Mountain movable solar power station
By designing a mobile solar power station for mountainous terrain, and utilizing a combination of frame components, lifting components, and walking components, the solar power station achieves flexible movement and efficient solar energy utilization on mountainous terrain, solving the problem of low conversion rate of traditional solar power stations in complex terrain.
Patent Information
- Application Number
- CN202512031795.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-30
- Publication Date
- 2026-02-27
AI Technical Summary
Traditional solar power plants cannot dynamically adjust to changes in sunlight conditions and terrain, resulting in low solar energy conversion efficiency, and are particularly difficult to deploy in mountainous areas.
Design a mobile solar power station for mountainous terrain, which uses a frame assembly, lifting assembly, walking assembly, and solar panels. By adjusting the position of the wheels and track units, it can adapt to different terrains. Combined with lifting and telescopic units, it can move flexibly and improve the utilization rate of solar energy.
It improves the driving efficiency and solar energy utilization rate of solar power stations in mountainous areas, enhances their adaptability to complex terrain, and improves solar energy conversion rate.
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Figure CN121573076A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of solar power generation, in particular to a mountain movable solar power station. BACKGROUND
[0002] With the transformation of global energy structure to clean, solar power generation as one of the core technologies of renewable energy, its installed capacity continues to expand. However, the traditional solar power station generally adopts fixed station design, which cannot be dynamically adjusted according to the sunshine condition, seasonal change or temporary power demand; and the fixed power station is generally built on flat land, which is difficult to deploy on complex terrain in the mountains, resulting in a great reduction in solar conversion rate. SUMMARY
[0003] The present application aims to at least solve one of the technical problems existing in the prior art. To this end, the present application provides a mountain movable solar power station, which can adapt to the driving conditions of flat road or mountain, so as to drive and deploy on the mountain, and improve the utilization rate of solar energy in the mountain.
[0004] The mountain movable solar power station according to the embodiment of the present application comprises: a frame assembly; a solar assembly connected with the frame assembly; a lifting assembly for lifting the height of the frame assembly, connected with the frame assembly; a walking assembly comprising a fixing piece, a wheel, a track unit and a first telescopic unit for driving the fixing piece to rotate, the fixing piece being connected with the wheel and the track unit respectively; the first telescopic unit being hinged with the fixing piece and the frame assembly respectively, and the fixing piece being rotatably connected with the frame assembly to adjust the positions of the wheel and the track unit.
[0005] The mountain movable solar power station according to the embodiment of the present application has at least the following beneficial effects: when the solar power station drives on flat road, the wheel can normally drive on the road; when the solar power station drives on mountain or relatively bumpy road, the walking assembly is lifted by the lifting assembly to be separated from the ground, and then the positions of the wheel and the track unit are adjusted by the first telescopic unit, so that the driving mode of the solar power station can be changed, which can adapt to the driving conditions of flat road or mountain, and thus improve the driving efficiency of the solar power station; at the same time, the track unit is arranged, so that the solar power station can drive and deploy on the mountain, which greatly improves the utilization rate of solar energy in the mountain.
[0006] According to some embodiments of the present application, the fixing piece is provided with a first port and a second port, the first port is rotatably connected with the wheel, and the second port is connected with the track unit.
[0007] According to some embodiments of the present application, a first driving assembly for driving the fixing member to adjust the angle is further included, the first driving assembly includes a first motor and a connecting block, the first motor is connected with the frame assembly and the connecting block respectively, the connecting block is rotatably connected with the frame assembly and the fixing member respectively, and the first telescopic unit is hinged with the connecting block and the fixing member respectively.
[0008] According to some embodiments of the present application, the frame assembly includes a main plate unit, a front plate unit, a rear plate unit, a second telescopic unit for driving the front plate unit to rotate, and a third telescopic unit for driving the rear plate unit to rotate; the main plate unit is hinged with the front plate unit and the rear plate unit respectively, the second telescopic unit is hinged with the main plate unit and the front plate unit respectively, and the third telescopic unit is hinged with the main plate unit and the rear plate unit respectively; the number of the walking assemblies is four, the front plate unit is connected with two of the walking assemblies, and the rear plate unit is connected with the other two of the walking assemblies.
[0009] According to some embodiments of the present application, the frame assembly further includes a first connecting plate, a second connecting plate, a third connecting plate, a first buffer unit, and a second buffer unit; the second connecting plate is hinged with the first connecting plate and the third connecting plate respectively, the second connecting plate is connected with the solar energy assembly, the first buffer unit is connected with the first connecting plate and the front plate unit respectively, and the second buffer unit is connected with the third connecting plate and the rear plate unit respectively.
[0010] According to some embodiments of the present application, the main plate unit includes a first main plate and a second main plate which are hinged with each other, the front plate unit includes a first front plate and a second front plate which are hinged with each other, the rear plate unit includes a first rear plate and a second rear plate which are hinged with each other, the first buffer unit includes a first buffer and a second buffer, and the second buffer unit includes a third buffer and a fourth buffer; the first main plate is hinged with the first front plate and the first rear plate respectively, the second main plate is hinged with the second front plate and the second rear plate respectively, the first buffer is connected with the first front plate and the first connecting plate respectively, the second buffer is connected with the second front plate and the first connecting plate respectively, the third buffer is connected with the first rear plate and the third connecting plate respectively, and the fourth buffer is connected with the second rear plate and the third connecting plate respectively.
[0011] According to some embodiments of the present application, the solar energy component comprises a solar panel unit, a fourth telescopic unit for adjusting the height of the solar panel unit, an arc-shaped track unit for driving the solar panel unit to rotate, and a fifth telescopic unit for adjusting the angle of the solar panel unit; the arc-shaped track unit is connected with the frame assembly, the arc-shaped track unit is slidingly connected with the fourth telescopic unit, the fourth telescopic unit is hingedly connected with the solar panel unit, and the fifth telescopic unit is hingedly connected with the fourth telescopic unit and the solar panel unit respectively.
[0012] According to some embodiments of the present application, the arc-shaped track unit comprises an arc-shaped track, a second motor, a first gear and a second gear, and the fourth telescopic unit comprises a telescopic device, a frame and a pulley; the frame assembly is connected with the arc-shaped track and the second gear respectively, the first gear is meshingly connected with the second gear, the second motor is connected with the first gear and the frame respectively, the frame is sleeved on the arc-shaped track through the pulley, the frame is connected with the telescopic device, and the pulley is slidingly connected with the frame and the arc-shaped track respectively.
[0013] According to some embodiments of the present application, the solar panel unit comprises a long strip panel, a plurality of solar panels hingedly connected in sequence, a scissor piece for driving the solar panels to fold, a telescopic rod and a first electric cylinder for driving the scissor piece to telescope; the long strip panel is hingedly connected with the fourth telescopic unit, the fifth telescopic unit and the first electric cylinder respectively, the long strip panel is connected with the telescopic rod, the solar panels are hingedly connected with the telescopic rod and the scissor piece respectively, and the scissor piece is hingedly connected with the first electric cylinder.
[0014] According to some embodiments of the present application, the telescopic rod comprises a plurality of support blocks sleeved in sequence, and adjacent support blocks are slidingly connected.
[0015] Additional aspects and advantages of the present application will be in part apparent and in part pointed out hereinafter. BRIEF DESCRIPTION OF DRAWINGS
[0016] The above and / or additional aspects and advantages of the present application will become apparent and be readily understood from the following description, taken in conjunction with the accompanying drawings, in which: Figure 1 is a structural diagram of a solar power station according to an embodiment of the present application; Figure 2 is a partial structural diagram of a solar power station according to an embodiment of the present application; Figure 3 is an exploded view of a walking assembly and a first driving assembly according to an embodiment of the present application; Figure 4 is a partial sectional view of a solar power station according to an embodiment of the present application; Figure 5 is a structural view of a fourth telescopic unit and an arc-shaped track unit according to an embodiment of the present application; Figure 6 is a structural view of a solar panel unit according to an embodiment of the present application; Figure 7 is a structural view of a solar power station according to an embodiment of the present application; Figure 6 is an enlarged view of part A of the solar power station.
[0017] Reference signs: frame assembly 100, main plate unit 110, first main plate 111, second main plate 112, front plate unit 120, first front plate 121, second front plate 122, rear plate unit 130, first rear plate 131, second rear plate 132, second telescopic unit 140, third telescopic unit 150, first connecting plate 161, second connecting plate 162, third connecting plate 163, first buffer unit 170, first buffer 171, second buffer 172, second buffer unit 180, third buffer 181, fourth buffer 182, solar assembly 200, solar panel unit 210, long strip plate 211, solar panel 212, scissor piece 213, telescopic rod 214, first electric cylinder 215, fourth telescopic unit 220, telescopic device 221, frame 222, pulley 223, arc-shaped track unit 230, arc-shaped track 231, second electric machine 232, first gear wheel 233, second gear wheel 234, fifth telescopic unit 240, lifting assembly 300, walking assembly 400, fixing piece 410, first port 411, second port 412, wheel 420, track unit 430, first telescopic unit 440, first driving assembly 500, first electric machine 510, connecting block 520. DETAILED DESCRIPTION
[0018] Embodiments of the present application are described in detail below with reference to the attached drawings, which show by way of example, embodiments in which like numerals indicate like elements or elements having similar functions. The embodiments described below are merely exemplary for the purpose of explaining the present application and should not be understood as a limitation of the present application.
[0019] In the description of the present application, it should be understood that the orientation description, such as the orientation or position relationship indicated by up, down, etc. is based on the orientation or position relationship shown in the drawings, which is only for the purpose of facilitating the description of the present application and simplifying the description, and does not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.
[0020] In the description of the present application, if the first, second, third, fourth, fifth, etc. are described, it is only for the purpose of distinguishing technical features, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features or the sequence of indicated technical features.
[0021] In the description of the present application, unless otherwise explicitly limited, the words such as arrangement, connection, etc. should be broadly understood, and the person skilled in the art can reasonably determine the specific meaning of the above words in the present application in combination with the specific content of the technical scheme.
[0022] According to an embodiment of the present application, a mountain movable solar power station comprises: a frame assembly 100; a solar assembly 200 connected with the frame assembly 100; a lifting assembly 300 for lifting the height of the frame assembly 100, connected with the frame assembly 100; a walking assembly 400 comprising a fixing member 410, a wheel 420, a track unit 430 and a first telescopic unit 440 for driving the fixing member 410 to rotate, the fixing member 410 being connected with the wheel 420 and the track unit 430 respectively; the first telescopic unit 440 being hinged with the fixing member 410 and the frame assembly 100 respectively, the fixing member 410 being rotationally connected with the frame assembly 100 to adjust the positions of the wheel 420 and the track unit 430.
[0023] For example, as shown in Figures 1-2 When the solar power station is moved to the required position to collect solar energy by using the solar assembly 200 to convert solar energy into electric energy to meet the power demand when the solar condition, seasonal change or temporary power demand changes.
[0024] When the solar power station is running on a flat road, the wheel 420 can normally run on the road. When the solar power station is running in the mountains or on a relatively bumpy road, the running difficulty of the wheel 420 will increase, resulting in poor running efficiency of the solar power station, so the track unit 430 is needed to drive the solar power station to move. First, the wheel 420 is stopped, then the lifting assembly 300 is elongated to contact the ground, then the lifting assembly 300 continues to elongate to raise the walking assembly 400 to separate from the ground; the first telescopic unit 440 is telescoped to rotate the fixing member 410, so that the positions of the wheel 420 and the track unit 430 are adjusted, at this time, the track unit 430 is located directly above the ground, and the wheel 420 is located obliquely above or behind the track unit 430; then the lifting assembly 300 is lowered to make the track unit 430 contact the ground, and then the track unit 430 is started to drive the solar power station to run in the mountains or on a relatively bumpy road, thereby improving the running efficiency.
[0025] It can be seen that, under the driving of the lifting assembly 300, the fixing member 410 and the first telescopic unit 440, the positions of the wheels 420 and the track units 430 can be exchanged, so that the driving mode of the solar power station can be changed, so that the solar power station can adapt to the driving conditions of flat roads or mountainous areas, and thus the driving efficiency of the solar power station is improved; at the same time, by arranging the track units 430, the solar power station can drive and deploy on the mountainous area, greatly improving the utilization rate of solar energy in the mountainous area.
[0026] In some embodiments of the present application, the fixing member 410 is provided with a first port 411 and a second port 412, the first port 411 is rotatably connected with the wheels 420, and the second port 412 is connected with the track units 430.
[0027] For example, as shown in Figure 3 By arranging the first port 411 and the second port 412, the wheels 420 and the track units 430 can be connected on the fixing member 410 at the same time, so that the positions of the wheels 420 and the track units 430 can be exchanged by rotating the fixing member 410, thereby greatly improving the conversion speed of the driving mode of the solar power station.
[0028] In some embodiments of the present application, a first driving assembly 500 for driving the fixing member 410 to adjust the angle is further included, the first driving assembly 500 includes a first motor 510 and a connecting block 520, the first motor 510 is connected with the frame assembly 100 and the connecting block 520 respectively, the connecting block 520 is rotatably connected with the frame assembly 100 and the fixing member 410 respectively, and the first telescopic unit 440 is hinged with the connecting block 520 and the fixing member 410 respectively.
[0029] For example, as shown in Figure 3 When the solar power station needs to turn or change the driving direction, the connecting block 520 can be driven to rotate by the first motor 510, and the connecting block 520 can drive the fixing member 410 to rotate, so as to adjust the angle of the fixing member 410, and thus the driving direction of the wheels 420 or the track units 430 is changed, greatly improving the driving flexibility of the solar power station.
[0030] In some specific embodiments of the present invention, the frame assembly 100 includes a main board unit 110, a front board unit 120, a rear board unit 130, a second telescopic unit 140 for driving the front board unit 120 to rotate, and a third telescopic unit 150 for driving the rear board unit 130 to rotate; the main board unit 110 is hinged to the front board unit 120 and the rear board unit 130 respectively, the second telescopic unit 140 is hinged to the main board unit 110 and the front board unit 120 respectively, and the third telescopic unit 150 is hinged to the main board unit 110 and the rear board unit 130 respectively; the number of walking components 400 is four, the front board unit 120 is connected to two of the walking components 400, and the rear board unit 130 is connected to the other two walking components 400.
[0031] For example, such as Figure 2 As shown, the solar power station may encounter steep slopes during its operation. When the front plate unit 120 is moving in the forward direction, the second telescopic unit 140 retracts to cause the front plate unit 120 to tilt up, adapting to the slope's inclination. This allows the front plate unit 120 to move onto the slope relatively easily under the drive of its wheels 420 or track unit 430. The main plate unit 110 also gradually moves onto the slope under the drive of the front plate unit 120, causing it to gradually tilt. To adapt to the tilt change of the main plate unit 110, the rear plate unit 130 retracts via the third telescopic unit 150, causing a corresponding change in the tilt angle between the main plate unit 110 and the rear plate unit 130. This facilitates the solar power station's smooth ascent up the slope, significantly reducing the climbing difficulty.
[0032] In some specific embodiments of the present invention, the frame assembly 100 further includes a first connecting plate 161, a second connecting plate 162, a third connecting plate 163, a first buffer unit 170, and a second buffer unit 180. The second connecting plate 162 is hinged to the first connecting plate 161 and the third connecting plate 163 respectively, and the second connecting plate 162 is connected to the solar panel 200. The first buffer unit 170 is connected to the first connecting plate 161 and the front plate unit 120 respectively, and the second buffer unit 180 is connected to the third connecting plate 163 and the rear plate unit 130 respectively.
[0033] For example, such as Figure 1As shown, when the solar power station climbs a slope, the front plate unit 120 and the rear plate unit 130 will cause the first connecting plate 161 and the third connecting plate 163 to rotate relative to the second connecting plate 162, thereby keeping the second connecting plate 162 in a relatively stable state. At the same time, by setting the first buffer unit 170 and the second buffer unit 180, the vibration impact of the solar power station on the second connecting plate 162 and the solar module 200 during the operation can be reduced, avoiding large bumps to the solar module 200, and thus better protecting the solar module 200.
[0034] In some specific embodiments of the present invention, the main board unit 110 includes a first main board 111 and a second main board 112 hinged to each other; the front board unit 120 includes a first front board 121 and a second front board 122 hinged to each other; the rear board unit 130 includes a first rear board 131 and a second rear board 132 hinged to each other; the first buffer unit 170 includes a first buffer 171 and a second buffer 172; and the second buffer unit 180 includes a third buffer 181 and a fourth buffer 182. The first main board 111 is hinged to the first front board 121 and the first rear board 131, the second main board 112 is hinged to the second front board 122 and the second rear board 132, the first buffer 171 is connected to the first front board 121 and the first connecting plate 161, the second buffer 172 is connected to the second front board 122 and the first connecting plate 161, the third buffer 181 is connected to the first rear board 131 and the third connecting plate 163, and the fourth buffer 182 is connected to the second rear board 132 and the third connecting plate 163.
[0035] For example, such as Figures 1-2 As shown, when the solar power station travels on an arc-shaped surface, with the top of the arc located between the left and right travel components 400, a certain angle will be formed between the wheel 420 or track unit 430 and the ground. This results in the wheel 420 or track unit 430 not being fully in contact with the ground. Therefore, to increase the contact between the left and right travel components 400 and the arc-shaped surface, the solar power station utilizes the gravity of the solar component 200, as well as the first buffer 171, second buffer 172, and third buffer 18. Under the buffering force of the first main board 111 and the second main board 112, the first front plate 121 and the second front plate 122, and the first rear plate 131 and the second rear plate 132 all rotate upward relative to each other. This causes the wheels 420 or track units 430 in the left walking assembly 400 and the wheels 420 or track units 430 in the right walking assembly 400 to be in complete contact with the ground, thereby greatly increasing the contact area between the wheels 420 or track units 430 and the ground and effectively improving the stability of the solar power station.
[0036] In some embodiments of the present application, the solar energy assembly 200 comprises a solar panel unit 210, a fourth telescopic unit 220 for adjusting the height of the solar panel unit 210, an arc-shaped track unit 230 for driving the solar panel unit 210 to rotate, and a fifth telescopic unit 240 for adjusting the angle of the solar panel unit 210; the arc-shaped track unit 230 is connected with the frame assembly 100, the arc-shaped track unit 230 is slidingly connected with the fourth telescopic unit 220, the fourth telescopic unit 220 is hingedly connected with the solar panel unit 210, and the fifth telescopic unit 240 is hingedly connected with the fourth telescopic unit 220 and the solar panel unit 210 respectively.
[0037] For example, as shown in Figure 1 and Figure 4 , in order to improve the efficiency of the solar panel unit 210 in absorbing solar energy, the height of the solar panel unit 210 is raised by the fourth telescopic unit 220, and the angular position of the solar panel unit 210 is adjusted by the arc-shaped track unit 230 and the fifth telescopic unit 240, so that the solar panel unit 210 can be adjusted to face the sun in response to the sunlight condition or seasonal changes, thereby improving the absorption rate and conversion rate of the solar panel unit 210.
[0038] In some embodiments of the present application, the arc-shaped track unit 230 comprises an arc-shaped track 231, a second motor 232, a first gear 233 and a second gear 234, and the fourth telescopic unit 220 comprises a telescopic device 221, a frame 222 and a pulley 223; the frame assembly 100 is connected with the arc-shaped track 231 and the second gear 234 respectively, the first gear 233 is meshingly connected with the second gear 234, the second motor 232 is connected with the first gear 233 and the frame 222 respectively, the frame 222 is sleeved on the arc-shaped track 231 through the pulley 223, the frame 222 is connected with the telescopic device 221, and the pulley 223 is slidingly connected with the frame 222 and the arc-shaped track 231 respectively.
[0039] For example, as shown in Figure 5 , since the second gear 234 is fixed on the frame assembly 100, the first gear 233 can rotate along the meshing edge of the second gear 234 under the drive of the second motor 232, so that the first gear 233 drives the second motor 232 and the frame 222 to rotate; in the process of rotating the frame 222, the frame 222 drives the telescopic device 221 and the solar panel unit 210 to rotate, at the same time, the frame 222 drives the pulley 223 to slide on the arc-shaped track 231, so that the frame 222 can rotate along the direction of the arc-shaped track 231, thereby improving the stability of the rotation of the solar panel unit 210.
[0040] In some embodiments of the present application, the solar panel unit 210 comprises a long strip panel 211, a plurality of solar panels 212 hingedly connected in sequence, a scissor 213 for driving the folding of the solar panels 212, an extension rod 214, and a first electric cylinder 215 for driving the extension and retraction of the scissor 213, the long strip panel 211 is hingedly connected with the fourth extension unit 220, the fifth extension unit 240 and the first electric cylinder 215 respectively, the long strip panel 211 is connected with the extension rod 214, the solar panels 212 are hingedly connected with the extension rod 214 and the scissor 213 respectively, and the scissor 213 is hingedly connected with the first electric cylinder 215.
[0041] For example, as shown in Figures 6-7 , when the solar power station is in the process of driving, the solar panels 212 are in a folded state, thereby facilitating the reduction of the overall volume of the solar panels 212, and facilitating the driving speed and convenience of the solar power station. When the solar power station stops driving and needs to collect solar energy, the scissor 213 is driven to unfold by the first electric cylinder 215, and the solar panels 212 are unfolded by the scissor 213, so that the opening of the solar panels 212 is completed; at the same time, the extension rod 214 can also be elongated during the unfolding process of the solar panels 212, and the extension rod 214 can provide a certain supporting force for the solar panels 212, thereby improving the stability of the solar panels 212. In addition, the fifth extension unit 240 can adjust the angle of the long strip panel 211 through extension and retraction, thereby facilitating the adjustment of the orientation of the solar panels 212.
[0042] In some embodiments of the present application, the extension rod 214 comprises a plurality of support blocks which are sequentially sleeved.
[0043] For example, as shown in Figure 7 , the support blocks are connected through sleeving to form a sliding connection, and the connection relationship is relatively simple, thereby reducing the difficulty of relative sliding between the support blocks driven by the solar panels 212, and thereby facilitating the improvement of the motion efficiency of the solar panels 212.
[0044] Other configurations and operations of the mountain movable solar power station according to the embodiments of the present application are known to those skilled in the art, and will not be described in detail here.
[0045] Reference will now be made to Figures 1-7 in detail with reference to a specific embodiment to describe a mountain movable solar power station according to the embodiments of the present application, it should be understood that the following description is only exemplary and is not a specific limitation on the application.
[0046] A mountain movable solar power station comprises a frame assembly 100, a solar assembly 200, a lifting assembly 300, a walking assembly 400 and a first driving assembly 500.
[0047] The frame assembly 100 comprises a first main plate 111 and a second main plate 112 hingedly connected to each other, a first front plate 121 and a second front plate 122 hingedly connected to each other, a first rear plate 131 and a second rear plate 132 hingedly connected to each other, a second telescopic unit 140, a third telescopic unit 150, a first connecting plate 161, a second connecting plate 162, a third connecting plate 163, a first buffer 171, a second buffer 172, a third buffer 181 and a fourth buffer 182; the second connecting plate 162 is hingedly connected to the first connecting plate 161 and the third connecting plate 163 respectively, the first main plate 111 is hingedly connected to the first front plate 121 and the first rear plate 131 respectively, the second main plate 112 is hingedly connected to the second front plate 122 and the second rear plate 132 respectively, the first buffer 171 is connected to the first front plate 121 and the first connecting plate 161 respectively, the second buffer 172 is connected to the second front plate 122 and the first connecting plate 161 respectively, the third buffer 181 is connected to the first rear plate 131 and the third connecting plate 163 respectively, and the fourth buffer 182 is connected to the second rear plate 132 and the third connecting plate 163 respectively; the number of the second telescopic unit 140 and the third telescopic unit 150 is both two, one of the second telescopic units 140 is connected to the first main plate 111 and the first front plate 121 respectively, and the other of the second telescopic units 140 is connected to the second main plate 112 and the second front plate 122 respectively, one of the third telescopic units 150 is connected to the first main plate 111 and the first rear plate 131 respectively, and the other of the third telescopic units 150 is connected to the second main plate 112 and the second rear plate 132 respectively.
[0048] The walking assembly 400 comprises a fixing member 410, a wheel 420, a track unit 430 and a first telescopic unit 440, the fixing member 410 is provided with a first port 411 and a second port 412, the first driving assembly 500 comprises a first motor 510 and a connecting block 520; the first port 411 is rotatably connected to the wheel 420, the second port 412 is connected to the track unit 430, the first motor 510 is connected to the frame assembly 100 and the connecting block 520 respectively, the connecting block 520 is rotatably connected to the frame assembly 100 and the fixing member 410 respectively, and the first telescopic unit 440 is hingedly connected to the connecting block 520 and the fixing member 410 respectively. The number of the walking assembly 400 and the first driving assembly 500 is both four, the walking assembly 400 and the first driving assembly 500 are arranged at the positions of the first front plate 121, the second front plate 122, the first rear plate 131 and the second rear plate 132 respectively, and each group of the walking assembly 400 and the first driving assembly 500 is connected to the first front plate 121, the second front plate 122, the first rear plate 131 and the second rear plate 132 in the same way.
[0049] The solar energy assembly 200 comprises a solar panel unit 210, a fourth telescopic unit 220, an arc-shaped track unit 230 and a fifth telescopic unit 240; the arc-shaped track unit 230 comprises an arc-shaped track 231, a second motor 232, a first gear 233 and a second gear 234, the fourth telescopic unit 220 comprises a telescopic device 221, a frame 222 and a pulley 223, the solar panel unit 210 comprises a long strip panel 211, a plurality of solar panels 212 which are sequentially hinged, a scissor piece 213, a telescopic rod 214 and a first electric cylinder 215; the second connecting plate 162 is connected with the arc-shaped track 231 and the second gear 234 respectively, the first gear 233 is meshed and connected with the second gear 234, the second motor 232 is connected with the first gear 233 and the frame 222 respectively, the frame 222 is sleeved on the arc-shaped track 231 through the pulley 223, the frame 222 is connected with the telescopic device 221, and the pulley 223 is slidingly connected with the frame 222 and the arc-shaped track 231 respectively; the telescopic device 221 is hinged with the fifth telescopic unit 240, the long strip panel 211 is hinged with the telescopic device 221, the fifth telescopic unit 240 and the first electric cylinder 215 respectively, the long strip panel 211 is connected with the telescopic rod 214, the solar panel 212 is hinged with the telescopic rod 214 and the scissor piece 213 respectively, and the scissor piece 213 is hinged with the first electric cylinder 215.
[0050] According to the mountain movable solar power station provided by the embodiment of the present application, the following effects can be achieved: under the joint action of the walking assembly 400 and the lifting assembly 300, the solar power station can be driven to travel by using the wheels 420 or the track units 430 according to the road conditions, so that it can adapt to the driving conditions of flat roads or mountainous areas; under the action of the first driving assembly 500, the fixed part 410 can be driven to rotate, so as to adjust the driving direction of the wheels 420 or the track units 430, and the driving flexibility of the solar power station is greatly improved.
[0051] When the solar power station encounters a slope during the driving process, the second and third telescopic units 140 and 150 can be used to drive the first front plate 121 and the first main plate 111, the second front plate 122 and the second main plate 112, the first rear plate 131 and the first main plate 111, and the second rear plate 132 and the second main plate 112 to rotate relatively, so as to adapt to the inclination of the slope, drive the solar power station to climb the slope smoothly, and greatly reduce the climbing difficulty of the solar power station. When the solar power station walks on an arc-shaped ground, and the top end of the arc-shaped ground is located between the left and right walking assemblies 400, the first main plate 111 and the second main plate 112, the first front plate 121 and the second front plate 122, and the first rear plate 131 and the second rear plate 132 are all caused to rotate relatively upward, so that the wheels 420 or track units 430 in the left walking assembly 400 and the wheels 420 or track units 430 in the right walking assembly 400 are all completely attached to the ground, and the stability of the solar power station is effectively improved.
[0052] The first and second gears 233 and 234 can drive the solar panel 212 to move along the direction of the arc-shaped track 231, the telescopic device 221 can adjust the height of the solar panel 212, and the fifth telescopic unit 240 can adjust the angle of the solar panel 212, so that the solar panel unit 210 can be adjusted to face the sun according to the sunlight condition or seasonal change, thereby improving the absorption rate and conversion rate of the solar panel unit 210. The first electric cylinder 215 can drive the scissors 213 to expand or contract, and the scissors 213 drives the solar panel 212 to expand or contract, so that the solar panel 212 can be opened or stored. At the same time, the telescopic rod 214 can be elongated or contracted during the expansion or contraction of the solar panel 212, and the telescopic rod 214 can provide a certain supporting force for the solar panel 212, thereby improving the stability of the solar panel 212.
[0053] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", or "the present embodiment" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are contained in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily mean the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0054] Although the embodiments of the present application have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and purposes of the present application, and the scope of the present application is defined by the claims and their equivalents.
Claims
1. A mobile solar power station for mountainous terrain, characterized in that, include: Frame components; Solar panels are connected to the frame assembly; A lifting assembly, used to raise the height of the frame assembly, and connected to the frame assembly; The traveling assembly includes a fixed member, wheels, track units, and a first telescopic unit for driving the fixed member to rotate. The fixed member is connected to the wheels and track units respectively. The first telescopic unit is hinged to the fixed member and the frame assembly respectively. The fixed member is rotatably connected to the frame assembly to interchange the positions of the wheels and track units.
2. A mobile solar power station for mountainous terrain according to claim 1, characterized in that: The fixing component is provided with a first port and a second port. The first port is rotatably connected to the wheel, and the second port is connected to the track unit.
3. A mobile solar power station for mountainous terrain according to claim 1, characterized in that: It also includes a first drive assembly for driving the fixing member to adjust the angle. The first drive assembly includes a first motor and a connecting block. The first motor is connected to the frame assembly and the connecting block respectively. The connecting block is rotatably connected to the frame assembly and the fixing member respectively. The first telescopic unit is hinged to the connecting block and the fixing member respectively.
4. A mobile solar power station for mountainous terrain according to claim 1, characterized in that: The frame assembly includes a main board unit, a front board unit, a rear board unit, a second telescopic unit for driving the front board unit to rotate, and a third telescopic unit for driving the rear board unit to rotate. The main board unit is hinged to the front board unit and the rear board unit, the second telescopic unit is hinged to the main board unit and the front board unit, and the third telescopic unit is hinged to the main board unit and the rear board unit. The number of walking components is four, with the front board unit connected to two of the walking components and the rear board unit connected to the other two walking components.
5. A mobile solar power station for mountainous terrain according to claim 4, characterized in that: The frame assembly further includes a first connecting plate, a second connecting plate, a third connecting plate, a first buffer unit, and a second buffer unit. The second connecting plate is hinged to the first connecting plate and the third connecting plate, respectively. The second connecting plate is connected to the solar panel. The first buffer unit is connected to the first connecting plate and the front panel unit, respectively. The second buffer unit is connected to the third connecting plate and the rear panel unit, respectively.
6. A mobile solar power station for mountainous terrain according to claim 5, characterized in that: The motherboard unit includes a first motherboard and a second motherboard hinged to each other; the front panel unit includes a first front panel and a second front panel hinged to each other; the rear panel unit includes a first rear panel and a second rear panel hinged to each other; the first buffer unit includes a first buffer and a second buffer; the second buffer unit includes a third buffer and a fourth buffer; the first motherboard is hinged to the first front panel and the first rear panel respectively; the second motherboard is hinged to the second front panel and the second rear panel respectively; the first buffer is connected to the first front panel and the first connecting plate respectively; the second buffer is connected to the second front panel and the first connecting plate respectively; the third buffer is connected to the first rear panel and the third connecting plate respectively; and the fourth buffer is connected to the second rear panel and the third connecting plate respectively.
7. A mobile solar power station for mountainous terrain according to claim 1, characterized in that: The solar panel assembly includes a solar panel unit, a fourth telescopic unit for adjusting the height of the solar panel unit, an arc-shaped track unit for driving the solar panel unit to rotate, and a fifth telescopic unit for adjusting the angle of the solar panel unit; the arc-shaped track unit is connected to the frame assembly, the arc-shaped track unit is slidably connected to the fourth telescopic unit, the fourth telescopic unit is hinged to the solar panel unit, and the fifth telescopic unit is hinged to both the fourth telescopic unit and the solar panel unit.
8. A mobile solar power station for mountainous terrain according to claim 7, characterized in that: The arc-shaped track unit includes an arc-shaped track, a second motor, a first gear, and a second gear. The fourth telescopic unit includes a telescopic device, a frame, and pulleys. The frame assembly is connected to the arc-shaped track and the second gear, respectively. The first gear meshes with the second gear. The second motor is connected to the first gear and the frame, respectively. The frame is sleeved on the arc-shaped track via the pulleys. The frame is connected to the telescopic device, and the pulleys are slidably connected to the frame and the arc-shaped track, respectively.
9. A mobile solar power station for mountainous terrain according to claim 7, characterized in that: The solar panel unit includes a long strip plate, a plurality of solar panels hinged together in sequence, a scissor lift for driving the solar panels to fold, a telescopic rod, and a first electric cylinder for driving the scissor lift to extend and retract. The long strip plate is hinged to the fourth telescopic unit, the fifth telescopic unit, and the first electric cylinder, respectively. The long strip plate is connected to the telescopic rod. The solar panels are hinged to the telescopic rod and the scissor lift, respectively. The scissor lift is hinged to the first electric cylinder.
10. A mobile solar power station for mountainous terrain according to claim 9, characterized in that: The telescopic rod includes several support blocks that are nested together in sequence, and adjacent support blocks are slidably connected.