096] Embodiment 3

[0097] As shown in Figure 5 , the present embodiment provides a water treatment device, which includes an encapsulation body 7 and the water treatment system of the above-mentioned embodiment 1 or 2.

[0098] The water treatment system is arranged in the encapsulation body 7.

[0099] The encapsulation body 7 is provided with a liquid inlet 71 and a liquid outlet 72. The liquid inlet 71 is in communication with the water inlet of the water weak alkalization module 2. The water inlet of the static mixer 6 is connected to the water outlet of the water flow channel 1, and the water outlet of the static mixer 6 is connected to the liquid outlet 72.

[0100] The water treatment device of the present embodiment makes the water treatment system into a modular device, and when used, only needs to connect the liquid inlet 71 of the encapsulation body with a water source and connect the liquid outlet 72 of the encapsulation body 7 with the water inlet end of a cleaning equipment, so that the cleaning work can be implemented without changing the original structure of the cleaning equipment.

[0101] It should be noted that the terms "first", "second", and the like in the description and in the claims of the utility model and the above-mentioned drawings are used to distinguish similar objects, and do not have to be used to describe a specific order or sequence. It should be understood that the terms used in this way can be interchanged under appropriate circumstances, so that the embodiments of the utility model described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, the process, method, system, product or equipment including a series of steps or units does not have to be limited to the clearly listed steps or units, but can include other steps or units that are not clearly listed or inherent to these processes, methods, products or equipment.

Claims

1. A water treatment system, characterized by, The application relates to a water weak alkalization module, a first water magnetization module, a water flow channel, and an ozone generation module. The water weak alkalization module comprises a shell with a water inlet and a water outlet, and filter materials capable of making water weak alkalization are packaged in the shell. The first water magnetization module comprises a first pipe with magnetic permeability, and a magnet arranged on the first pipe to form a magnetic field in the region of the first pipe. The water flow channel comprises a water inlet and a water outlet. The water weak alkalization module and the first water magnetization module 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. The water inlet of the water weak alkalization module is communicated with the water flow channel, the water outlet of the water weak alkalization module is communicated with the water inlet of the first pipe of the first water magnetization module, and the water outlet of the first pipe of the first water magnetization module is communicated with the water outlet of the water flow channel.

2. The water treatment system of claim 1, wherein: The ozone generation module comprises an ozone generator and a conveying pipe connected with the ozone generator and used for connecting ozone into the water flow channel.

3. The water treatment system of claim 2, wherein: The access point of the conveying pipe is located between the water outlet of the water weak alkalization module and the water inlet of the first pipe of the first water magnetization module. A second water magnetization module is arranged between the water outlet of the water weak alkalization module and the access point of the conveying pipe of the ozone generation module.

4. The water treatment system of claim 3, wherein: The water inlet of the first pipe of the second water magnetization module is communicated with the water outlet of the water weak alkalization module, and the water outlet of the first pipe of the second water magnetization module is communicated with the water inlet of the first pipe of the first water magnetization module. A plurality of second water magnetization modules are arranged between the water outlet of the water weak alkalization module and the access point of the conveying pipe of the ozone generation module, and two adjacent second water magnetization modules are sequentially connected.

5. The water treatment system of claim 1, wherein: And / or, a plurality of first water magnetization modules are arranged between the water outlet of the water flow channel and the access point of the conveying pipe of the ozone generation module, and two adjacent first water magnetization modules are sequentially connected.

6. The water treatment system of claim 5, wherein: The ozone generation module comprises an ozone generator and a conveying pipe connected with the ozone generator and used for connecting ozone into the water flow channel.

7. The water treatment system according to any one of claims 1-6, characterized in that: The access point of the conveying pipe is located between the water outlet of the first pipe of the first water magnetization module and the water outlet of the water flow channel.

8. The water treatment system according to any one of claims 1-6, characterized in that: A plurality of first water magnetization modules are arranged between the water outlet of the water weak alkalization module and the access point of the conveying pipe of the ozone generation module, and two adjacent first water magnetization modules are sequentially connected. The water outlet of the first pipe of the last water magnetization module has a half-width of less than 60HZ.

9. The water treatment system of claim 8, wherein: The magnet comprises at least one magnet group arranged in the axial direction of the first pipe, each magnet group comprises two magnets, the magnets are fixedly arranged on the outer surface of the first pipe, and the opposite poles of the two magnets are opposite.

10. The water treatment system of claim 8, wherein: The magnetic field magnetic force parameter between the two magnets is 5000-6000 Gauss.

11. The water treatment system of claim 8, wherein: A plurality of magnet groups are arranged, and the arrangement forms of the adjacent magnet groups are perpendicular to each other in the axial direction of the first pipe. The first water magnetization module further comprises an outer shell provided with a closed cavity, the first pipe is arranged in the closed cavity of the outer shell, the closed cavity is filled with rare earth fillers with heat conduction and magnetic locking functions, a heating assembly is arranged in the peripheral region of the first pipe, and a sensor for monitoring temperature is arranged. Each magnet group is wrapped with a magnetic locking member for preventing magnetic leakage.

12. The water treatment system of claim 8, wherein: The distance between the unlike poles of the two magnets is 4-6 mm.

13. The water treatment system of claim 1, wherein: The shell of the water weak alkalization module comprises a chamber, and the filter material is packaged in the chamber. Alternatively, the shell of the water weak alkalization module comprises a plurality of adjacent or separated chambers, the chambers are sequentially connected, and the filter material is packaged in different chambers.

14. The water treatment system according to any one of claims 2-6, wherein: The static mixer is further provided with a water inlet and a water outlet, the water inlet of the static mixer is connected with the water outlet of the water flow channel.

15. A water treatment device, characterized by The application further provides a water treatment system as claimed in any one of claims 1-13. The water treatment system is arranged in the packaging body. The packaging body is provided with a liquid inlet and a liquid outlet, the liquid inlet is communicated with the water inlet of the water weak alkalization module, and the liquid outlet is connected with the water outlet of the water flow channel. The static mixer is further provided with a water inlet and a water outlet, the water inlet of the static mixer is connected with the water outlet of the water flow channel, and the water outlet of the static mixer is connected with the liquid outlet.

16. The water treatment device of claim 15, wherein: ​