Water quality detection device capable of independently detecting various data
By designing a water quality detection device including a fixed plate, a moving plate and a cleaning part, the problem of low water quality detection efficiency in the prior art is solved, and the water quality of multiple data is independently detected, which improves the detection efficiency.
Patent Information
- Application Number
- CN202421160055.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-24
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-05-24
AI Technical Summary
The existing water quality detection device requires manual placement of multiple test tubes on the test bench and manually inserting the inspection motor, resulting in low detection efficiency.
A water quality detection device is designed, including a fixing plate, storage cylinder, placing rack, test tube, guide rail, mobile plate, support plate, bearing plate, detection rod and cleaning section. The first moving mechanism drives the bearing plate to move into the test tube for testing; after the detection, the driving mechanism drives the moving plate to move to the top of the storage cylinder; then the second moving mechanism drives the cleaning part to move downward, and the detection rod is sprayed and cleaned by the detection rod.
It realizes independent detection of water quality of multiple data, improves detection efficiency, and can detect multiple water quality at the same time.
Smart Images

Figure CN222952334U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water quality detection, in particular to a water quality detection device capable of independently detecting multiple data. Background Art
[0002] The purposes of water quality testing include examining environmental quality, studying whether water quality is appropriate or usable, examining water pollution or the degree of pollution, and checking the efficiency of water treatment processes. The test items and water quality parameters of water samples depend on the purpose of the test and the nature of the water samples. The data obtained should be comprehensively evaluated to illustrate the water quality.
[0003] However, when using the existing water quality testing bench to test water quality, it is necessary to place multiple test tubes on the test bench in sequence, and manually insert the test motor into the test tube to test the quality of the water sample, resulting in low water quality testing efficiency. Utility Model Content
[0004] The purpose of the utility model is to provide a water quality detection device that can independently detect multiple data, which can solve at least one of the above technical problems. The technical solution of the utility model is as follows:
[0005] A water quality detection device capable of independently detecting a variety of data comprises: a fixed plate, a storage tube and a placement rack are respectively provided on the left and right sides of the fixed plate, a plurality of placement holes are arranged at intervals on the placement rack, a test tube is placed in each of the placement holes, guide rails are arranged on the front and back sides of the fixed plate, a movable plate is movably inserted on each of the guide rails, a support plate is connected and fixed between each of the movable plates, a bearing plate is movably sleeved between each of the movable plates, a plurality of detection rods are arranged at intervals on the bearing plate, a cleaning part capable of cleaning each of the detection rods is provided below the bearing plate, a first moving mechanism capable of driving the bearing plate to move along the movable plate is provided above the support plate, a second moving mechanism capable of driving the cleaning part to move downward is provided on the bearing plate, and a driving mechanism capable of driving the movable plate to move along the guide rail is provided on the left side of the fixed plate.
[0006] Furthermore, the cleaning part includes a cleaning plate arranged under the supporting plate, and a plurality of scraping holes are arranged at intervals on the cleaning plate. Each of the scraping holes is sleeved on the detection rod, and an annular nozzle is installed on each of the scraping holes. A water pump is fixed on the fixing plate, and each of the annular nozzles is connected to the water pump.
[0007] Furthermore, the first moving mechanism includes a first motor fixed on the support plate, a first spur gear is fixed at the output end of the first motor, a rack is fixed above the bearing plate and passes through the support plate, and the rack is meshed with the first spur gear.
[0008] Furthermore, the second moving mechanism includes a first screw fixed on one side of the cleaning plate and passing through a carrying plate, a first threaded sleeve that can cooperate with the thread of the first screw is movable on the carrying plate, a second spur gear is fixed above the first threaded sleeve, a second motor is fixed above the carrying plate, and a third spur gear is fixed at the output end of the second motor, and the third spur gear is meshed with the second spur gear.
[0009] Furthermore, the driving mechanism includes a third motor fixed on the left side of the fixed plate, a second screw is provided on the movable sleeve on the front side of the fixed plate, a second threaded sleeve that can cooperate with the second screw thread is fixed on one of the movable plates, and the output end of the third motor is fixedly connected to the second screw.
[0010] Preferably, a protective shell is fixed above the support plate, and the rack is arranged in the protective shell.
[0011] Preferably, a control and detection platform is fixed on the support plate.
[0012] In summary, the beneficial effects of the present invention compared with the prior art are as follows:
[0013] The utility model provides a water quality detection device which can independently detect a variety of data. When in use, the user places different water quality samples in a test tube, and then the user places each test tube in a corresponding placement hole. During detection, a first moving mechanism drives a carrying plate to move along the moving plate, so that the carrying plate drives each detection rod to move into the test tube, and detects the water quality in the test tube. After the detection, the driving mechanism drives the moving plate to move along the guide rail, so that each detection rod moves to the top of a storage tube. At this time, the second moving mechanism drives a cleaning part to move downward, so that the cleaning part sprays water to clean the detection rod, and the cleaned water falls into the storage tube. Compared with the prior art, multiple water quality tests can be performed at the same time, thereby improving the detection efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a three-dimensional schematic diagram of the utility model.
[0015] Figure 2 This is one of the exploded schematic diagrams of the present utility model.
[0016] Figure 3 This is the second exploded schematic diagram of the present utility model.
[0017] Explanation of the accompanying drawings: 1. fixed plate; 2. storage cylinder; 3. placement rack; 4. placement hole; 5. test tube; 6. guide rail; 7. movable plate; 8. support plate; 9. bearing plate; 10. detection rod; 100. cleaning part; 200. first moving mechanism; 300. second moving mechanism; 400. driving mechanism; 101. cleaning plate; 102. scraping hole; 103. annular nozzle; 104. water pump; 201. first motor; 202. first spur gear; 203. rack; 301. first screw; 302. first threaded sleeve; 303. second spur gear; 304. second motor; 305. third spur gear; 401. third motor; 402. second screw; 403. second threaded sleeve; 81. protective shell; 82. control and detection platform. DETAILED DESCRIPTION
[0018] The utility model is further described below in conjunction with the accompanying drawings and specific implementation methods:
[0019] like Figures 1 to 3 A water quality detection device capable of independently detecting a variety of data is shown, characterized in that it comprises: a fixed plate 1, on the left and right sides of the fixed plate 1 are respectively provided with a storage tube 2 and a placement rack 3, a plurality of placement holes 4 are arranged at intervals on the placement rack 3, and a test tube 5 is placed in each of the placement holes 4, guide rails 6 are arranged on the front and back sides of the fixed plate 1, and a movable plate 7 is movably inserted on each of the guide rails 6, and a support plate 8 is connected and fixed between each of the movable plates 7, and a protective shell 81 is fixed above the support plate 8, and the rack 203 is arranged in the protective shell 81. A control inspection table 82 is fixed on the support plate 8, a carrying plate 9 is movably sleeved between each of the movable plates 7, a plurality of inspection rods 10 are arranged on the carrying plate 9 at intervals, a cleaning section 100 capable of cleaning each of the inspection rods 10 is provided below the carrying plate 9, a first moving mechanism 200 capable of driving the carrying plate 9 to move along the movable plate 7 is provided above the support plate 8, a second moving mechanism 300 capable of driving the cleaning section 100 to move downward is provided on the carrying plate 9, and a driving mechanism 400 capable of driving the movable plate 7 to move along the guide rail 6 is provided on the left side of the fixed plate 1.
[0020] The above structure is a water quality detection device that can independently detect multiple data. When in use, the user places different water quality samples in the test tube 5, and then the user places each test tube 5 in the corresponding placement hole 4. During the detection, the first moving mechanism 200 drives the supporting plate 9 to move along the moving plate 7, so that the supporting plate 9 drives each detection rod 10 to move into the test tube 5, and detects the water quality in the test tube 5. After the detection, the driving mechanism 400 drives the moving plate 7 to move along the guide rail 6, so that each detection rod 10 moves to the top of the storage tube 2. At this time, the cleaning part 100 is driven to move downward by the second moving mechanism 300, so that the cleaning part 100 sprays water to clean the detection rod 10, and the cleaned water falls into the storage tube 2. Compared with the existing technology, multiple water quality tests can be performed at the same time, thereby improving the detection efficiency.
[0021] like Figure 2 As shown, in some embodiments of the utility model, the cleaning part 100 includes a cleaning plate 101 arranged under the supporting plate 9, and a plurality of scraping holes 102 are arranged at intervals on the cleaning plate 101, each of the scraping holes 102 is sleeved on the detection rod 10, and an annular nozzle 103 is installed on each of the scraping holes 102, and a water pump 104 is fixed on the fixed plate 1, and each of the annular nozzles 103 is connected to the water pump 104, and is connected to an external water source through the water pump 104, so that the water pump delivers water to each annular nozzle 103. At this time, the cleaning plate 101 is driven to move downward by the second moving mechanism 300, and the scraping holes 102 scrape and wash each detection rod 10, and at the same time, the annular nozzle 103 sprays and washes the detection rod 10.
[0022] like Figure 3 As shown, in some embodiments of the utility model, in order to achieve the effect of driving the supporting plate 9 to move along the movable plate 7, the first moving mechanism 200 includes a first motor 201 fixed on the support plate 8, a first spur gear 202 is fixed at the output end of the first motor 201, and a rack 203 is fixed above the supporting plate 9 and through the support plate 8, and the rack 203 is meshed with the first spur gear 202.
[0023] When a water quality detection device that can independently detect multiple data using the above structure is in operation, the first motor 201 drives the first spur gear 202 to rotate, so that the first spur gear 202 drives the rack 203 to move, and the rack 203 moves and drives the supporting plate 9 to move at the same time, and the supporting plate 9 drives each detection rod 10 to move into the test tube 5.
[0024] like Figure 2 and 3As shown, in some embodiments of the present invention, in order to achieve the effect of driving the cleaning part 100 to move downward, the second moving mechanism 300 includes a first screw 301 fixed to one side of the cleaning plate 101 and passing through the supporting plate 9, and a first threaded sleeve 302 that can threadably cooperate with the first screw 301 is movably sleeved on the supporting plate 9, a second spur gear 303 is fixed above the first threaded sleeve 302, a second motor 304 is fixed above the supporting plate 9, and a third spur gear 305 is fixed at the output end of the second motor 304, and the third spur gear 305 is meshed with the second spur gear 303.
[0025] When a water quality detection device that can independently detect multiple data using the above structure is in operation, the third spur gear 305 is driven to rotate by the second motor 304, so that the third spur gear 305 drives the second spur gear 303 to rotate. When the second spur gear 303 rotates, the first threaded sleeve 302 is driven to rotate at the same time. When the first threaded sleeve 302 rotates, the cleaning plate 101 is driven to move downward, and the cleaning plate 101 moves downward along each detection rod 10.
[0026] like Figure 2 As shown, in some embodiments of the utility model, in order to achieve the effect of driving the movable plate 7 to move along the guide rail 6, the driving mechanism 400 includes a third motor 401 fixed to the left side of the fixed plate 1, and a second screw 402 is provided in a movable sleeve on the front side of the fixed plate 1, and a second threaded sleeve 403 that can threadably cooperate with the second screw 402 is fixed on one of the movable plates 7, and the output end of the third motor 401 is fixedly connected to the second screw 402.
[0027] When a water quality detection device capable of independently detecting multiple data using the above structure is in operation, the second screw 402 is driven to rotate by the third motor 401, so that the second screw 402 drives one of the movable plates 7 to move along the guide rail 6 through the second threaded sleeve 403, and when one of the movable plates 7 moves, the support plate 8 and the other movable plate 7 are also driven to move.
[0028] The above shows and describes the basic principle and main features of the utility model and the advantages of the utility model. The technicians in this industry should understand that the utility model is not limited by the above embodiments. The above embodiments and the description are only to illustrate the principle of the utility model. Without departing from the spirit and scope of the utility model, the utility model will have various changes and improvements, which fall within the scope of the utility model to be protected. The scope of protection of the utility model is defined by the attached claims and their equivalents.
Claims
1. A water quality detection device capable of independently detecting multiple data, characterized in that: include: A fixed plate (1), a storage tube (2) and a placement rack (3) are respectively arranged on the left and right sides of the fixed plate (1), a plurality of placement holes (4) are arranged at intervals on the placement rack (3), a test tube (5) is placed in each of the placement holes (4), guide rails (6) are arranged on the front and rear sides of the fixed plate (1), a movable plate (7) is movably inserted on each of the guide rails (6), a support plate (8) is connected and fixed between each of the movable plates (7), a bearing plate (9) is movably sleeved between each of the movable plates (7), and a test tube (5) is placed in each of the bearing plates ( A plurality of detection rods (10) are arranged at intervals on the support plate (9); a cleaning unit (100) capable of cleaning each detection rod (10) is arranged below the support plate (9); a first moving mechanism (200) capable of driving the support plate (9) to move along the moving plate (7) is arranged above the support plate (8); a second moving mechanism (300) capable of driving the cleaning unit (100) to move downward is arranged on the support plate (9); and a driving mechanism (400) capable of driving the moving plate (7) to move along the guide rail (6) is arranged on the left side of the fixed plate (1).
2. A water quality detection device capable of independently detecting multiple data according to claim 1, characterized in that The cleaning part (100) comprises a cleaning plate (101) arranged below the carrying plate (9), a plurality of scraping holes (102) are arranged at intervals on the cleaning plate (101), each of the scraping holes (102) is sleeved on the detection rod (10), an annular nozzle (103) is installed on each of the scraping holes (102), a water pump (104) is fixed on the fixing plate (1), and each of the annular nozzles (103) is connected to the water pump (104).
3. A water quality detection device capable of independently detecting multiple data according to claim 1, characterized in that The first moving mechanism (200) comprises a first motor (201) fixed on a support plate (8), a first spur gear (202) fixed at an output end of the first motor (201), a rack (203) fixed above the carrier plate (9) and passing through the support plate (8), and the rack (203) and the first spur gear (202) meshing.
4. A water quality detection device capable of independently detecting multiple data according to claim 2, characterized in that The second moving mechanism (300) comprises a first screw rod (301) fixed to one side of the cleaning plate (101) and passing through a supporting plate (9); a first threaded sleeve (302) which can be threadedly matched with the first screw rod (301) is movably sleeved on the supporting plate (9); a second spur gear (303) is fixed above the first threaded sleeve (302); a second motor (304) is fixed above the supporting plate (9); a third spur gear (305) is fixed at the output end of the second motor (304); and the third spur gear (305) is meshed with the second spur gear (303).
5. A water quality detection device capable of independently detecting multiple data according to claim 2, characterized in that The driving mechanism (400) comprises a third motor (401) fixed to the left side of the fixed plate (1); a second screw rod (402) is provided on a movable sleeve on the front side of the fixed plate (1); a second threaded sleeve (403) capable of threadably engaging with the second screw rod (402) is fixed on one of the movable plates (7); and an output end of the third motor (401) is fixedly connected to the second screw rod (402).
6. A water quality detection device capable of independently detecting multiple data according to claim 3, characterized in that A protective shell (81) is fixed above the support plate (8), and the rack (203) is arranged in the protective shell (81).
7. A water quality detection device capable of independently detecting multiple data according to claim 1, characterized in that A control and detection platform (82) is fixed on the support plate (8).