Continuous water supply connecting assembly
By designing a continuous water supply connection component, the interconnection between the heating network system and the demineralized water system is realized, solving the stability problem of traditional heating systems when hot water supply demand increases, and achieving efficient utilization of water resources and cost reduction.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XINJIANG HUADIAN HAMI THERMAL POWER CO LTD
- Filing Date
- 2025-05-07
- Publication Date
- 2026-05-12
AI Technical Summary
Traditional heating systems cannot guarantee water production when hot water demand increases, leading to system instability. Furthermore, the demineralized water system is not interconnected with the water supply system, resulting in water waste and impacting heating.
Design a continuous water supply connection component that enables bidirectional flow between the heating network system and the demineralized water system through the interconnection of a reverse osmosis water tank, a booster pump, a desalination component, and a water treatment component, thereby enhancing the stability of the water supply system and the secondary utilization of water resources.
It improved the stability of the water supply system, reduced water waste, enabled the secondary use of demineralized water, and lowered operating costs.
Smart Images

Figure CN224230109U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of continuous water supply technology, specifically a continuous water supply connection component. Background Technology
[0002] Continuous water supply refers to a water system that can continuously provide users with water that meets quality requirements within a certain time frame. Traditional heating systems use a one-way water supply method, heating water through a heat network system. When the hot water supply area increases significantly, the amount of water replenished to the heat network system also increases. At this time, the water production capacity of the traditional heating system may not be able to meet the needs of production and heating, which may seriously affect the overall operation. At the same time, demineralized water needs to be added for treatment during heating. However, the traditional water supply system and demineralized water system are not interconnected, and the treated demineralized water cannot be reused, wasting water resources and potentially affecting the normal use of water supply during heating. Utility Model Content
[0003] The purpose of this invention is to provide a continuous water supply connection component to solve the problems mentioned in the background art, where traditional heating systems use unilateral water supply and heating through a heat network system. When the hot water supply area increases significantly, the amount of water replenished to the heat network system also increases. At this time, the water production capacity of the traditional heating system cannot meet the needs of production and heating, and in severe cases, it will affect the overall operation. At the same time, demineralized water needs to be added for treatment during heating, but the traditional water supply system and demineralized water system are not interconnected, and the treated demineralized water cannot be reused, wasting water resources and potentially affecting the normal use of water supply during heating.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a continuous water supply connection assembly, including a reverse osmosis water tank, the output end of which is fixedly connected to a first connecting pipe, the output end of which is fixedly connected to a first tee pipe, one end of which is fixedly connected to a second connecting pipe, the other end of which is fixedly connected to a connection control assembly, the output end of which is fixedly connected to a booster pump, one end of which is fixedly connected to a fifth tee pipe, the output end of which is fixedly connected to a desalination assembly, the other output end of which is fixedly connected to a fourth connecting pipe, and one end of which is fixedly connected to one side of the middle of the connection control assembly, the other side of which is fixedly connected to a water treatment assembly. During the operation of the heating system, water can flow in normally, and the water inside the small water tank 25 is circulated through the heating network system for heat stabilization. When the desalination pump 18 is turned on, overall interconnection is achieved.
[0005] Preferably, the connection control component includes a No. 1 heating network water supply pump and a No. 2 heating network water supply pump, which together form a heating network water supply circulation system. The output end of the heating network water supply circulation system is fixedly connected to a first automatic water flow valve, and the output end of the first automatic water flow valve is fixedly connected to a second automatic water flow valve. A fourth-phase primary station is fixedly connected between the first and second automatic water flow valves. The output end of the second automatic water flow valve is fixedly connected to a second tee pipe, and one of the output ends of the second tee pipe is fixedly connected to the output end of a fourth connecting pipe. The No. 1 heating network water supply pump and the No. 2 heating network water supply pump together form a heating network water supply circulation system. The heating network water supply circulation system is a hot water driving mechanism that can also increase the flow rate of the heating network pump to provide more heat and can also regulate and maintain the pressure of the heating system.
[0006] Preferably, one of the output ends of the second tee pipe is fixedly connected to a heating network connection gate, the output end of the heating network connection gate is fixedly connected to a third tee pipe, one of the output ends of the third tee pipe is fixedly connected to one end of a water treatment component, the other output end of the third tee pipe is fixedly connected to a fourth tee pipe, and one of the output ends of the fourth tee pipe is fixedly connected to a branch of the second phase first station via the third tee pipe, further improving the circulation interconnection.
[0007] Preferably, one of the output ends of the fourth tee pipe is fixedly connected to the fifth connecting pipe. A small water tank is fixedly connected to the port of the fifth connecting pipe. The output end of the small water tank is fixedly connected to the first heating network pump and the second hot water pump. The first heating network pump and the second hot water pump form a heating network circulation system. The heating network circulation system is fixedly connected to the surface of the fifth connecting pipe. A second main plant is fixedly connected to one side of the fifth connecting pipe. The heating network circulation system, in which the heating network water replenishment pump can replenish an appropriate amount of water to the system in a timely manner, keeps the system's water volume stable, and ensures the normal circulation of the heating system. By replenishing water, it is avoided that the system circulation is not smooth due to low pressure, which would affect the heating effect. The small water tank is a 200 cubic meter water tank.
[0008] Preferably, the desalination assembly includes a sixth connecting pipe, one end of which is fixedly connected to a desalination pump, one end of which is fixedly connected to the first main plant, the other end of which is fixedly connected to the fourth-phase desalination tank, and the other output end of the fifth tee pipe is fixedly connected to the sixth connecting pipe.
[0009] Preferably, the water treatment component includes a third connecting pipe, the output end of which is fixedly connected to a backwash water tank, and one side of the backwash water tank is fixedly connected to a treatment tank, wherein the backwash water tank is a water tank with a volume of 100 cubic meters.
[0010] Compared with existing technologies, the beneficial effects of this utility model are as follows: Unlike traditional systems, when water supply demand increases, an interconnected operation mode can be added. By supplying water to the heating network system through reverse osmosis for treatment, the water production capacity can be increased while simultaneously supplying water to the heating networks of several primary stations. At the same time, the demineralized water system and the hot water network system can be interconnected for secondary use, reducing water waste. The demineralized water treated by the interconnected demineralized water system can also be supplied to other main plant buildings through connecting pipes to meet supply needs, thereby reducing operating costs. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the interconnected continuous water supply component system of this utility model.
[0012] In the diagram: 1. Reverse osmosis water tank; 2. First connecting pipe; 3. First tee pipe; 4. No. 1 heating network makeup water pump; 5. Second connecting pipe; 6. First automatic water flow valve; 7. Phase IV first station; 8. Second automatic water flow valve; 9. Second tee pipe; 10. Heating network connecting door; 11. Third tee pipe; 12. Third connecting pipe; 13. Fourth tee pipe; 14. Backwash water tank; 15. Booster pump; 16. Fifth tee pipe; 17. No. 2 heating network makeup water pump; 18. Demineralization pump; 19. Phase IV demineralized water tank; 20. Fourth connecting pipe; 21. First main plant; 22. Phase II first station; 23. Second main plant; 24. First heating network pump; 25. Small water tank; 26. Second hot water pump; 27. Treatment tank; 28. Fifth connecting pipe; 29. Sixth connecting pipe. Detailed Implementation
[0013] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0014] Please see Figure 1This utility model provides a continuous water supply connection assembly, including a reverse osmosis water tank 1. The output end of the reverse osmosis water tank 1 is fixedly connected to a first connecting pipe 2. The output end of the first connecting pipe 2 is fixedly connected to a first tee pipe 3. One end of the first tee pipe 3 is fixedly connected to a second connecting pipe 5. The other end of the first tee pipe 3 is fixedly connected to a connection control assembly. The output end of the second connecting pipe 5 is fixedly connected to a booster pump 15. One end of the booster pump 15 is fixedly connected to a fifth tee pipe 16. The output end of the fifth tee pipe 16 is fixedly connected to a desalination assembly. The other output end of the fifth tee pipe 16 is fixedly connected to a fourth connecting pipe 20. One end of the fourth connecting pipe 20 is fixedly connected to one side of the middle of the connection control assembly. The other side of the connection control assembly is fixedly connected to a water treatment assembly. The reverse osmosis water flowing out of the reverse osmosis water tank 1 flows into the interior of the first main plant 21 through the second connecting pipe 5. At the same time, a portion of the water flows into the interior of the backwash water tank 14 through the opening of the heating network water supply system. Meanwhile, the water source inside the small water tank 25 can flow into the interior of the second main plant 23 through the heating network system.
[0015] In this embodiment, the connection control component includes a No. 1 heating network water supply pump 4 and a No. 2 heating network water supply pump 17, which together form a heating network water supply circulation system. The output end of the heating network water supply circulation system is fixedly connected to a first automatic water flow valve 6. The output end of the first automatic water flow valve 6 is fixedly connected to a second automatic water flow valve 8. A fourth-phase primary station 7 is fixedly connected between the first automatic water flow valve 6 and the second automatic water flow valve 8. The output end of the second automatic water flow valve 8 is fixedly connected to a second three-way pipe 9, and one of the output ends of the second three-way pipe 9 is fixedly connected to the output end of the fourth connecting pipe 20. The other output end of the second three-way pipe 9... The outlet is fixedly connected to a heating network connection gate 10. The output end of the heating network connection gate 10 is fixedly connected to a third tee pipe 11. One of the output ends of the third tee pipe 11 is fixedly connected to one end of a water treatment component. The other output end of the third tee pipe 11 is fixedly connected to a fourth tee pipe 13. One of the output ends of the fourth tee pipe 13 is fixedly connected to the second phase first station 22. Now, the first automatic water flow valve 6, the second automatic water flow valve 8 and the heating network connection gate 10 on this connection pipe are opened. The reverse osmosis water can flow into the interior of the fourth phase first station 7 through the heating network water replenishment circulation system. At the same time, it can also be connected to the interior of the first main plant 21 through the fourth connection pipe 20.
[0016] In this embodiment of the application, one of the output ends of the fourth tee pipe 13 is fixedly connected to the fifth connecting pipe 28. The port of the fifth connecting pipe 28 is fixedly connected to a small water tank 25. The output end of the small water tank 25 is fixedly connected to the first heat network pump 24 and the second hot water pump 26. The first heat network pump 24 and the second hot water pump 26 form a heat network circulation system. The heat network circulation system is fixedly connected to the surface of the fifth connecting pipe 28. One side of the fifth connecting pipe 28 is fixedly connected to the second main plant 23. The reverse osmosis water can flow into the second phase first station 22 through the fourth tee pipe 13. At the same time, the water in the small water tank 25 can flow out through the heat network circulation system and flow to different sites through branches.
[0017] In use, the desalination assembly includes a sixth connecting pipe 29. One end of the sixth connecting pipe 29 is fixedly connected to a desalination pump 18, and one end of the desalination pump 18 is fixedly connected to a first main plant 21. The other end of the desalination pump 18 is fixedly connected to a fourth-stage desalination tank 19. The other output end of the fifth tee pipe 16 is fixedly connected to the sixth connecting pipe 29. When the desalination pump 18 is turned on, the brine can be transferred to both sides through the sixth connecting pipe 29 for mutual exchange.
[0018] In use, the water treatment assembly of this application includes a third connecting pipe 12, the output end of which is fixedly connected to a backwash water tank 14, and one side of the backwash water tank 14 is fixedly connected to a treatment tank 27. Saltwater can be flowed into the backwash water tank 14 through the third connecting pipe 12.
[0019] In this embodiment of the application, during heating, reverse osmosis water flows into the No. 1 heating network makeup water pump 4 and the No. 2 heating network makeup water pump 17 through the reverse osmosis water tank 1. The first automatic water flow valve 6 is opened, and the reverse osmosis water flows into the fourth phase first station 7. The water source inside the small water tank 25 flows out through the heating network pump circulation system. The water source then flows into the second main plant 23 through the fifth connecting pipe 28. At the same time, the demineralization pump 18 is opened, and the brine inside the fourth phase demineralization tank 19 flows into the left and right sides through the sixth connecting pipe 29. On the left side, the booster pump 15 is opened, and the brine can flow into the reverse osmosis water tank 1 through the second connecting pipe 5. At the same time, on the right side, the valve on the fourth connecting pipe 20 can be opened to allow the brine to flow into the fourth phase first station 7. When the heating network connecting door 10 is opened, the brine can flow into the backwash water tank 14 through the third connecting pipe 12 and then flow out. The interconnection between the demineralized water and the hot water network can be achieved by closing the valve.
[0020] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A continuous water supply connection assembly, comprising a reverse osmosis water tank (1), characterized in that: The output end of the reverse osmosis water tank (1) is fixedly connected to a first connecting pipe (2), the output end of the first connecting pipe (2) is fixedly connected to a first tee pipe (3), one end of the first tee pipe (3) is fixedly connected to a second connecting pipe (5), the other end of the first tee pipe (3) is fixedly connected to a control component, the output end of the second connecting pipe (5) is fixedly connected to a booster pump (15), one end of the booster pump (15) is fixedly connected to a fifth tee pipe (16), the output end of the fifth tee pipe (16) is fixedly connected to a desalination component, the other output end of the fifth tee pipe (16) is fixedly connected to a fourth connecting pipe (20), and one end of the fourth connecting pipe (20) is fixedly connected to one side of the control component, the other side of the control component is fixedly connected to a water treatment component.
2. The continuous water supply connection assembly according to claim 1, characterized in that: The connection control component includes a No. 1 heating network water supply pump (4) and a No. 2 heating network water supply pump (17), and the No. 1 heating network water supply pump (4) and the No. 2 heating network water supply pump (17) form a heating network water supply circulation system. The output end of the heating network water supply circulation system is fixedly connected to a first automatic water flow valve (6), the output end of the first automatic water flow valve (6) is fixedly connected to a second automatic water flow valve (8), the first automatic water flow valve (6) and the second automatic water flow valve (8) are fixedly connected to the fourth phase first station (7), the output end of the second automatic water flow valve (8) is fixedly connected to a second three-way pipe (9), and one of the output ends of the second three-way pipe (9) is fixedly connected to the output end of the fourth connecting pipe (20).
3. A continuous water supply connection assembly according to claim 2, characterized in that: The other output end of the second tee pipe (9) is fixedly connected to the heating network connection gate (10), the output end of the heating network connection gate (10) is fixedly connected to the third tee pipe (11), one output end of the third tee pipe (11) is fixedly connected to one end of the water treatment component, the other output end of the third tee pipe (11) is fixedly connected to the fourth tee pipe (13), and one output end of the fourth tee pipe (13) is fixedly connected to the second phase first station (22).
4. A continuous water supply connection assembly according to claim 3, characterized in that: One of the output ends of the fourth three-way pipe (13) is fixedly connected to the fifth connecting pipe (28). A small water tank (25) is fixedly connected to the port of the fifth connecting pipe (28). The output end of the small water tank (25) is fixedly connected to the first heat network pump (24) and the second hot water pump (26). The first heat network pump (24) and the second hot water pump (26) form a heat network circulation system. The heat network circulation system is fixedly connected to the surface of the fifth connecting pipe (28). A second main plant (23) is fixedly connected to one side of the fifth connecting pipe (28).
5. A continuous water supply connection assembly according to claim 1, characterized in that: The desalination assembly includes a sixth connecting pipe (29), one end of which is fixedly connected to a desalination pump (18), one end of which is fixedly connected to the first main plant (21), and the other end of which is fixedly connected to a fourth-phase desalination tank (19). The other output end of the fifth tee pipe (16) is fixedly connected to the sixth connecting pipe (29).
6. A continuous water supply connection assembly according to claim 1, characterized in that: The water treatment assembly includes a third connecting pipe (12), the output end of which is fixedly connected to a backwash water tank (14), and one side of the backwash water tank (14) is fixedly connected to a treatment tank (27).