Wastewater detection and storage device

By designing a wastewater detection and storage device including a water intake cylinder, piston, storage tank and filter mechanism, the thread grooves intercept large impurities and vibrating solid impurities with vibrating the disk, the blockage problem during deep water sampling is solved, and the accuracy of the detection results and the reliability of the device are improved.

CN223065296UActive Publication Date: 2025-07-04SHANXI BLUE STANDARD TESTING TECH CO LTD
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Patent Information

Application Number
CN202422067375.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-26
Publication Date
2025-07-04
Estimated Expiration
2034-08-26

AI Technical Summary

Technical Problem

When sampling deep wastewater, impurity particles are prone to clogging the detection and storage device, affecting the accuracy of the detection results.

Method used

A wastewater detection and storage device including a water intake cylinder, a piston, a storage tank and a filter mechanism is designed to intercept large impurities through thread grooves, and the vibrating disc vibrating solid impurities are vibrated. Combined with inclined vibration wave filtration, deep water sampling and impurity filtration are realized.

Benefits of technology

It improves the accuracy of the detection results and the reliability of the device, avoids impurities blockage, and ensures the stability of the detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a waste water detection and storage device, relates to the technical field of waste water detection, and aims to solve the technical problem that a large number of impurity particles are blocked in the detection and storage device when deep waste water is sampled at present. A storage tank is movably connected between the piston and the inner wall of the bottom of the water taking barrel in a sleeved mode through a bearing. When the domestic wastewater sampling device is used for sampling domestic wastewater, the device is moved into deep water through the supporting rod and then passes through the threaded groove, solid impurities with large sizes in water can be intercepted, at the moment, the solid impurities flow into the space between every two adjacent convex blocks and are prevented from flowing out of the interception sponge, and meanwhile in the rotating process of the vibration disc, due to the fact that the vibration disc is in an inclined shape, the solid impurities are prevented from flowing out of the interception sponge. When the device is used for collecting the deep water, the functions of sampling the deep water and filtering the solid impurities with larger volume can be realized, and the accuracy of the detection result of the device is favorably improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of wastewater detection, and more specifically, to a wastewater detection and storage device. Background Technique

[0002] Wastewater detection and storage refers to the process of collecting, temporarily storing, and preliminarily treating wastewater generated from industries, agriculture, daily life, etc., for subsequent analysis and treatment; this process involves sampling, transporting, storing, and monitoring the wastewater to ensure that the wastewater remains in a stable state before analysis and treatment.

[0003] Currently, in domestic wastewater, due to sedimentation, the depth of the wastewater is related to the impurity concentration in the wastewater. Therefore, when detecting deep wastewater, a large amount of impurity particles and domestic garbage will enter the wastewater detection and storage device, resulting in the risk of blockage of the detection and storage device and affecting the wastewater detection results. In view of this, we propose a wastewater detection and storage device. Content of the Utility Model

[0004] The purpose of the utility model is to overcome the deficiencies of the prior art, adapt to the actual needs, and provide a wastewater detection and storage device to solve the technical problem that a large amount of impurity particles will be blocked in the detection and storage device when sampling deep wastewater currently.

[0005] To solve the above technical problems, the utility model provides the following technical solution: A wastewater detection and storage device, including a water intake tube, a piston is movably sleeved on the top of the water intake tube, a storage tank is movably sleeved between the piston and the inner wall of the bottom of the water intake tube through a bearing, and a filtering mechanism is arranged on the outer wall of the storage tank; the filtering mechanism includes a number of storage shells and a vibration wave unit; a transmission unit is arranged on the inner wall of the water intake tube; a number of the storage shells are fixedly connected to the outer wall of the storage tank and the storage shells are distributed in a circular array, an intercepting sponge is arranged on the inner wall of the storage shell, a number of through holes are opened on the side surface of each storage shell and the through holes are distributed in a linear array, a flow groove is opened on one side of each storage shell, a threaded groove is opened on the side surface of the storage tank and the threaded groove is communicated with each flow groove. When sampling domestic wastewater, the device is moved to deep water through a support rod, and then through the threaded groove, solid impurities with larger volume in the water can be intercepted. At this time, the solid impurities flow into the space between two adjacent convex blocks, preventing the solid impurities from flowing out of the intercepting sponge. At the same time, during the rotation of the vibrating disk, since the vibrating disk is inclined, vibration waves are generated during rotation in the water, and all the solid impurities in the water are shaken out. When collecting deep water, the utility model can realize the functions of deep water sampling and filtering solid impurities with larger volume, which is beneficial to improving the accuracy of the detection results of the device.

[0006] Preferably, convex blocks are arranged on the inner wall of the intercepting sponge, and a storage groove is formed between two adjacent convex blocks.

[0007] Preferably, the vibration wave unit includes a slide rail fixedly sleeved on the inner wall of the top of the water intake cylinder. A vibration disk is fixedly sleeved on the side surface of the storage tank, and the slot holes are movably connected to the inner walls on both sides of the slide rail. A plurality of slot holes are formed on the surface of the vibration disk and are distributed in an annular array. A plurality of water inlets are formed on the side surface of the storage tank and are distributed in an annular array. During the rotation of the vibration disk in this utility model, vibration waves can be generated in the water to vibrate out larger stones in the water. At the same time, through the plurality of slot holes on the vibration disk, the water flow filtering the stones can flow in during the rotation and vibration process, realizing the function of removing stones, thereby avoiding the influence of stones on the test results of the water sample and being beneficial to improving the reliability of the device.

[0008] Preferably, the transmission unit includes a plurality of circulation ports. The plurality of circulation ports are formed on the outer wall of the water intake cylinder and are distributed in an annular array. A plurality of brackets are fixedly connected to the inner wall of the water intake cylinder. A blocking plate is movably connected to the opposite sides of adjacent two brackets through a first insertion rod, and the blocking plate corresponds to the position of the circulation port.

[0009] Preferably, rubber blocking pieces are respectively fixedly connected to both sides of the blocking plate.

[0010] Preferably, a hollow rod is fixedly connected to the top of the water intake cylinder. A support rod is movably sleeved inside the hollow rod. A clamping block is fixedly connected to one side of the support rod, and the clamping block is movably sleeved in the upper slot of the hollow rod.

[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0012] 1. When sampling domestic wastewater in this utility model, the device is moved to deep water through the support rod, and then through the threaded groove, larger solid impurities in the water can be intercepted. At this time, the solid impurities flow into the space between adjacent two convex blocks, preventing the solid impurities from flowing out of the intercepting sponge. At the same time, during the rotation of the vibration disk, since the vibration disk is inclined, vibration waves are generated during rotation in the water to vibrate out all the solid impurities in the water. When collecting deep water in this utility model, the functions of deep water sampling and filtering larger solid impurities can be realized, which is beneficial to improving the accuracy of the test results of the device.

[0013] 2. During the rotation of the vibration disk in this utility model, vibration waves can be generated in the water to vibrate out larger stones in the water. At the same time, through the plurality of slot holes on the vibration disk, the water flow filtering the stones can flow in during the rotation and vibration process, realizing the function of removing stones, thereby avoiding the influence of stones on the test results of the water sample and being beneficial to improving the reliability of the device.

[0014] 3. In this utility model, bumps are provided on the inner wall of the intercepting sponge. During use, larger stones and impurities flow into the intercepting sponge through the threaded grooves, and with continuous water injection, the larger stones flow into the angle between two adjacent bumps. In the process of water flow, the stones will not flow out of the intercepting sponge, affecting the normal filtering function of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;

[0016] Figure 2 is a sectional three-dimensional structural schematic diagram of the present utility model;

[0017] Figure 3 is a three-dimensional exploded structural schematic diagram of the present utility model to show the three-dimensional structure of the filtering mechanism;

[0018] Figure 4 is a three-dimensional exploded structural schematic diagram of the present utility model to show the three-dimensional structure of the transmission unit;

[0019] Figure 5 is a sectional structural schematic diagram of the intercepting sponge of the present utility model.

[0020] Explanation of the reference numerals in the figures: 1, water intake tube; 2, piston; 3, storage tank; 4, filtering mechanism; 401, storage shell; 402, intercepting sponge; 402a, bump; 403, through hole; 404, flow channel; 405, threaded groove; 5, vibration wave unit; 501, slide rail; 502, vibrating disk; 503, slot hole; 504, water inlet; 6, transmission unit; 601, flow port; 602, support; 603, blocking plate; 603a, rubber blocking piece; 7, hollow rod; 8, support rod; 9, clamping block. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0021] As Figures 1 to 5As shown in the figure, a waste water detection and storage device related to the present utility model includes a water intake cylinder 1. A piston 2 is movably sleeved on the top of the water intake cylinder 1. A storage tank 3 is movably sleeved between the piston 2 and the inner wall of the bottom of the water intake cylinder 1 through a bearing. A filtering mechanism 4 is arranged on the outer wall of the storage tank 3. The filtering mechanism 4 includes a plurality of storage shells 401 and a vibration wave unit 5. A transmission unit 6 is arranged on the inner wall of the water intake cylinder 1. A plurality of storage shells 401 are fixedly connected to the outer wall of the storage tank 3 and the storage shells 401 are distributed in a circular array. An intercepting sponge 402 is arranged on the inner wall of the storage shell 401. A plurality of through holes 403 are formed on the side surface of each storage shell 401 and the through holes 403 are distributed in a linear array. A flow-through groove 404 is formed on one side of each storage shell 401. A threaded groove 405 is formed on the side surface of the storage tank 3 and the threaded groove 405 communicates with each flow-through groove 404. When sampling domestic waste water in this utility model, the device is moved to deep water through a support rod 8, and then through the threaded groove 405, larger stones and impurities in the water can be intercepted. At this time, the solid impurities flow into the space between two adjacent bumps 402a, preventing the solid impurities from flowing out of the intercepting sponge 402. At the same time, during the rotation of the vibrating disk 502, since the vibrating disk 502 is inclined, vibration waves are generated during rotation in the water, and all the solid impurities in the water are shaken out. When collecting deep water in this utility model, the functions of deep water sampling and filtering larger solid impurities can be realized, which is beneficial to improving the accuracy of the detection results of the device. The storage tank 3 is driven to rotate. When the solid impurities contained in the water flow through the threaded groove 405, they flow into the intercepting sponge 402, and the solid impurities are intercepted in the intercepting sponge 402. Among them, an included angle is formed between two adjacent bumps 402a, and the water flow drives the solid impurities to flow into it, and the water flow will not wash away the solid impurities in the included angle.

[0022] In an embodiment of the present utility model, bumps 402a are arranged on the inner wall of the intercepting sponge 402, and a storage groove is formed between two adjacent bumps 402a. It is worth noting that by arranging bumps 402a on the inner wall of the intercepting sponge 402, during use, larger stones and impurities flow into the intercepting sponge 402 through the threaded groove 405, and through continuous water injection, the larger stones flow into the included angle between two adjacent bumps 402a, so that during the flow of water, the stones will not flow out of the intercepting sponge 402, affecting the normal filtering function of the device.

[0023] In an embodiment of the present utility model, the vibration wave unit 5 includes a slide rail 501, the slide rail 501 is fixedly sleeved on the inner wall of the top of the water intake cylinder 1, the side surface of the storage tank 3 is fixedly sleeved with a vibrating disk 502, and the slot holes 503 are movably connected to the inner walls on both sides of the slide rail 501. A plurality of slot holes 503 are formed on the surface of the vibrating disk 502 and the slot holes 503 are distributed in an annular array. A plurality of water inlets 504 are formed on the side surface of the storage tank 3 and the water inlets 504 are distributed in an annular array. During the rotation of the vibrating disk 502 in this utility model, vibration waves can be generated in the water to vibrate out larger stones in the water. At the same time, through the plurality of slot holes 503 on the vibrating disk 502, the water flow filtering the stones can flow in during the rotation and vibration process, realizing the function of removing stones, thereby avoiding the influence of stones on the water sample detection result and being beneficial to improving the reliability of the device. When the larger solid impurities in domestic wastewater pass through the vibrating disk 502, due to the rotation of the vibrating disk 502 and the inclined shape of the vibrating disk 502, vibration waves can be generated in the water to completely remove the impurities. At the same time, the wastewater after removal flows into the interior of the storage tank 3 through the slot holes 503 from the water inlets 504. After the collection is completed, the support rod 8 is pulled, and the water intake cylinder 1 moves upward. During the movement of the water intake cylinder 1, the water flow inside it flows out from the circulation ports 601 on the side surface and flows in the wastewater tank. When the water intake cylinder 1 moves to the water surface, due to water pressure, the blocking plate 603 blocks the circulation port 601, preventing the water flow from flowing out from it. Then, through an external wastewater detection device, the wastewater in the water intake cylinder 1 and the wastewater in the storage tank 3 are detected. Among them, the wastewater in the water intake cylinder 1 contains wastewater with a relatively shallow water level. Therefore, during the detection process, the two wastewater detection structures are compared to reduce errors and make the wastewater detection result more accurate.

[0024] In an embodiment of the present utility model, the transmission unit 6 includes a plurality of circulation ports 601, the plurality of circulation ports 601 are formed on the outer wall of the water intake cylinder 1 and the circulation ports 601 are distributed in an annular array. A plurality of brackets 602 are fixedly connected to the inner wall of the water intake cylinder 1. One side of two adjacent brackets 602 is movably connected with a blocking plate 603 through a first insertion rod, and the blocking plate 603 corresponds to the position of the circulation port 601. Rubber blocking pieces 603a are respectively fixedly connected to both sides of the blocking plate 603. A hollow rod 7 is fixedly connected to the top of the water intake cylinder 1. A support rod 8 is movably sleeved inside the hollow rod 7. A clamping block 9 is fixedly connected to one side of the support rod 8 and the clamping block 9 is movably sleeved in the groove on the hollow rod 7. During use, first, through the cooperation between the support rod 8 and the hollow rod 7, the length of the device is increased. Then, the water intake cylinder 1 is sent into domestic wastewater and moved downward through the support rod 8. Due to water pressure, the water flow flows inward from the circulation ports 601. At this time, the blocking plate 603 rotates through the first insertion pin, and a force is generated in the water intake cylinder 1 through the circulation ports 601, and the water flow impacts the storage shell 401 to make it rotate.

[0025] Working principle: This embodiment provides a waste water detection and storage device. During use, first, the cooperation between the support rod 8 and the hollow rod 7 is used to increase the length of the device. Then, the water intake cylinder 1 is sent into domestic waste water and moved downward through the support rod 8. Due to water pressure, water flows inward through the circulation port 601. At this time, the blocking plate 603 rotates through the first pin. Through the circulation port 601, water generates a force in the water intake cylinder 1, and the water flow impacts the storage shell 401 to make it rotate, driving the storage tank 3 to rotate. When the solid impurities contained in the water flow pass through the thread groove 405, they flow into the intercepting sponge 402, and the solid impurities are intercepted in the intercepting sponge 402. Among them, an included angle is formed between two adjacent bumps 402a, and the water flow drives the solid impurities to flow into it, and the water flow will not wash away the solid impurities in the included angle. At the same time, when the relatively large solid impurities in domestic waste water pass through the vibrating disk 502, the vibrating disk 502 rotates, and because the vibrating disk 502 is inclined, it can generate vibration waves in the water to remove all the impurities. At the same time, the waste water after vibration removal flows into the interior of the storage tank 3 through the slot holes 503 from the water inlet 504. After collection is completed, the support rod 8 is pulled, and the water intake cylinder 1 moves upward. During the movement of the water intake cylinder 1, the water flow inside it flows out from the circulation port 601 on the side surface and flows in the waste water tank. When the water intake cylinder 1 moves to the water surface, due to water pressure, the blocking plate 603 blocks the circulation port 601, preventing the water flow from flowing out. Then, through an external waste water detection device, the waste water in the water intake cylinder 1 and the waste water in the storage tank 3 are detected. Among them, the waste water in the water intake cylinder 1 contains waste water with a relatively shallow water level. Therefore, during the detection process, the two waste water detection structures are compared to reduce errors and make the waste water detection result more accurate.

[0026] The embodiments disclosed in the present utility model are preferred embodiments, but not limited thereto. Those of ordinary skill in the art can easily understand the spirit of the present utility model based on the above embodiments and make different extensions and changes. However, as long as they do not depart from the spirit of the present utility model, they are within the protection scope of the present utility model.

Claims

1. A wastewater detection and storage device, characterized in that, It includes a water intake tube (1), a piston (2) is movably sleeved on the top of the water intake tube (1), a storage tank (3) is movably sleeved between the piston (2) and the inner wall of the bottom of the water intake tube (1) through a bearing, and a filtering mechanism (4) is arranged on the outer wall of the storage tank (3); The filtering mechanism (4) includes a number of storage shells (401) and a vibration wave unit (5); A transmission unit (6) is arranged on the inner wall of the water intake tube (1); A number of the storage shells (401) are fixedly connected to the outer wall of the storage tank (3) and the storage shells (401) are distributed in an annular array. An intercepting sponge (402) is arranged on the inner wall of the storage shell (401). A number of through holes (403) are formed on the side surface of each storage shell (401) and the through holes (403) are distributed in a linear array. A flow groove (404) is formed on one side of each storage shell (401). A threaded groove (405) is formed on the side surface of the storage tank (3) and the threaded groove (405) communicates with each flow groove (404).

2. The wastewater detection and storage device according to claim 1, characterized in that, Convex blocks (402a) are arranged on the inner wall of the intercepting sponge (402), and storage grooves are formed between adjacent two convex blocks (402a).

3. The wastewater detection and storage device according to claim 2, characterized in that, The vibration wave unit (5) includes a slide rail (501), the slide rail (501) is fixedly sleeved on the inner wall of the top of the water intake tube (1), a vibration disk (502) is fixedly sleeved on the side surface of the storage tank (3), and a slot hole (503) is movably connected to the inner walls of both sides of the slide rail (501). A number of slot holes (503) are formed on the surface of the vibration disk (502) and the slot holes (503) are distributed in an annular array. A number of water inlets (504) are formed on the side surface of the storage tank (3) and the water inlets (504) are distributed in an annular array.

4. A wastewater detection and storage device according to claim 3, characterized in that, The transmission unit (6) includes a number of flow ports (601), the flow ports (601) are formed on the outer wall of the water intake tube (1) and the flow ports (601) are distributed in an annular array. A number of brackets (602) are fixedly connected to the inner wall of the water intake tube (1). A blocking plate (603) is movably connected between the opposite sides of adjacent two brackets (602) through a first plug rod and the blocking plate (603) corresponds to the position of the flow port (601).

5. The wastewater detection and storage device according to claim 4, wherein Rubber blocking pieces (603a) are respectively fixedly connected to both sides of the blocking plate (603).

6. The wastewater detection and storage device according to claim 5, characterized in that, A hollow rod (7) is fixedly connected to the top of the water intake tube (1), a support rod (8) is movably sleeved inside the hollow rod (7), a clamping block (9) is fixedly connected to one side of the support rod (8) and the clamping block (9) is movably sleeved in the upper slot of the hollow rod (7).