Waterway system with refrigerating and heating functions and water purifier
By designing a water circuit system that combines cooling and heating functions, the water purifier achieves a stable output of hot water, cold water, and room temperature water, solving the problem of the water purifier's inability to cool, meeting diverse user needs, simplifying the system structure, and improving water quality safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN SHUNDE BILAIS ELECTRIC CO LTD
- Filing Date
- 2025-05-20
- Publication Date
- 2026-04-21
AI Technical Summary
Existing water purifiers generally do not have a cooling function, which cannot meet users' needs for low-temperature pure water. When cold water is needed, additional equipment is required for cooling, which is inconvenient to use.
Design a water circuit system that combines cooling and heating functions, including a hot water output system, a cold water output system, and a normal temperature water circuit system. Through independent water circuits and valve control, a stable output of hot water, cold water, and normal temperature water can be achieved. Sterilized normal temperature water can be selectively output, reducing unnecessary water outlets and lowering system complexity and cost.
It achieves stable output of hot water, cold water and room temperature water to meet diverse user needs, simplifies the water system structure, reduces costs, and allows for selective output of sterilized room temperature water, thus improving water quality safety.
Smart Images

Figure CN224147891U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water purification devices, and in particular to a water system and water purifier that have both cooling and heating functions. Background Technology
[0002] Traditional water purifiers typically output both hot and room temperature water. Hot water is processed by a heating module, while room temperature water is not. Furthermore, hot and room temperature water are output through separate water circuits. However, existing water purifiers generally lack a cooling function, meaning they cannot output cold water. This fails to meet users' needs for low-temperature purified water, requiring additional cooling equipment and causing inconvenience for users. Utility Model Content
[0003] Therefore, it is necessary to provide a water system and water purifier that combines cooling and heating functions to address the problem that existing water purifiers generally do not have a cooling function and cannot meet users' needs for low-temperature pure water.
[0004] A water system with both cooling and heating functions includes: a water tank assembly having a liquid storage chamber, a first water outlet, and a second water outlet, both of which are connected to the liquid storage chamber; a hot water output system connected to the first water outlet, having a hot water output path and a hot water outlet, the hot water outlet being connected to the hot water output path; a cold water output system connected to the second water outlet, having a cold water output path and a cold water outlet, the cold water outlet being connected to the cold water output path; and a normal temperature water system connected to the second water outlet, and connected to the hot water outlet and / or the cold water outlet.
[0005] The first aspect of this application discloses a water system that combines cooling and heating functions. A hot water output system is connected to a first outlet, and a cold water output system is connected to a second outlet, allowing the hot and cold water output systems to operate independently without interference, ensuring a stable output of both hot and cold water. The ambient temperature water system allows for the output of sterilized ambient temperature water. Therefore, this product can output hot, cold, and ambient temperature water, meeting diverse user needs. When users require cold water, no additional equipment is needed to cool the purified water, making it convenient and quick for users. Furthermore, sterilized ambient temperature water can be selectively output from either the hot or cold water outlet, resulting in a smoother ambient temperature water output. By connecting both the ambient temperature and cold water output systems to the second outlet, redundant outlets are reduced, lowering the overall complexity of the water system and effectively reducing costs.
[0006] In one embodiment, the cold water output system includes an ice tank assembly and a first valve body. The second outlet, the ice tank assembly, and the cold water outlet are sequentially connected. The first valve body controls the flow of water between the second outlet and the ice tank assembly. By positioning the first valve body in the water path between the second outlet and the ice tank assembly, the flow of the cold water output system can be precisely controlled as needed, allowing for the start or stop of cold water output. This design enables the output of cold water to meet diverse user needs.
[0007] In one embodiment, the ice tank assembly, the first valve body, and the cold water outlet are sequentially connected, and the first valve body is used to control the flow of water between the ice tank assembly and the cold water outlet. By positioning the first valve body between the ice tank assembly and the cold water outlet, it ensures that chilled water is output on demand, reducing temperature rise. This design avoids or reduces cooling loss during non-cooling periods.
[0008] In one embodiment, the ambient temperature water system includes a sterilizer, a second valve body, and a third valve body. The second outlet, the sterilizer, the second valve body, and the hot water outlet are sequentially connected. The second valve body controls the flow of water between the sterilizer and the hot water outlet. Similarly, the second outlet, the sterilizer, the third valve body, and the cold water outlet are sequentially connected. The third valve body controls the flow of water between the sterilizer and the cold water outlet. The sterilizer disinfects the liquid within the ambient temperature water system, ensuring water cleanliness and safety. The independent design of the second and third valve bodies allows for control over the output of sterilized ambient temperature water towards either the hot water outlet or the cold water outlet, meeting diverse user needs.
[0009] In one embodiment, the sterilizer is connected to a water path located between the second outlet and the ice chamber assembly. This connection allows the sterilization water path to directly obtain source water that has not been cooled by the ice chamber assembly, ensuring the normal output of room temperature water. This design avoids the impact of the refrigeration process on the room temperature water temperature and reduces the need for independent pipes through a shared water path, resulting in a simpler overall structure and lower cost.
[0010] In one embodiment, the ice tank assembly, the first valve body, and the cold water outlet are sequentially connected, and the third valve body is connected to the water passage located between the first valve body and the cold water outlet. By connecting the third valve body to the water passage between the first valve body and the cold water outlet, the first valve body cuts off the flow when room temperature water is output from the cold water outlet. This achieves water passage sharing, reduces the need for independent pipes, and also avoids or reduces the impact of the liquid output from the ice tank assembly on the temperature of the room temperature water.
[0011] In one embodiment, the hot water output system includes a heating element assembly and a fourth valve body. The first water outlet, the heating element assembly, and the hot water outlet are sequentially connected. The fourth valve body controls the flow of water between the first water outlet and the heating element assembly. When the fourth valve body is positioned at the inlet of the heating element assembly, the water flow into the heating element can be precisely controlled, avoiding energy waste caused by ineffective heating.
[0012] In one embodiment, the first water outlet, the heating element assembly, the fourth valve body, and the hot water outlet are sequentially connected. The fourth valve body controls the flow of water between the heating element assembly and the hot water outlet. The second valve body is connected to the water path between the heating element assembly and the hot water outlet. By placing the fourth valve body at the outlet of the heating element assembly, it ensures that heated hot water is output on demand, reducing heat loss. By connecting the second valve body to the water path between the heating element assembly and the hot water outlet, and cutting off the flow when room temperature water is output from the hot water outlet, water path sharing is achieved, reducing independent pipes and avoiding or minimizing the impact of the liquid output from the heating element on the temperature of the room temperature water.
[0013] In one embodiment, the system further includes a housing assembly having a first cavity, a second cavity, and a third cavity. The water tank assembly is mounted on the housing assembly and located within the first cavity. The heating element assembly and the cooling element assembly are both mounted on the housing assembly and located within the second cavity. The water filtration system is mounted on the housing assembly and located within the third cavity. The arrangement of the first, second, and third cavities achieves a reasonable layout and functional isolation of the components of the water system, which combines cooling and heating functions, resulting in a more rational design.
[0014] In one embodiment, a liquid level float is also included, which is mounted on the water tank assembly and located within the storage chamber. The liquid level float allows for real-time monitoring of water level changes within the storage chamber. Water is added when the water level falls below a set threshold, and the system shuts down when the water level rises above the set threshold, ensuring that the water tank assembly always maintains a reasonable water level. This design avoids the risk of overflow due to excessive water storage while preventing insufficient water storage from affecting the normal operation of the system.
[0015] In one embodiment, the water tank assembly has a water inlet communicating with the liquid storage chamber, and also includes a mechanical float. The mechanical float is disposed on the water tank assembly and located within the liquid storage chamber, and the mechanical float can block the water inlet. The mechanical float prevents purified water from flowing into the water tank assembly from the water inlet. This design can prevent the water level float from failing and causing the machine to continuously add water to the water tank assembly, resulting in overflow.
[0016] In one embodiment, a UV lamp is also included, which is disposed on the water tank assembly and is used to disinfect the liquid in the storage chamber. The UV lamp can kill bacteria in the water, further improving water quality.
[0017] In one embodiment, the water tank assembly includes a water inlet, a water filtration system, and a wastewater discharge system. The water filtration system has a raw water inlet and a filtration path, the filtration path being connected to the raw water inlet and the water inlet. The wastewater discharge system is connected to the water filtration system. The direct connection between the water filtration system and the water tank assembly's inlet enables the filtration and purification of the raw water. The connection between the wastewater discharge system and the water filtration system allows for the timely discharge of wastewater generated during the filtration process, preventing impurities from accumulating and affecting the filtration effect.
[0018] In one embodiment, the water filtration system includes a first filter element, a second filter element, a third filter element, an inlet valve, a booster pump, a fourth filter element, and a fifth filter element. The first, second, third, inlet valve, booster pump, fourth, and fifth filter elements are sequentially connected via pipelines, and the wastewater discharge system is connected to the fourth filter element. The arrangement of the first, second, third, fourth, and fifth filter elements achieves multiple filtration of the water, effectively improving water quality. The first, second, third, fourth, and fifth filter elements can be configured according to requirements. Preferably, the first filter element contains a filter cartridge made of polypropylene material, the second filter element contains activated carbon, the third filter element contains a filter cartridge made of polypropylene material, the fourth filter element contains a reverse osmosis membrane, and the fifth filter element contains activated carbon.
[0019] A water purifier includes: the aforementioned water circuit system that also has cooling and heating functions.
[0020] The second aspect of this application discloses a water purifier that, through the aforementioned water circuit system that combines cooling and heating functions, can output hot water, room temperature water, and cold water as needed, thus meeting diverse user requirements. Furthermore, the room temperature water is sterilized before being output, improving the purity of the purified water. Moreover, the sterilized room temperature water can be selectively output from either the hot water outlet or the cold water outlet. Attached Figure Description
[0021] Figure 1 A schematic diagram of the connection of a water system that combines cooling and heating functions;
[0022] Figure 2 This is a connection diagram of the cold water output system;
[0023] Figure 3 This is a connection diagram of a normal temperature water circuit system;
[0024] Figure 4 This is a connection diagram of the hot water output system;
[0025] Figure 5 A schematic diagram showing the connection of the water tank assembly, liquid level float, mechanical float, and UV lamp;
[0026] Figure 6 This is a connection diagram of a water filtration system.
[0027] Figure 7 A first perspective view of the water tank assembly, hot water output system, cold water output system, ambient temperature water circuit system, shell assembly, and water filtration system;
[0028] Figure 8 A second perspective view of the water tank assembly, hot water output system, cold water output system, ambient temperature water circuit system, shell assembly, and water filtration system;
[0029] Figure 9 A sectional view of the water tank assembly, hot water output system, cold water output system, ambient temperature water circuit system, shell assembly, and water filtration system;
[0030] Figure 10 Exploded view of the water tank assembly, hot water output system, cold water output system, ambient temperature water circuit system, shell assembly, and water filtration system;
[0031] Figure 11 This is a 3D view of the water tank assembly;
[0032] Figure 12 This is an exploded view of the water tank assembly.
[0033] Figure 13 A 3D view of the ice chamber components;
[0034] Figure 14 This is a 3D view of the heat sink assembly;
[0035] Figure 15 This is a 3D view of a booster pump.
[0036] The correspondence between the reference numerals and the component names is as follows:
[0037] 1. Water tank assembly, 101. Liquid storage chamber, 102. First water outlet, 103. Second water outlet, 104. Water inlet;
[0038] 2 Hot water output system, 21 Heat tank assembly, 22 Fourth valve body, 201 Hot water outlet;
[0039] 3. Cold water output system, 31. Ice tank assembly, 32. First valve body, 301. Cold water outlet;
[0040] 4. Ambient temperature water circuit system; 41. Sterilizer; 42. Second valve body; 43. Third valve body;
[0041] 5 housing assembly, 501 first cavity, 502 second cavity, 503 third cavity;
[0042] 6. Water filtration system, 61. First filter element, 62. Second filter element, 63. Third filter element, 64. Inlet valve, 65. Booster pump, 66. Fourth filter element, 67. Fifth filter element;
[0043] 7. Liquid level float;
[0044] 8 mechanical floats;
[0045] 9 UV lamps;
[0046] 10 Wastewater discharge system. Detailed Implementation
[0047] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0048] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present invention is not limited to the specific embodiments disclosed below.
[0049] Example 1
[0050] like Figure 1-15As shown in the figure, this embodiment discloses a water circuit system with both cooling and heating functions, including: a water tank assembly 1, which has a liquid storage chamber 101, a first water outlet 102 and a second water outlet 103, both of which are connected to the liquid storage chamber 101; a hot water output system 2, which is connected to the first water outlet 102, and has a hot water output path and a hot water outlet 201, which is connected to the hot water output path; a cold water output system 3, which is connected to the second water outlet 103, and has a cold water output path and a cold water outlet 301, which is connected to the cold water output path; and a normal temperature water circuit system 4, which is connected to the second water outlet 103 and is connected to the hot water outlet 201 and / or the cold water outlet 301.
[0051] The first aspect of this application discloses a water system that combines cooling and heating functions. A hot water output system 2 is connected to a first outlet 102, and a cold water output system 3 is connected to a second outlet 103. This allows the hot water output system 2 and the cold water output system 3 to operate independently without interference, ensuring a stable output of both hot and cold water. The ambient temperature water system 4 outputs sterilized ambient temperature water. Therefore, this product can output hot, cold, and ambient temperature water, meeting diverse user needs. When users require cold water, no additional equipment is needed to cool the purified water, making it convenient and quick for users. Furthermore, the sterilized ambient temperature water can be selectively output from either the hot water outlet 201 or the cold water outlet 301, resulting in a smoother ambient temperature water output. Since both the ambient temperature water system 4 and the cold water output system 3 are connected to the second outlet 103, redundant outlets are reduced, lowering the overall complexity of the water system and effectively reducing costs.
[0052] like Figure 1-2 , Figure 10 and Figure 13As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the cold water output system 3 includes an ice tank assembly 31 and a first valve body 32; the second outlet 103, the ice tank assembly 31, and the cold water outlet 301 are sequentially connected; the second outlet 103, the first valve body 32, and the ice tank assembly 31 are sequentially connected, and the first valve body 32 is used to control the opening and closing of the water passage between the second outlet 103 and the ice tank assembly 31. Because the first valve body 32 is located in the water passage between the second outlet 103 and the ice tank assembly 31, the opening and closing of the cold water output system 3 can be precisely controlled according to requirements, allowing for the start or stop of cold water output, with a simple and quick control method. This design can output cold water to meet the diverse needs of users.
[0053] like Figure 1 and Figure 2 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the ice tank assembly 31, the first valve body 32, and the cold water outlet 301 are sequentially connected, and the first valve body 32 is used to control the flow of water between the ice tank assembly 31 and the cold water outlet 301. By positioning the first valve body 32 between the ice tank assembly 31 and the cold water outlet 301, it is ensured that chilled water is output on demand, reducing temperature rise. This design can avoid or reduce cooling loss during non-cooling periods.
[0054] like Figure 1 and Figure 3 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the ambient temperature water system 4 includes a sterilizer 41, a second valve body 42, and a third valve body 43; the second outlet 103, the sterilizer 41, the second valve body 42, and the hot water outlet 201 are sequentially connected; the second valve body 42 is used to control the flow of water between the sterilizer 41 and the hot water outlet 201; the second outlet 103, the sterilizer 41, the third valve body 43, and the cold water outlet 301 are sequentially connected; the third valve body 43 is used to control the flow of water between the sterilizer 41 and the cold water outlet 301. The sterilizer 41 can sterilize and disinfect the liquid in the ambient temperature water system 4, ensuring the cleanliness and safety of the water. The independent configuration of the second valve body 42 and the third valve body 43 allows control over the output of sterilized ambient temperature water towards either the hot water outlet 201 or the cold water outlet 301, meeting diverse user needs.
[0055] like Figure 1 and Figure 3As shown, in addition to the features of the above embodiments, this embodiment further specifies that the sterilizer 41 is connected to the water path located between the second water outlet 103 and the ice chamber assembly 31. By connecting the sterilizer 41 to the water path between the second water outlet 103 and the ice chamber assembly 31, the sterilization water path can directly obtain source water that has not been cooled by the ice chamber assembly 31, ensuring the normal output of room temperature water. This design avoids the impact of the cooling process on the room temperature water temperature and reduces the need for independent pipes through water path sharing, resulting in a simpler overall structure and lower cost.
[0056] like Figure 1 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the ice tank assembly 31, the first valve body 32, and the cold water outlet 301 are sequentially connected, and the third valve body 43 is connected to the water passage located between the first valve body 32 and the cold water outlet 301. By connecting the third valve body 43 to the water passage between the first valve body 32 and the cold water outlet 301, the first valve body 32 cuts off the flow when room temperature water is output from the cold water outlet 301, thereby achieving water passage sharing, reducing independent pipes, and also avoiding or reducing the temperature impact of the liquid output from the ice tank assembly 31 on the room temperature water.
[0057] like Figure 1 , Figure 4 and Figure 14 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the hot water output system 2 includes a heating element assembly 21 and a fourth valve body 22; the first outlet 102, the heating element assembly 21, and the hot water outlet 201 are sequentially connected; the first outlet 102, the fourth valve body 22, the heating element assembly 21, and the hot water outlet 201 are sequentially connected, and the fourth valve body 22 is used to control the flow of water between the first outlet 102 and the heating element assembly 21. When the fourth valve body 22 is installed at the inlet end of the heating element assembly 21, the water flow into the heating element can be precisely controlled, avoiding energy waste caused by ineffective heating.
[0058] like Figure 1 and Figure 4As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the first water outlet 102, the heating element assembly 21, the fourth valve body 22, and the hot water outlet 201 are sequentially connected. The fourth valve body 22 is used to control the opening and closing of the water passage between the heating element assembly 21 and the hot water outlet 201. The second valve body 42 is connected to the water passage located between the heating element assembly 21 and the hot water outlet 201. When the fourth valve body 22 is installed at the water outlet end of the heating element assembly 21, it can ensure that the heated hot water is output on demand, reducing heat loss. By connecting the second valve body 42 to the water passage located between the heating element assembly 21 and the hot water outlet 201, and cutting off the flow of room temperature water from the hot water outlet 201, water passage sharing can be achieved, reducing independent pipes, while also avoiding or reducing the influence of the liquid output from the heating element assembly 21 on the temperature of the room temperature water.
[0059] like Figure 7-10 As shown, in addition to the features of the above embodiments, this embodiment further includes: a housing assembly 5, which has a first cavity 501, a second cavity 502, and a third cavity 503; a water tank assembly 1 is disposed on the housing assembly 5 and located within the first cavity 501; a heating element assembly 21 and an ice element assembly 31 are both disposed on the housing assembly 5 and located within the second cavity 502; and a water filtration system 6 is disposed on the housing assembly 5 and located within the third cavity 503. The arrangement of the first cavity 501, the second cavity 502, and the third cavity 503 achieves a reasonable layout and functional isolation of the components of the water system, which has both cooling and heating functions, resulting in a more rational design.
[0060] like Figure 1 and Figure 5 As shown, in addition to the features of the above embodiments, this embodiment further includes a liquid level float 7, which is disposed on the water tank assembly 1 and located within the liquid storage chamber 101. The liquid level float 7 allows for real-time sensing of water level changes within the liquid storage chamber 101. Water is added when the water level is below a set threshold, and the system stops when the water level is above the set threshold, ensuring that the water tank assembly 1 always maintains a reasonable water storage level. This design avoids the risk of overflow due to excessive water storage and prevents insufficient water storage from affecting the normal operation of the system.
[0061] like Figure 1 , Figure 5 and Figure 11-12As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the water tank assembly 1 is provided with a water inlet 104 communicating with the liquid storage chamber 101, and also includes a mechanical float 8. The mechanical float 8 is disposed on the water tank assembly 1 and located inside the liquid storage chamber 101, and the mechanical float 8 can block the water inlet 104. The mechanical float 8 can prevent pure water from flowing into the water tank assembly 1 from the water inlet 104. This design can prevent the liquid level float 7 from failing and causing the machine to continuously replenish water to the water tank assembly 1, resulting in overflow.
[0062] like Figure 1 and Figure 5 As shown, in addition to the features of the above embodiments, this embodiment further includes a UV lamp 9, which is disposed on the water tank assembly 1 and is used to disinfect the liquid in the storage chamber 101. The UV lamp 9 can kill bacteria in the water, further improving water quality.
[0063] like Figure 1 and Figure 6 As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the water tank assembly 1 is provided with a water inlet 104, and also includes a water filtration system 6 and a wastewater discharge system 10. The water filtration system 6 is provided with a raw water inlet and a filtration water path. The filtration water path is connected to the raw water inlet and the water inlet 104. The wastewater discharge system 10 is connected to the water filtration system 6. Through the direct connection between the water filtration system 6 and the water inlet 104 of the water tank assembly 1, the raw water filtration and purification functions are realized. Through the connection between the wastewater discharge system 10 and the water filtration system 6, the wastewater generated during the filtration process can be discharged in a timely manner, avoiding the accumulation of impurities that affect the filtration effect.
[0064] like Figure 1 and Figure 6As shown, in addition to the features of the above embodiments, this embodiment further specifies that: the water filtration system 6 includes a first filter element 61, a second filter element 62, a third filter element 63, an inlet valve 64, a booster pump 65, a fourth filter element 66, and a fifth filter element 67. The first filter element 61, the second filter element 62, the third filter element 63, the inlet valve 64, the booster pump 65, the fourth filter element 66, and the fifth filter element 67 are sequentially connected by pipes, and the wastewater discharge system 10 is connected to the fourth filter element 66. The arrangement of the first filter element 61, the second filter element 62, the third filter element 63, the fourth filter element 66, and the fifth filter element 67 achieves multiple filtration of water, effectively improving water quality. The first filter element 61, the second filter element 62, the third filter element 63, the fourth filter element 66, and the fifth filter element 67 can be configured according to requirements. Preferably, the first filter element 61 contains a filter cartridge made of polypropylene material, the second filter element 62 contains activated carbon, the third filter element 63 contains a filter cartridge made of polypropylene material, the fourth filter element 66 contains a reverse osmosis filter membrane, and the fifth filter element 67 contains activated carbon.
[0065] Example 2
[0066] This embodiment discloses a water purifier, including: the above-mentioned water circuit system that has both cooling and heating functions.
[0067] The second aspect of this application discloses a water purifier that, through the aforementioned water circuit system that combines cooling and heating functions, can output hot water, room temperature water, and cold water as needed, thus meeting diverse user requirements. Furthermore, the room temperature water is sterilized before being output, improving the purity of the purified water. Moreover, the sterilized room temperature water can be selectively output from either the hot water outlet 201 or the cold water outlet 301.
[0068] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. A water system that combines cooling and heating functions, characterized in that, include: A water tank assembly (1) is provided with a liquid storage chamber (101), and the water tank assembly (1) is provided with a first water outlet (102) and a second water outlet (103), both of which are connected to the liquid storage chamber (101). Hot water output system (2), the hot water output system (2) is connected to the first water outlet (102), the hot water output system (2) is provided with a hot water output water path and a hot water outlet (201), the hot water outlet (201) is connected to the hot water output water path; A cold water output system (3) is connected to the second outlet (103). The cold water output system (3) is provided with a cold water output channel and a cold water outlet (301). The cold water outlet (301) is connected to the cold water output channel. A normal temperature water system (4) is connected to the second water outlet (103) and is connected to the hot water outlet (201) and / or the cold water outlet (301).
2. The water system with both cooling and heating functions according to claim 1, characterized in that, The cold water output system (3) includes an ice tank assembly (31) and a first valve body (32), and the second water outlet (103), the ice tank assembly (31) and the cold water outlet (301) are connected in sequence; The second water outlet (103), the first valve body (32), and the ice tank assembly (31) are connected in sequence. The first valve body (32) is used to control the flow of water between the second water outlet (103) and the ice tank assembly (31). The ice tank assembly (31), the first valve body (32), and the cold water outlet (301) are connected in sequence. The first valve body (32) is used to control the flow of water between the ice tank assembly (31) and the cold water outlet (301).
3. The water route system having both refrigeration and heating functions according to claim 2, wherein The ambient temperature water system (4) includes a sterilizer (41), a second valve body (42), and a third valve body (43). The second outlet (103), the sterilizer (41), the second valve body (42), and the hot water outlet (201) are connected in sequence. The second valve body (42) is used to control the flow of water between the sterilizer (41) and the hot water outlet (201). The second outlet (103), the sterilizer (41), the third valve body (43), and the cold water outlet (301) are connected in sequence. The third valve body (43) is used to control the flow of water between the sterilizer (41) and the cold water outlet (301).
4. The water system with both cooling and heating functions according to claim 3, characterized in that, The sterilizer (41) is connected to the water passage located between the second water outlet (103) and the ice chamber assembly (31); The ice chamber assembly (31), the first valve body (32), and the cold water outlet (301) are sequentially connected, and the third valve body (43) is connected to the water passage located between the first valve body (32) and the cold water outlet (301).
5. The water system with both cooling and heating functions according to claim 3, characterized in that, The hot water output system (2) includes a heating element assembly (21) and a fourth valve body (22), and the first outlet (102), the heating element assembly (21) and the hot water outlet (201) are connected in sequence; The first water outlet (102), the fourth valve body (22), and the heating element assembly (21) are connected in sequence. The fourth valve body (22) is used to control the flow of water between the first water outlet (102) and the heating element assembly (21). And / or, the heating element assembly (21), the fourth valve body (22), and the hot water outlet (201) are connected in sequence. The fourth valve body (22) is used to control the flow of water between the heating element assembly (21) and the hot water outlet (201). The second valve body (42) is connected to the water path between the heating element assembly (21) and the hot water outlet (201).
6. The water route system having both refrigeration and heating functions according to claim 5, wherein It also includes a housing assembly (5), which has a first cavity (501), a second cavity (502) and a third cavity (503). The water tank assembly (1) is disposed on the housing assembly (5) and located in the first cavity (501). The heating element assembly (21) and the ice element assembly (31) are both disposed on the housing assembly (5) and located in the second cavity (502). It also includes a water filtration system (6), which is disposed on the housing assembly (5) and located in the third cavity (503).
7. The water system with both cooling and heating functions according to claim 1, characterized in that, It also includes a liquid level float (7), which is disposed on the water tank assembly (1) and located in the liquid storage chamber (101); And / or the water tank assembly (1) is provided with an inlet (104) communicating with the liquid storage chamber (101), and also includes a mechanical float (8), the mechanical float (8) being disposed on the water tank assembly (1) and located in the liquid storage chamber (101), the mechanical float (8) being able to block the inlet (104); And / or may also include a UV lamp (9) disposed on the water tank assembly (1) for disinfecting the liquid in the storage chamber (101).
8. The water route system having a cooling and heating function according to claim 1, wherein The water tank assembly (1) is provided with a water inlet (104), and also includes a water filtration system (6) and a wastewater discharge system (10). The water filtration system (6) is provided with a raw water inlet and a filtration water path. The filtration water path is connected to the raw water inlet and the filtration water path is connected to the water inlet (104). The wastewater discharge system (10) is connected to the water filtration system (6).
9. The water route system having a cooling and heating function according to claim 8, wherein The water filtering system (6) comprises a first filter (61), a second filter (62), a third filter (63), a water inlet valve (64), a booster pump (65), a fourth filter (66) and a fifth filter (67), which are sequentially communicated by pipelines, and the wastewater discharge system (10) is communicated with the fourth filter (66).
10. A water purifier characterized by comprising: Comprise: The water circuit system with refrigeration and heating functions according to any one of claims 1-9.