Hydroxyl sterilization device and massage pool
By using a hydroxyl disinfection device in the massage pool, hydroxyl ions generated by electrolysis are used to destroy microbial cells, thus solving the risks of bacterial contamination and chemical disinfection in the massage pool and achieving efficient and safe water purification.
Patent Information
- Application Number
- CN202423008739.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-05
AI Technical Summary
Existing massage pools pose health risks from bacterial contamination and chemical disinfectants during use, and ozone disinfection is difficult to control precisely, affecting users' health and leisure experience.
The device employs a hydroxyl-based sterilization mechanism. Through contact between the positive and negative electrodes and water, a power source is used to decompose hydrogen and oxygen ions to generate hydroxyl ions, which destroy the cell structure of microorganisms, thus achieving highly efficient sterilization and deodorization.
It achieves a non-toxic, environmentally friendly, and highly efficient sterilization effect, removing odors and colors from water, ensuring water safety, with low power consumption and no chemical residue.
Smart Images

Figure CN223496266U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of massage pool technology, and in particular to a hydroxyl sterilization device and a massage pool. Background Technology
[0002] In the fast-paced and high-pressure work environment of modern cities, people increasingly need diverse leisure activities to enrich their lives. Compared with traditional swimming pools, bathtubs with massage functions are popular among consumers because they provide both massage and relaxation, allowing consumers to experience better physical and mental relief while bathing.
[0003] However, since users are in direct contact with the water while enjoying a jacuzzi, bacteria and other impurities in the water can contaminate it, potentially threatening their health and affecting their relaxation experience. While chemical disinfectants are common, their irritating odors and potential overuse or improper handling can cause harm. Ozone disinfection, though effective, requires extremely precise control of its concentration; too low a concentration will not achieve disinfection, while too high a concentration may have adverse effects on human health. Utility Model Content
[0004] The purpose of this invention is to solve the problem of how to effectively sterilize a massage pool without producing harmful chemical residues. This invention provides a hydroxyl-based sterilization device and a massage pool that can effectively sterilize without producing harmful chemical residues, while also removing odors and discoloration from the water, making the water clearer and cleaner.
[0005] To address the aforementioned technical problems, this utility model discloses a hydroxyl sterilization device for use in a massage pool, the hydroxyl sterilization device comprising:
[0006] The housing has a receiving cavity;
[0007] A hydroxyl module is located in the receiving cavity, and the hydroxyl module includes a positive electrode and a negative electrode for contacting water.
[0008] A power supply device, wherein the positive electrode and the negative electrode are electrically connected to the power supply device, and the power supply device is used to supply power to the hydroxyl module.
[0009] Using the above technical solution, the shell is provided with a receiving cavity, and the hydroxyl module is located in the receiving cavity to prevent the influence of the external environment on the hydroxyl module, such as dust entering and affecting the operation of the hydroxyl module. The hydroxyl module includes a positive electrode and a negative electrode, which are in contact with water and electrically connected to a power supply device. The power supply device supplies power to the hydroxyl module. Water is conductive, and the positive and negative electrodes located in the water are simultaneously conducting, thereby decomposing hydrogen ions and oxygen ions in the water into hydroxyl ions.
[0010] These hydroxyl ions have strong oxidizing properties, which can destroy the cell walls and cell membranes of microorganisms. They can rapidly decompose the enzymes, RNA (ribonucleic acid), lysozyme and other substances contained in bacteria, fungi and viruses. By attacking the double membrane of the bacterial outer wall, they can trigger a lethal lipid peroxidation reaction, thereby achieving the effects of rapid sterilization, disinfection, removal of pollutants and deodorization, and ensuring water quality safety.
[0011] The hydroxyl radical disinfection device can be placed directly inside the massage pool or installed on its water pipes. The hydroxyl radicals it generates diffuse into the pool with the water flow, disinfecting, sterilizing, and deodorizing the water. The concentration of hydroxyl radicals is controllable, resulting in excellent sterilization effects that are non-toxic, healthy, and environmentally friendly. Compared to existing technologies that use chlorine and ozone for disinfection in massage pools, hydroxyl disinfection is not only highly efficient in sterilization and energy-saving, but it also leaves no harmful chemical residues. Furthermore, it removes odors and discoloration from the water, resulting in clearer and cleaner water.
[0012] According to another specific embodiment of the present invention, an embodiment of the present invention discloses a hydroxyl sterilization device, wherein the power supply device is disposed in the receiving cavity.
[0013] Using the above technical solution, the power supply device can be placed inside the cavity, for example, a lithium battery can be selected, which has a compact structure and high safety.
[0014] According to another specific embodiment of the present invention, an embodiment of the present invention discloses a hydroxyl sterilization device, wherein the hydroxyl module includes a wire, the housing is provided with a through hole, the wire extends out of the through hole and is connected to the power supply device.
[0015] Using the above technical solution, the power supply device can also be externally mounted. The hydroxyl module extends out of the housing and connects to the power supply device, thereby enabling the power supply device to supply power to the hydroxyl module.
[0016] According to another specific embodiment of the present invention, an embodiment of the present invention discloses a hydroxyl sterilization device, wherein the hydroxyl module further includes a control board, the control board being located in the receiving cavity and electrically connected to the positive electrode and the negative electrode.
[0017] By adopting the above technical solution, a control board is set up and electrically connected to the positive and negative electrode plates. The control board can then perform circuit control on the hydroxyl module, stabilize the circuit, prevent excessive current or voltage, and avoid damage to the hydroxyl module.
[0018] According to another specific embodiment of the present invention, an embodiment of the present invention discloses a hydroxyl sterilization device, wherein the positive electrode and the negative electrode are arranged alternately, the positive electrode includes a plurality of positive electrodes arranged alternately, the plurality of positive electrodes include a plurality of negative electrodes arranged alternately.
[0019] By adopting the above technical solution and setting multiple positive and negative electrode plates, the sterilization and disinfection efficiency of the hydroxyl module can be accelerated.
[0020] This utility model also discloses a massage pool, comprising:
[0021] A water tank body, the water tank body including a water-containing cavity;
[0022] In any one of the above embodiments, the hydroxyl sterilization device has the housing located inside the water-containing cavity, and the positive electrode and the negative electrode are in contact with the water inside the water-containing cavity.
[0023] Using the above technical solution, the hydroxyl disinfection device is placed inside the water-containing cavity of the water tank. The positive and negative electrodes are in contact with the water and electrically connected to a power supply. The power supply provides power to the hydroxyl module. Water is conductive, and the positive and negative electrodes in the water are simultaneously conducting, thereby decomposing hydrogen and oxygen ions in the water into hydroxyl ions. These hydroxyl ions have strong oxidizing properties, capable of destroying the cell walls and cell membranes of microorganisms. They can rapidly decompose enzymes, RNA (ribonucleic acid), lysozyme, and other substances contained in bacteria, fungi, and viruses. By attacking the double membrane of the bacterial outer wall, they trigger a lethal lipid peroxidation reaction, thereby achieving rapid sterilization, disinfection, removal of pollutants, and deodorization, ensuring the safety of the water quality in the water tank.
[0024] According to another specific embodiment of the present invention, a massage pool is disclosed, wherein the pool body is equipped with a water quality detection sensor.
[0025] Using the above technical solution, the water quality detection sensor can detect the water quality in the pool and determine whether it is in a clean or turbid state, thereby controlling the hydroxyl sterilization device to be in a closed or open state, flexibly and selectively sterilizing and disinfecting the pool, saving electricity and controlling costs.
[0026] This utility model also discloses a massage pool, comprising:
[0027] A water tank body, wherein the water tank body is provided with a water pipe interface;
[0028] A water pipe, connected to the water pipe interface, the water pipe having an installation groove;
[0029] In any one of the above embodiments, the hydroxyl sterilization device has the housing connected to the mounting groove, and the positive electrode and the negative electrode are located inside the water pipe and in contact with the water inside the water pipe.
[0030] Using the above technical solution, the hydroxyl disinfection device is installed in the mounting groove of the water pipe. The positive and negative electrodes are in contact with the water and electrically connected to the power supply. The power supply provides power to the hydroxyl module. Water is conductive, and the positive and negative electrodes in the water are simultaneously conducting, thereby decomposing hydrogen and oxygen ions in the water into hydroxyl ions. These hydroxyl ions have strong oxidizing properties, which can destroy the cell walls and cell membranes of microorganisms. They can rapidly decompose enzymes, RNA (ribonucleic acid), lysozyme, and other substances contained in bacteria, fungi, and viruses. By attacking the double membrane of the bacterial outer wall, they trigger a lethal lipid peroxidation reaction, thereby achieving rapid sterilization, disinfection, removal of pollutants, and deodorization, ensuring the safety of the water quality in the water pipe, and thus ensuring the safety of the water quality in the pool.
[0031] According to another specific embodiment of the present invention, a massage pool is disclosed, wherein the water pipe is equipped with a water quality detection sensor.
[0032] Using the above technical solution, the water quality detection sensor can detect the water quality in the water pipe and determine whether it is in a clean or turbid state, thereby controlling the hydroxyl sterilization device to be in a closed or open state, flexibly and selectively sterilizing and disinfecting the water in the water pipe, saving electricity and controlling costs. Attached Figure Description
[0033] Figure 1 This invention illustrates a three-dimensional view of the massage pool provided in an embodiment of the present invention. Figure 1 ;
[0034] Figure 2 This invention illustrates a three-dimensional view of the massage pool provided in an embodiment of the present invention. Figure 2 The upper part of the controller is not shown.
[0035] Figure 3 A perspective view of the hydroxyl sterilization device and water pipe provided in an embodiment of the present invention is shown, wherein the hydroxyl sterilization device is of the first type;
[0036] Figure 4 The diagram shows a cross-sectional view of the hydroxyl sterilization device and water pipe provided in an embodiment of the present invention, wherein the hydroxyl sterilization device is of the first type.
[0037] Figure 5 The diagram shows a top view of the hydroxyl sterilization device and water pipe provided in an embodiment of the present invention, wherein the hydroxyl sterilization device is of the first type.
[0038] Figure 6 A perspective view of a second form of the hydroxyl sterilization device provided in an embodiment of the present invention is shown, wherein the power supply device is selected as a built-in power supply;
[0039] Figure 7 A top view of a second form of the hydroxyl sterilization device provided in an embodiment of the present invention is shown, wherein the power supply device is selected as a built-in power supply;
[0040] Figure 8 A side view of a second form of the hydroxyl sterilization device provided in an embodiment of the present invention is shown, wherein the power supply device is selected as an external power supply;
[0041] Figure 9A This diagram shows a flowchart of one of the sterilization control methods provided in an embodiment of the present invention;
[0042] Figure 9B This diagram shows a flowchart of another sterilization control method provided by an embodiment of the present invention;
[0043] Figure 10 A block diagram of an electronic device provided in an embodiment of the present invention is shown;
[0044] Figure 11 A block diagram of a system-on-a-chip (SoC) provided in an embodiment of the present invention is shown. Detailed Implementation
[0045] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. Although the description of this utility model will be presented in conjunction with preferred embodiments, this does not mean that the features of this utility model are limited to this embodiment. On the contrary, the purpose of describing the utility model in conjunction with the embodiments is to cover other options or modifications that may be derived based on the claims of this utility model. To provide a deep understanding of this utility model, many specific details will be included in the following description. This utility model may also be implemented without using these details. Furthermore, to avoid confusion or obscuring the focus of this utility model, some specific details will be omitted in the description. It should be noted that, without conflict, the embodiments and features in the embodiments of this utility model can be combined with each other.
[0046] It should be noted that in this specification, similar reference numerals and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0047] In the description of this embodiment, it should be noted that the terms "upper", "lower", "inner", "bottom", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship that the utility model product is usually placed in during use. They are only for the convenience of describing the utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the utility model.
[0048] The terms “first”, “second”, etc., are used only to distinguish descriptions and should not be interpreted as indicating or implying relative importance.
[0049] In the description of this embodiment, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set up," "connected," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this embodiment based on the specific circumstances.
[0050] To make the objectives, technical solutions, and advantages of this utility model clearer, the embodiments of this utility model will be described in further detail below with reference to the accompanying drawings.
[0051] refer to Figures 1 to 3 This application provides a massage pool, which can be inflatable or non-inflatable. The massage pool includes: a pool body 100, a control box 200, a water pipe 300, and a hydroxyl sterilization device 400 as described in any of the following embodiments. The pool body 100 includes a water receiving cavity 101. Figure 1 The water receiving cavity 101 shown in the figure has a quadrilateral shape, but this application does not limit the shape of the water receiving cavity 101. For example, in some possible embodiments, the water receiving cavity 101 may be circular, pentagonal, hexagonal, octagonal, etc.
[0052] For example, the side wall of the pool body 100 is provided with a water pipe interface (not shown in the figure), including an inlet water pipe interface and an outlet water pipe interface. Part of the water pipe 300 is located inside the control box 200, and another part extends out of the control box 200 and connects to the water pipe interface. The water pipe 300 includes an inlet pipe 301 and an outlet pipe 302. The inlet pipe 301 is connected to the inlet water interface, and the outlet pipe 302 is connected to the outlet water interface. The inlet pipe 301 located inside the control box 200 has a mounting groove 304 (…). Figure 4 visible).
[0053] For example, refer to Figure 2 and Figure 4 A water quality sensor 500 is installed on the water inlet pipe 301. The water quality sensor 500 can detect the water quality in the water inlet pipe 301 and determine whether it is in a clean or turbid state. This allows the hydroxyl sterilization device 400 to be turned off or on, flexibly and selectively sterilizing and disinfecting the water in the water inlet pipe 301, that is, sterilizing and disinfecting the water entering the water tank 100, saving electricity and controlling costs.
[0054] For example, the water quality sensor 500 includes sensing elements for specific parameters (such as, but not limited to, pH, dissolved oxygen, conductivity, turbidity, total dissolved solids, ammonia nitrogen, nitrate, phosphate, heavy metal ions, etc.). These elements can be chemical, optical, electrochemical, or other types, and they respond to changes in specific components or properties of the water.
[0055] The water quality sensor 500 comes into contact with the water in the inlet pipe 301. Its internal sensing element detects target parameters in the water within the pipe and converts them into electrical signals. These signals are then amplified, filtered, and processed before the detection result is output. The processed signal is sent to a data logger or display instrument to display the result digitally. By analyzing the results, the water quality can be assessed and monitored to determine whether it is clean or turbid.
[0056] For example, refer to Figures 3 to 5 The hydroxyl sterilization device 400 includes: a housing 401, a hydroxyl module 402, and a power supply device (not shown). The housing 401 is provided with a receiving cavity 405. The hydroxyl module 402 is located in the receiving cavity 405. The hydroxyl module 402 includes a positive electrode 403 and a negative electrode 404, which are used to contact water. The positive electrode 403 and the negative electrode 404 are electrically connected to the power supply device, which is used to supply power to the hydroxyl module 402.
[0057] Using the above technical solution, the housing 401 is provided with a receiving cavity 405, and the hydroxyl module 402 is located in the receiving cavity 405 to prevent the influence of the external environment on the hydroxyl module 402, such as dust affecting the operation of the hydroxyl module 402. The hydroxyl module 402 includes a positive electrode 403 and a negative electrode 404. The positive electrode 403 and the negative electrode 404 are in contact with water and are electrically connected to a power supply device. The power supply device supplies power to the hydroxyl module 402. Water is conductive, and the positive electrode 403 and the negative electrode 404 located in the water are connected, thereby decomposing hydrogen ions and oxygen ions in the water into hydroxyl ions.
[0058] These hydroxyl ions have strong oxidizing properties, which can destroy the cell walls and cell membranes of microorganisms. They can rapidly decompose the enzymes, RNA (ribonucleic acid), lysozyme and other substances contained in bacteria, fungi and viruses. By attacking the double membrane of the bacterial outer wall, they can trigger a lethal lipid peroxidation reaction, thereby achieving the effects of rapid sterilization, disinfection, removal of pollutants and deodorization, and ensuring water quality safety.
[0059] The hydroxyl radicals generated by the hydroxyl disinfection device 400 diffuse into the water container 101 with the water flow, sterilizing, disinfecting, and deodorizing the water within the container 101. The concentration of hydroxyl radicals is controllable, resulting in excellent sterilization effects that are non-toxic, healthy, and environmentally friendly. Compared to existing technologies that use chlorine and ozone for disinfection in massage pools, hydroxyl disinfection is not only highly efficient in sterilization and energy-saving with low power consumption, but it also does not produce harmful chemical residues. Furthermore, it removes odors and colors from the water, making the water clearer and cleaner.
[0060] in, Figure 3 and Figure 4 The shape of housing 401 shown is quadrilateral, but this application does not limit the shape of housing 401. For example, in some possible embodiments, housing 401 may be circular, pentagonal, hexagonal, octagonal, etc.
[0061] For example, refer to Figure 3 and Figure 4 The housing 401 includes an upper housing 4011 and a lower housing 4012, but is not limited thereto; it can also be a one-piece molded housing 401. The upper housing 4011 includes an upper receiving cavity 4051, and the lower housing 4012 includes a lower receiving cavity 4052, along the radial direction (i.e., Figure 3 (As shown in the X direction), the upper shell 4011 is located above the lower shell 4012. The upper shell 4011 is located outside the water inlet pipe 301. Part of the lower receiving cavity 4052 is located inside the water inlet pipe 301. The positive electrode 403 and the negative electrode 404 are located inside the lower receiving cavity 4052, so that the positive electrode 403 and the negative electrode 404 are located inside the water inlet pipe 301 and are in contact with the water inside the water inlet pipe 301.
[0062] For example, the upper shell 4011 and the lower shell 4012 are threaded together, but this is not limited to this; other connection methods such as welding and plugging can also be used. Specifically, the outer periphery of the upper shell 4011 is provided with six first threaded holes 406, and the outer periphery of the lower shell 4012 is also provided with six second threaded holes 407 corresponding to the six first threaded holes 406. Six bolts 410 pass through the six first threaded holes 406 and the six second threaded holes 407 respectively, so that the upper shell 4011 and the lower shell 4012 are threaded together.
[0063] It should be noted that the specific number of the first threaded hole 406 and the second threaded hole 407 in the embodiments of this application is not limited, and can also be four, eight, thirteen, etc.
[0064] For example, the lower shell 4012 is provided with an annular groove 408, and a sealing ring 409 is provided in the annular groove 408 to make the upper shell 4011 and the lower shell 4012 sealed together.
[0065] For example, the hydroxyl module 402 also includes a control board 501, which is located in the upper receiving cavity 4051 and electrically connected to the positive electrode 403 and the negative electrode 404. Thus, the control board 501 can perform circuit control on the hydroxyl module 402, stabilize the circuit, prevent excessive current or voltage, and avoid damage to the hydroxyl module 402.
[0066] For example, the lower shell 4012 covers the water inlet pipe 301 so that the lower receiving cavity 4052 is connected to the mounting groove 304.
[0067] For example, the positive electrode 403 and the negative electrode 404 are along the axial direction (i.e. Figure 5 The positive electrode 403 is arranged at intervals (as shown in the Y direction), and includes multiple positive electrode 403s, which are arranged along the axial direction (i.e., Figure 5 The Y-direction shown is spaced apart and arranged radially (i.e., Figure 4 It extends in the X direction (as shown) so that it extends into the mounting groove 304 and comes into contact with the water therein.
[0068] For example, the negative electrode 404 includes a plurality of negative electrode sheets 404 along the axial direction (i.e., Figure 5 The Y-direction shown is spaced apart and arranged radially (i.e., Figure 4 The electrode extends in the X direction (as shown) to penetrate into the mounting groove 304 and contact the water therein, thereby accelerating the sterilization efficiency of the hydroxyl module 402. This application embodiment does not limit the specific number of positive electrode 403 and negative electrode 404; they can be one, two, three, etc.
[0069] For example, multiple positive electrode plates 403 are arranged along the axial direction (i.e. Figure 5The plurality of negative electrode plates 404 extend along the axial direction (i.e., the Y direction shown) to contact the first conductive plate 503, and extend along the axial direction (i.e., the Y direction shown) to contact the first conductive plate 503. Figure 5 Extending in the Y direction (as shown) to contact the second conductive plate 504, thereby connecting multiple positive electrode plates 403 and multiple negative electrode plates 404 in series.
[0070] For example, the hydroxyl module 402 includes a wire 502, and the housing 401 has a through hole. The wire 502 extends out of the through hole and is connected to a power supply device. The power supply device can also be external, with the hydroxyl module 402 extending out of the housing 401 via the wire 502 and connected to the power supply device, thereby enabling the power supply device to supply power to the hydroxyl module 402.
[0071] In other possible implementations, the power supply is located within the receiving cavity 405. For example, the power supply can be a lithium battery, which is compact and highly safe.
[0072] This application embodiment also provides a massage pool, which can be inflatable or non-inflatable. The massage pool includes a pool body 100 and a hydroxyl sterilization device 400. The pool body 100 includes a water receiving cavity 101. Figure 1 The water receiving cavity 101 shown in the figure has a quadrilateral shape, but this application does not limit the shape of the water receiving cavity 101. For example, in some possible embodiments, the water receiving cavity 101 may be circular, pentagonal, hexagonal, octagonal, etc.
[0073] For example, refer to Figures 6 to 8 The hydroxyl sterilization device 400 includes: a housing 401, a hydroxyl module 402, and a power supply device. The housing 401 is provided with a receiving cavity 405. The hydroxyl module 402 is located in the receiving cavity 405. The hydroxyl module 402 includes a positive electrode 403 and a negative electrode 404, which are used to contact water. The positive electrode 403 and the negative electrode 404 are electrically connected to the power supply device, which is used to supply power to the hydroxyl module 402.
[0074] Using the above technical solution, the housing 401 is provided with a receiving cavity 405, and the hydroxyl module 402 is located in the receiving cavity 405 to prevent the influence of the external environment on the hydroxyl module 402, such as dust affecting the operation of the hydroxyl module 402. The hydroxyl module 402 includes a positive electrode 403 and a negative electrode 404. The positive electrode 403 and the negative electrode 404 are in contact with water and are electrically connected to a power supply device. The power supply device supplies power to the hydroxyl module 402. Water is conductive, and the positive electrode 403 and the negative electrode 404 located in the water are connected, thereby decomposing hydrogen ions and oxygen ions in the water into hydroxyl ions.
[0075] These hydroxyl ions have strong oxidizing properties, which can destroy the cell walls and cell membranes of microorganisms. They can rapidly decompose the enzymes, RNA (ribonucleic acid), lysozyme and other substances contained in bacteria, fungi and viruses. By attacking the double membrane of the bacterial outer wall, they can trigger a lethal lipid peroxidation reaction, thereby achieving the effects of rapid sterilization, disinfection, removal of pollutants and deodorization, and ensuring water quality safety.
[0076] Compared to existing technologies such as chlorine disinfection and ozone disinfection, hydroxyl disinfection is not only highly effective in killing bacteria and energy-efficient, but also does not produce harmful chemical residues. At the same time, it can remove odors and colors from the water, making the water clearer and cleaner.
[0077] in, Figure 6 The shape of housing 401 shown is quadrilateral, but this application does not limit the shape of housing 401. For example, in some possible embodiments, housing 401 may be circular, pentagonal, hexagonal, octagonal, etc.
[0078] For example, the hydroxyl sterilization device 400 is located in the water receiving cavity 101, and the positive electrode 403 and negative electrode 404 of the hydroxyl sterilization device 400 are in contact with the water in the water receiving cavity 101.
[0079] For example, the water tank 100 is equipped with a water quality detection sensor (not shown in the figure). The water quality detection sensor can detect the water quality in the water tank 100 (i.e., the water quality in the water receiving cavity 101) and determine whether it is in a clean or turbid state. This allows the hydroxyl sterilization device 400 to be turned off or on, flexibly and selectively sterilizing and disinfecting the water in the water tank 100 (i.e., the water in the water receiving cavity 101), saving electricity and controlling costs.
[0080] refer to Figure 9A and combined Figure 2 The present invention also discloses a sterilization control method applied to a water tank circulation system. The water tank circulation system includes a water tank body 100 and a hydroxyl sterilization device 400. The water tank body 100 includes a water receiving cavity 101, and the hydroxyl sterilization device 400 is located within the water receiving cavity 101. The water tank body 100 is equipped with a water quality detection sensor (not shown in the figure). The sterilization control method includes:
[0081] The water quality sensor detects the water quality in the water container 101; if it determines that the water quality in the water container 101 is clean, the hydroxyl sterilization device 400 is turned off; if it determines that the water quality in the water container 101 is turbid, the hydroxyl sterilization device 400 is turned on.
[0082] refer to Figure 9B and combined Figure 2 and Figure 4The present invention also discloses a sterilization control method applied to a water tank circulation system. The water tank circulation system includes: a water tank body 100, a water pipe 300, and a hydroxyl sterilization device 400. The water tank body 100 is provided with a water pipe interface, and the water pipe 300 is connected to the water pipe interface. The water pipe 300 has an installation groove 304, and the hydroxyl sterilization device 400 is disposed in the installation groove 304. The water pipe 300 is provided with a water quality detection sensor 500. The sterilization control method includes: the water quality detection sensor detecting the water quality in the water pipe 300; determining that the water quality in the water pipe 300 is in a clean state, turning off the hydroxyl sterilization device 400; determining that the water quality in the water pipe 300 is in a turbid state, turning on the hydroxyl sterilization device 400.
[0083] In addition, this utility model also provides a computer storage medium, including a memory and a processor, wherein the memory is adapted to store computer instructions, and the processor is adapted to execute the sterilization control method described in any of the above embodiments when running the computer instructions.
[0084] Now for reference Figure 10 , Figure 10 The diagram illustrates a block diagram of an electronic device 600 according to one embodiment of this application. The electronic device 600 is, for example, a smart mobile terminal. The electronic device 600 may include one or more processors 601 coupled to a controller hub 603. In at least one embodiment, the controller hub 603 communicates with the processor 601 via a multi-branch bus such as a Front Side Bus (FSB), a point-to-point interface such as a Quick Path Interconnect (QPI), or a similar connection. The processor 601 executes instructions controlling general-type data processing operations.
[0085] In one embodiment, the controller hub 603 includes, but is not limited to, a graphics and memory controller hub (GMCH) (not shown) and an input / output hub (IOH) (which may be on a separate chip) (not shown), wherein the GMCH includes memory and a graphics controller and is coupled to the IOH.
[0086] Electronic device 600 may also include a coprocessor 602 and a memory 604 coupled to a controller hub 603. Alternatively, one or both of the memory and GMCH may be integrated within the processor, with memory 604 and coprocessor 602 directly coupled to processor 601 and controller hub 603, which is located on a single chip with IOH.
[0087] Memory 604 may be, for example, dynamic random access memory (DRAM), phase change memory (PCM), or a combination of both. Memory 604 may include one or more tangible, non-transitory computer-readable media for storing data and / or instructions.
[0088] A computer-readable storage medium stores instructions, specifically, temporary and permanent copies of those instructions. The instructions may include, when executed by at least one processor, causing the electronic device 600 to perform actions such as... Figure 9A and Figure 9B The instructions for the sterilization control method are shown. When the instructions are executed on a computer, the computer performs the sterilization control method disclosed in any of the above embodiments or combinations thereof to sterilize and disinfect water in a pool or pipe.
[0089] In one embodiment, the coprocessor 602 is a dedicated processor, such as, for example, a high-throughput MIC (Many Integrated Core) processor, a network or communication processor, a compression engine, a graphics processor, a GPGPU (General-purpose Computing on Graphics Processing Units), or an embedded processor, etc. Optional properties of the coprocessor 602 are indicated by dashed lines. Figure 10 middle.
[0090] In one embodiment, electronic device 600 may further include a network interface 606 (NIC, Network Interface Controller). Network interface 606 may include a transceiver for providing a radio interface for electronic device 600 to communicate with any other suitable device (such as a front-end module, antenna, etc.). In various embodiments, network interface 606 may be integrated with other components of electronic device 600. Network interface 606 can implement the functions of the communication unit in the above embodiments.
[0091] Electronic device 600 may further include input / output device 605 (I / O). I / O 605 may include: a user interface designed to enable a user to interact with electronic device 600; a peripheral component interface designed to enable peripheral components to also interact with electronic device 600; and / or sensors designed to determine environmental conditions and / or location information related to electronic device 600.
[0092] It is worth noting that, Figure 10 This is merely an example. That is, although... Figure 10 The electronic device 600 shown includes multiple devices such as a processor 601, a controller hub 603, and a memory 604. However, in practical applications, devices using the methods of this application may include only a portion of the devices in the electronic device 600. For example, it may include only the processor 601 and the network interface 606. Figure 10 The properties of the optional devices are shown by dashed lines.
[0093] Now for reference Figure 11 , Figure 11 The diagram shown is a block diagram of a SoC 700 (System on Chip) according to an embodiment of this application. Figure 11 In the diagram, similar components share the same reference numerals. Additionally, dashed boxes are an optional feature for more advanced SoCs. Figure 11 In this SoC, the SoC includes: an interconnect unit 750 coupled to a processor 710; a system proxy unit 780; a bus controller unit 790; an integrated memory controller unit 740; a group or one or more coprocessors 720, which may include integrated graphics logic, an image processor, an audio processor, and a video processor; a static random-access memory (SRAM) unit 730; and a direct memory access (DMA) unit 760. In one embodiment, the coprocessor 720 includes a dedicated processor, such as, for example, a network or communication processor, a compression engine, a GPGPU (General-purpose Computing on Graphics Processing Units), a high-throughput MIC processor, or an embedded processor.
[0094] Static Random Access Memory (SRAM) cell 730 may include one or more tangible, non-transitory computer-readable media for storing data and / or instructions. The computer-readable storage medium stores instructions, specifically, temporary and permanent copies of those instructions. These instructions may include, when executed by at least one of the processors, causing the SoC implementation to... Figure 9A or Figure 9B The instructions for the sterilization control method are shown. When the instructions are executed on a computer, the computer performs the method disclosed in the above embodiments.
[0095] This application also provides a computer program product for implementing the control methods provided in the above embodiments.
[0096] Various embodiments of the mechanisms disclosed in this application can be implemented in hardware, software, firmware, or combinations of these implementation methods. Embodiments of this application can be implemented as computer program modules or module code executable on a programmable system, the programmable system including at least one processor, a storage system (including volatile and non-volatile memory and / or storage elements), at least one input device, and at least one output device.
[0097] Computer program modules or module code can be applied to input instructions to perform the functions described in this application and generate output information. The output information can be applied to one or more output devices in a known manner. For the purposes of this application, the processing system includes any system having a processor such as, for example, a Digital Signal Processor (DSP), a microcontroller, an Application Specific Integrated Circuit (ASIC), or a microprocessor.
[0098] Module code can be implemented using a high-level modular language or an object-oriented programming language to communicate with the processing system. Assembly language or machine language can also be used to implement module code when needed. In fact, the mechanisms described in this application are not limited to any particular programming language. In either case, the language can be a compiled language or an interpreted language.
[0099] In some cases, the disclosed embodiments may be implemented in hardware, firmware, software, or any combination thereof. The disclosed embodiments may also be implemented as instructions carried or stored thereon on one or more temporary or non-temporary machine-readable (e.g., computer-readable) storage media, which may be read and executed by one or more processors. For example, the instructions may be distributed via a network or through other computer-readable media. Therefore, machine-readable media may include any mechanism for storing or transmitting information in a machine-readable (e.g., computer-readable) form, including but not limited to floppy disks, optical disks, optical discs, magneto-optical disks, read-only memory (ROM), random access memory (RAM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), magnetic cards or optical cards, flash memory, or tangible machine-readable storage for transmitting information (e.g., carrier waves, infrared signals, digital signals, etc.) using the Internet in the form of electrical, optical, acoustic, or other forms of propagated signals. Therefore, machine-readable media include any type of machine-readable medium suitable for storing or transmitting electronic instructions or information in a machine-readable (e.g., computer-readable) form.
[0100] Although the present invention has been illustrated and described with reference to certain preferred embodiments, those skilled in the art should understand that the above description is a further detailed explanation of the present invention in conjunction with specific embodiments, and should not be construed as limiting the specific implementation of the present invention to these descriptions. Those skilled in the art can make various changes in form and detail, including some simple deductions or substitutions, without departing from the spirit and scope of the present invention.
Claims
1. A hydroxyl-based sterilization device, characterized in that, For use in a massage pool, the hydroxyl disinfection device includes: The housing has a receiving cavity; A hydroxyl module is located in the receiving cavity, and the hydroxyl module includes a positive electrode and a negative electrode for contacting water. A power supply device, wherein the positive electrode and the negative electrode are electrically connected to the power supply device, and the power supply device is used to supply power to the hydroxyl module.
2. The hydroxyl sterilization device as described in claim 1, characterized in that, The power supply device is located inside the receiving cavity.
3. The hydroxyl sterilization device as described in claim 1, characterized in that, The hydroxyl module includes a wire, the housing has a through hole, the wire extends out of the through hole and is connected to the power supply device.
4. The hydroxyl sterilization device as described in claim 1, characterized in that, The hydroxyl module also includes a control board located in the receiving cavity and electrically connected to the positive electrode and the negative electrode.
5. The hydroxyl sterilization device as described in claim 1, characterized in that, The positive electrode and the negative electrode are arranged alternately. There are multiple positive electrode sheets, and the multiple positive electrode sheets are arranged alternately. There are multiple negative electrode sheets, and the multiple negative electrode sheets are arranged alternately.
6. A massage pool, characterized in that, include: A water tank body, the water tank body including a water-containing cavity; The hydroxyl sterilization device according to any one of claims 1-5, wherein the housing is located within the water-containing cavity, and the positive electrode and the negative electrode are in contact with the water within the water-containing cavity.
7. The massage pool as described in claim 6, characterized in that, The pool is equipped with a water quality detection sensor.
8. A massage pool, characterized in that, include: A water tank body, wherein the water tank body is provided with a water pipe interface; A water pipe, connected to the water pipe interface, the water pipe having an installation groove; The hydroxyl sterilization device according to any one of claims 1-5, wherein the housing is connected to the mounting groove, and the positive electrode and the negative electrode are located inside the water pipe and are in contact with the water inside the water pipe.
9. The massage pool as described in claim 8, characterized in that, The water pipe is equipped with a water quality detection sensor.
Citation Information
Cited By
Hydroxyl sterilization device, massage pool and sterilization control method
CN119330470A