Full-automatic ozone equipment for breeding and control system
By designing a fully automatic ozone device equipped with humidity sensors, ozone concentration sensors and PLC controllers, combined with ozone generators, motors and atomizers, the problem that existing equipment cannot quickly diffuse ozone and regulate environmental humidity is solved, efficient sterilization and air purification are achieved, and the functionality of the equipment is improved.
Patent Information
- Application Number
- CN202510526033.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-05-30
AI Technical Summary
Existing ozone equipment cannot quickly spread ozone during the sterilization process, which affects the sterilization rate, and cannot adjust the environmental humidity and perform gas purification, affecting the sterilization effect and air quality.
Design a fully automatic ozone breeding equipment, equipped with humidity sensors, ozone concentration sensors, PLC controllers, touch screens, indicator lights and ozone reduction machines. Combined with ozone generators, motors and atomizers, the rapid diffusion of ozone and the regulation of ambient humidity through the exhaust mechanism and drive mechanism, and air purification is carried out after sterilization.
It improves the efficiency and effect of sterilization, ensures the sterilization environment, reduces the ozone concentration, ensures the air quality, and improves the functionality of the equipment.
Smart Images

Figure CN120053712A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to an ozone device, in particular to a fully automatic ozone device for aquaculture. The present invention also relates to a control system, in particular to a control system for a fully automatic ozone device for aquaculture, and belongs to the technical field of sterilization equipment. Background Art
[0002] As a strongly oxidizing gas, ozone is an extremely effective sterilization "weapon" in the aquaculture field. It can quickly decompose the cell walls and cell membranes of microorganisms such as bacteria and viruses, destroy their internal structures and biological activities, thereby achieving high-efficiency sterilization. Compared with traditional chemical disinfectants, ozone will decompose into oxygen by itself after sterilization, leaving no residue and no pollution, and will not cause secondary pollution to the aquaculture environment, nor will it leave harmful substances on aquaculture products, ensuring food safety.
[0003] Currently, during the process of using an ozone device for sterilization, ozone can only be discharged at fixed points and cannot be quickly diffused, which affects the sterilization rate. At the same time, it is unable to provide a suitable environmental humidity for sterilization. A dry environment will cause the cell walls and cell membranes of microorganisms to dehydrate, forming a protective structure and reducing the sterilization effect of ozone. In addition, after sterilization, the gas cannot be quickly purified, which affects the air quality of the aquaculture environment and has low functionality.
[0004] Therefore, a fully automatic ozone device for aquaculture and a control system are designed to optimize the above problems. Summary of the Invention
[0005] The main object of the present invention is to provide a fully automatic ozone equipment and control system for aquaculture. By providing a humidity sensor, an ozone concentration sensor, a PLC controller, a touch screen, an indicator light and an ozone reducer on the chassis, and then cooperating with the control system composed of an ozone generator, a motor and an atomizer inside the installation box, during the use of the device, it can not only detect the environmental humidity, but also adjust the environmental humidity during sterilization to ensure the sterilization environment and improve the sterilization effect. At the same time, it can purify the air after sterilization, reduce the ozone concentration, ensure the air quality, and improve the functional use of the device. By providing an exhaust mechanism composed of an inner sleeve, a first telescopic tube, an outer sleeve, a hinge seat, an exhaust pipe, a second telescopic tube, an exhaust hole, an arc plate, an arc groove, a screw rod, a wing nut, a third shaft rod, a universal joint and a fourth shaft rod on the top of the installation box, and cooperating with a drive mechanism composed of a transmission chamber, a motor, a main gear, a third transmission gear and a rotating rod for use, the fourth shaft rod is installed on the main gear, and when the gas is discharged, it can simultaneously control the exhaust pipe to rotate around the third shaft rod, increase the air flow rate, and by adjusting the angle between the third shaft rod and the fourth shaft rod, further control the tilt angle of the exhaust pipe. In addition, by cooperating with a rotating mechanism composed of a first shaft rod, an internal gear ring, a first transmission gear, a second shaft rod and a second transmission gear, it can simultaneously control the exhaust pipe to revolve around the fourth shaft rod, enabling the device to quickly sterilize and circulate the gas, with higher practicability. By a mobile fixing mechanism composed of universal wheels, a base, a through hole, an electric telescopic rod and a sliding rod at the bottom of the chassis, during the use process, the use height of the equipment can be adjusted to facilitate the rapid release of gas and make the use more convenient.
[0006] The object of the present invention can be achieved by adopting the following technical solutions: A fully automatic ozone equipment for aquaculture, including a chassis, a groove is opened at the top of the chassis, an installation box is rotatably installed inside the groove, a bottom plate is fixedly installed at the bottom end of the installation box, a rotating mechanism for controlling the rotation of the installation box is provided at the bottom of the bottom plate, an ozone generator is installed at one end inside the installation box, a fan blade is rotatably installed at the inner bottom of the installation box, a drive mechanism for controlling the rotation of the fan blade is provided at the bottom of the installation box, a one-way intake valve is installed on the side of the installation box, an atomizer is installed on the side of the installation box away from the ozone generator, a water tank is opened on the outside of the installation box, an exhaust mechanism is provided at the top of the installation box, an ozone reducer is installed inside the chassis, and a mobile fixing mechanism is provided at the bottom end of the chassis.
[0007] Preferably, the driving mechanism includes a transmission chamber, a motor, a main gear, a third transmission gear, and a rotating rod. The transmission chamber is opened at the bottom of the mounting box. The inner bottom of the transmission chamber is equipped with a motor. The output end of the motor is equipped with a main gear. A third transmission gear is meshed and installed on the side of the main gear. A rotating rod is installed on the top of the third transmission gear. The rotating rod extends into the interior of the mounting box. The fan blade is fixed at the top end of the rotating rod. The motor is electrically connected to the PLC controller through a wire.
[0008] Preferably, the rotating mechanism includes a first shaft rod, an internal gear ring, a first transmission gear, a second shaft rod, and a second transmission gear. The first shaft rod is fixed at the bottom end of the bottom plate and is rotatably connected to the inner bottom end of the groove. The inner bottom end of the groove is fixed with an internal gear ring. A first transmission gear is meshed and installed inside the internal gear ring. The top of the first transmission gear is fixed with a second shaft rod. The second shaft rod penetrates into the interior of the transmission chamber and is rotatably connected to the bottom plate. The top end of the second shaft rod is fixed with a second transmission gear that meshes with the main gear.
[0009] Preferably, the exhaust mechanism includes an inner sleeve, a first telescopic tube, an outer sleeve, a hinge seat, an exhaust pipe, a second telescopic tube, exhaust holes, an angle adjustment component, and a rotating component. The inner sleeve is arranged on the top of the mounting box. A first telescopic tube is provided between the bottom end of the inner sleeve and the mounting box. The top end of the inner sleeve is rotatably installed with an outer sleeve. Hinge seats are evenly hinged and installed on the outer side of the outer sleeve. Exhaust pipes are installed on all the hinge seats. Second telescopic tubes are installed between the ends of the exhaust pipes and the outer sleeve. Exhaust holes are evenly opened on the outer side of the exhaust pipes. An angle adjustment component for tilting and adjusting the inner sleeve is provided on the top of the mounting box. A rotating component for controlling the rotation of the outer sleeve is provided inside the outer sleeve.
[0010] Preferably, there are four groups of exhaust pipes, and the included angle between the exhaust pipes is 90°. The shape of the exhaust pipe is rectangular.
[0011] Preferably, the angle adjustment component includes an arc-shaped plate, an arc-shaped groove, a screw rod, and a wing nut. The arc-shaped plates are symmetrically arranged on the top of the mounting box, and the inner sleeve is located between the arc-shaped plates. Arc-shaped grooves are opened on all the arc-shaped plates. Screw rods are symmetrically installed on both sides of the inner sleeve, and the screw rods all pass through the interior of the arc-shaped grooves. Wing nuts are installed at the ends of the arc-shaped grooves.
[0012] Preferably, the rotating component includes a third shaft rod, a universal joint, and a fourth shaft rod. The third shaft rod is fixedly installed on the inner top of the outer sleeve. A universal joint is installed at the bottom end of the third shaft rod. A fourth shaft rod is installed at the bottom end of the universal joint. The bottom end of the fourth shaft rod is fixedly connected to the main gear.
[0013] Preferably, the mobile fixing mechanism includes universal wheels, a base, a through hole, an electric telescopic rod, and a sliding rod. The base is located below the chassis. The electric telescopic rod is vertically installed at the inner bottom of the chassis, and the output end of the electric telescopic rod is connected to the base. The universal wheels are evenly installed at the four corners of the bottom of the chassis. A through hole matching the universal wheels is provided on the base, and the electric telescopic rod is electrically connected to the PLC controller through a wire.
[0014] Preferably, sliding rods are evenly and vertically installed at the top end of the base, and the sliding rods are slidably connected to the chassis.
[0015] The present invention also provides a control system for a fully automatic ozone device for aquaculture, including the following steps: A PLC controller is installed at the outer bottom of the chassis. A humidity sensor is installed at the bottom of the front end of the chassis. An ozone concentration sensor is arranged on the side of the humidity sensor. A touch screen is installed at the top of the front end of the chassis. An indicator light is arranged on the top of the touch screen; The output ends of the humidity sensor and the ozone concentration sensor are electrically connected to the PLC controller through wires. The touch screen is electrically connected to the PLC controller through a wire. The output end of the PLC controller is electrically connected to the indicator light, ozone generator, drive mechanism, atomizer, ozone reducer, and mobile fixing mechanism through wires.
[0016] The beneficial effects of the present invention are as follows: A fully automatic ozone device and control system for aquaculture provided by the present invention, by setting a humidity sensor, an ozone concentration sensor, a PLC controller, a touch screen, an indicator light, and an ozone reducer on the chassis, and then cooperating with the control system composed of an ozone generator, a motor, and an atomizer inside the installation box, enables the device to not only detect the environmental humidity during use, but also adjust the environmental humidity during sterilization to ensure the sterilization environment and improve the sterilization effect. At the same time, it can purify the air after sterilization, reduce the ozone concentration, ensure the air quality, and improve the use functionality of the device; By setting an exhaust mechanism composed of an inner sleeve, a first telescopic tube, an outer sleeve, a hinge seat, an exhaust pipe, a second telescopic tube, exhaust holes, an arc plate, an arc groove, a screw, a wing nut, a third shaft rod, a universal joint, and a fourth shaft rod on the top of the installation box, and cooperating with the drive mechanism composed of a transmission chamber, a motor, a main gear, a third transmission gear, and a rotating rod for use, the fourth shaft rod is installed on the main gear, which can control the exhaust pipe to rotate around the third shaft rod when the gas is discharged, increase the air flow rate, and control the inclination angle of the exhaust pipe by adjusting the angle between the third shaft rod and the fourth shaft rod. Additionally, cooperating with the rotating mechanism composed of a first shaft rod, an internal gear ring, a first transmission gear, a second shaft rod, and a second transmission gear, it can control the exhaust pipe to revolve around the fourth shaft rod simultaneously, enabling the device to quickly perform sterilization and gas circulation, with higher practicality; The mobile fixing mechanism composed of universal wheels at the bottom of the chassis, the base, the through port, the electric telescopic rod, and the sliding rod can adjust the usage height of the device during use to facilitate the rapid release of gas and make it more convenient to use. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a side view of the usage state of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention; Figure 2 It is a side sectional view of the initial state of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention; Figure 3 It is a drive mechanism diagram of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention; Figure 4 It is a front view of the exhaust mechanism of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention; Figure 5 It is a sectional view of the exhaust mechanism of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention; Figure 6 It is a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention Figure 4 enlarged view at A; Figure 7 It is a top view of the top of the chassis of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention; Figure 8 It is a control system diagram of a preferred embodiment in a full-automatic ozone device and control system for aquaculture according to the present invention.
[0018] In the figure: 1, chassis; 2, PLC controller; 3, humidity sensor; 4, ozone concentration sensor; 5, touch screen; 6, indicator light; 7, groove; 8, installation box; 9, bottom plate; 10, rotating mechanism; 1001, first shaft rod; 1002, internal gear ring; 1003, first transmission gear; 1004, second shaft rod; 1005, second transmission gear; 11, ozone generator; 12, fan blade; 13, drive mechanism; 1301, transmission chamber; 1302, motor; 1303, main gear; 1304, third transmission gear; 1305, rotating rod; 14, one-way intake valve; 15. Exhaust mechanism; 1501. Inner sleeve; 1502. First telescopic tube; 1503. Outer sleeve; 1504. Hinge seat; 1505. Exhaust pipe; 1506. Second telescopic tube; 1507. Exhaust hole; 1508. Arc plate; 1509. Arc groove; 1510. Screw; 1511. Wing nut; 1512. Third shaft rod; 1513. Universal joint; 1514. Fourth shaft rod; 16. Water tank; 17. Atomizer; 18. Ozone reduction machine; 19. Mobile fixing mechanism; 1901. Universal wheel; 1902. Base; 1903. Through hole; 1904. Electric telescopic rod; 1905. Slide rod. Specific implementation manner
[0019] To make the technical solutions of the present invention clearer and more definite for those skilled in the art, the present invention will be further described in detail below in conjunction with embodiments and the accompanying drawings. However, the implementation manners of the present invention are not limited thereto.
[0020] As Figures 1-8 shown, this embodiment provides a fully automatic ozone equipment for aquaculture, including a chassis 1. A groove 7 is opened at the top of the chassis 1. An installation box 8 is rotatably installed inside the groove 7. A bottom plate 9 is fixedly installed at the bottom end of the installation box 8. A rotating mechanism 10 for controlling the rotation of the installation box 8 is provided at the bottom of the bottom plate 9. An ozone generator 11 is installed at one end inside the installation box 8. A fan blade 12 is rotatably installed at the inner bottom of the installation box 8. A driving mechanism 13 for controlling the rotation of the fan blade 12 is provided at the bottom of the installation box 8. A one-way intake valve 14 is installed on the side of the installation box 8. An atomizer 17 is installed on the side of the installation box 8 away from the ozone generator 11. A water tank 16 is opened on the outer side of the installation box 8. An exhaust mechanism 15 is provided at the top of the installation box 8. An ozone reduction machine 18 is installed inside the chassis 1. A mobile fixing mechanism 19 is provided at the bottom end of the chassis 1.
[0021] In the present invention, the telescopic tubes adopted are all made of thermoplastic elastomer, which combines the elasticity of rubber and the processing characteristics of plastic and has good chemical corrosion resistance.
[0022] Overall working principle: Click the start switch on the touch screen 5, use the humidity sensor 3 to detect the ambient humidity, and transmit the detection result to the inside of the PLC controller 2 for recording. When the ambient humidity is less than the set threshold, the PLC controller 2 controls the atomizer 17 to start, generate water mist, and the indicator light 6 lights up and shows red, and controls the fan blade 12 to rotate to discharge the water mist from the exhaust mechanism 15. When the humidity collected by the humidity sensor 3 is greater than or equal to the set value, humidification is performed to increase the humidity to 50%-70%, which can cause microbial cells to swell. The PLC controller 2 controls the atomizer 17 to turn off and stop humidification. After the environmental humidification is completed, when the ozone concentration collected by the ozone concentration sensor 4 is less than the lower limit of the concentration set inside the PLC controller 2, the PLC controller 2 controls the ozone generator 11 to start generating ozone, and uses the rotation of the fan blade 12 to discharge the ozone from the exhaust mechanism 15 to the outside. When the concentration collected by the ozone concentration sensor 4 is greater than or equal to the set value, the operation time of the ozone generator 11 starts to count down. After the countdown ends, the PLC controller 2 controls the ozone generator 11 to turn off and stop sterilization. After the sterilization is completed, the PLC controller 2 controls the ozone reduction machine 18 to start to purify the environment and reduce the ozone concentration. When the ozone concentration collected by the ozone concentration sensor 4 is less than the set threshold, the ozone reduction machine 18 is turned off, and at this time the indicator light 6 shows green, and the sterilization is completed.
[0023] In this embodiment, the driving mechanism 13 includes a transmission bin 1301, a motor 1302, a main gear 1303, a third transmission gear 1304, and a rotating rod 1305. The transmission bin 1301 is opened at the bottom of the installation box 8. The inner bottom of the transmission bin 1301 is provided with a motor 1302. The output end of the motor 1302 is provided with a main gear 1303. A third transmission gear 1304 is meshed and installed on the side of the main gear 1303. The top of the third transmission gear 1304 is provided with a rotating rod 1305. The rotating rod 1305 extends into the installation box 8. The fan blade 12 is fixed at the top of the rotating rod 1305. The motor 1302 is electrically connected to the PLC controller 2 through a wire.
[0024] Local working principle: When driving and controlling the fan blade 12, start the motor 1302 to drive the main gear 1303 to rotate. The main gear 1303 drives the third transmission gear 1304 to rotate. The third transmission gear 1304 drives the fan blade 12 to rotate through the rotating rod 1305.
[0025] In this embodiment, the rotating mechanism 10 includes a first shaft rod 1001, an internal gear ring 1002, a first transmission gear 1003, a second shaft rod 1004, and a second transmission gear 1005. The first shaft rod 1001 is fixed to the bottom end of the bottom plate 9 and is rotatably connected to the inner bottom end of the groove 7. The inner bottom end of the groove 7 is fixed with the internal gear ring 1002. The first transmission gear 1003 is meshingly installed inside the internal gear ring 1002. The top of the first transmission gear 1003 is fixed with the second shaft rod 1004. The second shaft rod 1004 penetrates into the inside of the transmission chamber 1301 and is rotatably connected to the bottom plate 9. The top end of the second shaft rod 1004 is fixed with a second transmission gear 1005 that meshes with the main gear 1303.
[0026] Local working principle: When the main gear 1303 is driven by the motor 1302 to rotate, the second transmission gear 1005 will be driven by the main gear 1303. The second transmission gear 1005 drives the first transmission gear 1003 to rotate through the second shaft rod 1004. The first transmission gear 1003 rotates around the internal gear ring 1002, thereby controlling the installation box 8 to rotate with the first shaft rod 1001 as the axis.
[0027] In this embodiment, the exhaust mechanism 15 includes an inner sleeve 1501, a first telescopic tube 1502, an outer sleeve 1503, a hinge seat 1504, an exhaust pipe 1505, a second telescopic tube 1506, exhaust holes 1507, an angle adjustment component, and a rotation component. The inner sleeve 1501 is arranged on the top of the installation box 8. A first telescopic tube 1502 is provided between the bottom end of the inner sleeve 1501 and the installation box 8. The top end of the inner sleeve 1501 is rotatably installed with the outer sleeve 1503. The outer side of the outer sleeve 1503 is evenly hinged with hinge seats 1504. Exhaust pipes 1505 are installed on the hinge seats 1504. Second telescopic tubes 1506 are installed between the ends of the exhaust pipes 1505 and the outer sleeve 1503. Exhaust holes 1507 are evenly opened on the outer side of the exhaust pipes 1505. An angle adjustment component for tilting and adjusting the inner sleeve 1501 is provided on the top of the installation box 8. A rotation component for controlling the rotation of the outer sleeve 1503 is provided inside the outer sleeve 1503.
[0028] Local working principle: Before exhausting, according to the usage requirements, use the angle adjustment component to adjust the inclination angle of the exhaust pipe 1505 at the end of the inner sleeve 1501. The gas passes through the first telescopic tube 1502, the inner sleeve 1501, and the outer sleeve 1503, and then is discharged from the exhaust pipe 1505. In addition, during the gas discharge process, use the rotation component to control the outer sleeve 1503 to drive the exhaust pipe 1505 to rotate, accelerating the air flow.
[0029] In this embodiment, four groups of exhaust pipes 1505 are provided, and the included angle between the exhaust pipes 1505 is 90°. The shape of the exhaust pipe 1505 is rectangular.
[0030] Local working principle: By setting multiple exhaust pipes 1505, the exhaust effect can be improved, and the environmental humidification and sterilization can be accelerated.
[0031] In this embodiment, the angle adjustment assembly includes an arc plate 1508, an arc groove 1509, a screw rod 1510 and a wing nut 1511. The arc plates 1508 are symmetrically arranged on the top of the installation box 8, and the inner sleeve 1501 is located between the arc plates 1508. Arc grooves 1509 are provided on the arc plates 1508. Screw rods 1510 are symmetrically installed on both sides of the inner sleeve 1501, and the screw rods 1510 all pass through the inside of the arc grooves 1509. Wing nuts 1511 are installed at the ends of the arc grooves 1509.
[0032] Local working principle: When adjusting the inclination angle of the inner sleeve 1501, drag the inner sleeve 1501 to slide inside the arc groove 1509. After moving to the specified angle, tighten the wing nut 1511 to fix the angle of the inner sleeve 1501.
[0033] In this embodiment, the rotation assembly includes a third shaft rod 1512, a universal joint 1513 and a fourth shaft rod 1514. The third shaft rod 1512 is fixedly installed on the inner top of the outer sleeve 1503. A universal joint 1513 is installed at the bottom end of the third shaft rod 1512. A fourth shaft rod 1514 is installed at the bottom end of the universal joint 1513, and the bottom end of the fourth shaft rod 1514 is fixedly connected to the main gear 1303.
[0034] Local working principle: During the rotation of the main gear 1303 driven by the motor 1302, the outer sleeve 1503 is driven to rotate through the fourth shaft rod 1514, the universal joint 1513 and the third shaft rod 1512. The exhaust pipe 1505 is unfolded under the centrifugal force, adjusted to be parallel to the end face of the outer sleeve 1503, and rotates around the third shaft rod 1512.
[0035] In this embodiment, the moving and fixing mechanism 19 includes universal wheels 1901, a base 1902, a through hole 1903, an electric telescopic rod 1904 and a sliding rod 1905. The base 1902 is located below the chassis 1. The electric telescopic rod 1904 is vertically installed at the inner bottom of the chassis 1. The output end of the electric telescopic rod 1904 is connected to the base 1902. Universal wheels 1901 are evenly installed at the four corners of the bottom of the chassis 1. A through hole 1903 matching the universal wheels 1901 is provided on the base 1902. The electric telescopic rod 1904 is electrically connected to the PLC controller 2 through a wire.
[0036] Local working principle: After the device moves to the specified position, an instruction is made through the touch screen 5, and the PLC controller 2 controls the start of the electric telescopic rod 1904 to contact the base 1902 with the ground, lift the device, stabilize the position of the device and adjust the use height of the device.
[0037] In this embodiment, sliding rods 1905 are vertically and evenly installed at the top end of the base 1902, and the sliding rods 1905 are slidably connected to the chassis 1.
[0038] Local working principle: During the process of controlling the lifting of the chassis 1, the use of multiple groups of sliding rods 1905 can ensure the stable lifting of the chassis 1.
[0039] In this embodiment, a PLC controller 2 is installed at the outer bottom of the chassis 1, a humidity sensor 3 is installed at the bottom of the front end of the chassis 1, an ozone concentration sensor 4 is arranged on the side of the humidity sensor 3, a touch screen 5 is installed at the top of the front end of the chassis 1, and an indicator light 6 is arranged at the top of the touch screen 5; The output ends of the humidity sensor 3 and the ozone concentration sensor 4 are electrically connected to the PLC controller 2 through wires, the touch screen 5 is electrically connected to the PLC controller 2 through wires, and the output end of the PLC controller 2 is electrically connected to the indicator light 6, the ozone generator 11, the drive mechanism 13, the atomizer 17, the ozone reducer 18 and the moving and fixing mechanism 19 through wires.
[0040] As Figures 1-8 shown, the control system process of a fully automatic ozone device for aquaculture provided in this embodiment is as follows: Step 1: Click the start switch on the touch screen 5, use the humidity sensor 3 to detect the environmental humidity, and transmit the detection result to the inside of the PLC controller 2 for recording. When the environmental humidity is less than the set threshold, the PLC controller 2 controls the atomizer 17 to start, generate water mist, and the indicator light 6 lights up and shows red, and starts the motor 1302 to drive the fan blade 12 to rotate, and discharges the water mist from the exhaust mechanism 15. When the humidity collected by the humidity sensor 3 is greater than or equal to the set value, the PLC controller 2 controls the atomizer 17 to close and stop humidifying; Step 2: After the environmental humidification is completed, when the ozone concentration collected by the ozone concentration sensor 4 is less than the lower limit of the concentration set inside the PLC controller 2, the PLC controller 2 controls the ozone generator 11 to start generating ozone, uses the motor 1302 to drive the fan blade 12 to rotate, and discharges the ozone from the exhaust mechanism 15 to the outside. When the concentration collected by the ozone concentration sensor 4 is greater than or equal to the set value, the running time of the ozone generator 11 starts to count down. After the countdown ends, the PLC controller 2 controls the ozone generator 11 to close and stop sterilizing; Step 3: During exhaust, drag the inner sleeve 1501 to slide inside the arc-shaped groove 1509, adjust the inclination angle of the inner sleeve 1501, and then tighten the wing nut 1511 to fix the angle of the inner sleeve 1501. When the motor 1302 starts, it drives the main gear 1303 to rotate, and controls the rotation of the fan blade 12 through the transmission between gears. At the same time, during the rotation of the main gear 1303, the exhaust pipe 1505 is driven to expand centrifugally by the fourth shaft rod 1514, the universal joint 1513, and the third shaft rod 1512, and rotates around the third shaft rod 1512. In addition, the rotation of the main gear 1303 controls the rotation of the first transmission gear 1003, rotates the installation box 8 around the first shaft rod 1001, and at the same time, the rotation of the installation box 8 drives the exhaust pipe 1505 to rotate in a circle, accelerating the diffusion of gas; Step 4: After sterilization is completed, the PLC controller 2 controls the ozone reducer 18 to start to purify the environment and reduce the ozone concentration. When the ozone concentration collected by the ozone concentration sensor 4 is less than the set threshold, the ozone reducer 18 is turned off. At this time, the indicator light 6 shows a green light, and the sterilization is completed.
[0041] The above is only a further embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the scope disclosed by the present invention, according to the technical solution and its concept of the present invention, makes equivalent substitutions or changes, all belong to the protection scope of the present invention.
Claims
1. A fully automatic ozone equipment for aquaculture, comprising a housing (1), characterized in that: The top of the chassis (1) is provided with a groove (7), a mounting box (8) is rotatably mounted inside the groove (7), a bottom plate (9) is fixedly mounted at the bottom end of the mounting box (8), a rotating mechanism (10) for controlling the rotation of the mounting box (8) is provided at the bottom of the bottom plate (9), an ozone generator (11) is mounted at one end inside the mounting box (8), a fan blade (12) is rotatably mounted at the inner bottom of the mounting box (8), a driving mechanism (13) for controlling the rotation of the fan blade (12) is provided at the bottom of the mounting box (8), a one-way air inlet valve (14) is mounted on the side of the mounting box (8), an atomizer (17) is mounted on the side of the mounting box (8) away from the ozone generator (11), a water tank (16) is provided on the outside of the mounting box (8), an exhaust mechanism (15) is provided on the top of the mounting box (8), an ozone reduction machine (18) is mounted inside the chassis (1), and a movable fixing mechanism (19) is provided at the bottom end of the chassis (1).
2. The fully automatic ozone equipment for aquaculture according to claim 1, characterized in that: The driving mechanism (13) comprises a transmission chamber (1301), a motor (1302), a main gear (1303), a third transmission gear (1304) and a rotating rod (1305); the transmission chamber (1301) is disposed at the bottom of the installation box (8); the motor (1302) is mounted on the inner bottom of the transmission chamber (1301); the main gear (1303) is mounted on the output end of the motor (1302); the third transmission gear (1304) is meshedly mounted on the side of the main gear (1303); the rotating rod (1305) is mounted on the top of the third transmission gear (1304); the rotating rod (1305) extends into the interior of the installation box (8); the fan blades (12) are fixed on the top of the rotating rod (1305); and the motor (1302) is electrically connected to a PLC controller (2) via a wire.
3. A fully automatic ozone equipment for aquaculture according to claim 2, characterized in that: The rotating mechanism (10) comprises a first shaft (1001), an inner gear ring (1002), a first transmission gear (1003), a second shaft (1004) and a second transmission gear (1005); the first shaft (1001) is fixed to the bottom end of the base plate (9) and is rotatably connected to the inner bottom end of the groove (7); the inner gear ring (1002) is fixed to the inner bottom end of the groove (7); the first transmission gear (1003) is meshedly mounted on the inner side of the inner gear ring (1002); the second shaft (1004) is fixed to the top of the first transmission gear (1003); the second shaft (1004) passes through the interior of the transmission bin (1301) and is rotatably connected to the base plate (9); the second shaft (1005) meshed with the main gear (1303) is fixed to the top of the second shaft (1004).
4. The fully automatic ozone equipment for aquaculture according to claim 3 is characterized by: The exhaust mechanism (15) comprises an inner sleeve (1501), a first telescopic tube (1502), an outer sleeve (1503), a hinge seat (1504), an exhaust pipe (1505), a second telescopic tube (1506), an exhaust hole (1507), an angle adjustment component and a rotating component. The inner sleeve (1501) is arranged at the top of the installation box (8). The first telescopic tube (1502) is arranged between the bottom end of the inner sleeve (1501) and the installation box (8). The outer sleeve (1503) is rotatably mounted on the top end of the inner sleeve (1501). The outer side of the sleeve (1503) is evenly hingedly installed with a hinge seat (1504), and an exhaust pipe (1505) is installed on the hinge seat (1504). A second telescopic tube (1506) is installed between the end of the exhaust pipe (1505) and the outer sleeve (1503). Exhaust holes (1507) are evenly opened on the outer side of the exhaust pipe (1505). The top of the installation box (8) is provided with an angle adjustment component for adjusting the inclination of the inner sleeve (1501), and the inner side of the outer sleeve (1503) is provided with a rotating component for controlling the rotation of the outer sleeve (1503).
5. The fully automatic ozone equipment for aquaculture according to claim 4 is characterized in that: Four groups of exhaust pipes (1505) are provided, and the included angle between the exhaust pipes (1505) is 90°. The shape of the exhaust pipes (1505) is rectangular.
6. The fully automatic ozone equipment for aquaculture according to claim 5, characterized in that: The angle adjustment assembly comprises an arc plate (1508), an arc groove (1509), a screw rod (1510) and a butterfly nut (1511). The arc plate (1508) is symmetrically arranged on the top of the installation box (8), and the inner sleeve (1501) is located between the arc plates (1508). The arc plates (1508) are all provided with an arc groove (1509). The screw rods (1510) are symmetrically installed on both sides of the inner sleeve (1501), and the screw rods (1510) pass through the inside of the arc groove (1509). The ends of the arc groove (1509) are all installed with butterfly nuts (1511).
7. The fully automatic ozone equipment for aquaculture according to claim 6, characterized in that: The rotating assembly comprises a third shaft (1512), a universal joint (1513) and a fourth shaft (1514); the third shaft (1512) is fixedly mounted on the inner top of the outer sleeve (1503); the universal joint (1513) is mounted on the bottom end of the third shaft (1512); the fourth shaft (1514) is mounted on the bottom end of the universal joint (1513); and the bottom end of the fourth shaft (1514) is fixedly connected to the main gear (1303).
8. A fully automatic ozone equipment for aquaculture according to any one of claims 1 to 7, characterized in that: The mobile fixing mechanism (19) comprises a universal wheel (1901), a base (1902), a through hole (1903), an electric telescopic rod (1904) and a sliding rod (1905); the base (1902) is located below the chassis (1); the electric telescopic rod (1904) is vertically mounted on the inner bottom of the chassis (1); the output end of the electric telescopic rod (1904) is connected to the base (1902); the universal wheel (1901) is evenly mounted at the four corners of the bottom of the chassis (1); the base (1902) is provided with a through hole (1903) that cooperates with the universal wheel (1901); and the electric telescopic rod (1904) is electrically connected to the PLC controller (2) via a wire.
9. The fully automatic ozone equipment for aquaculture according to claim 8, characterized in that: A sliding rod (1905) is evenly and vertically installed on the top of the base (1902), and the sliding rod (1905) is slidably connected to the chassis (1).
10. A control system for a fully automatic ozone device for aquaculture, based on the fully automatic ozone device for aquaculture according to claim 9, characterized in that: A PLC controller (2) is installed on the outer bottom of the chassis (1), a humidity sensor (3) is installed on the bottom of the front end of the chassis (1), an ozone concentration sensor (4) is arranged on the side of the humidity sensor (3), a touch screen (5) is installed on the top of the front end of the chassis (1), and an indicator light (6) is arranged on the top of the touch screen (5); The output ends of the humidity sensor (3) and the ozone concentration sensor (4) are electrically connected to the PLC controller (2) via wires, the touch screen (5) is electrically connected to the PLC controller (2) via wires, and the output end of the PLC controller (2) is electrically connected to the indicator light (6), the ozone generator (11), the drive mechanism (13), the atomizer (17), the ozone reduction machine (18), and the mobile fixing mechanism (19) via wires.
Citation Information
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