Water oxygen enrichment monitoring device
By combining the use of bottom plates, floats, solar panels, motors, propellers and other components, the problem of poor maneuverability of traditional monitoring devices has been solved, rapid movement on the water surface and automatic fixed-point monitoring have been achieved, reducing costs and reducing manual maintenance.
Patent Information
- Application Number
- CN202421804679.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-29
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-07-29
AI Technical Summary
In the existing technology, traditional monitoring methods have poor maneuverability for monitoring equipment in remote waters and require manual control. They cannot meet the needs of rapid movement and long-term fixed-point monitoring, and are costly.
A combination of bottom plates, floats, solar panels, motors, propellers, sensors, oxygen enrichment monitors and other components is used to achieve mobile monitoring, and automatic fixed-point monitoring is achieved through tripods, reel, anchor chains, etc., reducing manual intervention.
It realizes rapid mobile monitoring on the water surface, reduces the cost of fixed detection points, and can automatically monitor at fixed points under wind and wave conditions without manual control.
Smart Images

Figure CN223315195U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of oxygen enrichment monitoring, in particular to a water body oxygen enrichment monitoring device. Background Art
[0002] Small lakes and landscape water bodies are mostly static or closed water bodies with poor fluidity. They have the characteristics of small water area, easy pollution, and poor self-purification ability. Coupled with external pollution, they can easily cause eutrophication of water bodies.
[0003] The traditional monitoring method is to use multiple monitoring platforms to conduct regional monitoring. This method requires high platform construction technology and a large amount of operating costs. It is more troublesome to repair monitoring stations in remote waters. There is an urgent need for a highly maneuverable monitoring device. However, due to the influence of wind and waves, a highly maneuverable monitoring device requires frequent manual control to monitor in one place, which cannot meet people's needs. Utility Model Content
[0004] The purpose of the utility model is to solve the shortcomings of the prior art and to propose a water body oxygen enrichment monitoring device.
[0005] In order to solve the problems existing in the prior art, the present invention adopts the following technical solutions:
[0006] A water body oxygen enrichment monitoring device comprises a bottom plate, a pair of support beams, and multiple first motors, a pair of floating buckets are fixedly provided at the bottom of the bottom plate, multiple pairs of support rods are fixedly provided on the bottom plate, multiple support rods are fixedly connected to the pair of support beams, a pair of solar panels are fixedly provided on a pair of support beams, a top plate is fixedly provided on a pair of support beams, a control antenna is fixedly provided on the top plate, a pair of warning lights are fixedly provided on the top plate, single sealed boxes are fixedly provided on the bottom of both sides of the front end of the bottom plate, a double sealed box is fixedly provided on the middle bottom of the rear end of the bottom plate, a first motor is fixedly provided in each of the single sealed boxes, another pair of first motors are fixed in the double sealed boxes, propellers are fixedly provided at the output ends of the first motors, a protective cover is fixedly provided on the bottom plate, a battery is fixedly provided on the bottom plate, a sensor is fixedly provided on the bottom of the front end of the bottom plate, an oxygen enrichment monitor is fixedly provided on the bottom plate, a control switch is fixedly provided on the bottom plate, and a signal receiver is fixedly provided on the top of the protective cover
[0007] Preferably, a pair of tripods are fixed on the base plate, a take-up wheel is rotatably provided between the pair of tripods, a second motor is fixed on the base plate, an output end of the second motor is fixedly connected to the take-up wheel, an anchor chain is wound around the take-up wheel, a circular hole is opened on the base plate, and an anchor hook is fixed on the end of the anchor chain.
[0008] Preferably, the output ends of the first motor both pass through the single sealed box and the double sealed box, and the protective cover is located at the center of the bottom plate.
[0009] Preferably, both ends of a pair of support beams are inclined downward, and a pair of solar panels are respectively located at the inclined portions of both ends of the support beams.
[0010] Preferably, a pair of solar panels are arranged symmetrically, and the control antenna is located at the center of the top panel.
[0011] Preferably, the warning lights are located on both sides of the top plate, and the signal receiver is located at the top center of the protective cover.
[0012] Preferably, the battery and the oxygen enrichment monitor are both located in a protective cover, and a pair of floats are respectively located on both sides of the bottom of the base plate.
[0013] Preferably, the circular hole passes through the bottom plate, the circular hole is located at the center of the bottom plate, the anchor chain passes through the circular hole, and the take-up wheel is located in the protective cover.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] 1. In the present invention, by using the bottom plate, floating barrel, solar panel, control antenna, first motor, propeller, battery, detection sensor, oxygen enrichment monitor, control switch and signal receiver in coordination, mobile monitoring can be performed during monitoring and can be quickly moved on the water surface, which not only reduces the cost of fixed detection points, but also reduces their maintenance;
[0016] 2. In the present invention, by using the tripod, the take-up wheel, the second motor, the anchor chain, the round hole and the anchor hook in combination, when long-term monitoring is required in one place, manual control is not required, and long-term monitoring can be carried out in one place. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The drawings described herein are used to provide a further understanding of the present invention and constitute a part of this application. The exemplary embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation of the present invention. In the drawings:
[0018] Figure 1 This is a schematic diagram of the main structure of the utility model;
[0019] Figure 2 This is a schematic diagram of the position relationship between the support rod and the support beam of the utility model;
[0020] Figure 3 This is a schematic diagram of the cross-sectional structure of the protective cover of the present utility model;
[0021] Figure 4This is a schematic diagram of the cross-sectional structure of the bottom plate of the present utility model;
[0022] Serial numbers in the figure: 1. Bottom plate; 11. Float; 12. Support rod; 13. Support beam; 14. Solar panel; 15. Top plate; 16. Control antenna; 17. Warning light; 18. Single sealed box; 19. Double sealed box; 111. First motor; 112. Propeller; 113. Protective cover; 114. Battery; 115. Sensor; 116. Oxygen enrichment monitor; 117. Control switch; 118. Signal receiver; 2. Tripod; 21. Reel; 22. Second motor; 23. Anchor chain; 24. Round hole; 25. Anchor hook. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the present invention will be described clearly and completely below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0024] Example 1: This example provides a water body oxygen enrichment monitoring device, see Figure 1-4 Specifically, it includes a bottom plate 1, a pair of support beams 13, and multiple first motors 111. A pair of floating buckets 11 are fixed to the bottom of the bottom plate 1. Multiple pairs of support rods 12 are fixed on the bottom plate 1. Multiple support rods 12 are fixedly connected to the pair of support beams 13. A pair of solar panels 14 are fixed on the pair of support beams 13. A top plate 15 is fixed on the pair of support beams 13. A control antenna 16 is fixed on the top plate 15. A pair of warning lights 17 are fixed on the top plate 15. Single sealed boxes 18 are fixed to the bottom of both sides of the front end of the bottom plate 1. The middle bottom of the rear end of the bottom plate 1 A double sealed box 19 is fixedly provided on the bottom, a first motor 111 is fixedly provided in each single sealed box 18, another pair of first motors 111 are fixedly provided in the double sealed box 19, and propellers 112 are fixedly provided at the output ends of the first motors 111. A protective cover 113 is fixedly provided on the bottom plate 1, a battery 114 is fixedly provided on the bottom plate 1, a sensor 115 is fixedly provided on the bottom front end of the bottom plate 1, an oxygen enrichment monitor 116 is fixedly provided on the bottom plate 1, a control switch 117 is fixedly provided on the bottom plate 1, and a signal receiver 118 is fixedly provided on the top of the protective cover 113;
[0025] The output ends of the first motor 111 pass through the single sealed box 18 and the double sealed box 19. The protective cover 113 is located in the center of the bottom plate 1. The two ends of a pair of support beams 13 are tilted downward. A pair of solar panels 14 are respectively located at the tilted ends of the support beams 13. The pair of solar panels 14 are symmetrically arranged. The control antenna 16 is located in the center of the top plate 15. The warning lights 17 are respectively located on both sides of the top plate 15. The signal receiver 118 is located in the top center of the protective cover 113. The battery 114 and the oxygen enrichment monitor 116 are both located in the protective cover 113. A pair of floats 11 are respectively located on both sides of the bottom of the bottom plate 1.
[0026] In the specific implementation process, Figure 1 and Figure 3 As shown, when in use, the device is placed on the water, the control switch 117 controls the first motor 111, the first motor 111 in the double sealed box 19 drives the propeller 112 to rotate, and the propeller 112 rotates to push the device forward on the water, and the first motor 111 in the single sealed box 18 is started respectively, and the propeller 112 rotates to make the device rotate left or right, and the first motor 111 and the propeller 112 drive the device to move to the monitoring point for monitoring, and the solar panel 14 converts solar energy into electrical energy and stores it in the battery 114. After reaching the detection point, the oxygen enrichment monitor 116 is started, and the sensor 11 at the bottom of the bottom plate 1 is used. 5 is immersed in water to monitor the oxygen enrichment of water energy. The control antenna 16 and the signal receiver 118 receive and transmit signals and transmit monitoring data. The warning light 17 can serve as a warning at night. The control switch 117 controls the device comprehensively. Through the coordinated use of the bottom plate 1, the floating bucket 11, the solar panel 14, the control antenna 16, the first motor 111, the propeller 112, the battery 114, the sensor 115, the oxygen enrichment monitor 116, the control switch 117 and the signal receiver 118, mobile monitoring can be carried out during monitoring and can be quickly moved on the water surface, which not only reduces the cost of fixed detection points.
[0027] Example 2: In Example 1, there is still the problem that monitoring cannot be performed in one place due to the influence of wind and waves. Therefore, based on Example 1, this example further includes:
[0028] A pair of tripods 2 are fixed on the base plate 1, and a take-up wheel 21 is rotatably provided between the pair of tripods 2. A second motor 22 is fixed on the base plate 1, and the output end of the second motor 22 is fixedly connected to the take-up wheel 21. An anchor chain 23 is wound around the take-up wheel 21. A circular hole 24 is opened on the base plate 1, and an anchor hook 25 is fixed at the end of the anchor chain 23. The circular hole 24 passes through the base plate 1 and is located at the center of the base plate 1. The anchor chain 23 passes through the circular hole 24, and the take-up wheel 21 is located in the protective cover 113.
[0029] In the specific implementation process, Figure 3 and Figure 4As shown, when it is necessary to monitor in one place for a long time, the second motor 22 is started, and the second motor 22 drives the take-up wheel 21 to rotate, and the take-up wheel 21 delivers the anchor to the anchor chain 23, and the anchor hook 25 at the bottom of the bottom plate 1 descends and falls to the bottom for anchoring, so that the device will not be blown away by the wind. When it is necessary to move, the take-up wheel 21 is driven to rotate in the opposite direction, and the anchor chain 23 is tightened to drive the anchor hook 25 to rise. Through the coordinated use of the tripod 2, the take-up wheel 21, the second motor 22, the anchor chain 23, the round hole 24 and the anchor hook 25, when it is necessary to monitor in one place for a long time, there is no need for manual control.
[0030] Specifically, the working principle and operation method of the utility model are as follows:
[0031] Step 1. When in use, place the device on the water, control the switch 117 to control the first motor 111, start the first motor 111, and the first motor 111 in the double sealed box 19 drives the propeller 112 to rotate. The rotation of the propeller 112 pushes the device forward on the water. The first motor 111 in the single sealed box 18 is started separately, and the propeller 112 rotates to rotate the device to the left or right. The first motor 111 and the propeller 112 drive the device to move to the monitoring point for monitoring. The solar panel 14 converts solar energy into electrical energy and stores it in the battery 114. After arriving at the detection point, the oxygen enrichment monitor 116 is started. The product model of the oxygen enrichment monitor 116 is jpb-607a. The sensor 115 at the bottom of the bottom plate 1 is immersed in water to monitor the oxygen enrichment of the water. The control antenna 16 and the signal receiver 118 receive and transmit signals. The signal receiver 118 model is RXB12, which transmits the monitoring data. The warning light 17 can serve as a warning at night. The control switch 117 fully controls the device.
[0032] Step 2: When monitoring needs to be carried out at one place for a long time, the second motor 22 is started, and the second motor 22 drives the take-up wheel 21 to rotate. The take-up wheel 21 delivers the anchor to the anchor chain 23, and the anchor hook 25 at the bottom of the bottom plate 1 drops and falls to the bottom for anchoring, so that the device will not be blown away by the wind. When it is necessary to move, the take-up wheel 21 is driven to rotate in the opposite direction, the anchor chain 23 is tightened, and the anchor hook 25 is driven to rise;
[0033] The above is only a preferred specific implementation method of the present invention, but the protection scope of the present invention is not limited to this. Any technician familiar with the technical field within the technical scope disclosed by the present invention can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention, which should be covered by the protection scope of the present invention.
Claims
1. A water body oxygen enrichment monitoring device, comprising a bottom plate (1), a pair of support beams (13), and a plurality of first motors (111), characterized in that: A pair of floating barrels (11) are fixedly provided at the bottom of the bottom plate (1), a plurality of pairs of support rods (12) are fixedly provided on the bottom plate (1), a plurality of the support rods (12) are fixedly connected to a pair of support beams (13), a pair of solar panels (14) are fixedly provided on the pair of support beams (13), a top plate (15) is fixedly provided on the pair of support beams (13), a control antenna (16) is fixedly provided on the top plate (15), a pair of warning lights (17) are fixedly provided on the top plate (15), single sealing boxes (18) are fixedly provided at the bottom of both sides of the front end of the bottom plate (1), a double sealing box (19) is fixedly provided at the middle bottom of the rear end of the bottom plate (1), the single A first motor (111) is fixedly provided in each sealed box (18), another pair of first motors (111) is fixedly provided in each double sealed box (19), a propeller (112) is fixedly provided at the output end of each first motor (111), a protective cover (113) is fixedly provided on the bottom plate (1), a battery (114) is fixedly provided on the bottom plate (1), a sensor (115) is fixedly provided at the bottom front end of the bottom plate (1), an oxygen enrichment monitor (116) is fixedly provided on the bottom plate (1), a control switch (117) is fixedly provided on the bottom plate (1), and a signal receiver (118) is fixedly provided at the top of the protective cover (113).
2. The water body oxygen enrichment monitoring device according to claim 1, characterized in that: A pair of tripods (2) are fixedly provided on the bottom plate (1), a take-up wheel (21) is rotatably provided between the pair of tripods (2), a second motor (22) is fixedly provided on the bottom plate (1), an output end of the second motor (22) is fixedly connected to the take-up wheel (21), an anchor chain (23) is wound around the take-up wheel (21), a circular hole (24) is opened on the bottom plate (1), and an anchor hook (25) is fixedly provided at the end of the anchor chain (23).
3. The water body oxygen enrichment monitoring device according to claim 1, characterized in that: The output ends of the first motor (111) both pass through the single sealed box (18) and the double sealed box (19), and the protective cover (113) is located at the center of the bottom plate (1).
4. The water body oxygen enrichment monitoring device according to claim 1, characterized in that: The two ends of the pair of support beams (13) are inclined downward, and the pair of solar panels (14) are respectively located at the inclined positions at the two ends of the support beams (13).
5. The water body oxygen enrichment monitoring device according to claim 1, characterized in that: A pair of solar panels (14) are symmetrically arranged, and the control antenna (16) is located at the center of the top plate (15).
6. The water body oxygen enrichment monitoring device according to claim 1, characterized in that: The warning lights (17) are respectively located on both sides of the top plate (15), and the signal receiver (118) is located at the top center of the protective cover (113).
7. The water body oxygen enrichment monitoring device according to claim 1, characterized in that: The battery (114) and the oxygen enrichment monitor (116) are both located in the protective cover (113), and a pair of float barrels (11) are respectively located on both sides of the bottom of the bottom plate (1).
8. The water body oxygen enrichment monitoring device according to claim 2, characterized in that: The circular hole (24) passes through the bottom plate (1), the circular hole (24) is located at the center of the bottom plate (1), the anchor chain (23) passes through the circular hole (24), and the take-up wheel (21) is located in the protective cover (113).