Anti-blocking organic glass water sampler for deep water sample
By installing components such as a water baffle, filter plate, and paddle in the plexiglass water sampler, and using water pressure to drive the rotating shaft and open/close the cover, the problem of inlet blockage is solved, impurity filtration and water sample discharge are achieved, and the sampling effect of the water sampler is enhanced.
Patent Information
- Application Number
- CN202520185990.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-02-06
AI Technical Summary
The inlet of existing acrylic water samplers is prone to clogging, which affects the normal operation of sampling and makes it difficult to guarantee the sampling capacity.
The acrylic water sampler designed to prevent clogging of deep water samples uses a water-blocking cover, filter plate, paddles, and drainage components. Water pressure drives the rotating shaft and the opening and closing of the cover to filter impurities and discharge water samples, thus avoiding clogging of the inlet.
It effectively blocks large impurities, ensures the amount of water sampled, guarantees the normal operation of sampling, and enhances the practical value of the water sampler.
Smart Images

Figure CN223827367U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of acrylic water sampler technology, and in particular to an acrylic water sampler for deep water samples that is resistant to clogging. Background Technology
[0002] Acrylic glass water samplers are widely used water sampling tools in fields such as water environment monitoring, marine research, and aquaculture. They can accurately place the water sampler at the target location to collect water samples, ensuring that representative water samples from specific depths and areas are collected.
[0003] Most current acrylic water samplers have relatively simple inlet structures. Water samples often enter the container directly from the open inlet at the bottom of the sampler. Impurities and organisms in the water can also enter the sampler, which may cause blockage at the inlet. At the same time, it may affect the sampling capacity and make it difficult to ensure the normal operation of the sampling operation.
[0004] Therefore, in view of the problem that the inlet of existing acrylic water samplers is prone to clogging, an acrylic water sampler for deep water samples that is clogging-proof can be designed. Through multiple protective filtration methods, larger impurities are blocked outside the water sampler, avoiding inlet clogging, ensuring water sampling volume, ensuring the normal operation of sampling, and thus effectively enhancing the practical value of the water sampler. Utility Model Content
[0005] To overcome the problem that most acrylic water samplers often have water samples entering the container directly from the open inlet at the bottom of the sampler, the inlet may become blocked, which may also affect the sampling capacity and make it difficult to ensure the normal operation of the sampling operation.
[0006] The technical solution of this utility model is as follows: an plexiglass water sampler for deep water sampling that prevents clogging, comprising a glass jar, a handle, a sampler assembly, an inlet, a baffle cover, an outlet, a drainage pipe, a filter plate, a first rotating shaft, a paddle, a first sampling assembly, a flip cover, a second sampling assembly, and a drainage assembly. A handle is provided on the top of the glass jar, the sampler assembly is located on the outer side of the glass jar, an inlet is provided on the bottom surface of the glass jar, and a baffle cover is provided on the inner bottom surface of the glass jar, positioned directly above the inlet. The glass jar is equipped with a filter plate. A first rotating shaft is located on the bottom surface of the water-blocking cover. The first rotating shaft is rotatably connected to the water-blocking cover and passes through the filter plate. A paddle is located at one end of the first rotating shaft. Multiple sets of paddles are provided. A first sampling component is located on one side of the water-blocking cover. A drain outlet is located on the top of the glass jar. A flip cover is located inside the drain outlet. The flip cover is a semi-circular plate. A second sampling component is located on one side of the flip cover. A drain pipe is located on one side of the glass jar. A drain component is located on one side of the drain pipe.
[0007] Preferably, the placement and depth of the glass jar are flexibly controlled by a handle. The water sampler assembly ensures the normal sinking of the glass jar for water sampling. The inlet is sealed by a water-blocking cover. As the glass jar sinks, the water pressure forces the water-blocking cover open. The first sampling assembly limits the water-blocking cover, and the water passes through a filter plate to block larger impurities. Subsequently, the water enters the glass jar through the inlet. Simultaneously, the water pressure drives the first rotating shaft to rotate, which in turn drives the paddle to rotate, removing impurities and preventing filter plate blockage. The second sampling assembly flexibly opens and closes the flip-top, which seals the drain outlet. As the glass jar sinks, the water sample from the non-sampling layer is discharged through the drain outlet. The drainage assembly flexibly opens and closes the drainage pipe, using the drainage pipe to discharge the water sample collected from the glass jar. This effectively blocks larger impurities outside the water sampler, prevents inlet blockage, ensures the effectiveness of water sampling, and enhances the practical value of the water sampler.
[0008] Preferably, the water sampler assembly includes a counterweight ring, scale lines, and a buckle. The counterweight ring is located on the outside of the glass jar, the drainage pipe is located below the counterweight ring, the scale lines are located on the outside of the glass jar and above the counterweight ring, and a buckle is located on one side of the handle.
[0009] Preferably, the first sampling component includes a support rod and a connecting plate. The support rod is provided on the bottom surface inside the glass jar. Multiple sets of support rods are provided. One end of the support rod is provided with a connecting plate, which is cross-shaped.
[0010] Preferably, the first sampling component also includes a connecting plate, which is provided on one side of the water baffle, and the connecting plate is slidably connected to the support rod.
[0011] Preferably, the second sampling component includes a limiting plate and a second rotating shaft. The limiting plate is provided on the inner side of the drain outlet, and the second rotating shaft is provided on one side of the limiting plate. Two sets of the second rotating shafts are symmetrically arranged. The second rotating shafts are rotatably connected to the glass jar body, and the flip cover is provided on the outer side of the second rotating shaft.
[0012] Preferably, the drainage assembly includes a sealing plug, with the sealing plug disposed on the inner side of the drainage pipe, and the outer side of the sealing plug being threadedly connected to the inner side of the drainage pipe.
[0013] Preferably, the drainage assembly also includes a sealing groove and a sealing ring. One end of the drainage pipe has a sealing groove, and one side of the sealing plug has a sealing ring that fits into the sealing groove.
[0014] The beneficial effects of this utility model are:
[0015] During sampling, the placement and depth of the glass jar are flexibly controlled by the handle. The inlet is sealed by a water-blocking cover. As the glass jar sinks, the water pressure forces the water-blocking cover open, allowing water to pass through the filter plate and block larger impurities. Subsequently, the water enters the glass jar through the inlet. Simultaneously, the water pressure drives the first rotating shaft to rotate, which in turn drives the paddles to rotate, removing impurities and preventing filter plate blockage. The drain is sealed by a flip-top, allowing water samples from non-sampling layers to be discharged as the glass jar sinks. Finally, the water sample collected in the glass jar is drained through a drainage pipe. This design addresses the problem in most acrylic water samplers where impurities and organisms in the water can enter the sampler, potentially causing inlet blockage and hindering sampling operations. This enhances the practical value of the water sampler. Attached Figure Description
[0016] Figure 1 The diagram shows a three-dimensional structural schematic of the anti-clogging deep water sampler made of plexiglass according to this utility model.
[0017] Figure 2 The diagram shows a three-dimensional structural schematic of the water sampler component of the anti-clogging deep water sampler of this utility model.
[0018] Figure 3 The diagram shows a three-dimensional structural schematic of the first sampling component of the anti-clogging deep water sampler of this utility model.
[0019] Figure 4 The diagram shows a three-dimensional structural schematic of the water-blocking cover of the plexiglass water sampler for preventing clogging of deep water samples according to this utility model.
[0020] Explanation of reference numerals in the attached drawings: 1. Glass jar body; 101. Counterweight ring; 102. Scale line; 2. Handle; 201. Ring buckle; 3. Water inlet; 4. Water baffle; 401. Support rod; 402. Connecting plate; 403. Connecting disc; 5. Filter plate; 6. First rotating shaft; 7. Paddle; 8. Drain outlet; 9. Flip cover; 901. Limiting plate; 902. Second rotating shaft; 10. Drain pipe; 1001. Sealing plug; 1002. Sealing groove; 1003. Sealing ring. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Please see Figures 1-4This utility model provides an embodiment of an anti-clogging deep-water sampler made of plexiglass, comprising a glass jar 1, a handle 2, a sampler assembly, an inlet 3, a baffle 4, an outlet 8, a drainage pipe 10, a filter plate 5, a first rotating shaft 6, a paddle 7, a first sampling assembly, a flip cover 9, a second sampling assembly, and a drainage assembly. The top of the glass jar 1 is provided with a handle 2, the outside of the glass jar 1 is provided with the sampler assembly, the bottom of the glass jar 1 has an inlet 3, and the inner bottom of the glass jar 1 is provided with a baffle 4, which is positioned directly above the inlet 3. A filter plate 5 is provided, and a first rotating shaft 6 is provided on the bottom surface of the water-blocking cover 4. The first rotating shaft 6 is rotatably connected to the water-blocking cover 4 and passes through the filter plate 5. A blade 7 is provided at one end of the first rotating shaft 6, and multiple sets of blades 7 are provided. A first sampling component is provided on one side of the water-blocking cover 4. A drain outlet 8 is provided on the top of the glass jar 1. A flip cover 9 is provided on the inner side of the drain outlet 8. The flip cover 9 is a semi-circular plate. A second sampling component is provided on one side of the flip cover 9. A drain pipe 10 is provided on one side of the glass jar 1, and a drain component is provided on one side of the drain pipe 10.
[0023] Please see Figures 2-4 In this embodiment, the water sampler assembly includes a counterweight ring 101, a scale line 102, and a buckle 201. The counterweight ring 101 is located on the outer side of the glass jar 1, and the drainage pipe 10 is located below the counterweight ring 101. The scale line 102 is located on the outer side of the glass jar 1, above the counterweight ring 101. A buckle 201 is located on one side of the handle 2. The counterweight ring 101 increases the weight of the glass jar 1, ensuring the sinking depth of the glass jar 1. The scale line 102 allows for direct observation of the water sample volume inside the glass jar 1. The buckle 201 connects to an external rope device, ensuring stable sinking and sampling of the glass jar 1. The first sampling component includes... The device includes a support rod 401, a connecting plate 402, and a connecting disc 403. The support rod 401 is provided on the bottom surface of the inner side of the glass tank 1. Multiple sets of support rods 401 are provided. One end of the support rod 401 is provided with a connecting plate 402, which is cross-shaped. One side of the water baffle 4 is provided with a connecting disc 403. The connecting disc 403 is slidably connected to the support rod 401. The support rod 401 supports and fixes the connecting plate 402. The connecting plate 402 limits the connection disc 403. The connecting disc 403 is used to connect and fix the water baffle 4. When the water baffle 4 is raised or lowered, the connecting disc 403 slides up and down along the support rod 401, thereby ensuring that the water baffle 4 opens and closes stably within a certain range.
[0024] The second sampling component includes a limiting plate 901 and a second rotating shaft 902. A limiting plate 901 is provided inside the drain outlet 8, and a second rotating shaft 902 is provided on one side of the limiting plate 901. Two sets of second rotating shafts 902 are symmetrically arranged. The second rotating shafts 902 are rotatably connected to the glass jar body 1. A flip cover 9 is located outside the second rotating shaft 902. The limiting plate 901 limits the rotation range of the flip cover 9. Rotating the second rotating shaft 902 drives the flip cover 9 to rotate, thereby achieving the effect of flexibly opening and closing the flip cover 9. The drain component includes a sealing plug 1001 and a sealing... The drain pipe 10 has a sealing groove 1002 and a sealing ring 1003. A sealing plug 1001 is provided on the inner side of the drain pipe 10. The outer side of the sealing plug 1001 is threadedly connected to the inner side of the drain pipe 10. A sealing groove 1002 is provided at one end of the drain pipe 10. A sealing ring 1003 is provided on one side of the sealing plug 1001. The sealing ring 1003 and the sealing groove 1002 are interlocked. By rotating the sealing plug 1001, the drain pipe 10 can be flexibly blocked, and the sealing ring 1003 can be embedded into the sealing groove 1002, thereby effectively ensuring the sealing effect of the sealing plug 1001.
[0025] Before sampling, rotate the sealing plug 1001 inside the drainage pipe 10 so that the sealing ring 1003 is embedded in the sealing groove 1002, and fasten the external rope hook into the ring buckle 201 on the handle 2.
[0026] During sampling, the glass jar 1 is placed in the water body to be sampled by the handle 2. The counterweight ring 101 is used to drive the glass jar 1 to sink. When sinking, the water pressure is applied and the water body enters the inlet 3 from the filter plate 5. The connecting plate 403 on the water baffle 4 slides up along the support rod 401 and is held in place by the connecting plate 402.
[0027] At the same time, the water pressure drives the first rotating shaft 6 to rotate, thereby driving the blade 7 to rotate continuously. The water pressure drives the second rotating shaft 902 to rotate, thereby opening the flap 9 and allowing the water to be discharged from the drain outlet 8.
[0028] When the specified water depth is reached, pull up the handle 2. The water pressure drives the flip cover 9 to close. The limit plate 901 holds the flip cover 9, so that the flip cover 9 closes the drain outlet 8. At the same time, the connecting plate 403 slides down along the support rod 401, and the water baffle 4 blocks the water inlet 3. The water sample is stored in the glass jar 1.
[0029] Finally, observe the water sample collection volume through the scale line 102, rotate the sealing plug 1001 to open the drain pipe 10, and drain the water sample from the glass jar 1.
[0030] Through the above steps, the placement and depth of the glass jar 1 are flexibly controlled by the handle 2. The water sampler assembly ensures that the glass jar 1 sinks normally for water sampling. The inlet 3 is sealed by the water baffle 4. As the glass jar 1 sinks, the water baffle 4 is pushed open by the water pressure. The first sampling assembly limits the water baffle 4. The water passes through the filter plate 5 to block larger impurities. Then, the water enters the glass jar 1 through the inlet 3. At the same time, the water pressure drives the first rotating shaft 6 to rotate. The rotation of the first rotating shaft 6 drives the paddle 7 to rotate. The rotating paddle 7 removes impurities and prevents the filter plate 5 from clogging. The flip cover 9 is flexibly opened and closed by the second sampling assembly. The flip cover 9 is used to seal the drain outlet 8. When the glass jar 1 sinks, the water sample from the non-sampling layer is discharged through the drain outlet 8. The drain pipe 10 is flexibly opened and closed by the drain assembly. The water sample collected in the glass jar 1 is discharged through the drain pipe 10. This prevents larger impurities from entering the water sampler, avoids clogging of the inlet 3, and ensures the water sampling volume.
[0031] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A deep-water sampler made of plexiglass to prevent clogging, comprising a glass container (1), a handle (2), a sampler assembly, an inlet (3), a baffle (4), an outlet (8), and a drain pipe (10), characterized in that: It also includes a filter plate (5), a first rotating shaft (6), a paddle (7), a first sampling component, a flip cover (9), a second sampling component, and a drainage component. A handle (2) is provided on the top of the glass tank (1). A water sampler component is provided on the outside of the glass tank (1). A water inlet (3) is provided on the bottom surface of the glass tank (1). A water baffle (4) is provided on the inner bottom surface of the glass tank (1). The water baffle (4) is located directly above the water inlet (3). A filter plate (5) is provided on the inner side of the water inlet (3). A first rotating shaft (6) is provided on the bottom surface of the water baffle (4). The first rotating shaft (6) and the water baffle (4) are connected. The first rotating shaft (6) is connected to the filter plate (5) and rotates with each other. One end of the first rotating shaft (6) is provided with a blade (7). Multiple sets of blades (7) are provided. A first sampling component is provided on one side of the water baffle (4). A drain outlet (8) is provided on the top of the glass jar (1). A flip cover (9) is provided on the inside of the drain outlet (8). The flip cover (9) is a semi-circular plate. A second sampling component is provided on one side of the flip cover (9). A drain pipe (10) is provided on one side of the glass jar (1). A drain component is provided on one side of the drain pipe (10).
2. The plexiglass water sampler for anti-clogging deep water samples according to claim 1, characterized in that: The water sampler assembly includes a counterweight ring (101), a scale line (102), and a buckle (201). The counterweight ring (101) is provided on the outside of the glass tank (1). The drainage pipe (10) is located below the counterweight ring (101). The scale line (102) is provided on the outside of the glass tank (1) and is located above the counterweight ring (101). A buckle (201) is provided on one side of the handle (2).
3. The plexiglass water sampler for anti-clogging deep water samples according to claim 1, characterized in that: The first sampling component includes a support rod (401) and a connecting plate (402). The support rod (401) is provided on the bottom surface of the inner side of the glass jar (1). There are multiple sets of support rods (401). One end of the support rod (401) is provided with a connecting plate (402), which is cross-shaped.
4. The plexiglass water sampler for anti-clogging deep water samples according to claim 3, characterized in that: The first sampling component also includes a connecting plate (403). The connecting plate (403) is provided on one side of the water baffle (4), and the connecting plate (403) and the support rod (401) are slidably connected to each other.
5. The plexiglass water sampler for anti-clogging deep water samples according to claim 3, characterized in that: The second sampling component includes a limiting plate (901) and a second rotating shaft (902). The limiting plate (901) is provided on the inner side of the drain outlet (8), and the second rotating shaft (902) is provided on one side of the limiting plate (901). Two sets of the second rotating shaft (902) are symmetrically arranged. The second rotating shaft (902) is rotatably connected to the glass jar body (1). The flip cover (9) is provided on the outer side of the second rotating shaft (902).
6. The plexiglass water sampler for anti-clogging deep water samples according to claim 3, characterized in that: The drainage assembly includes a sealing plug (1001), the inner side of the drainage pipe (10) is provided with the sealing plug (1001), and the outer side of the sealing plug (1001) is threadedly connected to the inner side of the drainage pipe (10).
7. The plexiglass water sampler for anti-clogging deep water samples according to claim 6, characterized in that: The drainage assembly also includes a sealing groove (1002) and a sealing ring (1003). One end of the drainage pipe (10) is provided with a sealing groove (1002), and a sealing ring (1003) is provided on one side of the sealing plug (1001). The sealing ring (1003) and the sealing groove (1002) fit together.