Water line conditioning system

By designing a water pipeline regulation system, using diversion components and intelligent modules to detect water temperature, and switching the outlet or return water path, the problem of poor user experience and water waste caused by traditional hot water output methods is solved, and the effect of instant hot water supply is achieved.

CN223580036UActive Publication Date: 2025-11-21SHENZHEN GUANZHI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202423306408.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2025-11-21
Estimated Expiration
2034-12-27

AI Technical Summary

Technical Problem

Traditional hot water output methods result in a poor user experience and waste water resources, as users have to wait for cold and warm water before hot water can be output.

Method used

Design a water pipeline regulation system, including a water supply end, a configuration group and multiple switching groups. Utilizing diversion components, intelligent modules and valve structures, the system detects water temperature and switches the outlet or return water path to ensure that the water source reaches the preset temperature before output.

Benefits of technology

It reduces water waste, improves user experience, enables instant hot water supply, and saves energy.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223580036U_ABST
    Figure CN223580036U_ABST
Patent Text Reader

Abstract

The utility model discloses a water pipeline adjusting system, it includes water supply end, configuration group and a plurality of switching group, water supply end with water supply source, configuration group connects water supply end to access water source, and configuration group includes two pipelines and drainage member, and the drainage member is installed on one pipeline to pump water source, a plurality of switching groups all have water outlet path and backwater path, and a plurality of switching groups are connected with configuration group respectively to be used to select one pipeline delivery water source, when having the water source of need preset temperature, then control its switching group and configuration group, adjust water source through the pipeline of taking drainage member and enter backwater path, carry out backflow to the water source that has not reached preset temperature, until the water supply end output is the water source that reaches preset temperature, control switching group again, to adjust water source to enter water outlet path, reduce water resource waste's simultaneously, ensure the stability, distribution of water resource, and through preheating water source, realize the function that open and get already reached preset temperature water, to improve user experience.
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Description

Technical Field

[0001] This utility model relates to the field of water resource allocation technology, and in particular to a water pipeline regulation system. Background Technology

[0002] As people's living standards improve, their pace of life accelerates, and they pursue a healthier lifestyle, their demands for instant hot water are gradually increasing. The traditional hot water output method first outputs cold water and warm water before finally outputting the hot water that the user wants. This method affects the user experience and also wastes water resources. Utility Model Content

[0003] The purpose of this utility model is to address the technical problems existing in the background art by proposing a water pipeline regulation system.

[0004] To achieve the above-mentioned technical objectives, the technical solution adopted by this utility model in the first aspect is as follows:

[0005] A water pipeline regulation system includes a water supply end, a configuration group, and multiple switching groups. The water supply end supplies a water source, including water at a preset temperature. The configuration group is connected to the water supply end to access the water source. The configuration group includes two pipelines and a diverter, with the diverter installed on one of the pipelines to pump water. Each of the multiple switching groups is connected to an outlet path and a return path. The multiple switching groups are respectively connected to the configuration group to select a pipeline to transport water and connect to the water source to deliver it to the outlet path or the return path. The outlet path is used to output water at a preset temperature for user use, and the return path is used to return the water source.

[0006] Preferably, the drainage component includes a water pump.

[0007] Preferably, the configuration group further includes a first guide member installed at the junction of the two pipelines.

[0008] Preferably, each of the multiple switching groups is also connected to a water diversion path, which is connected to the first diversion component.

[0009] Preferably, the water pipeline regulation system further includes a connecting pipe, one end of which is connected to the first diversion member, and the other end of which is connected to multiple water diversion paths.

[0010] Preferably, the switching group includes a second guide member, which is connected to the water intake path, the water outlet path, and the water return path respectively, wherein the water intake path is connected to the water outlet path or the water return path through the second guide member.

[0011] Preferably, the switching group includes an intelligent module, which is used to detect the water source in the water intake path and, based on the detection results, deliver the water source to the water outlet path or the water return path.

[0012] Preferably, the intelligent module further includes a control unit and a temperature sensor. The control unit is electrically connected to the temperature sensor and the second diversion component, respectively. The temperature sensor is used to detect the water source temperature of the water diversion path, and the control unit is used to receive the detection signal from the temperature sensor to control the second diversion component to switch the connection between the water diversion path and the water outlet path or the water return path.

[0013] Preferably, the control unit is electrically connected to both the diversion member and the first diversion member.

[0014] Preferably, both the first and second interdiction devices are valve structures.

[0015] Compared with the prior art, the utility model has the following beneficial technical effects: it includes a water supply end, a configuration group, and multiple switching groups. The water supply end supplies water; the configuration group is connected to the water supply end to access the water source, and includes two pipelines and a diversion component. The diversion component is installed on one of the pipelines to pump water; multiple switching groups are each connected to an outlet path and a return path. The multiple switching groups are respectively connected to the configuration group to select a pipeline to transport water and connect to the water source to deliver it to the outlet path or the return path. When the user needs water at a preset temperature, one of the switching groups and the configuration group are controlled to adjust the water source to flow through the pipeline with the diversion component and into the return path, returning water that has not reached the preset temperature until the water supply end outputs water at the preset temperature. Then, the switching group is controlled again to adjust the water source to enter the outlet path, thereby reducing water waste while ensuring stable water resource distribution and improving user experience. Attached Figure Description

[0016] Figure 1 This is a structural schematic diagram of Embodiment 1 of the present utility model.

[0017] Figure 2 This is a structural schematic diagram of Embodiment 2 of the present invention.

[0018] Figure 3 This is a schematic diagram of the structure of Embodiment 1 of this utility model applied to a shower device in a usage state 1;

[0019] Figure 4 This is a schematic diagram of the structure of Embodiment 1 of this utility model applied to a shower device in usage state 2;

[0020] Figure 5 This is a schematic diagram of the switching group in Embodiment 1 of this utility model;

[0021] Figure 6 This is a schematic diagram of the configuration group in Embodiment 2 of this utility model;

[0022] Figure 7 This is a schematic diagram of the structure of Embodiment 1 of this utility model applied to a washbasin in use;

[0023] Figure 8 for Figure 7 A schematic diagram of the first type of faucet used in the washbasin;

[0024] Figure 9 for Figure 7 A schematic diagram of the second type of faucet used in the washbasin.

[0025] Icon labels:

[0026] 100 water supply terminals

[0027] 200 Configuration group, 201 Piping, 202 Drainage component, 203 First diversion component, 204 Main control unit.

[0028] 300 Switching Group, 301 Intelligent Module, 3011 Second Transfer Component, 3012 Control Unit, 3013 Temperature Sensor

[0029] 400 water diversion path,

[0030] 500 water outlet path,

[0031] 600 return water path. Detailed Implementation

[0032] It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0033] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or assembly referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more features. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.

[0034] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a link, or a specific 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 connection within two groups. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0035] The specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0036] like Figure 1-9 As shown, this utility model proposes a water pipeline regulation system, which includes a water supply end 100, a configuration group 200 and multiple switching groups 300. The water supply end 100 supplies water source, wherein the water source includes water source that reaches a preset temperature.

[0037] Specifically, the water supply end 100 includes, but is not limited to, electric water heaters, storage water heaters, solar water heaters, and natural gas water heaters. Of course, the water supply end 100 is not limited to the water heater structures mentioned above. All of them have the function of providing cold water, hot water, and warm water in a heating state. The water supply end 100 can also be used as a connection structure to connect the water heater equipment mentioned above.

[0038] Configuration group 200 is connected to water supply terminal 100 to access water source. Configuration group 200 includes two parallel pipes 201 and a diverter 202. The diverter 202 is installed on one of the pipes 201 to pump water source. Multiple switching groups 300 are connected to water outlet path 500 and water return path 600 respectively. Multiple switching groups 300 are connected to configuration group 200 to select one pipe 201 to transport water source and connect to water source to deliver to water outlet path 500 or water return path 600. Water outlet path 500 is used to output water source that reaches preset temperature for user use, and water return path 600 is used for water source return.

[0039] In the specific implementation of Implementation 1: Based on user needs, multiple switching groups 300 are independently installed in various locations, such as bathrooms and kitchens. When water is needed, the water source is supplied from the water supply end 100, passing through one of its pipes 201, and entering the outlet path 500 of the corresponding switching group 300 for water supply. It should be noted that either pipe 201 can be used to select a water source. When hot water at a certain temperature is needed, the configuration group 200 switches to pipe 201 with a diversion component 202, and the water source is drawn through the diversion component 202. It should be noted that the water supply end 100 can use a hot water system equipped with a water pressure and flow sensing device. When the device senses an increase in water flow rate, it automatically heats the water. Therefore, the water pumped by the diversion component 202 is pre-heated. When the water enters the switching group 300, if the water temperature meets the requirements, it switches to the outlet path 500 for direct use. If the water temperature does not meet the requirements, it switches to the return path 600, returning the water to the water pipeline network. Once the water temperature reaches the required level, it switches back to the outlet path 500 for user use. This design is simple in structure and easy to operate. In this way, the device can minimize the waste of cold water and supply hot water promptly. This is very helpful in improving user experience and saving energy. It is worth noting again that when the diversion component 202 increases the water flow rate, it ensures that the water can stably enter the return path 500.

[0040] Furthermore, in this first embodiment, the diversion component 202 includes a water pump, which pumps water through various pipelines 201. Of course, the diversion component 202 is not limited to the structure of a water pump, but can also be a structure with functions of pumping, pressurizing and increasing liquid flow rate.

[0041] Furthermore, the configuration group 200 also includes a first guide member 203, which is installed at the junction of the two pipelines 201.

[0042] Specifically, the first guide member 203 can be located on one side connected to the water supply end 100 or on one side connected to the switching group 300, for switching the pipeline 201 through which the water source output from the water supply end 100 passes. The first guide member 203 is a valve structure, which is a three-way valve structure in this embodiment. Specifically, it can be a manual three-way valve or an automatic three-way valve. The manual three-way valve is a valve with a handle structure, while the automatic three-way valve can be a cylinder three-way valve, a hydraulic three-way valve, or a solenoid three-way valve, etc. In this embodiment, the first guide member 203 is preferably an automatic three-way valve, which has the ability to receive and execute electrical signal execution commands to automatically switch each pipeline 201.

[0043] Of course, a valve structure can also be added between the water supply end 100 and the configuration group 200. Specifically, a three-way valve is used. Its purpose is to switch the water source introduced by the water supply end 100 into the corresponding pipeline 201. In daily use, when no preheating operation is required, the three-way valve connects the water supply end 100 to the pipeline 201 without the diversion component 202. When preheating is required, the water supply end 100 is switched to connect to the pipeline 201 with the diversion component 202.

[0044] In Embodiment 2, the first guide member 203 can be multiple switch structures, which are respectively installed on the corresponding pipes 201. The first guide member 203 also includes an instruction module for controlling these switch structures. The instruction module is used to receive and execute instructions wirelessly or via wired to open or close the corresponding switch structures, so as to operate the corresponding pipes 201 to connect to the water supply terminal 100 and the switching group 300. It should be noted that only one pipe 201 can be connected here, and the other pipes 201 are closed.

[0045] Furthermore, each of the multiple switching groups 300 is also connected to a water intake path 400, which is connected to the first transfer member 203. The water pipeline regulation system also includes a connecting pipe 700, one end of which is connected to the first transfer member 203, and the other end of which is connected to the multiple water intake paths 400.

[0046] Specifically, the water diversion path 400 is a water diversion pipeline. In the above embodiment 1, the water diversion paths 400 of multiple switching groups 300 are respectively connected to the first transfer member 203. By executing the first transfer member 203, one of its pipelines 201 is connected to multiple water diversion paths 400.

[0047] Since the first transshipment component 203 adopts a three-way valve structure, and the current three-way valve structure itself is not designed to connect multiple water inlet pipes, it would be costly and difficult to mass-produce if a separate structure for connecting multiple water inlet pipes were developed for the three-way valve structure. Therefore, a connecting pipe 700 structure is introduced as the connection medium between multiple water inlet paths 400 and the first transshipment component 203. The connecting pipe 700 structure is common in the market and will not be described in detail here. The choice of connecting pipe 700 is related to the number of water inlet paths 400. If the connection channels of the connecting pipe 700 are limited and cannot support multiple water inlet paths 400, more connecting pipes 700 can be added to increase the connection channels. If there are too many subsequent switching groups 300, only more connecting pipes 700 structures need to be added, which is convenient for adding or reducing the number of settings.

[0048] Furthermore, the switching group 300 includes a second transfer member 3011, which is connected to the water intake path 400, the water outlet path 500 and the water return path 600 respectively. The water intake path 400 is connected to the water outlet path 500 or the water return path 600 through the second transfer member 3011.

[0049] The second ferry component 3011 adopts the same valve structure as the first ferry component 203. Of course, it can also be other water circuit switch and selection structures. The second ferry component 3011 adopts a three-way valve structure, which can be a manual three-way valve or an automatic three-way valve. The manual three-way valve is a valve with a handle structure, while the automatic three-way valve can be a cylinder three-way valve, a hydraulic three-way valve, or a solenoid three-way valve, etc.

[0050] Furthermore, the switching group 300 includes an intelligent module 301 electrically connected to the second diverter 3011. The intelligent module 301 is used to detect the water source of the water diversion path 400 and, based on the detection result, drive the second diverter 3011 to connect the water outlet path 500 or the water return path 600.

[0051] The intelligent module 301 also includes a control unit 3012 and a temperature sensor 3013. The control unit 3012 is electrically connected to the temperature sensor 3013 and the second guide member 3011 respectively. The temperature sensor 3013 is used to detect the water source temperature of the water diversion path 400. The control unit 3012 is used to receive the detection signal from the temperature sensor 3013 to control the second guide member 3011 to switch the connection between the water diversion path 400 and the water outlet path 500 or the water return path 600.

[0052] Specifically, to achieve intelligent operation of the preheating system, an intelligent module 301 is used to intelligently control the switching group 300. Here, a temperature sensor 3013 is used to detect the temperature of the water inlet path 400. It is important to note that the intelligent module 301 has an input terminal for user interaction; this input terminal can be a virtual button on a touchscreen or a physical button. When the user needs hot water at a preset temperature, the control unit 3012 receives the command and monitors the temperature of the water inlet path 400 in real time via the temperature sensor 3013. If the temperature has not yet met the user's needs, the control unit 3012 drives the second transfer member 3011 to continuously connect the water inlet path 400 with the return water... When path 600 is connected, water that has not reached the preset temperature is redirected back to the water pipe network. When the temperature reaches the user's required temperature, the control unit 3012 drives the second redirecting component 3011 to connect the water intake path 400 and the water outlet path 500. The user can then directly obtain the desired hot water from the water outlet path 500. Compared to the traditional method of discharging cold water or incompletely heated warm water for a period of time to obtain hot water, this effectively reduces the waste of cold water or incompletely heated warm water. The cold water or incompletely heated warm water is redirected back to the water pipe network, and the user can directly obtain hot water when the water temperature reaches the set temperature. At the same time, the user can preheat the hot water source, reducing the time the user has to wait for the water to heat up, so that hot water is available immediately.

[0053] Of course, the intelligent module 301 may also include other detection sensors for detecting the water source in the water diversion path 400, such as water quality, water hardness, water pressure, water flow rate, etc. The detection sensors can be selected according to the actual needs of the user. Of course, if the user has certain requirements for the water source, multiple detection sensors can be used in combination.

[0054] In this embodiment, the control unit 3012 serves as a terminal control circuit board. It has a pre-compiled program that can execute corresponding instructions based on user interaction, thereby driving the corresponding devices to start. The control unit 3012 can also function as a communication terminal. The actual control terminal is outside the water pipeline regulation system; that is, the entire water pipeline regulation system only acts as an execution terminal, while the external control terminal transmits command signals to the water pipeline regulation system. The control units 3012 of the multiple switching groups 300 are respectively connected to the control terminal, and the configuration group 200 is also connected to the control terminal. The multiple switching groups 300 and the configuration group 200 only need to receive command signals from the external control terminal and execute corresponding operations. This signal connection can be wireless or wired. It is important to note that the control units 3012 of the multiple switching groups 300 are independent and do not communicate with each other. The role of 3012 is to facilitate communication, digital-to-analog conversion, or signal relay to corresponding devices, effectively reducing the size and cost of the intelligent module 301. It also saves on the development cost of the switching group 300 in the entire preheating system. When subsequent program updates and component optimizations are needed, only the external control terminal needs to be disassembled and updated, which facilitates maintenance work. Of course, in embodiment two, it is not necessary to externalize the main control unit. Instead, the configuration group 200 can be used as the host. The configuration group 200 has a built-in main control unit 204, which is electrically connected to the current guide 202 and the first transfer member 203 in the configuration group 200. Multiple switching groups 300 are all terminals and are respectively connected to the main control unit 204 in the host. The intelligent module 301 itself needs to retain user interaction functions, such as touch screen and physical buttons, so that users can operate and control the preheating function.

[0055] Furthermore, both the first guide member 203 and the second guide member 3011 are valve structures, and the control unit 3012 is electrically connected to the guide member 202 and the first guide member 203, respectively.

[0056] Specifically, the control unit 3012 can control the current switching group 300 and configuration group 200. The user initiates a hot water request at a preset temperature through the input terminal in the intelligent module 301. The control unit 3012 first sends instructions to the first transfer member 203, the diversion member 202 and the second transfer member 3011. The first transfer member 203 switches the pipeline 201 with the diversion member 202. The diversion member 202 also starts to pump water from the pipeline 201 and generate water flow and pressure, and puts the relevant water system into the water circulation working state.

[0057] It is important to note that the water supply terminal 100 here uses a water heater, which is equipped with a water flow sensor to automatically start heating. Therefore, when the water heater senses the water flow or water pressure generated by the water pumping component 202, the water heater automatically performs the heating operation. This means that the water pumping component 202 not only has the function of pumping and pressurizing the water source, but also has the function of starting the water heater heating. Under the drive of the control unit 3012, the second water pumping component 3011 connects the water inlet path 400 and the return path 600. Then, as described above, after the preset temperature of hot water is reached, the second water pumping component 3011 connects the water inlet path 400 and the outlet path 500, and the user can directly use hot water.

[0058] In this process, switching to the return water path 600 requires the use of the diversion component 202 to pump water from the source, which generates water flow or pressure. This is because, without a flow booster and pressurization device, the water pressure in the entire house water system is uniform, meaning there is no water pressure difference. Without a water pressure difference, there will be no water flow, making it impossible for the initial cold water in the hot water pipe to return to the cold water network. The diversion component 202 can be left unused when the water pipe regulation system is not performing preheating. The configuration group 200 can switch to the pipe 201 without the diversion component 202. Moreover, in the above process, when hot water is discharged from the outlet path 500, the water supply end 100 has already met the water source heating requirements, and the outlet path 500 is a direct outlet water source and will not re-enter the water pipe network. The water pressure in the existing water pipe network is sufficient to discharge the water. Therefore, the diversion component 202 can be turned off during this period, or the configuration group 200 can switch to the pipe without the diversion component 202.

[0059] In practical applications, the switching unit 300 in this water pipeline regulation system can be installed at the locations where users need water. The switching unit 300 is installed at washbasins and shower facilities, as shown in the attached diagram. Figure 2-3 and appendix Figure 6-8 As shown:

[0060] The shower equipment includes a shower seat located within the shower space. The shower seat is connected to both the water outlet path 500 and the water return path 600. A switching unit 300 is also located within the shower space. See attached diagram for details. Figure 2 and attached Figure 3 The switching unit 300 has two installation methods, but is not limited to these two methods. The specific installation method can be adjusted according to the actual user. It should be noted that the water outlet path 500 and the water return path 600 are located inside the shower seat, and the water outlet path 500 includes a water pipe and a water outlet / faucet structure. The switching unit 300 is connected to the configuration unit 200 through the water inlet path 400 to introduce water.

[0061] When the user initiates the preheating state via switching group 300, the first diversion component 203 switches the pipe 201 with the diversion component 202, and the diversion component 202 activates to pump water from the water source, generating water flow or pressure. Since the water supply end 100 can be the heater body or the pipe medium serving as the heater, here we describe the water supply end 100 as the heater body. The heater body has the function of sensing the water flow to automatically heat the water source. Therefore, after the diversion component 202 is activated, the heater body also correspondingly starts heating the water source. This process is... In the preheating state, after the water source enters the switching group 300, the temperature sensor 3013 detects the temperature. If the water source temperature does not reach the user's preset temperature, the water source is directly introduced into the return water path 600 to flow back into the pipeline network. If the water source temperature reaches the user's preset temperature, the second guide member 301 switches the outlet water path 500 to allow the water source to enter the outlet water path 500 for discharge for the user's direct use. The user can preheat the water source, reducing the time the user has to wait for the water to heat up, so that hot water can be obtained immediately.

[0062] The washbasin includes a cabinet, with the switch unit 300 installed inside and connected to the faucet. Its working principle is basically the same as the shower equipment mentioned above, so we won't elaborate further. A wireless control module (such as Bluetooth or WiFi) is installed at the faucet to communicate with the switch unit 300. The setup of this wireless control module includes, but is not limited to, the attached... Figure 7 and attached Figure 8 In both of these methods, users can adjust the set temperature of the water circulation structure via a wireless control module.

[0063] The structure of the switching group 300 can also adopt a water circulation structure as disclosed in CN221548970U.

[0064] One point worth mentioning is that the pipes used in this water pipe regulation system can directly utilize the existing pipes in the user's home. In this way, the water pipe regulation system only needs to use the corresponding structure, and the pipes do not need to be configured separately. Of course, if there are not many pipes in the user's home, then the corresponding configuration and supplement will be made according to the lack of pipes.

[0065] In home renovations, hot water and cold water pipes are actually completely isolated. A channel is built between the hot water and cold water pipes. The purpose of this channel is to use a pump to pressurize the initially stored cold water in the hot water pipe and send it into the cold water pipe. When the terminal detects that the temperature has reached the preset temperature of the equipment, the water valve connecting the hot water pipe and the cold water pipe will automatically close. The first guide component 3011 is always connected to the outlet path 500. The first guide component 3011 acts as a way to close or open the passage to the return path 600. A channel with a water valve is built between the hot water pipe and the cold water pipe. When preheating is needed, the valve is opened so that the cold water in the hot water pipe can be pumped into the cold water pipe. Conversely, the water valve is closed to maintain complete isolation between the hot and cold water pipes.

[0066] The above descriptions provide one or more embodiments in conjunction with specific details, but do not imply that the specific implementation of this utility model is limited to these descriptions. Any methods or structures that are similar to or identical to those of this utility model, or any technical deductions or substitutions made based on the concept of this utility model, should be considered within the scope of protection of this utility model.

Claims

1. A water pipeline regulation system, characterized in that, include: A water supply end (100) is provided to supply a water source, wherein the water source includes a water source that reaches a preset temperature; Configuration group (200) is connected to the water supply end (100) to access the water source. The configuration group (200) includes two pipelines (201) and a diversion component (202). The diversion component (202) is installed on one of the pipelines (201) to pump the water source. Multiple switching groups (300) are connected to a water outlet path (500) and a water return path (600). The multiple switching groups (300) are respectively connected to the configuration group (200) for selecting one of the pipelines (201) to transport the water source and connecting the water source to the water outlet path (500) or the water return path (600). The water outlet path (500) is used to output the water source that has reached the preset temperature for user use, and the water return path (600) is used to return the water source.

2. The water pipeline regulation system according to claim 1, characterized in that, The drainage component (202) includes a water pump.

3. The water pipeline regulation system according to claim 1, characterized in that, The configuration group (200) also includes a first guide (203) installed at the junction of the two pipelines (201).

4. A water pipeline regulation system according to claim 3, characterized in that, Each of the multiple switching groups (300) is also connected to a water diversion path (400), which is connected to the first diversion member (203).

5. A water pipeline regulation system according to claim 4, characterized in that, It also includes a connecting pipe (700), one end of which is connected to the first guide member (203), and the other end of which is connected to the plurality of water diversion paths (400).

6. A water pipeline regulation system according to claim 4, characterized in that, The switching group (300) includes a second guide member (3011), which is connected to the water intake path (400), the water outlet path (500), and the water return path (600) respectively. The water intake path (400) is connected to the water outlet path (500) or the water return path (600) through the second guide member (3011).

7. A water pipeline regulating system according to claim 6, characterized in that, The switching group (300) includes an intelligent module (301) electrically connected to the second diverter (3011). The intelligent module (301) is used to detect the water source of the water diversion path (400) and, based on the detection result, drive the second diverter (3011) to connect the water outlet path (500) or the water return path (600).

8. A water pipeline regulating system according to claim 7, characterized in that, The intelligent module (301) further includes a control unit (3012) and a temperature sensor (3013). The control unit (3012) is electrically connected to the temperature sensor (3013) and the second guide member (3011), respectively. The temperature sensor (3013) is used to detect the water source temperature of the water diversion path (400). The control unit (3012) is used to receive the detection signal from the temperature sensor (3013) to control the second guide member (3011) to switch the connection between the water diversion path (400) and the water outlet path or the water return path (600).

9. A water pipeline regulation system according to claim 8, characterized in that, The control unit (3012) is electrically connected to the diverting member (202) and the first diverting member (203), respectively.

10. A water pipeline regulation system according to claim 6, characterized in that, Both the first interdiction device (203) and the second interdiction device (3011) are valve structures.

Citation Information

Patent Citations

  • Water circulation structure and instant heating type liquid outlet device

    CN221548970U