Marine sediment detection equipment
By using servo motor-driven conveyor belt and cylinder push detection equipment in marine sediment detection equipment, the inefficiency problem caused by manual intervention in existing equipment is solved, and an efficient and continuous detection process is achieved.
Patent Information
- Application Number
- CN202421930834.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-11
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-08-11
AI Technical Summary
Existing marine sediment detection equipment requires manual intervention during sample replacement and detection, resulting in inefficiency and waste of resources.
A marine sediment detection equipment was designed, using servo motor to drive the conveyor belt and cylinder push detection equipment to realize an automated detection process.
Through automated inspection processes, manual intervention is reduced, detection efficiency is improved, continuous operation and efficient marine sediment detection are achieved.
Smart Images

Figure CN223022081U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of marine sediment detection, and specifically relates to a marine sediment detection device. Background Art
[0002] Marine sediments contain rich mineral resources, such as oil, natural gas, polymetallic nodules, etc. By detecting and analyzing marine sediments, the potential and distribution of mineral resources can be evaluated, providing a scientific basis for resource exploration and development. Marine sediments are also important carriers of environmental pollution, which may contain harmful substances such as heavy metals and organic pollutants. Detecting marine sediments helps monitor the quality of the marine environment, evaluate the degree and scope of pollution, and provide data support for environmental protection and governance.
[0003] The current marine sediment detection device (authorized announcement number CN218470655U) detects multiple groups of samples at the same time and by the same detection means through a detection table, improving the applicability of the detection device; however, it requires the tester to directly manually push the placement plate into the interior of the detection table, and cannot quickly replace and detect samples, which not only wastes manpower but also wastes time. Content of the Utility Model
[0004] In order to overcome the above deficiencies, this utility model provides a marine sediment detection device.
[0005] The technical solution adopted by this utility model:
[0006] A marine sediment detection device includes a support frame. The tops of two support frames are respectively rotatably connected with belt rollers. A conveyor belt is sleeved between the outer walls of the two belt rollers. The right - hand top of the front side wall of the support frame is fixedly installed with a servo motor. The output shaft of the servo motor is fixedly connected to the center of the right - hand belt roller. Below the upper part of the conveyor belt is a support plate. The four corners of the support plate extend downward and are fixedly connected to the support frame. The conveyor belt is slidably matched with the top of the support plate. A plurality of detection boxes are placed on the top of the conveyor belt. The bottom of the support plate is fixedly connected to both ends of the upper part of the operating table. There is a gap between the bottom of the support plate and the upper part of the operating table. The four corners of the bottom of the operating table are vertically connected with legs. The upper part of the operating table is a tabletop. The tabletop of the operating table is located inside the conveyor belt. On the top of the operating table, chutes extending forward and backward are opened on both the left and right sides. The two chutes are arranged in parallel. There is a detection device on the top of the operating table. The detection device is located behind the support plate. The bottom of the detection device is flat. The side walls at the four corners of the bottom of the detection device are respectively rotatably connected with pulleys. The pulleys are in the chutes. The two pulleys on each side are respectively slidably matched with the two chutes. A cylinder is fixedly connected to the rear side of the top of the operating table. The piston rod of the cylinder is fixedly connected to the rear side wall of the detection device.
[0007] The bottoms of two support frames are provided with cross beams. The support frames include the first column and the second column. The two ends of the two cross beams are respectively fixedly connected to the bottoms of the first column and the second column. The four corners of the support plate are respectively vertically and fixedly connected to the upper part of the third column. The lower part of the third column is fixedly connected to the upper part of the cross beam. The belt rollers are located between the first column and the second column at the upper part. The belt rollers are respectively rotatably connected to the first column and the second column. The servo motor is fixed to the upper part of the right first column. The output shaft of the servo motor penetrates through the upper part of the first column. The output shaft of the servo motor is rotatably connected to the upper part of the first column. The output shaft of the servo motor is fixedly connected to the center of the right belt roller.
[0008] The beneficial effects of the present utility model:
[0009] By driving the conveyor belt with a servo motor and pushing the detection device with a cylinder, the present utility model realizes the automation of the detection process, reduces manual intervention, and improves the detection efficiency. The conveyor belt can continuously convey the detection boxes, and the detection device can continuously detect each detection box, realizing continuous operation and improving the detection efficiency. Description of the drawings
[0010] Figure 1 is the structural schematic diagram of the present utility model;
[0011] Figure 2 is the right view of the present utility model;
[0012] Figure 3 is Figure 2 the sectional view at A-A in
[0013] Figure 4 is the top view of the present utility model.
[0014] In all the drawings, the reference numerals are specifically: 1, support frame; 2, belt roller; 3, conveyor belt; 4, servo motor; 5, support plate; 6, detection box; 7, operating table; 8, chute; 9, detection device; 10, pulley; 11, cylinder; 12, leg; 13, cross beam; 14, first column; 15, second column; 16, third column; 17, gap. Specific embodiments
[0015] Such as Figures 1-4As shown: An ocean sediment detection device includes a support frame 1; the tops of two support frames 1 are respectively rotatably connected with rollers 2, a conveyor belt 3 is sleeved between the outer walls of the two rollers 2, the right end top of the front side wall of the support frame 1 is fixedly installed with a servo motor 4, and the output shaft of the servo motor 4 is fixedly connected to the center of the roller 2 on the right side. Below the upper part of the conveyor belt 3 is a support plate 5, the four corners of the support plate 5 extend downward and are fixedly connected to the support frame 1, the conveyor belt 3 is slidably matched with the top of the support plate 5, and a plurality of detection boxes 6 are placed on the top of the conveyor belt 3. The bottom of the support plate 5 is fixedly connected to both ends of the upper part of the operating table 7, and there is a gap 17 between the bottom of the support plate 5 and the upper part of the operating table 7. The four corners of the bottom of the operating table 7 are vertically connected with legs 12, the upper part of the operating table 7 is a tabletop, the tabletop of the operating table 7 is located inside the conveyor belt 3, and sliding grooves 8 extending forward and backward are opened on the left and right sides of the top of the operating table 7. The two sliding grooves 8 are arranged in parallel. There is a detection device 9 on the top of the operating table 7. The detection device 9 is located behind the support plate 5. The bottom of the detection device 9 is flat, and pulleys 10 are rotatably connected to the side walls at the four corners of the bottom of the detection device 9. The pulleys 10 are in the sliding grooves 8, and the two pulleys 10 on each side are respectively slidably matched with the two sliding grooves 8. A cylinder 11 is fixedly connected to the rear side of the top of the operating table 7, and the piston rod of the cylinder 11 is fixedly connected to the rear side wall of the detection device 9.
[0016] There are cross beams 13 at the bottoms of the two support frames 1. The support frame 1 includes a first column 14 and a second column 15. The two ends of the two cross beams 13 are respectively fixedly connected to the bottoms of the two first columns 14 and the second columns 15. The four corners of the support plate 5 are respectively vertically and fixedly connected to the upper parts of the third columns 16. The lower parts of the third columns 16 are fixedly connected to the upper parts of the cross beams 13. The rollers 2 are between the upper parts of the first column 14 and the second column 15, and the rollers 2 are respectively rotatably connected to the first column 14 and the second column 15. The servo motor 4 is fixed to the upper part of the right first column 14. The output shaft of the servo motor 4 penetrates through the upper part of the first column 14, the output shaft of the servo motor 4 is rotatably connected to the upper part of the first column 14, and the output shaft of the servo motor 4 is fixedly connected to the center of the roller 2 on the right side. The detection device 9 is a prior art device, and the specific structure will not be described in detail.
[0017] The staff place the detection boxes 6 containing ocean sediments on the top of the conveyor belt 3 to ensure that they are evenly distributed and stable. The servo motor 4 is in the standby state, the cylinder 11 is in the initial position, and the detection device 9 is located at the rear of the operating table 7 through the cooperation of the pulleys 10 and the sliding grooves 8 on the operating table 7.
[0018] Start the servo motor 4, and its output shaft drives the roller 2 on the right side to rotate. Since the two rollers 2 are connected by the conveyor belt 3, the roller 2 on the left side will also rotate synchronously, thereby driving the conveyor belt 3 to start moving forward. The conveyor belt 3 smoothly conveys the detection boxes 6 forward, and each detection box 6 passes below the operating table 7 and the detection device 9 in turn.
[0019] When the detection box 6 moves to directly below the detection device 9, the cylinder 11 starts to work, and its output shaft pushes the detection device 9 forward. Under the push of the cylinder 11, the detection device 9 slides forward along the chute 8 through the pulley 10 until its front part reaches above the detection box 6. The detection device 9 conducts various detections (such as component analysis, particle size distribution, etc.) on the marine sediment in the detection box 6 and records the detection data;
[0020] After the detection is completed, the cylinder 11 retracts, driving the detection device 9 to move backward along the chute 8 and return to the initial position to prepare for detecting the next detection box 6. The conveyor belt 3 continuously conveys the detection box 6 forward, and each detection box 6 will pass below the detection device 9 in turn for detection. The whole process realizes an automated and continuous marine sediment detection process. The present utility model only protects the mechanical part, and the functions realized by the software control part related thereto are not within the protection scope of the present utility model.
Claims
1. A marine sediment detection device, comprising a support frame (1), characterized in that: The tops of the two support frames (1) are respectively rotatably connected to the belt rollers (2), and the outer walls of the two belt rollers (2) are sleeved with a conveyor belt (3). A servo motor (4) is fixedly installed on the top of the right end of the front side wall of the support frame (1), and the output shaft of the servo motor (4) is fixedly connected to the center of the belt roller (2) on the right side. A support plate (5) is provided below the upper part of the conveyor belt (3), and the four corners of the support plate (5) extend downward and are fixedly connected to the support frame (1). The conveyor belt (3) and the top of the support plate (5) are slidably matched, and a plurality of detection boxes (6) are placed on the top of the conveyor belt (3). The bottom of the support plate (5) is fixedly connected to the two ends of the upper part of the operating table (7), and a gap (17) is provided between the bottom of the support plate (5) and the upper part of the operating table (7). The four corners of the bottom of the operating table (7) are vertically The upper part of the operating table (7) is a table top, the table top of the operating table (7) is located on the inner side of the conveyor belt (3), the left and right sides of the top of the operating table (7) are provided with slide grooves (8) extending forward and backward, the two slide grooves (8) are arranged in parallel, the top of the operating table (7) is provided with a detection device (9), the detection device (9) is located on the rear side of the support plate (5), the bottom of the detection device (9) is in the shape of a flat plate, the four corner side walls of the bottom of the detection device (9) are rotatably connected with pulleys (10), the pulleys (10) are in the slide grooves (8), the two pulleys (10) on each side are respectively slidably matched with the two slide grooves (8), the rear side of the top of the operating table (7) is fixedly connected with a cylinder (11), and the piston rod of the cylinder (11) is fixedly connected to the rear side wall of the detection device (9).
2. A marine sediment detection device according to claim 1, characterized in that: The bottom of the two support frames (1) is provided with a crossbeam (13). The support frames (1) include a first column (14) and a second column (15). The two ends of the two crossbeams (13) are respectively fixedly connected to the bottom of the two first columns (14) and the second column (15). The four corners of the support plate (5) are respectively vertically fixedly connected to the upper part of the third column (16). The lower part of the third column (16) is fixedly connected to the upper part of the crossbeam (13). The belt roller (2) is located at the upper part between the first column (14) and the second column (15). The belt roller (2) is rotatably connected to the first column (14) and the second column (15). The servo motor (4) is fixed to the upper part of the right side column (14). The output shaft of the servo motor (4) passes through the upper part of the first column (14). The output shaft of the servo motor (4) is rotatably connected to the upper part of the first column (14). The output shaft of the servo motor (4) is fixedly connected to the center of the belt roller (2) on the right side.
Citation Information
Patent Citations
Marine sediment detection equipment
CN218470655U