Environment-friendly new energy material AI intelligent equipment

By integrating environmental perception, intelligent control, multi-energy conversion and efficient energy storage functions in new energy equipment, the problems of low energy capture efficiency, poor environmental adaptability and low energy storage efficiency of existing equipment are solved, and efficient and environmentally friendly new energy conversion and storage effects are achieved.

CN120044988AInactive Publication Date: 2025-05-27SUZHOU QUARRY BAY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510259991.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-06
Publication Date
2025-05-27
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In actual applications, existing new energy conversion equipment has problems such as low energy capture efficiency, poor environmental adaptability and low energy storage efficiency. In addition, intelligent control technology is primary and lacks real-time environmental perception and adaptability.

Method used

An environmentally friendly new energy material AI intelligent device was designed, integrating environmental perception, intelligent control, multi-energy conversion and efficient energy storage functions. Through the synergy between the adaptive adjustment mechanism and the AI ​​intelligent control unit, dynamic optimization of equipment angle and operating parameters is achieved.

Benefits of technology

It significantly improves energy conversion efficiency, enhances the environmental adaptability of the equipment, and realizes efficient energy storage utilization. It is suitable for a variety of new energy application scenarios and meets the requirements of environmental protection and sustainable development.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of new energy materials and intelligent equipment, and discloses environment-friendly new energy material AI intelligent equipment which comprises an equipment body, an AI intelligent control unit, an energy conversion module, an energy storage module, an environment sensor, an L-shaped supporting frame, a U-shaped bottom frame, a self-adaptive adjusting mechanism and a horizontal adjusting mechanism. Various parameters are monitored and adjusted in real time through the AI intelligent control unit, dynamic response to environmental parameters is achieved, the energy conversion efficiency and the equipment operation stability are remarkably improved, and the system is suitable for various new energy application scenes and meets the requirements of environmental protection and sustainable development. The AI intelligent control unit is combined with the environment sensor to realize real-time monitoring and dynamic adjustment of equipment operation parameters, so that the equipment can keep a stable and efficient operation state in a complex and changeable environment.
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Description

Technical Field

[0001] The present invention relates to the technical fields of new energy materials and intelligent devices, and particularly to an environmentally friendly new energy material AI intelligent device. Background Art

[0002] With the continuous growth of global energy demand and the increasingly severe environmental problems, the development of efficient and environmentally friendly new energy technologies has become an important direction in today's scientific and technological development. Renewable energy sources such as solar energy and wind energy have been widely used in the power generation field due to their clean and sustainable characteristics. However, there are still many technical bottlenecks in the actual application of existing new energy conversion devices, which restrict their conversion efficiency and environmental adaptability.

[0003] Traditional new energy devices (such as solar panels, wind turbines, etc.) usually adopt a fixed installation structure and cannot be adjusted in real time according to environmental parameters (such as light angle, wind direction change), resulting in low energy capture efficiency. For example, fixed-angle solar panels cannot maximize the reception of sunlight when the sun's position changes, and wind turbines are difficult to quickly adjust their directions when the wind direction suddenly changes, causing energy losses. In addition, existing devices mostly rely on a single energy conversion mode and lack intelligent integration of multi-energy collaborative utilization, restricting their application scope in complex environments.

[0004] In the prior art, although there are some devices with adjustable angles, their adjustment mechanisms mostly rely on mechanical manual or preset program control, lacking real-time environmental perception and adaptive capabilities. Such systems cannot dynamically respond to changes in environmental parameters, and their adjustment accuracy is insufficient under complex meteorological conditions, making it difficult to achieve the optimal energy conversion efficiency. At the same time, the cooperative control strategy between the energy storage module and the energy conversion module is not yet perfect, resulting in low energy storage efficiency and being unable to effectively balance the fluctuations of energy supply and demand.

[0005] On the other hand, the application of intelligent control technology in the new energy field is still in its infancy. Most devices lack an integrated environmental monitoring and intelligent decision-making system and cannot achieve real-time optimization of operating parameters. For example, existing control units mostly rely on simple threshold judgments and lack the dynamic adjustment ability based on big data analysis and machine learning, making it difficult to meet the high-efficiency operation requirements in a changing environment. Summary of the Invention

[0006] The present invention proposes a new type of environmentally friendly new energy device that integrates environmental perception, intelligent control, multi-energy conversion, and high-efficiency energy storage to improve energy conversion efficiency, enhance environmental adaptability, and promote the wide application of renewable energy. In view of the deficiencies in the prior art, the present invention provides an environmentally friendly new energy material AI intelligent device. Through the synergistic effect of the adaptive adjustment mechanism and the AI intelligent control unit, the dynamic optimization of the device angle and operating parameters is achieved, effectively solving the technical problems such as low efficiency and poor adaptability of traditional devices.

[0007] To achieve the above object, the present invention is realized through the following technical solutions: An AI intelligent device for environmentally friendly new energy materials, comprising: The device main body, which serves as the main part of the entire device; The AI intelligent control unit, which is arranged inside the device main body and is used for real-time monitoring and adjustment of various parameters of the device to ensure efficient operation; The energy conversion module, which is fixedly installed on one side of the device main body and is used for converting renewable energy in the environment into electric energy; The energy storage module, which is fixedly installed on the other side of the device main body and is used for storing the converted electric energy; The environmental sensor, which is arranged on the top of the device main body and is used for real-time monitoring of the surrounding environmental parameters; There are two L-shaped support frames, which are respectively fixedly installed on the front and back sides of the device main body and serve as the supporting main body of the device main body; The U-shaped chassis, which is rotatably connected to the ends of the two L-shaped support frames and is used as the connecting main body for the angle adjustment of the device main body The adaptive adjustment mechanism is arranged between the device main body and the U-shaped chassis. A horizontal adjustment mechanism is arranged at the bottom of the U-shaped chassis. The adaptive adjustment mechanism is used for automatically adjusting the angle of the energy conversion module according to the change of environmental parameters to improve the energy conversion efficiency.

[0008] Preferably, the adaptive adjustment mechanism includes a semi-circular internal gear ring, a support column and a driving motor, wherein: The semi-circular internal gear ring is fixed to the bottom of the device main body. The driving motor is arranged between the device main body and the U-shaped chassis, and the bottom of the driving motor is fixedly connected to the U-shaped chassis through the support column.

[0009] Preferably, a rotating rod is fixed to the output end of the driving motor, a gear is fixed to the end of the rotating rod, and the gear is located in the middle inside the semi-circular internal gear ring. The gear is meshed with the semi-circular internal gear ring; The center of the gear, the rotation axis of the U-shaped chassis and the L-shaped support frame are concentric and coaxial.

[0010] Preferably, the horizontal adjustment mechanism includes a support base, wherein: The support base is rotatably connected to the bottom of the U-shaped chassis. A rotating motor is fixed inside the support base. The output end of the rotating motor penetrates through the support base and a rotating shaft is fixed, and the top end of the rotating shaft is fixedly connected to the U-shaped chassis.

[0011] Preferably, the output end of the environmental sensor is connected to the input end of the AI intelligent control unit, and the output end of the AI intelligent control unit is connected to the input ends of the drive motor and the rotary motor, for adjusting the working states of the energy conversion module and the energy storage module in real time.

[0012] Preferably, the energy storage module is used to store the electric energy converted by the energy conversion module for the device itself or other electrical equipment.

[0013] Preferably, the installation methods of the device body include, but are not limited to, installation on the roof and open space.

[0014] Preferably, the environmental parameters monitored by the environmental sensor include temperature, humidity, and light intensity.

[0015] Preferably, the AI intelligent control unit is used to receive the data of the environmental sensor in real time and dynamically adjust the operating parameters of the device according to these data to ensure that the device can maintain efficient operation under different environmental conditions.

[0016] Preferably, the energy conversion module is solar energy or wind energy.

[0017] The present invention provides an AI intelligent device for environmental protection new energy materials, having the following beneficial effects: 1. Through the synergistic effect of the adaptive adjustment mechanism and the horizontal adjustment mechanism, the present invention can automatically adjust the angle of the energy conversion module and the horizontal position of the device body according to the change of environmental parameters, thus significantly improving the energy conversion efficiency.

[0018] 2. The AI intelligent control unit of the present invention combines with the environmental sensor to realize the real-time monitoring and dynamic adjustment of the device operating parameters, enabling the device to maintain a stable and efficient operating state in a complex and changeable environment.

[0019] 3. The present invention integrates multiple functions such as energy conversion, energy storage, environmental monitoring, and adaptive adjustment, is applicable to various new energy application scenarios, and uses renewable energy as the energy source, meeting the requirements of environmental protection and sustainable development. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a three-dimensional structure schematic diagram of the present invention; Figure 2 is a right view structure schematic diagram of the present invention; Figure 3 is a front view structure schematic diagram of the present invention; Figure 4 is a structure schematic diagram of the device body in the present invention; Figure 5 is a structure schematic diagram of the device body after the angle adjustment in the present invention; Figure 6 This is a schematic structural diagram of the semi-circular internal gear ring and the gear in the present invention.

[0021] Among them, 1 is the equipment main body; 2 is the AI intelligent control unit; 3 is the energy conversion module; 4 is the energy storage module; 5 is the environmental sensor; 6 is the L-shaped support frame; 7 is the U-shaped chassis; 8 is the semi-circular internal gear ring; 81 is the support column; 82 is the driving motor; 83 is the rotating rod; 84 is the gear; 9 is the support base; 91 is the rotating motor; 92 is the rotating shaft. Specific implementation manners

[0022] Next, the technical solutions of the present invention will be clearly and completely described in conjunction with the drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.

[0023] The present invention provides an AI intelligent device for environmental protection new energy materials, and its specific structure is as Figures 1 to 6 shown. The equipment main body 1, as the core part of the entire device, is used to install and integrate other functional modules. The installation methods of the equipment main body 1 include but are not limited to being installed on the roof and open space, and the specific installation location can be selected according to the actual application scenario. An AI intelligent control unit 2 is provided inside the equipment main body 1. This unit receives the data collected by the environmental sensor 5 and monitors and adjusts the operating parameters of the equipment in real time to ensure that the equipment can maintain efficient operation under different environmental conditions.

[0024] The AI intelligent control unit 2 is the core control part of the equipment, and technologies such as big data analysis, machine learning, and simulation are integrated inside it. Specifically, the AI intelligent control unit 2 collects environmental parameters in real time through the environmental sensor 5, such as temperature, humidity, and light intensity, and processes and analyzes these data to generate optimal operating parameters. For example, in the case of high light intensity, the AI intelligent control unit 2 can adjust the angle of the energy conversion module 3 to make it better receive sunlight, thereby improving the conversion efficiency of solar energy. In the case of strong wind, the AI intelligent control unit 2 can adjust the angle of the energy conversion module 3 to make it better capture wind energy, thereby improving the conversion efficiency of wind energy. In addition, the AI intelligent control unit 2 can also dynamically adjust the charge and discharge state of the energy storage module 4 according to the change of environmental parameters to ensure the efficient utilization and storage of electric energy.

[0025] The energy conversion module 3 is fixedly installed on one side of the device main body 1 and is used to convert renewable energy in the environment into electric energy. According to specific application scenarios, the energy conversion module 3 can adopt renewable energy such as solar energy or wind energy. For example, in solar energy applications, the energy conversion module 3 can be installed with solar panels to convert sunlight into electric energy through the photovoltaic effect. In wind energy applications, the energy conversion module 3 can be installed with wind turbines to generate electric energy by wind driving the generator. Specifically, the connection method between the energy conversion module 3 and the device main body 1 ensures its stability and reliability at different angles, enabling it to adjust the angle according to changes in actual environmental parameters.

[0026] The energy storage module 4 is fixedly installed on the other side of the device main body 1 and is used to store the electric energy converted by the energy conversion module 3. The energy storage module 4 can adopt various energy storage technologies, such as lithium-ion batteries, supercapacitors, etc. Specifically, as Figure 2 shown, the connection method between the energy storage module 4 and the device main body 1 ensures its stability and reliability under different environmental conditions. The energy storage module 4 can dynamically adjust the charge and discharge strategy according to changes in environmental parameters and the operating state of the device through its connection with the AI intelligent control unit 2, ensuring the efficient utilization and storage of electric energy.

[0027] The environmental sensor 5 is set on the top of the device main body 1 and is used to monitor the surrounding environmental parameters in real time, such as temperature, humidity, and light intensity, etc. The output end of the environmental sensor 5 is connected to the input end of the AI intelligent control unit 2, and the collected environmental parameter data is transmitted to the AI intelligent control unit 2 in real time. Specifically, as Figure 1 shown, the installation position of the environmental sensor 5 ensures that it can monitor the environmental parameters around the device in all directions, providing accurate data support. The AI intelligent control unit 2 dynamically adjusts various operating parameters of the device according to these data, ensuring that the device can maintain efficient operation under different environmental conditions.

[0028] Two L-shaped support frames 6 are respectively fixedly installed on the front and back sides of the device main body 1 and serve as the support structure of the device main body 1. The design of the L-shaped support frame 6 ensures the stability and reliability of the device main body 1 at different angles. Specifically, as Figure 1 shown, the installation position and structural design of the L-shaped support frame 6 enable the device main body 1 to be firmly fixed in the installation position, while providing sufficient support force to ensure that the device will not shake or tip over under the action of external factors such as wind force and gravity. The end of the L-shaped support frame 6 is rotatably connected to the U-shaped chassis 7, realizing the angle adjustment function of the device main body 1.

[0029] The U-shaped chassis 7 is rotatably connected to the ends of two L-shaped support frames 6 and serves as the connection body for adjusting the angle of the device main body 1. The design of the U-shaped chassis 7 ensures the stability and reliability of the device main body 1 at different angles. Specifically, as Figure 2 shown, the connection between the U-shaped chassis 7 and the L-shaped support frame 6 adopts a rotational connection, enabling the device main body 1 to be freely adjusted within a certain angle range. In addition, the U-shaped chassis 7 is also connected to the adaptive adjustment mechanism and the horizontal adjustment mechanism to achieve precise adjustment of the angle and horizontal position of the device main body 1.

[0030] The adaptive adjustment mechanism is arranged between the device main body 1 and the U-shaped chassis 7 and is used to automatically adjust the angle of the energy conversion module 3 according to changes in environmental parameters to improve the energy conversion efficiency. The adaptive adjustment mechanism includes a semi-circular internal gear ring 8, a support column 81, and a drive motor 82. Specifically, as Figure 3 shown, the semi-circular internal gear ring 8 is fixed to the bottom of the device main body 1, the drive motor 82 is arranged between the device main body 1 and the U-shaped chassis 7, and the bottom of the drive motor 82 is fixedly connected to the U-shaped chassis 7 through the support column 81. A rotating rod 83 is fixed to the output end of the drive motor 82, a gear 84 is fixed to the end of the rotating rod 83, and the gear 84 is located in the middle inside the semi-circular internal gear ring 8, and the gear 84 is meshed with the semi-circular internal gear ring 8. When the environmental sensor 5 detects changes in light intensity or wind force, the AI intelligent control unit 2 will, based on this data, drive the rotating rod 83 and the gear 84 to rotate by controlling the rotation of the drive motor 82, thereby adjusting the angle of the device main body 1 so that the energy conversion module 3 can better receive renewable energy and improve the energy conversion efficiency. Specifically, the rotation axis of the gear 84, the rotation axis points of the U-shaped chassis 7 and the L-shaped support frame 6 are in the same horizontal height plane, ensuring the stability and reliability of the adjustment process.

[0031] The horizontal adjustment mechanism is arranged at the bottom of the U-shaped chassis 7 and is used to achieve precise adjustment of the horizontal position of the device main body 1. The horizontal adjustment mechanism includes a support base 9, a rotating motor 91, and a rotating shaft 92. Specifically, as Figure 4 shown, the support base 9 is rotatably connected to the bottom of the U-shaped chassis 7, the rotating motor 91 is fixed inside the support base 9, and its output end penetrates the support base 9 and is fixedly connected to the rotating shaft 92. The top end of the rotating shaft 92 is fixedly connected to the U-shaped chassis 7, thereby driving the rotating shaft 92 by the rotating motor 91 to achieve precise adjustment of the horizontal position of the device main body 1. When the environmental sensor 5 detects changes in the wind direction or the direction of sunlight, the AI intelligent control unit 2 will, based on this data, drive the rotating shaft 92 to rotate by controlling the rotation of the rotating motor 91, thereby adjusting the horizontal position of the device main body 1 so that the energy conversion module 3 can better receive renewable energy and improve the energy conversion efficiency. Specifically, as Figure 5 and Figure 6As shown, the meshing details of the gear 84 and the semi-circular internal gear ring 8, as well as the connection method of the rotating rod 83, ensure the stability and reliability of the adjustment process.

[0032] The input end of the AI intelligent control unit 2 is connected to the output end of the environmental sensor 5, and its output end is connected to the input ends of the drive motor 82 and the rotating motor 91. Based on big data analysis, machine learning, and simulation technologies, the AI intelligent control unit 2 dynamically adjusts the working states of the energy conversion module 3 and the energy storage module 4 according to the data collected by the environmental sensor 5. Specifically, by receiving data such as temperature, humidity, and light intensity collected by the environmental sensor 5, the AI intelligent control unit 2 generates optimal operating parameters in combination with a preset algorithm model. For example, in the case of high light intensity, the AI intelligent control unit 2 adjusts the working state of the drive motor 82 to adjust the angle of the energy conversion module 3 to the optimal position to improve the conversion efficiency of solar energy. In the case of strong wind, the AI intelligent control unit 2 adjusts the working state of the rotating motor 91 to adjust the horizontal position of the device body 1 to the optimal position to improve the conversion efficiency of wind energy. In addition, the AI intelligent control unit 2 also dynamically adjusts the charge and discharge strategies of the energy storage module 4 according to changes in environmental parameters to ensure the efficient utilization and storage of electric energy.

[0033] Specific Embodiment 1: Assume that the AI intelligent device of the environmentally friendly new energy material of the present invention is installed on the roof for solar energy conversion. The device body 1 is fixed on the roof by two L-shaped support frames 6. The U-shaped chassis 7 is rotatably connected to the ends of the L-shaped support frames 6 to ensure that the device body 1 can be freely adjusted within a certain angle range. The energy conversion module 3 is equipped with solar panels, and the energy storage module 4 uses lithium-ion batteries. The environmental sensor 5 continuously monitors parameters such as the surrounding light intensity, temperature, and humidity, and transmits this data to the AI intelligent control unit 2. When the light intensity changes, the AI intelligent control unit 2 adjusts the angle of the device body 1 by controlling the rotation of the drive motor 82, driving the rotating rod 83 and the gear 84 to rotate, so that the solar panels can better receive sunlight and improve the conversion efficiency of solar energy. When the wind direction changes, the AI intelligent control unit 2 adjusts the horizontal position of the device body 1 by controlling the rotation of the rotating motor 91, driving the rotating shaft 92 to rotate, so that the solar panels can be maintained in the optimal position to further improve the conversion efficiency of solar energy. In addition, the AI intelligent control unit 2 also dynamically adjusts the charge and discharge strategies of the energy storage module 4 according to changes in light intensity to ensure the efficient utilization and storage of electric energy.

[0034] Specific Embodiment 2: Assume that the AI intelligent device of the environmentally friendly new energy material of the present invention is installed in an open space for wind energy conversion. The device main body 1 is fixed to the open space through two L-shaped support frames 6. The U-shaped bottom frame 7 is rotatably connected to the ends of the L-shaped support frames 6 to ensure that the device main body 1 can be freely adjusted within a certain angle range. The energy conversion module 3 is installed with a wind turbine. The energy storage module 4 uses a supercapacitor. The environmental sensor 5 monitors parameters such as wind force, temperature, and humidity in real time around it and transmits this data to the AI intelligent control unit 2. When the wind force changes, the AI intelligent control unit 2 will, according to this data, drive the rotation of the drive motor 82, drive the rotating rod 83 and the gear 84 to rotate, thereby adjusting the angle of the device main body 1, so that the wind turbine can better capture wind energy and improve the wind energy conversion efficiency. When the wind direction changes, the AI intelligent control unit 2 will, according to this data, drive the rotation of the rotating motor 91, drive the rotating shaft 92 to rotate, thereby adjusting the horizontal position of the device main body 1, so that the wind turbine can be maintained at the optimal position and further improve the wind energy conversion efficiency. In addition, the AI intelligent control unit 2 will also dynamically adjust the charge and discharge strategy of the energy storage module 4 according to the change of wind force to ensure the efficient utilization and storage of electric energy.

[0035] Specific Embodiment 3: Assume that the AI intelligent device of the environmentally friendly new energy material of the present invention is installed on the roof for the conversion of multiple renewable energy sources. The device main body 1 is fixed to the roof through two L-shaped support frames 6. The U-shaped bottom frame 7 is rotatably connected to the ends of the L-shaped support frames 6 to ensure that the device main body 1 can be freely adjusted within a certain angle range. The energy conversion module 3 is installed with both a solar panel and a wind turbine. The energy storage module 4 uses a hybrid energy storage system including a lithium-ion battery and a supercapacitor. The environmental sensor 5 monitors parameters such as light intensity, wind force, temperature, and humidity in real time around it and transmits this data to the AI intelligent control unit 2. When the light intensity and wind force change, the AI intelligent control unit 2 will, according to this data, drive the rotation of the drive motor 82 and the rotating motor 91 respectively to adjust the angle and horizontal position of the device main body 1, so that the solar panel and the wind turbine can better receive renewable energy and improve the energy conversion efficiency. In addition, the AI intelligent control unit 2 will also dynamically adjust the charge and discharge strategy of the lithium-ion battery and the supercapacitor in the energy storage module 4 according to the change of light intensity and wind force to ensure the efficient utilization and storage of electric energy.

[0036] Specific Embodiment 4: Suppose the AI intelligent device of the environmentally friendly new energy material of the present invention is installed in an open space for the conversion of various renewable energy sources. The device main body 1 is fixed to the open space by two L-shaped support frames 6, and the U-shaped bottom frame 7 is rotatably connected to the ends of the L-shaped support frames 6 to ensure that the device main body 1 can be freely adjusted within a certain angle range. The energy conversion module 3 is installed with both solar panels and wind turbines, and the energy storage module 4 adopts a hybrid energy storage system, including lithium-ion batteries and supercapacitors. The environmental sensor 5 monitors parameters such as the surrounding light intensity, wind force, temperature, and humidity in real time and transmits this data to the AI intelligent control unit 2. When the light intensity and wind force change, the AI intelligent control unit 2 will, based on this data, adjust the angle and horizontal position of the device main body 1 by controlling the rotation of the drive motor 82 and the rotation motor 91 respectively, so that the solar panels and wind turbines can better receive renewable energy and improve the energy conversion efficiency. In addition, the AI intelligent control unit 2 will also dynamically adjust the charge and discharge strategies of the lithium-ion batteries and supercapacitors in the energy storage module 4 according to the changes in light intensity and wind force to ensure the efficient utilization and storage of electrical energy.

[0037] Specific Embodiment 5: Suppose the AI intelligent device of the environmentally friendly new energy material of the present invention is installed on a roof for solar energy conversion and needs to supply power to other electrical devices at night or on cloudy days. The device main body 1 is fixed to the roof by two L-shaped support frames 6, and the U-shaped bottom frame 7 is rotatably connected to the ends of the L-shaped support frames 6 to ensure that the device main body 1 can be freely adjusted within a certain angle range. The energy conversion module 3 is installed with solar panels, and the energy storage module 4 adopts lithium-ion batteries. The environmental sensor 5 monitors parameters such as the surrounding light intensity, temperature, and humidity in real time and transmits this data to the AI intelligent control unit 2. When the light intensity is high, the AI intelligent control unit 2 will, by controlling the rotation of the drive motor 82, drive the rotating rod 83 and the gear 84 to rotate, thereby adjusting the angle of the device main body 1 so that the solar panels can better receive sunlight and improve the conversion efficiency of solar energy. When the light intensity decreases or the environment becomes night, the AI intelligent control unit 2 will, based on this data, release the stored electrical energy to other electrical devices by controlling the charge and discharge strategy of the energy storage module 4 to ensure the continuous operation of the device. In addition, the AI intelligent control unit 2 will also dynamically adjust the charge and discharge strategy of the energy storage module 4 according to the change in light intensity to ensure the efficient utilization and storage of electrical energy.

[0038] Specific Embodiment 6: Suppose the environmental protection new energy material AI intelligent device of the present invention is installed in an open space for wind energy conversion and needs to supply power to other electrical devices when the wind is weak. The device main body 1 is fixed to the open space through two L-shaped support frames 6, and the U-shaped bottom frame 7 is rotatably connected to the ends of the L-shaped support frames 6 to ensure that the device main body 1 can be freely adjusted within a certain angle range. The energy conversion module 3 is equipped with a wind turbine, and the energy storage module 4 uses supercapacitors. The environmental sensor 5 continuously monitors parameters such as the surrounding wind force, temperature, and humidity and transmits this data to the AI intelligent control unit 2. When the wind force is high, the AI intelligent control unit 2 controls the rotation of the drive motor 82 to drive the rotating rod 83 and the gear 84 to rotate, thereby adjusting the angle of the device main body 1 so that the wind turbine can better capture wind energy and improve the wind energy conversion efficiency. When the wind force decreases or the environment becomes windless, the AI intelligent control unit 2 will, based on this data, control the charge and discharge strategy of the energy storage module 4 to release the stored electrical energy to other electrical devices to ensure the continuous operation of the device. In addition, the AI intelligent control unit 2 will also dynamically adjust the charge and discharge strategy of the energy storage module 4 according to the change in wind force to ensure the efficient utilization and storage of electrical energy.

[0039] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An AI intelligent device for environmentally friendly new energy materials, characterized in that: include: The device body (1) is the main part of the whole device; An AI intelligent control unit (2), which is arranged inside the device body (1) and is used to monitor and adjust various parameters of the device in real time to ensure efficient operation; An energy conversion module (3) is fixedly mounted on one side of the device body (1) and is used to convert renewable energy in the environment into electrical energy; An energy storage module (4) is fixedly mounted on the other side of the device body (1) and is used to store the converted electrical energy; An environmental sensor (5), which is arranged on the top of the device body (1) and is used to monitor the surrounding environmental parameters in real time; Two L-shaped support frames (6) are fixedly mounted on the front and rear sides of the device body (1) to serve as supporting bodies of the device body (1); The U-shaped base frame (7) is rotatably connected to the ends of the two L-shaped support frames (6) and is used as a connecting body for adjusting the angle of the device body (1). An adaptive adjustment mechanism is arranged between a device body (1) and a U-shaped base frame (7), wherein a horizontal adjustment mechanism is arranged at the bottom of the U-shaped base frame (7), and the adaptive adjustment mechanism is used to automatically adjust the angle of the energy conversion module (3) according to changes in environmental parameters, so as to improve energy conversion efficiency.

2. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1 is characterized in that: The adaptive adjustment mechanism comprises a semicircular internal gear ring (8), a support column (81) and a drive motor (82), wherein: The semicircular inner gear ring (8) is fixed to the bottom of the device body (1), the drive motor (82) is arranged between the device body (1) and the U-shaped base frame (7), and the bottom of the drive motor (82) is fixedly connected to the U-shaped base frame (7) via a support column (81).

3. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 2 is characterized in that: A rotating rod (83) is fixed to the output end of the driving motor (82), a gear (84) is fixed to the end of the rotating rod (83), and the gear (84) is located in the middle of the inner side of the semicircular inner gear ring (8), and the gear (84) is meshed and connected with the semicircular inner gear ring (8); The center of the circle of the gear (84), the rotation axis of the U-shaped base frame (7) and the L-shaped support frame (6) are coaxial and concentric.

4. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1, characterized in that: The horizontal adjustment mechanism comprises a support base (9), wherein: The support base (9) is rotatably connected to the bottom of the U-shaped base frame (7); a rotating motor (91) is fixed inside the support base (9); an output end of the rotating motor (91) passes through the support base (9) and is fixed with a rotating shaft (92); and a top end of the rotating shaft (92) is fixedly connected to the U-shaped base frame (7).

5. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1 is characterized in that: The output end of the environmental sensor (5) is connected to the input end of the AI ​​intelligent control unit (2), and the output end of the AI ​​intelligent control unit (2) is connected to the input ends of the drive motor (82) and the rotating motor (91), for adjusting the working states of the energy conversion module (3) and the energy storage module (4) in real time.

6. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1, characterized in that: The energy storage module (4) is used to store the electric energy converted by the energy conversion module (3) for use by the device itself or other electric devices.

7. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1, characterized in that: The installation methods of the device body (1) include but are not limited to installation on a roof or an open space.

8. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1, characterized in that: The environmental parameters monitored by the environmental sensor (5) include temperature, humidity and light intensity.

9. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1, characterized in that: The AI ​​intelligent control unit (2) is used to receive data from the environmental sensor (5) in real time, and dynamically adjust various operating parameters of the device based on the data, so as to ensure that the device can maintain efficient operation under different environmental conditions.

10. The AI ​​intelligent device for environmentally friendly new energy materials according to claim 1, characterized in that: The energy conversion module (3) is solar energy or wind energy.