Efficient multi-pole magnetic energy water treatment device
By optimizing the structure and water flow channel design of the magnetic energy water treatment device, increasing the magnetic path length, and adopting a modular design, the problem of unstable treatment effect of existing devices in high-hardness water has been solved, achieving efficient and convenient water treatment results, and making it suitable for a variety of application scenarios.
Patent Information
- Application Number
- CN202521221499.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-16
- Publication Date
- 2026-03-20
- Estimated Expiration
- 2035-06-16
AI Technical Summary
Existing magnetic water treatment devices neglect the study of effective magnetic range in their design, resulting in unstable equipment performance, inability to treat high-hardness water, and applicability only to circulation systems, thus hindering the widespread adoption of magnetic treatment technology.
A multi-pole magnetic energy water treatment device was designed. By optimizing the device structure and water flow channel, the magnetic path length was increased. A modular design was adopted to adapt to different occasions. The "n"-shaped magnetic treatment channel was used to achieve two magnetic treatments, thereby improving the magnetic treatment efficiency.
It enables efficient treatment of high-hardness water in non-circulating systems, with reduced equipment size, convenient installation, strong adaptability, reduced operating costs and transportation difficulties, and solves the problems of difficult on-site hoisting and positioning.
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Figure CN224015373U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water treatment equipment technical field, concretely relates to a kind of high-efficiency multi-pole magnetic energy water treatment device. BACKGROUND
[0002] Scale prevention water treatment technology is an important branch in the field of water treatment, and the main purpose is to prevent and control the formation of scale on the surface of equipment due to dissolved minerals in water, thereby prolonging the service life of the equipment and improving its operating efficiency. Traditional chemical scale prevention methods are still widely used in industrial production, including adding scale inhibitors (such as polyphosphates, polymers and chelating agents) to prevent mineral precipitation and scale formation. These scale inhibitors combine with calcium, magnesium and other ions to form soluble complexes, thereby inhibiting the formation of scale. However, this method has the problems of poor environmental friendliness and high operating cost. There are various physical scale prevention water treatment technologies on the market, including electromagnetic, ultrasonic, electronic scale prevention, electrochemical and magnetic energy scale prevention water treatment technologies. Among them, magnetic energy scale prevention water treatment technology, as an environmentally friendly physical method of water treatment scheme, has gradually gained market recognition and rapidly developed due to its low operating cost and significant scale prevention effect.
[0003] In the design of magnetic energy water treatment device, there is a key parameter "magnetic path", which is the length of water passing through the effective magnetic field. This parameter determines the residence time of water in the magnetic field and directly affects the water treatment effect. Experimental studies have shown that the longer the water stays in the magnetic field, the more complete the magnetic treatment, and the longer the effect lasts after the water leaves the magnetic field. However, in the existing technology, considering the volume and cost of magnetic energy equipment, the research and design of effective magnetic path are ignored, resulting in unstable equipment use effect, inability to handle high-hardness water, and only applicable to circulating systems, which affects the popularization and promotion of magnetic treatment technology.
[0004] The present inventor has summarized a multi-pole high-efficiency magnetic energy water treatment device through multi-scene field application tests, which has stable effect, can handle high-hardness water and can be applied in non-circulating systems. And through modular design, the volume of the device is effectively reduced and the installation convenience is improved. UTILITY MODEL CONTENTS
[0005] In view of the defects and deficiencies in the prior art, the utility model provides a kind of high-efficiency multi-pole magnetic energy water treatment device, which improves the treatment effect and efficiency of magnetic energy on water by optimizing the structure of the device and the design of water flow channel, so that it is suitable for various water treatment application scenarios.
[0006] The purpose of the utility model is achieved through the following technical solutions:
[0007] The utility model provides a high -efficient multipole magnetic energy water treatment device, including a cylindrical protective shell and even number of magnetic treatment subassembly who sets in the protective shell in the direction of the strong, even number of water pipes are arranged in the magnetic treatment subassembly, even number of water pipes half is water inlet channel, the other half is water outlet channel, the outlet of water inlet channel is provided with water distribution warehouse subassembly, water distribution warehouse subassembly is provided with the confluence channel of all water inlets confluence, the top of water distribution warehouse subassembly is provided with upper warehouse cover subassembly, upper warehouse cover subassembly is provided with the drainage channel of water inlet to water outlet channel, water inlet channel, confluence channel, drainage channel and water outlet channel constitute a magnetic treatment channel who is " n " shape.
[0008] Further, the bottom of the protective shell is provided with a lower warehouse cover assembly, and the lower warehouse cover assembly is provided with a water distribution warehouse assembly between the protective shell.
[0009] Further, the water distribution warehouse assembly comprises a cover bowl-shaped water distribution shell, the water distribution shell is provided with a water distribution partition plate for dividing the inner cavity space into two independent spaces, and the two independent spaces are the confluence channels.
[0010] Further, the lower warehouse cover assembly comprises a cover bowl-shaped lower warehouse cover and a partition plate arranged on the lower warehouse cover, the bowl edge of the lower warehouse cover is provided with a fixing flange, and the bottom of the lower warehouse cover is provided with a water inlet, a water outlet and a support.
[0011] Further, the upper warehouse cover assembly comprises a cover bowl-shaped upper warehouse cover, the top of the upper warehouse cover is provided with an exhaust port, and the bowl edge of the upper warehouse cover is provided with a connecting flange.
[0012] Further, the magnetic treatment assembly further comprises a plurality of N-S pole magnets symmetrically arranged on both sides of the water pipe and a magnetic guide plate attracted to the pole surface of the magnet away from the magnetic treatment channel, a plurality of the magnets are continuously and spaced apart on the outside of the water pipe, and a limiting plate is arranged between the two magnets.
[0013] Further, the two ends of the water pipe are provided with flared portions, the flared portions are provided with water head parts, and the outside of the water head parts is provided with a gland for fixing the water head parts and the water pipe to make the magnetic treatment assembly an integral whole.
[0014] Further, the length of the water pipe is 800-1200mm.
[0015] The utility model has the advantages that:
[0016] 1. The magnetic processing components are modularized, and the number of magnetic processing components can be set as needed to adapt to any occasion, which enhances adaptability. Due to the high degree of integration, its structure is compact and the overall volume is reduced, which reduces the space occupation and the difficulty of transportation. At the same time, modularization also facilitates easy assembly and disassembly, enabling quick assembly.
[0017] 2. The protective shell is made into a cylindrical shape, and the magnetic processing components are vertically arranged inside the protective shell, which makes full use of the internal space, reduces the volume, and improves the utilization rate.
[0018] 3. By cleverly utilizing the upper cover assembly, protective shell, water distribution tank assembly, and lower cover assembly, each part not only has its own function, but together they form a complete "n"-shaped magnetic processing channel, which expands the function and increases the magnetic path length.
[0019] In summary, this utility model ingeniously utilizes the characteristics of its own structure to design an "n"-shaped magnetic treatment channel that can perform two magnetic treatments, increasing the time for water to pass through the magnetic field, thereby improving the instantaneous magnetic treatment efficiency and significantly reducing the size of the magnetic treatment equipment; in addition, through modular assembly design, on-site assembly is realized, which facilitates construction and solves the problem of difficult on-site hoisting and positioning. Attached Figure Description
[0020] Figure 1 This is a three-dimensional schematic diagram of the present invention;
[0021] Figure 2 This is the front view of the present invention;
[0022] Figure 3 This is a cross-sectional view of the present invention;
[0023] Figure 4 This is a schematic diagram illustrating the principle of water treatment in this utility model;
[0024] Figure 5 This is a 3D schematic diagram of the upper compartment cover assembly;
[0025] Figure 6 for Figure 5 Another direction diagram;
[0026] Figure 7 This is a 3D schematic diagram of the water distribution tank assembly;
[0027] Figure 8 for Figure 7 Another direction diagram;
[0028] Figure 9 This is a 3D schematic diagram of the lower compartment cover assembly;
[0029] Figure 10 for Figure 9Another direction schematic view of the magnetic processing assembly;
[0030] Figure 11 Three-dimensional schematic view of the magnetic processing assembly;
[0031] Figure 12 Cross-sectional view of the magnetic processing assembly;
[0032] Figure 13 Side view of the magnetic processing assembly;
[0033] Figure 14 Three-dimensional schematic view of the gland;
[0034] Figure 15 Scene view of the pure water preparation system;
[0035] Figure 16 Scene view of the steam boiler system;
[0036] Figure 17 Scene view of the domestic hot water system;
[0037] Figure 18 Scene view of the deep well geothermal source system.
[0038] Explanation of reference signs:
[0039] Upper bin cover assembly 1
[0040] Assembly flange 1-1
[0041] Exhaust port 1-2
[0042] Water distribution bin assembly 2
[0043] Assembly flange 2-1
[0044] Water distribution partition 2-2
[0045] Gland connector 2-3
[0046] Pipe body 2-4
[0047] Panel 2-5
[0048] Protective shell 3
[0049] Lower bin cover assembly 4
[0050] Assembly flange 4-1
[0051] Water inlet 4-2
[0052] Water outlet 4-3
[0053] Water inlet drain 4-4
[0054] Water outlet drain 4-5
[0055] Support 4-6
[0056] partition plate 4-7
[0057] fastening bolt 5
[0058] magnetic assembly 6
[0059] shielding sleeve 6-1
[0060] magnetic processing channel 6-2
[0061] water head 6-2-1
[0062] magnet 6-3
[0063] magnetic conducting plate 6-4
[0064] limiting plate 6-5
[0065] gland 7
[0066] bolt hole 7-1
[0067] convex surface 7-2
[0068] water inlet area A
[0069] water outlet area B
[0070] transfer area C DETAILED DESCRIPTION
[0071] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme of the embodiments of the present application will be described clearly and completely below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are some embodiments of the present application, rather than all the embodiments. The components of the embodiments of the present application described and shown in the drawings can be arranged and designed in various different configurations.
[0072] Therefore, the detailed description of the embodiments of the present application provided in the drawings below is not intended to limit the scope of the claimed present application, but only represents selected embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of protection of the present application.
[0073] It should be noted that: similar reference numbers and letters represent similar items in the following drawings, therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.
[0074] In the above description of the utility model, it needs to be explained that the terms "one side", "the other side" and the like indicate the orientation or position relationship based on the orientation or position relationship shown in the drawings, or the orientation or position relationship when the utility model product is commonly placed, which is only for the convenience of describing the utility model and simplifying the description, and does not indicate or imply that the indicated device or element must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the utility model. In addition, the terms "first", "second" and the like are only used for differentiation in description, and cannot be understood as indicating or implying relative importance.
[0075] In addition, the term "same" and the like do not mean that the components must be absolutely the same, but there can be slight differences. The term "vertical" only means that the position relationship between the components is more vertical than "parallel", and does not mean that the structure must be completely vertical, but can be slightly inclined.
[0076] As Figures 1-14 shown, the embodiment provides a high-efficiency multi-pole magnetic energy water treatment device, which comprises an upper bin cover assembly, a magnetic treatment assembly, a water distribution bin assembly and a lower bin cover assembly.
[0077] The upper bin cover assembly 1 comprises a bowl-shaped upper bin cover and an assembly flange 1-1 for connecting the water distribution bin assembly 2, and the two are clamped and sealed by fastening bolts 5 after a sealing gasket is placed therebetween.
[0078] The upper bin cover assembly 1 is provided with an exhaust port 1-2 at the top center position, which prevents the accumulation of internal gas during the operation of the device and affects the magnetic treatment efficiency.
[0079] The upper bin cover assembly 1 adopts an arc seal head design to improve the pressure-bearing capacity of the device.
[0080] The water distribution bin assembly 2 is assembled at the upper and lower ends of the magnetic assembly 6 and communicates with the upper bin cover assembly 1 and the lower bin cover assembly 4 through the assembly flange 2-1.
[0081] The water distribution bin assembly 2 is provided with a water distribution partition A 2-2 inside, which coincides with the water distribution partition 4-7 during assembly, and plays a role of isolating the water inlet area A from the water outlet area B, preventing the escape of water without magnetic treatment into the system and affecting the magnetic treatment efficiency.
[0082] The pipe body 2-4 on the water distribution bin assembly 2 is a circular pipe of a certain length, one end of which is welded with the assembly flange 2-1 and the other end is welded with the panel 2-5 to form an integral whole.
[0083] The panel 2-5 is also uniformly arrayed with welding hole positions of the gland connector 2-3.
[0084] The grommet connector 2-3 is a circular ring flat plate with screw hole positions. The circular ring flat plate has a circular array of screw hole positions, and the number and distance of the screw holes are the same as those of the grommet 7.
[0085] The protective shell 3 is a cylindrical body rolled from a flat plate, which plays a role in preventing collision and moisture for the magnetic assembly 6.
[0086] The lower tank cover assembly 4 includes a cover bowl-shaped lower tank cover connected with the water distribution tank assembly 2 through an assembly flange 4-1, a water inlet 4-2, a water outlet 4-3, a water inlet drain 4-4, a water outlet drain 4-5, a support member 4-6 for fixing and supporting the device, and a partition plate 4-7 for isolating the water inlet A and the water outlet B.
[0087] The magnetic assembly 6 is the core component of the device for magnetic treatment, which includes a magnetic treatment channel assembly 6-2 formed by pressing (or casting) a non-magnetic circular tube, and magnets 6-3 placed on the two sides of the magnetic treatment channel assembly 6-2 corresponding to the N-S pole faces.
[0088] The magnetic treatment channel 6-2 includes water head members 6-2-1 arranged at both ends for sealing and limiting during installation.
[0089] The magnetic assembly 6 also includes a magnetic guide plate 6-4 made of ferromagnetic material, which is placed in close proximity to the pole faces of all magnets 6-3 away from the magnetic treatment channel assembly 6-2. Four magnetic guide plates 6-4 are arranged in the length direction of each magnetic assembly 6, so that the magnetic lines of all magnets 6-3 form a closed loop, thereby increasing the magnetic field strength inside the magnetic treatment channel assembly 6-2.
[0090] The limiting plate 6-5 is a plate made of non-magnetic material and fixed on one side of the magnetic guide plate. A plurality of holes corresponding to the size of the pole face of the magnet 6-3 are arranged on the plate surface. The purpose of setting is to control the distance and uniformity of the magnet 6-3 during assembly.
[0091] The grommet 7 is a semicircular body made of metal material. Two grommets 7 are combined and coaxially nested with the grommet connector 2-3. The convex surface 7-2 is embedded in the grommet connector 2-3 to press the water head member 6-2-1. The water head member 6-2-1 is tightly attached to the panel 2-5 through the screw fastening in the bolt hole 7-1, achieving the purpose of water sealing and fixing the magnetic assembly 6.
[0092] The magnetic treatment channel assembly is a water pipe with an aspect ratio of 30 to 35. This size, when combined with appropriate magnetic field strength and magnetic treatment time, can achieve better magnetic treatment results. Multiple water pipes are divided into inlet and outlet channels, with a water distribution chamber assembly installed at the outlet of the inlet channel. The water distribution chamber assembly has a confluence channel that gathers all the inlet water flow together. An upper cover assembly is installed on the top of the water distribution chamber assembly, which has a diversion channel that guides the inlet water to the outlet channel. The inlet channel, confluence channel, diversion channel, and outlet channel form an "n"-shaped magnetic treatment channel, realizing two magnetic treatments.
[0093] This utility model also relates to a method for water treatment using the above-described device:
[0094] The magnetic path is defined as the length of the effective magnetic field region through which water flows (excluding the distance between magnets).
[0095] In each magnetic component, the magnetic path length is 500-1500mm. In practical applications, the setting of the magnetic path length should be determined according to parameters such as magnet size, raw water hardness, water temperature, and mineral composition in the water.
[0096] like Figure 4 As shown: When water enters the device from the inlet, the water flow is blocked by the water distribution baffle and the partition plate, and then it gathers in the inlet area A and flows evenly into the left side of each magnetic component. After being magnetically treated, the water enters the transfer area C and gathers. Under the push of water pressure, the water flow that has been discharged from the gas enters the right side of each magnetic component for a second process of magnetic treatment, and then enters the outlet area B. Finally, the water that has undergone multiple magnetic treatments is discharged through the outlet.
[0097] Through repeated experiments and summaries by the inventors, the length-to-diameter ratio of the water pipe is 30-35, the magnetic field strength is 0.8-1T, and the magnetic path length is 500-1500mm. The magnetic treatment can meet the needs of more than 99% of the application scenarios, thus providing an ideal economic condition.
[0098] In addition, this utility model also provides several application scenarios:
[0099] Application 1: Pure Water Preparation System
[0100] like Figure 15 As shown, the raw water, after pre-filtration (usually quartz sand and activated carbon), enters the magnetic energy water treatment device. After multiple magnetic treatments, the water can be directly used for pure water production processes (such as reverse osmosis or ultrafiltration), solving many problems in pure water production processes such as membrane clogging, low capacity, and short lifespan. Furthermore, since this solution eliminates the need for resin softening and scale inhibitor dosing equipment, it also prevents pollution from high-salinity water and chemical wastewater discharge.
[0101] Application 2: Steam Boiler System
[0102] likeFigure 16 As shown, raw water undergoes resin softening before entering a soft water tank. A booster pump then pressurizes the water in the soft water tank and sends it to a magnetic water treatment device. After multiple magnetic treatments, the water can be directly used to replenish the steam boiler. This solution utilizes a magnetic water treatment device to solve the problem of scale buildup inside the steam boiler caused by uncontrollable factors such as insufficient removal of hardness ions during the softening process and contamination of the soft water tank. Ultimately, this achieves dual protection for the steam boiler while also reducing its energy consumption.
[0103] Application 3: Domestic Hot Water System
[0104] like Figure 17 As shown, raw water enters the storage tank after passing through a pre-filtration device, and is then pressurized by a booster pump and sent to the magnetic energy water treatment device. The magnetically treated water enters the secondary cold water inlet of the heat exchanger, exchanges heat with the primary heat medium, and then flows out through the secondary hot water outlet into the domestic hot water pipeline, ultimately reaching the user's end. In this solution, the magnetic energy water treatment device replaces conventional resin softening and chemical scale inhibition processes, reducing operating and maintenance costs and emissions while providing healthier domestic hot water to the user's end.
[0105] Application 4: Deep Well Geothermal Source System
[0106] like Figure 18 As shown, high-temperature hot water flows from the geothermal outlet well pipe into the magnetic energy water treatment device and then into the primary network inlet of the heat exchanger. After being cooled by heat exchange in the heat exchanger, it flows out from the primary network outlet and is reinjected into the geothermal reinjection well through the pipeline. Because deep well geothermal water is high-temperature, high-salinity, extremely hard, and scales rapidly, the conventional solution is to use chemical scale inhibition processes, but the operating cost is extremely high, and the pollution to the groundwater source is irreversible. In this system, the application of the magnetic energy water treatment device solves the problem of scale blockage in the pipes and heat exchangers, eliminates groundwater pollution, reduces the operation and maintenance costs of the geothermal source system, and is more conducive to the widespread application of green and inexhaustible geothermal energy.
[0107] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the spirit and scope of the technical solutions of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A high-efficiency multi-polar magnetic energy water treatment device, characterized in that, The device includes a cylindrical protective shell and an even number of magnetic processing components vertically arranged inside the protective shell. Each magnetic processing component contains an even number of water pipes, half of which are inlet channels and the other half are outlet channels. The outlet of each inlet channel is equipped with a water distribution chamber assembly, which has a confluence channel that gathers all the inlet water flows together. The top of each water distribution chamber assembly is equipped with an upper cover assembly, which has a guide channel that directs the inlet water to the outlet channel. The inlet channel, confluence channel, guide channel, and outlet channel form an "n"-shaped magnetic processing channel.
2. The high-efficiency multi-polar magnetic energy water treatment device according to claim 1, characterized in that, The bottom of the protective shell is provided with a lower compartment cover assembly, and a water distribution compartment assembly is provided between the lower compartment cover assembly and the protective shell.
3. The high-efficiency multi-polar magnetic energy water treatment device according to claim 2, characterized in that, The water distribution chamber assembly includes a water distribution shell in the shape of a lid bowl. The water distribution shell is provided with a water distribution baffle that divides the inner cavity space into two independent spaces. The two independent spaces are the confluence channels. The bottom of the confluence channels is provided with a diversion hole for water flow. The outer edge of the water distribution shell is provided with an assembly flange for connection.
4. The high-efficiency multi-polar magnetic energy water treatment device according to claim 2, characterized in that, The lower tank cover assembly includes a lower tank cover in the shape of a bowl and a partition plate disposed on the lower tank cover. A fixing flange is provided on the edge of the bowl of the lower tank cover, and an inlet, an outlet and a support are provided at the bottom of the lower tank cover.
5. The high-efficiency multi-polar magnetic energy water treatment device according to claim 1, characterized in that, The upper compartment cover assembly includes an upper compartment cover in the shape of a lid, with an exhaust port on the top of the upper compartment cover and a connecting flange on the edge of the lid.
6. The high-efficiency multi-polar magnetic energy water treatment device according to claim 1, characterized in that, The magnetic processing assembly also includes multiple NS pole magnets symmetrically arranged on both sides of the water pipe and magnetic guide plates that attract the pole faces of the magnets away from the magnetic processing channel. The multiple magnets are continuously and spaced apart outside the water pipe, and limit plates are provided between each pair of magnets.
7. The high-efficiency multi-polar magnetic energy water treatment device according to claim 1, characterized in that, The water pipe has flared ends at both ends, and the flared ends are equipped with water head components. The water head components are externally equipped with pressure caps for fixing the water head components and the water pipe to make the magnetic processing assembly a whole.
8. A high-efficiency multi-polar magnetic energy water treatment device according to any one of claims 1-7, characterized in that, The length of the water pipe is 800-1200 mm.
Citation Information
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