Detection, recovery and disinfection integrated system

By designing an integrated system for testing, recycling and disinfection, water quality is monitored in real time and disinfected when necessary, the problems of disinfectant consumption and resource waste in the secondary water supply system are solved, and the effects of water quality safety and resource conservation are achieved.

CN222922966UActive Publication Date: 2025-05-30ZHUHAI SYS ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202421854868.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-05-30
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

In the secondary water supply system, the disinfectant in the water is consumed during the transportation process, resulting in water quality safety risks, and the disinfection module is always in a working state, resulting in waste of resources.

Method used

An integrated detection, recycling and disinfection system is designed, including a water supply tank, water quality monitoring module, disinfection module, control module, water purification tank and water pump. The system monitors the water quality in real time, and only starts the disinfection module to disinfect when the water quality is not up to standard, and recycles the detected water to the water supply tank.

Benefits of technology

Real-time monitoring and disinfection of water quality is realized, the use of disinfectant is saved, energy waste is avoided, water quality is safe, and water resource utilization is maximized.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a detection, recovery and disinfection integrated system which comprises a water supply tank, a water quality monitoring module and a disinfection module, and is characterized by further comprising a control module, a water purification tank and a water pump, the water supply tank comprises a detection water outlet pipe and a detection water inlet pipe, and the water purification tank comprises a purified water inlet pipe and a purified water outlet pipe; the water pump comprises a pump-in water pipe and a pump-out water pipe, the detection water outlet pipe and the purified water inlet pipe are both communicated with the water quality monitoring module through pipelines, the detection water inlet pipe is communicated with the pump-out water pipe through a pipeline, and the purified water outlet pipe is communicated with the pump-in water pipe through a pipeline. The water pump, the water quality monitoring module and the disinfection module are electrically connected with the control module, and a disinfectant outlet of the disinfection module is communicated with the water supply tank through a pipeline.
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Description

Technical Field

[0001] The utility model relates to a detection system, in particular to an integrated detection, recycling and disinfection system. Background Art

[0002] At present, more than 70% of urban residents' water use is realized through secondary water supply. Generally speaking, before the tap water leaves the factory, it needs to be disinfected and detected by a water quality monitoring module. A certain concentration of disinfectant should be left in the water when it leaves the factory to meet the requirements of continuous disinfection. However, during the pipeline transportation process, the disinfectant is continuously consumed. When the tap water flows into the faucets in residents' homes, it usually passes through the water supply tank in the pump room and is finally sent to users through a pressurizing device. The water is stored in the water supply tank for a long time, resulting in a decrease in the content of disinfectant in the water. Especially in summer, when the water temperature is high, the residual chlorine in the water decreases rapidly, posing a risk of secondary pollution. Therefore, a disinfection module needs to be configured in the secondary pump room water supply tank. The disinfection module is always in a working state, causing waste of resources. Therefore, in view of the above problems, the applicant has designed an integrated detection, recycling and disinfection system to solve the above problems. Summary of the Utility Model

[0003] In order to overcome the deficiencies of the prior art, the utility model provides an integrated detection, recycling and disinfection system.

[0004] The technical solution adopted by the utility model to solve its technical problems is as follows:

[0005] The integrated detection, recycling and disinfection system includes a water supply tank, a water quality monitoring module, and a disinfection module. It is characterized in that: it further includes a control module, a water purification tank, and a water pump. The water supply tank includes a detection water outlet pipe and a detection water inlet pipe. The water purification tank includes a purified water inlet pipe and a purified water outlet pipe. The water pump includes a pump inlet pipe and a pump outlet pipe. The detection water outlet pipe and the purified water inlet pipe are both connected to the water quality monitoring module through pipelines. The detection water inlet pipe is connected to the pump outlet pipe through a pipeline. The purified water outlet pipe is connected to the pump inlet pipe through a pipeline. The water pump, the water quality monitoring module, and the disinfection module are electrically connected to the control module. The disinfectant outlet of the disinfection module is connected to the water supply tank through a pipeline.

[0006] It further includes a purified water overflow pipe, and the purified water overflow pipe is connected to the water purification tank through an overflow hole.

[0007] It further includes a purified water sewage discharge pipe, the purified water sewage discharge pipe is connected to the water purification tank, and a control valve for controlling the on-off of the purified water sewage discharge pipe is provided on the purified water sewage discharge pipe.

[0008] A sensor is provided in the water purification tank, and the sensor is electrically connected to the control module.

[0009] It also includes an integrated chassis, in which the water quality monitoring module, the control module, the water purification tank and the water pump are all arranged. The water quality monitoring module and the control module are located above the water purification tank, while the water pump is located below the water purification tank.

[0010] The beneficial effects of the present utility model are as follows: The present utility model adds real-time monitoring of the water quality monitoring module. When there is an abnormal trend in the water quality, the disinfection module is then started to disinfect the water in the water supply tank, thereby not only saving disinfectant but also achieving an energy-saving effect; moreover, the present utility model adds a water purification tank and a water pump. The water detected by the water quality monitoring module can flow into the water purification tank for collection, and then be sent back to the water supply tank through the water pump, thus also avoiding waste of water resources, maximizing the utilization of water resources, and achieving the purpose of energy conservation, environmental protection and avoiding waste of resources. Brief Description of the Drawings

[0011] The present utility model will be further described below in conjunction with the drawings and embodiments.

[0012] Figure 1 is a schematic diagram of the principle of the present utility model;

[0013] Figure 2 is a schematic diagram of the structure of the present utility model. Detailed Embodiments

[0014] The advantages, features and implementation methods of the present disclosure will be clarified by the following embodiments described with reference to the drawings. However, the present disclosure can be embodied in different forms and should not be construed as limited to the embodiments set forth herein. On the contrary, these embodiments are provided so that the present disclosure will be comprehensive and complete, and will fully convey the scope of the present disclosure to those skilled in the art. In addition, the present disclosure is only limited by the scope of the claims.

[0015] The shapes, sizes, proportions, angles and numbers disclosed in the drawings used to describe the embodiments of the present disclosure are only examples, so the present disclosure is not limited to the details shown. Throughout the specification, the same reference numerals refer to the same elements. In the following description, when the detailed description of related known functions or configurations is determined to unnecessarily obscure the key points of the present disclosure, the detailed description will be omitted. In the case of using "including", "having" and "comprising" described in this specification, other components can be added unless "only" is used. Unless otherwise indicated, singular terms can include plural forms.

[0016] When interpreting an element, although not explicitly described, the element is understood to include an error range.

[0017] When describing positional relationships, for example, when a positional relationship is described as "on...", "above...", "below...", and "adjacent to...", one or more components may be arranged between two other components unless "immediately" or "directly" is used.

[0018] When describing temporal relationships, for example, when a temporal order is described as "after...", "subsequently", "next", and "before...", discontinuous cases may be included unless "exactly" or "directly" is used.

[0019] It should be understood that although terms such as "first", "second", etc. may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from other elements. For example, a first element may be referred to as a second element, and similarly, a second element may be referred to as a first element, without departing from the scope of the present disclosure.

[0020] As can be fully understood by those skilled in the art, the features of different embodiments of the present disclosure may be partially or fully coupled or combined with each other, and may cooperate with each other in various ways and be technically driven. The embodiments of the present disclosure may be executed independently of each other, or may be executed together in a mutually dependent relationship.

[0021] Referring to Figure 1 , Figure 2 , the present utility model discloses a detection, recycling and disinfection integrated system, including a water supply tank 1, a water quality monitoring module 2, a disinfection module 3, further including a control module 4, a water purification tank 5 and a water pump 6. The water supply tank 1 includes a detection water outlet pipe (not shown in the figure) and a detection water inlet pipe (not shown in the figure). The water purification tank 5 includes a purified water inlet pipe and a purified water outlet pipe. The water pump 6 includes a pump inlet pipe 9 and a pump outlet pipe 10. The detection water outlet pipe and the purified water inlet pipe are both connected to the water quality monitoring module 2 through pipelines. The detection water inlet pipe is connected to the pump outlet pipe 10 through a pipeline. The purified water outlet pipe is connected to the pump inlet pipe 9 through a pipeline. The water pump 6, the water quality monitoring module 2 and the disinfection module 3 are electrically connected to the control module 4. The disinfectant outlet 11 of the disinfection module 3 is connected to the water supply tank 1 through a pipeline. The disinfection module 3 also has a chemical agent inlet 8 for adding chemical agents.

[0022] As shown in the figure, in this application, the water quality monitoring module 2, the control module 4, the water purification tank 5, and the water pump 6 are all arranged in the integrated chassis. Above are the water quality monitoring module 2 and the control module 4, in the middle is the water purification tank 5, and below is the water pump 6. The above structure is arranged to facilitate the purified water after detection to flow into the water purification tank 5 naturally by gravity. Of course, the water in the water supply tank 1 can also flow into the water quality monitoring module 2 naturally by gravity for detection. Since the water pump 6 vibrates greatly during operation, being located below not only facilitates pumping water from the water purification tank 5, but also facilitates isolation to prevent vibration from being transmitted to the water purification tank 5, the water quality monitoring module 2, and the control module 4. The disinfection module 3 is arranged outside the integrated chassis and is a split structure with the integrated chassis. However, the above is only a preferred structure of this application. The disinfection module 3 of this application can also be an integrated structure with the integrated chassis. Whether it is a split or an integrated structure does not constitute a limitation to this application.

[0023] Among the above, the water quality monitoring module 2 is used to detect the water quality in real time; the water purification tank 5 is used to collect the purified water after detection, and convey the collected purified water back to the water supply tank 1 after pressurization by the water pump 6; the disinfection module 3 disinfects the water in the water supply tank 1; the control module 4 is used to receive the detection data sent by the water quality monitoring module 2, and perform real-time analysis on the detection data and control the operation or stop of the water pump 6 and the disinfection module 3.

[0024] Through the above structure, the water quality in the water supply tank 1 can be monitored in real time, and the purified water after detection can be recycled. When the water quality in the water supply tank 1 fails to pass the detection, the disinfection module 3 can be started for disinfection, realizing the integration of water quality detection, recycling, and disinfection, and avoiding energy waste.

[0025] As shown in the figure, it also includes a purified water overflow pipe 12, and the purified water overflow pipe 12 is communicated with the water purification tank 5 through an overflow hole. When the water in the water purification tank 5 is almost full, it can be discharged to a designated position through the purified water overflow pipe 12 to avoid overflowing in the water purification tank 5. Of course, it also includes a purified water sewage pipe 13, the purified water sewage pipe 13 is communicated with the water purification tank 5, and a control valve (not shown in the figure) for controlling the on-off of the purified water sewage pipe 13 is provided on the purified water sewage pipe 13. After the water purification tank 5 is used for a long time, there may also be dirt generated, so it also needs to be cleaned, and the water after cleaning will be discharged through the purified water sewage pipe 13. During normal operation, the control valve is closed and opened during cleaning. The control valve in this application is an ordinary hand valve, manually operated. Of course, an electric valve, a solenoid valve, or a pneumatic valve can also be used for automatic control.

[0026] As shown in the figure, a sensor 14 is arranged in the water purification tank 5, the sensor 14 is electrically connected to the control module 4, and the sensor 14 can sense the water level in the water purification tank 5 and feedback the water level data to the control module 4.

[0027] In this application, the disinfection module 3 is a chlorine-based disinfection module 3, but it is not limited to a chlorine-based disinfection module 3. It can also be an ozone or ultraviolet disinfection module 3. The water quality monitoring module 2 monitors the residual chlorine value of the water discharged from the water supply tank 1 in real time. When the residual chlorine value is lower than the required value (in accordance with the requirements of the "Technical Guide for High-quality Urban Drinking Water", the residual chlorine in the water discharged from the water supply tank 1 should always be maintained at 0.1 mg / l in winter and above 0.15 mg / l in summer), and the control module 4 can preferably use a single-chip microcomputer chip. The sensor 14 can use a sensor 14 or a pressure sensor 14, and the water pump 6 can use a booster pump. Of course, the disinfection module 3, the water quality monitoring module 2, the sensor 14, the water pump 6, and the control module 4 are all prior arts, so their specific working principles and structures will not be described in detail.

[0028] Brief description of the principle of this application: The purified water in the water supply tank 1 flows into the water quality monitoring module 2 for detection. The detected purified water flows into the clean water tank 5. Then, the sensor 14 in the clean water tank 5 continuously detects the water level of the purified water in the clean water tank 5 in real time and feeds back a signal to the control module 4. When the liquid level in the clean water tank 5 reaches the set value, the control module 4 starts the water pump 6 to pressurize the water flowing out of the clean water tank 5 and transport it back into the water supply tank 1. When the liquid level in the clean water tank 5 drops to the set value and feeds back a signal to the control module 4, the control module 4 controls the water pump 6 to stop running.

[0029] During the detection process, the water quality monitoring module 2 also feeds back the detection data to the control module 4 in real time. When the water quality monitoring module 2 detects that the residual chlorine value is lower than the required value, the control module 4 sends an instruction to the disinfection module 3. The disinfection module 3 starts to produce chlorine-based disinfectant solution and inputs the chlorine-based disinfectant solution into the water supply tank 1 to ensure that the residual chlorine in the water discharged from the tank is always maintained above the required concentration. When the water quality returns to normal, the control module 4 stops the operation of the disinfection module 3 to reduce the energy consumption of the system, realizing the integration of detection and disinfection treatment and improving the automation degree of the product.

[0030] The above has introduced in detail a detection, recovery and disinfection integrated system provided by an embodiment of the present utility model. Specific examples are used in this article to elaborate on the principle and implementation manner of the present utility model. The description of the above embodiments is only used to help understand the method and its core idea of the present utility model; at the same time, for those of ordinary skill in the art, according to the idea of the present utility model, there will be changes in the specific implementation manner and application scope. In summary, the content of this specification should not be construed as a limitation to the present utility model.

Claims

1. The integrated detection, recycling and disinfection system includes a water supply tank, a water quality monitoring module and a disinfection module, and is characterized by: It also includes a control module, a clean water tank and a water pump. The water supply tank includes a detection water outlet pipe and a detection water inlet pipe. The clean water tank includes a clean water inlet pipe and a clean water outlet pipe. The water pump includes a pump inlet pipe and a pump outlet pipe. The detection water outlet pipe and the clean water inlet pipe are both connected to the water quality monitoring module through pipelines. The detection water inlet pipe is connected to the pump outlet pipe through a pipeline. The clean water outlet pipe is connected to the pump inlet pipe through a pipeline. The water pump, water quality monitoring module and disinfection module are electrically connected to the control module. The disinfectant outlet of the disinfection module is connected to the water supply tank through a pipeline.

2. The integrated detection, recovery and disinfection system according to claim 1, characterized in that: It also includes a clean water overflow pipe, which is connected to the clean water tank through an overflow hole.

3. The integrated detection, recovery and disinfection system according to claim 1, characterized in that: It also includes a clean water drainage pipe, which is connected to the clean water tank and is provided with a control valve for controlling the on and off of the clean water drainage pipe.

4. The integrated detection, recovery and disinfection system according to claim 1, characterized in that: A sensor is arranged in the clean water tank, and the sensor is electrically connected to the control module.

5. The integrated detection, recovery and disinfection system according to claim 1, characterized in that: It also includes an integrated chassis, in which the water quality monitoring module, control module, water purification tank and water pump are all arranged. The water quality monitoring module and control module are located above the water purification tank, and the water pump is located below the water purification tank.