Electromagnetic energy-saving steam generator

By designing an electromagnetic energy-saving steam generator, separating the steam tank and the electromagnetic controller, separating the water replenishing tank and the steam tank, and using an electromagnetic induction coil and a heat dissipation layer, the existing steam generators are easily damaged and have poor heat exchange efficiency under high pressure, achieving more efficient and safe steam generation.

CN223020235UActive Publication Date: 2025-06-24SHENZHEN CHANGCHI ENERGY TECH CO LTD
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Patent Information

Application Number
CN202422238394.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-12
Publication Date
2025-06-24
Estimated Expiration
2034-09-12

AI Technical Summary

Technical Problem

Existing steam generators are prone to damage, corrosion, leakage and poor heat exchange efficiency under high pressure, and the dirt on the heating pipe affects the steam generation efficiency.

Method used

An electromagnetic energy-saving steam generator is designed to avoid high-temperature damage by isolating the steam tank and the electromagnetic controller; a separation design between the water tank and the steam tank is adopted to detect the water volume through the liquid level ball valve to ensure the stability of steam generation; an electromagnetic induction coil wraps around the outer wall of the steam tank, combining the heat dissipation layer and the cooling fan to ensure the stability and efficiency of heating.

Benefits of technology

Improve the safety of the equipment and the efficiency of steam generation, avoid high temperature damage and dirt, and ensure the stability and rate of steam generation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of steam generation, in particular to an electromagnetic energy-saving steam generator which comprises a protective shell, a water supplementing assembly and a steam generating assembly, a partition plate is arranged in the protective shell in a penetrating mode, a heating part and a control part are defined by the partition plate and the inner wall of the protective shell, and the heating part and the control part are connected to the two end faces of the partition plate. The water supplementing assembly comprises a water supplementing tank and a steam tank, the water supplementing tank is connected to the end face, close to the heating part, of the protective shell, the steam tank penetrates through the heating part, and the water supplementing tank communicates with the steam tank; the steam generation assembly comprises an electromagnetic induction coil and an electromagnetic controller, the electromagnetic induction coil penetrates through the outer wall of the steam tank and wraps the steam tank, the electromagnetic controller is arranged on the control part and electrically connected to the electromagnetic induction coil, a cooling fan is arranged in the control part and faces the electromagnetic controller, the electromagnetic controller is connected with a control panel, and the control panel is electrically connected with the control part. The control panel is connected to the outer wall of the protective shell. The utility model aims to improve the working safety of equipment.
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Description

Technical Field

[0001] The utility model relates to the technical field of steam generation, and particularly relates to an electromagnetic energy-saving steam generator. Background Art

[0002] Steam is often used to generate mechanical power, space heating / humidification and as a driving force, etc., and is one of the most widely used heat transfer energies. In particular, a steam generator (commonly known as a boiler) is a mechanical device that uses the heat energy of fuel or other energy sources to heat water into hot water or steam. The steam generator is an important part of the steam power device and is an essential device for providing steam required for production and heating in various industrial enterprises.

[0003] In the related art, a plurality of heating tubes are provided in the steam generation structure so that the water body can be heated more evenly and the steam generation rate can be increased. However, when a plurality of heating tubes are provided in a limited space, their tube walls are relatively thin and difficult to withstand high pressure, and are prone to breakage, corrosion and electric leakage, causing the internal resistance wire to conduct with water, resulting in harm. Moreover, the temperature of the heating tube is significantly higher than that of water, and dirt is easily generated on its surface. As the use time increases, the dirt on the heating tube will also accumulate continuously, ultimately affecting the heat exchange effect and heat exchange rate of the steam generation structure, and making the steam generation efficiency poor. Summary of the Utility Model

[0004] The main purpose of the utility model is to provide an electromagnetic energy-saving steam generator, aiming to improve the safety of the equipment during operation.

[0005] To achieve the above purpose, an electromagnetic energy-saving steam generator proposed by the utility model includes a protective shell, a water replenishing component and a steam generation component:

[0006] A partition is penetrated in the protective shell, and a heating part and a control part are formed by enclosing the inner wall of the partition and the protective shell. The heating part and the control part are respectively connected to both end faces of the partition;

[0007] The water replenishing component includes a water replenishing tank and a steam tank. The water replenishing tank is connected to the end face of the protective shell close to the heating part. The steam tank penetrates through the heating part, and the water replenishing tank is communicated with the steam tank; and

[0008] The steam generation component includes an electromagnetic induction coil and an electromagnetic controller. The electromagnetic induction coil penetrates through the outer wall of the steam tank and wraps the steam tank. The electromagnetic controller is arranged in the control part and is electrically connected to the electromagnetic induction coil. A cooling fan is arranged in the control part facing the electromagnetic controller. The electromagnetic controller is connected with a control panel, and the control panel is connected to the outer wall of the protective shell.

[0009] In one embodiment of the present application, a water inlet end is provided on the side wall of the water supply tank, and a liquid level ball valve is provided on the inner wall of the water supply tank facing the water inlet end, a first drain valve is provided on the bottom edge of the water supply tank, and the steam tank is connected to a second drain valve, and the second drain valve is penetrated through the outer wall of the heating part.

[0010] In one embodiment of the present application, a control valve is provided through the heating portion, one end of the control valve is rotatably connected to the second drain valve, and the other end passes through the top of the protective shell and is rotatably connected to the outer wall of the protective shell.

[0011] In one embodiment of the present application, the water replenishing assembly also includes a water pump, which is arranged in the control unit and connected to the water replenishing tank and the steam tank. The water pump is electrically connected to the electromagnetic controller, and an adjustment window is provided at the end of the protective shell away from the partition facing the water pump, and the adjustment window is rotatably connected to the protective shell.

[0012] In one embodiment of the present application, the electromagnetic controller is provided with a mounting plate, and the end of the mounting plate facing the partition has multiple groups of heat dissipating aluminum fins in a parallel and spaced array, the multiple groups of heat dissipating aluminum fins are connected to the partition, the electromagnetic controller is connected to the end surface of the mounting plate facing away from the heat dissipating aluminum fins, and the cooling fan is arranged facing the gap between the multiple groups of heat dissipating aluminum fins.

[0013] In one embodiment of the present application, the outer wall of the heating part is provided with multiple groups of heat dissipation holes, and the control part is provided with multiple groups of the heat dissipation holes, and the heat dissipation holes are located on the end surface of the control part away from the control part toward the adjustment window.

[0014] In one embodiment of the present application, the steam tank is provided with an air outlet valve, a liquid level probe and a barometer, the air outlet valve passes through the top of the protective shell, the liquid level probe passes through the steam tank and passes through the heating part, and the barometer is connected to the outer wall of the protective shell.

[0015] In one embodiment of the present application, a steam return port is provided on the outer wall of the protective shell, and one end of the steam return port facing the inner wall of the protective shell is connected to the water replenishment tank.

[0016] In one embodiment of the present application, a partition assembly is provided between the electromagnetic induction coil and the steam tank, and the partition assembly includes a plurality of groups of wood blocks, and the plurality of groups of wood blocks are evenly spaced circumferentially around the outer edge of the steam tank, and the extension direction of the wood blocks is arranged along the extension direction of the steam tank, and the wood blocks are high-temperature epoxy resin strips or bakelite strips.

[0017] The technical solution of the present utility model divides the electromagnetic energy-saving steam generator into a protective shell, a water replenishing component and a steam generating component according to its structure and function. The water replenishing component and the steam generating component are both partially installed in the protective shell, and the space opened in the protective shell is partitioned by a partition into a heating part and a control part. The steam tank of the water replenishing component is installed in the heating part, so that the steam tank and the electromagnetic controller are separated, which can avoid damage to the electromagnetic controller caused by high temperature. The water replenishing tank is connected to the outer wall of the heating part and can communicate with the steam tank. And by setting a liquid level float in the water replenishing tank, it can detect whether the water volume in the current water tank is sufficient, so as to ensure the stability of steam generation. The steam generating component is composed of an electromagnetic induction coil and an electromagnetic controller, and the two are electrically connected to each other. The electromagnetic induction coil is arranged on the outer wall of the steam tank and surrounds the inner core of the steam tank. The steam tank is provided with a heat insulation layer on the outer wall of the electromagnetic induction coil to protect the electromagnetic induction coil and at the same time ensure the temperature in the heating tank and the efficiency of steam generation. Similarly, the electromagnetic induction coil surrounding the outer wall of the steam tank can heat evenly and stably, ensuring the stability and rate of steam generation. And a cooling fan is also arranged in the control part, and the cooling fan is arranged facing the electromagnetic controller to ensure the stability of control. And the electromagnetic controller is configured with a control panel, through which the steam generation efficiency can be easily operated, and it can also be better operated on the outer wall of the protective shell. Through the above structure, steam can be generated quickly and stably, and the electromagnetic and electrical parts of the electromagnetic boiler and the water replenishing tank are completely separated. There is no heating element inside the steam tank, so it is completely separated and non-electrified, ensuring the safety of the equipment during operation and avoiding harm to personnel. Description of the Drawings

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on the structures shown in these drawings.

[0019] Figure 1 It is a schematic structural diagram of the electromagnetic energy-saving steam generator of the present utility model;

[0020] Figure 2 It is a schematic internal structural diagram of the electromagnetic energy-saving steam generator of the present utility model from one perspective;

[0021] Figure 3 It is a schematic internal structural diagram of the electromagnetic energy-saving steam generator of the present utility model from another perspective.

[0022] Explanation of the reference numerals in the drawings:

[0023] 1. Protective shell; 11. Steam return port; 12. Partition board; 13. Heating part; 14. Heat dissipation holes; 15. Control part; 16. Adjustment window; 2. Water replenishing component; 21. Water replenishing tank; 22. Water inlet end; 23. First sewage discharge valve; 24. Steam tank; 25. Air outlet valve; 26. Liquid level probe; 27. Barometer; 28. Second sewage discharge valve; 29. Water pump; 3. Steam generating component; 31. Electromagnetic induction coil; 32. Electromagnetic controller; 33. Mounting plate; 34. Heat dissipation aluminum fins; 35. Cooling fan; 36. Control panel.

[0024] The realization, functional features and advantages of the purpose of the present utility model will be further described with reference to the embodiments and the accompanying drawings. Detailed implementation manners

[0025] In order to make the purpose, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.

[0026] Referring to Figures 1 to 3 , in an implementation scheme of the present invention, an electromagnetic energy-saving steam generator is proposed, which includes a protective shell 1, a water replenishing component 2 and a steam generating component 3. A partition board 12 is penetrated in the protective shell 1. A heating part 13 and a control part 15 are formed by enclosing the partition board 12 and the inner wall of the protective shell 1. The heating part 13 and the control part 15 are respectively connected to the two end faces of the partition board 12; the water replenishing component 2 includes a water replenishing tank 21 and a steam tank 24. The water replenishing tank 21 is connected to the end face of the protective shell 1 close to the heating part 13. The steam tank 24 is penetrated in the heating part 13. The water replenishing tank 21 is communicated with the steam tank 24; the steam generating component 3 includes an electromagnetic induction coil 31 and an electromagnetic controller 32. The electromagnetic induction coil 31 is penetrated in the outer wall of the steam tank 24 and covers the steam tank 24. The electromagnetic controller 32 is arranged in the control part 15 and is electrically connected to the electromagnetic induction coil 31. A cooling fan 35 is arranged in the control part 15 facing the electromagnetic controller 32. The electromagnetic controller 32 is connected with a control panel 36. The control panel 36 is connected to the outer wall of the protective shell 1.

[0027] In an electromagnetic energy-saving steam generator of the present application, the electromagnetic energy-saving steam generator is divided into a protective shell 1, a water replenishing component 2, and a steam generating component 3 according to its structure and function. The water replenishing component 2 and the steam generating component 3 are both partially installed in the protective shell 1, and the space opened in the protective shell 1 is partitioned by a partition 12 into a heating part 13 and a control part 15. The steam tank 24 of the water replenishing component 2 is installed in the heating part 13, so that the steam tank 24 and the electromagnetic controller 32 are separated, which can prevent the electromagnetic controller 32 from being damaged by high temperature. The water replenishing tank 21 is connected to the outer wall of the heating part 13 and can communicate with the steam tank 24. By setting a liquid level float in the water replenishing tank 21, it can detect whether the water volume in the current water tank is sufficient, so as to ensure the stability of steam generation. The steam generating component 3 is composed of an electromagnetic induction coil 31 and an electromagnetic controller 32, and the two are electrically connected to each other. The battery controller 32 can also be a high-frequency induction power supply, which is used to generate high-frequency alternating current. The temperature control system configured with the steam generating component 3 can efficiently adjust the internal temperature of the steam tank 24 to ensure the stability of steam generation. The control panel is electrically connected to the electromagnetic controller 32, enabling users to more conveniently understand the current working state and better control it. The electromagnetic induction coil 31 is threaded through the outer wall of the steam tank 24 and surrounds the inner core of the steam tank 24. The steam tank 24 is provided with a heat insulation layer on the outer wall of the electromagnetic induction coil 31 to protect the electromagnetic induction coil 31 and at the same time ensure the temperature inside the heating tank and the efficiency of steam generation. Similarly, the electromagnetic induction coil 31 surrounding the outer wall of the steam tank 24 can heat evenly and stably, ensuring the stability and rate of steam generation. And a cooling fan 35 is also provided in the control part 15. The cooling fan 35 is arranged facing the electromagnetic controller 32 to ensure the stability of control. And the electromagnetic controller 32 is configured with a control panel 36. Through the control panel 36, it is convenient to operate the steam generation efficiency, and it can also be better operated on the outer wall of the protective shell 1. Through the above structure, steam can be generated quickly and stably. And a heating part 13 and a heat insulation layer are provided outside the steam tank 24. Even if there are heat dissipation holes 14 on the heating part 13, heat loss can be effectively avoided, effectively saving energy. At the same time, by completely separating the electromagnetic and electrical parts of the electromagnetic boiler and the water replenishing tank 21, there is no heating element inside the steam tank 24, so it is completely separated and non-electrified, ensuring the safety of the equipment operation and avoiding harm to personnel.

[0028] Further, the steam tank 24 is made of 304 or 316 material, making the steam tank 24 not easily corroded, without material rusting and peeling, resulting in the thinning of the tank body. And the steam tank 24 is self-heating, with a wide heating area, not afraid of scale formation. The steam tank 24 will continuously be oscillated by a high-speed changing magnetic field. The magnetized water can prevent scale from being normally generated and not adhering to the inner wall of the tank body, and can maintain cleanliness and hygiene well, meeting the requirements of food grade. However, the magnetic conductivity of such a tank body itself is very weak and cannot meet the heating requirements of the water body. Therefore, in a feasible embodiment, a ferromagnetic material is welded to the outer wall of the steam tank 24 by a method similar to electroplating in a full-coverage manner. These materials can also be used to cast a layer of ferromagnetic material on the outer wall of the steam tank 24 by melting, so that the steam tank 24 can meet the requirements of a magnetic conductor, and can also be non-rusting, corrosion-resistant, and durable, effectively improving the user experience.

[0029] Referring to Figures 1 to 3 , in an embodiment of the present application, the side wall of the water replenishing tank 21 is provided with a water inlet end 22, and a liquid level ball valve is provided on the inner wall of the water replenishing tank 21 facing the water inlet end 22. The bottom edge of the water replenishing tank 21 is provided with a first sewage discharge valve 23, and the steam tank 24 is connected with a second sewage discharge valve 28, and the second sewage discharge valve 28 penetrates through the outer wall of the heating part 13.

[0030] In an electromagnetic energy-saving steam generator of the present application, the side wall of the water replenishing tank 21 is provided with a water inlet end 22, and a liquid level ball valve is provided on the inner wall of the water replenishing tank 21 facing the water inlet end 22. Through the water replenishing tank 21 and the liquid level ball valve, the water volume in the water replenishing tank 21 can be stably guaranteed, so that the water replenishing tank 21 can always guarantee water replenishment for the steam tank 24, ensuring the steam generation efficiency. The bottom edge of the water replenishing tank 21 is provided with a first sewage discharge valve 23, and the steam tank 24 is connected with a second sewage discharge valve 28, which can ensure that when the electromagnetic energy-saving generator is used up or needs to be cleaned, the corresponding sewage discharge valve can be opened to quickly discharge the excess water, improving the cleaning and maintenance efficiency of the equipment.

[0031] Referring to Figure 1 , in an embodiment of the present application, a control valve is provided through the heating part 13. One end of the control valve is rotatably connected to the second sewage discharge valve 28, and the other end passes through the top of the protective shell 1 and is rotatably connected to the outer wall of the protective shell 1.

[0032] In an electromagnetic energy-saving steam generator of the present application, a control valve is provided through the heating part 13. This is another feasible embodiment of the present application, the purpose of which is to avoid the user having to bend down to open the sewage discharge valve when cleaning the equipment. By connecting the second sewage discharge valve 28 through a connecting rod, the user can directly open the sewage discharge valve at the top of the generator, improving the user experience.

[0033] Referring to Figures 2 to 3In one embodiment of the present application, the water replenishment component 2 also includes a water pump 29, which is arranged in the control unit 15 and connected to the water replenishment tank 21 and the steam tank 24. The water pump 29 is electrically connected to the electromagnetic controller 32, and an adjustment window 16 is provided at the end of the protective shell 1 away from the partition 12 facing the water pump 29, and the adjustment window 16 is rotatably connected to the protective shell 1.

[0034] In an electromagnetic energy-saving steam generator of the present application, the water replenishment component 2 also includes a water pump 29. The water pump 29 and the water replenishment tank 21 are arranged separately to avoid damage to multiple components if one is damaged. The water pump 29 is arranged in the control unit 15 to avoid overheating and ensure work efficiency. It can be controlled by an electromagnetic controller 32. An adjustment window 16 is provided on the end of the protective shell 1 away from the partition 12 facing the water pump 29. When there is a problem with the water pump 29, the user can directly contact the water pump 29 by rotating the adjustment window 16, thereby improving maintenance efficiency.

[0035] Combined with reference Figure 2 In one embodiment of the present application, the electromagnetic controller 32 is provided with a mounting plate 33, and the mounting plate 33 has a plurality of heat dissipating aluminum fins 34 in a parallel array at one end facing the partition 12. The plurality of heat dissipating aluminum fins 34 are connected to the partition 12, and the electromagnetic controller 32 is connected to the end surface of the mounting plate 33 facing away from the heat dissipating aluminum fins 34, and the cooling fan 35 is arranged facing the gap between the plurality of heat dissipating aluminum fins 34.

[0036] In an electromagnetic energy-saving steam generator of the present application, an electromagnetic controller 32 is provided with a mounting plate 33. The mounting plate 33 has a plurality of groups of heat dissipation aluminum fins 34 in a parallel and spaced array at one end facing the partition 12. The heat dissipation aluminum fins 34 can separate the electromagnetic controller 32 from the heating part 13 at a greater distance to prevent the chip of the electromagnetic controller 32 from overheating. The mounting plate 33 can make the electromagnetic controller 32 more convenient to install, and the heat dissipation aluminum fins 34, that is, the heat sink, can increase the contact area between the electromagnetic controller 32 and the fan air path, improve the heat dissipation efficiency, and ensure the working state of the equipment.

[0037] Combined with reference Figure 1 In one embodiment of the present application, the outer wall of the heating portion 13 is provided with multiple sets of heat dissipation holes 14, and the control portion 15 is provided with multiple sets of heat dissipation holes 14, and the heat dissipation holes 14 are located on the end surface of the control portion 15 away from the control portion 15 and facing the adjustment window 16.

[0038] In an electromagnetic energy-saving steam generator of the present application, a plurality of heat dissipation holes 14 are formed in the outer wall of the heating part 13, and heat dissipation holes 14 are formed on the periphery of the heating part 13, so as to prevent the heat of the steam tank 24 from accumulating in the heating part 13 and then affecting the internal structure in the control part 15 along the partition plate 12. The control part 15 is only provided with heat dissipation holes 14 on the side wall, and no heat dissipation holes 14 are provided on the front end face facing the adjustment window 16. Moreover, the operation panel is also arranged at the front end face, which can prevent users from being burned by the hot air that may escape from the heat dissipation holes 14 during operation, thus improving the safety of the equipment.

[0039] Referring to Figure 1 , in an embodiment of the present application, an air outlet valve 25, a liquid level probe 26 and a barometer 27 are provided on the steam tank 24. The air outlet valve 25 passes through the top of the protective shell 1, the liquid level probe 26 is disposed through the steam tank 24 and passes through the heating part 13, and the barometer 27 is connected to the outer wall of the protective shell 1.

[0040] In an electromagnetic energy-saving steam generator of the present application, an air outlet valve 25, a liquid level probe 26 and a barometer 27 are provided on the steam tank 24. The air outlet valve 25, the liquid level probe 26 and the barometer 27 are all above the steam tank 24. The air outlet valve 25 is used to export steam. The liquid level probe 26 is disposed in the steam tank 24 and is used to detect the water level in the steam tank 24, so as to prevent the equipment from being burned out due to the lack of water in the steam tank 24, the presence of water in the water replenishing tank 21, and the blockage of the water supply pipeline. It is connected to the control panel 36, so that problems can be discovered in the first time to avoid equipment damage. Multiple indicator lights can be provided on the control panel 36, including a power indicator light, a heating indicator light, a water filling indicator light, and a water shortage indicator light. Power indicator light: When the power switch is turned on, the indicator light is on; Heating indicator light: The indicator light is on when the equipment is heating; Water filling indicator light: The indicator light is on when the water pump starts to replenish water to the tank; Water shortage indicator light: a. When the water level in the water tank is short of water, the indicator light stays on, and at the same time the alarm sounds continuously and the equipment stops working; b. When the water pump replenishes water to the tank and it is detected that no water enters, the water shortage indicator light flashes, and at the same time the alarm makes a beeping sound and the equipment stops working. The barometer 27 is also connected to the steam tank 24 to ensure the safety of the tank body and improve the safety of the equipment. At the same time, the steam generator has no requirements for the injected water quality. By using the self-heating of the steam tank 24, the heating area is wide and it is not afraid of scaling. And due to the oscillation of the high-speed changing magnetic field, the magnetized water makes the water scale unable to form and will not adhere to the inner part of the tank body, playing a role in protecting the tank body and improving the water quality.

[0041] Referring to Figures 1 to 3 , in an embodiment of the present application, a steam return port 11 is provided on the outer wall of the protective shell 1, and one end of the steam return port 11 facing the inner wall of the protective shell 1 is communicated with the water replenishing tank 21.

[0042] In an electromagnetic energy-saving steam generator of the present application, a steam return port 11 is provided on the outer wall of the protective shell 1. The steam return port 11 is connected to the makeup water tank 21, and its management will pass through the heating part 13. The steam return port 11 is connected to the gas-using equipment. When the water vapor flows back, it still has a certain temperature. After passing through the heating part 13, it enters the makeup water tank 21, which can preheat the makeup water tank 21 in advance, effectively save energy, and ensure the supply efficiency of steam.

[0043] Referring to Figure 3 , in an embodiment of the present application, a partition assembly is provided between the electromagnetic induction coil 31 and the steam tank 24. The partition assembly includes multiple groups of cushion woods. The multiple groups of cushion woods are circumferentially and evenly spaced around the outer edge of the steam tank 24. The extending direction of the cushion wood is set along the extending direction of the steam tank 24. The cushion wood is a high-temperature epoxy resin strip or an electric wood strip.

[0044] In an electromagnetic energy-saving steam generator of the present application, while the electromagnetic induction coil 31 is assisting in heating, it also needs to dissipate heat itself to ensure the heating effect and avoid damage to the equipment. The outer edge of the steam tank 24 is wrapped with heat-insulating cotton. Wrapping the steam tank 24 with heat-insulating cotton can ensure the stability of steam generation and effectively save energy and avoid waste. The partition assembly is used to create a gap between the electromagnetic induction coil 31 and the steam tank 24. The cushion wood of the partition assembly is a high-temperature epoxy resin strip or an electric wood strip. It can allow the electromagnetic induction coil 31 to heat the water in the tank without hindrance, while enabling the end face of the electromagnetic induction coil 31 facing the steam tank 24 to be in an overhead state. Different from the traditional way of directly winding the coil around the outer wall of the tank, which causes the coil to only dissipate heat on one side. In the present application, with the help of the cushion wood, the electromagnetic induction coil 31 has stronger heat dissipation ability, which is beneficial for the electromagnetic induction coil 31 to work in a high-temperature environment for a long time and ensure the working life of the equipment, and can effectively improve the user experience.

[0045] In the drawings of this embodiment, the same or similar reference numerals correspond to the same or similar components; in the description of the present application, it should be understood that if there are terms such as "upper", "lower", "left", "right", etc. indicating the orientation or positional relationship, they are based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present application 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 drawings are only for illustrative purposes and cannot be understood as a limitation of this patent. For those of ordinary skill in the art, the specific meanings of the above terms can be understood according to specific circumstances.

[0046] The above are only the preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. An electromagnetic energy-saving steam generator, characterized in that: include: A protective shell, wherein a partition is provided in the protective shell, wherein the partition and the inner wall of the protective shell enclose a heating part and a control part, and the heating part and the control part are distributed and connected to both end surfaces of the partition; a water replenishment assembly, the water replenishment assembly comprising a water replenishment tank and a steam tank, the water replenishment tank being connected to an end surface of the protective shell close to the heating portion, the steam tank being disposed through the heating portion, and the water replenishment tank being communicated with the steam tank; and A steam generating component, the steam generating component includes an electromagnetic induction coil and an electromagnetic controller, the electromagnetic induction coil is passed through the outer wall of the steam tank and covered with the steam tank, the electromagnetic controller is arranged in the control unit and electrically connected to the electromagnetic induction coil, a cooling fan is arranged in the control unit facing the electromagnetic controller, the electromagnetic controller is connected to a control panel, and the control panel is connected to the outer wall of the protective shell.

2. The electromagnetic energy-saving steam generator according to claim 1, characterized in that: The side wall of the water supply tank is provided with a water inlet end, and the inner wall of the water supply tank is provided with a liquid level ball valve facing the water inlet end, the bottom edge of the water supply tank is provided with a first drain valve, the steam tank is connected to a second drain valve, and the second drain valve is penetrated through the outer wall of the heating part.

3. The electromagnetic energy-saving steam generator according to claim 2, characterized in that: The heating part is penetrated by a control valve, one end of the control valve is rotatably connected to the second drain valve, and the other end passes through the top of the protective shell and is rotatably connected to the outer wall of the protective shell.

4. An electromagnetic energy-saving steam generator according to any one of claims 1 to 3, characterized in that: The water replenishment component also includes a water pump, which is arranged in the control unit and connected to the water replenishment tank and the steam tank. The water pump is electrically connected to the electromagnetic controller. An adjustment window is provided at the end of the protective shell away from the partition facing the water pump, and the adjustment window is rotatably connected to the protective shell.

5. The electromagnetic energy-saving steam generator according to claim 4, characterized in that: The electromagnetic controller is provided with a mounting plate, and a plurality of groups of heat dissipating aluminum fins are arranged in a parallel spaced array at one end of the mounting plate facing the partition, and the plurality of groups of heat dissipating aluminum fins are connected to the partition. The electromagnetic controller is connected to the end surface of the mounting plate facing away from the heat dissipating aluminum fins, and the cooling fan is arranged facing the gap between the plurality of groups of heat dissipating aluminum fins.

6. The electromagnetic energy-saving steam generator according to claim 5, characterized in that: The outer wall of the heating part is provided with a plurality of heat dissipation holes, and the control part is provided with a plurality of heat dissipation holes, and the heat dissipation holes are located on the end surface of the control part away from the control part and facing the adjustment window.

7. An electromagnetic energy-saving steam generator according to any one of claims 1 to 3, characterized in that: The steam tank is provided with an air outlet valve, a liquid level probe and a barometer. The air outlet valve passes through the top of the protective shell, the liquid level probe passes through the steam tank and passes through the heating part, and the barometer is connected to the outer wall of the protective shell.

8. The electromagnetic energy-saving steam generator according to claim 7, characterized in that: The outer wall of the protective shell is provided with a steam return port, and one end of the steam return port facing the inner wall of the protective shell is connected to the water replenishment tank.

9. An electromagnetic energy-saving steam generator according to any one of claims 1 to 3, characterized in that: A partition assembly is provided between the electromagnetic induction coil and the steam tank, and the partition assembly includes a plurality of groups of wood blocks, which are evenly spaced around the outer edge of the steam tank, and the extension direction of the wood blocks is arranged along the extension direction of the steam tank, and the wood blocks are high-temperature epoxy resin strips or bakelite strips.