Automatic angle adjusting type energy storage solar photovoltaic panel

By setting a stepper motor and support rib strips on the bottom of the support base of the solar photovoltaic panel, the angle of the photovoltaic panel is automatically adjusted, which solves the problem that the angle cannot be adjusted according to changes in the solar altitude and light intensity in the prior art, and improves the energy conversion efficiency.

CN119995488AInactive Publication Date: 2025-05-13NANTONG YIHUI NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202411932543.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing solar photovoltaic panels cannot automatically adjust their angles according to changes in the sun's height and light intensity to maximize energy conversion efficiency.

Method used

By setting a stepper motor at the bottom of the support base, the output end of the stepper motor is connected to the bottom of the multiple support ribs, so that when the stepper motor rotates, the support ribs rotate inside the positioning support column, driving the rotation disc and telescopic sleeve frame to rotate. The rotation friction ring and the spring adapter ring are used to achieve automatic angle adjustment of the photovoltaic plate.

Benefits of technology

Automatic angle adjustment of solar photovoltaic panels is realized, and according to the changes in the sun's position, it ensures that the photovoltaic panels always receive sunlight at the best angle, improving energy conversion efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an automatic angle adjusting type energy storage solar photovoltaic panel, and particularly relates to the technical field of photovoltaic power generation, the automatic angle adjusting type energy storage solar photovoltaic panel comprises a supporting base, a positioning ring is arranged in the supporting base, a gap adjusting ring is arranged on the inner wall of the positioning ring, a sliding sleeve is clamped at the top of the gap adjusting ring, and a gap spacing piece is clamped in the sliding sleeve. When the rotating disc rotates, a rotating friction ring in the positioning supporting column assists the rotating disc in overall rotation, meanwhile, when the supporting ribs rotate, rotating sleeves in the supporting ribs rotate along with the supporting ribs, and when the rotating sleeves rotate, abutting sleeves and the connecting supporting columns abut against each other through spring adaptive rings, so that the rotating disc rotates stably. And the spring adaptive ring abuts against the whole abutting sleeve, the interior of the rotating sleeve is supported, it is ensured that when the whole supporting rib rotates, the top of the supporting rib rotates along with the rotating disc, the whole device imitates a windmill to rotate, the whole frame of the device is finely adjusted, and the irradiated angle is adjusted.
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Description

Technical Field

[0001] The present invention relates to the technical field of photovoltaic power generation, and more specifically, to an automatically angle-adjustable energy-storage solar photovoltaic panel. Background Art

[0002] Photovoltaic panel components are a type of power generation device that generates direct current when exposed to sunlight. They are composed of solid photovoltaic cells made almost entirely of semiconductor materials (such as silicon). Simple photovoltaic cells can provide energy for watches and computers, while more complex photovoltaic systems can provide lighting for houses, traffic lights, and monitoring systems, and are connected to the power grid. Photovoltaic panel components can be made into different shapes, and the components can be connected to generate more electricity. Photovoltaic panel components can be used on rooftops and building surfaces, and can even be used as part of windows, skylights, or shading devices. These photovoltaic facilities are usually referred to as photovoltaic systems attached to buildings. Solar photovoltaic panels are a type of device that uses the photovoltaic effect to convert sunlight directly into electrical energy. They are usually composed of many photovoltaic cells that convert light into electricity. Solar energy is converted into electrical energy. Photovoltaic cells are usually made of semiconductor materials such as silicon. When sunlight hits the surface of a photovoltaic cell, photons excite electrons and generate current. These photovoltaic cells are connected together to form solar photovoltaic panels, which can generate electricity that can be used for various purposes. Solar photovoltaic panels are widely used in power generation, independent power supply systems, agriculture and commerce. They are a clean and renewable energy technology. Solar energy refers to energy from the sun. It is one of the most important energy sources on Earth. It exists in various forms, including light and heat. Solar energy is a renewable energy source because the sun releases a large amount of energy every day, and this energy is considered to be endless on a human time scale. Solar energy is a clean energy source that does not produce greenhouse gases or other pollutants. Compared with traditional energy sources such as coal or oil, the use of solar energy can reduce the negative impact on the environment. Solar energy can be applied to many fields, including power generation, heating, hot water supply, cooking, etc. Among them, solar photovoltaic technology is used for power generation is one of the most widely used applications. With the development of technology and the emergence of economies of scale, the cost of solar energy has gradually decreased, making it more competitive globally and usable in a wide range of geographical areas: solar energy resources are available globally. Although the richness of solar energy resources in different regions varies, almost all regions can use solar energy. Solar energy technology is constantly developing and improving, including photovoltaic technology, solar thermal utilization technology, etc., which continuously improves the efficiency of solar energy utilization.

[0003] During use, solar photovoltaic panels cannot adjust the angle of the photovoltaic panels according to changes in the sun's altitude and light intensity to ensure that the light is perpendicular to the surface of the photovoltaic cells and maximize energy conversion efficiency. Secondly, the position of the sun will change in different seasons and time periods, and the angle cannot be adjusted to ensure that the photovoltaic panels can always receive sunlight at the best angle. Summary of the invention

[0004] In order to overcome the above-mentioned defects of the prior art, an embodiment of the present invention provides an angle-automatic adjustable energy storage solar photovoltaic panel, which is provided with a stepper motor at the bottom of the support base, and the output end of the stepper motor is connected to the bottom of a plurality of support ribs, so that when the stepper motor rotates, the plurality of support ribs rotate inside the positioning support column, and when the support ribs rotate, the top of the support ribs drives the rotating disk to rotate, so that the main frame of the telescopic sleeve rotates, and when the rotating disk rotates, the rotating friction ring inside the positioning support column assists the rotating disk to rotate as a whole. At the same time, when the support ribs rotate, the rotating sleeve inside the support ribs rotates following the support ribs, and when the rotating sleeve rotates, the pressing sleeve and the connecting support column are pressed by the spring adapter ring, so that the spring adapter ring presses the pressing sleeve as a whole, supports the inside of the rotating sleeve, and ensures that when the support ribs rotate as a whole, the top of the support ribs rotates following the rotating disk, and the device as a whole imitates the rotation of the windmill, and the overall frame of the device is slightly adjusted to adjust the irradiated angle, so as to solve the problems raised in the above-mentioned background technology.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an angle-automatic adjustable energy storage solar photovoltaic panel, comprising a support base, a positioning ring is provided inside the support base, a gap adjustment ring is provided on the inner wall of the positioning ring, a sliding sleeve is clamped on the top of the gap adjustment ring, a gap spacer is clamped on the inside of the sliding sleeve, a positioning support column is clamped on the inside of the sliding sleeve, a rotating sleeve is provided inside the positioning support column, a supporting rib is provided on the outer wall of the rotating sleeve, a rotating disk is provided on the top of the positioning support column, and the rotating disk is clamped on the inside of the limiting ring, and a telescopic sleeve is fixedly connected to the top of the rotating disk.

[0006] In a preferred embodiment, the top of the support base is fixedly connected to a support rib ring, the inner wall of the support base is fixedly connected to a connecting seat, and the inner wall of the connecting seat is fixedly connected to the outer wall of the positioning ring.

[0007] In a preferred embodiment, the top of the positioning support column is fixedly connected to a limiting ring, the bottom of the limiting ring is provided with a rotating friction ring, and the rotating friction ring is arranged inside the positioning support column.

[0008] In a preferred embodiment, the number of the supporting ribs is multiple groups, and the multiple groups of supporting ribs are arranged in a ring array state with respect to the interior of the positioning support column.

[0009] In a preferred embodiment, a pressure sleeve is provided inside the rotating sleeve, a connecting support column is provided inside the pressure sleeve, a pressure spring is sleeved on the outer wall of the connecting support column, a spring adapter ring is sleeved on the outer wall of the connecting support column, and the spring adapter ring is integrally fitted to the outer wall of the pressure spring.

[0010] In a preferred embodiment, the top of the telescopic sleeve is threadedly connected to a connecting support column, the outer wall of the connecting support column is hinged with a rotating motor disk, and the outer wall of the rotating motor disk is fixedly connected to a photovoltaic leaf plate.

[0011] In a preferred embodiment, the photovoltaic blades are in multiple groups, and the multiple groups of photovoltaic blades are arranged in a ring array state with respect to the outer wall of the rotating motor disk.

[0012] Technical effects and advantages of the present invention:

[0013] 1. The user can set a stepper motor at the bottom of the support base, and the output end of the stepper motor is connected to the bottom of multiple support ribs, so that when the stepper motor rotates, multiple support ribs rotate inside the positioning support column. When the support ribs rotate, the top of the support ribs drives the rotating disk to rotate, so that the main frame of the telescopic sleeve rotates. When the rotating disk rotates, the rotating friction ring inside the positioning support column assists the rotating disk to rotate as a whole. At the same time, when the support ribs rotate, the rotating sleeve inside the support ribs rotates with the support ribs. When the rotating sleeve rotates, the pressing sleeve and the connecting support column are pressed by the spring adapter ring, so that the spring adapter ring presses the pressing sleeve as a whole, supports the inside of the rotating sleeve, and ensures that when the support ribs rotate as a whole, the top of the support ribs rotates with the rotating disk. The equipment as a whole imitates the rotation of the windmill, and the overall frame of the equipment is slightly adjusted to adjust the irradiation angle;

[0014] 2. An annular gap spacer is provided between the positioning ring and the positioning support column, which is fitted between the positioning ring and the positioning support column, and the gap between the positioning ring and the positioning support column is adjusted to ensure that the positioning support column is in a horizontal and neutral state as a whole, so as to avoid the outer wall of the positioning support column contacting with the positioning ring, which may cause the bottom frame of the support base to shake when the equipment is running as a whole. Fully wrapped and half-wrapped sliding sleeves are provided on the outer wall of the gap spacer to wrap and fit the gap spacer as a whole, so that the gap between the positioning support column and the positioning ring is centered, which is convenient for the subsequent adjustment of the overall assembly of the positioning support column. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1It is a front view schematic diagram of the present invention.

[0016] Figure 2 It is a rear view schematic diagram of the present invention.

[0017] Figure 3 It is a schematic diagram of the local structure of the positioning support column of the present invention.

[0018] Figure 4 It is a schematic diagram of the partial structure of the telescopic sleeve of the present invention.

[0019] Figure 5 It is a partial structural cross-sectional view of the positioning support column of the present invention.

[0020] Figure 6 for Figure 5 Enlarged schematic diagram at point A in the middle.

[0021] Figure 7 for Figure 5 Enlarged schematic diagram of point B in the middle.

[0022] The accompanying drawings are marked as follows: (1) support base, (2) positioning ring, (3) support rib ring, (4) connecting seat, (5) gap adjustment ring, (6) sliding sleeve, (7) gap spacer, (8) positioning support column, (9) limiting ring, (10) rotating friction ring, (11) supporting rib, (12) rotating sleeve, (13) pressing sleeve, (14) connecting support column, (15) pressing spring, (16) spring adapter ring, (17) rotating disk, (18) telescopic sleeve, (19) connecting support column, (20) rotating motor disk, (21) photovoltaic leaf plate. DETAILED DESCRIPTION

[0023] 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 invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0024] Refer to the instruction manual Figure 1-7An angle-automatic energy storage solar photovoltaic panel according to an embodiment of the present invention comprises a support base 1, a positioning ring 2 is provided inside the support base 1, a support rib ring 3 is fixedly connected to the top of the support base 1, a connecting seat 4 is fixedly connected to the inner wall of the support base 1, and the inner wall of the connecting seat 4 is fixedly connected to the outer wall of the positioning ring 2, a gap adjustment ring 5 is provided on the inner wall of the positioning ring 2, a sliding sleeve 6 is clamped on the top of the gap adjustment ring 5, a gap spacer 7 is clamped on the inside of the sliding sleeve 6, a positioning support column 8 is clamped on the inside of the sliding sleeve 6, a positioning ring 2 is provided at the center of the support base 1, and the bottom of the positioning support column 8 is plugged into the positioning ring 2. The initial fixation is performed inside the positioning ring 2, and an annular gap spacer 7 is provided between the positioning ring 2 and the positioning support column 8, which is fitted between the positioning ring 2 and the positioning support column 8, and the gap between the positioning ring 2 and the positioning support column 8 is adjusted to ensure that the positioning support column 8 is in a horizontal and neutral state as a whole, so as to avoid the outer wall of the positioning support column 8 from contacting the positioning ring 2, which causes the bottom frame of the support base 1 to shake when the equipment is running as a whole. A sliding sleeve 6 in a full-wrapped and half-wrapped state is provided on the outer wall of the gap spacer 7, and the gap spacer 7 is wrapped and fitted as a whole, so that the gap between the positioning support column 8 and the positioning ring 2 is centered;

[0025] The top of the positioning support column 8 is fixedly connected to a limiting ring 9, and a rotating friction ring 10 is provided at the bottom of the limiting ring 9, and the rotating friction ring 10 is arranged inside the positioning support column 8, and the rotating disk 17 is integrally engaged inside the positioning support column 8. The limiting ring 9 and the rotating friction ring 10 are arranged at the top of the positioning support column 8, and the rotating disk 17 is integrally engaged between the limiting ring 9 and the rotating friction ring 10, and the support base 1 is fixed as a whole at a desired position, and a plurality of supporting rib rings 3 for reinforcing the overall frame of the support base 1 are arranged between the support base 1 and the positioning ring 2, so that the overall frame of the support base 1 is reinforced;

[0026] The outer wall of the rotating sleeve 12 is fitted with supporting ribs 11, and the number of supporting ribs 11 is multiple groups, and the multiple groups of supporting ribs 11 are arranged in a circular array state with respect to the interior of the positioning support column 8. The interior of the positioning support column 8 is provided with a rotating sleeve 12, and the interior of the rotating sleeve 12 is provided with a pressing sleeve 13. The rotating sleeve 12 is arranged inside the multiple supporting ribs 11 for initial support, and the pressing sleeve 13 is arranged inside the rotating sleeve 12 to provide secondary support for the rotating sleeve 12 as a whole. A connecting support column 14 is arranged inside the pressing sleeve 13, and at the same time, a pressing spring 15 inside the rotating sleeve 12 presses on the bottom of the pressing sleeve 13 and presses against the interior of the rotating sleeve 12, so that the pressing sleeve 13 as a whole is supported by the spring adapter ring. 16 is pressed and fits with the inside of the rotating sleeve 12. A connecting support column 14 is provided inside the pressing sleeve 13. A pressing spring 15 is sleeved on the outer wall of the connecting support column 14. A spring adapter ring 16 is sleeved on the outer wall of the connecting support column 14. The spring adapter ring 16 fits the outer wall of the pressing spring 15 as a whole. A pressing sleeve 13 is provided inside the rotating sleeve 12 to provide secondary support to the rotating sleeve 12 as a whole. A connecting support column 14 is provided inside the pressing sleeve 13. At the same time, the pressing spring 15 inside the rotating sleeve 12 presses on the bottom of the pressing sleeve 13 to press against the inside of the rotating sleeve 12, so that the pressing sleeve 13 as a whole fits and fits with the inside of the rotating sleeve 12 through the pressure of the spring adapter ring 16.

[0027] A rotating disk 17 is provided at the top of the positioning support column 8, and the rotating disk 17 is engaged in the interior of the limiting ring 9. A telescopic sleeve 18 is fixedly connected to the top of the rotating disk 17. A connecting support column 19 is threadedly connected to the top of the telescopic sleeve 18. A rotating motor disk 20 is hingedly connected to the outer wall of the connecting support column 19. A photovoltaic leaf plate 21 is fixedly connected to the outer wall of the rotating motor disk 20. The number of photovoltaic leaf plates 21 is multiple groups, and the multiple groups of photovoltaic leaf plates 21 are arranged in a circular array state with respect to the outer wall of the rotating motor disk 20. When the equipment is running, the rotating motor disk 20 runs as a whole, driving the photovoltaic leaf plates 21. The multi-faceted photovoltaic blades 21 are rotated for fine adjustment so that they face the sun. Secondly, the user can set a stepper motor at the bottom of the support base 1, and the output end of the stepper motor is connected to the bottom of the plurality of support ribs 11, so that when the stepper motor rotates, the plurality of support ribs 11 rotate inside the positioning support column 8. When the support ribs 11 rotate, the top of the support ribs 11 drives the rotating disk 17 to rotate, so that the main frame of the telescopic sleeve 18 rotates. When the rotating disk 17 rotates, the rotating friction ring 10 inside the positioning support column 8 assists the rotating disk 17 to rotate as a whole.

[0028] At the same time, when the supporting rib 11 rotates, the rotating sleeve 12 inside the supporting rib 11 rotates along with the supporting rib 11. When the rotating sleeve 12 rotates, the pressing sleeve 13 and the connecting support column 14 are pressed by the spring adapter ring 16, so that the spring adapter ring 16 presses the pressing sleeve 13 as a whole, and supports the inside of the rotating sleeve 12, ensuring that when the supporting rib 11 rotates as a whole, the top of the supporting rib 11 rotates along with the rotating disk 17, and the whole equipment imitates the rotation of the windmill, and the overall frame of the equipment is slightly adjusted to adjust the irradiated angle.

[0029] Working principle: When the equipment is in use, a plurality of photovoltaic blades 21 are arranged in a ring shape on the outer wall of the rotating motor disk 20, so that the photovoltaic blades 21 are initially positioned and fixed as a whole. A connecting support column 19 is arranged on one side of the rotating motor disk 20, and the rotating motor disk 20 is hinged as a whole through the connecting support column 19, so that the entire parts of the rotating motor disk 20 are fixed. A telescopic sleeve 18 is hingedly arranged at the bottom of the connecting support column 19, so that the connecting support column 19 and the local parts of the telescopic sleeve 18 are telescopically processed. When installing the bottom frame, the rotating disk 17 is integrally engaged in the interior of the positioning support column 8, and a limiting ring 9 and a rotating friction ring 10 are arranged on the top of the positioning support column 8. The rotating disk 17 is integrally engaged between the limiting ring 9 and the rotating friction ring 10, and the support base 1 is integrally fixed in the desired position. A plurality of supporting ribs 3 for reinforcing the overall frame of the support base 1 are arranged between the support base 1 and the positioning ring 2, so that the overall frame of the support base 1 is reinforced.

[0030] Furthermore, a positioning ring 2 is provided at the center position of the support base 1, and the bottom of the positioning support column 8 is inserted into the interior of the positioning ring 2 for initial fixation, and an annular gap spacer 7 is provided between the positioning ring 2 and the positioning support column 8, which fits between the positioning ring 2 and the positioning support column 8, and the gap between the positioning ring 2 and the positioning support column 8 is adjusted to ensure that the positioning support column 8 is in a horizontal and neutral state as a whole, so as to avoid the outer wall of the positioning support column 8 from contacting the positioning ring 2, which causes the bottom frame of the support base 1 to shake when the equipment is running as a whole, and a sliding sleeve 6 in a full-wrapped and half-wrapped state is provided on the outer wall of the gap spacer 7, which wraps and fits the gap spacer 7 as a whole, so that the gap between the positioning support column 8 and the positioning ring 2 is centered, which is convenient for the subsequent adjustment of the overall assembly of the positioning support column 8;

[0031] Further, a plurality of supporting ribs 11 are arranged inside the positioning support column 8, and the top of the supporting ribs 11 is clamped on the bottom of the rotating disk 17 for supporting and positioning. At the same time, a rotating sleeve 12 is arranged inside the plurality of supporting ribs 11 for initial support. A pressing sleeve 13 is arranged inside the rotating sleeve 12 for secondary support of the rotating sleeve 12 as a whole. A connecting support column 14 is arranged inside the pressing sleeve 13. At the same time, a pressing spring 15 inside the rotating sleeve 12 is pressed on the bottom of the pressing sleeve 13 to press against the inside of the rotating sleeve 12, so that the pressing sleeve 13 as a whole is pressed against the inside of the rotating sleeve 12 by the spring adapter ring 16.

[0032] Secondly, when the equipment is running, the rotating motor disk 20 rotates as a whole, driving the photovoltaic leaf plate 21 to rotate and perform fine adjustment, so that the multi-faceted photovoltaic leaf plate 21 faces the sun. Secondly, the user can set a stepper motor at the bottom of the support base 1, and the output end of the stepper motor is connected to the bottom of the plurality of support ribs 11, so that when the stepper motor rotates, the plurality of support ribs 11 rotate inside the positioning support column 8. When the support ribs 11 rotate, the top of the support ribs 11 drives the rotating disk 17 to rotate, so that the main frame of the telescopic sleeve 18 rotates. When the rotating disk 17 rotates, the positioning support column 8 is rotated. The rotating friction ring 10 of the part assists the rotating disk 17 to rotate as a whole. At the same time, when the supporting rib 11 rotates, the rotating sleeve 12 inside the supporting rib 11 rotates along with the supporting rib 11. When the rotating sleeve 12 rotates, the pressing sleeve 13 and the connecting support column 14 are pressed by the spring adapter ring 16, so that the spring adapter ring 16 presses the pressing sleeve 13 as a whole to support the inside of the rotating sleeve 12, ensuring that when the supporting rib 11 rotates as a whole, the top of the supporting rib 11 rotates along with the rotating disk 17. The whole equipment imitates the rotation of a windmill, and the overall frame of the equipment is slightly adjusted to adjust the irradiated angle.

[0033] Finally, a few points should be explained: First, in the description of this application, it should be noted that, unless otherwise specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, which may refer to mechanical connection or electrical connection, or internal communication between two components, or direct connection. "upper", "lower", "left", "right", etc. are only used to indicate relative positional relationships. When the absolute position of the object being described changes, the relative positional relationship may change;

[0034] Secondly: In the drawings of the embodiments disclosed in the present invention, only the structures related to the embodiments disclosed in the present invention are involved, and other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of the present invention can be combined with each other;

[0035] Finally: The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. An angle-automatic adjustable energy storage solar photovoltaic panel, comprising a support base (1), characterized in that: A positioning ring (2) is provided inside the support base (1), a gap adjustment ring (5) is provided on the inner wall of the positioning ring (2), a sliding sleeve (6) is clamped on the top of the gap adjustment ring (5), a gap spacer (7) is clamped on the inside of the sliding sleeve (6), a positioning support column (8) is clamped on the inside of the sliding sleeve (6), a rotating sleeve (12) is provided inside the positioning support column (8), a supporting rib (11) is fitted on the outer wall of the rotating sleeve (12), a rotating disk (17) is provided on the top of the positioning support column (8), and the rotating disk (17) is clamped on the inside of the limiting ring (9), and a telescopic sleeve (18) is fixedly connected to the top of the rotating disk (17).

2. The angle-automatic adjustable energy storage solar photovoltaic panel according to claim 1, characterized in that: The top of the support base (1) is fixedly connected to a support rib ring (3), the inner wall of the support base (1) is fixedly connected to a connection seat (4), and the inner wall of the connection seat (4) is fixedly connected to the outer wall of the positioning ring (2).

3. The angle-automatic adjustable energy storage solar photovoltaic panel according to claim 1, characterized in that: The top of the positioning support column (8) is fixedly connected to a limiting ring (9), the bottom of the limiting ring (9) is provided with a rotating friction ring (10), and the rotating friction ring (10) is arranged inside the positioning support column (8).

4. The angle-automatic adjustable energy storage solar photovoltaic panel according to claim 1, characterized in that: The supporting ribs (11) are provided in a plurality of groups, and the plurality of groups of supporting ribs (11) are arranged in a ring array state with respect to the interior of the positioning supporting column (8).

5. The angle-automatic adjustable energy storage solar photovoltaic panel according to claim 1, characterized in that: A pressing sleeve (13) is provided inside the rotating sleeve (12), a connecting support column (14) is provided inside the pressing sleeve (13), a pressing spring (15) is sleeved on the outer wall of the connecting support column (14), a spring adapter ring (16) is sleeved on the outer wall of the connecting support column (14), and the spring adapter ring (16) is integrally fitted on the outer wall of the pressing spring (15).

6. The angle-automatic adjustable energy storage solar photovoltaic panel according to claim 1, characterized in that: The top of the telescopic sleeve (18) is threadedly connected to a connecting support column (19), the outer wall of the connecting support column (19) is hingedly connected to a rotating motor disk (20), and the outer wall of the rotating motor disk (20) is fixedly connected to a photovoltaic blade (21).

7. The angle-automatic adjustable energy storage solar photovoltaic panel according to claim 6, characterized in that: The photovoltaic blades (21) are provided in a plurality of groups, and the plurality of groups of photovoltaic blades (21) are arranged in a ring array state with respect to the outer wall of the rotating motor disk (20).