Tent with solar panel capable of adaptively tracking sunlight

By introducing suspension, climbing stabilization, and light-concentrating anti-fouling mechanisms into the tent, the problem of easy contamination of the tent's solar modules under severe weather conditions has been solved, achieving efficient cleaning of photovoltaic modules and stable power supply.

CN122039870APending Publication Date: 2026-05-15扬州时利和技术有限公司
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Patent Information

Application Number
CN202512035452.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

The solar modules in existing tents are susceptible to contamination in severe weather, leading to a decrease in photoelectric conversion efficiency, and the high-precision transmission device increases costs.

Method used

A tent with a suspension mechanism, a climbing and stabilizing mechanism, an assist mechanism, and a focusing and anti-fouling mechanism was designed. The climbing and stabilizing mechanism is controlled by a motor and gears to keep the photovoltaic modules vertical, the concave cover protects the modules from contamination, and the impeller and scraper system removes dirt.

Benefits of technology

Keeping photovoltaic modules clean during severe weather improves photoelectric conversion efficiency, reduces wind resistance, and ensures the safety and stability of power supply inside the tent.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of tents, in particular to a tent with a solar panel capable of adaptively tracking sunlight, which comprises a tent, a suspension support mechanism mounted outside the tent, and two groups of climbing stability augmentation mechanisms clamped on the suspension support mechanism, the power-assisted mechanisms are mounted on the two groups of climbing stability augmentation mechanisms; the light-gathering antifouling mechanisms are mounted on the power-assisted mechanisms; the suspension supporting mechanism comprises a fixed base, and a second sliding frame and a first sliding frame which are symmetrically distributed are installed in the fixed base. A suspension supporting mechanism is erected outside the tent, a motor and a gear are used for controlling the two sets of climbing stability augmentation mechanisms to ascend stably till the photovoltaic module turns over laterally and is vertically upward, sunlight can be gathered and mapped to the photovoltaic module through a mirror face of a concave face cover, and at the moment, the photovoltaic module turns over laterally and is vertically upward. The photovoltaic module protected by the concave face cover and the two side plates can be prevented from being polluted by dirt carried by environmental airflow, the photovoltaic module can be ensured to operate safely in severe weather, and the photoelectric conversion efficiency is further improved.
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Description

Technical Field

[0001] This invention relates to the field of tent technology, specifically to a tent with an adaptively tracking solar panel. Background Technology

[0002] A tent that tracks sunlight and converts it into electricity is an outdoor device with integrated solar cells. It is equipped with solar panels that can track sunlight and adjust the angle in real time through a light intensity sensing system to ensure that the solar panels generate electricity efficiently.

[0003] Currently, tents equipped with solar modules have certain drawbacks in actual use. Since solar modules that track sunlight need to rely on light intensity sensing systems to adjust the angle of the solar panels, such devices require high-precision transmission devices and control units, which increases costs. At the same time, existing directly exposed solar panels are easily contaminated by pollutants carried by air currents in the environment, which can cause a decrease in the photoelectric conversion efficiency of the solar panels, especially when used in sudden weather conditions such as wind, rain, and dust storms.

[0004] In view of this, a tent with an adaptively tracking solar panel was designed to solve the above problems. Summary of the Invention

[0005] The present invention aims to solve one of the technical problems existing in the prior art or related technologies.

[0006] Therefore, the technical solution adopted in this invention is as follows: A tent with an adaptively tracking solar panel includes a tent, a suspension mechanism mounted outside the tent, two sets of climbing and stabilizing mechanisms clamped onto the suspension mechanism, an assist mechanism mounted on the two sets of climbing and stabilizing mechanisms, and a focusing and anti-fouling mechanism mounted on the assist mechanism. The suspension mechanism includes a fixed base, within which symmetrically distributed second and first slides are installed. The two sets of climbing and stabilizing mechanisms are movably mounted on the second and first slides, respectively, to provide a stabilizing support platform for the assist mechanism. The assist mechanism includes two beams, with a support plate mounted on each beam. A clamp is mounted on the support plate, and a photovoltaic module is mounted on the clamp. The focusing and anti-fouling mechanism includes two brackets mounted on the two beams, with a concave cover mounted on each bracket. Two side plates are fixedly mounted at both ends of the concave cover, and the concave cover is located outside the photovoltaic module. A concave mirror is provided on the outer surface of the concave cover, and the concave mirror is adapted and aligned with the outer surface of the photovoltaic module.

[0007] In a preferred embodiment, the present invention can be further configured such that: the top plate end of the fixed base has two pre-installed holes, and the fixed base is fixed to the side of the bottom of the tent by bolts; The first carriage has a groove inside the rod, and a rack is fixedly installed in the groove.

[0008] In a preferred embodiment, the present invention can be further configured as follows: the climbing stabilization mechanism includes two slides, two rods are inserted into the two slides, and a combination bolt is fixedly installed in the two slides. An internal frame plate is fixedly installed on the inner wall of the slide, and a spring is fixedly connected to the inner wall of the internal frame plate. A slider is fixedly connected to the other end of the spring, and a pressure wheel is movably installed in two adjacent sliders.

[0009] In a preferred embodiment, the present invention can be further configured such that: a sliding groove is provided inside the slide block, and a pressure plate is fixedly installed at the bottom of the slide block.

[0010] In a preferred embodiment, the present invention may be further configured such that: the assist mechanism further includes a main base fixedly installed at one end of the two beams, and an auxiliary base fixedly installed at the other end of the two beams; a bidirectional lead screw is installed in the threaded hole inside the main base; and two sets of climbing and stabilizing mechanisms are respectively movably installed on the main base and the auxiliary base.

[0011] In a preferred embodiment, the present invention can be further configured as follows: a chassis is fixedly installed on the outer end of the main unit, two wires are connected to the chassis, and the other ends of the two wires are connected to the connector of the photovoltaic module. A motor is installed inside the chassis, and a gear is fixedly installed on the drive shaft inside the motor, and the gear is located in the gap between two of the slides.

[0012] In a preferred embodiment, the present invention can be further configured such that: a slide rail is provided at the bottom of the slide block, and the T-shaped plate segments of the main base and the auxiliary base are adapted to pass through the slide rail at the bottom of the slide block.

[0013] In a preferred embodiment, the present invention can be further configured as follows: two sets of clamps are fixedly installed on the side of the bracket, and a horizontally placed main shaft is movably installed in the two sets of clamps. An impeller is fixedly installed at one end of the main shaft. A box cover and a limiting plate are installed on the concave cover. Two symmetrically distributed box covers are fixedly installed at both ends of the box cover, and the impeller is located inside the box cover. The end of the main shaft is adapted to penetrate into the two box covers. A sliding column is fixedly installed on the main shaft, and a sliding sleeve is movably installed on the outside of the sliding column. The limiting plate has a horizontal groove inside, and a sliding rod is inserted into the horizontal groove. A scraper is fixedly installed at the bottom end of the sliding rod. The tube section of the sliding sleeve is adapted to penetrate into the transverse groove, and the top end of the sliding rod is adapted to penetrate into the sliding sleeve and is engaged in the sliding groove outside the sliding column.

[0014] In a preferred embodiment, the present invention can be further configured such that: the inner wall of the pressure plate is provided with a semi-circular groove, and after two adjacent pressure plates are closed, they will provide a pressure-bearing platform for the column head at the inner end of the bidirectional screw.

[0015] In a preferred embodiment, the present invention may be further configured such that: an energy storage module is pre-installed inside the chassis, and a connector on the energy storage module extends out of the chassis and is connected to a power line extending from the top of the tent.

[0016] By adopting the above technical solution, the beneficial effects achieved by the present invention are as follows: 1. This invention uses a suspension mechanism installed on the outside of the tent, and a motor and gears to control two sets of climbing and stabilizing mechanisms to rise smoothly until the photovoltaic module tilts to the side and stands upright. Sunlight is focused and reflected onto the photovoltaic module through the mirror of the concave mask. At this time, the photovoltaic module, protected by the concave mask and two side panels, can avoid being contaminated by dirt carried by the ambient airflow, ensuring that the photovoltaic module can operate safely in severe weather and further improving the efficiency of photoelectric conversion.

[0017] 2. This invention uses two sets of clamps fixed to the side of the concave mask to hold the main shaft. Once the airflow in the environment impacts the tent and generates a turbine, the converged airflow will help rotate the impeller. The rotating impeller will drive the main shaft and the slide column to rotate synchronously. Finally, the rotating slide column will help the slide rod and scraper slide regularly along the mirror surface of the concave mask, thereby ensuring that the mirror surface of the concave mask can remain clean in harsh weather conditions, which is convenient for providing anti-fouling protection for photovoltaic modules.

[0018] 3. This invention provides wiring holes in the tent roof and allows power cords to pass through these holes and connect to the energy storage module that has been flipped to the top. When the vertically flipped concave cover is directly above the tent roof, the power cord can then supply power to the electronic devices inside the tent through the energy storage module, effectively ensuring the safety of electricity use inside the tent. Attached Figure Description

[0019] Figure 1 This is a schematic diagram illustrating the use of the present invention; Figure 2 This is a partial side view of the present invention; Figure 3 This is a schematic diagram of the suspension mechanism of the present invention; Figure 4 For the present invention Figure 2 An explosion diagram; Figure 5 This is a schematic diagram of the light-concentrating anti-fouling mechanism of the present invention; Figure 6 This is a schematic diagram of the assist mechanism of the present invention; Figure 7For the present invention Figure 6 An explosion diagram; Figure 8 This is a schematic diagram of the climbing stabilization mechanism of the present invention; Figure 9 This is a cross-sectional schematic diagram of the slide of the present invention.

[0020] Figure label: 100. Tent; 200, Suspension mechanism; 210, Fixed base; 220, Second carriage; 230, First carriage; 240, Rack and pinion; 300. Climbing stabilization mechanism; 310. Slide seat; 3101. Slide groove; 3102. Pressure plate; 320. Insert rod; 330. Combination bolt; 340. Internal frame plate; 3401. Spring; 3402. Slider; 350. Pressure wheel; 400. Assist mechanism; 410. Main unit base; 4101. Sub-unit base; 4102. Beam rod; 420. Double-acting lead screw; 430. Chassis; 4301. Wire; 440. Motor; 450. Gear; 460. Support plate; 470. Photovoltaic module; 4701. Clamp; 500. Concentrating anti-fouling mechanism; 510. Support frame; 5101. Concave mask; 5102. Side plate; 5103. Clamp; 520. Limiting plate; 530. Main shaft; 5301. Sliding column; 5302. Sliding sleeve; 5303. Impeller; 540. Box cover; 5401. Box lid; 550. Scraper; 5501. Sliding rod. Detailed Implementation

[0021] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features described herein can be combined with each other.

[0022] It should be understood that these descriptions are merely exemplary and are not intended to limit the scope of the invention.

[0023] The following describes, with reference to the accompanying drawings, some embodiments of the present invention, providing a tent with an adaptively tracking solar panel. Example 1:

[0024] Combination Figures 1 to 9As shown, the present invention provides a tent with an adaptively tracking solar panel, comprising a tent 100, a suspension mechanism 200 mounted outside the tent 100, two sets of climbing and stabilizing mechanisms 300 clamped on the suspension mechanism 200, an assist mechanism 400 mounted on the two sets of climbing and stabilizing mechanisms 300, and a concentrating and anti-fouling mechanism 500 mounted on the assist mechanism 400. The suspension mechanism 200 provides a sliding platform for the two sets of climbing and stabilizing mechanisms 300, allowing the two sets of climbing and stabilizing mechanisms 300 to slide smoothly carrying the assist mechanism 400 and the concentrating and anti-fouling mechanism 500. The assist mechanism 400 provides an angle-adjustable support platform for the concentrating and anti-fouling mechanism 500, facilitating angle control of the concentrating and anti-fouling mechanism 500 within the tent 100. The concentrating and anti-fouling mechanism 500 provides anti-fouling protection for the tent roof.

[0025] The suspension mechanism 200 includes a fixed base 210, in which a second slide 220 and a first slide 230 are symmetrically distributed. The top plate end of the fixed base 210 has two pre-installed holes, and the fixed base 210 is fixed to the side of the bottom of the tent 100 by bolts. The first slide 230 has a groove inside the rod, and a rack 240 is fixedly installed in the groove; Two sets of climbing stabilization mechanisms 300 are movably installed on the second slide 220 and the first slide 230, respectively, to provide a stabilizing support platform for the assist mechanism 400; The assist mechanism 400 includes two beams 4102, with a support plate 460 mounted on each beam 4102. A clamp 4701 is mounted on the support plate 460, and a photovoltaic module 470 is mounted on the clamp 4701. A main base 410 is fixedly mounted at one end of the two beams 4102, and a secondary base 4101 is fixedly mounted at the other end of the two beams 4102. A bidirectional lead screw 420 is installed in the threaded hole inside the main base 410. Two sets of climbing and stabilizing mechanisms 300 are movably mounted on the main base 410 and the secondary base 4101, respectively. A housing 430 is fixedly mounted on the outer end of the main base 410. Two wires 4301 are connected to the housing 430, and the other ends of the two wires 4301 are connected to the connectors of the photovoltaic module 470. A motor 440 is installed inside the housing 430, and a gear 450 is fixedly mounted on the drive shaft inside the motor 440. The chassis 430 is pre-installed with an energy storage module, and the connector on the energy storage module extends out of the chassis 430 and is connected to the power cable that extends out of the top of the tent 100. The concentrating anti-fouling mechanism 500 includes two supports 510 mounted on two beams 4102, and a concave cover 5101 is mounted on the two supports 510. Two side plates 5102 are fixedly mounted at both ends of the concave cover 5101, and the concave cover 5101 is located outside the photovoltaic module 470. The outer surface of the concave mask 5101 is provided with a concave mirror, and the concave mirror is adapted and aligned with the outer surface of the photovoltaic module 470.

[0026] In use, the two sets of climbing and stabilizing mechanisms 300 are pre-clamped onto the rods of the second slide 220 and the first slide 230. Then, the wheel at the outer end of the double-acting screw 420 is rotated until the main base 410, the auxiliary base 4101 and the beam 4102 are pushed toward the second slide 220 and the first slide 230 until the gear 450 is adapted to mesh with the rack 240 in the first slide 230. Next, by starting the motor 440, the gear 450 fixed on the motor 440 will be driven by the transmission to drive the two sets of climbing and stabilizing mechanisms 300 to slide upward along the second slide 220 and the first slide 230. Finally, the two sets of climbing and stabilizing mechanisms 300 will move from the bottom of the second slide 220 and the first slide 230 to the top, and the mirror surface of the concave mask 5101 will be vertically upward. At this time, the sunlight will be focused by the mirror on the outside of the concave mask 5101, and the focused sunlight will be projected onto the photovoltaic module 470. The photovoltaic module 470 will perform photoelectric conversion on the focused sunlight, and the converted electrical energy will be stored in the energy storage module. The electrical energy in the energy storage module will be safely supplied to the electronic equipment inside the tent 100 through the power line. At the same time, the fixed concave mask 5101 and the two side panels 5102 will provide anti-fouling protection for the photovoltaic module 470 and also provide anti-fouling shading for the tent roof 100. Example 2:

[0027] Combination Figures 6 to 9 As shown, based on Embodiment 1, the climbing stabilization mechanism 300 includes two slides 310, two insert rods 320 are inserted into the two slides 310, and a combination bolt 330 is fixedly installed in the two slides 310. An inner frame plate 340 is fixedly installed on the inner wall of the slide 310, and a spring 3401 is fixedly connected to the inner wall of the inner frame plate 340. A slider 3402 is fixedly connected to the other end of the spring 3401, and a pressure wheel 350 is movably installed in two adjacent sliders 3402. The slide block 310 has a slide groove 3101 inside, and a pressure plate 3102 is fixedly installed at the bottom of the slide block 310; The bottom of the slide block 310 is provided with a slide rail, and the T-shaped plate segments of the main unit 410 and the auxiliary unit 4101 are adapted to pass through the slide rail at the bottom of the slide block 310. The inner wall of the pressure plate 3102 is provided with a semi-circular groove. When two adjacent pressure plates 3102 are closed, they will provide a pressure-bearing platform for the column head at the inner end of the bidirectional screw 420. Gear 450 is located in the gap between two of the slides 310.

[0028] Preferably, the drive shaft inside the motor 440 is adapted to pass through the two adjacent slide grooves 3101, and the gear 450 is located in the middle of the gap between the two adjacent slides 310. After the two adjacent slides 310 are fixed by two insert rods 320 and a combination bolt 330, the elastic extrusion force applied by the two springs 3401 and the two sliders 3402 will push the pressure roller 350 to adapt and press the rod of the second slide 220 or the first slide 230. When in use, the motor 440, which is in operation, drives the gear 450 to rotate through its internal transmission shaft. The gear 450 then slides smoothly upward along the rack 240. In harsh weather conditions, the user can control the rotation angle of the assist mechanism 400 and the light-concentrating and anti-fouling mechanism 500 from inside the tent 100. This ensures that the assist mechanism 400 and the light-concentrating and anti-fouling mechanism 500 can be positioned on a safer side of the tent 100 in harsh weather conditions, reducing wind resistance while also enhancing the pressure resistance of one side of the tent 100. Example 3:

[0029] Combination Figure 5 and Figure 6 As shown, in the above embodiment, two sets of clamps 5103 are fixedly installed on the side of the bracket 510, and a horizontally placed main shaft 530 is movably installed in the two sets of clamps 5103. An impeller 5303 is fixedly installed at one end of the main shaft 530. A box cover 540 and a limiting plate 520 are installed on the concave cover 5101. Two symmetrically distributed box covers 5401 are fixedly installed at both ends of the box cover 540. The impeller 5303 is located inside the box cover 540. The rod end of the main shaft 530 is adapted to penetrate into the two box covers 5401. A sliding column 5301 is fixedly installed on the main shaft 530. A sliding sleeve 5302 is movably installed on the outside of the sliding column 5301. The limiting plate 520 has a horizontal groove inside, and a slide rod 5501 is inserted into the horizontal groove. A scraper 550 is fixedly installed at the bottom end of the slide rod 5501. The tube section of the sliding sleeve 5302 is adapted to penetrate into the transverse groove, and the top end of the sliding rod 5501 is adapted to penetrate into the sliding sleeve 5302 and is engaged in the sliding groove outside the sliding column 5301.

[0030] Preferably, after the two side plates 5102 and the concave cover 5101 are fixed, the photovoltaic module 470 will be located in the U-shaped cavity, and the outer surface of the photovoltaic module 470 will be symmetrically matched with the mirror surface of the outer wall of the concave cover 5101. As the mirror surface of the concave mask 5101 rises vertically upwards, the ambient airflow impacts the tent 100 and generates a turbine. The vortex entering the inner cavity of the housing 540 will help rotate the impeller 5303. The impeller 5303 will drive the main shaft 530 and the sliding column 5301 to rotate. The sliding sleeve 5302, which is limited and constrained by the limiting plate 520, will be effectively pushed by the sliding column 5301 in conjunction with the sliding rod 5501. After the regular push, the sliding rod 5501 will drive the scraper 550 to slide along the mirror surface of the concave mask 5101. Finally, the dirt on the mirror surface will be quickly removed, preventing the accumulation of dirt from interfering with the photoelectric conversion of the photovoltaic module 470.

[0031] The working principle and usage process of the present invention: When the tent needs to be used outdoors, the fixed base 210 is placed on the selected hard ground in advance. Then, the second slide 220 and the first slide 230 are inserted into the fixed base 210. The assembled second slide 220 and the first slide 230 will be located outside the tent 100, and the U-shaped pole section at the top of the second slide 220 and the first slide 230 will be located directly above the tent 100. Next, the assist mechanism 400 is installed on the two sets of climbing stabilization mechanisms 300, and the light-concentrating anti-fouling mechanism 500 is installed on the assist mechanism 400. Then, the two sets of climbing stabilization mechanisms 300 are movably installed on the outside of the second slide 220 and the first slide 230. Then, the outer end wheel of the bidirectional lead screw 420 is controlled to rotate forward, and the main base 410, the auxiliary base 4101 and the beam 4102 will be pushed towards the second slide 220 and the first slide 230. At the same time, the chassis 430 fixed on the main base 410 will slide inward with the motor 440 and the gear 450. Finally, the gear 450 will mesh with the tooth of the rack 240. Once the teeth of gear 450 and rack 240 are meshed, motor 440 is started. The driven gear 450 will assist along rack 240. Finally, the assist mechanism 400 and two sets of climbing stabilization mechanisms 300 will rise smoothly along the second slide 220 and the first slide 230 until the two sets of climbing stabilization mechanisms 300, carrying the assist mechanism 400 and the light-concentrating and anti-fouling mechanism 500, are smoothly transferred to the top of tent 100. The mirror of the concave mask 5101 after being flipped over will face directly upward. When there is no wind in the outside environment, the vertically upward mirror of the concave mask 5101 will actively concentrate the sunlight, and the concentrated light will be projected onto the photovoltaic module 470. At this time, the photovoltaic module 470 will convert the light energy into electrical energy and store it in the pre-installed energy storage module inside the chassis 430. When the tent needs to use electrical energy, the user can run the power cord from the top of the tent 100 and connect it to the interface reserved in the energy storage module inside the chassis 430. The protective structure formed by the concave mask 5101 and the two side panels 5102 can provide effective protection for the top of the tent. When the tent is in use, if eddies are formed around the tent 100 due to airflow interference, in order to prevent the dirt carried by the airflow from contaminating the outer surface of the photovoltaic module 470, the impeller 5303 set inside the housing 540 will be assisted by the airflow to rotate. Eventually, the impeller 5303 will drive the main shaft 530 and the slide column 5301 to rotate. The slide rod 5501, which is limited and constrained by the limiting plate 520, will extend regularly along the inside of the limiting plate 520 under the pressure protection of the sliding sleeve 5302. Eventually, the slide rod 5501 will drive the scraper 550 to scrape regularly along the concave surface of the outer side of the concave cover 5101, so as to keep the side of the photovoltaic module 470 facing the concave cover 5101 clean, thereby ensuring that the photovoltaic module 470 performs photoelectric conversion to the maximum extent.

[0032] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A tent with an adaptively tracking solar panel, comprising a tent (100), characterized in that, It also includes a suspension mechanism (200) installed outside the tent (100), two sets of climbing stabilization mechanisms (300) clamped on the suspension mechanism (200), an assist mechanism (400) installed on the two sets of climbing stabilization mechanisms (300), and a light-concentrating and anti-fouling mechanism (500) installed on the assist mechanism (400). The suspension mechanism (200) includes a fixed base (210), in which a second slide (220) and a first slide (230) are symmetrically distributed. The two sets of climbing stabilization mechanisms (300) are respectively movably installed on the second slide (220) and the first slide (230) to provide a stabilizing support platform for the assist mechanism (400); The assist mechanism (400) includes two beams (4102), and a support plate (460) is installed on the two beams (4102). A clamp (4701) is installed on the support plate (460), and a photovoltaic module (470) is installed on the clamp (4701). The concentrating anti-fouling mechanism (500) includes two supports (510) set on two beams (4102), and a concave cover (5101) is installed on the two supports (510). Two side plates (5102) are fixedly installed at both ends of the concave cover (5101), and the concave cover (5101) is located outside the photovoltaic module (470). The outer surface of the concave mask (5101) is provided with a concave mirror, and the concave mirror is adapted and aligned with the outer surface of the photovoltaic module (470).

2. A tent with an adaptively tracking solar panel according to claim 1, characterized in that, The top plate end of the fixed base (210) has two pre-installed holes, and the fixed base (210) is fixed to the side of the bottom of the tent (100) by bolts; The first slide (230) has a groove in its rod body, and a rack (240) is fixedly installed in the groove.

3. A tent with an adaptively tracking solar panel according to claim 1, characterized in that, The climbing stabilization mechanism (300) includes two slides (310), two insert rods (320) are inserted into the two slides (310), and a combination bolt (330) is fixedly installed in the two slides (310). An inner frame plate (340) is fixedly installed on the inner wall of the slide (310), and a spring (3401) is fixedly connected to the inner wall of the inner frame plate (340). A slider (3402) is fixedly connected to the other end of the spring (3401), and a pressure wheel (350) is movably installed in two adjacent sliders (3402).

4. A tent with an adaptively tracking solar panel according to claim 3, characterized in that, The slide block (310) has a sliding groove (3101) inside, and a pressure plate (3102) is fixedly installed at the bottom of the slide block (310).

5. A tent with an adaptively tracking solar panel according to claim 1, characterized in that, The assist mechanism (400) also includes a main base (410) fixedly installed at one end of two beams (4102), and a secondary base (4101) fixedly installed at the other end of the two beams (4102). A two-way lead screw (420) is installed in the threaded hole inside the main base (410), and two sets of climbing stabilization mechanisms (300) are respectively movably installed on the main base (410) and the secondary base (4101).

6. A tent with an adaptively tracking solar panel according to claim 5, characterized in that, A chassis (430) is fixedly installed on the outer end of the main unit (410). Two wires (4301) are connected to the chassis (430), and the other ends of the two wires (4301) are connected to the connector of the photovoltaic module (470). A motor (440) is installed inside the chassis (430). A gear (450) is fixedly installed on the drive shaft inside the motor (440), and the gear (450) is located in the gap between two slides (310).

7. A tent with an adaptively tracking solar panel according to claim 3, characterized in that, The bottom of the slide (310) is provided with a slide rail, and the T-shaped plate segments of the main base (410) and the auxiliary base (4101) are adapted to pass through the slide rail at the bottom of the slide (310).

8. A tent with an adaptively tracking solar panel according to claim 1, characterized in that, Two sets of clamps (5103) are fixedly installed on the side of the bracket (510), and a horizontally placed main shaft (530) is movably installed in the two sets of clamps (5103). An impeller (5303) is fixedly installed at one end of the main shaft (530). A box cover (540) and a limiting plate (520) are installed on the concave cover (5101). Two symmetrically distributed box covers (5401) are fixedly installed at both ends of the box cover (540), and the impeller (5303) is located inside the box cover (540). The rod end of the main shaft (530) is adapted to pass through the two box covers (5401). A sliding column (5301) is fixedly installed on the main shaft (530), and a sliding sleeve (5302) is movably installed on the outside of the sliding column (5301). The limiting plate (520) has a horizontal groove inside, and a sliding rod (5501) is inserted into the horizontal groove. A scraper (550) is fixedly installed at the bottom end of the sliding rod (5501). The tube section of the sliding sleeve (5302) is adapted to penetrate into the transverse groove, and the top end of the sliding rod (5501) is adapted to penetrate into the sliding sleeve (5302) and is engaged in the sliding groove outside the sliding column (5301).

9. A tent with an adaptively tracking solar panel according to claim 4, characterized in that, The inner wall of the pressure plate (3102) is provided with a semi-circular hole groove. When two adjacent pressure plates (3102) are closed, they will provide a pressure-bearing platform for the column head at the inner end of the bidirectional screw (420).

10. A tent with an adaptively tracking solar panel according to claim 6, characterized in that, The chassis (430) is pre-installed with an energy storage module, and the connector on the energy storage module extends out of the chassis (430) and is connected to the power line extending out of the tent (100) roof.