Purified drinking system

By introducing hot water and room temperature water circuits into the water purification system and utilizing the reflux chamber design of the distributor, the problem that existing water purification systems cannot provide room temperature water has been solved, enabling flexible control of water temperature and flow rate, and improving system stability and drinking water quality.

CN224050675UActive Publication Date: 2026-03-27FOSHAN SHUNDE MIDEA WATER DISPENSER MFG +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-20
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing water purification systems cannot directly provide room temperature water, resulting in insufficient flexibility for users in adjusting drinking water temperature.

Method used

A water purification system was designed, including a water purifier, a tankless water dispenser, and a distributor. By setting up hot water and normal temperature water circuits, and using pump components and solenoid valves to control the water flow, combined with the return chamber design of the distributor, the water temperature and flow can be flexibly adjusted to meet different water needs.

Benefits of technology

It enables flexible control of the flow rate of both ambient and hot water, meeting the needs of large-volume water usage scenarios, improving system stability and user experience, reducing energy consumption, avoiding bacterial growth and water quality issues, and ensuring the safety and hygiene of drinking water.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a purified drinking system which comprises a water purifier, a water-tank-free pipeline machine and a flow divider, and the water purifier is provided with a raw water inlet and a pure water outlet; the water-tank-free pipeline machine comprises a shell, a hot water way and a normal-temperature water way, the shell is provided with a water inlet and a water outlet nozzle, and the hot water way is arranged in the shell and located between the water inlet and the water outlet nozzle and comprises a first water inlet electromagnetic valve and a pump assembly which are sequentially arranged in the flowing direction of water flow. The normal-temperature water path is provided with a second water inlet electromagnetic valve, the water inlet end of the normal-temperature water path is communicated with the hot water path and located at the downstream position of the first water inlet electromagnetic valve, and the water outlet end of the normal-temperature water path is communicated with the hot water path and located at the downstream position of the pump assembly; a water inlet cavity communicated with a water source and the raw water inlet, a water outlet cavity communicated with the pure water outlet and the water inlet, and a backflow cavity communicated with the water outlet cavity and the water inlet cavity are formed in the flow divider. The water purifier can meet different requirements of users.
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Description

TECHNICAL FIELD

[0001] The utility model relates to technical field, especially a kind of pure drinking system. BACKGROUND

[0002] Pure drinking system is mainly applied to family kitchen, tea room of office and other places, to provide safe, healthy, convenient drinking water and domestic water for people.

[0003] Current pure drinking system is mainly to supply the water produced by water purifier to pipeline machine, and the current pure drinking system is mainly designed to supply the water purified by water purifier to pipeline machine, but the function of pipeline machine is often limited to providing hot water or cold water. When users want to obtain normal temperature water, such system often cannot directly meet their needs. Since pipeline machine usually does not have the function of adjusting water temperature to normal temperature, users may encounter inconvenience in drinking normal temperature water. Therefore, for users who pursue more diversified drinking water needs, the existing pure drinking system has certain limitations in flexibility. SUMMARY

[0004] The embodiment of the present application provides a pure drinking system, which can meet different needs of users.

[0005] The embodiment of the present application provides a pure drinking system, which comprises a water purifier, a pipeline machine without water tank and a flow divider, the water purifier has a raw water inlet and a pure water outlet; the pipeline machine without water tank comprises a shell, a hot water circuit and a normal temperature water circuit, the shell has a water inlet and a water outlet nozzle, the hot water circuit is arranged in the shell and located between the water inlet and the water outlet nozzle, comprising a first water inlet electromagnetic valve and a pump assembly arranged in sequence along the flow direction of water flow, the normal temperature water circuit is provided with a second water inlet electromagnetic valve, the water inlet end of the normal temperature water circuit is communicated with the hot water circuit and located at the downstream position of the first water inlet electromagnetic valve, and the water outlet end is communicated with the hot water circuit and located at the downstream position of the pump assembly; the flow divider is provided with an inlet cavity communicated with a water source and the raw water inlet, an outlet cavity communicated with the pure water outlet and the water inlet, and a reflux cavity communicated with the outlet cavity and the inlet cavity.

[0006] In some embodiments, the pump assembly comprises a water pump or a flow control pump, when the pump assembly comprises the water pump, the hot water circuit further comprises:

[0007] A negative pressure valve is arranged in the hot water circuit, the negative pressure valve is communicated with the first water inlet electromagnetic valve and the water pump and located between the first water inlet electromagnetic valve and the water pump.

[0008] In some embodiments, the hot water circuit further comprises:

[0009] A water quantity sensor is arranged in the hot water channel and located between the connection between the inlet end of the normal temperature water channel and the hot water channel and the pump assembly, or arranged between the pump assembly and the connection between the outlet end of the normal temperature water channel and the hot water channel.

[0010] In some embodiments, the hot water channel further comprises:

[0011] A flow meter is arranged in the hot water channel and located upstream of the connection between the inlet end of the normal temperature water channel and the hot water channel, or downstream of the connection between the outlet end of the normal temperature water channel and the hot water channel.

[0012] In some embodiments, the tankless pipeline machine further comprises:

[0013] A heating device is arranged in the hot water channel and located between the connection between the outlet end of the normal temperature water channel and the hot water channel and the water outlet nozzle.

[0014] In some embodiments, the tankless pipeline machine further comprises:

[0015] A sterilization device is arranged between the heating device and the water outlet nozzle, or between the heating device and the connection between the outlet end of the normal temperature water channel and the hot water channel.

[0016] In some embodiments, the hot water channel further comprises:

[0017] A check valve is arranged at the water outlet nozzle to prevent water dripping from the water outlet nozzle.

[0018] In some embodiments, the tankless pipeline machine further comprises:

[0019] An irradiation lamp is arranged on the housing and faces a water containing area of the tankless pipeline machine, so that light emitted by the irradiation lamp irradiates the water containing area, which is located below the water outlet nozzle.

[0020] In some embodiments, the tankless pipeline machine further comprises:

[0021] A display device is arranged on the housing to display working information of the tankless pipeline machine.

[0022] In some embodiments, further comprising:

[0023] A faucet has a pure water inlet port, which is communicated with the pure water outlet port.

[0024] In some embodiments, further comprising:

[0025] The faucet has a pure water inlet;

[0026] The water outlet cavity comprises a lower water outlet cavity communicating with the water inlet cavity and the pure water inlet, and an upper water outlet cavity communicating with the lower water outlet cavity and the water inlet.

[0027] Based on the water purification system provided by the embodiment of the present application, the water purifier supplies water to the water tank-free pipeline machine through the flow divider. The flow divider is provided with a reflux cavity. In this way, when the water purifier delivers a large flow of water, the water in the water outlet cavity can be refluxed to the water inlet cavity through the reflux cavity, and then can flow to the water purifier again, thereby reducing the pressure-bearing burden of the flow divider and the water tank-free pipeline machine, and enhancing the stability of the entire water purification system. The water tank-free pipeline machine is provided with a hot water path and a normal temperature water path. The hot water path is provided with a first water inlet electromagnetic valve and a pump assembly. Since the pump assembly is arranged, the water flow of the hot water path is relatively small, but is sufficient to meet the instant demand for daily hot water. The normal temperature water path skillfully bypasses the pump assembly, and directly controls the on-off of the water path through a second water inlet electromagnetic valve, so that the water flow can be relatively increased, and the use scene of large water flow is fully met, and different use requirements of users are met. BRIEF DESCRIPTION OF DRAWINGS

[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments or the prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the basis of the drawings shown.

[0029] Figure 1 A water path schematic diagram of a water purification system provided by the embodiment of the present application;

[0030] Figure 2 A structure schematic diagram of a water tank-free pipeline machine provided by the embodiment of the present application;

[0031] Figure 3 A structure schematic diagram of a water tank-free pipeline machine provided by the embodiment of the present application (part of the shell is omitted);

[0032] Figure 4 A structure schematic diagram of a water tank-free pipeline machine provided by the embodiment of the present application (the shell is omitted);

[0033] Figure 5 A front view of a water tank-free pipeline machine provided by the embodiment of the present application;

[0034] Figure 6 A Figure 5 A sectional view at A-A in the middle;

[0035] Figure 7 A water path schematic diagram of a water tank-free pipeline machine according to an embodiment provided by the present application;

[0036] Figure 8 A water path schematic diagram of a water tank-free pipeline machine according to another embodiment provided by the present application;

[0037] Figure 9 A water path schematic diagram of a water path system according to an embodiment provided by the present application;

[0038] Figure 10 A structural schematic diagram of a flow divider according to an embodiment provided by the present application;

[0039] Figure 11 A structural schematic diagram of a flow divider according to an embodiment provided by the present application from another perspective;

[0040] Figure 12 A sectional view schematic diagram of a flow divider according to an embodiment provided by the present application.

[0041] Explanation of reference numerals:

[0042] 1, flow divider; 2, water tank-free pipeline machine; 21, shell; 211, water inlet; 212, water outlet nozzle; 213, electric control installation area; 214, strong electric installation area; 2141, water path installation area; 2142, instant heating installation area; 215, installation cavity; 2151, installation groove; 22, water path system; 221, hot water path; 2211, first water inlet electromagnetic valve; 2212, pump assembly; 2213, flow control pump; 2214, water pump; 2215, water quantity sensor; 2216, flow meter; 2217, negative pressure valve; 2218, check valve; 222, normal temperature water path; 2221, second water inlet electromagnetic valve; 23, sterilization device; 24, electric control device; 25, instant heating device; 27, display device; 28, irradiation lamp; 29, water outlet pipeline; 3, water purifier; 31, raw water inlet; 32, pure water outlet; 32, fresh mineral water outlet; 4, faucet; 41, pure water inlet.

[0043] The realization, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION

[0044] In order to make the purpose, technical scheme and advantages of the present application more clear, the embodiments of the present application will be further described in detail with reference to the accompanying drawings.

[0045] The description of the lower part relates to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all the embodiments consistent with the present application. Instead, they are merely examples of some of the devices and methods consistent with the present application as detailed in the appended claims.

[0046] In the description of the present application, it is understood that the terms "first", "second" and the like are used only for the purpose of description and can not be understood as indicating or implying relative importance. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. In addition, in the description of the present application, unless otherwise specified, "multiple" means two or more. "And / or", the association between the associated objects, means that there can be three kinds of relationships, for example, A and / or B, which can represent the existence of A, the existence of A and B, and the existence of B. The character " / " generally represents the relationship between the front and rear associated objects is "or".

[0047] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as understood by those skilled in the art to which the present application belongs. The terms used in the specification of the present application are only for the purpose of describing the specific embodiments and are not intended to limit the present application. The term "and / or" used herein includes any and all combinations of one or more related listed items.

[0048] Please refer to Figure 1 The embodiment of the present application provides a pure drinking system, which comprises a water purifier 3, a water tankless pipeline machine 2 and a flow divider 1.

[0049] Please refer to Figures 2 to 5 The water tankless pipeline machine 2 comprises a shell 21, a waterway system 22, a instantaneous heating device 25 and a water outlet pipe 29. The shell 21 has a water inlet 211 and a water outlet 212, wherein the shell 21 can comprise a first shell and a second shell, wherein the first shell and the second shell can be detachably connected by clamping, screw connection or the like. The first shell and the second shell are surrounded to form a mounting cavity 215. The waterway system 22, the instantaneous heating device 25 and the water outlet pipe 29 are all installed in the mounting cavity 215. The waterway system 22 is used to supply water to the instantaneous heating device 25, wherein the water tankless pipeline machine 2 further comprises an electric control device 24, which is used to control the working condition of the waterway system 22 and the instantaneous heating device 25. Through the preset program and algorithm, the electric control device 24 can accurately adjust the water flow speed, water temperature and other parameters to meet the different needs of users.

[0050] It should be noted that the water inlet 211 and the water outlet 212 can be in the form of a pipe formed integrally on the shell 21, and can also be in the form of a separate component, such as a hose or a connector, etc. The first shell and / or the second shell is formed with a relief opening, and the water inlet 211 and / or the water outlet 212 component can at least partially extend into the mounting cavity 215 through the relief opening and be connected to other components in the mounting cavity 215.

[0051] In order to optimize the thermal management of the tankless pipeline machine 2 and avoid unnecessary heat transfer superposition between the electric control device 24 and the instant heating device 25, in some embodiments, the mounting cavity 215 includes a strong current mounting area 214 and a weak current mounting area, and the strong current mounting area 214 is arranged apart from the weak current mounting area in the length direction of the tankless pipeline machine 2, wherein the electric control device 24 is mounted in the strong current mounting area 214, and the instant heating device 25 is mounted in the weak current mounting area. It can be understood that the instant heating device 25 needs to be powered by strong current, and the strong current has the characteristics of high voltage and large current; the electric control device 24 needs to be powered by weak current, and the weak current has the characteristics of low voltage and small current, therefore, the electric control device 24 and the instant heating device 25 are arranged apart in the length direction of the tankless pipeline machine 2, so that the electromagnetic interference can be reduced to ensure the stability and reliability of the power signal on the electric control device 24.

[0052] Further, referring to Figure 3 and Figure 4 , the strong current mounting area 214 includes a waterway mounting area 2141 and an instant heating mounting area 2142 arranged in sequence in the length direction, and the electric control mounting area 213 and the instant heating mounting area 2142 are respectively located on both sides of the waterway mounting area 2141, so that unnecessary heat transfer superposition between the electric control device 24 and the instant heating device 25 can be avoided. It can be understood that the instant heating device 25 needs to be powered by strong current, and the strong current has the characteristics of high voltage and large current; the electric control device 24 needs to be powered by weak current, and the weak current has the characteristics of low voltage and small current, therefore, the electric control device 24 and the instant heating device 25 are arranged apart in the length direction of the tankless pipeline machine 2, so that the electromagnetic interference can be reduced to ensure the stability and reliability of the power signal on the electric control device 24.

[0053] Please refer back to Figure 1The waterway system 22 comprises a hot water way 221 and a normal temperature water way 222. The hot water way 221 is used to provide hot water and is located between the water inlet 211 and the water outlet 212. The normal temperature water way 222 is used to provide normal temperature water. The hot water way 221 comprises a first water inlet electromagnetic valve 2211 and a pump assembly 2212. The first water inlet electromagnetic valve 2211 is connected to the water inlet 211. The normal temperature water way 222 is provided with a second water inlet electromagnetic valve 2221 and is connected to the hot water way 221. The water inlet of the normal temperature water way 222 is located downstream of the first water inlet electromagnetic valve 2211. The hot water way 221 is provided with a water pump 2214. The water flow of the hot water way 221 is relatively small, but is sufficient to meet the instant demand of daily hot water. The normal temperature water way 222 bypasses the pump assembly 2212 and directly controls the opening and closing of the water way through the second water inlet electromagnetic valve 2221, so that the water flow can be relatively increased to fully meet the use scenario of large water flow. In addition, even when the instant heating device 25 does not start to heat the hot water, the normal temperature water will still continuously flow through the instant heating device 25, which not only maintains the dynamic circulation of the water way of the instant heating device 25, but also significantly reduces the risk of bacterial breeding, thereby ensuring the hygiene and safety of the water.

[0054] The water tankless pipeline machine 2 has a small overall volume and can be installed in a small area, so the installation is more flexible. Since the water tankless pipeline machine 2 does not need to store water, the water tank does not need to maintain the water temperature, thereby reducing the energy consumption. In addition, the water tankless pipeline machine 2 can avoid the problems of dirt accumulation, serious odor and bacterial breeding in the traditional water tank, thereby ensuring the purity of the outlet water and improving the quality of the drinking water.

[0055] And since it is designed without a water tank, the hot water waterway 221 needs to be provided with a first water inlet electromagnetic valve 2211 and a pump assembly 2212. The first water inlet electromagnetic valve 2211 is responsible for controlling the on-off of water flow, and the pump assembly 2212 is responsible for providing power for water flow. It can be understood that the first water inlet electromagnetic valve 2211 and the pump assembly 2212 are relatively large in size. The present application arranges the first water inlet electromagnetic valve 2211 and the pump assembly 2212 side by side in the length direction of the shell 21, while the water outlet pipeline 29 is relatively small in size. The present application arranges the instant heating device 25 and the water outlet pipeline 29 side by side in the thickness direction of the shell 21, and the first water inlet electromagnetic valve 2211 and the pump assembly 2212 are arranged in the waterway mounting area 2141, and the instant heating device 25 and the water outlet pipeline 29 are arranged in the instant heating mounting area 2142. The installation layout provided by the present application can first separate the waterway system 22 and the instant heating device 25, so as to avoid the influence of the heat generated by the operation of the instant heating device 25 on the equipment operation of the waterway system 22; secondly, it can make the structure inside the entire shell 21 compact and save space, which is conducive to the miniaturization and light weight of the equipment. For example, if the water outlet pipeline 29 and the instant heating device 25 are arranged side by side in the length direction of the shell 21, it is easy to make the length of the shell 21 longer; thirdly, it can take into account the equipment maintenance or maintenance of the waterway system 22.

[0056] It should be noted that the first shell and the second shell are fixedly connected in the horizontal direction, and after the first shell is disassembled, the equipment of the waterway system 22 and the instant heating device 25 are arranged side by side in the second shell. In this way, the internal equipment can be seen at a glance, which is convenient for maintenance or replacement. When installed and used, the second shell is hung on the wall surface, so that the water tankless pipeline machine 2 does not need to be taken down as a whole, and the parts in the mounting cavity 215 can be directly maintained or repaired after the first shell is disassembled. Further explanation, based on the installation environment, the back of the water tankless pipeline machine 2 is attached to the wall surface, the second shell can be in the form of a cover shell with an open front side, and the first shell forms a cover structure and covers the opening.

[0057] Please refer to Figures 7 to 9In some embodiments, the pump assembly 2212 can include a flow control pump 2213 and a water pump 2214. When the pump assembly 2212 includes the water pump 2214, the waterway system 22 further includes a negative pressure valve 2217 disposed in the waterway installation area 2141. The negative pressure valve 2217 is connected between the first water inlet electromagnetic valve 2211 and the water pump 2214. When the water flow in the waterway system 22 is cut off or the water pump 2214 stops working, the negative pressure valve 2217 can prevent negative pressure (i.e. pressure lower than atmospheric pressure) from occurring in the pipeline. Negative pressure can cause the pipeline to rupture, water hammer (pressure impact caused by sudden stop or change of direction of water flow) or other damage. The negative pressure valve 2217 can maintain positive pressure in the pipeline or at least prevent the occurrence of negative pressure, thereby protecting the water pump 2214 and other components in the waterway system 22 from damage. The negative pressure valve 2217 can prevent the occurrence of negative pressure in various ways, such as air supplementing method, pre-pressurization method, etc. The specific structure and principle of the negative pressure valve 2217 are well known in the art, and will not be described here.

[0058] Of course, when the pump assembly 2212 is a flow control pump 2213, the negative pressure valve 2217 can not be provided. The flow control pump 2213 is a pump that can maintain constant pressure when the flow changes. The flow control pump 2213 can stabilize the fluid state in the delivery pipeline by precisely controlling the flow and pressure of the water flow. In some cases, when the water flow in the delivery pipeline is cut off, the flow control pump 2213 can adjust its output flow to maintain the fluid pressure in the pipeline within a stable range, thereby avoiding the occurrence of negative pressure.

[0059] Please refer to Figures 7 to 9 In some embodiments, the waterway system 22 further includes a flow meter 2216 installed in the waterway installation area 2141. The flow meter 2216 can be disposed between the water inlet 211 and the first water inlet electromagnetic valve 2211, or between the first water inlet electromagnetic valve 2211 and the water pump 2214, or between the water pump 2214 and the instant heating device 25. The flow meter 2216 is used to measure the flow of water to provide accurate water usage data to the user. By statistically analyzing the data collected by the flow meter 2216, the user can understand the water usage pattern of the tankless pipeline machine 2.

[0060] Please refer to Figures 7 to 9In some embodiments, the waterway system 22 further comprises a water quantity sensor 2215, which is installed in the waterway installation area 2141, and can be arranged between the water inlet 211 and the first water inlet electromagnetic valve 2211, or between the first water inlet electromagnetic valve 2211 and the water pump 2214, or between the water pump 2214 and the instant heating device 25. The instant heating device 25 is configured to reduce power or stop working when the value detected by the water quantity sensor 2215 is lower than a preset value. The water quantity sensor 2215 can monitor the water quantity in the waterway system 22 in real time, and stop or reduce the power of the instant heating device 25 in time when the water quantity is insufficient, so as to prevent dry burning and protect the safety of the equipment. By intelligently controlling the power of the instant heating device 25, the water quantity sensor 2215 can achieve the effect of energy saving and power saving, and reduce the electricity cost of the user.

[0061] Referring to Figures 7 to 9 In some embodiments, in the flow direction of the water flow, the first water inlet electromagnetic valve 2211, the negative pressure valve 2217, the water quantity sensor 2215, the flow meter 2216 and the water pump 2214 are sequentially communicated; wherein the first water inlet electromagnetic valve 2211 and the negative pressure valve 2217 are arranged at intervals in the height direction of the shell 21, the water quantity sensor 2215, the flow meter 2216 and the water pump 2214 are arranged at intervals in the height direction of the shell 21 and located between the whole formed by the first water inlet electromagnetic valve 2211 and the negative pressure valve 2217 and the whole formed by the instant heating device 25 and the water outlet pipeline 29, and the water pump 2214 is located below the water quantity sensor 2215 and the flow meter 2216. The components such as the first water inlet electromagnetic valve 2211, the negative pressure valve 2217, the water quantity sensor 2215, the flow meter 2216 and the water pump 2214 are partitioned according to functions, so that the role of each part is more explicit. When a fault occurs, the problem can be quickly located, and maintenance and repair are facilitated.

[0062] Referring to Figure 3 and Figure 4 In some embodiments, the shell 21 comprises an outer shell 216 and a mounting rack 217, wherein the outer shell 216 comprises the first shell and the second shell described above and has the installation cavity 215; the mounting rack 217 is fixedly connected with the outer shell 216 and fixedly located in the installation cavity 215, and the first water inlet electromagnetic valve 2211, the negative pressure valve 2217, the water quantity sensor 2215, the flow meter 2216 and the water pump 2214 are all installed on the mounting rack 217. In this way, the components can be installed on the mounting rack 217 first, and then the mounting rack 217 is installed in the installation cavity 215, so that the assembly process is more simple and fast, and the installation difficulty and cost are reduced. When a component fails or needs to be maintained, the mounting rack 217 can be taken out as a whole, so that the waterway system 22 can be taken out to observe the position of the fault, and the components can be replaced and maintained.

[0063] Please see Figure 5 In some embodiments, the tankless water dispenser 2 further includes a sterilization device 23, which is installed on the water outlet pipe 29 and sterilizes the water in the outlet pipe 29. The sterilization device 23 can be in the form of an ultraviolet sterilizer or an ozone sterilizer, etc. This sterilization device 23 can effectively sterilize without producing chemical residues, thereby reducing environmental pollution. The sterilization device 23 can effectively kill bacteria, viruses, and other microorganisms in the water outlet pipe 29, ensuring water safety and hygiene, and effectively reducing health problems caused by water quality issues.

[0064] Please see Figures 2 to 4 ,as well as Figure 6 In some embodiments, the water outlet 212 is located at the bottom of the housing 21; the water inlet of the instant heating device 25 is located below the instant heating device 25, and the water outlet is located above the instant heating device 25. Specifically, the water outlet 212 is located at the bottom of the housing 21 for easy water access, especially in low-ceilinged spaces or for use by children. The water inlet and water outlet of the instant heating device 25 are located below and above it, respectively, which improves space utilization. In detail, since the water outlet 212 is located at the bottom of the housing 21, the water outlet pipe 29 is equipped with a sterilization device 23. Considering the parallel arrangement of the water outlet pipe 29 and the instant heating device 25, the water inlet of the water outlet pipe 29 is located above it. Therefore, the water inlet and water outlet of the instant heating device 25 are located below and above it, respectively, thus adapting to the arrangement of the water outlet pipe 29.

[0065] The layout of the water system 22 described above is also adapted to the water flow in the instant heating installation area 2142. Specifically, the inlet 211 is located at the bottom of the housing 21. The first inlet solenoid valve 2211 and the negative pressure valve 2217 are spaced apart in the height direction. The water volume sensor 2215, the flow meter 2216 and the water pump 2214 are also spaced apart in the height direction. After the water from the water source enters the water system 22 through the inlet 211, it first passes through the first inlet solenoid valve 2211 and the negative pressure valve 2217, at which point the water flows upward. Then it passes through the water volume sensor 2215, the flow meter 2216 and the water pump 2214, at which point the water flows downward. Then it enters the instant heating device 25, flows upward again, then flows downward through the outlet pipe 29, and finally flows out from the outlet 212.

[0066] In this application, through a reasonable component layout, the space inside the housing 21 can be fully utilized, making the overall equipment more compact, enabling smooth water flow and efficient heating, and facilitating the maintenance and repair of the internal components, thereby improving the practicality of the tankless water dispenser 2.

[0067] In the present application, the first water inlet electromagnetic valve 2211, the flow control pump 2213, the water volume sensor 2215, and the flow meter 2216 are all installed in the waterway installation area 2141, that is, the instant heating device 25 is installed in the instant heating installation area 2142, and in the length direction of the tankless pipeline machine 2, the waterway installation area 2141 is located between the electric control installation area 213 and the instant heating installation area 2142; that is, in the length direction of the tankless pipeline machine 2, the electric control device 24, the waterway system 22, and the instant heating device 25 are arranged side by side, and a thermal isolation barrier is formed by the waterway system 22 to separate the electric control device 24 and the instant heating device 25, so as to reduce the thermal energy interaction interference.

[0068] Please refer to Figure 6 In some embodiments, the waterway system 22 further includes a check valve 2218 arranged on the water outlet nozzle 212 and preventing water flow from flowing backward in the pipeline, thereby protecting other components in the waterway system 22, such as the water pump 2214, the instant heating device 25, etc., from being impacted and damaged by the reverse water flow. When the instant heating device 25 is used to heat the water in the waterway system 22 of the tankless pipeline machine 2, it is difficult for the instant heating device 25 to heat the water in the waterway system 22 to 100 degrees Celsius due to the rapid heating of the instant heating device 25. Therefore, the check valve 2218 designed at the water outlet nozzle 212 in the present application can play a pressure-bearing role to increase the boiling point of the water in the water outlet pipeline 29, so as to make the water boil. In the process of water boiling, water vapor can be arranged in the water outlet pipeline 29, and since the water outlet pipeline 29 is connected to the water outlet nozzle 212, the water outlet nozzle 212 can discharge the water vapor, so that the water outlet nozzle 212 can flow out a stable water column.

[0069] Please refer to Figure 2 and Figure 6 In some embodiments, the tankless pipeline machine 2 further includes an illuminating lamp 28 arranged on the shell 21 and facing the water storage area of the tankless pipeline machine 2, so that the light emitted by the illuminating lamp 28 illuminates the water storage area located below the water outlet nozzle 212. The illuminating lamp 28 can illuminate the water storage area, so that the user can clearly see the water level, water quality, and whether there are impurities in the water storage container even in a relatively dark environment, thereby ensuring the accuracy and safety of water taking. In addition, the light of the illuminating lamp 28 helps the user to more intuitively check the cleaning degree of the water storage area and the water outlet nozzle 212, thereby reminding the user to clean and maintain in time and ensuring water hygiene.

[0070] Please refer to Figure 4In some embodiments, the tankless pipeline machine 2 further comprises a display device 27 arranged on the housing 21 to display the working information of the tankless pipeline machine 2. The display device 27 can visually display the working state of the tankless pipeline machine 2 in real time, such as water temperature, working state (heating, water outlet, standby, etc.), and possible fault prompt, so that the user can better master the working condition of the device, thereby reasonably arranging the use time and frequency and avoiding unnecessary energy waste. For example, when the water temperature is low, the required heating time is longer, and the user can arrange other work in advance to avoid the waste of time due to waiting for the water temperature to rise.

[0071] In some embodiments, the display device 27 and the irradiation lamp 28 are both installed in the instant heating installation area 2142, so that the display device 27 and the irradiation lamp 28 can be close to each other. Since the display device 27 and the irradiation lamp 28 are close to each other, the display device 27 is electrically connected with the irradiation lamp 28 in the embodiments of the present application, and the display device 27 is further used for supplying power to the irradiation lamp 28 and directly controlling the opening and closing of the irradiation lamp 28, which is helpful to simplify the wiring complexity in the tankless pipeline machine 2.

[0072] In some embodiments, the water purification system further comprises a faucet 4, wherein the faucet 4 can be directly connected to the water purifier 3 to directly supply the purified water of the water purifier 3 to the user. The faucet 4 can also be connected to the water outlet cavity 1148 of the shunt 1, thereby providing the purified water of the water purifier 3 to the user. In this way, the water purifier 3 can only provide one pure water outlet 32, and the shunt 1 capable of simultaneously connecting the tankless pipeline machine 2 and the faucet 4 will be introduced next.

[0073] It can be understood that the water purifier 3 purifies a large amount of water, and the tankless pipeline machine 2 is limited by the heating efficiency of the instant heating device 25, and the water consumption is small. When the water pressure in the water outlet cavity 1148 is large, the water can be returned to the water inlet cavity 1147 through the return cavity 1146, thereby improving the service life of the shunt 1 and the tankless pipeline machine 2.

[0074] Please refer to Figures 10 to 12The shunt 1 comprises a raw water cavity 1147, a purified water cavity 1148 and a backflow cavity 1146. The shunt 1 is provided with a raw water inlet 1141, a purified water inlet 1143, a raw water outlet 1142 and a first water supply port 1144, wherein the raw water inlet 1141 is used to connect a water supply pipeline to introduce tap water into the raw water cavity 1147, the raw water outlet 1142 is used to communicate with the raw water inlet 31 to deliver water in the raw water cavity 1147 to the water purifier 3, the purified water inlet 1143 is used to communicate with the purified water outlet 32 to introduce purified water purified by the water purifier 3, and the first water supply port 1144 is used to communicate with the water inlet 211 to deliver the purified water to the water tankless pipeline machine 2. The raw water inlet 1141 communicates with the raw water cavity 1147, the raw water outlet 1142 communicates with the backflow cavity 1146, the purified water inlet 1143 and the first water supply port 1144 both communicate with the purified water cavity 1148, and the backflow cavity 1146 communicates with the raw water cavity 1147 and the purified water cavity 1148. In this way, when the water purifier 3 delivers a large flow of water, the water in the purified water cavity 1148 can flow back to the raw water cavity 1147 through the backflow cavity 1146, and then flow to the water purifier 3 again through the raw water outlet 1142, thereby reducing the pressure of the shunt 1 and the water tankless pipeline machine 2 and improving the stability of the water purification system.

[0075] Please refer to Figures 10 to 12 The shunt 1 comprises a valve shell 11, which comprises a valve body upper shell 116 and a valve body lower shell 117 connected to each other. The valve body upper shell 116 and the valve body lower shell 117 can be assembled by connection forms including but not limited to bolt connection, clamping connection and the like. The valve body upper shell 116 and the valve body lower shell 117 jointly form the raw water cavity 1147, the backflow cavity 1146 and the purified water cavity 1148. The purified water cavity 1148 can communicate with the raw water cavity 1147 through the backflow cavity 1146. The raw water cavity 1147 and the purified water cavity 1148 are preferably located on the top side of the backflow cavity 1146. The valve body upper shell 116 is an integrally formed member, and / or the valve body lower shell 117 is an integrally formed member. Therefore, the valve shell 11 assembled by the valve body upper shell 116 and the valve body lower shell 117 is more stable and has higher structural strength. In this way, when high-pressure fluid is borne, the pressure can be evenly distributed in each part of the valve shell 11. Preferably, the raw water outlet 1142, the purified water inlet 1143 and the second water supply port 1145 are all arranged on the valve body lower shell 117, and the raw water inlet 1141 and the first water supply port 1144 are arranged on the valve body upper shell 116.

[0076] Please refer to Figures 10 to 12The shunt 1 further comprises a shunt assembly 17 arranged in the water outlet cavity 1148 and separating the water outlet cavity 1148 into a lower water outlet cavity 11481 and an upper water outlet cavity 11482, wherein the lower water outlet cavity 11481 is communicated with the pure water outlet 32 and the pure water inlet 41, the upper water outlet cavity 11482 is communicated with the lower water outlet cavity 11481 and the water inlet 211, and the reflux cavity 1146 is communicated with the lower water outlet cavity 11481 and the water inlet cavity 1147. The shunt assembly 17 can open or close the reflux cavity 1146 according to the pressure difference between the lower water outlet cavity 11481 and the upper water outlet cavity 11482.

[0077] The shunt assembly 17 is provided with a flow hole, the valve housing 11 has a reflux guide portion 1171, the reflux guide portion 1171 is internally provided with a guide flow channel 1172 communicated with the reflux cavity 1146, the shunt assembly 17 is installed in the water outlet cavity 1148 of the valve housing 11 and can abut against the reflux guide portion 1171, and the flow hole is used to guide the pure water flowing from the pure water inlet 1143 to pass through the shunt assembly 17 and enter the water outlet cavity 1148. According to the pressure difference formed by the pure water inlet 1143, the first water supply port 1144 and the second water supply port 1145, the shunt assembly 17 can relatively displace towards the first water supply port 1144 side, so that the shunt assembly 17 is separated from the reflux guide portion 1171, and then the excessive pure water can flow from the guide flow channel 1172 into the reflux cavity 1146 to form the above-mentioned excessive water.

[0078] When the faucet 4 is used for water alone, the pure water flows from the pure water inlet 1143 into the valve housing 11 and directly flows out from the second water supply port 1145, at this time, the shunt assembly 17 abuts and fits on the reflux guide portion 1171 to seal the guide flow channel 1172, so that the pure water cannot reflux to the guide flow channel 1172.

[0079] When the tankless pipeline machine 2 uses water alone, the purified water flows into the valve housing 11 from the purified water inlet 1143, and then enters the water outlet cavity 1148 through the water hole, and finally flows out from the first water outlet 1144 to the tankless pipeline machine 2. At this time, the pressure on the side of the shunt assembly 17 close to the first water outlet 1144 is less than the pressure on the side of the shunt assembly 17 away from the first water outlet 1144, that is, the water pressure formed by the purified water inlet 1143 and the second water outlet 1145 is greater than the water pressure on the side of the first water outlet 1144. The shunt assembly 17 can produce relative displacement towards the side of the first water outlet 1144, so that the shunt assembly 17 is separated from the backflow guide part 1171, and the excess purified water flows back to the guide flow channel 1172. When the tankless pipeline machine 2 is closed, the shunt assembly 17 will be reset towards the side of the backflow guide part 1171, and then the shunt assembly 17 abuts against the backflow guide part 1171 again to reseal the guide flow channel 1172. Therefore, the shunt 1 can flexibly cope with the water distribution requirements when the tankless pipeline machine 2 uses water alone, so that the purified water can meet the water demand of the tankless pipeline machine 2 while reasonably handling the excess water, so as to avoid waste of water resources and the risk of damage to the tankless pipeline machine 2 due to excessive water pressure.

[0080] When the tankless pipeline machine 2 and the faucet 4 use water at the same time, part of the purified water flows out from the second water outlet 1145 to the faucet 4 after flowing into the valve housing 11 from the purified water inlet 1143, and the other part enters the water outlet cavity 1148 through the water hole and flows out from the first water outlet 1144 to the tankless pipeline machine 2. Because the water pressure on the side of the second water outlet 1145 is reduced, the pressure on the side of the shunt assembly 17 close to the first water outlet 1144 is not much different from the pressure on the side of the shunt assembly 17 away from the first water outlet 1144. At this time, the shunt assembly 17 abuts against the backflow guide part 1171, so that the excess purified water will not flow back to the guide flow channel 1172. In this way, the tankless pipeline machine 2 and the faucet 4 can both use water normally, and the stable operation of the entire purified drinking system is ensured.

[0081] Thus, because the excess purified water can flow back when the tankless pipeline machine 2 is turned on, the purified water machine 3 can avoid frequent adjustment of its working state due to sudden changes in water consumption of the tankless pipeline machine 2 (such as water pressure changes caused by frequent opening and closing of the tankless pipeline machine 2). For example, without the backflow mechanism, when the tankless pipeline machine 2 is suddenly turned off, the instantaneous change in water pressure can cause an impact on the internal structure and working pressure of the purified water machine 3, and with the backflow mechanism, the water pressure change can be buffered to some extent, reducing the pressure on the purified water machine 3 to frequently start and stop. In the case of simultaneous water use, the relative stable water flow distribution state is maintained through the action of the shunt assembly 17. Without the shunt assembly 17, when the faucet 4 and the tankless pipeline machine 2 work simultaneously, a sudden change in water consumption of one party (such as sudden closing of the faucet 4) can cause a large fluctuation in the internal water pressure of the purified water machine 3, resulting in frequent adjustment of the working state of the purified water machine 3. The shunt assembly 17 can maintain a relatively stable water pressure and water flow distribution, reducing the situation of frequent start and stop of the purified water machine 3 caused by changes in external water use.

[0082] The shunt assembly 17 can include a shunt diaphragm with a water passage hole and a fixing assembly for fixing the shunt diaphragm in the valve housing 11, wherein the shunt diaphragm can be of flexible material or provided with an expansion space, so that the shunt diaphragm can deform under the change of water pressure, thereby automatically opening or closing the backflow cavity 1146.

[0083] In the description of the present utility model, it should be understood that if the terms "upper", "lower", "left", "right" and the like indicate the orientation or positional relationship shown in the drawings, they are only for the convenience of describing the present utility model and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, therefore the terms describing the positional relationship in the drawings are only used for illustrative purposes and cannot be understood as limiting the present utility model. For ordinary skilled persons in the art, the specific meanings of the above terms can be understood according to the specific circumstances.

[0084] The above is only a preferred embodiment of the present utility model and does not limit the present utility model, any modification, equivalent replacement and improvement made within the spirit and principles of the present utility model shall be included in the protection scope of the present utility model.

Claims

1. A net drink system characterized by, Comprise: a water purifier having a raw water inlet and a purified water outlet; a tankless pipeline machine comprising a housing, a hot water circuit and a normal temperature water circuit, the housing having a water inlet and a water outlet nozzle, the hot water circuit being arranged in the housing and between the water inlet and the water outlet nozzle, comprising a first water inlet electromagnetic valve and a pump assembly arranged in sequence along the flow direction of water flow, the normal temperature water circuit being provided with a second water inlet electromagnetic valve, the water inlet end of the normal temperature water circuit being connected to the hot water circuit and located downstream of the first water inlet electromagnetic valve, and the water outlet end being connected to the hot water circuit and located downstream of the pump assembly; and a flow divider, which is provided with a water inlet cavity connected to a water source and the raw water inlet, a water outlet cavity connected to the purified water outlet and the water inlet, and a backflow cavity connected to the water outlet cavity and the water inlet cavity.

2. The purified drinking system of claim 1, wherein, The pump assembly comprises a water pump or a flow control pump, when the pump assembly comprises the water pump, the hot water circuit further comprises: a negative pressure valve arranged in the hot water circuit, the negative pressure valve being connected to and between the first water inlet electromagnetic valve and the water pump.

3. The purified drinking system of claim 1, wherein, The hot water circuit further comprises: a water quantity sensor arranged in the hot water circuit and between the water inlet end of the normal temperature water circuit and the connection between the pump assembly and the hot water circuit, or between the pump assembly and the connection between the water outlet end of the normal temperature water circuit and the hot water circuit.

4. The purified drinking system of claim 1, wherein, The hot water circuit further comprises: a flow meter arranged in the hot water circuit and upstream of the connection between the water inlet end of the normal temperature water circuit and the hot water circuit, or downstream of the connection between the water outlet end of the normal temperature water circuit and the hot water circuit.

5. The purified drinking system of claim 1, wherein, The tankless pipeline machine further comprises: a heating device arranged in the hot water circuit and between the connection between the water outlet end of the normal temperature water circuit and the hot water circuit and the water outlet nozzle.

6. The water purification system as described in claim 5, characterized in that, The tankless pipeline machine further comprises: a sterilization device arranged between the heating device and the water outlet nozzle, or between the heating device and the connection between the water outlet end of the normal temperature water circuit and the hot water circuit.

7. The water purification system as described in claim 5, characterized in that, The hot water circuit further comprises: a check valve arranged at the water outlet nozzle to prevent water dripping from the water outlet nozzle.

8. The purified drinking system of claim 1, wherein, The tankless pipeline machine further comprises: an irradiation lamp arranged on the housing and directed towards a water containing area of the tankless pipeline machine, so that light emitted by the irradiation lamp irradiates the water containing area, which is located below the water outlet nozzle.

9. The water purification system as described in claim 1, characterized in that, The tankless pipeline machine further comprises: a display device arranged on the housing to display working information of the tankless pipeline machine.

10. The purified drinking system of any one of claims 1 to 9, wherein, Further comprise: a faucet having a purified water inlet connected to the purified water outlet.

11. The purified drinking system of any one of claims 1 to 9, wherein, Further comprise: a faucet having a purified water inlet; The water outlet cavity comprises a lower water outlet cavity connected to the water inlet cavity and the purified water outlet, and an upper water outlet cavity connected to the lower water outlet cavity and the water inlet, wherein the backflow cavity is connected to the lower water outlet cavity and the water inlet cavity.