Water supply treatment system

By setting the outlet of the water storage tank higher than the inlet of the water supply pump in the water supply treatment system, and by using a switching structure to switch the water path, the problems of high current and high power consumption of the water supply pump are solved, thereby achieving energy saving and consumption reduction and extending the service life of the water supply system.

CN224133843UActive Publication Date: 2026-04-17蒙牛乳业(宁夏)有限公司 +1
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
蒙牛乳业(宁夏)有限公司
Filing Date
2025-05-14
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Traditional water supply systems have high operating current and increased power consumption of water pumps, resulting in high electricity costs, shortened service life, and increased maintenance and repair costs.

Method used

Design a water supply treatment system in which the outlet of the water storage tank is higher than the inlet of the water supply pump. By switching the structure, the gravity water supply path and the gravity booster water supply path can be selectively switched. The water storage tank itself is used to supply water when the water consumption is low, and the water supply pump is switched to supply water when the water consumption is high, thereby reducing the operating frequency and load of the water supply pump.

Benefits of technology

It effectively reduces the operating frequency and power consumption of water supply pumps, reduces equipment electricity and maintenance costs, and improves water supply efficiency, meeting the requirements of energy conservation and consumption reduction.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224133843U_ABST
    Figure CN224133843U_ABST
Patent Text Reader

Abstract

The utility model relates to the related technical field of workshop water supply treatment, and provides a water supply treatment system which comprises a bearing platform, a water supply pipeline, a water storage tank, a water supply pump, a first water path and a second water path, the water outlet end of the water supply pump is communicated with the water supply pipeline, one end of the first water path is communicated with the water outlet end of the water storage tank, and the other end of the first water path is communicated with the water inlet end of the water supply pump. The water outlet end of the water storage tank is higher than the water inlet end of the water supply pump, the water inlet end of the water supply pump is kept to have large enough water pressure through fall, the requirement for a large amount of water is met, meanwhile, the operation frequency and the number of started water supply pumps are effectively reduced, and the water supply efficiency is improved. The load of the water supply pump during long-time operation is reduced, normal water supply is not affected, the construction cost is saved, and the requirements for energy conservation and consumption reduction are met.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the technical field of workshop water supply treatment, and in particular to a water supply treatment system. Background Technology

[0002] In related technologies, traditional factories have water treatment systems installed in their water treatment workshops. These systems include water tanks, water pumps, and water pipelines. The water tanks are supplied to the workshop's water supply pipelines via the water pumps. However, in these systems, the water tanks and water pumps are at the same horizontal level. When the water pumps are working, the inlet end is basically level with the water tank, resulting in low inlet water pressure. Consequently, the water pumps have high operating current and increased power consumption, increasing the equipment's electricity costs. This also accelerates the lifespan of the water pumps and correspondingly increases the maintenance and repair costs of the facilities in the later stages. Utility Model Content

[0003] This utility model provides a water supply treatment system to solve the problems in related technologies where the water supply pump has a large operating current and increased power consumption, which increases the power cost of the equipment, accelerates the service life of the water supply pump, and also increases the maintenance and repair costs of the facilities in the later stage.

[0004] This utility model provides a water supply treatment system, including:

[0005] Supporting platform;

[0006] Water supply pipelines are used to supply water to the water treatment area;

[0007] A water storage tank, wherein the water storage tank is disposed on the supporting platform;

[0008] A water supply pump is located on one side of the water storage tank, and the outlet of the water supply pump is connected to the water supply pipeline.

[0009] The first water channel has one end connected to the outlet of the water storage tank and the other end connected to the inlet of the water supply pump.

[0010] The second water passage has one end connected to the outlet of the water storage tank and the other end connected to the water supply pipeline.

[0011] A switching structure is provided for selectively switching between the first waterway and the second waterway.

[0012] The water outlet of the water storage tank is positioned higher than the water inlet of the water supply pump.

[0013] According to the water supply treatment system provided by this utility model, the switching structure includes a first switching unit and a second switching unit;

[0014] The first switching unit is located on the first water line, and the first switching unit is used to control the on / off state of the water outlet of the water storage tank and the water inlet of the water supply pump.

[0015] The second switching unit is located on the second water line, and the second switching unit is used to control the on / off state of the water outlet of the water storage tank and the water supply pipeline.

[0016] According to the water supply treatment system provided by this utility model, both the first switching unit and the second switching unit are located below the outlet end of the water storage tank.

[0017] According to the water supply treatment system provided by this utility model, at least one of the first switching unit and the second switching unit is an automatic switching device.

[0018] According to the water supply treatment system provided by this utility model, the automatic switching device is an electric valve.

[0019] According to the present invention, a water supply treatment system is provided, wherein the supporting platform has a first layer and a second layer, and the first layer is located above the second layer.

[0020] The water storage tank is located in the first layer section, and the water supply pump is located in the second layer section.

[0021] According to the present invention, a water supply treatment system is provided in which the water storage tank is provided with a cleaning structure for cleaning the interior.

[0022] According to the water supply treatment system provided by this utility model, the water storage tank is provided with a water inlet and a water inlet pipe, and the cleaning structure is provided corresponding to the water inlet;

[0023] The water inlet pipe is connected to the water inlet end of the cleaning structure.

[0024] According to the present invention, a water treatment system is provided, wherein the cleaning structure is a high-pressure rotary nozzle.

[0025] According to the water supply treatment system provided by this utility model, there are multiple water storage tanks, water supply pumps and water supply pipelines, and each of the three is set up in a one-to-one correspondence.

[0026] The water supply system provided by this utility model has a water storage tank with its outlet positioned higher than the water supply pump's inlet. The outlet of the water storage tank is equipped with a first water path and a second water path. The first water path is a gravity-boosted water supply path, and the second water path is a gravity-driven water path. A switching structure selectively switches between the first and second water paths, ensuring that the corresponding water path is in operation as needed. Specifically, the switching mechanism is configured such that when the first water path is activated, the second water path is closed, and vice versa, thereby enabling individual control of each water path's operation.

[0027] When the workshop's water consumption is low, the water supply pump and corresponding water circuit are cut off by switching the structure, and water is supplied to the water supply pipe by gravity using the water pressure inside the tank. During peak water consumption periods, the switching structure switches to the water supply pump to supply water to the water supply pipe. At this time, the water level in the storage tank is kept at its highest, and the water pressure at the inlet of the water supply pump is kept high enough to meet the demand for large amounts of water. This effectively reduces the operating frequency and number of water supply pumps that need to be turned on, reducing the load on the water supply pumps during long-term operation, while not affecting normal water supply. This saves construction costs and meets the requirements of energy conservation and consumption reduction. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0029] Figure 1 This is a simplified structural diagram of the water supply treatment system provided by this utility model.

[0030] Figure 2 This is a schematic diagram of the structure of the water storage tank provided by this utility model.

[0031] Figure label:

[0032] 100. Supporting platform; 110. First-level section; 120. Second-level section;

[0033] 200. Water supply pipeline; 300. Water storage tank; 310. Water inlet; 320. Water inlet pipeline; 400. Water supply pump;

[0034] 500, First water channel; 600, Second water channel; 710, First switching unit; 720, Second switching unit; 800, Cleaning structure. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0036] It should be noted that in traditional workshop water treatment layouts, under the same power and flow conditions, the water supply pump 400 and the water storage tank 300 (box) in traditional factories are at the same horizontal height. When the water supply pump 400 is working, since the water inlet is basically level with the water tank, the water pressure is low, resulting in a large operating current and increased power consumption. In addition, multiple water supply pumps 400 need to be set up to cooperate with the same water tank, which increases the power cost of the equipment and also accelerates the service life of the water supply pump 400. The maintenance and repair costs of the facilities in the later stage also increase accordingly.

[0037] The following is combined Figures 1-2 The present invention describes a water supply treatment system, comprising a support platform 100, a water supply pipeline 200, a water storage tank 300, a water supply pump 400, a first water path 500, and a second water path 600. The water supply pipeline 200 supplies water to the water treatment area. The water storage tank 300 is disposed on the support platform 100. The water supply pump 400 is disposed on one side of the water storage tank 300, and the outlet end of the water supply pump 400 is connected to the water supply pipeline 200. One end of the first water path 500 is connected to the outlet end of the water storage tank 300, and the other end is connected to the inlet end of the water supply pump 400. One end of the second water path 600 is connected to the outlet end of the water storage tank 300, and the other end is connected to the water supply pipeline 200. A switching structure is used for selective switching between the first water path 500 and the second water path 600.

[0038] The outlet of the water storage tank 300 is positioned higher than the inlet of the water supply pump 400.

[0039] The water supply system provided by this utility model has a water outlet end of the water storage tank 300 positioned higher than the water inlet end of the water supply pump 400. The water outlet end of the water storage tank 300 is equipped with a first water path 500 and a second water path 600. The first water path 500 is a gravity-boosted water supply path, and the second water path 600 is a gravity-driven water path. A switching structure selectively switches between the first water path 500 and the second water path 600, ensuring that the corresponding water path is in operation as needed. Specifically, the switching mechanism is configured such that when the first water path 500 is activated, the second water path 600 is closed, and vice versa, thereby enabling individual control of the operation of each water path.

[0040] When the workshop's water consumption is low, the water supply pump 400 and its corresponding water circuit are shut off by switching the structure, and water is supplied to the water supply pipe by gravity using the water pressure inside the tank. During peak water consumption periods, the switching structure switches to water supply pump 400 to supply water to water supply pipe 200. At this time, the water level in storage tank 300 is kept at its highest, and the drop maintains sufficient water pressure at the inlet of water supply pump 400 to meet the demand for large amounts of water while effectively reducing the operating frequency and number of pumps 400 in operation. This reduces the load on water supply pump 400 during long-term operation without affecting normal water supply, saving construction costs and meeting the requirements of energy conservation and consumption reduction.

[0041] It should be noted that in this embodiment, the water storage tank 300 is equipped with a level switch, or the water storage tank 300 has high and low level positions, both equipped with level switches, to cooperate with the corresponding water circuit control. It can also be understood that the water storage tank 300 is an 80T capacity, cylindrical, three-dimensional water tank; to facilitate water discharge from the outlet end of the water storage tank 300, the inner wall of the outlet end at the bottom of the water storage tank 300 can be designed as an inverted conical shape, or equipped with a guide slope.

[0042] Understandably, referring to Figure 1 In this embodiment of the utility model, there are multiple water storage tanks 300, water supply pumps 400, and water supply pipelines 200, and each of the three is arranged in a one-to-one correspondence. Specifically, the water storage tanks 300 are used for various purposes, including mixing pure water, cleaning pure water storage, recycling, and ultrafiltration, and the water supply pipelines 200 are arranged in a one-to-one correspondence with the types of the aforementioned water storage tanks 300.

[0043] More specifically, refer to Figure 1 In this embodiment, there are six water storage tanks 300 to ensure that the liquid level in the six tanks meets production needs. The water pressure within the tanks increases the inlet pressure of the water supply pump 400. Compared to traditional workshop water treatment layouts, this reduces the number of water supply pumps 400 by one-third, achieving energy conservation and cost reduction while saving equipment costs. The pressure generated by the water in the tanks improves the water supply efficiency of the pumps 400. Furthermore, the system automatically selects between gravity-fed natural water supply from the tanks and gravity-boosted water supply from the pumps 400 based on water demand, reducing the investment in electricity costs.

[0044] Specifically, refer to Figure 1In this embodiment of the utility model, the switching structure includes a first switching unit 710 and a second switching unit 720; the first switching unit 710 is disposed on the first water passage 500 and is used to control the on / off state of the water outlet of the water storage tank 300 and the water inlet of the water supply pump 400; the second switching unit 720 is disposed on the second water passage 600 and is used to control the on / off state of the water outlet of the water storage tank 300 and the water supply pipeline 200.

[0045] The first water path 500 corresponds to the first switching unit 710, and the second water path 600 corresponds to the second switching unit 720. The on / off state of the corresponding water path can be controlled independently, allowing operators to switch between different water routes as needed, thus improving the flexibility of water use.

[0046] Specifically, in this embodiment of the invention, both the first switching unit 710 and the second switching unit 720 are positioned below the outlet of the water storage tank 300. Because the first switching unit 710 and the second switching unit 720 are located at a lower position, the connection pipes between the water storage tank 300 and the switching units can be simplified, reducing system complexity and installation costs; it also ensures that the water level in the tank is always higher than the switching units, maintaining stable system operation.

[0047] Specifically, in this embodiment of the invention, at least one of the first switching unit 710 and the second switching unit 720 is an automatic switching device. The automatic switching device can automatically switch the water flow based on preset conditions or real-time monitoring data without manual intervention, improving the automation level of the system. Automatic switching can quickly respond to changes in the water path, reducing efficiency losses caused by delays due to manual operation.

[0048] More specifically, both the first switching unit 710 and the second switching unit 720 are automatic switching devices, achieving interlocking and automation. The automatic switching device automatically switches between the two water circuits according to different water usage conditions, reducing the load on the water supply pump 400 during long-term operation, while not affecting normal water supply. This saves construction costs and meets the requirements of energy conservation and consumption reduction.

[0049] It should be noted that in this embodiment of the invention, the automatic switching device is an electric valve, such as an automatic shut-off valve or an automatic ball valve. Electric valves have a fast response speed and can complete the opening and closing action in a short time, making them suitable for occasions requiring rapid switching. They can precisely control the opening and closing, ensuring that the water circuit switches according to a preset program. Of course, in some embodiments, one of the first switching unit 710 and the second switching unit 720 is an automatic switching device, and the other is a manual switching device; this is not limited here.

[0050] Understandably, in some embodiments, the switching structure can also be a two-position three-way valve, where two ports correspond one-to-one with the first water path 500 and the second water path 600, and the third port is usually a common outlet or inlet. By switching the valve, the water flow can be switched from one path to another.

[0051] Specifically, refer to Figure 1 In this embodiment of the utility model, the supporting platform 100 has a first layer 110 and a second layer 120, with the first layer 110 located above the second layer 120; the water storage tank 300 is located in the first layer 110, and the water supply pump 400 is located in the second layer 120. The design employs a two-layer structure, utilizing the increased space below the supporting platform 100 to install the water supply pump 400 and pipelines, while the water storage tank 300 is positioned above, thus making full use of the limited space and rationally arranging the equipment installation.

[0052] It is understood that in some embodiments, to facilitate the positioning of the water storage tank 300, the supporting platform 100 is provided with an adjustable fixed-gap positioning structure. For example, it typically consists of two positioning plates, and the clamping distance is changed by adjusting the bolts between the positioning plates or by a drive mechanism. Alternatively, in other embodiments, the supporting platform 100 is provided with a positioning groove to accommodate the water storage tank 300. Of course, in some embodiments, the supporting platform 100 is provided with a liquid leakage alarm corresponding to the water storage tank 300. When the liquid on the supporting platform 100 reaches a certain level, it alerts the operator to a leak in the water storage tank 300 or a leak at the connection between the water storage tank 300 and the water passage.

[0053] Understandably, referring to Figure 2 In this embodiment of the utility model, the water storage tank 300 is provided with a cleaning structure 800 for cleaning the interior, to ensure the cleanliness of the inner wall of the tank and prevent pollution or scale buildup.

[0054] Specifically, refer to Figure 2 In this embodiment of the invention, the water storage tank 300 is provided with a water inlet 310 and a water inlet pipe 320, and the cleaning structure 800 is correspondingly provided with the water inlet 310; wherein, the water inlet pipe 320 is connected to the water inlet end of the cleaning structure 800. With the above structure, cleaning water can be conveniently introduced directly into the tank through the water inlet 310 and the water inlet pipe 320, providing a water source for the cleaning structure 800 and realizing the function of water flushing and self-cleaning the inner wall of the water storage tank 300 when water is introduced; the connection between the water inlet end of the cleaning structure 800 and the water inlet pipe 320 simplifies the operation process, makes it easy to control the cleaning process, and has a compact structure, reducing additional space occupation and making it suitable for space-constrained occasions.

[0055] It should be noted that in this embodiment of the invention, the cleaning structure 800 is a high-pressure rotary nozzle. This high-pressure rotary nozzle provides efficient, uniform, and rapid cleaning of the water storage tank 300, achieving all-around cleaning. During water production, the inlet pipe 320 automatically provides kinetic energy to the high-pressure rotary nozzle through its own water pressure, causing the nozzle to automatically rotate at high speed to clean the inner wall of the water tank. This prevents dirt and microorganisms from adhering to the tank wall, ensuring the safety of the supplied water quality.

[0056] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and not to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. A water treatment system, characterized by, include: Supporting platform; Water supply pipelines are used to supply water to the water treatment area; A water storage tank, wherein the water storage tank is disposed on the supporting platform; A water supply pump is located on one side of the water storage tank, and the outlet of the water supply pump is connected to the water supply pipeline. The first water channel has one end connected to the outlet of the water storage tank and the other end connected to the inlet of the water supply pump. The second water passage has one end connected to the outlet of the water storage tank and the other end connected to the water supply pipeline. A switching structure is provided for selectively switching between the first waterway and the second waterway. The water outlet of the water storage tank is positioned higher than the water inlet of the water supply pump.

2. The water supply treatment system according to claim 1, characterized by The switching structure includes a first switching unit and a second switching unit; The first switching unit is located on the first water line, and the first switching unit is used to control the on / off state of the water outlet of the water storage tank and the water inlet of the water supply pump. The second switching unit is located on the second water line, and the second switching unit is used to control the on / off state of the water outlet of the water storage tank and the water supply pipeline.

3. The water supply treatment system according to claim 2, wherein Both the first switching unit and the second switching unit are positioned below the outlet of the water storage tank.

4. The water supply treatment system according to claim 2, wherein At least one of the first switching unit and the second switching unit is an automatic switching device.

5. The water supply treatment system according to claim 4, wherein The automatic switching device is an electric valve.

6. The water supply treatment system according to claim 1, wherein The support platform has a first layer and a second layer, with the first layer located above the second layer. The water storage tank is located in the first layer section, and the water supply pump is located in the second layer section.

7. The water treatment system of claim 1, wherein, The water storage tank is equipped with a cleaning structure for cleaning the interior.

8. The water supply treatment system according to claim 7, wherein The water storage tank is provided with a water inlet and a water inlet pipe, and the cleaning structure is provided corresponding to the water inlet. The water inlet pipe is connected to the water inlet end of the cleaning structure.

9. The water treatment system of claim 8, wherein, The cleaning structure is a high-pressure rotary nozzle.

10. The water treatment system of claim 1, wherein, There are multiple water storage tanks, water supply pumps, and water supply pipelines, and each of them is set up in a one-to-one correspondence.