Far infrared water boiling system applied to health maintenance
By designing a far-infrared boiling water system with reverse osmosis purification and far-infrared heating, the problem of difficulty for household users to produce warm boiled water is solved, and the production and energy consumption saving of household warm boiled water is achieved, which improves the user experience.
Patent Information
- Application Number
- CN202422454998.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-10
AI Technical Summary
It is difficult for home users to produce warm water at home for bathing, and the existing equipment consumes high energy, making it inconvenient for elderly and weak people to go back and forth to and from traditional Chinese medicine clinics or health centers.
Design a far-infrared boiling water system including a controller, water supply interface, reverse osmosis module, far-infrared boiling water module and water storage module. Through reverse osmosis purification, far-infrared heating and heat exchange modules, water quality is treated to form reactive oxygen single-chain water, and realize the production of home warm boiled water.
It realizes the production of warm boiled water at home, reduces energy consumption, facilitates users to bathe at home, and improves user experience.
Smart Images

Figure CN223268498U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of water treatment, in particular to a far-infrared water boiling system used for health preservation. Background Art
[0002] At present, with the development of society, material life is becoming more and more affluent. In addition to living a rich life, people are also paying more and more attention to physical health and longevity, and therefore pay more attention to Chinese medicine health care.
[0003] According to Traditional Chinese Medicine theory, bathing in warm water allows the alkaline water with a high oxygen content to penetrate into human cells, which can excrete free radicals, toxins and other harmful elements from the human body through the cells, promote human metabolism, and is of great help to human health and longevity.
[0004] Warm water baths require disinfected and purified water at a temperature between 39 and 65 degrees Celsius. Currently, ordinary households lack the ability to produce warm water. Therefore, bathing in these waters typically requires visiting a traditional Chinese medicine clinic or health spa, which is often expensive. Furthermore, traveling to and from these clinics is inconvenient for the elderly and frail. Utility Model Content
[0005] In order to solve the above problems, the primary purpose of the present invention is to provide a far-infrared water boiling system for health preservation, which can be used in the home and facilitate users to take a warm water bath at home.
[0006] Another object of the present invention is to provide a far-infrared water boiling system for health preservation, which adds a heat exchange process during the water treatment process and can effectively save energy.
[0007] To achieve the above purpose, the technical solution of the utility model is as follows:
[0008] The utility model provides a far-infrared water boiling system for health preservation, comprising:
[0009] Controller, with display, adjustment and control functions;
[0010] Water supply interface, used to provide external water source;
[0011] Reverse osmosis module for water purification;
[0012] Far infrared water boiling module, used for boiling purified water;
[0013] A water storage module, used to store the water flow after the boiling is completed;
[0014] The water supply interface, the reverse osmosis module, the far infrared water boiling module, and the water storage module are connected in sequence, and the reverse osmosis module, the far infrared water boiling module, and the water storage module are all connected to the controller.
[0015] Furthermore, a magnetized water machine is provided between the water supply interface and the reverse osmosis module, and the magnetized water machine magnetizes and decomposes the water, thereby improving the water quality and forming "living water" or "single-chain water".
[0016] Furthermore, the reverse osmosis module includes a reverse osmosis filter water purifier, and the reverse osmosis filter water purifier is provided with a pure water outlet and a waste water outlet.
[0017] Furthermore, a primary heat exchange module is provided between the far-infrared water boiling module and the water storage module. The primary heat exchange module includes a primary heat exchange shell, a boiling water inlet pipe, and a boiling water outlet pipe. The boiling water inlet pipe and the boiling water outlet pipe are both connected to the primary heat exchange shell, and the boiling water inlet pipe is wrapped around the outside of the boiling water outlet pipe, or the boiling water outlet pipe is wrapped around the outside of the boiling water inlet pipe; one end of the boiling water inlet pipe is connected to the pure water outlet of the reverse osmosis module, and the other end is connected to the inlet of the far-infrared water boiling module; one end of the boiling water outlet pipe is connected to the outlet of the far-infrared water boiling module, and the other end is connected to the water storage module.
[0018] Furthermore, an electric water inlet valve is provided on the boiling water inlet pipe.
[0019] Furthermore, a water outlet temperature detection sensor is provided on the boiling water outlet pipe, and the water outlet temperature detection sensor is electrically connected to the controller; a secondary heat exchange module is also provided between the primary heat exchange module and the water storage module, and the secondary heat exchange module includes a secondary heat exchange shell, a wastewater outlet pipe, and a wastewater drainage pipe, and the boiling water outlet pipe passes through the secondary heat exchange shell; one end of the wastewater outlet pipe is connected to the wastewater outlet, and the other end is connected to the bottom of the secondary heat exchange shell; one end of the wastewater drainage pipe is connected to the top of the secondary heat exchange shell, and the other end is open; an electric drain valve is installed on the wastewater outlet pipe, and the electric drain valve is connected to the controller.
[0020] Furthermore, the far-infrared water boiling module includes a water boiling tank, which is provided with a water boiling inlet and a water boiling outlet. The water boiling inlet is connected to a water boiling inlet pipe, and the water boiling outlet is connected to a water boiling outlet pipe. A baffle is provided between the water boiling inlet and the water boiling outlet to extend the flow of water.
[0021] Furthermore, the baffle has a "square wave" structure, which can effectively extend the flow path of pure water in the water boiling tank.
[0022] Furthermore, a heater is provided in the water boiling tank, and the heater is electrically connected to the controller, and the pure water in the water boiling tank is heated by the heater.
[0023] Furthermore, the heater is a far-infrared heater, which heats the pure water in a far-infrared manner, thereby being able to disinfect, activate, and decompose the pure water, improve the structure of the water, and form small-molecule active oxygen single-chain water.
[0024] Furthermore, a temperature detection sensor is provided in the water boiling tank, and the temperature detection sensor is electrically connected to the controller and can monitor the water temperature in the water boiling tank in real time.
[0025] Furthermore, a water level detection sensor is provided in the water boiling tank. The water level detection sensor is electrically connected to the controller and can monitor the water level in the water boiling tank in real time.
[0026] Furthermore, a temperature protection switch is provided between the heater and the controller. When the temperature detection sensor detects that the water temperature in the boiling water tank reaches a set temperature, the controller controls the temperature protection switch to be disconnected and the heater stops working.
[0027] Furthermore, a water storage temperature detection sensor is provided in the water storage module, and the water storage temperature detection sensor is electrically connected to the controller and can monitor the water temperature in the water storage module in real time.
[0028] Furthermore, a water level detection sensor is provided in the water storage module. The water level detection sensor is electrically connected to the controller and can monitor the water level in the water storage module in real time.
[0029] Furthermore, the controller includes a control host, a display module, an adjustment module, a remote control module, and a power supply module. The display module, adjustment module, remote control module, and power supply module are all electrically connected to the control host, and the water outlet temperature detection sensor, electric water inlet valve, electric drain valve, heater, temperature detection sensor, water level detection sensor, temperature protection switch, water storage temperature detection sensor, and water storage level detection sensor are all electrically connected to the control host.
[0030] Compared with the existing technology, the present invention controls the operation of the reverse osmosis module and the far-infrared water boiling module through a controller, and can convert the external water source provided by the water supply interface into warm boiled water that can be used for Chinese medicine health care after disinfection and purification, and store it in the water storage module. The controller, reverse osmosis module, and far-infrared water boiling module are all independent functional modules, which can be installed in the home, so that the system can be used in the home, making it convenient for users to take a warm boiled water bath at home; in addition, the present application also provides a heat exchange module between the far-infrared water boiling module and the water storage module, which can not only preheat the pure water produced by the reverse osmosis module, but also cool the boiled water, effectively saving energy. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Figure 1 It is a structural diagram of the far-infrared water boiling system.
[0032] Figure 2 It is a structural diagram of the far-infrared water boiling module.
[0033] Figure 3 This is a top view of the far-infrared water boiling module.
[0034] Figure 4 It is a structural diagram of the primary heat exchange module and the secondary heat exchange module.
[0035] In the figure: 1. Controller; 2. Water supply interface; 3. Reverse osmosis module; 31. Pure water outlet; 32. Wastewater outlet; 4. Far-infrared water boiling module; 41. Water boiling tank; 42. Water boiling inlet; 43. Water boiling outlet; 44. Baffle; 45. Heater; 46. Temperature detection sensor; 47. Water level detection sensor; 48. Temperature protection switch; 5. Water storage module; 51. Water storage temperature detection sensor; 52. Water storage level detection sensor; 6. Magnetized water machine; 7. Primary heat exchange module; 71. Primary heat exchange shell; 72. Water boiling inlet pipe; 73. Water boiling outlet pipe; 74. Water outlet temperature detection sensor; 75. Electric water inlet valve; 8. Secondary heat exchange module; 81. Secondary heat exchange shell; 82. Wastewater outlet pipe; 83. Wastewater drainage pipe; 84. Electric drainage valve. DETAILED DESCRIPTION
[0036] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is 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 invention and are not intended to limit the present invention.
[0037] To achieve the above purpose, the technical solution of the utility model is as follows:
[0038] See also Figure 1-4As shown, this embodiment provides a far-infrared water boiling system for health preservation, comprising:
[0039] Controller 1, with display, adjustment and control functions;
[0040] Water supply interface 2, used to provide external water source;
[0041] Reverse osmosis module 3, used for water purification;
[0042] Far infrared water boiling module 4, used for boiling the purified water;
[0043] The water storage module 5 is used to store the water flow after the boiling water is completed;
[0044] The water supply interface 2 , the reverse osmosis module 3 , the far infrared water boiling module 4 , and the water storage module 5 are connected in sequence, and the reverse osmosis module 3 , the far infrared water boiling module 4 , and the water storage module 5 are all connected to the controller 1 .
[0045] The far-infrared water boiling system of this embodiment operates as follows: external water enters the reverse osmosis module 3 through the water supply interface 2. Purified water is then purified by the reverse osmosis module 3, which then enters the far-infrared water boiling module 4 for disinfection, activation, and decomposition, resulting in warm water with small molecules. Finally, the water enters the water storage module 5 for storage and subsequent use in warm water baths. The controller 1 provides display, adjustment, and control functions, controlling the coordinated operation of the reverse osmosis module 3, the far-infrared water boiling module 4, and the water storage module 5.
[0046] In this embodiment, the reverse osmosis module 3 can use a reverse osmosis filtration water purifier, the water storage module 5 can use a water storage barrel, and the far-infrared water boiling module 4 can use a far-infrared water heater. The three can be purchased and installed independently, and occupy a small space. Users can install them at home, making it convenient for users to take a warm water bath at home.
[0047] Furthermore, a water magnetizer 6 is provided between the water supply interface 2 and the reverse osmosis module 3 , and the water is magnetized and decomposed by the water magnetizer 6 , thereby improving the water quality and forming “living water” or “single-chain water”.
[0048] Furthermore, the reverse osmosis filtration water purifier is provided with a pure water outlet 31 and a waste water outlet 32. In this application, after the reverse osmosis filtration water purifier filters the external water source, pure water and waste water (concentrated water) are formed and discharged from the pure water outlet 31 and the waste water outlet 32 respectively.
[0049] Furthermore, a primary heat exchange module 7 is provided between the far-infrared water boiling module 4 and the water storage module 5. The primary heat exchange module 7 includes a primary heat exchange shell 71, a boiling water inlet pipe 72, and a boiling water outlet pipe 73. The boiling water inlet pipe 72 and the boiling water outlet pipe 73 are both connected to the primary heat exchange shell 71, and the boiling water inlet pipe 72 is wrapped around the boiling water outlet pipe 73, or the boiling water outlet pipe 73 is wrapped around the boiling water inlet pipe 72; one end of the boiling water inlet pipe 72 is connected to the pure water outlet 31 of the reverse osmosis module 3, and the other end is connected to the inlet of the far-infrared water boiling module 4; one end of the boiling water outlet pipe 73 is connected to the outlet of the far-infrared water boiling module 4, and the other end is connected to the water storage module 5. In this application, after the far-infrared boiling water module 4 heats the incoming pure water, the water temperature will be close to 100°C, and it needs to be cooled to 39-65 degrees before it can be used for bathing. Through the design of the above structure, by performing countercurrent heat exchange between the heated water and the pure water before heating, it is possible to preheat the pure water and cool the boiled water, effectively saving energy.
[0050] Furthermore, an electric water inlet valve 75 is provided on the boiling water inlet pipe 72, and the electric water inlet valve 75 is electrically connected to the controller 1, and the water inlet of the far-infrared boiling water module 4 is controlled by the controller 1 to achieve coordinated work between various modules.
[0051] Furthermore, a water outlet temperature detection sensor 74 is provided on the boiling water outlet pipe 73, and the water outlet temperature detection sensor 74 is electrically connected to the controller 1; a secondary heat exchange module 8 is also provided between the primary heat exchange module 7 and the water storage module 5, and the secondary heat exchange module 8 includes a secondary heat exchange shell 81, a wastewater outlet pipe 82, and a wastewater drainage pipe 83. The boiling water outlet pipe 73 passes through the secondary heat exchange shell 81; one end of the wastewater outlet pipe 82 is connected to the wastewater outlet 32, and the other end is connected to the bottom of the secondary heat exchange shell 81; one end of the wastewater drainage pipe 83 is connected to the top of the secondary heat exchange shell 81, and the other end is open; an electric drain valve 84 is installed on the wastewater outlet pipe 82, and the electric drain valve 84 is connected to the controller 1. In the present application, after the boiled water flows through the primary heat exchange module 7 for heat exchange, the water temperature is detected by the water outlet temperature detection sensor 74. If the water temperature is still higher than the water temperature set by the controller 1, the controller 1 closes the electric drain valve 84, and the wastewater generated by the reverse osmosis filtration water purifier enters the secondary heat exchange shell 81 and undergoes countercurrent heat exchange with the boiled water flow, further cooling the water flow so that the water temperature reaches the temperature set by the controller 1; if the boiled water flow has reached the water temperature set by the controller 1 after heat exchange through the primary heat exchange module 7, the controller 1 opens the electric drain valve 84, and the wastewater does not enter the secondary heat exchange shell 81, but is directly discharged through the electric drain valve 84.
[0052] It should be noted that in this embodiment, the primary heat exchange module 7 and the secondary heat exchange module 8 both adopt a tubular heat exchange structure, but in other implementation methods, the primary heat exchange module 7 and the secondary heat exchange module 8 can also be replaced by a plate heat exchange structure or other heat exchange structures. These heat exchange structures should be within the scope of protection of this application.
[0053] Furthermore, the far-infrared water boiling module 4 includes a water boiling tank 41, which is provided with a water boiling inlet 42 and a water boiling outlet 43. The water boiling inlet 42 is connected to the water boiling inlet pipe 72, and the water boiling outlet 43 is connected to the water boiling outlet pipe 73. A baffle 44 is provided between the water boiling inlet 42 and the water boiling outlet 43 to extend the flow of water. In this application, pure water is heated and boiled upon entering the water boiling tank 41. The provision of the baffle 44 allows the water to flow along the baffle 44, extending the flow path in the water boiling tank 41 and increasing the boiling time of the water, thereby ensuring that the pure water is fully heated.
[0054] Furthermore, the baffle 44 has a “square wave” structure, which can effectively extend the flow path of the pure water in the water boiling tank 41 .
[0055] Furthermore, a heater 45 is provided in the water boiling tank 41 . The heater 45 is electrically connected to the controller 1 , and the pure water in the water boiling tank 41 is heated by the heater 45 .
[0056] Furthermore, heater 45 is a far-infrared heater that heats the pure water via far-infrared radiation, thereby disinfecting, activating, and decomposing the water, improving its structure and forming small molecules of reactive oxygen species (ROS) single-chain water. This ROS single-chain water has a high oxygen content and possesses high permeability, diffusion, and solubility. When used for bathing, it can freely enter human cells, excreting harmful elements such as free radicals and toxins from the body through the cells, promoting metabolism and significantly contributing to human health and longevity.
[0057] Furthermore, a temperature detection sensor 46 is provided in the water boiling tank 41 . The temperature detection sensor 46 is electrically connected to the controller 1 and can monitor the water temperature in the water boiling tank 41 in real time.
[0058] Furthermore, a water level detection sensor 47 is provided in the water boiling tank 41 . The water level detection sensor 47 is electrically connected to the controller 1 and can monitor the water level in the water boiling tank 41 in real time.
[0059] Furthermore, a temperature protection switch 48 is provided between the heater 45 and the controller 1. When the temperature detection sensor 46 detects that the water temperature in the boiling water tank 41 reaches a set temperature, the controller 1 controls the temperature protection switch 48 to be disconnected and the heater stops working.
[0060] Furthermore, a water storage temperature detection sensor 51 is provided in the water storage module 5 . The water storage temperature detection sensor 51 is electrically connected to the controller 1 and can monitor the water temperature in the water storage module 5 in real time.
[0061] Furthermore, a water level detection sensor 52 is provided in the water storage module 5 . The water level detection sensor 52 is electrically connected to the controller 1 and can monitor the water level in the water storage module 5 in real time.
[0062] Furthermore, the controller 1 includes a control host, a display module, an adjustment module, a remote control module, and a power supply module. The display module, adjustment module, remote control module, and power supply module are all electrically connected to the control host. The water outlet temperature sensor 74, the electric water inlet valve 75, the electric drain valve 84, the heater, the temperature sensor 46, the water level sensor 47, the temperature protection switch 48, the water storage temperature sensor 51, and the water storage level sensor 52 are also electrically connected to the control host. In this application, the adjustment module can preset and adjust the water temperature heated by the far-infrared water boiling module 4 and the water temperature required by the water storage module 5; the display module can also display the parameters detected by each sensor; the power supply module can power the entire system; and the remote control module can use an app or mini-program to connect to the control host via the Internet of Things or Wi-Fi, thereby remotely controlling the entire system.
[0063] Furthermore, the controller 1 of this embodiment also has remote fault alarm and filter blockage alarm functions, which can alarm when a remote control fault or a fault in the reverse osmosis module 3 occurs, so as to remind the user to handle it in time.
[0064] It should be noted that the controller 1 in this application only has simple parameter display, parameter adjustment and control functions, which are relatively common in the field of water treatment and belong to the existing technology. The specific implementation methods of its various functions are not described in detail in this embodiment.
[0065] It should be noted that, in this application, the use of magnetized water machine 6 and far-infrared heating to treat water belongs to the existing technology, and its specific implementation method and the effects that can be achieved belong to the existing technology and are not described in detail in this application.
[0066] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements and improvements made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A far-infrared water boiling system for health preservation, characterized in that: include: Controller, with display, adjustment and control functions; Water supply interface, used to provide external water source; Reverse osmosis module for water purification; Far infrared water boiling module, used for boiling purified water; A water storage module, used to store the water flow after the boiling is completed; The water supply interface, the reverse osmosis module, the far infrared water boiling module, and the water storage module are connected in sequence, and the reverse osmosis module, the far infrared water boiling module, and the water storage module are all connected to the controller.
2. A far-infrared water boiling system for health preservation as claimed in claim 1, characterized in that: A magnetized water machine is provided between the water supply interface and the reverse osmosis module.
3. The far-infrared water boiling system for health preservation according to claim 1, characterized in that: The reverse osmosis module includes a reverse osmosis filter water purifier, and the reverse osmosis filter water purifier is provided with a pure water outlet and a waste water outlet.
4. A far-infrared water boiling system for health preservation as claimed in claim 3, characterized in that: A primary heat exchange module for performing heat exchange on the inlet and outlet water of the far-infrared water boiling module is provided between the far-infrared water boiling module and the water storage module.
5. The far-infrared water boiling system for health preservation as claimed in claim 4, characterized in that: The primary heat exchange module includes a primary heat exchange housing, a boiling water inlet pipe, and a boiling water outlet pipe. The boiling water inlet pipe and the boiling water outlet pipe are both connected to the primary heat exchange housing, and the boiling water inlet pipe is wrapped around the boiling water outlet pipe, or the boiling water outlet pipe is wrapped around the boiling water inlet pipe; one end of the boiling water inlet pipe is connected to the pure water outlet of the reverse osmosis module, and the other end is connected to the inlet of the far-infrared boiling module; one end of the boiling water outlet pipe is connected to the outlet of the far-infrared boiling module, and the other end is connected to the water storage module.
6. The far-infrared water boiling system for health preservation as claimed in claim 5, characterized in that: The boiling water outlet pipe is provided with an outlet water temperature detection sensor, which is electrically connected to the controller. A secondary heat exchange module is further provided between the primary heat exchange module and the water storage module. The secondary heat exchange module includes a secondary heat exchange shell, a wastewater outlet pipe, and a wastewater drainage pipe. The boiling water outlet pipe passes through the secondary heat exchange shell. One end of the wastewater outlet pipe is connected to the wastewater outlet, and the other end is connected to the bottom of the secondary heat exchange shell. One end of the wastewater drainage pipe is connected to the top of the secondary heat exchange shell, and the other end is open. An electric drain valve is installed on the wastewater outlet pipe, and the electric drain valve is connected to the controller.
7. The far-infrared water boiling system for health preservation as claimed in claim 5, characterized in that: The far-infrared water boiling module includes a water boiling box, which is provided with a water boiling inlet and a water boiling outlet. The water boiling inlet is connected to a water boiling inlet pipe, and the water boiling outlet is connected to a water boiling outlet pipe. A baffle capable of extending the flow of water is provided between the water boiling inlet and the water boiling outlet.
8. The far-infrared water boiling system for health preservation as claimed in claim 7, characterized in that: The baffle has a "square wave" structure.
9. The far-infrared water boiling system for health preservation as claimed in claim 7, characterized in that: A heater is provided in the water boiling box, the heater is electrically connected to the controller, and a temperature protection switch is provided between the heater and the controller.
10. The far-infrared water boiling system for health preservation according to claim 8, characterized in that: The water boiling tank is also provided with a temperature detection sensor, which is electrically connected to the controller; the water boiling tank is also provided with a water level detection sensor, which is electrically connected to the controller; A water storage temperature detection sensor is also provided in the water storage module, and the water storage temperature detection sensor is electrically connected to the controller; a water storage level detection sensor is also provided in the water storage module, and the water storage level detection sensor is electrically connected to the controller.