Mooring type deep sea culture feeding unmanned aerial vehicle feeding equipment
The tethered drone feeding system uses a feeding hose and a Roots blower to deliver feed to the drone feeding components, solving the problems of complex and inefficient feeding systems in deep-sea aquaculture. It achieves efficient and safe full-coverage feeding, reducing the repetitive investment of manpower and equipment.
Patent Information
- Application Number
- CN202423046086.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2034-12-10
AI Technical Summary
Existing deep-sea aquaculture feed delivery systems are complex and inefficient, and drone-based feeding devices are limited by their payload capacity, making them unable to meet the needs of large-scale feeding.
Adopting a tethered design, the drone is connected to the feed storage tank via a feeding hose. A Roots blower provides pneumatic pressure to deliver feed to the drone's feeding assembly, enabling long-distance, long-duration drone feeding. Feed is delivered using the drone's power supply and data transmission system.
It enables efficient, safe, and one-time full-coverage feed delivery for deep-sea aquaculture, reducing manpower input and the number of drone round trips, and improving feeding efficiency and equipment lifespan.
Smart Images

Figure CN223929233U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of deep-sea aquaculture, and more specifically, to a tethered deep-sea aquaculture feeding drone and a feed feeding device. Background Technology
[0002] The deep sea possesses vast space and abundant natural resources. With the increasing scarcity of nearshore aquaculture space, developing deep-sea aquaculture can effectively alleviate the problem of insufficient aquaculture space, fully utilize the vast expanse of the deep sea, and improve the utilization rate of marine resources. However, deep-sea aquaculture faces challenges such as complex sea conditions, delayed land-based resupply, and poor accessibility, leading to difficulties in ensuring the smooth operation and maintenance of aquaculture activities. Feed delivery is a key challenge and a major pain point for the industry. Especially in deep-sea aquaculture, if feed is not delivered in a timely and accurate manner, it will affect the growth rate and quality of farmed organisms, reducing aquaculture efficiency. Traditional deep-sea feed delivery methods typically require the use of ships or manual labor, which are inefficient, costly, and risky.
[0003] Chinese utility model patent application CN110476861A discloses a pneumatic feeding machine, which consists of a storage tank and a float assembly. The storage tank has a pneumatic feeding mechanism at the bottom, and the float assembly includes a bottom support plate, a top support plate, and a support rod. The bottom support plate has floats at its corners. The top support plate is equipped with a feeding mechanism, and the bottom support plate has a front drive mechanism. The storage tank has a manual control mechanism connected to the front drive mechanism. Precise feeding is achieved through the pneumatic feeding mechanism, the floats floating, and the front drive mechanism moving.
[0004] Chinese utility model patent application CN118144996A discloses a food-distributing drone for agricultural and livestock farming. In operation, the cover is first opened, and feed is added to the storage tank through the feeding cylinder. The cover and feeding cylinder are then tightly closed using clips. Next, the drone is started and put into flight. When it reaches the feeding area, a push cylinder is activated, causing a push plate to slide, which in turn pushes a push rod, causing a control plate to rotate and open the discharge hole on the baffle. A spiral protrusion is provided on the control plate near the push rod; this design allows the push rod to effectively drive the control plate to rotate during downward movement. Finally, the motor is started, driving the extrusion screw to rotate, thus moving the feed downwards and discharging it through the discharge hole. This design ensures more even and smooth feed dispensing under pressure, greatly improving the quality of feeding.
[0005] Chinese utility model patent application CN117775288A discloses a wind-driven variable-rate solid fertilizer delivery drone, which consists of a drone body and a variable-rate fertilizer application device. The variable-rate fertilizer application device includes a fertilizer tank, a variable-rate feeding mechanism, and a wind-driven centrifugal fertilizer spreading mechanism. The variable-rate feeding mechanism has a variable-rate feeding shell, a variable-rate feeding wheel with a feeding trough, and a rotary feeding drive mechanism; the wind-driven centrifugal fertilizer spreading mechanism includes a wind-driven mechanism consisting of a wind-driven shell and a fan with an internal wind-driven channel, and a centrifugal mechanism consisting of a centrifugal shell, a centrifugal disc, and a centrifugal drive mechanism, with the centrifugal shell having a spreading port. The drone dispenses fertilizer quantitatively via the variable-rate feeding wheel, which is then transported to the centrifugal mechanism via the wind-driven mechanism, where the high-speed rotation of the centrifugal disc ejects the fertilizer.
[0006] All of the above-mentioned utility models can be applied to feed feeding in aquaculture, but they all have certain limitations and shortcomings. First, the floating base type feed feeding device has a fixed feeding position. If the aquaculture area is large, multiple feeding points need to be arranged to cover it. At the same time, more feeding points require more feeding pipelines, which increases the complexity of the system. Moreover, for deep-sea aquaculture, the long-term floating feeding device will be affected by severe wind and waves, which will reduce the service life of the device. The use of drone feed feeding device has the advantage in feeding flexibility. However, the existing drone feeding devices all adopt the solution of portable feed bin, that is, the feed bin is combined with the drone. This method is limited by the payload of the drone and cannot carry a large amount of feed. When feeding a large area, multiple round trips are required to replenish the feed, which increases the flight distance of the drone and reduces efficiency. Utility Model Content
[0007] The purpose of this invention is to provide a tethered deep-sea aquaculture feeding drone and a feed feeding device to overcome the problems of existing deep-sea aquaculture feed feeding systems being complex, having low drone feeding efficiency, and requiring a large amount of manual labor.
[0008] When researching drone feeding devices, the inventors discovered that to solve the problems of feeding efficiency and convenience in deep-sea areas, a "tethered" method can be introduced. The feed is delivered directly to the drone through an "umbilical" feeding hose, and the drone delivers the feed during flight, achieving long-distance and long-term feeding.
[0009] To achieve the above objectives, the present invention adopts the following technical solution:
[0010] A tethered deep-sea aquaculture feeding drone device, characterized in that it comprises:
[0011] The feeding drone has an equipment mounting plate at its lower part, and a feed feeding component is installed at the lower part of the equipment mounting plate; the feed feeding component is connected to a feed hose connector.
[0012] The feed hose is used to transport feed. One end is connected to the feed hose connector, and the other end is connected to the Roots blower.
[0013] A hose winch, fixed to the aquaculture platform, is used to control the opening and closing of the feeding hose;
[0014] Roots blower, installed on the aquaculture platform, is used to pressurize feed from the feed storage tank and deliver it into the feed hose;
[0015] Feed storage tanks are used to store feed to be fed. The feed storage tanks are connected to the Roots blower to supply materials to the Roots blower.
[0016] The distribution box is used to provide power to the Roots blower, hose winch, and material delivery drone.
[0017] Based on the above technical solutions, the present invention may also adopt the following further technical solutions, or combine these further technical solutions:
[0018] The feeding drone is a multi-rotor drone. The feed feeding component includes a drive motor, a motor protective cover, a centrifugal feeding disc, and a feeding disc cap. The centrifugal feeding disc throws out feed particles by rotating. The feeding disc cap is tightened with the motor shaft to fix the centrifugal feeding disc and also serves to disperse the feed particles.
[0019] The centrifugal feeding disc has multiple feeding blades arranged around the rotation center, which throw out feed particles by rotation. There is a connecting hole in the middle of the feeding disc, which is connected to the drive motor shaft.
[0020] The feeding hose connector consists of two flange structures. The drone connection flange is located on the side of the drone, below the feeding tray cap, and the hose connection flange is located at the end of the feeding hose. The two flanges are detachably connected.
[0021] The aforementioned material delivery drone is equipped with a satellite positioning module.
[0022] The hose winch is electrically controlled. The feeding hose is connected from the Roots blower and wound and stored on the winch.
[0023] The Roots blower is widely used in pneumatic feed transport. It provides sufficient pneumatic pressure while ensuring the integrity of feed pellets. The feed pellets gain initial kinetic energy through the Roots blower, lose some kinetic energy as they pass through the feeding hose and reach the feeding assembly. The drive motor then rotates the centrifugal feeding disc rapidly, accelerating the feed pellets before they are centrifugally ejected. To ensure feeding density, the drone operates at an altitude of approximately 5 meters above sea level during feeding. Ideally, the radius r of the feed spillway can be calculated using the formula... Calculations show that v0 is the initial velocity of the feed ejected, g is the acceleration due to gravity, and h is the height of the UAV above the sea level; v0 consists of two parts, one being the velocity v0 supplied by the pressurization from the Roots blower. l The pressure is determined by the discharge pressure of the Roots blower; the speed v is determined by the rotation of the centrifugal feeding disc. t The speed is determined by the rotational speed of the centrifugal feeding disc.
[0024] During material feeding, the flexible hose hangs in an arc in the air. When the distance is far, part of the feeding hose floats on the water surface. The length of the hose can be calculated by multiplying the relative distance between the drone and the winch by a redundancy factor μ (for example, 1.1).
[0025] In a specified coordinate system, the three-dimensional coordinates of the winch can be represented as (x, y, z), and the three-dimensional coordinates of the UAV can be represented as (x0, y0, z0). L represents the length of the pipe.
[0026]
[0027] In this invention, the material delivery drone can be selected from different models according to actual needs. Based on existing drone parameters, the maximum takeoff payload of multi-rotor drones can reach 60kg. Since this invention uses a tethered design, it does not require a battery, and the total takeoff payload can reach 75kg. The material delivery hose is a lightweight, medium-sized pneumatic delivery hose, weighing approximately 1.5kg / m. A small-sized cable can be selected for the integrated power cable to power the drone, and its weight is negligible. Because the material delivery hose is hollow, its own buoyancy is sufficient to support it floating on the water surface, and the drone does not need to carry the entire weight of the hose. The operating radius is not affected by the weight of the hose; the Roots blower is selected according to the feeding radius, and the longer the conveying distance, the greater the blower pressure capacity required. In this utility model, the feeding hose must be wound and stored on the hose winch, which requires greater pressure for transmission. Generally, a model with a pressure capacity greater than 80kPa is selected; considering the equipment parameters and environmental conditions, the operating radius of this utility model drone can reach more than 100m, and the feeding diameter can reach about 10m. If the wind speed is high, the drone altitude can be reduced to decrease the feeding diameter, reduce the impact of wind force on the feed when it falls, and increase the controllability of the feeding range.
[0028] In this invention, feed is delivered from a feed storage tank via a Roots blower, and high-pressure airflow travels along the feeding hose to the drone. Feed is then delivered via the feeding assembly at the bottom of the drone. Power is supplied to the winch, Roots blower, and drone through a distribution box. Data and power cables are integrated with the feeding hose at the Roots blower and run directly to the drone. This design allows: ① the drone to eliminate the need for a battery, reducing its weight and increasing its payload capacity; ② it eliminates the limitation on flight time, increasing the duration of a single operation; and ③ it ensures that the drone has sufficient flight power when performing feeding operations within its reach.
[0029] This utility model's tethered drone feeding solution can achieve one-time, full-coverage, and highly efficient feed delivery, avoiding the need for drones to make multiple trips to replenish feed and power, thus saving manpower and equipment investment.
[0030] According to a second aspect of this utility model, this utility model provides a feed dispensing device for a feed-dispensing drone. To this end, this utility model adopts the following technical solution.
[0031] The feed feeding device of the feeding drone is characterized by including a feed feeding component and a feeding hose connector. The feed feeding component is connected to the feeding hose connector. The feed feeding component includes a drive motor, a motor protective cover, a centrifugal feeding disc, and a feeding disc cap. The centrifugal feeding disc throws out feed particles by rotating. The feeding disc cap is fixed to the centrifugal feeding disc and plays a role in dispersing feed particles after being threaded onto the motor shaft.
[0032] Furthermore, the centrifugal feeding disc is equipped with multiple feeding blades around the rotation center, which throw out feed particles by rotation. There is a connecting hole in the middle of the feeding disc, which is connected to the drive motor shaft.
[0033] Furthermore, the feeding hose connector consists of two flange structures: the drone connection flange is located on the side of the drone, below the feeding tray cap, and the hose connection flange is located at the end of the feeding hose; the two flanges are detachably connected.
[0034] In summary, this utility model has at least the following beneficial effects:
[0035] This invention realizes a tethered drone feeding solution. Facing the complex sea conditions of deep-sea aquaculture, the drone feeding method ensures the safety of the feeding process and reduces manpower input. More importantly, by directly connecting the feed storage tank to the drone through a feeding hose (which can be integrated with a cable), the feed supply and power supply of the drone during the feeding process are guaranteed. In deep-sea aquaculture, the feeding area is large and the spacing between aquaculture plants is large. This method can avoid the need for the drone to make multiple round trips and greatly improve the feeding efficiency. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of an embodiment of a tethered deep-sea aquaculture intelligent feeding drone;
[0037] Figure 2 yes Figure 1 Exploded view of the structure of the mid-feeding drone;
[0038] Figure 3-1 and Figure 3-2 These are structural schematic diagrams and exploded views of the material delivery components and connecting structures of the material delivery drone;
[0039] Figure 4 This is a structural diagram of a feed hose winch;
[0040] Figure 5 This is a schematic diagram of a material delivery drone during operation;
[0041] Figure 6 This is a schematic diagram showing the material delivery range and flight trajectory positioning of the material delivery drone during operation. Detailed Implementation
[0042] The specific embodiments of this utility model are described below with reference to the accompanying drawings.
[0043] like Figure 1 As shown, the tethered deep-sea aquaculture intelligent feeding drone feeding equipment of this utility model includes a feeding drone 1, a feeding hose 2, a hose winch 3, a Roots blower 4, a feed storage tank 5, and a power distribution box 6. The power distribution box 6 is connected to the electrical equipment in the system, such as the feeding drone 1, the Roots blower 4, and the hose winch 3, via power cables 7. The entire equipment is arranged on a deep-sea aquaculture equipment platform 9. The hose winch 3, the Roots blower 4, the feed storage tank 5, and the power distribution box 6 can be fixedly arranged, while the feeding drone 1 requires a designated take-off and landing area. The drone's power cable can be routed together with the feeding hose 2 (e.g., routed within the feeding hose 2).
[0044] The drone can be controlled via wired or wireless means. In wired control, the cable can be routed through a feeding hose. After takeoff, the drone's position and altitude information are transmitted to the drone's controller (such as the control computer 8) via a Beidou positioning device 111 on the drone's fuselage.
[0045] The control computer 8 can also control the hose winch 3 and the Roots blower 4.
[0046] Feed in feed storage tank 5 flows out of feed outlet, is pressurized by Roots blower 4 and continuously delivered to the feeding end of drone along feeding hose 2. Power for Roots blower 5, winch 4 and drone is provided by power distribution box.
[0047] like Figure 2 As shown, the feeding assembly is installed on the lower part of the main body 11 of the drone; as Figure 2 The drone on display is a hexacopter with six rotors 13; a Beidou positioning device 111 is installed on the top of the fuselage for real-time positioning during flight to control the drone's flight status and material delivery area; the lower part of the drone's main body 11 is connected to landing gear 12, such as... Figure 5 The support frame will retract via electric drive during flight to avoid affecting the material feeding operation, and will be lowered upon landing.
[0048] like Figure 2 and Figure 3-1 , Figure 3-2 As shown, the equipment mounting plate 14 is the main load-bearing structure for equipment such as the feeding assembly. The equipment mounting plate 14 is connected to the main body 11 via bolts and other connecting components. The equipment mounting plate 14 is designed for lightweighting, with multiple weight-reducing holes to reduce weight while ensuring load-bearing capacity.
[0049] All feeding components are installed on the lower part of the equipment mounting plate 14. The drive motor 15 and the motor protective cover 16 are directly connected to the equipment mounting plate 14. The motor protective cover 16 and the drive motor 15 are flat and round to reduce space occupation and ensure aerodynamic performance. The bottom of the motor has four bolt fixing holes along the round edge, and it is installed on the equipment mounting plate 14 with bolts and nuts 110. The motor protective cover 16 is slightly larger than the drive motor 15, and has six bolt fixing holes at the bottom, and is installed on the equipment mounting plate 14 with bolts and nuts 110. The motor protective cover is installed outside the drive motor and ensures that the drive shaft of the motor extends. The motor protective cover is also installed on the reserved holes in the equipment mounting plate 14 with nuts and bolts. Its main function is to protect the motor and provide connection for the lower components.
[0050] The centrifugal feeding disc 17 is provided with a connecting hole, which is directly connected to the rotating shaft of the drive motor 15. The rotation of the rotating shaft of the drive motor 15 drives the feeding disc 17 to rotate, thereby feeding the feed. The feeding disc cap 18 is located at the lower part of the feeding disc 17. It is provided with a threaded hole inside, which is threadedly connected to the rotating shaft, fixing the centrifugal feeding disc 17 to the rotating shaft. The outer part of the feeding disc cap 18 is inverted conical and has a smooth arc surface shape, which spreads the feed into the feeding disc 17, ensuring uniform and smooth feeding. Multiple feeding blades 171 are arranged around the rotation center on the lower surface of the feeding disc 17. The feed particles are thrown out by rotation. The feeding disc 17 is open at the periphery corresponding to the throwing direction of the blades, which is used for throwing the feed particles. When feed is fed from the feeding pipe 2 into the feeding tray, it is thrown out by the rotating feeding blades 171. The UAV side connecting flange 19 is located directly below the feeding tray 17 and is connected to the motor protective cover 16 via the connecting rod 191 and fixed with bolts 110. The connecting rod 181 has a rounded triangular cross-section to reduce its impact on feeding. The end connecting flange 21 of the hose 2 has the same shape as the UAV connecting flange 19, but is directly connected to the end of the hose 2. The end connecting flange 21 and the UAV connecting flange 19 are connected by a rotating snap fastener. After the snap fastener is accurately aligned, it is locked by rotation. Both the end connecting flange 21 and the UAV connecting flange 19 are open in the center to allow feed to pass through. The other end of the hose 2 is connected to the Roots blower 4, which is connected to the feed storage tank 5 via a pipe or a hopper. The detachable connection between the end connecting flange 21 and the UAV connecting flange 19 can also be achieved through a direct-insertion snap fastener or bolt connection, but a rotating snap fastener connection is preferred due to its lower air resistance.
[0051] like Figure 4As shown, the hose winch 3 is fixed on the platform 9 by the base 32. The winch motor 31 is controlled by the computer 8. The feed hose 2 is wound and stored on the hose winch 33. The winding and unwinding length is controlled by the computer 8 by controlling the start and stop of the winch 3.
[0052] like Figure 5 and Figure 6 As shown, it demonstrates the material delivery operation of the material delivery drone.
[0053] After the feeding drone 1 takes off and arrives at the breeding area with the feeding hose 2, it feeds the feed. The feed is delivered from the feed storage tank 5 located on the platform, and after being pressurized by the Roots blower 4, it is fed into the feeding hose 2. After passing through the hose winch 3, it reaches the drone feeding hose connector (i.e., the end connecting flange 21 and the drone connecting flange 19). After the feed is transported in the pipeline, the remaining kinetic energy enters the feeding component (i.e. the inverted conical smooth arc surface of the centrifugal feeding disc 17 and the feeding disc cap). First, the feed touches the inverted conical smooth arc surface, and then is diffused and bounced into the centrifugal feeding disc 17. The centrifugal feeding disc 17 is driven by the drive motor 15 to rotate rapidly and throw out the feed.
[0054] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A tethered deep-sea aquaculture feeding drone, characterized in that, include: The feeding drone has an equipment mounting plate at its lower part, and a feed feeding component is installed at the bottom of the equipment mounting plate; The feed feeding assembly is connected to a feed hose connector; The feed hose is used to transport feed. One end is connected to the feed hose connector, and the other end is connected to the Roots blower. A hose winch, fixed to the aquaculture platform, is used to control the opening and closing of the feeding hose; Roots blower, installed on the aquaculture platform, is used to pressurize feed from the feed storage tank and deliver it into the feed hose; Feed storage tanks are used to store feed to be fed. The feed storage tanks are connected to the Roots blower to supply materials to the Roots blower. The distribution box is used to provide power to the Roots blower, hose winch, and material delivery drone.
2. The tethered deep-sea aquaculture feeding drone feeding device according to claim 1, characterized in that, The feeding drone is a multi-rotor drone. The feed feeding component includes a drive motor, a motor protective cover, a centrifugal feeding disc, and a feeding disc cap. The centrifugal feeding disc throws out feed particles by rotating. The feeding disc cap is tightened with the motor shaft to fix the centrifugal feeding disc and also serves to disperse the feed particles.
3. The tethered deep-sea aquaculture feeding drone device according to claim 2, characterized in that, The centrifugal feeding disc has multiple feeding blades arranged around the rotation center, which throw out feed particles by rotation. There is a connecting hole in the middle of the feeding disc, which is connected to the drive motor shaft.
4. The tethered deep-sea aquaculture feeding drone device according to claim 2, characterized in that, The feeding hose connector consists of two flange structures. The drone connection flange is located on the side of the drone, below the feeding tray cap, and the hose connection flange is located at the end of the feeding hose. The two flanges are detachably connected.
5. The tethered deep-sea aquaculture feeding drone feeding device according to claim 1, characterized in that, The aforementioned material delivery drone is equipped with a satellite positioning module.
6. The tethered deep-sea aquaculture feeding drone device according to claim 1, characterized in that, The hose winch is electrically controlled. The feeding hose is connected from the Roots blower and wound and stored on the winch.
Citation Information
Patent Citations
Pneumatic conveying type batch feeder
CN110476861A
Air-assisted solid fertilizer variable delivery unmanned aerial vehicle
CN117775288A
Food throwing unmanned aerial vehicle for agricultural cultivation
CN118144996A
Cited By
Mooring type intelligent feeding unmanned aerial vehicle system for deep and far sea culture
CN120959185A