Remote monitoring device for total amount of nitrogen and phosphorus in field quasipaa spinosa culture water
By introducing power supply components, auxiliary positioning components, positioning detection components, and moving stabilizing components into the water quality monitoring device for wild stone frog farming, the problems of inaccurate device installation position, easy attachment of debris to the sensor, and poor stability in windy weather have been solved, achieving accurate positioning and improved stability.
Patent Information
- Application Number
- CN202511522403.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2025-12-16
AI Technical Summary
Existing water quality monitoring devices have problems in wild stone frog farming, such as inaccurate installation location, easy attachment of debris to sensors, and poor stability in windy weather.
By employing power supply components, auxiliary positioning components, positioning detection components, water quality monitoring components, and movable stabilizing components, and through components such as dual-axis motors, electric telescopic rods, and movable stabilizing rods, the system achieves precise positioning of the water quality monitoring device, protection of the sensors, and enhanced stability.
It enables accurate positioning of water quality monitoring devices, reduces debris buildup on sensors, and improves sensor lifespan and device stability in windy weather.
Smart Images

Figure CN121141985A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application belongs to the technical field of water quality monitoring, more specifically, particularly relates to a kind of field stone frog breeding water quality nitrogen, phosphorus total amount remote monitoring device. BACKGROUND
[0002] Field stone frog breeding needs to monitor the total amount of nitrogen and phosphorus in water, mainly because it directly affects the ecological balance of water body and frog health; Excessive nitrogen and phosphorus can cause eutrophication, leading to explosive reproduction of algae, consuming dissolved oxygen and producing toxic substances, threatening tadpoles and adult frogs to survive; Stone frogs are sensitive to water quality, especially during the hatching stage, the stable dissolved oxygen content and pH value are required, and eutrophication will destroy these conditions, reduce the hatching rate and induce diseases.
[0003] The currently used water quality monitoring device still has the following problems:
[0004] 1. Usually lack of auxiliary positioning structure, resulting in water quality monitoring device easy to move in the breeding pond, unable to accurately control the installation position of water quality monitoring device;
[0005] 2. Water quality detection sensor is always in water, unable to reduce the time of water quality detection sensor in water, resulting in the outside of water quality detection sensor easy to attach sundries, affecting the subsequent water quality monitoring accuracy;
[0006] 3. Unable to increase the resistance between water quality monitoring device and water, resulting in low stability of water quality monitoring device when used in windy weather. SUMMARY
[0007] The present application relates to a kind of field stone frog breeding water quality nitrogen, phosphorus total amount remote monitoring device, it has installation power supply, auxiliary positioning part, positioning detection part, water quality monitoring part and movable stabilizing part;When the output shaft of double-shaft motor drives two circular winding wheels to rotate, two solid positioning seats move downward, which plays an auxiliary positioning effect on the rectangular floating frame;When the output shaft of electric telescopic rod is controlled to contract, the installation disc drives the water quality detection sensor to move upward, so that the water quality detection sensor moves into the circular protective cylinder, which plays a protective role on the water quality detection sensor;When four movable stabilizing rods and four movable stabilizing plates are in the lower part, four movable stabilizing rods and four movable stabilizing plates can be inserted into water, increase the resistance between them, so that the rectangular floating frame is more stable when used;Solve the problem of unable to accurately control the installation position of water quality monitoring device, unable to reduce the time of water quality detection sensor in water and low stability of water quality monitoring device when used in windy weather.
[0008] The application provides a kind of field stone frog breeding water quality total nitrogen, phosphorus remote monitoring device, comprising: installation power supply, auxiliary positioning part, positioning detection part, water quality monitoring part and movable stabilizing part;The auxiliary positioning part is installed on installation power supply, and the auxiliary positioning part is used for positioning installation power supply;The positioning detection part is provided with two groups, and two groups of positioning detection parts are installed on installation power supply, and two groups of positioning detection parts are used to detect the positioning condition of auxiliary positioning part;The water quality monitoring part is installed on installation power supply;The movable stabilizing part is installed on installation power supply, and the movable stabilizing part is used to improve the stability when installation power supply is used;The right side of installation power supply is provided with a controller, and the controller is used to control auxiliary positioning part and water quality monitoring part.
[0009] In at least some embodiments, the installation power supply includes: a rectangular floating frame, a mounting frame, a battery and a photovoltaic panel;The mounting frame is fixedly installed on the top of the rectangular floating frame;The battery is fixedly installed on the left side of the mounting frame, and the battery is electrically connected with the controller;The photovoltaic panel is fixedly installed on the top of the mounting frame, and the photovoltaic panel is electrically connected with the battery.
[0010] In at least some embodiments, the auxiliary positioning part includes: a mounting bracket, a double-shaft motor and a circular winding wheel;The mounting bracket is fixedly installed on the mounting frame;The double-shaft motor is fixedly installed on the mounting bracket, and the double-shaft motor is electrically connected with the controller;The circular winding wheel is provided with two, and the two circular winding wheels are fixedly installed on the output shaft of the double-shaft motor.
[0011] In at least some embodiments, the auxiliary positioning part further includes: a steel wire rope and a solid positioning seat;The steel wire rope is provided with two, and the two steel wire ropes are installed on the two circular winding wheels;The solid positioning seat is provided with two, and the two solid positioning seats are fixedly installed on the two steel wire ropes.
[0012] In at least some embodiments, the positioning detection part includes: a positioning detection frame, a limiting stop frame and a circular limiting ring;The positioning detection frame is slidingly installed on the mounting frame, and the steel wire rope passes through the positioning detection frame;The limiting stop frame is fixedly installed on the outer end of the positioning detection frame;The circular limiting ring is fixedly installed on the outside of the positioning detection frame.
[0013] In at least some embodiments, the positioning detection part further includes: a spiral spring and a detection button;The spiral spring is sleeved on the outside of the positioning detection frame, and the spiral spring is located between the mounting frame and the circular limiting ring;The detection button is fixedly installed on the limiting stop frame, and the detection button is electrically connected with the controller.
[0014] In at least some embodiments, the water quality monitoring member comprises: a circular protective cylinder, an electric telescopic rod, a cleaning elbow and a mounting disc; the circular protective cylinder is fixedly installed on the mounting frame; the electric telescopic rod is fixedly installed in the interior of the circular protective cylinder, and the electric telescopic rod is electrically connected with the controller; the cleaning elbow is provided with two, and the two cleaning elbows are fixedly installed on the front and back of the circular protective cylinder; the mounting disc is fixedly installed on the output shaft of the electric telescopic rod, and the outer wall of the mounting disc is in contact with the inner wall of the circular protective cylinder.
[0015] In at least some embodiments, the water quality monitoring member further comprises: an auxiliary cleaning disc, a water quality detection sensor and a positioning screw; the auxiliary cleaning disc is fixedly installed on the output shaft of the electric telescopic rod, and the outer wall of the auxiliary cleaning disc is in contact with the inner wall of the circular protective cylinder; the water quality detection sensor is slidably installed on the mounting disc; the positioning screw is threadedly connected on the mounting disc, and the inner end of the positioning screw is in contact with the water quality detection sensor.
[0016] In at least some embodiments, the movable stabilizing member comprises: a circular mounting shaft, a movable stabilizing rod and a movable stabilizing plate; the circular mounting shaft is provided with four, and the four circular mounting shafts are fixedly installed on the rectangular floating frame; the movable stabilizing rod is provided with four, and the four movable stabilizing rods are rotatably installed on the four circular mounting shafts; the movable stabilizing plate is provided with four turns, and the four turns of movable stabilizing plates are fixedly installed on the exterior of the four movable stabilizing rods.
[0017] In at least some embodiments, the movable stabilizing member further comprises: an inclined auxiliary plate and a rectangular magnet; the inclined auxiliary plate is provided with four, and the four inclined auxiliary plates are fixedly installed on the four movable stabilizing rods; the rectangular magnet is provided with four, and the four rectangular magnets are fixedly installed on the four inclined auxiliary plates, and the two rectangular magnets on the left are in contact, and the two rectangular magnets on the right are in contact.
[0018] Compared with the prior art, the present application has the following beneficial effects:
[0019] 1、When the controller controls the double-shaft motor to work, the output shaft of the double-shaft motor drives the two circular winding wheels to rotate; when the output shaft of the double-shaft motor drives the two circular winding wheels to rotate, the two solid positioning seats move downward, which has an auxiliary positioning effect on the rectangular floating frame;
[0020] In addition, when the two solid positioning seats are in contact with the pool bottom, the two solid positioning seats stop moving, and the two steel wires move under the action of the two positioning detection frames and the two spiral springs; when one or both of the detection buttons are in a pressed state, the controller controls the double-shaft motor to stop working, so that the two steel wires are basically in a straightened state.
[0021] 2、The positioning screw is arranged, and the water quality detection sensor is positioned; when the output shaft of the electric telescopic rod is controlled to extend, the installation disc drives the water quality detection sensor to move downwards, so that the water quality detection sensor is inserted into the water to be monitored;
[0022] In addition, when the output shaft of the electric telescopic rod is controlled to retract, the installation disc drives the water quality detection sensor to move upwards, so that the water quality detection sensor is moved into the circular protective cylinder, the water quality detection sensor is protected, and the service life of the water quality detection sensor is prolonged; when the output shaft of the electric telescopic rod is controlled to retract, the auxiliary cleaning disc extrudes the air in the circular protective cylinder, so that the air in the circular protective cylinder is discharged through the two cleaning elbow pipes, the outer wall of the water quality detection sensor is cleaned, attachment of sundries on the outer wall of the water quality detection sensor is avoided, and the protection effect of the water quality detection sensor is improved.
[0023] 3、The four circular mounting shafts are arranged, so that the four movable stabilizing rods and the four movable stabilizing plates have a rotating effect; when the four movable stabilizing rods and the four movable stabilizing plates are in the upper position, the occupied area during transportation can be appropriately reduced, and transportation is facilitated; when the four movable stabilizing rods and the four movable stabilizing plates are in the lower position, the four movable stabilizing rods and the four movable stabilizing plates can be inserted into water, the resistance between the four movable stabilizing rods and the four movable stabilizing plates and water is increased, and the rectangular floating frame is more stable during use; the four rectangular magnets are arranged, the four movable stabilizing rods are positioned, and the four movable stabilizing rods and the four movable stabilizing plates are more stable when in the upper position; meanwhile, the two inclined auxiliary plates on the right side also shield the touch screen and the buttons on the controller, so that the touch screen and the buttons are prevented from being mistakenly touched. BRIEF DESCRIPTION OF DRAWINGS
[0024] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings of the embodiments will be briefly introduced below.
[0025] The drawings in the following description are only related to some embodiments of the present application, and are not limited to the present application.
[0026] In the drawings:
[0027] Figure 1 A perspective structural schematic view of the present application is shown;
[0028] Figure 2 A structural schematic view of the power supply installation part of the present application is shown;
[0029] Figure 3 A structural schematic view of the auxiliary positioning part of the present application is shown;
[0030] Figure 4 A structural schematic view of the present application Figure 1Partial enlarged structure schematic view of the middle A area;
[0031] Figure 5 The rear side view structure schematic view of the present application Figure 1 is shown.
[0032] Figure 6 The middle B area of the present application Figure 5 is shown.
[0033] Figure 7 The bottom view structure schematic view of the present application Figure 1 is shown.
[0034] Figure 8 The structure schematic view of the water quality monitoring member of the present application is shown.
[0035] Figure 9 The structure schematic view of the water quality monitoring member of the present application is shown.
[0036] Figure 10 The middle C area of the present application Figure 9 is shown.
[0037] Figure 11 The top view structure schematic view of the present application Figure 1 is shown.
[0038] Figure 12 The middle D area of the present application Figure 1 is shown.
[0039] List of reference signs:
[0040] 100, installation power supply member; 101, rectangular floating frame; 102, installation frame; 103, battery; 104, photovoltaic panel;
[0041] 200, auxiliary positioning member; 201, installation support; 202, double-shaft motor; 203, circular winding wheel; 204, steel wire rope; 205, solid positioning seat;
[0042] 300, positioning detection member; 301, positioning detection frame; 302, limiting stopper; 303, circular limiting ring; 304, spiral spring; 305, detection button;
[0043] 400, water quality monitoring member; 401, circular protection cylinder; 402, electric telescopic rod; 403, cleaning elbow; 404, installation disc; 405, auxiliary cleaning disc; 406, water quality detection sensor; 407, positioning screw;
[0044] 500, movable stabilizing member; 501, circular mounting shaft; 502, movable stabilizing rod; 503, movable stabilizing plate; 504, inclined auxiliary plate; 505, rectangular magnet;
[0045] 600, controller. DETAILED DESCRIPTION
[0046] In order to make the purpose, scheme and advantages of the technical solutions of the present application clearer, the technical solutions of the embodiments of the present application will be described clearly and completely below in conjunction with the drawings of specific embodiments of the present application. Unless otherwise specified, the terms used herein have the meanings commonly understood in the art. The same reference numerals in the drawings represent the same components.
[0047] Embodiment: Please refer to Figures 1 to 12 As shown: the present application provides a kind of field stone frog breeding water quality total nitrogen, phosphorus remote monitoring device, comprising: installation power supply 100, auxiliary positioning member 200, positioning detection member 300, water quality monitoring member 400 and movable stabilizing member 500;Auxiliary positioning member 200 is installed on installation power supply 100, auxiliary positioning member 200 is used to position installation power supply 100;Positioning detection member 300 is provided with two groups, and two groups of positioning detection member 300 are installed on installation power supply 100, two groups of positioning detection member 300 are used to detect the positioning condition of auxiliary positioning member 200;Water quality monitoring member 400 is installed on installation power supply 100;Movable stabilizing member 500 is installed on installation power supply 100, movable stabilizing member 500 is used to improve the stability when installation power supply 100 is used;Controller 600 is installed on the right side of installation power supply 100, and controller 600 is used to control auxiliary positioning member 200 and water quality monitoring member 400;Installation power supply 100 includes: rectangular floating frame 101, installation frame 102, battery 103 and photovoltaic panel 104;Installation frame 102 is fixedly installed at the top of rectangular floating frame 101;Battery 103 is fixedly installed on the left side of installation frame 102, and battery 103 is electrically connected with controller 600;Photovoltaic panel 104 is fixedly installed at the top of installation frame 102, and photovoltaic panel 104 is electrically connected with battery 103.
[0048] In the embodiments of the present disclosure, as Figure 3 、 Figure 4 and Figure 6As shown, the auxiliary positioning member 200 comprises a mounting bracket 201, a double-shaft motor 202 and two circular winding wheels 203; the mounting bracket 201 is fixedly installed on the mounting frame 102; the double-shaft motor 202 is fixedly installed on the mounting bracket 201, and the double-shaft motor 202 is electrically connected with the controller 600; the two circular winding wheels 203 are fixedly installed on the output shaft of the double-shaft motor 202; the auxiliary positioning member 200 further comprises two steel wires 204 and two solid positioning seats 205; the two steel wires 204 are installed on the two circular winding wheels 203; the two solid positioning seats 205 are fixedly installed on the two steel wires 204;
[0049] The positioning detection member 300 comprises a positioning detection frame 301, a limiting stop frame 302 and a circular limiting ring 303; the positioning detection frame 301 is slidingly installed on the mounting frame 102, and the steel wire 204 passes through the positioning detection frame 301; the limiting stop frame 302 is fixedly installed on the outer end of the positioning detection frame 301; the circular limiting ring 303 is fixedly installed on the outer portion of the positioning detection frame 301; the positioning detection member 300 further comprises a spiral spring 304 and a detection button 305; the spiral spring 304 is sleeved on the outer portion of the positioning detection frame 301, and the spiral spring 304 is located between the mounting frame 102 and the circular limiting ring 303; the detection button 305 is fixedly installed on the limiting stop frame 302, and the detection button 305 is electrically connected with the controller 600;
[0050] The specific action is that: since the double-shaft motor 202 is fixedly installed on the mounting bracket 201, and the double-shaft motor 202 is electrically connected with the controller 600, and the two circular winding wheels 203 are fixedly installed on the output shaft of the double-shaft motor 202, when the controller 600 controls the double-shaft motor 202 to work, the output shaft of the double-shaft motor 202 drives the two circular winding wheels 203 to rotate; since the two steel wires 204 are installed on the two circular winding wheels 203, and the two solid positioning seats 205 are fixedly installed on the two steel wires 204, when the output shaft of the double-shaft motor 202 drives the two circular winding wheels 203 to rotate, the two solid positioning seats 205 move downward, which has an auxiliary positioning effect on the rectangular floating frame 101;
[0051] In addition, as the two steel wires 204 pass through the positioning detection frame 301, and the two spiral springs 304 are sleeved outside the two positioning detection frames 301, and the two spiral springs 304 are located between the mounting frame 102 and the two circular limiting rings 303, when the two solid positioning seats 205 are not in contact with the pool bottom, the two steel wires 204 are in a tension state, and the two spiral springs 304 are compressed; similarly, when the two solid positioning seats 205 are in contact with the pool bottom, the two solid positioning seats 205 stop moving, and the two steel wires 204 will be loosened; as the gravity of the solid positioning seat 205 is greater than the elastic force of the spiral spring 304, when the two solid positioning seats 205 stop moving and the two steel wires 204 are loosened, the two steel wires 204 move under the action of the two positioning detection frames 301 and the two spiral springs 304; and as the two limiting stop frames 302 are fixedly installed at the outer ends of the two positioning detection frames 301, and the two detection buttons 305 are fixedly installed on the two limiting stop frames 302, and the two detection buttons 305 are electrically connected with the controller 600, when one or both of the detection buttons 305 are in a pressed state, the controller 600 controls the double-shaft motor 202 to stop working, so that the two steel wires 204 are basically in a straightened state.
[0052] In the embodiment of the present disclosure, as shown in Figures 8 to 10 The water quality monitoring member 400 includes a circular protective cylinder 401, an electric telescopic rod 402, a cleaning elbow pipe 403, and a mounting disc 404; the circular protective cylinder 401 is fixedly installed on the mounting frame 102; the electric telescopic rod 402 is fixedly installed inside the circular protective cylinder 401, and the electric telescopic rod 402 is electrically connected with the controller 600; the cleaning elbow pipe 403 is provided with two, and the two cleaning elbow pipes 403 are fixedly installed on the front and back of the circular protective cylinder 401; the mounting disc 404 is fixedly installed on the output shaft of the electric telescopic rod 402, and the outer wall of the mounting disc 404 is in contact with the inner wall of the circular protective cylinder 401; the water quality monitoring member 400 further includes an auxiliary cleaning disc 405, a water quality detection sensor 406, and a positioning screw 407; the auxiliary cleaning disc 405 is fixedly installed on the output shaft of the electric telescopic rod 402, and the outer wall of the auxiliary cleaning disc 405 is in contact with the inner wall of the circular protective cylinder 401; the water quality detection sensor 406 is slidably installed on the mounting disc 404; the positioning screw 407 is threadedly connected to the mounting disc 404, and the inner end of the positioning screw 407 is in contact with the water quality detection sensor 406;
[0053] The specific action is that: the positioning screw 407 is screwed on the mounting disc 404, and the inner end of the positioning screw 407 is in contact with the water quality detection sensor 406, thereby positioning the water quality detection sensor 406; and because the mounting disc 404 is fixedly installed on the output shaft of the electric telescopic rod 402, and the water quality detection sensor 406 is installed on the mounting disc 404, when the controller 600 controls the output shaft of the electric telescopic rod 402 to extend, the mounting disc 404 drives the water quality detection sensor 406 to move downward, so that the water quality detection sensor 406 is inserted into the water to be monitored;
[0054] In addition, because the outer wall of the mounting disc 404 is in contact with the inner wall of the circular protective cylinder 401, when the controller 600 controls the output shaft of the electric telescopic rod 402 to retract, the mounting disc 404 drives the water quality detection sensor 406 to move upward, so that the water quality detection sensor 406 moves into the circular protective cylinder 401, thereby protecting the water quality detection sensor 406, which is conducive to prolonging the service life of the water quality detection sensor 406; and because the two cleaning elbow pipes 403 are fixedly installed on the front and rear sides of the circular protective cylinder 401, and the auxiliary cleaning disc 405 is fixedly installed on the output shaft of the electric telescopic rod 402, and the outer wall of the auxiliary cleaning disc 405 is in contact with the inner wall of the circular protective cylinder 401, when the controller 600 controls the output shaft of the electric telescopic rod 402 to retract, the auxiliary cleaning disc 405 extrudes the air in the circular protective cylinder 401, so that the air in the circular protective cylinder 401 is discharged through the two cleaning elbow pipes 403, thereby cleaning the outer wall of the water quality detection sensor 406, avoiding the attachment of sundries on the outer wall of the water quality detection sensor 406, and improving the protection effect of the water quality detection sensor 406.
[0055] In the embodiment, the staff appropriately adjusts the intermittent working time of the electric telescopic rod 402 according to the monitoring requirements, so as to reduce the residence time of the water quality detection sensor 406 in the water.
[0056] In the embodiment, the staff appropriately adjusts the intermittent working time of the electric telescopic rod 402 according to the monitoring requirements, so as to reduce the residence time of the water quality detection sensor 406 in the water. Figure 1 and Figure 12As shown, the movable stabilizer 500 comprises four circular mounting shafts 501, four movable stabilizer rods 502 and four movable stabilizer plates 503; the four circular mounting shafts 501 are fixedly installed on the rectangular floating frame 101; the four movable stabilizer rods 502 are rotatably installed on the four circular mounting shafts 501; the four movable stabilizer plates 503 are fixedly installed outside the four movable stabilizer rods 502; the movable stabilizer 500 further comprises four inclined auxiliary plates 504 and four rectangular magnets 505; the four inclined auxiliary plates 504 are fixedly installed on the four movable stabilizer rods 502; the four rectangular magnets 505 are fixedly installed on the four inclined auxiliary plates 504, and the two rectangular magnets 505 on the left side are in contact, and the two rectangular magnets 505 on the right side are in contact;
[0057] The specific role is that: because the four circular mounting shafts 501 are fixedly installed on the rectangular floating frame 101, the four movable stabilizer rods 502 are rotatably installed on the four circular mounting shafts 501, and the four movable stabilizer plates 503 are fixedly installed outside the four movable stabilizer rods 502, the four movable stabilizer rods 502 and the four movable stabilizer plates 503 have a rotating effect; when the four movable stabilizer rods 502 and the four movable stabilizer plates 503 are in the upper position, the occupied area during transportation can be appropriately reduced, which is conducive to transportation; when the four movable stabilizer rods 502 and the four movable stabilizer plates 503 are in the lower position, the four movable stabilizer rods 502 and the four movable stabilizer plates 503 can be inserted into the water, increasing the resistance between them and the water, making the rectangular floating frame 101 more stable during use; because the four inclined auxiliary plates 504 are fixedly installed on the four movable stabilizer rods 502, and the four rectangular magnets 505 are fixedly installed on the four inclined auxiliary plates 504, the four movable stabilizer rods 502 are positioned, making the four movable stabilizer rods 502 and the four movable stabilizer plates 503 more stable when they are in the upper position; at the same time, the two inclined auxiliary plates 504 on the right side also shield the touch screen and the buttons on the controller 600, avoiding the touch screen and the buttons from being mistakenly touched.
[0058] The specific use and role of the embodiment are as follows:
[0059] When the application is used, first, the staff places the rectangular floating frame 101 at a suitable position in the culture pond, and then turns the four movable stabilizing rods 502 outward, so that the four movable stabilizing rods 502 and the four movable stabilizing plates 503 can be inserted into the water, increasing the resistance between them and the water, so that the rectangular floating frame 101 is more stable when in use; then the controller 600 controls the work of the double-shaft motor 202, at this time, the output shaft of the double-shaft motor 202 drives the two circular winding wheels 203 to rotate; when the output shaft of the double-shaft motor 202 drives the two circular winding wheels 203 to rotate, the two solid positioning seats 205 move downward, which has an auxiliary positioning effect on the rectangular floating frame 101; when the two solid positioning seats 205 contact the bottom of the pond, the two solid positioning seats 205 stop moving, and the two steel wires 204 move under the action of the two positioning detection frames 301 and the two spiral springs 304; when one or both detection buttons 305 are in a pressed state, the controller 600 controls the double-shaft motor 202 to stop working, so that the two steel wires 204 are basically in a straightened state; when the controller 600 controls the output shaft of the electric telescopic rod 402 to extend, the installation disc 404 drives the water quality detection sensor 406 to move downward, so that the water quality detection sensor 406 is inserted into the water to be monitored; when the controller 600 controls the output shaft of the electric telescopic rod 402 to retract, the installation disc 404 drives the water quality detection sensor 406 to move upward, so that the water quality detection sensor 406 moves into the circular protective cylinder 401, which has a protective effect on the water quality detection sensor 406, and is beneficial to improve the service life of the water quality detection sensor 406; when the controller 600 controls the output shaft of the electric telescopic rod 402 to retract, the auxiliary cleaning disc 405 has a squeezing effect on the air in the circular protective cylinder 401, so that the air in the circular protective cylinder 401 is discharged through the two cleaning elbow pipes 403, which has a cleaning effect on the outer wall of the water quality detection sensor 406, avoids the attachment of sundries on the outer wall of the water quality detection sensor 406, and improves the protection effect of the water quality detection sensor 406; the staff adjusts the intermittent working time of the electric telescopic rod 402 according to the monitoring requirements, so as to reduce the residence time of the water quality detection sensor 406 in the water.
[0060] In this paper, the following points need attention:
[0061] 1. The drawings of the embodiments of the present disclosure only relate to the structures involved in the embodiments of the present disclosure, and other structures can refer to the usual design.
[0062] 2. In the case of no conflict, the embodiments of the present disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0063] The above merely describes specific embodiments of the present disclosure, but the protection scope of the present disclosure is not limited thereto, and any person skilled in the art can easily think of changes or replacements within the technical scope disclosed by the present disclosure, which should be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.
Claims
1. A remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs, comprising: The system includes a power supply unit (100), an auxiliary positioning unit (200), a positioning detection unit (300), a water quality monitoring unit (400), and a movable stabilizing unit (500); characterized in that the auxiliary positioning unit (200) is installed on the power supply unit (100) and is used to position the power supply unit (100); the positioning detection unit (300) is provided in two sets, and the two sets of positioning detection units (300) are installed on the power supply unit (100), and the two sets of positioning detection units (300) are... 0) Used to detect the positioning status of the auxiliary positioning component (200); the water quality monitoring component (400) is installed on the installation power supply component (100); the movable stabilizer (500) is installed on the installation power supply component (100), and the movable stabilizer (500) is used to improve the stability of the installation power supply component (100) during use; a controller (600) is installed on the right side of the installation power supply component (100), and the controller (600) is used to control the auxiliary positioning component (200) and the water quality monitoring component (400).
2. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 1, characterized in that, The power supply installation component (100) includes: a rectangular floating frame (101), a mounting frame (102), a battery (103), and a photovoltaic panel (104); the mounting frame (102) is fixedly installed on the top of the rectangular floating frame (101); the battery (103) is fixedly installed on the left side of the mounting frame (102), and the battery (103) is electrically connected to the controller (600); the photovoltaic panel (104) is fixedly installed on the top of the mounting frame (102), and the photovoltaic panel (104) is electrically connected to the battery (103).
3. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 2, characterized in that, The auxiliary positioning component (200) includes: a mounting bracket (201), a dual-axis motor (202), and a circular take-up reel (203); the mounting bracket (201) is fixedly mounted on the mounting frame (102); the dual-axis motor (202) is fixedly mounted on the mounting bracket (201), and the dual-axis motor (202) is electrically connected to the controller (600); there are two circular take-up reels (203), and the two circular take-up reels (203) are fixedly mounted on the output shaft of the dual-axis motor (202).
4. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 3, characterized in that, The auxiliary positioning component (200) further includes: a steel wire rope (204) and a solid positioning seat (205); there are two steel wire ropes (204), and the two steel wire ropes (204) are installed on two circular winding wheels (203); there are two solid positioning seats (205), and the two solid positioning seats (205) are fixedly installed on the two steel wire ropes (204).
5. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 4, characterized in that, The positioning detection component (300) includes: a positioning detection frame (301), a limiting stop (302), and a circular limiting ring (303); the positioning detection frame (301) is slidably mounted on the mounting frame (102), and a steel wire rope (204) passes through the positioning detection frame (301); the limiting stop (302) is fixedly mounted on the outer end of the positioning detection frame (301); and the circular limiting ring (303) is fixedly mounted on the outside of the positioning detection frame (301).
6. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 5, characterized in that, The positioning detection component (300) further includes: a helical spring (304) and a detection button (305); the helical spring (304) is sleeved on the outside of the positioning detection frame (301), and the helical spring (304) is located between the mounting frame (102) and the circular limiting ring (303); the detection button (305) is fixedly installed on the limiting stop (302), and the detection button (305) is electrically connected to the controller (600).
7. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 2, characterized in that, The water quality monitoring device (400) includes: a circular protective cylinder (401), an electric telescopic rod (402), a cleaning bend (403), and a mounting disc (404); the circular protective cylinder (401) is fixedly installed on the mounting frame (102); the electric telescopic rod (402) is fixedly installed inside the circular protective cylinder (401), and the electric telescopic rod (402) is electrically connected to the controller (600); there are two cleaning bends (403), and the two cleaning bends (403) are fixedly installed on the front and rear sides of the circular protective cylinder (401); the mounting disc (404) is fixedly installed on the output shaft of the electric telescopic rod (402), and the outer wall of the mounting disc (404) is in contact with the inner wall of the circular protective cylinder (401).
8. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 7, characterized in that, The water quality monitoring device (400) further includes: an auxiliary cleaning disc (405), a water quality detection sensor (406), and a positioning screw (407); the auxiliary cleaning disc (405) is fixedly installed on the output shaft of the electric telescopic rod (402), and the outer wall of the auxiliary cleaning disc (405) is in contact with the inner wall of the circular protective cylinder (401); the water quality detection sensor (406) is slidably installed on the mounting disc (404); the positioning screw (407) is threadedly connected to the mounting disc (404), and the inner end of the positioning screw (407) is in contact with the water quality detection sensor (406).
9. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 2, characterized in that, The movable stabilizer (500) includes: a circular mounting shaft (501), a movable stabilizer rod (502), and a movable stabilizer plate (503); there are four circular mounting shafts (501), and the four circular mounting shafts (501) are fixedly mounted on the rectangular floating frame (101); there are four movable stabilizer rods (502), and the four movable stabilizer rods (502) are rotatably mounted on the four circular mounting shafts (501); there are four movable stabilizer plates (503), and the four movable stabilizer plates (503) are fixedly mounted on the outside of the four movable stabilizer rods (502).
10. The remote monitoring device for total nitrogen and phosphorus content in water used for raising wild stone frogs according to claim 9, characterized in that, The movable stabilizer (500) further includes: a tilting auxiliary plate (504) and a rectangular magnet (505); there are four tilting auxiliary plates (504) in total, and the four tilting auxiliary plates (504) are fixedly installed on four movable stabilizer rods (502); there are four rectangular magnets (505) in total, and the four rectangular magnets (505) are fixedly installed on four tilting auxiliary plates (504), and the two rectangular magnets (505) on the left side are in contact, and the two rectangular magnets (505) on the right side are in contact.