Semiconductor sewage sampling inspection device
By adopting the design of wing rods, launching plates and floats in the semiconductor sewage sampling device, independent sampling is achieved on a larger scale, solving the problems of limited working range and poor randomness of the existing devices, and improving the sampling efficiency and adaptability.
Patent Information
- Application Number
- CN202421575215.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-04
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-07-04
AI Technical Summary
The working range of existing semiconductor sewage sampling devices is limited, making it difficult to sample at the center of the water area, with poor randomness, and it is impossible to sample water bodies of different depths at the same time, and the working efficiency is low.
A semiconductor sewage sampling device was designed, using wing rods for flight, combining launch plates and floats to achieve independent sampling on a larger scale, and can cover waters of different depths.
The device can conduct self-sampling on a larger scale, reduce labor costs, shorten the sampling period, improve efficiency and frequency, ensure the comprehensiveness and accuracy of sampling, and adapt to different water depth environments.
Smart Images

Figure CN222850360U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of semiconductor wastewater treatment, and in particular relates to a semiconductor wastewater sampling device. Background Art
[0002] The semiconductor wastewater sampling device is a sampling device specially used in the wastewater treatment process in the semiconductor industry. A large amount of wastewater will be generated at the end of the semiconductor production process. The organosilicon substances, organic matter and inorganic salts in the wastewater will cause damage to the water ecosystem. Therefore, quality control of the wastewater treatment process is crucial. The main purpose of the sampling device is to conduct regular or irregular sampling and inspection of the treated water quality to ensure that the water quality meets the discharge requirements. However, the working range of the existing sampling device is limited, and it is more troublesome to sample the center of the water area. At the same time, the traditional sampling device has poor randomness and cannot simultaneously sample water bodies of different depths within a certain range, and the working efficiency is low.
[0003] Therefore, a semiconductor wastewater sampling device is designed to solve the above problems. Utility Model Content
[0004] To solve the problems raised in the above background technology. The utility model provides a semiconductor sewage sampling device. Through the wing rod, the device can fly within a certain range, so it can autonomously perform sampling work in a larger range without human intervention, which not only reduces labor costs, but also greatly shortens the sampling cycle, improves the efficiency and frequency of sampling, and launches the pumping head to the surroundings through the launch plate, so that the sampling range is wider and can cover more water areas. It is particularly beneficial for sampling work in large areas of water, and can ensure the comprehensiveness and accuracy of the sampling. The design of the float allows the pumping head to sink into different depths of water, so as to adapt to the sampling needs of different water depth environments. Whether it is a shallow water area or a deep water area, the device can perform effective sampling work, which improves the flexibility and adaptability of sampling.
[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a semiconductor sewage sampling device, comprising a detection host, and also comprising a sampling component arranged outside the end of the detection host;
[0006] The sampling inspection component includes a wing rod, a base and a micro motor. A plurality of wing rods are installed in a ring on the outer side of the end of the detection host. The lower surface of the detection host is fixedly connected to the base. A plurality of launching plates are rotatably connected to the outer side of the end of the base. A plurality of micro motors are installed in a ring on the outer side of the end of the base. A toggle block is fixedly connected to the outer side of the main shaft of the micro motor. The toggle block is a semicircular structure. The outer side of the end of the toggle block contacts the outer side of one end of the launching plate. A plurality of support frames are fixedly connected in a ring on the upper surface of the base. The outer sides of both ends of the spring are respectively fixedly connected to the outer side of the other end of the launching plate and the outer side of the end of the support frame. A pumping head is movably connected to the outer side of the end of the launching plate. The outer sides of both ends of the pumping pipe are respectively connected to the outer side of one end of the pumping head and the outer side of the end of the detection host.
[0007] As a preferred semiconductor wastewater sampling device of the utility model, a filter head is fixedly connected to the outer side of the end of the pumping head.
[0008] As a preferred semiconductor sewage sampling device of the utility model, a rubber ring is fixedly connected to the outer side of the end of the emitting plate, and the material of the rubber ring is rubber.
[0009] As a preferred semiconductor wastewater sampling device of the utility model, floats are fixedly connected to the outer sides of the ends of a plurality of water pumping pipes.
[0010] As a preferred semiconductor wastewater sampling device of the utility model, a visual camera is installed on the outer side of the end of the detection host.
[0011] Compared with the prior art, the beneficial effects of the utility model are: a sampling inspection component is added to the present application, and the device can fly within a certain range through the wing rod, so it can autonomously carry out sampling inspection work in a larger range without human intervention, which not only reduces the labor cost, but also greatly shortens the sampling inspection cycle, improves the efficiency and frequency of sampling inspection, and launches the pumping head in all directions through the launching plate, so that the sampling inspection range is wider and can cover more water areas, which is particularly beneficial for sampling inspection work in large areas of water, and can ensure the comprehensiveness and accuracy of the sampling inspection. The design of the float allows the pumping head to sink into water at different depths, thereby adapting to the sampling inspection needs of different water depth environments. Whether it is shallow water or deep water, the device can carry out effective sampling inspection work, which improves the flexibility and adaptability of sampling inspection. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:
[0013] Figure 1It is a schematic diagram of the overall structure of the utility model;
[0014] Figure 2 For the utility model Figure 1 The enlarged view of point A in the middle;
[0015] Figure 3 It is a structural schematic diagram of the pumping head and the filtering head in the utility model;
[0016] Figure 4 It is a structural schematic diagram of the launch plate and the rubber ring in the utility model;
[0017] In the figure:
[0018] 1. Detect the host;
[0019] 2. Sampling inspection components; 21. Wing rod; 22. Base; 23. Micro motor; 24. Toggle block; 25. Launch plate; 26. Support frame; 27. Spring; 28. Pump head; 29. Pump pipe; 210. Filter head; 211. Rubber ring; 212. Float; 213. Visual camera. DETAILED DESCRIPTION
[0020] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0021] like Figure 1 As shown;
[0022] A semiconductor wastewater sampling device comprises a detection host 1.
[0023] In this implementation scheme: The semiconductor wastewater sampling device is a sampling device specially used in the water treatment process in the semiconductor industry. The semiconductor wastewater sampling device is a sampling device specially used in the wastewater treatment process in the semiconductor industry. A large amount of wastewater will be generated at the end of the semiconductor production process. The organosilicon substances, organic matter and inorganic salts in the wastewater will cause damage to the water ecosystem. Therefore, quality control of the wastewater treatment process is crucial. The main purpose of the sampling device is to conduct regular or irregular sampling and inspection of the treated water quality to ensure that the water quality meets the discharge requirements. However, the working range of the existing sampling device is limited, and it is more troublesome to sample the center of the water area. At the same time, the randomness of the traditional sampling device is poor, and it is impossible to sample water bodies of different depths within a certain range at the same time, and the working efficiency is low. In order to solve this technical problem, a sampling component 2 is added on this basis.
[0024] More specifically:
[0025] like Figures 1 to 4 As shown:
[0026] In combination with the above content: the sampling inspection component 2 includes a wing rod 21, a base 22 and a micro motor 23, a plurality of wing rods 21 are installed in a ring on the outer side of the end of the detection host 1, the lower surface of the detection host 1 is fixedly connected with the base 22, a plurality of launching plates 25 are rotatably connected to the outer side of the end of the base 22, a plurality of micro motors 23 are installed in a ring on the outer side of the end of the base 22, a toggle block 24 is fixedly connected to the outer side of the main shaft of the micro motor 23, the toggle block 24 is a semicircular structure, the outer side of the end of the toggle block 24 is in contact with the outer side of one end of the launching plate 25, a plurality of support frames 26 are fixedly connected in a ring on the upper surface of the base 22, the outer sides of both ends of the spring 27 are respectively fixedly connected to the outer side of the other end of the launching plate 25 and the outer side of the end of the support frame 26, the outer side of the end of the launching plate 25 is movably connected to a pumping head 28, the outer sides of both ends of the pumping pipe 29 are respectively connected to the outer side of one end of the pumping head 28 and the outer side of the end of the detection host 1, and the outer sides of the ends of several pumping pipes 29 are fixedly connected to floats 212.
[0027] In this embodiment: in the device, the detection host 1 is internally integrated with a drone system and a sampling inspection system, and the user can control the device to fly through the detection host 1 and the wing rod 21. The lower surface of the detection host 1 is fixedly connected to a base 22, and the outer side of the end of the base 22 is rotatably connected to a launch plate 25, which is a plate-shaped structure. An annular through hole is opened on the outer side of the end of the launch plate 25, and a pumping head 28 is movably connected inside the annular through hole of the launch plate 25. When the user needs to use the device for random sampling, the user can control the device to a specified position and start the micro motor 2 3. The micro motor 23 can drive the toggle block 24 to rotate. The toggle block 24 is a semicircular structure. When the toggle block 24 rotates, the outer side of the end of the toggle block 24 will contact the outer side of one end of the launch plate 25, and drive the launch plate 25 to rotate, while stretching the spring 27 at the end of the launch plate 25, so that the spring 27 stores elastic potential energy, and the outer side of the end of the launch plate 25 continues to slide along the semicircular structure of the toggle block 24. When the toggle block 24 rotates nearly one circle, the toggle block 24 is separated from the launch plate 25, and the spring 27 releases the elastic potential energy, thereby pumping the water head at the end of the launch plate 25. 28 is thrown out, and multiple pumping heads 28 are thrown outward with the device as the center, which increases the randomness of the device. At the same time, multiple floating balls 212 are fixedly connected to the outer sides of the ends of the pumping pipes 29, and the positions of the floating balls 212 on the surfaces of the multiple pumping pipes 29 are different. The floating balls 212 are spherical structures with strong buoyancy, which can make the pumping heads 28 sink into areas of different depths, and then the water bodies of different depths can be sampled, which further increases the randomness of the device. Through the wing rod 21, the device can fly within a certain range, so it can autonomously perform sampling work in a larger range without manual work. Intervention not only reduces labor costs, but also greatly shortens the sampling inspection cycle, improves the efficiency and frequency of sampling inspection, and launches the pumping head 28 in all directions through the launching plate 25, so that the sampling inspection range is wider and can cover more water areas. It is particularly beneficial for sampling inspection work in large areas of water, and can ensure the comprehensiveness and accuracy of the sampling inspection. The design of the float 212 allows the pumping head 28 to sink into water at different depths, thereby adapting to the sampling inspection needs of different water depths. Whether it is shallow water or deep water, the device can perform effective sampling inspection work, which improves the flexibility and adaptability of sampling inspection.
[0028] It should be noted that the model of the sampling inspection system can be AMT-BX / W400.
[0029] Going further:
[0030] In an optional embodiment, a filter head 210 is fixedly connected to the outer side of the end of the pumping head 28 .
[0031] In the present embodiment: a filter head 210 is fixedly connected to the outer side of the end of the pump head 28, and a plurality of circular holes are opened on the outer side of the end of the filter head 210. Through the circular holes of the filter head 210, impurities in the water body can be filtered to a certain extent, thereby ensuring the normal progress of the sampling work and preventing the pump head 28 from being blocked by impurities that are too large, thereby increasing the practicality of the device.
[0032] Going further:
[0033] In an optional embodiment, a rubber ring 211 is fixedly connected to the outer side of the end of the launch plate 25 , and the material of the rubber ring 211 is rubber.
[0034] In the present embodiment: a rubber ring 211 is fixedly connected to the outer side of the annular structure of the launching plate 25. The rubber ring 211 is made of rubber. The rubber ring 211 can increase the friction between the water pumping head 28 and the launching plate 25 to prevent the water pumping head 28 from sliding off the end of the launching plate 25 before the water pumping head 28 is thrown out. The rubber ring 211 can absorb part of the impact force generated by the launching plate 25 on the water pumping head 28, thereby increasing the service life of the device.
[0035] Going further:
[0036] In an optional embodiment, a visual camera 213 is installed on the outer side of the end of the detection host 1.
[0037] In this embodiment: a visual camera 213 is installed on the outer side of the end of the detection host 1. The visual camera 213 has a night vision function, which can ensure that the staff can also operate the device to perform random inspections in a night environment. At the same time, through the visual camera 213, the staff can observe the environment in which the device is located in real time, and can better determine the specific location of the device, which is convenient for subsequent random inspections.
[0038] Working principle: In the device, the detection host 1 is internally integrated with a drone system and a sampling inspection system. The sampling inspection system consists of a water quality detection device and a water pump. The water inlet end of the water pump is connected to the water pumping pipe 29, and the water outlet end of the water pump is connected to the water quality detection device. The user can control the device to fly through the detection host 1 and the wing rod 21. The lower surface of the detection host 1 is fixedly connected to a base 22, and the outer side of the end of the base 22 is rotatably connected to a launching plate 25. The launching plate 25 is a plate-shaped structure, and an annular through hole is provided on the outer side of the end of the launching plate 25. The inner part of the annular through hole of the launching plate 25 is movably connected to a pumping head 28. When the user needs to use the device for random sampling, the user can control the device to a specified position, start the micro motor 23, and the micro The motor 23 can drive the toggle block 24 to rotate. The toggle block 24 is a semicircular structure. When the toggle block 24 rotates, the outer side of the end of the toggle block 24 will contact the outer side of one end of the launching plate 25, and drive the launching plate 25 to rotate, and at the same time stretch the spring 27 at the end of the launching plate 25, so that the spring 27 stores elastic potential energy, and the outer side of the end of the launching plate 25 continues to slide along the semicircular structure of the toggle block 24. When the toggle block 24 rotates nearly one circle, the toggle block 24 is separated from the launching plate 25, and the spring 27 releases the elastic potential energy, thereby throwing out the pumping head 28 at the end of the launching plate 25. Multiple pumping heads 28 are thrown outward with the device as the center, which increases the randomness of the device. At the same time, the outer side of the end of the pumping pipe 29 is fixedly connected to multiple floats 2 12, and the positions of the floats 212 on the surfaces of the multiple pumping pipes 29 are different. The floats 212 are spherical structures with strong buoyancy, which can make the pumping head 28 sink into areas of different depths. At this time, the sampling inspection system inside the detection host 1 starts to extract water from different areas through a plurality of pumping pipes 29 through a pumping pump. Water samples from different areas are transported to the water quality detection device of the detection host 1 through different pumping pipes 29. At this time, the detection host 1 can perform chemical analysis on different water samples, involving the determination of the chemical components of pH value, dissolved oxygen, heavy metals, ammonia nitrogen, total phosphorus, and total nitrogen. Through the statistics, comparison and analysis of the detection data, the overall quality of the water body can be evaluated, thereby completing the function of sampling water bodies at different depths, further increasing the Due to the randomness of the device, the device can fly within a certain range through the wing rod 21, so it can autonomously conduct sampling inspections in a larger range without human intervention, which not only reduces labor costs, but also greatly shortens the sampling inspection cycle and improves the efficiency and frequency of sampling inspections. The pumping head 28 is launched in all directions through the launching plate 25, so that the sampling inspection range is wider and can cover more water areas, which is particularly beneficial for sampling inspections in large areas of water and can ensure the comprehensiveness and accuracy of the sampling inspections. The design of the float 212 allows the pumping head 28 to sink into water at different depths, thereby adapting to the sampling inspection needs of different water depths. Whether it is a shallow water area or a deep water area, the device can conduct effective sampling inspections, which improves the flexibility and adaptability of sampling inspections.The outer side of the end of the pumping head 28 is fixedly connected with a filter head 210, and a plurality of circular holes are opened on the outer side of the end of the filter head 210. Through the circular holes of the filter head 210, impurities in the water body can be filtered to a certain extent, ensuring the normal sampling work and preventing the pumping head 28 from being blocked by impurities with too large a volume, thereby increasing the practicality of the device. The outer side of the annular structure of the launch plate 25 is fixedly connected with a rubber ring 211, and the material of the rubber ring 211 is rubber. The rubber ring 211 can increase the friction between the pumping head 28 and the launch plate 25, thereby preventing the pumping head 28 from being blocked by impurities with too large a volume. Before the head 28 is thrown out, the pumping head 28 slides off the end of the launch plate 25. The rubber ring 211 can absorb part of the impact force generated by the launch plate 25 on the pumping head 28, which increases the service life of the device. At the same time, a visual camera 213 is installed on the outer side of the end of the detection host 1. The visual camera 213 has a night vision function, which can ensure that the staff can also operate the device for random inspection in the night environment. At the same time, through the visual camera 213, the staff can observe the environment where the device is located in real time, and can better determine the specific location of the device, which is convenient for subsequent random inspections.
[0039] Finally, it should be noted that the above description is only a preferred embodiment of the utility model and is not intended to limit the utility model. Although the utility model is described in detail with reference to the above embodiments, those skilled in the art can still modify the technical solutions recorded in the above embodiments or replace some of the technical features therein by equivalents. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model shall be included in the protection scope of the utility model.
Claims
1. A semiconductor wastewater sampling device, comprising a detection host (1), characterized in that: It also includes a sampling inspection component (2) arranged outside the end of the detection host (1); The sampling inspection component (2) comprises a wing rod (21), a base (22) and a micro motor (23); a plurality of wing rods (21) are annularly mounted on the outer side of the end of the detection host (1); the base (22) is fixedly connected to the lower surface of the detection host (1); a plurality of transmitting plates (25) are annularly rotatably connected to the outer side of the end of the base (22); a plurality of micro motors (23) are annularly mounted on the outer side of the end of the base (22); a toggle block (24) is fixedly connected to the outer side of the main shaft of the micro motor (23); the toggle block (24) is a semicircular structure. The outer side of the end of the toggle block (24) contacts the outer side of one end of the launch plate (25); the upper surface of the base (22) is annularly fixedly connected with a plurality of support frames (26); the outer sides of both ends of the spring (27) are respectively fixedly connected with the outer side of the other end of the launch plate (25) and the outer side of the end of the support frame (26); the outer side of the end of the launch plate (25) is movably connected with a pumping head (28); the outer sides of both ends of the pumping pipe (29) are respectively connected with the outer side of one end of the pumping head (28) and the outer side of the end of the detection host (1).
2. The semiconductor wastewater sampling device according to claim 1 is characterized in that: A filter head (210) is fixedly connected to the outer side of the end of the water pumping head (28).
3. The semiconductor wastewater sampling device according to claim 1 is characterized in that: A rubber ring (211) is fixedly connected to the outer side of the end of the launch plate (25), and the material of the rubber ring (211) is rubber.
4. The semiconductor wastewater sampling device according to claim 1 is characterized in that: The outer sides of the ends of the plurality of water pumping pipes (29) are all fixedly connected with floating balls (212).
5. The semiconductor wastewater sampling device according to claim 1 is characterized in that: A visual camera (213) is installed on the outer side of the end of the detection host (1).