Remote transmission device based on water quality monitoring
By designing a spiral filter tube and a communication cavity, the accuracy and stability of the water quality monitoring device are improved when the water is turbid. This solves the problem of reduced accuracy in existing water quality monitoring technologies, extends the working time, and improves backwashing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-14
- Publication Date
- 2026-04-10
AI Technical Summary
Existing water quality monitoring devices struggle to accurately measure the actual water quality when the water is turbid, leading to reduced accuracy in the measurement results.
The design employs a spiral filter tube and communication chamber. By rotating the filter tubes and screens in opposite directions, combined with the use of a restoring spring, backwashing of the screens and improved stability are achieved, ensuring the accuracy of water quality monitoring.
It extends the single working time, improves the accuracy of water quality monitoring and backwashing efficiency in turbid water conditions, and ensures the stability and accuracy of water quality monitoring.
Smart Images

Figure CN224100116U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water quality monitoring technology, and in particular to a remote transmission device based on water quality monitoring. Background Technology
[0002] The self-cleaning test chamber can automatically remove impurities from the filter screen through a built-in self-cleaning mechanism to maintain continuous water supply and filtration efficiency, and can effectively increase the working time of a single filtration.
[0003] Chinese Patent Publication No. CN221803979U discloses a wireless sensor water quality monitoring device, relating to the technical field of water quality monitoring equipment. This utility model includes a detection component and an adjustment component. The detection component includes a depth gauge, a sampling box, and a sensor. The sampling box is disposed on one side of the depth gauge, and the sensor is disposed on the other side of the sampling box. The adjustment component includes a guide rail plate, a drive motor, and a winding wheel. This utility model, by setting up the detection component, specifically uses the sensor to detect water temperature, pH value, turbidity, and oxygen concentration in the water body, and uploads the detection data via a wireless transmission module. Through comparative analysis, the water quality data is monitored. By setting up the adjustment component, specifically using the winding wheel to drive the steel cable to wind and release, the position of the sampling box is adjusted, and the sensor is moved to different water layers to detect water quality data, thereby improving the accuracy of the sampling data.
[0004] Therefore, it is evident that the aforementioned water quality monitoring device is unable to accurately measure the actual water quality when the water is turbid. Utility Model Content
[0005] To address this issue, this invention provides a remote transmission device based on water quality monitoring, which overcomes the problem in the prior art that it is difficult to accurately measure the actual water quality when the water is turbid, thus leading to a decrease in the accuracy of the measurement results.
[0006] To achieve the above objectives, this utility model provides a remote transmission device based on water quality monitoring, comprising:
[0007] The filter tube is configured as a spiral shape, with its inlet located in the middle of a single test chamber. The inlet of the filter tube can be sealed to the corresponding outlet of the communication chamber.
[0008] The temporary storage chamber is wrapped around the outside of the filter tube and, together with the test chamber, seals the filter tube.
[0009] The temporary storage chamber is filled with a filler material wrapped around the filter tube, and its bottom is connected to the drain outlet of the communication chamber.
[0010] The communication cavity is configured to include a baffle that separates the drain outlet and the water outlet;
[0011] The filter pipe is symmetrically arranged on both sides of the communication cavity.
[0012] The water inlet of the communication cavity is arranged at the bottom of the test cavity.
[0013] The water outlet of the communication cavity is arranged at the middle of the test cavity.
[0014] Further, the test cavity is sleeved on the pipeline to be tested, and the pipeline to be tested is provided with a corresponding opening.
[0015] Further, the filter pipe is connected with the communication cavity through a channel in the test cavity.
[0016] Further, the drain port is arranged on the side of the communication cavity.
[0017] Further, for the unilateral filter pipe, the corresponding water outlet and the drain port are respectively communicated and work in a single operation.
[0018] Further, the communication cavity is further provided with:
[0019] A restoring spring arranged at one end of the communication cavity to provide a corresponding elastic force for the communication cavity.
[0020] A first locking position and a second locking position corresponding to the inlet of the filter pipe, used to lock the angle of the communication cavity baffle to connect the water outlet of the communication cavity with the inlet of the filter pipe.
[0021] Further, the communication cavity is provided with a torsional force, when the torsional force is reached, the communication cavity is separated from the first locking position or the second locking position and stopped at the corresponding other locking position.
[0022] Further, the filter pipe is made of non-woven fabric material, and when the corresponding pressure of the non-woven fabric is reached, the water in the filter pipe seeps out of the filter pipe through the pipe wall.
[0023] Further, the inlet of the filter pipe is made of stainless steel material with a foot pad and a filter screen.
[0024] Further, the baffle of the communication cavity forms a corresponding closed space with the filter pipe in the corresponding space of the communication cavity at any angle.
[0025] Further, the communication cavity is further provided with a water quality monitoring assembly for detecting water quality and a transmission port for transmitting data.
[0026] Compared with the prior art, the beneficial effect of the utility model lies in, utilize the filter pipe of reverse setting, provide the water of waiting for filtering to the filter screen of test cavity evenly, and when the filter screen is blocked, stop water supply, work with another filter screen which is set symmetrically, the original filter screen carries on backwashing, when effectively prolonging the test cavity single time length of work, improve the accuracy of water quality monitoring under the condition of turbid water quality.
[0027] Further, by setting the communication cavity, the filter pipes on different sides work in turn, and when one side works, the other side uses water outside the test cavity for backwashing, which effectively improves the backwashing efficiency and the accuracy of water quality monitoring under the condition of turbid water quality.
[0028] Further, by setting the recovery spring, the communication cavity is set to two different states, which effectively improves the stability of the communication cavity and the working performance of the filter screen, enables the filter screen to rotate and work, and improves the accuracy of water quality monitoring under the condition of turbid water quality. BRIEF DESCRIPTION OF DRAWINGS
[0029] Figure 1 It is a sectional view of the remote transmission device for water quality monitoring of the utility model;
[0030] Figure 2 It is a sectional view of the communication cavity of the utility model;
[0031] 1, filter pipe; 2, communication cavity; 21, recovery spring; 22, first locking position; 23, second locking position; 24, water inlet pipe; 25, drain; 3, baffle; 4, first temporary storage cavity; 5, second temporary storage cavity; 6, test cavity; 7, pipeline to be measured. DETAILED DESCRIPTION
[0032] In order to make the purpose and advantages of the utility model more clear and explicit, the utility model will be further described below in combination with examples; it should be understood that the specific examples described herein are only used to explain the utility model, and are not used to limit the utility model.
[0033] The preferred embodiments of the utility model will be described below with reference to the drawings. Those skilled in the art should understand that these embodiments are only used to explain the technical principles of the utility model, and are not used to limit the protection scope of the utility model.
[0034] It should be noted that in the description of the utility model, the terms "upper", "lower", "left", "right", "inner", "outer" and other terms indicating direction or positional relationship are based on the direction or positional relationship shown in the drawings, which is merely for the convenience of description and does not indicate or imply that the device or element must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the utility model.
[0035] In addition, it should be noted that in the description of the utility model, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connection" should be understood broadly, for example, it can be fixed connection, or detachable connection, or integrally connected; it can be mechanical connection, or electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, or the communication inside two elements. For those skilled in the art, the specific meaning of the above terms in the utility model can be understood according to the specific circumstances.
[0036] Figure 1 The utility model is based on the sectional view of remote transmission device of water quality monitoring, comprising:
[0037] The filter pipe 1 is set to spiral, the inlet of the filter pipe 1 is set in the middle of the single test cavity 6, and the inlet of the filter pipe 1 can be connected with the water outlet of the communication cavity 2 in airtight manner.
[0038] The temporary storage cavity is divided into the first temporary storage cavity 4 and the second temporary storage cavity 5, which are wrapped outside the filter pipe 1 and cooperated with the test cavity to close the filter pipe 1.
[0039] The temporary storage cavity is provided with a filler wrapped on the filter pipe 1, and the bottom is connected with the drain outlet of the communication cavity 2.
[0040] The communication cavity is provided with a baffle including a divided drain outlet and a water outlet.
[0041] The filter pipe is symmetrically arranged on both sides of the communication cavity.
[0042] The water inlet of the communication cavity is arranged at the bottom of the test cavity.
[0043] The water outlet of the communication cavity is arranged in the middle of the test cavity.
[0044] The test cavity 6 is sleeved on the pipeline 7 to be measured, and the pipeline 7 to be measured is provided with a corresponding opening with the communication cavity 2.
[0045] By setting the reversely arranged filter pipe, the water to be filtered is uniformly provided to the filter screen of the test cavity, and when the filter screen is blocked, the water supply is stopped, the other filter screen symmetrically arranged with it works, and the original filter screen is backwashed, which effectively prolongs the single working time of the test cavity and improves the accuracy of water quality monitoring in the state that the water quality is relatively turbid.
[0046] Specifically, the filter tube is connected to the communication cavity by a channel in the test cavity.
[0047] Specifically, the drain is arranged on the side of the communication cavity.
[0048] Specifically, for a unilateral filter tube, its corresponding water outlet and drain are respectively connected and work in a single operation.
[0049] By arranging the communication cavity, the filter tubes on different sides are worked in turn, and when one side is working, the other side is backwashed by water outside the test cavity, which effectively improves the backwashing efficiency and the accuracy of water quality monitoring in the state of turbid water quality.
[0050] The communication cavity comprises:
[0051] The restoring spring 21 is arranged at one end of the communication cavity to provide corresponding elastic force for the communication cavity.
[0052] The first locking position 22 and the second locking position 23 correspond to the inlet of the filter tube, and are used to lock the angle of the communication cavity baffle to connect the water outlet of the communication cavity and the inlet of the filter tube.
[0053] Specifically, the communication cavity is provided with a torsional force, and when the torsional force is reached, the communication cavity is separated from the first locking position 22 or the second locking position 23 and stops at the corresponding other locking position.
[0054] By arranging the restoring spring, the communication cavity is arranged in two different states, which effectively improves the stability of the communication cavity and the working performance of the filter screen, enables the filter screen to rotate and work, and improves the accuracy of water quality monitoring in the state of turbid water quality.
[0055] Specifically, the filter tube is made of non-woven fabric, and when the pressure corresponding to the non-woven fabric is reached, the water in the filter tube seeps out of the filter tube through the tube wall.
[0056] Specifically, the inlet of the filter tube is made of stainless steel with a foot pad and a filter screen.
[0057] Specifically, the baffle of the communication cavity forms a closed space corresponding to the filter tube in the space of the communication cavity at any angle.
[0058] The communication cavity is also provided with a water quality monitoring assembly for detecting water quality and a transmission port for transmitting data.
[0059] Optionally, the water quality monitoring assembly can be:
[0060] pH sensor: used to measure the acidity or alkalinity of water, usually using a glass electrode to measure the hydrogen ion activity in water.
[0061] Dissolved oxygen (DO) sensor: measures the amount of dissolved oxygen in water, which is crucial for aquatic life, typically uses electrochemical or optical methods.
[0062] Turbidity sensor: measures the turbidity or cloudiness of water, indicating the presence of suspended solids, works by shining light and measuring the amount of light scattered by particles.
[0063] Conductivity sensor: measures the water's ability to conduct electricity, related to the concentration of dissolved salts and other ionic substances, uses electrodes to pass a small electric current through the water, determines conductivity by measuring the voltage drop across the electrodes.
[0064] Temperature sensor: measures the temperature of the water, which affects its chemical and biological processes, typically uses thermistors or resistance temperature detectors (RTDs), whose resistance changes with temperature.
[0065] Nitrate and phosphate sensors: measure the concentration of nitrates and phosphates, which are key nutrients that cause water bodies to become eutrophic, typically use ion-selective electrodes (ISEs) or optical methods to detect specific ions in the water.
[0066] Heavy metal sensors: detect the presence of heavy metals such as lead, mercury, and arsenic, which are toxic to humans and wildlife, can use electrochemical, colorimetric, or biosensing methods to detect and quantify the concentration of metals.
[0067] Biosensors: detect the presence of microorganisms, pathogens, or other biological contaminants in the water, can use biosensors that detect specific DNA sequences, enzymes, or antigens associated with pathogens.
[0068] The transmission port can be a terminal for wired connection or an antenna for wireless transmission.
[0069] In particular, when a terminal for wired connection is provided, it should be connected with a wireless base station.
[0070] It can be understood that the water quality monitoring assembly and the transmission port should be powered.
[0071] So far, the technical scheme of the utility model has been described in combination with the preferred embodiments shown in the drawings, but it can be easily understood by those skilled in the art that the protection scope of the utility model is obviously not limited to these specific embodiments. Those skilled in the art can make equivalent changes or replacements to related technical features without deviating from the principles of the utility model, and the technical schemes after these changes or replacements will fall within the protection scope of the utility model.
[0072] The above merely describes preferred embodiments of the present application and is not intended to limit the present application; for those skilled in the art, the present application can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A remote transmission device based on water quality monitoring, characterized by, The utility model relates to a water quality testing device, comprising: a filter pipe arranged in a spiral shape, an inlet of the filter pipe being arranged at a middle part of a single testing chamber, the inlet of the filter pipe being capable of being connected to a water outlet of a communication chamber in a sealed manner; a temporary storage chamber being wrapped outside the filter pipe and being capable of sealing the filter pipe in cooperation with the testing chamber; the temporary storage chamber being provided with a filler wrapped on the filter pipe, a bottom of the filler being connected to a water discharge outlet of the communication chamber; the communication chamber being provided with a baffle comprising a partitioned water discharge outlet and a water outlet; the filter pipe being symmetrically arranged on two sides of the communication chamber; wherein, the water inlet of the communication chamber is arranged at a bottom of the testing chamber; the water outlet of the communication chamber is arranged at a middle part of the testing chamber.
2. The remote transmission device based on water quality monitoring according to claim 1, characterized in that, the testing chamber is sleeved on a pipeline to be tested, the pipeline to be tested being provided with a corresponding opening with the communication chamber.
3. The remote transmission device based on water quality monitoring according to claim 2, characterized in that, the filter pipe is connected to the communication chamber through a channel in the testing chamber.
4. The remote transmission device based on water quality monitoring according to claim 2, wherein, the water discharge outlet is arranged on a side of the communication chamber.
5. The remote transmitting device based on water quality monitoring according to any of claims 3 or 4, characterized in that, for a single filter pipe, the corresponding water outlet and water discharge outlet are respectively connected and operated in a single operation.
6. The remote transmission device based on water quality monitoring according to claim 5, characterized in that, the communication chamber is further provided with: a restoring spring arranged at one end of the communication chamber to provide a corresponding elastic force for the communication chamber; a first locking position and a second locking position corresponding to the inlet of the filter pipe, to lock an angle of the baffle of the communication chamber to connect the water outlet of the communication chamber to the inlet of the filter pipe.
7. The remote transmitting device based on water quality monitoring according to claim 6, characterized in that, the communication chamber is provided with a torsional force, when the torsional force is reached, the communication chamber is separated from the first locking position or the second locking position and stopped at a corresponding other locking position.
8. The remote transmitting device based on water quality monitoring according to claim 2, wherein, the filter pipe is made of non-woven fabric material, when a corresponding pressure of the non-woven fabric is reached, water in the filter pipe is filtered out of the filter pipe through a pipe wall.
9. The remote transmitting device based on water quality monitoring according to claim 2, wherein, the inlet of the filter pipe is made of stainless steel material with a foot pad and a filter screen.
10. The remote transmitting device based on water quality monitoring according to any one of claims 7-9, characterized in that, the baffle of the communication chamber forms a closed space corresponding to the filter pipe in a corresponding space of the communication chamber at any angle. the communication chamber is further provided with a water quality monitoring assembly for detecting water quality and a transmission port for transmitting data.
Citation Information
Patent Citations
Wireless sensor water quality monitoring device
CN221803979U