Water system sediment detection equipment
By designing an automated testing platform, limit components and clamping components, combined with a drying mechanism and a testing mechanism, the problems of low efficiency and low precision caused by frequent clamping operations in water sediment testing equipment were solved, and efficient and stable sample testing was achieved.
Patent Information
- Application Number
- CN202510685999.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-09-12
AI Technical Summary
Existing water sediment detection equipment requires frequent clamping operations during detection, which increases the workload of personnel and is inefficient. In addition, sample movement can easily cause sediment to float, affecting detection accuracy.
Abstract: A water sediment detection equipment was designed, which included a detection table, a limit assembly, a clamping assembly, a drying mechanism and a detection mechanism. The telescopic rod and multi-station design realized automatic sample fixation and switching. The drying mechanism was combined to improve the sample purity. The clamping assembly was used to reduce manual operation. The detection mechanism realized the integrated detection of multiple sensors.
It improves detection efficiency and accuracy, reduces waiting time for assembly and disassembly, avoids the impact of floating sediment, and ensures sample stability and detection purity.
Smart Images

Figure CN120618564A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of water quality detection, and particularly discloses a water system sediment detection device. Background Art
[0002] Water contains a large amount of sediment. When testing water quality, the composition of the sediment in the water can be tested at the same time. Water sediment detection equipment usually integrates multiple sensors and analysis technologies, which can achieve comprehensive detection of suspended matter, particulate matter in the water body and sediment deposited at the bottom.
[0003] Reference is made to the existing patent announcement number: CN217466881U, a device for detecting the presence of suspended sediment for a vinegar product; it includes a lifting plate, a first motor, bolts, a connecting column, a filter plate, a discharge pipe, a stirring plate, a bearing, a detector, a holding barrel, a support frame, a threaded column, a second motor and a belt. The second motor is fixed by the support frame, the material is poured into the holding barrel, the belt is driven to move by the second motor, the threaded column is driven to rotate by the belt, the lifting plate is driven to move by the threaded column, the first motor and the lifting plate are combined by bolts, the stirring plate is driven to rotate by the first motor, and the suspended sediment in the material is prevented from sinking by the stirring plate.
[0004] However, in actual use, the existing water sediment detection equipment needs to frequently clamp and handle the test samples to avoid movement during the detection process. However, long-term operation not only increases the workload of personnel but also has relatively low efficiency. In addition, the detection is relatively simple. Since the solution is easily moved when the sample is taken or moved, the sediment will float and move again, and the sediment will not be concentrated, thus affecting the detection. Summary of the Invention
[0005] In view of this, the object of the present invention is to provide a water system sediment detection device to solve the technical problems of frequent clamping operations affecting efficiency and low detection accuracy during detection.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: A water system sediment detection device, comprising: a workbench, the workbench is used to provide an operating support surface, a telescopic rod is provided on the workbench, a detection platform is provided on the telescopic rod, the detection platform and the workbench are rotatably connected, a limiting component for limiting the detection platform is provided between the detection platform and the workbench, the surface of the detection platform is provided with a plurality of workstations distributed in an array, and a clamping component is installed inside each of the plurality of workstations; two groups of racks are fixedly connected to the workbench, a placement plate is connected between the two groups of racks, a drying mechanism is provided on the surface of the placement plate, and a detection mechanism is installed under the placement plate.
[0007] Furthermore, the limiting assembly includes several groups of supporting members, and the workbench surface is provided with several groups of limiting parts, and rolling members are slidably mounted in the several groups of limiting parts, and the several groups of rolling members are in contact with the several groups of supporting members respectively.
[0008] Furthermore, the clamping assembly includes a movable part, on which two groups of first transmission members are fixedly connected, both groups of the first transmission members are meshed with gears, both groups of the gears are meshed with second transmission members, and the first transmission members are meshed with the second transmission members; the connecting rod is rotatably connected to the detection platform.
[0009] Furthermore, the second transmission member is arranged perpendicular to the first transmission member, and the first transmission member is located above the second transmission member.
[0010] Furthermore, when the movable portion is subjected to a downward force in the vertical direction, the clamps move closer to each other in the horizontal direction.
[0011] Furthermore, the drying mechanism includes a blowing mechanism, which is fixedly connected to the surface of the frame, the input end of the blowing mechanism is fixedly connected to an air inlet pipe, and the output end of the blowing mechanism is provided with a diversion pipe, and the air inlet pipe and the diversion pipe are both connected to the blowing mechanism; a plurality of positioning parts are provided on the diversion pipe, and the positioning parts are connected to the diversion pipe, and a plurality of air holes are provided on the positioning parts; a plurality of placement grooves are provided on the surface of the placement plate, and a plurality of positioning parts are respectively installed in the placement grooves.
[0012] Furthermore, the detection mechanism includes a cylinder, which is fixedly connected to the bottom of the placement plate. A piston rod is provided at the output end of the cylinder, and a detection head is provided on the piston rod. The detection head is located directly above the workstation.
[0013] Furthermore, a bracket is fixedly connected to the surface of the frame, and a sampler is provided on the bracket; a sealing plug is installed at the top end of the sampler, and a valve is provided at the bottom end of the sampler.
[0014] Furthermore, the sampler is located directly above one group of the workstations, and the sampler is located in front of the detection head.
[0015] The working principle and beneficial effects of this solution are:
[0016] By arranging a testing platform in cooperation with the limiting component, when testing samples, personnel can place the sampling bottle directly on the work station. By arranging multiple work stations on the testing platform, the testing platform can move up and down and rotate under the action of the telescopic rod, so that when the testing platform is lifted, the rolling element can be disengaged from the limiting part, so that the testing platform can be supported and rotated by the rolling element, thereby switching the upper work station, and then lowering the testing platform. After the rolling element is located in the limiting part, the movement of the testing platform can be avoided, so that the next sample to be tested can be clamped and placed when the current sample is tested, thereby saving waiting time for assembly and disassembly.
[0017] By arranging a sampler and a clamping assembly, when placing the sampling bottle, the gravity of the sampling bottle and the sample can drive the movable part to press down, so that the movement of the movable part can be gradually transmitted to the clamp position, thereby driving the clamps to approach each other to clamp and fix the sampling bottle. It can be self-clamped in the placed state, reducing personnel operation and being more convenient. Then, since the sampler is placed stationary above the workstation, the sample in the sampler can be discharged when switching the workstation, and the stationary sediment can be discharged directly from the bottom, thereby avoiding the sediment floating and moving when taking and placing, thereby affecting the detection effect.
[0018] By providing a drying mechanism, when the sampling bottle placed on the placement plate is taken out, the air can be input from the air inlet pipe and output from the diversion pipe through the operation of the blowing mechanism, so that the air can flow from the diversion pipe to the positions of each positioning part, and the surface of the positioning part is provided with air holes, so that when the sampling bottle cap is buckled on the positioning part, the air flow can be blown into the sampling bottle, so as to pre-dry the sampling bottle, avoid the poor purity of the sampling bottle affecting the detection accuracy of the water system sediment, and improve the detection effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a first overall structural diagram of the embodiment;
[0020] Figure 2 is a second overall structural diagram of the embodiment;
[0021] Figure 3 It is a schematic diagram of the overall side sectional structure of the embodiment;
[0022] Figure 4 Schematic diagram of the sampler structure of the embodiment;
[0023] Figure 5 Schematic diagram of the drying mechanism structure of the embodiment;
[0024] Figure 6 Schematic diagram of the structure of the clamping assembly of the embodiment;
[0025] Figure 7For example Figure 3 Schematic diagram of the enlarged structure of species A;
[0026] Figure 8 It is a schematic diagram of the front cross-section structure of the clamping assembly of the embodiment.
[0027] The following are marked in the accompanying drawings:
[0028] 1. Workbench; 2. Frame; 3. Placement plate; 4. Placement slot; 5. Positioning part; 6. Bracket; 7. Sampler; 8. Test table; 9. Support; 10. Blowing mechanism; 11. Cylinder; 12. Piston rod; 13. Test head; 14. Telescopic rod; 15. Sealing plug; 16. Valve; 17. Inlet pipe; 18. Diverter pipe; 19. Air vent; 20. Movable part; 21. Work station; 22. Transmission part 1; 23. Clamp; 24. Transmission part 2; 25. Connecting rod; 26. Gear; 27. Limiting part; 28. Rolling part. DETAILED DESCRIPTION
[0029] The following is further described in detail through specific implementation methods:
[0030] Example
[0031] like Figures 1 to 8 As shown, a water system sediment detection device is disclosed, comprising: a workbench 1 for providing an operating support surface; a detection platform 8, which is rotatably connected to the upper part of the workbench 1 by a telescopic rod 14, a limiting component for limiting the detection platform 8 is constructed between the detection platform 8 and the workbench 1, and a surface of the detection platform 8 is constructed with a plurality of workstations 21 distributed in an array, the detection platform 8 is rotatably connected to the workbench 1 by the telescopic rod 14, and is equipped with a limiting component to stabilize the position of the detection platform 8. This design allows the detection platform to flexibly adjust its angle as needed, and a plurality of array-distributed workstations 21 allow multiple samples to be processed simultaneously, greatly improving the detection efficiency, and Multiple workstations 21 are equipped with clamping components, and can automatically fix water sediment samples under the action of the clamping components to ensure that the samples remain stable during the detection process and reduce errors; the rack 2 is fixed on the upper part of the workbench 1, and a placement plate 3 is connected between the racks 2. The surface of the placement plate 3 is constructed with a drying mechanism, and the lower part of the placement plate 3 is installed with a detection mechanism. Combined with the automated operation of the detection mechanism and the drying mechanism, accurate measurement and rapid processing of samples can be achieved, thereby improving the accuracy and reliability of the test results. The drying mechanism can dry the taken sampling bottles to improve the purity and accuracy of the test and avoid interference.
[0032] The limiting assembly includes: a support member 9, a rolling member 28 and a limiting portion 27; the limiting portion 27 is opened on the surface of the workbench 1, and the rolling members 28 are installed at the lower part of the detection platform 8 through the support member 9, and the rolling members 28 correspond to the limiting portion 27. Through this embodiment, when testing the sample, the personnel can place the sampling bottle directly on the workstation 21. By arranging multiple workstations 21 on the detection platform 8, and the detection platform 8 can move up and down and rotate under the action of the telescopic rod 14, when the detection platform 8 is lifted, the rolling member 28 can be disengaged from the limiting portion 27, so that the detection The platform 8 can be supported and rotated by the rolling member 28, so that the upper work station 21 can be switched, and then the detection platform 8 can be lowered. After the rolling member 28 is located in the limiting portion 27, the detection platform 8 can be prevented from moving. The limiting portion 27 can be constructed as a slot hole, so that the rolling member 28 is difficult to continue moving when it moves into the hole position, and the number of limiting components corresponds to the number of work stations, so that the angle of each active work station is fixed, so that the next sample to be tested can be clamped and placed when the current sample is tested, thereby saving waiting time for disassembly and assembly under the active action of the multiple work stations 21.
[0033] The clamping assembly includes: a movable part 20, a connecting rod 25, a gear 26, a transmission part 1 22, a transmission part 24 and a clamp 23; the gear 26 is connected to the surface of the detection table 8 through the connecting rod 25, the movable part 20 is constructed in the station 21, the transmission part 1 22 is installed on both sides of the surface of the movable part 20 and meshes with the gear 26, the clamp 23 is connected to the surface of the station 21 through the transmission part 24, and the transmission part 24 is meshed with the gear 26. Through this embodiment, the station 21 provides a certain installation space for the clamping assembly. When placing the sampling bottle, since the movable part 20 is movably connected in the station 21, the clamping assembly is not clamped when no force is applied. It is in the initial state as shown. Then, during sampling and testing, the gravity of the sampling bottle and the sample can drive the movable part 20 to press down. The movable part 20 drives the gear 26 to rotate through the transmission part 1 22, so that the gear 26 drives the clamp 23 to move horizontally through the transmission part 24, so that the movement of the movable part 20 can be gradually transmitted to the position of the clamp 23, thereby driving the clamps 23 to move closer to each other to clamp and fix the sampling bottle. It can be self-clamped in the placed state, reducing personnel operation and being more convenient. Furthermore, the transmission part 1 22 and the transmission part 2 24 can be constructed as a rack composed of multiple tooth phases to improve the stability of the transmission.
[0034] Transmission member 2 24 is arranged perpendicularly to transmission member 1 22, and the horizontal height of transmission member 1 22 is higher than the horizontal height of transmission member 2 24. Through this design, when the sampling bottle is placed, transmission member 1 22 can move downward first. Furthermore, the clamp 23 is configured to be able to move close to each other in the horizontal direction when the movable part 20 is subjected to a pre-load in the vertical direction downward, and then gradually transmit the movement to the position of transmission member 2 24 to drive transmission member 2 24 to move, thereby avoiding collision and interference between the horizontal movement of transmission member 2 24 and the vertical movement of transmission member 1 22, etc., and the movable length of transmission member 2 24 and clamp 23 is related to the transmission distance between transmission member 1 22 and gear 26, so that the clamp 23 can adapt to sampling bottles of different specifications.
[0035] The drying mechanism includes: a blowing mechanism 10, an air inlet pipe 17, a diverter pipe 18, a positioning part 5 and an air vent 19; a plurality of placement slots 4 are provided on the surface of the placement plate 3, the blowing mechanism 10 is installed on the surface of the frame 2, the air inlet pipe 17 is connected to the input end of the blowing mechanism 10, the diverter pipe 18 is connected to the output end of the blowing mechanism 10, the positioning parts 5 are all connected to the surface of the diverter pipe 18, and the air vents 19 are all provided above the surface of the positioning part 5. Through this embodiment, under the operation of the blowing mechanism 10, air can be input by the air inlet pipe 17 and output by the diverter pipe 18, so that the air can flow from the diverter pipe 18 to the position of each positioning part 5, and the surface of the positioning part 5 is provided with an air vent 19, so that when the sampling bottle cap is buckled on the positioning part 5, the air flow can be blown into the sampling bottle to pre-dry the sampling bottle, thereby avoiding the poor purity of the sampling bottle affecting the detection accuracy of the water system sediment and improving the detection effect.
[0036] The positioning portion 5 is located in the placement groove 4, and the positioning portion 5 is connected to the diversion tube 18. Through this design, the airflow pipeline can be reasonably distributed and transported, and the positioning portion 5 can guide, position, place and support the placement of the sampling bottle. The positioning portion 5 is connected to the diversion tube 18 so that the airflow can flow into the positioning portion 5 and be discharged from the air vent 19. At the same time, under the support of the positioning portion 5, the air drying effect of the sampling bottle can be improved.
[0037] The detection mechanism includes: a cylinder 11, a piston rod 12 and a detection head 13; the cylinder 11 is installed at the lower part of the placement plate 3, the piston rod 12 is connected to the output end of the cylinder 11, and the detection head 13 is installed at the end of the piston rod 12 away from the cylinder 11, and the detection head 13 is located directly above the work station 21. Through this implementation, when detecting water system sediments, personnel can start the cylinder 11 so that the cylinder 11 can push the piston rod 12 to extend, and the piston rod 12 drives the detection head 13 to move into the sampling bottle, so that the water system sediments are detected and processed under the action of the detection head 13. The detection head 13 integrates a variety of sensors, which can realize the detection of suspended matter, particulate matter and sediment deposited at the bottom of the water body. At the same time, the cylinder 11 can be an electric cylinder or a hydraulic cylinder or other components that can guide the detection head 13 to move in the vertical direction.
[0038] The surface of the frame 2 is connected to a bracket 6, and the inner side of the bracket 6 is connected to a sampler 7. A sealing plug 15 is installed on the upper part of the sampler 7, and a valve 16 is constructed on the lower part of the sampler 7. Through this design, the sample can be collected and processed by the sampler 7, and covered under the action of the sealing plug 15. Then, since the sampler 7 is stationary above the work station 21, the sample in the sampler 7 can be discharged when the work station 21 is switched, so that the sediment that is stationary after the valve 16 is opened can be discharged directly from the bottom, thereby avoiding the sediment floating when taking and placing and affecting the detection effect.
[0039] The sampler 7 is located directly above the workstation 21 and in front of the detection head 13. This design means that the sampling operation will be performed before the detection operation in the detection process. This sequential operation helps to optimize the entire detection process, allowing the sample to enter the detection stage immediately after sampling, reducing waiting time and transfer links, thereby improving detection efficiency. The sampler 7 and the detection head 13 are both set above the workstation 21 and maintain a certain front-to-back distance, so that the space of the entire detection area is effectively utilized, which not only saves the space occupied by the equipment, but also allows operators to more conveniently approach and operate these components, improving the convenience of operation.
[0040] The above are merely embodiments of the present invention, and the well-known specific structures and characteristics of the scheme are not described in detail here. It should be noted that those skilled in the art can make various modifications and improvements without departing from the structure of the present invention, and these modifications should also be considered within the scope of protection of the present invention. These modifications and improvements will not affect the effectiveness and practicality of the present invention.
Claims
1. A water system sediment detection device, characterized in that: include: A workbench, the workbench is used to provide an operating support surface, the workbench is provided with a telescopic rod, the telescopic rod is provided with a detection platform, the detection platform is rotatably connected to the workbench, a limiting component for limiting the detection platform is provided between the detection platform and the workbench, the surface of the detection platform is provided with a plurality of workstations distributed in an array, and a clamping component is installed inside each of the plurality of workstations; Two groups of racks are fixedly connected to the workbench, a placement plate is connected between the two groups of racks, a drying mechanism is provided on the surface of the placement plate, and a detection mechanism is installed below the placement plate.
2. The water system sediment detection device according to claim 1, characterized in that: The limiting assembly includes several groups of supporting members. The surface of the workbench is provided with several groups of limiting parts. Rolling members are slidably mounted in the limiting parts of the several groups. The rolling members of the several groups are in contact with the supporting members of the several groups respectively.
3. The water system sediment detection device according to claim 2, characterized in that: The clamping assembly includes a movable portion, two sets of first transmission members are fixedly connected to the movable portion, the two sets of first transmission members are meshed with gears, the two sets of gears are meshed with second transmission members, and the first transmission members are meshed with the second transmission members; The connecting rod is rotatably connected to the detection platform.
4. The water system sediment detection device according to claim 3, characterized in that: The second transmission member is arranged perpendicular to the first transmission member, and the first transmission member is located above the second transmission member.
5. The water system sediment detection device according to claim 4, characterized in that: When the movable portion is subjected to a downward force in a vertical direction, the clamps move closer to each other in a horizontal direction.
6. The water system sediment detection device according to claim 5, characterized in that: The drying mechanism includes a blast mechanism, the blast mechanism is fixedly connected to the surface of the frame, the input end of the blast mechanism is fixedly connected to an air inlet pipe, the output end of the blast mechanism is provided with a shunt pipe, and the air inlet pipe and the shunt pipe are both connected to the blast mechanism; The shunt pipe is provided with a plurality of positioning parts, the positioning parts are communicated with the shunt pipe, and the positioning parts are provided with a plurality of air holes; The surface of the placement plate is provided with a plurality of placement grooves, and a plurality of positioning parts are respectively installed in the placement grooves.
7. The water system sediment detection device according to claim 6, characterized in that: The detection mechanism includes a cylinder, which is fixedly connected to the bottom of the placement plate. A piston rod is provided at the output end of the cylinder, and a detection head is provided on the piston rod. The detection head is located directly above the work station.
8. The water system sediment detection device according to claim 7, characterized in that: A bracket is fixedly connected to the surface of the frame, and a sampler is provided on the bracket; A sealing plug is installed at the top end of the sampler, and a valve is provided at the bottom end of the sampler.
9. The water system sediment detection device according to claim 8, characterized in that: The sampler is located right above one group of the workstations, and the sampler is located at the front side of the detection head.
Citation Information
Patent Citations
Device for detecting existence of suspended precipitate in aromatic vinegar product
CN217466881U