Sound wave precipitation enhancement and energy management system

By combining compressed air energy storage modules and renewable energy modules (such as wind and solar), the acoustic rain-increasing and energy management system solves the problems of power system dependence and instability in the existing technology, achieving the effect of reducing operating costs and improving work efficiency.

CN119944981APending Publication Date: 2025-05-06TIANJIN DAYU WATER-SAVING CO LTD
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Patent Information

Application Number
CN202510209186.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-05-06

AI Technical Summary

Technical Problem

The power system of existing acoustic rain-enhancing equipment relies on in-connected power grid, wind or solar power supply, resulting in high operating costs and unstable energy supply, affecting the working efficiency of the equipment.

Method used

Design a sonic rain-enhancing and energy management system, including a sonic rain-enhancing component, compressed air energy storage component and energy regeneration component. The energy regeneration module converts wind and solar energy into renewable electricity to supply compressed air energy storage modules. The compressed air energy storage module provides power to the acoustic rain-enhancing module during peak electricity consumption.

Benefits of technology

The system can ensure stable energy supply without relying on traditional power grids, reduce operating costs, avoid high electricity bills, and improve the working efficiency of sound wave rain-enhancing equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a sound wave precipitation enhancement and energy management system. The sound wave precipitation enhancement and energy management system comprises a sound wave precipitation enhancement assembly, a compressed air energy storage assembly and an energy regeneration assembly. The energy regeneration assembly converts natural energy into regenerated electric energy and supplies power to the compressed air energy storage assembly. The compressed air energy storage assembly compresses air and stores energy in the non-electricity peak period, converts compressed air into power supply electric energy in the electricity peak period and supplies power to the sound wave precipitation enhancement assembly. The sound wave rain enhancement assembly promotes water vapor in the cloud layer of the target area to be condensed into raindrops by emitting sound waves conforming to the target frequency, and therefore the rain enhancement effect is achieved. According to the invention, the compressed air energy storage assembly stores energy in a non-power-consumption peak period and releases energy in a power-consumption peak period, so that high electric charge is avoided, and the operation cost is effectively reduced. Compared with a power supply mode purely depending on solar energy and wind energy, the method can ensure that the sound wave precipitation enhancement equipment can work efficiently and stably under various environmental conditions.
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Description

Technical Field

[0001] The present application relates to the field of meteorological management technology, and in particular to an acoustic rainfall enhancement and energy management system. Background Art

[0002] Acoustic rain enhancement equipment is a technical device that aims to promote the condensation of water droplets or ice crystals in the cloud layer through sound wave technology, thereby increasing the probability of rainfall. Existing acoustic rain enhancement equipment usually uses a sound wave generator to generate high-intensity sound wave signals. When these sound waves propagate in the air, they cause air vibration and disturbance, which in turn causes water droplets or ice crystals in the cloud layer to collide with each other and condense. When the water droplets or ice crystals condense to a large enough size, they will fall due to gravity to form precipitation, thereby achieving the effect of rain enhancement.

[0003] However, the power supply system of existing acoustic rainmaking equipment often relies on internal power grid, wind power or solar power. Acoustic rainmaking equipment that relies on power grid faces the problem of high power grid electricity charges during peak hours, which increases operating costs. On the other hand, although solar and wind power supply methods are environmentally friendly, they are greatly affected by weather and time conditions, resulting in unstable energy supply, which further affects the working efficiency of acoustic rainmaking equipment.

[0004] Therefore, how to reduce operating costs and improve energy supply stability to ensure that acoustic rainmaking equipment can work efficiently and stably under various environmental conditions is a technical problem that technical personnel in this field urgently need to solve. Summary of the invention

[0005] Based on the above problems, the present application provides an acoustic wave rainfall enhancement and energy management system, which can reduce operating costs and improve energy supply stability to ensure that the acoustic wave rainfall enhancement equipment can operate efficiently and stably under various environmental conditions.

[0006] The embodiments of the present application disclose the following technical solutions:

[0007] An acoustic wave rainfall enhancement and energy management system, the system comprising: an acoustic wave rainfall enhancement component, a compressed air energy storage component and an energy regeneration component;

[0008] The acoustic wave rain enhancement component is electrically connected to the compressed air energy storage component; the compressed air energy storage component is electrically connected to the energy regeneration component;

[0009] The energy regeneration component is used to convert natural energy into renewable electric energy, so as to utilize the renewable electric energy to power the compressed air energy storage component; the natural energy includes wind energy and solar energy;

[0010] The compressed air energy storage component is used to compress air to obtain compressed air, and convert the compressed air into power supply energy;

[0011] The compressed air energy storage component is also used to use the power supply electric energy to power the acoustic wave rainfall enhancement component under target conditions; the target conditions include the acoustic wave rainfall enhancement component being used during a peak electricity consumption period;

[0012] The acoustic wave rain enhancement component is used to transmit acoustic waves that meet the target frequency to the target area to promote the condensation of water vapor in the cloud layer in the target area into raindrops.

[0013] In a possible implementation, the acoustic wave rainfall enhancement component is disposed on a base; the acoustic wave rainfall enhancement component can rotate on the base;

[0014] The acoustic wave rain enhancement assembly comprises a support platform, a slide plate, a first connecting rod, a second connecting rod, a support rod, a rotating shaft, a rotating cylinder, a threaded cylinder, a top plate, an acoustic wave generator and a first motor;

[0015] The support platform is arranged on the base, and the support platform rotates on the base through the driving action of the driving assembly; a slide groove is opened on the support platform circumferentially, and the first end of the slide plate is connected to the slide groove; the two ends of the connecting rod one and the connecting rod two are hinged to the slide plate and the support rod respectively; the support rod is fixed between the rotating cylinder and the threaded cylinder; the rotating shaft is arranged on the support platform; the rotating cylinder is slidably connected to the rotating shaft; the threaded cylinder is threadedly connected to the rotating shaft; the top plate is connected to the first end of the rotating shaft; the first motor is fixed to the bottom of the support platform; the rotor end of the first motor is connected to the second end of the rotating shaft; the sound wave generator is connected to the second end of the slide plate;

[0016] The support platform is used to guide the slide plate to move in a circumferential direction under the action of the driving assembly;

[0017] The first motor is used to provide a first driving force to drive the rotating shaft to rotate;

[0018] The rotating shaft is used to drive the threaded barrel to rotate under the driving of the first driving force;

[0019] The threaded cylinder is used to pull the slide plate to move in the slide groove provided on the support platform through the support rod, the first connecting rod and the second connecting rod under the drive of the rotating shaft;

[0020] The slide plate is used to drive the sound wave generator to move along the slide groove of the support platform;

[0021] The sound wave generator is used to generate sound waves that meet the target frequency under the drive of the skateboard.

[0022] In a possible implementation, the driving assembly includes a turntable, a vertical pole, an outer gear ring, a gear, a mounting frame, and a second motor;

[0023] The turntable is arranged on the outer gear ring of the base; the gear is arranged on the top of the base; the outer gear ring is meshed with the gear; the vertical pole is circumferentially arranged between the turntable and the support platform; the mounting frame is fixed on the top of the base; the second motor is fixed on the top of the mounting frame; the rotor end of the second motor is connected to the gear;

[0024] The second motor is used to provide a second driving force to drive the gear to rotate;

[0025] The gear is used to drive the outer gear ring to rotate under the driving of the second driving force;

[0026] The outer gear ring is used to drive the turntable to rotate under the drive of the gear;

[0027] The turntable is used to drive the support platform to rotate under the drive of the outer gear ring.

[0028] In a possible implementation, the energy regeneration assembly includes a tower, a connection block, a fixing rod, a solar panel, a wind turbine, and blades;

[0029] The first end of the tower is fixed on the base; the connecting block is fixed at the middle position of the tower; the first end of the fixing rod is fixed on the connecting block, and the second end of the fixing rod is connected to the solar panel; the wind turbine is fixed to the second end of the tower; the output shaft of the wind turbine is fixedly connected to the blade;

[0030] The blades are used to rotate under the action of wind to generate rotational kinetic energy;

[0031] The wind turbine is used to convert the rotational kinetic energy into the regenerative electrical energy;

[0032] The solar panel is used to convert solar energy into the renewable electric energy.

[0033] In a possible implementation, the compressed air energy storage assembly includes an air compressor, an air pipeline, a high-pressure air storage tank, a turbine, and an electricity storage module;

[0034] The air compressor is fixed on the base, and the output end of the air compressor is connected to the first end of the air pipe; the second end of the air pipe is connected to the top of the high-pressure gas storage tank; the high-pressure gas storage tank is fixed on the base, and a gas outlet is provided on the side of the high-pressure gas storage tank, and the gas outlet is connected to the turbine; the turbine is electrically connected to the power storage module;

[0035] The air compressor is used to compress air to obtain the compressed air;

[0036] The air delivery pipe is used to deliver the compressed air to the high-pressure air storage tank;

[0037] The high-pressure gas storage tank is used to store the compressed air;

[0038] The turbine is used to receive the compressed air and convert the mechanical energy generated when the compressed air drives the turbine blades of the turbine to rotate into the power supply electric energy;

[0039] The power storage module is used to store the power supply energy.

[0040] In a possible implementation, two fixing rods are provided and symmetrically fixed on two sides of the connecting block, and solar panels are fixed on ends of the two fixing rods that are away from each other.

[0041] In a possible implementation manner, the first motor is fixed to the bottom of the support platform through a support frame.

[0042] In a possible implementation, the surface of the rotating shaft is provided with an external thread threadedly connected to the threaded barrel.

[0043] In a possible implementation, there is a gap between the rotating drum and the top of the support platform.

[0044] In a possible implementation, the target situation further includes:

[0045] The acoustic rain enhancement assembly is used during a power grid outage; or

[0046] The acoustic rain-making component is used during a period when the renewable energy supply is unstable.

[0047] Compared with the prior art, this application has the following beneficial effects:

[0048] The present application provides an acoustic rain enhancement and energy management system, which includes an acoustic rain enhancement component, a compressed air energy storage component and an energy regeneration component. The acoustic rain enhancement component is electrically connected to the compressed air energy storage component, and the compressed air energy storage component is electrically connected to the energy regeneration component. The energy regeneration component powers the compressed air energy storage component by converting natural energy such as wind energy and solar energy into renewable electrical energy. The compressed air energy storage component compresses air into compressed air and converts it into electrical energy, which is used to supply power to the acoustic rain enhancement component, especially during peak hours of electricity consumption. The acoustic rain enhancement component uses the power supply electrical energy to emit sound waves that meet the target frequency, promoting the condensation of water vapor in the clouds in the target area into raindrops. The present application combines compressed air energy storage components and renewable energy components (such as wind energy and solar energy), and the system can ensure a stable energy supply without relying on traditional power grids. Especially during peak hours of electricity consumption, the system can provide electrical energy through compressed air energy storage components, reduce dependence on the power grid, and thus avoid the problem of high electricity bills. At the same time, using compressed air energy storage components as acoustic rain-making components can avoid the problem of unstable energy supply caused by the fact that solar and wind power supply methods are greatly affected by weather and time conditions, further improving the working efficiency of acoustic rain-making equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0049] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0050] Figure 1 A structural diagram of an acoustic rainfall enhancement and energy management system provided in an embodiment of the present application;

[0051] Figure 2 A structural diagram of an acoustic rain enhancement assembly provided in an embodiment of the present application;

[0052] Figure 3 A structural diagram of another acoustic rain enhancement component provided in an embodiment of the present application. DETAILED DESCRIPTION

[0053] In order to enable those skilled in the art to better understand the solution of the present application, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0054] Acoustic rain enhancement equipment is a device that uses acoustic wave technology to promote the condensation of water droplets or ice crystals in the clouds, thereby increasing the probability of rainfall. The device usually generates a high-intensity acoustic wave signal from an acoustic wave generator. When the sound wave propagates through the air, it will cause vibration and disturbance of the air, which in turn causes the water droplets or ice crystals in the clouds to collide with each other and condense. When the water droplets or ice crystals condense to a large enough size, they will fall to form precipitation under the action of gravity, thereby achieving the function of increasing rainfall. However, existing acoustic rain enhancement equipment often relies on power grids or wind and solar energy for power supply. Power grid power supply has higher electricity charges during peak hours, resulting in increased operating costs; while the energy of wind and solar energy is greatly affected by weather and time changes, resulting in limited working efficiency and stability of the equipment.

[0055] In order to solve this problem, an acoustic rain enhancement and energy management system is provided in an embodiment of the present application, which integrates an acoustic rain enhancement component, a compressed air energy storage component and an energy regeneration component. The acoustic rain enhancement component is electrically connected to the compressed air energy storage component, and the compressed air energy storage component is electrically connected to the energy regeneration component. The energy regeneration component converts natural energy such as wind energy and solar energy into regenerated electric energy and supplies power to the compressed air energy storage component. The compressed air energy storage component compresses air and converts it into electric energy to provide power for the acoustic rain enhancement component during peak power consumption periods. The acoustic rain enhancement component promotes the condensation of water vapor in the clouds in the target area into raindrops by emitting sound waves that meet specific frequencies. The present application stores energy during non-peak power consumption periods through the compressed air energy storage component and releases energy during peak power consumption periods, thereby avoiding high electricity bills and effectively reducing operating costs. Compared with the method of using solar and wind energy for power supply, the present application can ensure that the acoustic rain enhancement equipment can work efficiently and stably under various environmental conditions.

[0056] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0057] See also Figure 1 , Figure 1 This is a structural diagram of an acoustic rainfall enhancement and energy management system provided in an embodiment of the present application. Figure 1 The acoustic wave rainfall enhancement and energy management system shown includes: an acoustic wave rainfall enhancement component, a compressed air energy storage component and an energy regeneration component;

[0058] The acoustic wave rain enhancement component is electrically connected to the compressed air energy storage component; the compressed air energy storage component is electrically connected to the energy regeneration component;

[0059] The energy regeneration component is used to convert natural energy into renewable electric energy, so as to utilize the renewable electric energy to power the compressed air energy storage component; the natural energy includes wind energy and solar energy;

[0060] The compressed air energy storage component is used to compress air to obtain compressed air, and convert the compressed air into power supply energy;

[0061] The compressed air energy storage component is also used to use the power supply electric energy to power the acoustic wave rainfall enhancement component under target conditions; the target conditions include the acoustic wave rainfall enhancement component being used during a peak electricity consumption period;

[0062] The acoustic wave rain enhancement component is used to transmit acoustic waves that meet the target frequency to the target area to promote the condensation of water vapor in the cloud layer in the target area into raindrops.

[0063] See also Figures 1 to 3 The acoustic wave rainfall enhancement component is arranged on a base 1. The acoustic wave rainfall enhancement component can rotate on the base 1.

[0064] Specifically, the acoustic wave rain enhancement assembly includes a support platform 4, a slide plate 6, a connecting rod 1 7, a connecting rod 2 8, a support rod 9, a rotating shaft 10, a rotating cylinder 11, a threaded cylinder 12, a top plate 13, an acoustic wave generator 14, and a first motor 19.

[0065] The support platform 4 is arranged on the base 1, and the support platform 4 rotates on the base 1 through the driving action of the driving component; a slide groove 5 is opened circumferentially on the support platform 4, and the top of the slide plate 6 (i.e. the first end of the slide plate 6) is arranged in the slide groove 5, and the top of the slide plate 6 can slide in the slide groove 5; the two ends of the connecting rod 1 7 and the connecting rod 2 8 are respectively hinged with the slide plate 6 and the support rod 9; the support rod 9 is fixed between the rotating cylinder 11 and the threaded cylinder 12; the rotating shaft 10 is arranged on the support platform 4, and the rotating shaft 10 can rotate on the support platform 4; the rotating cylinder 11 is slidably connected to the rotating shaft 10; the threaded cylinder 12 is threadedly connected to the rotating shaft 10; the top plate 13 is connected to the first end of the rotating shaft 10; the first motor 19 is fixed at the bottom of the support platform 4; the rotor end of the first motor 19 is connected to the second end of the rotating shaft 10; the sound wave generator 14 is fixed on the top of the slide plate 6 (i.e. the second end of the slide plate 6).

[0066] In a possible implementation, the first motor 19 is fixed to the bottom of the support platform 4 via a support frame.

[0067] In a possible implementation, the surface of the rotating shaft 10 is provided with an external thread that is threadably connected to the threaded barrel 12 .

[0068] In a possible implementation, there is a gap between the rotating drum 11 and the top of the support platform 4 .

[0069] Wherein, the support platform 4 is used to guide the slide plate 6 to move in a circumferential direction under the action of the driving assembly;

[0070] The first motor 19 is used to provide a first driving force to drive the rotating shaft 10 to rotate;

[0071] The rotating shaft 10 is used to drive the threaded barrel 12 to rotate under the driving of the first driving force;

[0072] The threaded cylinder 12 is used to pull the slide plate 6 to move in the slide groove 5 provided on the support platform 4 through the support rod 9, the connecting rod 1 7 and the connecting rod 2 8 under the drive of the rotating shaft 10;

[0073] The slide plate 6 is used to drive the sound wave generator 14 to move along the slide groove 5 of the support platform 4;

[0074] The sound wave generator 14 is used to generate sound waves that meet the target frequency under the drive of the slide plate 6.

[0075] Specifically, the components of the acoustic rain enhancement assembly and their interactions are as follows:

[0076] The support platform 4 has the function of supporting the entire acoustic rain enhancement assembly and rotating on the base 1 through the action of the driving assembly. A slide groove 5 is provided on the support platform 4 to guide the slide plate 6 to move in a circumferential direction.

[0077] Function of the slide plate 6: sliding in the slide groove 5 of the support platform 4, realizing position change through the hinge control of the connecting rod 1 7 and the connecting rod 2 8, thereby driving the sound wave generator 14 to move along the circumferential direction of the support platform 4.

[0078] The function of connecting rod 1 7 and connecting rod 2 8 is that the two ends are hinged to the slide plate 6 and the support rod 9 respectively. Connecting rod 1 7 and connecting rod 2 8 enable the slide plate 6 to move freely in the slide groove 5, and ensure that the position change of the slide plate 6 is coordinated with the movement of the threaded cylinder 12.

[0079] Function of the support rod 9: fixed between the rotating drum 11 and the threaded drum 12, connecting the connecting rod 1 7, one end of the connecting rod 2 8 and the slide plate 6, forming a mechanical linkage system to ensure that the movement of the slide plate 6 is controlled by the action of the rotating drum 11 and the threaded drum 12.

[0080] The function of the rotating shaft 10 is to be arranged on the supporting platform 4, on which the rotating cylinder 11 can slide, and the threaded cylinder 12 is fixed on the rotating shaft 10 by means of external threads cooperating with the threads on the rotating shaft 10.

[0081] The function of the rotating drum 11 is to be slidably connected to the rotating shaft 10 . When the threaded drum 12 moves up and down along the rotating shaft 10 , the rotating drum 11 slides on the rotating shaft 10 along with the movement of the threaded drum 12 .

[0082] Function of the threaded barrel 12: It is threadedly connected to the rotating shaft 10. When the first motor 19 drives the rotating shaft 10 to rotate, the threaded barrel 12 moves up and down along the rotating shaft 10 due to the threaded fit, thereby pulling the slide plate 6 and the sound wave generator 14 to move along the slide groove 5 of the support platform 4, so that the position of the sound wave generator 14 changes.

[0083] The top plate 13 is fixed to the first end of the rotating shaft 10 to limit the threaded tube 12 from sliding downward excessively, thereby ensuring the stability of the entire structure.

[0084] The function of the sound wave generator 14 is to be fixed on the second end of the slide plate 6, generate sound waves of a specific frequency and intensity, promote the condensation of water vapor in the clouds in the target area into raindrops, and enhance the rainfall enhancement effect. The position of the slide plate 6 can be adjusted by moving it to cover different areas.

[0085] The first motor 19 is fixed at the bottom of the support platform 4 to provide power to drive the rotating shaft 10 to rotate. After starting, the threaded barrel 12 moves up and down along the rotating shaft 10 through the external thread and the threaded barrel 12, and then the slide plate 6 and the sound wave generator 14 thereon are pulled to move along the circumferential direction of the support platform 4 through the guiding effect of the slide groove 5, so as to realize the flexible adjustment of the position of the sound wave generator 14.

[0086] It should be noted that the logical relationship between the various components of the acoustic rain enhancement assembly is:

[0087] After the first motor 19 is started, it drives the shaft 10 to rotate. The rotation of the shaft 10 causes the threaded barrel 12 to move along its spiral path.

[0088] The movement of the threaded cylinder 12 drives the slide plate 6 to move in the slide groove 5 provided on the support platform 4 through the action of the support rod 9 and the connecting rod 1 7 and the connecting rod 2 8 .

[0089] The movement of the slide plate 6 drives the sound wave generator 14 to move accordingly through its second end, thereby adjusting the position of the sound wave generator 14 so that it can better cover the target area.

[0090] The whole process ensures the stability of the system through the limiting effect of the top plate 13 on the threaded cylinder 12.

[0091] This whole set of mechanisms enables flexible adjustment of the position of the sound wave generator 14 and improves the rainfall enhancement effect by changing the area covered by the sound waves.

[0092] In general, the working principle of the whole system is to rotate the rotating shaft 10 through the driving action of the first motor 19, thereby driving the relative movement of the rotating cylinder 11 and the threaded cylinder 12. The lifting and lowering of the threaded cylinder 12 pushes the slide plate 6 to move along the circumferential direction of the support platform 4, thereby adjusting the position of the sound wave generator 14 so that it can flexibly cover the target area and improve the rainfall enhancement effect.

[0093] In a possible implementation, the target situation also includes the following two situations:

[0094] The acoustic rain-making components are used during power grid outages: when the power grid fails or is interrupted, the system can provide power through compressed air energy storage components, thereby ensuring that the acoustic rain-making equipment can still operate normally without external power grid support.

[0095] The acoustic rain-making components are used during periods of unstable renewable energy supply: When the wind or solar energy supply fluctuates or is unstable, the system can rely on compressed air energy storage components to provide a stable power supply, ensuring that the acoustic rain-making equipment continues to work effectively when renewable energy cannot provide continuous power supply.

[0096] In a possible implementation, the driving assembly includes a turntable 2 , a vertical pole 3 , an outer gear ring 15 , a gear 16 , a mounting frame 17 and a second motor 18 .

[0097] The turntable 2 is arranged on the outer gear ring 15 of the base 1; the gear 16 is arranged on the top of the base 1; the outer gear ring 15 is meshed with the gear 16; the vertical pole 3 is circumferentially arranged between the turntable 2 and the support platform 4; the mounting frame 17 is fixed on the top of the base 1; the second motor 18 is fixed on the top of the mounting frame 17; the rotor end of the second motor 18 is connected to the gear 16.

[0098] Wherein, the second motor 18 is used to provide a second driving force to drive the gear 16 to rotate;

[0099] The gear 16 is used to drive the outer gear ring 15 to rotate under the driving of the second driving force;

[0100] The outer gear ring 15 is used to drive the turntable 2 to rotate under the drive of the gear 16;

[0101] The turntable 2 is used to drive the support platform 4 to rotate under the drive of the outer gear ring 15 .

[0102] Specifically, in this system, the various components of the drive assembly work together to form a coordinated mechanical transmission and motion system to achieve the rotation of the acoustic wave generator 14 along the circumferential direction of the turntable 2, covering the target cloud layer from multiple angles and improving the rainfall enhancement effect. The following are the functions of the various components of the drive assembly and their interrelationships:

[0103] Function of turntable 2: turntable 2 is set on base 1 and serves as the rotation base of the entire drive system. It can rotate on base 1 to drive the movement of other components.

[0104] Function of the outer gear ring 15: The outer gear ring 15 is fixed to the outside of the turntable 2. The outer gear ring 15 meshes with the gear 16 to form a mechanical transmission. The rotation of the turntable 2 causes the outer gear ring 15 to move along the circumferential direction of the turntable 2, thereby driving the movement of other related components.

[0105] Function of gear 16: gear 16 is mounted on the top of base 1 and meshes with outer gear ring 15. Gear 16 rotates with the start of second motor 18, driving outer gear ring 15 and turntable 2 to rotate, so that the sound wave generator 14 on support platform 4 rotates in the circumferential direction, achieving the purpose of sound wave coverage.

[0106] Function of the mounting frame 17: The mounting frame 17 is fixed on the top of the base 1 to support and fix the position of the second motor 18 and the gear 16, thereby ensuring the stability and reliability of the entire drive assembly.

[0107] Function of the second motor 18: The second motor 18 is fixed on the top of the mounting frame 17. The rotor end is connected to the gear 16. Starting the second motor 18 will drive the gear 16 to rotate, thereby driving the outer gear ring 15 and the turntable 2 to rotate. The second motor 18 provides a power source to enable the entire system to achieve movement.

[0108] Function of the vertical pole 3: The vertical pole 3 is circumferentially arranged between the turntable 2 and the support platform 4. Its function is to keep the support platform 4 stable during the rotation process without tilting or shifting, so as to ensure that the sound wave generator 14 can evenly cover the target cloud layer.

[0109] Function of the support platform 4: The support platform 4 drives the sound wave generator 14 to rotate in the circumferential direction through the rotation of the turntable 2, thereby increasing the range and effect of the sound wave. This part plays the role of supporting the sound wave generator 14 and realizing its movement in the entire system.

[0110] It should be noted that the various components in the driving assembly work together: the second motor 18 provides power, drives the outer gear ring 15 and the turntable 2 to rotate through the gear 16, so that the sound wave generator 14 can rotate in the circumferential direction. The vertical pole 3 ensures the stability of the system, and the support platform 4 ensures the movement path of the sound wave generator 14, ultimately achieving an improved rainfall enhancement effect.

[0111] In a possible implementation, the energy regeneration assembly includes a tower 20 , a connection block 21 , a fixing rod 22 , a solar panel 23 , a wind turbine 24 , and a blade 25 .

[0112] The first end of the tower 20 is fixed on the base 1; the connecting block 21 is fixed at the middle position of the tower 20; the first end of the fixing rod 22 is fixed on the connecting block 21, and the second end of the fixing rod 22 is connected to the solar panel 23; the wind turbine 24 is fixed to the second end of the tower 20; the output shaft of the wind turbine 24 is fixedly connected to the blade 25.

[0113] In a possible implementation, two fixing rods 22 are provided and symmetrically fixed on two sides of the connecting block 21 , and the solar panels 23 are fixed to ends of the two fixing rods 22 that are away from each other.

[0114] Wherein, the blades 25 are used to rotate under the action of wind to generate rotational kinetic energy;

[0115] The wind turbine 24 is used to convert the rotational kinetic energy into the regenerative electrical energy;

[0116] The solar panel 23 is used to convert solar energy into the renewable electric energy.

[0117] Specifically, the various components of the energy regeneration component work together to convert wind and solar energy into electrical energy and effectively store excess energy through the energy storage system. The following are the functions and interactions of the various components:

[0118] Function of tower 20: tower 20 provides support and structural stability for the entire energy regeneration component, ensuring that other components can be in the right position and can work efficiently. The first end of tower 20 is fixed on base 1, which plays a role in bearing and stabilizing. Tower 20 serves as a central supporting structure, and connecting block 21 is fixed in the middle of tower 20 to further ensure the stable connection between various components.

[0119] Function of the connection block 21: The connection block 21 is located in the middle of the tower 20 and is responsible for connecting and fixing other components to ensure that the connection between the components is not loose. The function of the connection block 21 is to fix the fixing rod 22 on the tower 20, acting as a bridge to connect the tower 20 and the fixing rod 22.

[0120] Function of the fixing rod 22: The fixing rod 22 plays a supporting and extending role, connecting the solar panel 23 to the tower 20. Its first end is fixed to the connecting block 21, and the second end is connected to the solar panel 23, thereby supporting and stabilizing the position of the solar panel 23. The fixing rod 22 ensures that the solar panel 23 is firmly installed in the appropriate position so that it can absorb sunlight to the maximum extent. In addition, the fixing rod 22 connects the solar panel 23 to the tower 20 and the connecting block 21 to form a complete structure.

[0121] Solar panel 23: Function: Solar panel 23 is responsible for converting solar energy into electrical energy. When sunlight shines on solar panel 23, solar panel 23 generates direct current, which can be directly used for power supply or storage. Solar panel 23 is connected to tower 20 through fixing rod 22 and fixed in a suitable position for light energy conversion. It works together with wind turbine 24 to form a composite energy system.

[0122] Function of wind turbine 24: wind turbine 24 converts wind energy into electrical energy. When wind acts on blades 25, blades 25 drive wind turbine 24 to rotate, thereby converting mechanical energy into electrical energy for output. Wind turbine 24 is fixed to the second end of tower 20 and connected to blades 25 via an output shaft. Blades 25 drive wind turbine 24 to work by rotating, and wind turbine 24 converts mechanical energy into electrical energy.

[0123] Function of blades 25: Blades 25 rotate under the action of wind, driving the rotation of wind turbine 24. The rotational kinetic energy of blades 25 is transmitted to wind turbine 24 through the output shaft, driving the generator to generate electricity. Blades 25 are connected to wind turbine 24 through the output shaft, and the wind drives blades 25 to rotate, thereby driving the generator to generate electricity. Blades 25 are located at the top of tower 20 to ensure that wind energy can be effectively captured.

[0124] It should be noted that the synergistic effect of the various components in the energy regeneration assembly includes: wind power is transmitted to the wind turbine 24 through the blades 25, driving the rotation of the wind turbine 24 and converting mechanical energy into electrical energy. The solar panel 23 is connected to the tower 20 through the fixing rod 22 to receive sunlight to the greatest extent and convert it into electrical energy. Both wind power generation and solar power generation can be stored in the compressed air energy storage system to ensure that the system can still provide electricity in the absence of wind or sunlight. The tower 20 provides support for all components, and the connecting block 21 and the fixing rod 22 ensure the stable connection and coordinated work of each component.

[0125] The design of this energy regeneration component structure ensures the complementarity of wind energy and solar energy, allowing the energy regeneration system to work more efficiently and ensure stable power output.

[0126] In a possible implementation, the compressed air energy storage assembly includes an air compressor 26, an air pipeline 27, a high-pressure air storage tank 28, a turbine 29, and an electricity storage module 30;

[0127] The air compressor 26 is fixed on the base 1, and the output end of the air compressor 26 is connected to the first end of the air pipe 27; the second end of the air pipe 27 is connected to the top of the high-pressure gas storage tank 28; the high-pressure gas storage tank 28 is fixed on the base 1, and the side of the high-pressure gas storage tank 28 is provided with an air outlet, and the air outlet is connected to the turbine 29; the turbine 29 is electrically connected to the power storage module 30;

[0128] The air compressor 26 is used to compress the air to obtain the compressed air;

[0129] The air delivery pipe 27 is used to deliver the compressed air to the high-pressure air storage tank 28;

[0130] The high-pressure gas storage tank 28 is used to store the compressed air;

[0131] The turbine 29 is used to receive the compressed air and convert the mechanical energy generated when the compressed air drives the turbine blades 25 of the turbine 29 to rotate into the power supply energy;

[0132] The power storage module 30 is used to store the power supply energy.

[0133] Specifically, the following are the functions of the various components of the compressed air energy storage assembly and their interrelationships:

[0134] Function of air compressor 26: air compressor 26 is fixed on base 1, and its function is to compress air from atmosphere to high pressure state. The output end of air compressor 26 is connected to the first end of air pipe 27 to provide compressed air.

[0135] Function of the air delivery pipe 27: The air delivery pipe 27 connects the air compressor 26 and the high-pressure air storage tank 28. It delivers compressed air from the air compressor 26 to the high-pressure air storage tank 28, ensuring that the air can be stored in the air storage tank for subsequent energy release.

[0136] Function of high-pressure gas storage tank 28: High-pressure gas storage tank 28 is fixed on base 1 and is where compressed air is stored. It is provided with an air outlet on its side for releasing compressed air into turbine 29. The top of the gas storage tank is connected to air compressor 26 through air pipe 27. In order to reduce the influence of condensed water, the design of air pipe 27 allows compressed air to extend to the bottom of the gas storage tank.

[0137] Function of turbine 29: turbine 29 receives compressed air by connecting to the air outlet of high-pressure air storage tank 28. When high-pressure air passes through turbine 29, turbine 29 rotates using the kinetic energy of the air, thereby converting mechanical energy into electrical energy.

[0138] Function of the power storage module 30: The electric energy generated by the turbine 29 enters the power storage module 30 through an electrical connection, and the converted electric energy is stored for subsequent use. The electric energy can be directly supplied to the load, or stored for future demand.

[0139] It should be noted that the synergistic effects of the various components in the compressed air energy storage assembly include: the compressed air energy storage assembly relies on wind and solar power for power supply. When these renewable energy sources are sufficient, the wind turbine 24 and the solar panel 23 provide power support for the air compressor 26, so that the air can be compressed and stored. When the demand for electricity increases, the air stored in the high-pressure air tank 28 is released and converted into electrical energy through the turbine 29 to supply the load or storage. This system can reduce the impact on the environment while achieving energy storage and regulation, and is an effective energy utilization solution.

[0140] The present application provides an acoustic rain enhancement and energy management system, which includes an acoustic rain enhancement component, a compressed air energy storage component and an energy regeneration component. Among them, the acoustic rain enhancement component is electrically connected to the compressed air energy storage component, and the compressed air energy storage component is electrically connected to the energy regeneration component. The energy regeneration component converts natural energy (such as wind energy and solar energy) into renewable electric energy to power the compressed air energy storage component. The compressed air energy storage component compresses the air and stores energy during non-peak power consumption periods, converts the compressed air into power supply electric energy during peak power consumption periods, and powers the acoustic rain enhancement component under target conditions (such as peak power consumption periods). The acoustic rain enhancement component promotes the condensation of water vapor in the clouds into raindrops by emitting sound waves that meet the target frequency to the target area, thereby achieving a rain enhancement effect. By combining compressed air energy storage components and renewable energy components (such as wind energy and solar energy), the present application can ensure a stable energy supply without relying on traditional power grids. Especially during peak hours of electricity consumption, the system can provide electricity through compressed air energy storage components, reducing dependence on the power grid and thus avoiding the problem of high electricity bills. At the same time, using compressed air energy storage components to power the acoustic rain enhancement components can avoid the problem of unstable energy supply caused by weather and time conditions in solar and wind power supply methods, further improving the working efficiency of acoustic rain enhancement equipment.

[0141] The above is a detailed introduction to an acoustic rain enhancement and energy management system provided by the present application. The various embodiments in the specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the embodiments can be referenced to each other. For the device disclosed in the embodiment, since it corresponds to the method disclosed in the embodiment, the description is relatively simple, and the relevant parts can be referred to the method part description. It should be pointed out that for ordinary technicians in this technical field, without departing from the principles of the present application, several improvements and modifications can be made to the present application, and these improvements and modifications also fall within the scope of protection of the claims of the present application.

[0142] It should be understood that in the present application, "at least one (item)" means one or more, and "plurality" means two or more. "And / or" is used to describe the association relationship of associated objects, indicating that three relationships may exist. For example, "A and / or B" can mean: only A exists, only B exists, and A and B exist at the same time, where A and B can be singular or plural. The character " / " generally indicates that the objects associated before and after are in an "or" relationship. "At least one of the following" or similar expressions refers to any combination of these items, including any combination of single or plural items. For example, at least one of a, b or c can mean: a, b, c, "a and b", "a and c", "b and c", or "a and b and c", where a, b, c can be single or multiple.

[0143] It should also be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, the elements defined by the sentence "comprise a ..." do not exclude the presence of other identical elements in the process, method, article or device including the elements.

[0144] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present application. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to the embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An acoustic rainfall enhancement and energy management system, characterized in that: The system comprises: an acoustic rain enhancement component, a compressed air energy storage component and an energy regeneration component; The acoustic wave rain enhancement component is electrically connected to the compressed air energy storage component; the compressed air energy storage component is electrically connected to the energy regeneration component; The energy regeneration component is used to convert natural energy into renewable electric energy, so as to utilize the renewable electric energy to power the compressed air energy storage component; the natural energy includes wind energy and solar energy; The compressed air energy storage component is used to compress air to obtain compressed air, and convert the compressed air into power supply energy; The compressed air energy storage component is also used to use the power supply electric energy to power the acoustic wave rainfall enhancement component under target conditions; the target conditions include the acoustic wave rainfall enhancement component being used during a peak electricity consumption period; The acoustic wave rain enhancement component is used to transmit acoustic waves that meet the target frequency to the target area to promote the condensation of water vapor in the cloud layer in the target area into raindrops.

2. The system according to claim 1, characterized in that The acoustic wave rainfall enhancement component is arranged on a base; the acoustic wave rainfall enhancement component can rotate on the base; The acoustic wave rain enhancement assembly comprises a support platform, a slide plate, a first connecting rod, a second connecting rod, a support rod, a rotating shaft, a rotating cylinder, a threaded cylinder, a top plate, an acoustic wave generator and a first motor; The support platform is arranged on the base, and the support platform rotates on the base through the driving action of the driving assembly; a slide groove is opened on the support platform circumferentially, and the first end of the slide plate is connected to the slide groove; the two ends of the connecting rod one and the connecting rod two are hinged to the slide plate and the support rod respectively; the support rod is fixed between the rotating cylinder and the threaded cylinder; the rotating shaft is arranged on the support platform; the rotating cylinder is slidably connected to the rotating shaft; the threaded cylinder is threadedly connected to the rotating shaft; the top plate is connected to the first end of the rotating shaft; the first motor is fixed to the bottom of the support platform; the rotor end of the first motor is connected to the second end of the rotating shaft; the sound wave generator is connected to the second end of the slide plate; The support platform is used to guide the slide plate to move in a circumferential direction under the action of the driving assembly; The first motor is used to provide a first driving force to drive the rotating shaft to rotate; The rotating shaft is used to drive the threaded barrel to rotate under the driving of the first driving force; The threaded cylinder is used to pull the slide plate to move in the slide groove provided on the support platform through the support rod, the first connecting rod and the second connecting rod under the drive of the rotating shaft; The slide plate is used to drive the sound wave generator to move along the slide groove of the support platform; The sound wave generator is used to generate sound waves that meet the target frequency under the drive of the skateboard.

3. The system according to claim 2, characterized in that The driving assembly includes a turntable, a vertical pole, an outer gear ring, a gear, a mounting frame and a second motor; The turntable is arranged on the outer gear ring of the base; the gear is arranged on the top of the base; the outer gear ring is meshed with the gear; the vertical pole is arranged circumferentially between the turntable and the support platform; the mounting frame is fixed on the top of the base; The second motor is fixed on the top of the mounting frame; The rotor end of the second motor is connected to the gear; The second motor is used to provide a second driving force to drive the gear to rotate; The gear is used to drive the outer gear ring to rotate under the driving of the second driving force; The outer gear ring is used to drive the turntable to rotate under the drive of the gear; The turntable is used to drive the support platform to rotate under the drive of the outer gear ring.

4. The system according to claim 1, characterized in that The energy regeneration assembly includes a tower, a connection block, a fixing rod, a solar panel, a wind turbine and blades; The first end of the tower is fixed on the base; the connecting block is fixed at the middle position of the tower; the first end of the fixing rod is fixed on the connecting block, and the second end of the fixing rod is connected to the solar panel; the wind turbine is fixed to the second end of the tower; the output shaft of the wind turbine is fixedly connected to the blade; The blades are used to rotate under the action of wind to generate rotational kinetic energy; The wind turbine is used to convert the rotational kinetic energy into the regenerative electrical energy; The solar panel is used to convert solar energy into the renewable electric energy.

5. The system according to claim 1, characterized in that The compressed air energy storage assembly includes an air compressor, an air pipeline, a high-pressure air storage tank, a turbine and an electricity storage module; The air compressor is fixed on the base, and the output end of the air compressor is connected to the first end of the air pipe; the second end of the air pipe is connected to the top of the high-pressure gas storage tank; the high-pressure gas storage tank is fixed on the base, and a gas outlet is provided on the side of the high-pressure gas storage tank, and the gas outlet is connected to the turbine; the turbine is electrically connected to the power storage module; The air compressor is used to compress air to obtain the compressed air; The air delivery pipe is used to deliver the compressed air to the high-pressure air storage tank; The high-pressure gas storage tank is used to store the compressed air; The turbine is used to receive the compressed air and convert the mechanical energy generated when the compressed air drives the turbine blades of the turbine to rotate into the power supply electric energy; The power storage module is used to store the power supply energy.

6. The system according to claim 4, characterized in that Two fixing rods are provided and symmetrically fixed on two sides of the connecting block, and solar panels are fixed on ends of the two fixing rods that are away from each other.

7. The system according to claim 2, characterized in that The first motor is fixed to the bottom of the support platform through a support frame.

8. The system according to claim 2, characterized in that The surface of the rotating shaft is provided with an external thread which is threadably connected with the threaded barrel.

9. The system according to claim 2, characterized in that There is a gap between the rotating drum and the top of the supporting platform.

10. The system according to claim 1, characterized in that The target situations also include: The acoustic rain enhancement assembly is used during a power grid outage; or The acoustic rain-making component is used during a period when the renewable energy supply is unstable.