Photovoltaic integrated energy shelter

By designing the connecting mechanism, driving mechanism, and energy storage mechanism, the problems of field docking of the energy container and adjustment of photovoltaic panel angles were solved, achieving stable connection and efficient solar energy collection, and improving ease of use and energy utilization efficiency.

CN121047431AInactive Publication Date: 2025-12-02蚌埠兴科玻璃有限公司
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Patent Information

Application Number
CN202511153798.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-18
Publication Date
2025-12-02
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing energy container systems are inconvenient to navigate in rugged terrain or when docking equipment at different heights. The inflexible design of the sunshade panel leads to transportation difficulties and low solar energy utilization. The photovoltaic panels cannot be adjusted according to changes in the angle of sunlight, affecting efficiency.

Method used

A connecting mechanism provides a stable transition channel, a drive mechanism adjusts the angle of the sunshade, and an energy storage mechanism adjusts the orientation of the photovoltaic panels, ensuring a stable connection between the container and external equipment and efficient solar energy collection by the photovoltaic panels.

Benefits of technology

It improves the stability of the connection between the container and external equipment, enhances the solar energy collection efficiency of the photovoltaic panels, reduces the space occupied by the sunshade during transportation, and improves the convenience of use and energy utilization efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of energy square cabins, in particular to a photovoltaic integrated energy square cabin which comprises a base, and a square cabin body is fixed to the top of the base; a connecting mechanism is mounted on the square cabin body; when the shelter body is connected with external equipment or a site, the connection mechanism makes contact with the ground, stability is improved, the shelter body can be conveniently in butt joint with the external equipment, personnel and materials can conveniently enter and exit from the shelter, and use convenience is improved; the solar photovoltaic panel can convert solar energy into electric energy and store the electric energy, the angle of the solar photovoltaic panel can be adjusted through the energy storage mechanism, the orientation of the solar photovoltaic panel can be adjusted according to the position change of the sun, the solar energy collection efficiency is improved, and the energy storage capacity is enhanced; the sunshade area and angle of the shielding mechanism can be adjusted through the driving mechanism so that the shelter can adapt to different illumination conditions, meanwhile, when the shelter body is transported or idle, the shelter body can be folded, and the overall occupied space is greatly reduced.
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Description

Technical Field

[0001] This invention relates to the field of energy container technology, specifically a photovoltaic integrated energy container. Background Technology

[0002] A photovoltaic integrated energy container is an integrated facility that combines photovoltaic power generation technology with energy storage and conversion functions, aiming to provide a stable and efficient energy supply for various scenarios. It tightly integrates photovoltaic power generation modules with the container structure, utilizing solar energy to convert it into electrical energy, and through a supporting energy storage and conversion system, realizing the storage, management, and output of electrical energy. Under sunlight conditions, photovoltaic modules absorb solar energy and convert it into direct current (DC) through the photovoltaic effect. The DC power first enters the energy storage system for storage. When the equipment inside the container needs electricity, the DC power in the energy storage system is converted into alternating current (AC) by an inverter to power the equipment inside the container. During off-peak hours in the daytime when electricity demand is low and photovoltaic power generation is excessive, the excess electrical energy can be stored in the energy storage system; while at night or when sunlight is insufficient, the energy storage system releases electrical energy to maintain the normal operation of the container. The power conversion and control system achieves coordinated management between the photovoltaic power generation system, energy storage system, and electrical equipment through real-time monitoring and control, ensuring efficient energy utilization and a stable energy supply.

[0003] However, the existing energy container's connection points with the external environment, such as personnel passages and material interfaces, are mostly fixed steps or have no transition design. In rugged terrain or when docking with equipment at different heights, these can easily create obstacles and hinder material transfer. The container's sunshades are mostly fixed or manually adjustable. In low light or rainy weather, fixed sunshades can block necessary light, and the fixed length of the sunshades can increase transportation difficulty and take up storage space when the container is being transported or not in use. Manually adjustable sunshades are slow to retract manually in severe weather such as thunderstorms or strong winds, and may be overturned by strong winds because they cannot be retracted in time. In the early morning, evening, or during seasonal changes, the utilization rate of solar energy drops significantly, and the photovoltaic panels on the container cannot be flexibly adjusted according to changes in the angle of sunlight, which may lead to low solar energy collection efficiency. Summary of the Invention

[0004] To address the problems in the existing technology, the present invention provides a photovoltaic integrated energy container.

[0005] The technical solution adopted by the present invention to solve its technical problem is: a photovoltaic integrated energy container, including a base, on the top of which the container body is fixed; and a connecting mechanism is installed on the container body.

[0006] Specifically, the connecting mechanism includes a fixed frame and a fixed plate. The fixed frame is fixedly installed inside the base, and the fixed plate is fixedly connected to the top of the fixed frame. Two sliding grooves are symmetrically arranged inside the fixed frame. A long rod is slidably installed in the sliding groove, and a pedal is fixedly connected to the long rod. A connecting plate is fixedly installed at the end of the pedal away from the fixed frame. Two connecting shafts are symmetrically fixedly connected to the pedal, and a support foot is rotatably connected to the connecting shaft. A groove is provided at the bottom of the pedal near the connecting plate. A pad is fixedly installed on the fixed frame. The connecting mechanism also includes a slot. A slot is provided at the part of the pedal near the support foot. The support foot rotates in the slot, and the length of the support foot is less than the length of the slot. The diameter of the long rod is equal to the width of the sliding groove. The pedal is slidably connected to the fixed frame. The connecting plate is set with an inclined structure, and the pedal is located at the bottom of the fixed plate.

[0007] Specifically, an energy storage mechanism is installed on the top of the modular container body. The energy storage mechanism includes mounting blocks and a protective frame. Two sets of mounting blocks are symmetrically fixed to the modular container body by bolts. A protective frame is fixedly connected to the mounting blocks. A support base and a limiting frame are fixedly installed at the top of the modular container body. A rotating frame is rotatably connected to the limiting frame. Several toothed blocks are fixedly installed in a ring at equal intervals on the rotating frame. A bracket is fixedly installed on the rotating frame. A photovoltaic panel is fixed inside the bracket by bolts. A first motor is fixedly installed on one of the limiting frames. The output end of the first motor is fixedly connected to a rotating shaft by a coupling. A gear is fixed on the rotating shaft. The gear meshes with the toothed blocks. The bracket and the protective frame are rotatably connected. The part of the limiting frame that contacts the rotating frame has an arc-shaped structure. The rotating frame is located at the bottom end of the bracket. The two limiting frames are symmetrically arranged about the support base.

[0008] Specifically, a drive mechanism is fixedly installed on one side of the modular housing body. The drive mechanism includes a first upright and a second motor. The first upright and the second upright are fixedly connected to one side of the modular housing body. The second motor is fixedly installed on the first upright. The output end of the second motor is fixedly connected to a screw through a coupling. A sliding rod is fixedly connected to the second upright. A slider is threadedly connected to the screw. Another slider is slidably connected to the sliding rod. A support rod is rotatably installed on the slider. A fixing block is rotatably installed on the support rod. The screw is rotatably connected to the first upright. The two sliders are slidably connected to the first upright and the second upright, respectively. The support rod is inclined. The fixing block is located at the end of the support rod away from the slider.

[0009] Specifically, a shielding mechanism is fixedly installed on the top of the fixed block. The shielding mechanism includes a positioning block and a sunshade. The top of the fixed block is fixedly connected to the sunshade, and a guide rod is fixedly installed on the sunshade. The top of the container body is fixedly connected to the positioning block. The guide rod is rotatably connected to the positioning block. The shielding mechanism also includes a hydraulic rod. A hydraulic rod is fixedly installed inside the sunshade. The sunshade has a limiting groove inside. A sliding plate is slidably installed in the limiting groove. The telescopic end of the hydraulic rod is fixedly connected to the sliding plate. The shielding mechanism also includes ball bearings. Several ball bearings are rotatably installed on the part of the sunshade near the limiting groove. The ball bearings are rotatably connected to the sliding plate.

[0010] The beneficial effects of this invention are:

[0011] (1) The photovoltaic integrated energy container of the present invention, when the container body is connected to external equipment or site, contacts the ground through the connection mechanism, which increases stability, facilitates docking with external equipment, and facilitates the entry and exit of personnel and materials, thus improving ease of use. That is, when it is necessary to use the pedal to facilitate the entry and exit of operators or materials, the operator can unfold the pedal, hold the pull groove provided at the bottom of the pedal, and then pull the pedal outward. A long rod is fixedly connected inside the pedal. The long rod is located in the sliding groove provided in the fixed frame. When the two ends of the long rod slide along the sliding groove, the pedal can be driven to extend from the fixed frame until the connecting plate fixed at the end of the pedal docks with the external ground or equipment. After the pedal extends, a transition channel is formed. With the cooperation of the inclined connecting plate, it facilitates the entry and exit of personnel and materials. Personnel or supplies enter and exit the modular shelter. During the extension of the pedal, the support legs installed on both sides of the pedal are rotated by hand. The support legs droop due to gravity and rotate out of the slots provided in the pedal. When the bottom of the support legs touches the ground, they can provide stable support for the pedal. The support of the support legs can enhance the load-bearing capacity of the pedal, thereby preventing the pedal from deforming due to stepping. In addition, the length of the support legs is less than the length of the slots, which can ensure that the support legs do not get stuck when retracted. When the pedal is not in use, the operator lifts the end of the pedal upwards, and then rotates the support legs around the connecting shaft and retracts them into the slots. Then, the pedal is pushed to make the long rod slide back to the end of the slide near the base. When the pedal moves to the bottom of the fixed plate, the pedal can be retracted into the fixed frame, which makes it easy to store the pedal after use.

[0012] (2) The photovoltaic integrated energy container of the present invention uses solar photovoltaic panels to convert solar energy into electrical energy and store it. The angle of the solar photovoltaic panels can be adjusted through the energy storage mechanism, and the orientation of the solar photovoltaic panels can be adjusted according to the changes in the position of the sun, thereby improving the solar energy collection efficiency and enhancing the energy storage capacity. That is, under sunny conditions, the photovoltaic panels continuously convert solar energy into electrical energy and transmit the electrical energy to the energy storage equipment (such as battery pack) inside the container body through relevant lines for storage. The photovoltaic panels are installed in the bracket, and the protective frame installed on the top of the container body always protects the photovoltaic panels and internal connecting lines inside the bracket, preventing them from being damaged by external impacts, scratches from foreign objects, etc. When it is necessary to adjust the angle of the photovoltaic panels to improve solar energy collection efficiency, the operator can start the first motor. The output end of the first motor is fixed to a rotating shaft through a coupling. The rotating shaft rotates in a support fixed at the top of the container body. Gears are fixed at both ends of the rotating shaft. The rotating shaft drives the gears to rotate. The gears mesh with the tooth blocks installed on the rotating frame. The gears drive the tooth blocks to rotate, which can drive the rotating frame to rotate. The rotating frame is installed in a limiting frame. Since the part of the limiting frame that contacts the rotating frame is set with an arc surface structure, the arc surface structure can ensure that the rotating frame rotates smoothly. By observing the real-time direction of the light through sensors or manual observation, the operator controls the first motor to rotate forward and reverse, so that the photovoltaic panels face the sun until the optimal light-receiving angle is reached.

[0013] (3) The photovoltaic integrated energy cabin of the present invention can adjust the shading area and angle of the shading mechanism through the drive mechanism to adapt to different lighting conditions. At the same time, when the cabin body is transported or idle, it can be folded up to greatly reduce the overall space occupied. That is, when the sunlight is strong and it is necessary to shield the internal equipment of the cabin body from the sunlight, the control switch of the second motor can be activated. The second motor drives the screw to rotate in the first upright fixed on the side wall of the cabin body. A slider is threaded on the screw. A second upright is fixed on the side wall of the cabin body away from the first upright. A sliding rod is fixed in the second upright. Another slider is slidably installed on the sliding rod. The rotation of the screw will cause the two sliders to move on the screw and the sliding rod respectively. When the sliders move, they drive the support rod to move. The support rod then pushes the fixing block installed at the end. The fixing block is installed at the bottom of the sunshade. By controlling the number of rotations and direction of the second motor, the sliding rod can be precisely controlled. The movement of the blocks facilitates the adjustment of the sunshade angle. Opening the control switch of the hydraulic rod installed inside the sunshade allows the extension end of the hydraulic rod to push the sliding plate through the limiting groove within the sunshade. The sliding plate then unfolds the sunshade, gradually increasing its shading area. The unfolding angle and shading area can be adjusted by controlling the extension of the hydraulic rod according to the intensity of sunlight. When the sunshade is not needed, or for transport or storage, the hydraulic rod is activated to shorten it. The hydraulic rod then causes the sliding plate to slide in the opposite direction within the limiting groove. During the retraction process, the rotating ball bearings inside the sunshade reduce the friction between the sliding plate and the sunshade, allowing it to return to its original position within the sunshade. When the screw rotates in the opposite direction, the slider, support rod, and fixing block gradually fold the sunshade, allowing it to be folded up during transport or when the container is not in use, significantly reducing the overall space occupied. Attached Figure Description

[0014] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0015] Figure 1 This is a schematic diagram of the overall structure of a preferred embodiment of a photovoltaic integrated energy container provided by the present invention;

[0016] Figure 2 This is a schematic diagram of the connection structure between the container body and the protective frame of the present invention;

[0017] Figure 3 for Figure 2 The diagram shown is an enlarged view of the structure of part A.

[0018] Figure 4 for Figure 2 The diagram shown is an enlarged view of the structure of section B.

[0019] Figure 5 This is a schematic diagram of the connection structure between the bracket and the rotating frame of the present invention;

[0020] Figure 6 This is a schematic diagram of the connection structure between the pedal and the support foot of the present invention;

[0021] Figure 7 This is a schematic diagram of the connection structure between the fixing frame and the pad of the present invention;

[0022] Figure 8 This is a schematic diagram of the connection structure between the pedal and the long rod of the present invention;

[0023] Figure 9 This is a schematic diagram of the connection structure between the sunshade and the sliding plate of the present invention;

[0024] Figure 10 This is a schematic diagram of the connection structure between the sunshade and the hydraulic rod of the present invention;

[0025] Figure 11 for Figure 10 The diagram shows an enlarged view of section C.

[0026] In the diagram: 1. Base; 2. Container body; 3. Energy storage mechanism; 301. Mounting block; 302. Protective frame; 303. Bracket; 304. Photovoltaic panel; 305. Rotating frame; 306. Tooth block; 307. Gear; 308. Rotating shaft; 309. Support base; 310. Limiting frame; 311. First motor; 4. Connecting mechanism; 401. Fixed frame; 402. Fixed plate; 403. Pedal; 404. Connecting plate; 405. Support leg; 406. Connecting shaft; 407. 408. Empty groove; 409. Sliding groove; 410. Pad plate; 411. Long rod; 5. Drive mechanism; 501. First upright; 502. Second motor; 503. Screw; 504. Second upright; 505. Sliding rod; 506. Sliding block; 507. Support rod; 508. Fixing block; 6. Shielding mechanism; 601. Positioning block; 602. Sunshade; 603. Slide plate; 604. Guide rod; 605. Hydraulic rod; 606. Ball bearing; 607. Limiting groove. Detailed Implementation

[0027] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0028] like Figure 1 , Figure 6 , Figure 7 and Figure 8 As shown, the photovoltaic integrated energy container of the present invention includes a base 1, and a container body 2 is fixed on the top of the base 1; a connecting mechanism 4 is installed on the container body 2.

[0029] Specifically, such as Figure 1 , Figure 6 , Figure 7 and Figure 8 As shown, the connecting mechanism 4 includes a fixed frame 401 and a fixed plate 402. The fixed frame 401 is fixedly installed inside the base 1, and the fixed plate 402 is fixedly connected to the top of the fixed frame 401. Two sliding grooves 408 are symmetrically arranged inside the fixed frame 401. A long rod 411 is slidably installed on the sliding groove 408. The diameter of the long rod 411 is equal to the width of the sliding groove 408. A pedal 403 is fixedly connected to the long rod 411. The pedal 403 is located at the bottom of the fixed plate 402. The pedal 403 and... The fixed frames 401 are slidably connected. A connecting plate 404 is fixedly installed on the end of the pedal 403 away from the fixed frame 401. The connecting plate 404 is set with an inclined structure. Hold the pull groove 409 provided at the bottom of the pedal 403 and then pull the pedal 403 outward. A long rod 411 is fixedly connected inside the pedal 403. The long rod 411 is located at the sliding groove 408 provided inside the fixed frame 401. When the two ends of the long rod 411 slide along the sliding groove 408, it can drive the pedal 403 to extend out of the fixed frame 401 until the pedal 403 extends outward. The connecting plate 404 fixed at the end of the 03 unit docks with the external ground or equipment. After the pedal 403 extends, it forms a transition channel, which, together with the inclined connecting plate 404, facilitates the entry and exit of personnel or materials into and out of the main body 2 of the container. Two connecting shafts 406 are symmetrically fixedly connected to the pedal 403. Support legs 405 are rotatably connected to the connecting shafts 406. When the support legs 405 installed on both sides of the pedal 403 are rotated, the support legs 405 droop due to gravity and rotate out from the slots 407 provided in the pedal 403. When the bottom end of the support leg 405 contacts the ground, it can support the pedal. The plate 403 provides stable support, and the support of the foot 405 enhances the load-bearing capacity of the pedal 403, thereby preventing the pedal 403 from deforming due to pressure. The bottom end of the pedal 403 near the connecting plate 404 is provided with a groove 409, and a pad 410 is fixedly installed on the fixing frame 401. The part of the pedal 403 near the foot 405 is provided with a slot 407, and the foot 405 rotates in the slot 407. The length of the foot 405 is less than the length of the slot 407, which ensures that the foot 405 does not jam when it is retracted.

[0030] Specifically, such as Figure 1 , Figure 2 , Figure 3 and Figure 5As shown, an energy storage mechanism 3 is installed on the top of the modular housing 2. The energy storage mechanism 3 includes mounting blocks 301 and protective frames 302. Two sets of mounting blocks 301 are symmetrically fixed to the modular housing 2 by bolts. Protective frames 302 are fixedly connected to the mounting blocks 301. Photovoltaic panels 304 are installed inside the bracket 303. The protective frame 302 installed on the top of the modular housing 2 always protects the photovoltaic panels 304 and internal connecting lines inside the bracket 303 from external impacts and scratches from foreign objects. Damage such as scratches; a support base 309 and a limiting frame 310 are fixedly installed on the top of the container body 2. The two limiting frames 310 are symmetrically arranged about the support base 309. A rotating frame 305 is rotatably connected to the limiting frame 310, and the rotating frame 305 is located at the bottom of the support 303. The part of the limiting frame 310 that contacts the rotating frame 305 is set with an arc surface structure. The arc surface structure can ensure that the rotating frame 305 rotates smoothly. The first motor 3 is controlled by observing the real-time light direction through sensors or manual observation. 11. Rotate the photovoltaic panel 304 forward and backward to face the sun until the optimal light-receiving angle is reached; several toothed blocks 306 are fixedly installed in a ring at equal intervals on the rotating frame 305; a bracket 303 is fixedly installed on the rotating frame 305; the bracket 303 is rotatably connected to the protective frame 302; the photovoltaic panel 304 is fixed inside the bracket 303 by bolts; a first motor 311 is fixedly installed on one of the limiting frames 310; the output end of the first motor 311 is fixedly connected to a rotating shaft through a coupling. 308, a gear 307 is fixed on the rotating shaft 308, and the gear 307 meshes with the tooth block 306. The output end of the first motor 311 is fixed to the rotating shaft 308 through a coupling. The rotating shaft 308 rotates in the support seat 309 fixed at the top of the container body 2. The two ends of the rotating shaft 308 are fixed with gears 307. The rotating shaft 308 drives the gear 307 to rotate. The gear 307 meshes with the tooth block 306 installed on the rotating frame 305. The gear 307 drives the tooth block 306 to rotate, which can drive the rotating frame 305 to rotate.

[0031] Specifically, such as Figure 1 , Figure 2 , Figure 4 , Figure 9 , Figure 10 and Figure 11As shown, a drive mechanism 5 is fixedly installed on one side of the modular housing 2. The drive mechanism 5 includes a first upright 501 and a second motor 502. The first upright 501 and the second upright 504 are fixedly connected to one side of the modular housing 2. The second motor 502 is fixedly installed on the first upright 501. The output end of the second motor 502 is fixedly connected to a screw 503 via a coupling. The screw 503 is rotatably connected to the first upright 501. A slide rod 505 is fixedly connected to the second upright 504. A slider 506 is threaded onto the screw 503. Another slider 506 is slidably connected to the slide rod 505. The two sliders 506 are respectively connected to the first upright 501 and the second upright 504. 01. The second uprights 504 are slidably connected. A support rod 507 is rotatably mounted on the slider 506. The support rod 507 is inclined. A fixing block 508 is rotatably mounted on the support rod 507. The rotation of the screw 503 will cause the two sliders 506 to move on the screw 503 and the sliding rod 505 respectively. While the sliders 506 are moving, they drive the support rod 507 to move. The support rod 507 then pushes the fixing block 508 mounted at the end. The fixing block 508 is mounted at the bottom of the sunshade 602. By controlling the number of rotations and direction of the second motor 502, the movement of the sliders 506 can be precisely controlled, thereby facilitating the adjustment of the angle of the sunshade 602. The fixing block 508 is located at the end of the support rod 507 away from the slider 506.

[0032] Specifically, such as Figure 1 , Figure 2 , Figure 9 , Figure 10 and Figure 11As shown, a shielding mechanism 6 is fixedly installed on the top of the fixing block 508. The shielding mechanism 6 includes a positioning block 601 and a sunshade 602. The top of the fixing block 508 is fixedly connected to the sunshade 602, and a guide rod 604 is fixedly installed on the sunshade 602. The top of the container body 2 is fixedly connected to the positioning block 601. The guide rod 604 is rotatably connected to the positioning block 601. A hydraulic rod 605 is fixedly installed inside the sunshade 602. A limiting groove 607 is provided inside the sunshade 602. A sliding plate 603 is slidably installed in the limiting groove 607. When the telescopic end of the hydraulic rod 605 extends, it can push the sliding plate 603 on the sunshade 602. The limiting groove 607 inside the 02 slides, and the sliding plate 603 drives the sunshade 602 to unfold. As the sunshade 602 unfolds, its shading area gradually increases. Therefore, the unfolding angle and shading area of ​​the sunshade 602 can be adjusted according to the intensity of sunlight by controlling the extension of the hydraulic rod 605. The telescopic end of the hydraulic rod 605 is fixedly connected to the sliding plate 603. Several ball bearings 606 are rotatably installed on the part of the sunshade 602 near the limiting groove 607. The ball bearings 606 are rolled and connected to the sliding plate 603. The ball bearings 606 can reduce the friction between the sliding plate 603 and the sunshade 602 when the sliding plate 603 slides, so that it can return to the interior of the sunshade 602.

[0033] In use, when the pedal 403 is needed to facilitate the entry and exit of personnel or materials into the container body 2, the operator can unfold the pedal 403, grasp the pull groove 409 at the bottom of the pedal 403, and then pull the pedal 403 outward. A long rod 411 is fixedly connected inside the pedal 403. The long rod 411 is located in the sliding groove 408 inside the fixed frame 401. When the two ends of the long rod 411 slide along the sliding groove 408, the pedal 403 can be extended from the fixed frame 401 until the connecting plate 404 fixed at the end of the pedal 403 connects with the external ground or equipment. After the pedal 403 extends, it forms a transition channel, which, together with the inclined connecting plate 404, facilitates the entry and exit of personnel or materials into the container body 2. During the extension of the pedal 403, the support legs 405 installed on both sides of the pedal 403 can be rotated by hand. Due to the weight of the support legs 405, the support legs 405 can be extended. The force is downward and rotates out from the slot 407 provided in the pedal 403. When the bottom end of the support leg 405 contacts the ground, it can provide stable support for the pedal 403. The support of the support leg 405 can enhance the load-bearing capacity of the pedal 403, thereby preventing the pedal 403 from deforming due to stepping. Moreover, the length of the support leg 405 is less than the length of the slot 407, which can ensure that the support leg 405 does not get stuck when it is retracted. When the pedal 403 is not in use, the operator lifts the end of the pedal 403 upward, and then rotates the support leg 405 around the connecting shaft 406 and retracts it into the slot 407. Then, the pedal 403 is pushed so that the long rod 411 slides back to the end of the slide groove 408 near the base 1. When the pedal 403 moves to the bottom end of the fixed plate 402, the pedal 403 can be retracted into the fixed frame 401, which makes it easy to store the pedal 403 after use.

[0034] Under sunny conditions, the photovoltaic panel 304 continuously converts solar energy into electrical energy and transmits it to energy storage equipment (such as a battery pack) inside the container body 2 via relevant lines. The photovoltaic panel 304 is installed inside the bracket 303, and the protective frame 302 installed at the top of the container body 2 always protects the photovoltaic panel 304 and its internal connecting lines inside the bracket 303 from damage caused by external impacts, scratches, etc. When it is necessary to adjust the angle of the photovoltaic panel 304 to improve the solar energy collection efficiency, the operator can start the first motor 311. The output end of the first motor 311 is fixed to the rotating shaft 308 through a coupling. The rotating shaft 308 is located in the container. The main body 2 rotates within the support base 309 fixed at the top. Gears 307 are fixed at both ends of the rotating shaft 308. The rotating shaft 308 drives the gears 307 to rotate. The gears 307 mesh with the toothed blocks 306 installed on the rotating frame 305. The gears 307 drive the toothed blocks 306 to rotate, which can drive the rotating frame 305 to rotate. The rotating frame 305 is installed in the limiting frame 310. Since the part of the limiting frame 310 that contacts the rotating frame 305 is set with an arc surface structure, the arc surface structure can ensure that the rotating frame 305 rotates smoothly. By observing the real-time light direction through sensors or manual observation, the first motor 311 is controlled to rotate forward and backward, so that the photovoltaic panel 304 faces the sun until the optimal light-receiving angle is reached.

[0035] When the sunlight is strong and it is necessary to shield the internal equipment of the container body 2 from the sun, the control switch of the second motor 502 can be activated. The second motor 502 drives the screw 503 to rotate inside the first upright 501 fixed to the side wall of the container body 2. A slider 506 is threaded onto the screw 503. A second upright 504 is fixed to the side wall of the container body 2 away from the first upright 501. A sliding rod 505 is fixed inside the second upright 504. Another slider 506 is slidably mounted on the sliding rod 505. The rotation causes the two sliders 506 to move on the screw 503 and the slide bar 505 respectively. As the sliders 506 move, they drive the support rod 507 to move, which in turn pushes the fixing block 508 installed at the end of the sun visor 602. The fixing block 508 is installed at the bottom of the sun visor 602. By controlling the number of rotations and direction of the second motor 502, the movement of the sliders 506 is precisely controlled, thus facilitating the adjustment of the angle of the sun visor 602. Opening the control switch of the hydraulic rod 605 installed inside the sun visor 602 activates the hydraulic rod 60... When the telescopic end of 5 extends, it can push the sliding plate 603 to slide within the limiting groove 607 in the sunshade 602. The sliding plate 603 drives the sunshade 602 to unfold. As the sunshade 602 unfolds, its shading area gradually increases. Therefore, the unfolding angle and shading area of ​​the sunshade 602 can be adjusted by controlling the extension of the hydraulic rod 605 according to the intensity of sunlight. When the sunshade 602 is not needed, or when transportation or storage is required, the hydraulic rod 605 can be activated to shorten it. 5. The sliding plate 603 slides in the opposite direction within the limiting groove 607. During the retraction process, the ball bearing 606 installed inside the sun visor 602 can reduce the friction between the sliding plate 603 and the sun visor 602 when they slide, allowing the sliding plate 603 to return to its original position inside the sun visor 602. When the screw 503 rotates in the opposite direction, the slider 506, the support rod 507, and the fixing block 508 can drive the sun visor 602 to gradually fold up and retract. This allows the container body 2 to be folded up during transportation or when it is not in use, significantly reducing the overall space occupied.

[0036] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0037] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A photovoltaic integrated energy container, characterized in that, Includes a base (1), on the top of which a container body (2) is fixed; a connecting mechanism (4) is installed on the container body (2); The connecting mechanism (4) includes a fixed frame (401) and a fixed plate (402). The fixed frame (401) is fixedly installed in the base (1). The fixed plate (402) is fixedly connected to the top of the fixed frame (401). Two sliding grooves (408) are symmetrically provided in the fixed frame (401). A long rod (411) is slidably installed in the sliding groove (408). A pedal (403) is fixedly connected to the long rod (411). A connecting plate (404) is fixedly installed at one end of the pedal (403) away from the fixed frame (401). Two connecting shafts (406) are symmetrically fixedly connected to the pedal (403). A support foot (405) is rotatably connected to the connecting shaft (406). A groove (409) is provided at the bottom of the pedal (403) near the connecting plate (404). A pad (410) is fixedly installed on the fixed frame (401).

2. The photovoltaic integrated energy container according to claim 1, characterized in that: The connecting mechanism (4) also includes a slot (407). The part of the pedal (403) near the support foot (405) is provided with a slot (407). The support foot (405) rotates in the slot (407), and the length of the support foot (405) is less than the length of the slot (407).

3. The photovoltaic integrated energy container according to claim 1, characterized in that: The diameter of the long rod (411) is equal to the width of the slide groove (408). The pedal (403) is slidably connected to the fixed frame (401). The connecting plate (404) is set with an inclined structure. The pedal (403) is located at the bottom of the fixed plate (402).

4. The photovoltaic integrated energy container according to claim 1, characterized in that: An energy storage mechanism (3) is installed on the top of the modular housing (2). The energy storage mechanism (3) includes a mounting block (301) and a protective frame (302). Two sets of mounting blocks (301) are symmetrically fixed to the modular housing (2) by bolts. A protective frame (302) is fixedly connected to the mounting block (301). A support base (309) and a limiting frame (310) are fixedly installed on the top of the modular housing (2). A rotating frame (305) is rotatably connected to the limiting frame (310). 05) Several toothed blocks (306) are fixedly installed in a ring at equal intervals. A bracket (303) is fixedly installed on the rotating frame (305). A photovoltaic panel (304) is fixed inside the bracket (303) by bolts. A first motor (311) is fixedly installed on one of the limiting frames (310). The output end of the first motor (311) is fixedly connected to a rotating shaft (308) through a coupling. A gear (307) is fixed on the rotating shaft (308). The gear (307) meshes with the toothed blocks (306).

5. The photovoltaic integrated energy container according to claim 4, characterized in that: The bracket (303) is rotatably connected to the protective frame (302). The contact area between the limiting frame (310) and the rotating frame (305) is set with an arc surface structure, and the rotating frame (305) is located at the bottom end of the bracket (303). The two limiting frames (310) are symmetrically arranged about the support base (309).

6. The photovoltaic integrated energy container according to claim 1, characterized in that: A drive mechanism (5) is fixedly installed on one side of the container body (2). The drive mechanism (5) includes a first upright (501) and a second motor (502). The first upright (501) and the second upright (504) are fixedly connected to one side of the container body (2). The second motor (502) is fixedly installed on the first upright (501). The output end of the second motor (502) is fixedly connected to a screw (503) through a coupling. A slide rod (505) is fixedly connected to the second upright (504). A slider (506) is threadedly connected to the screw (503). Another slider (506) is slidably connected to the slide rod (505). A support rod (507) is rotatably installed on the slider (506). A fixing block (508) is rotatably installed on the support rod (507).

7. The photovoltaic integrated energy container according to claim 6, characterized in that: The screw (503) is rotatably connected to the first upright (501), and the two sliders (506) are slidably connected to the first upright (501) and the second upright (504) respectively. The support rod (507) is inclined, and the fixing block (508) is located at the end of the support rod (507) away from the slider (506).

8. The photovoltaic integrated energy container according to claim 7, characterized in that: A shielding mechanism (6) is fixedly installed on the top of the fixed block (508). The shielding mechanism (6) includes a positioning block (601) and a sunshade (602). The top of the fixed block (508) is fixedly connected to the sunshade (602). A guide rod (604) is fixedly installed on the sunshade (602). The top of the container body (2) is fixedly connected to the positioning block (601). The guide rod (604) is rotatably connected to the positioning block (601).

9. A photovoltaic integrated energy container according to claim 8, characterized in that: The shading mechanism (6) also includes a hydraulic rod (605). The hydraulic rod (605) is fixedly installed inside the sunshade (602). The sunshade (602) has a limiting groove (607) inside. A sliding plate (603) is slidably installed in the limiting groove (607). The telescopic end of the hydraulic rod (605) is fixedly connected to the sliding plate (603).

10. A photovoltaic integrated energy container according to claim 9, characterized in that: The shielding mechanism (6) also includes ball bearings (606). Several ball bearings (606) are rotatably installed on the part of the sunshade (602) near the limiting groove (607). The ball bearings (606) are in rolling connection with the slide plate (603).