Water sample collection device for big data water quality risk monitoring
By designing a water sampling device that includes a segmented water storage disc and a support frame, the problem of incomplete sampling by traditional equipment is solved, enabling efficient and accurate water quality sampling and data storage at multiple locations, thus improving sampling efficiency.
Patent Information
- Application Number
- CN202211362235.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-02
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2042-11-02
AI Technical Summary
Traditional big data water quality risk monitoring equipment has poor sampling effect when sampling water bodies. It cannot simultaneously sample multiple locations comprehensively. The sampler cannot effectively preserve the samples, the data is not accurate enough, the sampling efficiency is low, and it is difficult to meet the needs of use.
A water sampling device was designed, comprising components such as a segmented water storage disc, a support frame, and a water sampler. The device collects samples using multiple water samplers and stores the samples in a container. It utilizes a buoyancy disc and a hydraulic support to achieve multi-position sampling and rapid collection. The device is combined with a filter and a pressure pump for preliminary filtration and storage.
It enables comprehensive sampling from multiple locations, resulting in more complete data samples, improved sampling efficiency, accurate water quality assessment, and meets the needs of high-efficiency sampling.
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Figure CN115791282B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the field of water sampling, and particularly relates to a water sample collection device for big data water quality risk monitoring. BACKGROUND
[0002] Water quality is a short form of water body quality. It indicates the physical, chemical and biological characteristics and the state of composition of a water body. Water quality is used to evaluate the state of water body quality, and a series of water quality parameters and water quality standards are stipulated, such as water quality standards for drinking water, industrial water and fishery water. The physical and chemical properties and dynamic characteristics of natural water without human activity pollution. The physical properties mainly refer to the temperature, color, transparency, smell and taste of water. The chemical properties of water are determined by the dissolved and dispersed gas, ion, molecule, colloidal substance, suspended substance, microorganism and the content of these substances in natural water. The dissolved gas in natural water mainly includes oxygen and carbon dioxide; the dissolved ions mainly include potassium, sodium, calcium, magnesium, chlorine, sulfate, bicarbonate and carbonate ions. The biological protoplasm includes nitrate, nitrite, dihydrogen phosphate and hydrogen phosphate ions. In addition, there are some trace elements such as bromine, iodine and manganese. The colloidal substance includes inorganic silicic acid colloids and humic acid organic colloids. The suspended solid is mainly inorganic. The microorganism includes bacteria and coliform group. The evaluation indexes of natural water generally include color, smell, taste, transparency, water temperature, mineralization degree, total hardness, oxidation-reduction potential, pH value, biochemical oxygen demand and chemical oxygen demand. The quality of atmospheric precipitation in natural water is related to the local meteorological conditions and the chemical composition of atmospheric particulate matter leached by precipitation; the quality of surface water is related to the rock, soil and vegetation in the runoff process; the quality of groundwater is mainly related to the chemical composition of the rock of the aquifer and the geological conditions of the recharge area.
[0003] The conventional big data water quality risk monitoring equipment has relatively poor overall sampling effect when sampling the water body, cannot effectively sample and arrange multiple positions at the same time, is relatively not comprehensive in sampling, cannot effectively sample through multiple water body samplers, and then cannot be fed into the box for saving the overall sampling sample, the obtained data sample is relatively not comprehensive, the overall water quality cannot be effectively judged, the overall data is not accurate enough, the overall rapid sampling cannot be effectively realized, different water surfaces cannot be sampled, and the overall sampling efficiency is relatively low, and the overall use demand cannot be met.
[0004] Therefore, a water sample collection device for big data water quality risk monitoring is provided by a person skilled in the art to solve the problems in the background. SUMMARY
[0005] The purpose of this invention is to provide a water sampling device for big data water quality risk monitoring, to solve the problems of traditional big data water quality risk monitoring equipment mentioned in the background art. These problems include relatively poor overall sampling effect, inability to effectively sample and organize multiple locations simultaneously, insufficient sampling comprehensiveness, inability to effectively use multiple water samplers for sampling, inability to pass samples into a container for preservation, relatively incomplete data samples, inability to effectively judge overall water quality, insufficient data accuracy, inability to achieve rapid overall sampling, inability to sample different water surfaces, and relatively low overall sampling efficiency, making it difficult to meet overall usage requirements.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A water sampling device for big data water quality risk monitoring includes a segmented water storage disc, a snap-fit sleeve ring, a connecting bend, a connecting pipe, and a support frame. A water transmitter is fixedly connected to the bottom surface of the segmented water storage disc. The support frame is sleeved on the bottom surface of the segmented water storage disc, and a water sampler is sleeved on the bottom surface of the support frame. The water transmitter is fixedly connected to the outer wall of the support frame. A hydraulic support A is fixedly connected to the bottom surface of the snap-fit sleeve ring. A connecting support frame is fixedly connected to the bottom end of the hydraulic support A. A connecting disc is fixedly connected to the outer wall of the connecting support frame, and a buoyancy device is fixedly connected to the outer wall of the connecting disc. The disc body has a hydraulic support B fixedly connected to its bottom surface, and a bottom mounting bracket fixedly connected to the bottom surface of the hydraulic support B. A sample storage tank is nested inside the dividing water storage disc. A transmission pipe is inserted into the bottom surface of the dividing water storage disc. A filter is fixedly connected to the bottom surface of the transmission pipe. A connecting elbow is fixedly connected to the bottom surface of the filter. A pressure pump is fixedly connected to the bottom surface of the connecting elbow. A collecting disc is fixedly connected to the bottom surface of the connecting pipe. A conveying pipe is fixedly connected to the bottom surface of the collecting disc. A collection pipe is fixedly connected to the bottom surface of the conveying pipe. The collection pipe has a water passage hole inside.
[0008] As a preferred embodiment of the present invention, the support fixing frame includes a snap-fit sleeve ring, a hydraulic support A, a connecting disc, a buoyancy disc body, a hydraulic support B, a bottom mounting frame, and a connecting support frame.
[0009] In a preferred embodiment of the present invention, the snap-fit sleeve ring, the connecting disc and the bottom mounting bracket are arranged in parallel, and the hydraulic support A and the hydraulic support B are arranged perpendicularly to the snap-fit sleeve ring, the connecting disc and the bottom mounting bracket.
[0010] As a preferred embodiment of the present application: the water body transmitter comprises a connecting elbow, a filter, a transmission pipeline, a sample storage bucket and a pressure pump.
[0011] As a preferred embodiment of the present application: the connecting elbow, the filter, the transmission pipeline, the sample storage bucket and the pressure pump are provided with a plurality of, and are uniformly distributed around the connecting disc.
[0012] As a preferred embodiment of the present application: the buoyancy disc is provided with a buoyancy ball, and the buoyancy disc is provided with a plurality of, and the buoyancy disc is uniformly distributed around the connecting disc.
[0013] As a preferred embodiment of the present application: the water sample collector comprises a connecting pipeline, a collecting disc, a conveying pipeline, a collecting pipeline and a water passing through hole.
[0014] Compared with the prior art, the present application has the following beneficial effects:
[0015] The water sample collection device for big data water quality risk monitoring can change the traditional big data water quality risk monitoring equipment, effectively sample and arrange multiple positions at the same time, sample more comprehensively, effectively sample through multiple water samplers, then pass into the box for saving the overall sampling sample, get more comprehensive data sample, effectively judge the overall water quality, the overall data is accurate, can effectively realize the overall rapid sampling, sample different water surfaces, the overall sampling efficiency is higher, can meet the overall use demand. BRIEF DESCRIPTION OF DRAWINGS
[0016] Other features, objects and advantages of the present application will become more apparent from the following detailed description of non-limiting embodiments, made with reference to the accompanying drawings:
[0017] Figure 1 It is a whole three-dimensional structure schematic view of a water sample collection device for big data water quality risk monitoring;
[0018] Figure 2 It is a whole isometric side view structure schematic view in a water sample collection device for big data water quality risk monitoring;
[0019] Figure 3 It is a three-dimensional structure schematic view of a support fixing frame and a water sample collector in a water sample collection device for big data water quality risk monitoring in the state of connection;
[0020] Figure 4 It is an isometric side view structure schematic view of a support fixing frame and a water sample collector in a water sample collection device for big data water quality risk monitoring in the state of connection.
[0021] Figure 5 It is a kind of water sample collector's three-dimensional structural schematic diagram in water sample collection device for big data water quality risk monitoring.
[0022] In the figure: 1, split water storage disc; 2, support fixing frame; 201, clamping sleeve ring; 202, hydraulic support A; 203, connecting disc; 204, buoyancy disc body; 205, hydraulic support B; 206, bottom mounting frame; 207, connecting support frame; 3, water body transmitter; 301, connecting elbow; 302, filter; 303, transmission pipeline; 304, sample storage bucket; 305, pressure pump; 4, water sample collector; 401, connecting pipeline; 402, collection disc body; 403, conveying pipeline; 404, collection pipeline; 405, water through hole. DETAILED DESCRIPTION
[0023] Please refer to Figures 1-5The embodiment of the application discloses a water sample collection device for big data water quality risk monitoring, which comprises a split water storage disc 1, a clamping sleeve ring 201, a connecting elbow 301, a connecting pipeline 401 and a supporting fixing frame 2, a water body conveyor 3 is fixedly connected to the bottom surface of the split water storage disc 1, the supporting fixing frame 2 is sleeved with the bottom surface of the split water storage disc 1, the traditional big data water quality risk monitoring equipment can be changed, when the water body is sampled, the overall sampling effect is relatively poor, the plurality of positions can be effectively sampled and arranged at the same time, the sampling is relatively more comprehensive, a water sample collector 4 is sleeved with the bottom surface of the supporting fixing frame 2, the water body conveyor 3 is fixedly connected to the outer wall of the supporting fixing frame 2, a hydraulic support A 202 is fixedly connected to the bottom surface of the clamping sleeve ring 201, a connecting support frame 207 is fixedly connected to the bottom end of the hydraulic support A 202, a connecting disc 203 is fixedly connected to the outer wall of the connecting support frame 207, a buoyancy disc body 204 is fixedly connected to the outer wall of the connecting disc 203, a hydraulic support B 205 is fixedly connected to the bottom surface of the connecting disc 203, a bottom mounting frame 206 is fixedly connected to the bottom surface of the hydraulic support B 205, when in use, the water body can be directly collected into the collecting disc body 402 through the conveying pipeline 403, the collecting pipeline 404 and the water passing through hole 405, then the water body is transmitted into the pressure pump 305 through the connecting pipeline 401, is transmitted into the filter 302 through the connecting elbow 301 to realize preliminary filtration, then is transmitted into the split water storage disc 1 through the transmission pipeline 303, then is stored separately, and then is stored into the sample storage barrel 304, the sample storage barrel 304 is sleeved with the inside of the split water storage disc 1, the transmission pipeline 303 is inserted into the bottom surface of the split water storage disc 1, the filter 302 is fixedly connected to the bottom surface of the transmission pipeline 303, the connecting elbow 301 is fixedly connected to the bottom surface of the filter 302, the pressure pump 305 is fixedly connected to the bottom surface of the connecting elbow 301, the collecting disc body 402 is fixedly connected to the bottom surface of the connecting pipeline 401, the conveying pipeline 403 is fixedly connected to the bottom surface of the collecting disc body 402, the collecting pipeline 404 is fixedly connected to the bottom surface of the conveying pipeline 403, and the water passing through hole 405 is arranged in the collecting pipeline 404.
[0024] Please refer to Figure 1 、 Figure 3 and Figure 5The support fixing frame 2 comprises a clamping sleeve ring 201, a hydraulic support A 202, a connecting disc 203, a buoyancy disc body 204, a hydraulic support B 205, a bottom mounting frame 206 and a connecting support frame 207. The buoyancy disc body 204 plays a role of buoyancy support, and the hydraulic support B 205 and the hydraulic support A 202 can play a role of hydraulic support. The clamping sleeve ring 201, the connecting disc 203 and the bottom mounting frame 206 can play a role of overall fixed connection. The bottom mounting frame 206 can facilitate the fixation and installation of the pressurizing pump 305. The clamping sleeve ring 201, the connecting disc 203 and the bottom mounting frame 206 are arranged in parallel. The hydraulic support A 202 and the hydraulic support B 205 are arranged perpendicularly to the clamping sleeve ring 201, the connecting disc 203 and the bottom mounting frame 206. The water body transmitter 3 comprises a connecting elbow 301, a filter 302, a transmission pipeline 303, a sample separation water storage bucket 304 and a pressurizing pump 305. The water sample collector 4 comprises a connecting pipeline 401, a collection disc body 402, a conveying pipeline 403, a collecting pipeline 404 and a water passing through hole 405.
[0025] It should be noted that the present application is a water sample collection device for big data water quality risk monitoring, which comprises 1, a segmented water storage disc; 2, a support fixing frame; 201, a clamping sleeve ring; 202, a hydraulic support A; 203, a connecting disc; 204, a buoyancy disc body; 205, a hydraulic support B; 206, a bottom mounting frame; 207, a connecting support frame; 3, a water body transmitter; 301, a connecting elbow; 302, a filter; 303, a transmission pipeline; 304, a sample separation water storage bucket; 305, a pressurizing pump; 4, a water sample collector; 401, a connecting pipeline; 402, a collection disc body; 403, a conveying pipeline; 404, a collecting pipeline; 405, a water passing through hole, the components are general standard parts or components known to those skilled in the art, and the structure and principle thereof can be known by technical personnel through a technical manual or through a conventional experimental method.
[0026] The working principle of the present application is that the traditional big data water quality risk monitoring equipment can be changed, and when the water body is sampled, the overall sampling effect is relatively poor, which can effectively sample and arrange multiple positions at the same time, and the sampling is relatively more comprehensive. When in use, the water body can be directly collected into the collection disc body 402 through the conveying pipeline 403, the collection pipeline 404 and the water passage hole 405, and then transmitted to the pressure pump 305 through the connecting pipeline 401, and then transmitted to the filter 302 through the connecting elbow pipe 301 to realize preliminary filtration, and then transmitted to the segmented water storage disc 1 through the transmission pipeline 303, and then stored in the sample storage barrel 304 through separate storage. The buoyancy disc body 204 plays a role in buoyancy support, and the hydraulic support B 205 and the hydraulic support A 202 can play a role in hydraulic support. The clamping sleeve joint ring 201, the connecting disc 203 and the bottom mounting frame 206 can play a role in overall fixed connection. The bottom mounting frame 206 can facilitate the fixation and installation of the pressure pump 305, and can effectively sample through multiple water samplers, and then input into the box for storage of the overall sampling sample. The obtained data sample is more comprehensive, which can effectively judge the overall water quality, and the overall data is accurate, which can effectively realize the overall rapid sampling, sample different water surfaces at the same time, and the overall sampling efficiency is higher, which can meet the overall use demand.
[0027] The above is only the preferred embodiment of the present application, but the protection scope of the present application is not limited thereto. Any skilled person in the art can make equivalent replacement or change according to the technical solution and the inventive concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.
Claims
1. A water sample collection device for big data water quality risk monitoring, comprising a segmented water storage disc (1), a clamping sleeve ring (201), a connecting elbow (301), a connecting pipeline (401) and a supporting fixture (2), characterized in that, The bottom surface of the split water storage disc (1) is fixedly connected with a water body transmitter (3), the bottom surface of the split water storage disc (1) is sleeved with a support fixing frame (2), the bottom surface of the support fixing frame (2) is sleeved with a water sample collector (4), the outer wall of the support fixing frame (2) is fixedly connected with a water body transmitter (3), the bottom surface of the clamping sleeve ring (201) is fixedly connected with a hydraulic support A (202), the bottom end of the hydraulic support A (202) is fixedly connected with a connecting support frame (207), the outer wall of the connecting support frame (207) is fixedly connected with a connecting disc (203), the outer wall of the connecting disc (203) is fixedly connected with a buoyancy disc body (204), the bottom surface of the connecting disc (203) is fixedly connected with a hydraulic support B (205), the bottom surface of the hydraulic support B (205) is fixedly connected with a bottom mounting frame (206), the inside of the split water storage disc (1) is sleeved with a sample storage bucket (304), the bottom surface of the split water storage disc (1) is inserted with a transmission pipeline (303), the bottom surface of the transmission pipeline (303) is fixedly connected with a filter (302), the bottom surface of the filter (302) is fixedly connected with a connecting elbow (301), the bottom surface of the connecting elbow (301) is fixedly connected with a pressure pump (305), the connecting elbow (301), the filter (302), the transmission pipeline (303), the sample storage bucket (304) and the pressure pump (305) are all provided with a plurality of, and are uniformly distributed around the connecting disc (203), the water body can be directly collected into the collecting disc body (402) through the conveying pipeline (403), the collecting pipeline (404) and the water passing hole (405), and then transmitted to the pressure pump (305) through the connecting pipeline (401), the bottom surface of the connecting pipeline (401) is fixedly connected with the collecting disc body (402), the bottom surface of the collecting disc body (402) is fixedly connected with the conveying pipeline (403), the bottom surface of the conveying pipeline (403) is fixedly connected with the collecting pipeline (404), the inside of the collecting pipeline (404) is provided with a water passing hole (405), the clamping sleeve ring (201), the connecting disc (203) and the bottom mounting frame (206) are arranged in parallel, the hydraulic support A (202) and the hydraulic support B (205) are arranged vertically between the clamping sleeve ring (201), the connecting disc (203) and the bottom mounting frame (206).
2. The water sample collection device for big data water quality risk monitoring according to claim 1, characterized in that, The support fixing frame (2) comprises a clamping sleeve ring (201), a hydraulic support A (202), a connecting disc (203), a buoyancy disc body (204), a hydraulic support B (205), a bottom mounting frame (206) and a connecting support frame (207).
3. The water sample collection device for big data water quality risk monitoring according to claim 1, characterized in that, The water body transmitter (3) comprises a connecting elbow (301), a filter (302), a transmission pipeline (303), a sample storage bucket (304) and a pressure pump (305).
4. The water sample collection device for big data water quality risk monitoring according to claim 1, characterized in that, The buoyancy disc body (204) is internally provided with buoyancy balls, and a plurality of buoyancy disc bodies (204) are uniformly distributed around the connecting disc (203).
5. The water sample collection device for big data water quality risk monitoring according to claim 1, characterized in that, The water sample collector (4) comprises a connecting pipeline (401), a collecting disc body (402), a conveying pipeline (403), a collecting pipeline (404) and a water passing through hole (405).
Citation Information
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