Water intelligent floating platform capable of flying
By installing propellers on a floating platform to generate lift and achieve flight, combined with cushioning and stabilization measures, the problem of floating platforms being unable to fly has been solved, expanding application scenarios and improving safety and space utilization efficiency.
Patent Information
- Application Number
- CN202511292389.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-11
- Publication Date
- 2025-11-28
AI Technical Summary
Existing floating platforms lack flight capabilities, which limits their freedom of movement and application scenarios, and cannot meet the development needs of the low-altitude economy.
Flight is achieved by generating lift through propellers with multiple power components mounted on a floating platform. Combined with a cushioning component to prevent collisions and impacts, it is secured and hovered using rope loops. A protective cover hides the propellers to prevent them from getting wet and colliding. The propellers can be folded and hidden to reduce space occupation.
It expands the mobility and application scenarios of floating platforms, prevents damage or turbulence to the platform, ensures flight stability and safety, and reduces space occupation.
Smart Images

Figure CN121019782A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of water platform technology, and in particular relates to a flightable intelligent floating platform. Background Technology
[0002] A floating platform is a water structure designed based on the principle of buoyancy. Through modular unit assembly, it achieves flexible applications and is widely used in leisure and entertainment, energy development, and emergency rescue. When used for leisure and entertainment, a floating platform can serve as a waterfront platform, extending into sightseeing walkways and fishing platforms to enhance the visitor experience. Furthermore, it can be used for water-based entertainment projects, such as building floating stages (for concerts and weddings), swimming pools, and water parks, supporting temporary events and allowing for rapid disassembly.
[0003] Currently available floating platforms lack flight capabilities and can only be used by placing them on the water surface. This limits their freedom of movement and application scenarios, preventing them from meeting the development needs of the low-altitude economy. Therefore, this invention provides a flight-capable intelligent floating platform, which is of great significance in addressing these issues. Summary of the Invention
[0004] This invention provides a flyable intelligent floating platform. The lift generated by the propellers in multiple power components allows the platform to leave the water surface, achieving flight and further expanding its mobility and application scenarios. When the platform is not in use, the propellers in each power component can be folded and hidden to reduce space requirements. Protective covers effectively protect the power components from water, dust, or impacts that could cause them to malfunction. A buffer component absorbs energy, preventing damage or turbulence if the platform accidentally falls from a height back to the water. By attaching the other ends of the ropes to fixed points in the water or on the shore, the platform can be secured and limited from various directions, allowing it to hover at a fixed height and preventing excessive upward flight. In summary, this invention solves the problems in the prior art.
[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:
[0006] The present invention discloses a flightable intelligent floating platform, comprising a floating platform, an installation groove at the center of the top surface of the floating platform, and fixing plates fixedly connected to the four outer walls of the floating platform. A wire hole is provided on the floating platform, a power supply is installed in the installation groove, and a cover plate is installed on the top of the installation groove. A handle is fixedly connected to the top of the cover plate. A power component is provided at the bottom of each fixing plate. Several upper buffer pads are fixedly connected to the bottom surface of the floating platform, and a buffer component is provided below the floating platform.
[0007] The power assembly includes a motor, which is mounted on the bottom of each fixed plate and electrically connected to a power source via wires. A transmission base is fixedly connected to the bottom of the output shaft of the motor, and several propellers are mounted on the transmission base.
[0008] The buffer assembly includes a buffer plate, and a number of lower buffer pads are fixedly connected to the top surface of the buffer plate. Each lower buffer pad has an air bladder fixedly connected to its top surface. The air bladder has an inflation port and its top is fixedly connected to the bottom of the corresponding upper buffer pad.
[0009] Furthermore, the transmission seat is circular, and several pairs of hinge seats are fixedly connected to its side wall. A fixed shaft is fixedly connected between each pair of hinge seats. The propeller is located between each pair of hinge seats. The fixed shaft passes through the end of each propeller, and a damping sleeve is provided on its shaft body.
[0010] Furthermore, a protective cover is installed at the bottom of each fixing plate. The protective cover is circular, with its top edge protruding outward and having several positioning holes. Several studs are fixedly connected to the bottom of the fixing plate. The number of studs is the same as the number of positioning holes, and their diameter corresponds to the diameter of the positioning holes. The center of each stud corresponds one-to-one with the center of each positioning hole. A first nut that mates with each stud is threaded onto it.
[0011] Furthermore, both the upper and lower buffer pads are circular, the same in number, and have the same diameter. The upper and lower buffer pads are arranged in a linear array along the bottom surface of the floating platform and the top surface of the buffer plate, respectively, and the center of each upper buffer pad corresponds one-to-one with the center of each lower buffer pad.
[0012] Furthermore, both the buffer plate and the floating platform are square with corresponding equal side lengths. Guide holes are provided at the four corners of the buffer plate, and guide rods are inserted into the guide holes. The diameter of the guide rods is equal to the diameter of the guide holes. The top end of the guide rods is fixedly connected to the bottom of the floating platform. The guide rods are provided with external threads and are threadedly connected to a second nut that mates with them. The second nut is located below the buffer plate.
[0013] Furthermore, fixed columns are fixedly connected to the four corners of the top of the floating platform, and a pair of horizontal bars are fixedly connected between each pair of adjacent fixed columns. Several vertical bars are fixedly connected between each pair of horizontal bars, and the vertical bars are distributed linearly at equal intervals along the length of the horizontal bars.
[0014] Furthermore, several rope loops are fixedly connected to the side wall of the floating platform. The rope loops are located at the four corners of the floating platform, and pull ropes are attached to the rope loops.
[0015] A method for using a flyable intelligent floating platform, implemented using the aforementioned flyable intelligent floating platform, includes the following steps:
[0016] S1. The user stands on the floating platform and holds onto the horizontal and vertical bars;
[0017] S2. Power is supplied to the motors in each power component simultaneously through the power supply to drive each motor to rotate the transmission base together with each propeller.
[0018] S3. The lift generated by the rotation of the propeller can lift the floating platform off the water surface to achieve flight, thereby further expanding the degree of freedom of movement and application scenarios of the floating platform.
[0019] S4. When it is necessary to control the flight height of the floating platform, the other end of the pull rope attached to each rope ring can be tied to a fixed point such as a wooden stake in the water or on the shore. At this time, the floating platform can be fixed and limited from all directions by pulling the rope, so that the floating platform can be suspended at a fixed height, thereby preventing the floating platform from flying upward and causing it to leave the water too high.
[0020] S5. When the floating platform that has left the water surface falls to the water surface from a height due to an accident, it will first come into contact with the buffer plate. At this time, the elasticity generated by each airbag can play a role in buffering and absorbing energy, so as to prevent the bottom of the floating platform from being directly impacted by the water surface, causing damage or turbulence to the floating platform.
[0021] S6. When the floating platform is not in flight mode, the propellers can be rotated around the fixed axis between the hinge seats to fold and hide each propeller, thereby reducing the space occupied.
[0022] S7. When the floating platform is not in flight demand and each propeller is folded and hidden, the protective cover can be placed on the bottom of each fixed plate, and each stud should be aligned and passed through the corresponding positioning hole. At this time, the first nut is threaded onto each stud and tightened. The protective cover can be fixed by the mutual cooperation between the stud, positioning hole and first nut to prevent it from loosening. The protective cover can effectively protect the power components to prevent them from failing to work properly due to water or dust or impact.
[0023] The present invention has the following advantages over the prior art:
[0024] (1) When the flying intelligent floating platform of the present invention is in use, the lift generated by the propellers in multiple power components can lift the platform off the water surface to achieve the purpose of flight, thereby further expanding the degree of freedom of movement and application scenarios of the floating platform. When the platform does not need to fly, the propellers in each power component can be folded and hidden to reduce the space occupied. The power components can be effectively protected by the protective cover to prevent them from failing to work properly due to water or dust or collision.
[0025] (2) When the flying intelligent floating platform of the present invention is used, the buffer component can play a role in buffering and absorbing energy to prevent the bottom of the floating platform from being directly impacted by the water surface when it accidentally falls from a height to the water surface, causing damage or turbulence to the floating platform.
[0026] (3) When using the intelligent floating platform that can fly on water, the other end of the pull rope attached to each rope ring is tied to a fixed point such as a wooden stake in the water or on the shore. The platform can be fixed and limited from all directions so that the platform can be suspended at a fixed height, thereby preventing the platform from flying upward and causing it to be too high off the water.
[0027] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0028] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0029] Figure 1 This is a structural schematic diagram of a flightable intelligent floating platform for water according to the present invention;
[0030] Figure 2 This is a schematic diagram of the top structure of the floating platform in this invention;
[0031] Figure 3 This is a schematic diagram of the bottom structure of the floating platform in this invention;
[0032] Figure 4 This is a top view of the floating platform in this invention;
[0033] Figure 5 This is a schematic diagram of the power component in this invention;
[0034] Figure 6 This is a schematic diagram of the buffer component in this invention;
[0035] Figure 7 This is a schematic diagram of the structure of the protective cover in this invention;
[0036] Figure 8 This is a schematic diagram of the structure of the second embodiment of the present invention;
[0037] Figure 9 This is a schematic diagram of the high-pressure water spray assembly in the second embodiment of the present invention;
[0038] Figure 10 This is a schematic diagram of the structure of the third embodiment of the present invention;
[0039] Figure 11 This is a schematic diagram of the structure of the inflation component in the third embodiment of the present invention.
[0040] The attached diagram lists the components represented by each number as follows:
[0041] 1. Floating platform; 2. Mounting slot; 3. Fixing plate; 4. Power supply; 5. Cover plate; 6. Handle; 7. Upper buffer pad; 8. Motor; 9. Transmission seat; 10. Propeller; 11. Buffer plate; 12. Lower buffer pad; 13. Airbag; 14. Hinge seat; 15. Protective cover; 16. Positioning hole; 17. Stud; 18. First nut; 19. Guide hole; 20. Guide rod; 21. Second nut; 22. Fixing column; 23. Horizontal bar; 24. Vertical bar; 25. Rope loop; 26. Pull rope. Detailed Implementation
[0042] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0043] In the description of this invention, it should be understood that the terms "relative", "one end", "inner", "lateral", "end", "both ends", "both sides", "front", "one end face", "the other end face", etc., which indicate orientation or positional relationship, are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the components or elements referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as limiting this invention.
[0044] Example 1:
[0045] Please see Figure 1-7As shown, the present invention discloses a flightable intelligent floating platform, including a floating platform 1. A mounting groove 2 is provided at the center of the top surface of the floating platform 1, and fixing plates 3 are fixedly connected to the four outer walls of the floating platform 1. A wire hole is provided on the floating platform 1. A power supply 4 is installed in the mounting groove 2, and a cover plate 5 is installed on the top of the mounting groove 2. A handle 6 is fixedly connected to the top of the cover plate 5. The cover plate 5 can separate the power supply 4 in the mounting groove 2 from the space on the floating platform 1 to prevent people standing on the floating platform 1 from accidentally touching the power supply 4. When the power supply 4 fails or needs to be replaced, the cover plate 5 can be opened to inspect or replace the power supply 4. A power component is provided at the bottom of each fixing plate 3. Several upper buffer pads 7 are fixedly connected to the bottom surface of the floating platform 1, and a buffer component is provided below the floating platform 1.
[0046] The power assembly includes a motor 8, which is mounted on the bottom of each fixed plate 3 and electrically connected to a power supply 4 via wires. A transmission base 9 is fixedly connected to the bottom of the output shaft of the motor 8. Several propellers 10 are mounted on the transmission base 9. Wires can pass through the wire holes between the storage slot 3 and the mounting slot 2. The power supply 4 can be a battery. The power supply 4 simultaneously supplies power to the motors 8 in each power assembly, driving each motor 8 to rotate the transmission base 9 along with each propeller 10. The lift generated by the rotating propellers 10 can lift the floating platform 1 off the water surface. To achieve the purpose of flight, thereby further expanding the degree of freedom of movement and application scenarios of the floating platform, in order to ensure that the power components can provide sufficient lift for the floating platform 1, the target load of the floating platform 1 should be controlled at 200kg, and the total weight should not exceed 500kg (of which the power components ≤200kg). Taking the target load of the floating platform 1 as 200kg as a reference, the number of power components can be set to six. The propeller 10 adopts a six-propeller layout with a diameter of 0.8~1.2m. The power-to-weight ratio of the motor 8 should be >5km / kg, and the maximum torque should be >100N·m.
[0047] The buffer assembly includes a buffer plate 11, with several lower buffer pads 12 fixedly connected to the top surface of the buffer plate 11. Each lower buffer pad 12 has an airbag 13 fixedly connected to its top surface. The airbag 13 has an inflation port, and its top is fixedly connected to the bottom of the corresponding upper buffer pad 7. The airbag 13 can be fixed to the upper buffer pad 7 and the lower buffer pad 12 by means of adhesive or the like. Air can be injected into the airbag 13 through the inflation port so that the airbag 13 inflates and expands to open the buffer plate 11. A one-way valve is provided in the inflation port to prevent air leakage. When the floating platform 1, which has left the water surface, falls to the water surface from a height due to an accident, it will first come into contact with the buffer plate 11. At this time, the elasticity generated by each airbag 13 can play a role in buffering and absorbing energy, so as to prevent the bottom of the floating platform 1 from being directly impacted by the water surface and causing damage or turbulence to the floating platform 1.
[0048] The transmission seat 9 is circular, and several pairs of hinge seats 14 are fixedly connected to its side wall. A fixed shaft is fixedly connected between each pair of hinge seats 14. The propeller 10 is located between each pair of hinge seats 14. The fixed shaft passes through the end of each propeller 10. The shaft body is equipped with a damping sleeve. When the floating platform 1 does not need to fly, the propeller 10 can be rotated around the fixed shaft between the hinge seats 14 so that each propeller 10 can be folded and hidden, thereby reducing the space occupied. The damping sleeve can increase the friction between the propeller 10 and the fixed shaft to achieve a self-locking effect.
[0049] Each fixed plate 3 has a protective cover 15 installed at its bottom. The protective cover 15 is circular, with its top edge protruding outward and having several positioning holes 16. Several studs 17 are fixedly connected to the bottom of the fixed plate 3. The number of studs 17 is the same as the number of positioning holes 16, and their diameters correspond to the diameters of the positioning holes 16. The center of each stud 17 corresponds one-to-one with the center of each positioning hole 16. Each stud 17 is threaded with a first nut 18 that mates with it. When the floating platform 1 is not in flight need and the propellers 10 are folded and hidden, the protective cover 15 can be placed on the bottom of each fixed plate 3, so that each stud 17 is aligned and passes through the corresponding positioning hole 16. At this time, the first nut 18 is threaded onto each stud 17 and tightened. The protective cover 15 is fixed by the mutual cooperation between the studs 17, positioning holes 16, and first nuts 18 to prevent it from loosening. The protective cover 15 can effectively protect the power components to prevent them from malfunctioning due to water or dust or impact.
[0050] The upper buffer pad 7 and the lower buffer pad 12 are both circular, the same in number, and have the same diameter. The upper buffer pad 7 and the lower buffer pad 12 are arranged in a linear array along the bottom surface of the floating platform 1 and the top surface of the buffer plate 11, respectively. The center of each upper buffer pad 7 corresponds one-to-one with the center of each lower buffer pad 12. The upper buffer pad 7 and the lower buffer pad 12 can be made of elastic materials such as sponge and fixed by adhesives. When the buffer assembly is used to buffer and protect the bottom of the floating platform 1, the upper buffer pad 7 and the lower buffer pad 12 can be placed on the bottom of the floating platform 1 and the top of the buffer plate 11, respectively, to further improve the buffering and energy absorption effect of the floating platform 1 and prevent the airbag 13 from directly contacting the floating platform 1 and the buffer plate 11 to avoid collision and wear.
[0051] Both the buffer plate 11 and the floating platform 1 are square with equal side lengths. Guide holes 19 are provided at the four corners of the buffer plate 11, and guide rods 20 are inserted into the guide holes 19. The diameter of the guide rods 20 is equal to the diameter of the guide holes 19. The top of the guide rods 20 is fixedly connected to the bottom of the floating platform 1. The guide rods 20 are provided with external threads and are threaded to a second nut 21 that matches them. The second nut 21 is located below the buffer plate 11. The interaction between the guide rods 20 and the guide holes 19 can play a guiding and limiting role to ensure that the buffer plate 11 and the floating platform 1 always remain parallel, thereby preventing the buffer plate 11 from tilting. By threading the second nut 21 onto the guide rod 20 and tightening it, the height of the buffer plate 11 can be fixed to prevent it from sliding downward.
[0052] The floating platform 1 is fixedly connected to four corners of the top with fixed posts 22. A pair of horizontal bars 23 are fixedly connected between each pair of adjacent fixed posts 22. Several vertical bars 24 are fixedly connected between the pairs of horizontal bars 23. The vertical bars 24 are distributed linearly at equal intervals along the length of the horizontal bars 23. The cooperation between the multiple horizontal bars 23 and the vertical bars 24 can protect the four sides of the floating platform 1. When a person stands on the floating platform 1, he can hold the horizontal bars 23 and the vertical bars 24 to maintain the balance of the center of gravity, thereby preventing accidental fall into the water.
[0053] The side wall of the floating platform 1 is fixedly connected with several rope rings 25. The rope rings 25 are located at the four corners of the floating platform 1, and the rope rings 25 are tied with pull ropes 26. The other end of the pull ropes 26 can be tied to fixed points such as wooden stakes in the water or on the shore. At this time, the floating platform 1 can be fixed and limited from all directions by pulling ropes 26, so that the floating platform 1 is suspended at a fixed height, thereby preventing the floating platform 1 from flying upward and causing it to leave the water too high.
[0054] A method for using a flyable intelligent floating platform, implemented using the aforementioned flyable intelligent floating platform, includes the following steps:
[0055] S1. The user stands on the floating platform 1 and holds onto the horizontal bar 23 and the vertical bar 24;
[0056] S2. Power is supplied to the motors 8 in each power component simultaneously through the power supply 4, so as to drive each motor 8 to drive the transmission base 9 and each propeller 10 to rotate.
[0057] S3. The lift generated by the rotation of the propeller 10 can lift the floating platform 1 off the water surface to achieve flight, thereby further expanding the degree of freedom of movement and application scenarios of the floating platform.
[0058] S4. When it is necessary to control the flight height of the floating platform 1, the other end of the pull rope 26 attached to each rope ring 25 can be tied to a fixed point such as a wooden stake in the water or on the shore. At this time, the floating platform 1 can be fixed and limited from all directions by pulling the rope 26 so that the floating platform 1 is suspended at a fixed height, thereby preventing the floating platform 1 from flying upward and causing it to leave the water too high.
[0059] S5. When the floating platform 1, which is off the water surface, falls from a height to the water surface due to an accident, it will first come into contact with the buffer plate 11. At this time, the elasticity generated by each airbag 13 can play a role in buffering and absorbing energy, so as to prevent the bottom of the floating platform 1 from being directly impacted by the water surface and causing damage or turbulence to the floating platform 1.
[0060] S6. When the floating platform 1 is not in flight need, the propeller 10 can be rotated around the fixed axis between the hinge seats 14 so that each propeller 10 can be folded and hidden, thereby reducing the space occupied.
[0061] S7. When the floating platform 1 has no flight requirements and each propeller 10 is folded and hidden, the protective cover 15 can be placed on the bottom of each fixing plate 3, and each stud 17 can be aligned and passed through the corresponding positioning hole 16. At this time, the first nut 18 is threaded onto each stud 17 and tightened. The protective cover 15 can be fixed by the mutual cooperation between the stud 17, the positioning hole 16, and the first nut 18 to prevent it from loosening. The protective cover 15 can effectively protect the power components to prevent them from failing to work properly due to water or dust or impact.
[0062] Example 2:
[0063] Please see Figure 8-9 As shown in Embodiment 1, a high-pressure water jet assembly can be added to the intelligent floating platform capable of flight. This addresses the problem that the platform 1 cannot achieve flight when the number of passengers exceeds the maximum lift provided by the power unit. The high-pressure water jet assembly includes several mounting brackets, which are fixed to the four side walls of the platform 1. A high-pressure water pump is mounted on each bracket, and a suction pipe and a spray pipe are installed on the pump. The other end of the suction pipe extends underwater, while the other end of the spray pipe is close to the water surface. When it is necessary to increase the lift of the platform 1, the high-pressure water pump can be driven to pump water through the suction pipe and spray the pumped water downwards at high speed through the spray pipe. According to Newton's third law, the reaction force of the downward water jet can push the platform 1 upwards, creating an "anti-gravity" effect to ensure that the platform 1 has sufficient lift.
[0064] Example 3:
[0065] Please see Figure 10-11As shown, the high-pressure water jet assembly described in Embodiment 2 can be replaced with an air-filling assembly, which can also solve the problem that the floating platform 1 cannot achieve ascent and flight when the number of people on the platform exceeds the maximum lift provided by the power assembly. The air-filling assembly includes an air duct, a balloon, and a hydrogen cylinder. The air duct can be fixed to the top of each fixed column 22. An air valve is installed on the air duct, and a balloon is installed at the end of the air duct. The balloon can be fixed by rope or other means to prevent it from falling off. The air duct can be connected to the mouth of the hydrogen cylinder. Hydrogen can be introduced into the air duct through the hydrogen cylinder. Hydrogen can be introduced into each balloon through each air duct. After the balloon is filled with hydrogen, it can gradually expand until it is full. At this time, multiple balloons filled with hydrogen can also provide additional lift to the floating platform 1 to ensure that the floating platform 1 has sufficient lift.
[0066] The circuits, electronic components, and chip modules involved in this invention are all existing technologies, which can be fully implemented by those skilled in the art, and need not be elaborated upon. The content protected by this invention does not involve improvements to the software and methods.
[0067] All standard parts used in the application documents can be purchased from the market. All components in this application documents can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art.
[0068] The working principle of this invention is:
[0069] In use, the user stands on the floating platform 1 and holds onto the horizontal bar 23 and vertical bar 24 to maintain balance and prevent accidental fall into the water. The power supply 4 simultaneously powers the motors 8 in each power component, driving them to rotate the transmission base 9 and the propellers 10. The lift generated by the rotating propellers 10 lifts the floating platform 1 off the water, achieving flight and further expanding the floating platform's freedom of movement and application scenarios. When controlling the flight height of the floating platform 1, the other end of the pull rope 26 attached to each rope loop 25 can be tied to a fixed point in the water or on the shore, such as a wooden stake. The pull rope 26 can then fix and limit the floating platform 1 from various directions, keeping it suspended at a fixed height and preventing it from flying too high off the water. If the floating platform 1 accidentally falls back to the water, it will first... First, it contacts the buffer plate 11. At this time, the elasticity generated by each airbag 13 can play a buffering and energy absorption role to prevent the bottom of the floating platform 1 from being directly impacted by the water surface, causing damage or turbulence to the floating platform 1. When the floating platform 1 does not need to fly, the propeller 10 can be rotated around the fixed axis between the hinge seats 14 so that each propeller 10 can be folded and hidden, thereby reducing the space occupied. When the floating platform 1 does not need to fly and each propeller 10 is folded and hidden, the protective cover 15 can be placed on the top of each storage slot 3, and each stud 17 is aligned and passes through the corresponding positioning hole 16. At this time, the first nut 18 is threaded onto each stud 17 and tightened. The protective cover 15 can be fixed by the mutual cooperation between the stud 17, the positioning hole 16, and the first nut 18 to prevent it from loosening. The protective cover 15 can effectively protect the power component to prevent it from being unable to work properly due to water or dust or collision.
[0070] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. A flightable intelligent floating platform, characterized in that, The system includes a floating platform (1), with an installation groove (2) at the center of the top surface of the floating platform (1), and fixed plates (3) fixedly connected to the four outer walls of the floating platform (1). The floating platform has wire holes, a power supply (4) is installed in the installation groove (2), and a cover plate (5) is installed on the top of the installation groove (2). A handle (6) is fixedly connected to the top of the cover plate (5). A power component is provided at the bottom of each fixed plate (3). Several upper buffer pads (7) are fixedly connected to the bottom surface of the floating platform (1), and a buffer component is provided below the floating platform (1). The power assembly includes a motor (8), which is installed at the bottom of each fixed plate (3) and electrically connected to a power supply (4) via wires. The bottom end of the output shaft of the motor (8) is fixedly connected to a transmission seat (9), and several propellers (10) are installed on the transmission seat (9). The buffer assembly includes a buffer plate (11), and a number of lower buffer pads (12) are fixedly connected to the top surface of the buffer plate (11). Each lower buffer pad (12) is fixedly connected to the top surface of an airbag (13). The airbag (13) is provided with an inflation port, and its top is fixedly connected to the bottom of the corresponding upper buffer pad (7).
2. The intelligent floating platform capable of flight on water according to claim 1, characterized in that, The transmission seat (9) is circular, and several pairs of hinge seats (14) are fixedly connected to its side wall. A fixed shaft is fixedly connected between each pair of hinge seats (14). The propeller (10) is located between each pair of hinge seats (14). The fixed shaft passes through the end of each propeller (10), and its shaft body is provided with a damping sleeve.
3. The intelligent floating platform capable of flight on water according to claim 1, characterized in that, Each of the fixed plates (3) is equipped with a protective cover (15) at its bottom. The protective cover (15) is circular, with its top edge protruding outward and having several positioning holes (16). Several studs (17) are fixedly connected to the bottom of the fixed plate (3). The number of studs (17) is the same as the number of positioning holes (16), and their diameter is equal to the diameter of the positioning holes (16). The center of each stud (17) corresponds one-to-one with the center of each positioning hole (16). Each stud (17) is threaded with a first nut (18) that matches it.
4. The intelligent floating platform capable of flight on water according to claim 1, characterized in that, The upper buffer pad (7) and the lower buffer pad (12) are both circular, and they are the same in number and have the same diameter. The upper buffer pad (7) and the lower buffer pad (12) are arranged in a linear array along the bottom surface of the floating platform (1) and the top surface of the buffer plate (11), respectively. The center of each upper buffer pad (7) corresponds one-to-one with the center of each lower buffer pad (12).
5. The intelligent floating platform capable of flight on water according to claim 1, characterized in that, Both the buffer plate (11) and the floating platform (1) are square with equal side lengths. The buffer plate (11) has guide holes (19) at its four corners. A guide rod (20) is inserted into the guide hole (19). The diameter of the guide rod (20) is equal to the diameter of the guide hole (19). Its top end is fixedly connected to the bottom of the floating platform (1). The guide rod (20) has an external thread and is threaded to a second nut (21) that matches it. The second nut (21) is located below the buffer plate (11).
6. The intelligent floating platform capable of flight on water according to claim 1, characterized in that, Fixed columns (22) are fixedly connected at the four corners of the top of the floating platform (1). A pair of horizontal bars (23) are fixedly connected between each pair of adjacent fixed columns (22). Several vertical bars (24) are fixedly connected between the pair of horizontal bars (23). The vertical bars (24) are equidistantly linearly distributed along the length direction of the horizontal bars (23).
7. The flyable intelligent floating platform according to claim 1, characterized in that, The side wall of the floating platform (1) is fixedly connected with several rope rings (25). The rope rings (25) are located at the four corners of the floating platform (1), and the rope rings (25) are tied with pull ropes (26).
8. The method of using a flightless intelligent floating platform according to claim 1, characterized in that, This is achieved using a wingless intelligent floating platform as described in any one of claims 1-7, comprising the following steps: S1. The user stands on the floating platform (1) and holds onto the horizontal bar (23) and the vertical bar (24). S2. Power is supplied to the motors (8) in each power component simultaneously through the power source (4) to drive each motor (8) to drive the transmission base (9) and each propeller (10) to rotate. S3. The lift generated by the rotation of the propeller (10) can lift the floating platform (1) off the water surface to achieve the purpose of flight, thereby further expanding the degree of freedom of movement and application scenarios of the floating platform; S4. When it is necessary to control the flight height of the floating platform (1), the other end of the pull rope (26) attached to each rope loop (25) can be tied to a fixed point such as a wooden stake in the water or on the shore. At this time, the floating platform (1) can be fixed and limited from all directions by the pull rope (26) so that the floating platform (1) is suspended at a fixed height, thereby preventing the floating platform (1) from flying upward and causing it to be too high off the water. S5. When the floating platform (1) that has left the water surface falls from a height to the water surface due to an accident, it will first come into contact with the buffer plate (11). At this time, the elasticity generated by each airbag (13) can play a role in buffering and absorbing energy, so as to prevent the bottom of the floating platform (1) from being directly impacted by the water surface and causing damage or turbulence to the floating platform (1). S6. When the floating platform (1) does not require flight, the propeller (10) can be rotated around the fixed axis between the hinge seats (14) so that each propeller (10) can be folded and hidden, thereby reducing the space occupied. S7. When the floating platform (1) has no flight requirements and each propeller (10) is folded and hidden, the protective cover (15) can be placed on the bottom of each fixed plate (3), and each stud (17) can be aligned and passed through the corresponding positioning hole (16). At this time, the first nut (18) is threaded onto each stud (17) and tightened. The protective cover (15) can be fixed by the mutual cooperation between the stud (17), positioning hole (16), and first nut (18) to prevent it from loosening. The protective cover (15) can effectively protect the power components to prevent them from being unable to work properly due to water or dust or collision.