Energy-saving water purifier

By introducing a fast-flow pipe and a second control valve into the water purifier, combined with an intelligent control system, the problem of high energy consumption in reverse osmosis water purifiers is solved, achieving efficient water purification and energy saving. The water purifier features intelligent adjustment and convenient installation and maintenance.

CN224185919UActive Publication Date: 2026-05-01CHANGCHUN HAOSHUIRENJIA ENVIRONMENTAL PROTECTION TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHANGCHUN HAOSHUIRENJIA ENVIRONMENTAL PROTECTION TECH CO LTD
Filing Date
2025-03-19
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Reverse osmosis water purifiers consume a lot of energy during use, which leads to increased operating costs and energy consumption.

Method used

An energy-saving water purifier was designed. By using a fast-flow pipe and a second control valve, the pre-filtered water can be discharged directly when a reverse osmosis device is not needed, reducing the length of the flow pipeline. Combined with an intelligent electronic control system and a carefully designed connection method, the working status of the water purifier can be flexibly adjusted to ensure stable operation and energy-saving effect.

Benefits of technology

It effectively removes impurities and pollutants from water, minimizing water waste and achieving the goals of environmental protection and water conservation. It also features intelligent adjustment functions and convenient installation and maintenance, ensuring that the water purifier remains highly efficient and energy-saving in various environments.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224185919U_ABST
    Figure CN224185919U_ABST
Patent Text Reader

Abstract

The utility model discloses an energy-saving water purifier, which belongs to the field of water purifiers and is characterized in that a liquid inlet pipeline is mounted at the upper end of a pump body, a first control valve is mounted on the liquid inlet pipeline, the liquid inlet pipeline is connected with a reverse osmosis device, and the reverse osmosis device is connected with a liquid discharge pipeline; a fast flow pipeline is arranged on the liquid inlet pipeline, a second control valve is mounted on the fast flow pipeline, the fast flow pipeline is connected with a four-way pipe through a connecting pipeline, the four-way pipe is connected with the liquid discharge pipeline, the use condition of the reverse osmosis device is realized by opening and closing the first control valve, and the pump body is communicated with the fast flow pipeline by closing the first control valve and starting the second control valve. A liquid flowing pipeline is shortened, and the use of a reverse osmosis device is saved. Impurities in water are removed by adopting an advanced filtering technology, and pure water quality is ensured. And water resource waste is reduced through deep purification, and water is saved. A rapid flowing pipeline and a second control valve are designed, preliminary filtered water can be discharged without a reverse osmosis device, and energy is saved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of water purifiers, and in particular to an energy-saving water purifier. Background Technology

[0002] A water purifier is a device used to improve the quality of drinking water. It removes impurities, bacteria, viruses, heavy metals and other harmful substances from water through physical, chemical or biological methods, providing safer and healthier drinking water.

[0003] In practical applications, water purifiers vary in their application depending on the degree of water pollution and the user's water quality requirements. Some do not require a reverse osmosis (RO) device, while others do. A reverse osmosis device is a water purification technology that separates water molecules from dissolved salts through a semi-permeable membrane under pressure. When using a reverse osmosis device, energy consumption occurs because osmotic pressure needs to be overcome. This energy consumption primarily comes from the use of a pump, which needs to provide sufficient pressure to force water molecules through the semi-permeable membrane, thereby separating pure water from concentrated water containing impurities. This process consumes electricity; therefore, reverse osmosis water purifiers have higher operating costs and energy consumption compared to water purifiers that do not use reverse osmosis technology. Utility Model Content

[0004] The main objective of this invention is to provide an energy-saving water purifier that can effectively solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0006] An energy-saving water purifier includes a bracket, a control cabinet, a filter, an inlet pipe, a pump body, and a reverse osmosis device. The pump body, filter, control cabinet, and reverse osmosis device are all mounted on the bracket. The filter is connected to the inlet pipe and is connected to the pump body.

[0007] The pump body is equipped with an inlet pipe at its upper end, and a first control valve is installed on the inlet pipe. The inlet pipe is connected to the reverse osmosis device, and the reverse osmosis device is connected to the outlet pipe.

[0008] The inlet pipe is equipped with a fast flow pipe, and a second control valve is installed on the fast flow pipe. The fast flow pipe is connected to a four-way pipe through a connecting pipe, and the four-way pipe is connected to the outlet pipe. The operation of the reverse osmosis device is controlled by opening and closing the first control valve. Closing the first control valve and opening the second control valve connects the pump body to the fast flow pipe, shortening the liquid flow pipeline and saving on the use of the reverse osmosis device.

[0009] The pump body is equipped with a mounting bracket, and a printed circuit board is installed in the inner cavity of the mounting bracket by bolts. The printed circuit board is connected to the first control valve and the second control valve to realize the opening and closing control of the first control valve and the second control valve. The pump body and the mounting bracket are fixed by bolts.

[0010] The liquid inlet pipe and water inlet pipe are connected to the pump body via connecting flanges, bolts, and nuts, and the first control valve is connected to the liquid inlet pipe via connecting flanges, bolts, and nuts.

[0011] The fast-flow pipeline is connected to the second control valve via a connecting flange, bolts, and nuts. Both the first and second control valves are electrically controlled valves.

[0012] The connecting pipe and the fast flow pipe are connected by threads, and a sealing ring is provided at the connection between the fast flow pipe and the connecting pipe;

[0013] The four-way pipe is connected to the connecting pipe, the bottom pipe of the reverse osmosis device, and the drain pipe by threads, and a sealing ring is provided at the pipe opening of the four-way pipe.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] By employing advanced filtration technology, impurities and pollutants in the water are effectively removed, ensuring that the water quality meets purity standards. Simultaneously, the deep purification process minimizes water waste, thereby achieving the goals of environmental protection and water conservation. The design incorporates a fast-flowing pipeline system and a second control valve, allowing the pre-filtered water to be discharged directly without the need for a reverse osmosis unit, thus saving significant energy consumption.

[0016] In addition, the water purifier is equipped with an intelligent electronic control system, allowing users to flexibly adjust its operating status according to their actual water needs. This intelligent adjustment function not only ensures optimal operating efficiency under various working environments but also achieves maximum energy savings. To ensure system stability and high energy efficiency, the design team also employed meticulously designed connection methods and multiple sealing measures. These measures ensure stable operation of the water purifier under various complex working conditions while effectively preventing energy waste.

[0017] Finally, to facilitate user installation and subsequent maintenance, the water purifier's design also considers ease of quick installation. By simplifying the installation process and optimizing maintenance interfaces, users can easily and quickly complete the installation of the water purifier, and can also easily and conveniently perform maintenance or filter replacement when necessary, thereby reducing the difficulty and time cost of maintenance. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0019] Figure 2This is a diagram showing the overall structure of the present invention;

[0020] Figure 3 This is a diagram illustrating the reverse osmosis device, control valve, and piping of this utility model.

[0021] Figure 4 This is a diagram illustrating the control valve, pipeline, and four-way pipe of this utility model.

[0022] In the diagram: 1. Bracket; 2. Control cabinet; 3. Filter; 4. Inlet pipe; 5. Pump body; 6. Reverse osmosis unit; 7. Liquid inlet pipe; 8. First control valve; 9. Fast flow pipe; 10. Second control valve; 11. Connecting pipe; 12. Four-way pipe; 13. Drain pipe; 14. Mounting bracket; 15. Printed circuit board. Detailed Implementation

[0023] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0024] like Figure 1 - Figure 4 As shown, an energy-saving water purifier is designed to improve water resource utilization efficiency while ensuring water purity. The purifier mainly consists of the following parts: a sturdy support frame 1, a control cabinet 2 for controlling the entire system operation, a filter 3 for effectively filtering impurities, an inlet pipe 4 for delivering water, a pump 5 for providing power, and a reverse osmosis device 6 for further purifying the water. All these key components are cleverly mounted on the support frame 1, ensuring the stability and compactness of the equipment.

[0025] Filter 3 is connected to the water source via inlet pipe 4, which introduces water into filter 3 for initial filtration. The filtered water then enters pump body 5 via connecting pipe 11. Pump body 5 is responsible for transporting the water to reverse osmosis unit 6 for further purification. An inlet pipe 7 is installed at the upper end of pump body 5, and a first control valve 8 is installed on inlet pipe 7 to control the water flow direction. Inlet pipe 7 is connected to reverse osmosis unit 6 to ensure that the filtered water can smoothly enter reverse osmosis unit 6 for further purification. The water treated by reverse osmosis unit 6 is discharged through drain pipe 13 for user use.

[0026] To further improve the energy efficiency of the water purifier, a fast-flow pipe 9 is also installed on the inlet pipe 7, and a second control valve 10 is mounted on the fast-flow pipe 9. Through the combined use of the fast-flow pipe 9 and the second control valve 10, the pump body 5 and the fast-flow pipe 9 can be connected, thereby shortening the length of the liquid flow pipeline. This design allows pre-filtered water to be discharged directly through the fast-flow pipe 9 when the reverse osmosis device 6 is not needed, thus saving the use of the reverse osmosis device 6 and achieving energy savings.

[0027] To ensure stable operation and flexible control of the water purifier, a mounting bracket 14 is installed on the pump body 5. A printed circuit board 15 is bolted to the inner cavity of the mounting bracket 14. The printed circuit board 15 is connected to the first control valve 8 and the second control valve 10, enabling the opening and closing control of these two valves. Through this electronic control method, users can flexibly adjust the operating status of the water purifier according to actual needs, thereby achieving optimal energy-saving effects. The pump body 5 and the mounting bracket 14 are fixed together with bolts, ensuring the stability of the entire system.

[0028] To ensure the reliability and sealing of all pipeline connections, the liquid inlet pipe 7 and the water inlet pipe 4 are connected to the pump body 5 via connecting flanges, bolts, and nuts. The first control valve 8 is connected to the liquid inlet pipe 7 via connecting flanges, bolts, and nuts, ensuring a tight connection between the control valve and the pipeline. The fast-flow pipe 9 is connected to the second control valve 10 via connecting flanges, bolts, and nuts, further enhancing the system's sealing and reliability. Both the first control valve 8 and the second control valve 10 are electrically controlled valves, with their opening and closing controlled by electronic signals, improving operational convenience and system response speed.

[0029] Connecting pipe 11 and fast-flow pipe 9 are connected by threads. A sealing ring is provided at the connection point between fast-flow pipe 9 and connecting pipe 11 to ensure the seal and prevent leakage. Four-way pipe 12 is connected by threads to connecting pipe 11, the bottom pipe of reverse osmosis device 6, and drain pipe 13. A sealing ring is provided at the opening of four-way pipe 12 to further ensure the sealing and reliability of the entire system. These carefully designed connection methods and sealing measures ensure stable operation and high energy efficiency of the water purifier under various working conditions.

[0030] Installation Process: Secure the sturdy bracket 1 in the designated position, ensuring it is level and stable. Install the control cabinet 2 onto the bracket 1, ensuring it is firmly fixed. Install the filter 3 onto the bracket 1, ensuring it is connected to the inlet pipe 4. Install the pump body 5 onto the bracket 1, ensuring it is connected to the filter 3 and the inlet pipe 7. Install the reverse osmosis unit 6 onto the bracket 1, ensuring it is connected to the inlet pipe 7 and the outlet pipe 13. Connect the inlet pipe 7 and the fast-flow pipe 9 to the pump body 5 and the second control valve 10, respectively. Ensure the first control valve 8 and the second control valve 10 are connected to the pipes using connecting flanges, bolts, and nuts. Install the connecting pipe 11 and the four-way pipe 12, ensuring all connections are sealed with sealing rings. Install the printed circuit board 15 into the inner cavity of the mounting bracket 14 using bolts, ensuring it is connected to the first control valve 8 and the second control valve 10. Check that all connections are secure and sealed. Perform preliminary testing to ensure all components of the water purifier are functioning properly.

[0031] Operating Procedure: Turn on the water source. The water passes through filter 3 and then enters pump body 5 through inlet pipe 4. Turn on the power and start control cabinet 2. Adjust the opening and closing states of first control valve 8 and second control valve 10 as needed via the electronic control system on printed circuit board 15. If deep purification using reverse osmosis device 6 is required, ensure first control valve 8 is open and second control valve 10 is closed. If reverse osmosis device 6 is not needed, the pre-filtered water can be discharged directly through fast flow pipe 9. In this case, first control valve 8 is closed and second control valve 10 is open. Monitor the water purifier's operating status to ensure water quality and quantity meet requirements. Adjust the operating parameters of control valves and pump body 5 according to actual conditions to achieve optimal energy saving. Regularly inspect filter 3 and reverse osmosis device 6, performing necessary cleaning and replacement. Check all connections for leaks and ensure good sealing. After use, turn off the water and power. Clean and maintain the equipment to ensure long-term stable operation.

[0032] All standard parts used in this utility model can be purchased from the market, and irregular parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art, and the circuit connection adopts conventional connection methods in the prior art, which will not be described in detail here.

[0033] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.

Claims

1. An energy-saving water purifier, comprising a bracket (1), a control cabinet (2), a filter (3), an inlet pipe (4), a pump body (5), and a reverse osmosis device (6), wherein the pump body (5), the filter (3), the control cabinet (2), and the reverse osmosis device (6) are all mounted on the bracket (1), and the filter (3) is connected to the inlet pipe (4) and connected to the pump body (5), characterized in that: The pump body (5) is equipped with an inlet pipe (7) at its upper end and a first control valve (8) is installed on the inlet pipe (7). The inlet pipe (7) is connected to the reverse osmosis device (6), and the reverse osmosis device (6) is connected to the drain pipe (13). The inlet pipe (7) is provided with a fast flow pipe (9), and a second control valve (10) is installed on the fast flow pipe (9). The fast flow pipe (9) is connected to a four-way pipe (12) through a connecting pipe (11). The four-way pipe (12) is connected to the drain pipe (13). The use status of the reverse osmosis device (6) is realized by opening and closing the first control valve (8). When the first control valve (8) is closed, the second control valve (10) is started to connect the pump body (5) with the fast flow pipe (9), shortening the liquid flow pipeline and saving the use of the reverse osmosis device (6).

2. The energy saving water purifier according to claim 1, wherein: The pump body (5) is equipped with a mounting bracket (14). A printed circuit board (15) is installed in the inner cavity of the mounting bracket (14) by bolts. The printed circuit board (15) is connected to the first control valve (8) and the second control valve (10) to realize the opening and closing control of the first control valve (8) and the second control valve (10). The pump body (5) and the mounting bracket (14) are fixed by bolts.

3. The energy saving water purifier according to claim 2, wherein: The liquid inlet pipe (7) and water inlet pipe (4) are connected to the pump body (5) via connecting flanges, bolts, and nuts, and the first control valve (8) is connected to the liquid inlet pipe (7) via connecting flanges, bolts, and nuts.

4. The energy saving water purifier according to claim 3, wherein: The fast-flow pipe (9) is connected to the second control valve (10) by a connecting flange, bolts, and nuts. Both the first control valve (8) and the second control valve (10) are electrically controlled valves.

5. The energy saving water purifier as claimed in claim 4, wherein: The connecting pipe (11) and the fast flow pipe (9) are connected by threads, and a sealing ring is provided at the connection between the fast flow pipe (9) and the connecting pipe (11).

6. An energy-saving water purifier according to claim 5, characterized in that: The four-way pipe (12) is connected to the connecting pipe (11), the bottom pipe of the reverse osmosis device (6), and the drain pipe (13) by threads, and a sealing ring is provided at the pipe opening of the four-way pipe (12).