Photovoltaic container
By designing a photovoltaic container, the rapid assembly, disassembly, and safe rotation of photovoltaic panels were achieved, solving the problems of existing photovoltaic power plants being unable to be quickly assembled and disassembled and wasting current, thus improving energy utilization and work efficiency.
Patent Information
- Application Number
- CN202423069931.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-12-12
AI Technical Summary
Existing photovoltaic power plants cannot meet the needs of rapid installation and dismantling, temporary transportation, and irregular power consumption, and there are problems of current waste and local overheating when photovoltaic panels are connected in series.
Design a photovoltaic container, including a container body and independent photovoltaic panel modules, which can be quickly assembled and disassembled by flipping the modules. The photovoltaic panel modules can be switched between upright and flat states, and the safety and power generation efficiency are improved by guide rails and support structures.
It enables rapid assembly and disassembly of photovoltaic panel modules, reduces cable loss, improves energy utilization and work efficiency, reduces damage to operators and photovoltaic panels, and meets temporary power needs.
Smart Images

Figure CN223528027U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to photovoltaic equipment technical field especially relates to photovoltaic container. BACKGROUND
[0002] With the rise of energy prices, developing and utilizing new energy has become one of the main research topics in the field of energy today. Because solar energy has the advantages of no pollution, no regional restriction, inexhaustible and the like, researching solar power generation has become the main direction of developing and utilizing new energy. Using solar energy components to generate electricity is a main way for people to use solar energy today.
[0003] The existing photovoltaic power station is usually installed on the mountain or roof by using the fixed support, the fixed support is installed on the power station site, the construction period is long, the quick moving cannot be realized, therefore the demand of temporary moving cannot be met. In addition, the remote field work site cannot be connected to the power, and the construction equipment, household electrical appliances and the like need electricity, and need to be supplied with the power continuously, the conventional photovoltaic power station has the long construction period, is not easy to disassemble and move, and cannot adapt to the scene of irregular moving. In addition, the earthquake and other natural disasters can cause the large area and long period damage to the household power, the recovery time is long, in addition, the war is frequent, the war has great damage to the household power in the war zone, the power shortage or loss can cause great influence on the life of the residents. The existing photovoltaic power station obviously cannot meet the scene of frequent turnover and temporary power supply.
[0004] In addition, the existing photovoltaic support is connected by using the hinge, is folded and stacked together before use, and is easy to lose control when being unfolded, thereby causing damage to the operator and the photovoltaic panel. Furthermore, the existing photovoltaic panel is generally arranged in the ridge type, the photovoltaic panels are connected in series, and the photovoltaic panel string current is output according to the current output by the worst photovoltaic panel. The photovoltaic panel current has a direct relationship with the light receiving surface, the current of the light-facing surface is large and the current of the back light surface is small, after the photovoltaic panels are connected in series, the photovoltaic panel string output current is output according to the current output by the back light surface photovoltaic panel, the high current output by the light-facing surface photovoltaic panel is wasted, energy is wasted, and the local overheating of the photovoltaic panel is caused, thereby reducing the service life.
[0005] Therefore, it is urgent to design a photovoltaic container which can be quickly disassembled to meet the scene of the frequent turnover of the photovoltaic power generation system, thereby solving the above technical problems. UTILITY MODEL CONTENTS
[0006] The utility model aims at providing a photovoltaic container which can be quickly disassembled and is safe to use and has large photovoltaic power generation capacity.
[0007] To achieve the purpose, the utility model adopts the following technical scheme:
[0008] The photovoltaic container comprises:
[0009] a container body, the container body having openings on opposite sides thereof; and
[0010] a plurality of independent photovoltaic panel assemblies, the plurality of photovoltaic panel assemblies being housed side by side in the container body, each of the photovoltaic panel assemblies comprising a photovoltaic panel and a photovoltaic panel support, the photovoltaic panel being mounted on the photovoltaic panel support, the photovoltaic panel assemblies having an erected state in which the photovoltaic panel assemblies are housed in the container body and a laid state in which the photovoltaic panel assemblies are laid outside the container body, the photovoltaic panel assemblies being capable of being flipped at the openings between the erected state and the laid state, the photovoltaic panel assemblies abutting against each other in the laid state.
[0011] As an optional technical solution of the photovoltaic container, the photovoltaic container further comprises:
[0012] a flipping assembly arranged in the container body and located at the openings, the flipping assembly being used for flipping the photovoltaic panel assemblies between the erected state and the laid state.
[0013] As an optional technical solution of the photovoltaic container, the flipping assembly comprises a flipping plate, a flipping shaft and a driving mechanism, the flipping plate being connected to a top of the flipping shaft, the flipping plate being parallelly located outside the outermost photovoltaic panel assembly, the flipping shaft being connected to an output end of the driving mechanism, the driving mechanism being capable of driving the flipping shaft to rotate, thereby driving the flipping plate to flip.
[0014] As an optional technical solution of the photovoltaic container, the photovoltaic container further comprises:
[0015] a guide rail, the guide rail being capable of being housed in the container body and being capable of being unfolded outside the container body, the photovoltaic panel assemblies being laid on the guide rail in the laid state.
[0016] As an optional technical solution of the photovoltaic container, the guide rail is provided with a sliding groove, the photovoltaic panel support is provided with a sliding piece, and the sliding piece and the sliding groove are in sliding cooperation.
[0017] As an optional technical solution of the photovoltaic container, one side of the photovoltaic panel support is provided with the sliding piece, and the other side is provided with a recess corresponding to the position of the sliding piece, the sliding piece being placed in the recess in the erected state.
[0018] As an optional technical scheme of the above-mentioned photovoltaic container, the outer side of the two openings of the container body is respectively provided with two groups of guide rails arranged in a straight line, the two guide rail groups located on the same side are arranged in parallel, and each group of guide rail groups comprises a plurality of sequentially connected guide rails.
[0019] As an optional technical scheme of the above-mentioned photovoltaic container, the photovoltaic container further comprises a guide rail support, one end of the guide rail support is connected with the guide rail, the other end is connected with the ground, and the guide rail support is provided with a second height adjusting structure.
[0020] As an optional technical scheme of the above-mentioned photovoltaic container, the photovoltaic container further comprises a support fixing member, one end of the support fixing member is connected with the photovoltaic panel support, the other end is connected with the ground, and the support fixing member is provided with a first height adjusting structure.
[0021] As an optional technical scheme of the above-mentioned photovoltaic container, the photovoltaic container further comprises a fixed frame, the fixed frame is installed in the container body, the fixed frame comprises a support column, a suspension rail and a support base, the top end of the support column is connected to the top of the container body, the bottom end of the support column is connected to the bottom of the container body, the suspension rail is arranged on the upper part of the support column, the suspension ear is provided on the photovoltaic panel support, the suspension ear is suspended on the suspension rail, the support base is located below the photovoltaic panel assembly, and the support base can move up and down to abut or separate from the lower end surface of the photovoltaic panel assembly.
[0022] The utility model at least includes following beneficial effect:
[0023] The utility model discloses photovoltaic container includes container body and a plurality of independent photovoltaic board subassembly, and the opposite sides of container body have opening respectively, and a plurality of photovoltaic board subassembly are received side by side in container body, and every photovoltaic board subassembly includes photovoltaic board and photovoltaic board support, and photovoltaic board is installed on photovoltaic board support, and photovoltaic board subassembly has the vertical state of being received in container body and the flat state of being laid on the outside of container body, and photovoltaic board subassembly can be switched into vertical state or flat state at opening, and a plurality of photovoltaic board subassembly abut side by side in flat state. A plurality of photovoltaic board subassembly are not connected each other and are independently arranged in container body, when needing to lay photovoltaic board subassembly on the outside of container body, photovoltaic board subassembly is turned over from vertical state to flat state at opening, when needing to collect photovoltaic board subassembly to container body, photovoltaic board subassembly is turned over from flat state to vertical state at opening. Compared with the photovoltaic board support connected through hinge in prior art, single photovoltaic board subassembly is high in turning safety, and no danger occurs in the process of dismounting, thereby reducing the damage to operator and photovoltaic board. Secondly, a plurality of photovoltaic board subassembly can be laid simultaneously from the two sides of container body, which can reduce the length of cable, thereby reducing cable loss, improving the life of cable from design source, improving the work efficiency of laying photovoltaic board subassembly on site, realizing the quick dismounting of photovoltaic board subassembly, thereby meeting the photovoltaic power generation system scene of frequent turnover. Furthermore, photovoltaic board subassembly is laid flat, and the installation angle of each photovoltaic board subassembly is consistent, compared with the existing ridge type arrangement mode, which can improve the photovoltaic power generation capacity and improve the energy utilization rate. BRIEF DESCRIPTION OF DRAWINGS
[0024] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the description of the embodiments of the present application will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the basis of the contents of the embodiments of the present application and these drawings.
[0025] Figure 1 is the structure schematic view of the photovoltaic board subassembly of the photovoltaic container provided by the specific embodiment of the utility model in flat state;
[0026] Figure 2 is the structure schematic view of the photovoltaic board subassembly in the first visual angle provided by the specific embodiment of the utility model;
[0027] Figure 3 is the structure schematic view of the photovoltaic board subassembly in the second visual angle provided by the specific embodiment of the utility model;
[0028] Figure 4 is the structure schematic view of the turning subassembly provided by the specific embodiment of the utility model;
[0029] Figure 5 is a structural schematic view of a guide rail and a guide rail support provided by the embodiment of the utility model;
[0030] Figure 6 is a side view of a photovoltaic panel assembly provided by the embodiment of the utility model;
[0031] Figure 7 is a side view of multiple photovoltaic panel assemblies in an upright state provided by the embodiment of the utility model;
[0032] Figure 8 is a structural schematic view of a photovoltaic panel support and a support fixing member provided by the embodiment of the utility model;
[0033] Figure 9 is a structural schematic view of a photovoltaic panel assembly in a flat state and a guide rail, a support fixing member and a guide rail support provided by the embodiment of the utility model;
[0034] Figure 10 is a structural schematic view of a photovoltaic panel assembly with a certain inclination angle and a guide rail, a support fixing member and a guide rail support provided by the embodiment of the utility model;
[0035] Figure 11 is a sectional view of a fixed frame and a photovoltaic panel assembly provided by the embodiment of the utility model;
[0036] Figure 12 is a structural schematic view of a fixing mode of a guide rail support and the ground provided by the embodiment of the utility model;
[0037] Figure 13 is a structural schematic view of another fixing mode of a guide rail support and the ground provided by the embodiment of the utility model;
[0038] Figure 14 is a cross-sectional schematic view of another guide rail provided by the embodiment of the utility model.
[0039] In the drawings:
[0040] 1, container body;
[0041] 2, photovoltaic panel assembly; 21, photovoltaic panel; 22, photovoltaic panel support; 221, sliding piece; 222, groove; 2211, limiting block;
[0042] 3, turnover assembly; 31, turnover plate; 32, turnover shaft; 33, driving mechanism; 34, transmission mechanism; 35, fixing member;
[0043] 4, guide rail; 41, sliding groove; 42, limiting groove;
[0044] 5, support fixing member; 51, first height adjusting structure;
[0045] 6, guide rail support member; 61, second height adjusting structure; 62, base; 63, sleeve; 64, weight;
[0046] 7, fixed frame; 71, support column; 72, suspension rail; 73, support base;
[0047] 100, ground; 200, ground pile. DETAILED DESCRIPTION
[0048] In order to make the above objectives, characteristics and advantages of the present application more apparent, concrete embodiments of the present application will be described in detail below with reference to the drawings. In the following description, a large number of specific details are set forth in order to provide a comprehensive understanding of the present application. However, the present application can be implemented in many different ways other than those described herein, and those skilled in the art can make similar improvements without departing from the spirit of the present application, so the present application is not limited by the specific embodiments disclosed below.
[0049] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0050] In addition, the terms "first" and "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first" and "second" can explicitly or implicitly include at least one of the features. In the description of the present application, the meaning of "a plurality of" is at least two, such as two, three, etc., unless otherwise specifically limited.
[0051] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0052] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0053] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. When an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0054] This embodiment discloses a photovoltaic container, such as Figures 1 to 3 As shown, the photovoltaic container includes a container body 1 and multiple independent photovoltaic panel modules 2. The container body 1 is used to load other components, and each side of the container body 1 has an opening. Multiple photovoltaic panel modules 2 are arranged side-by-side within the container body 1. Each photovoltaic panel module 2 includes a photovoltaic panel 21 and a photovoltaic panel support 22. The photovoltaic panel 21 is mounted on the photovoltaic panel support 22. The photovoltaic panel modules 2 can be in an upright state housed within the container body 1, and in a flat state laid out outside the container body 1. The photovoltaic panel modules 2 can be flipped at the opening to either an upright or flat state. In the flat state, multiple photovoltaic panel modules 2 are arranged side-by-side. It is understood that multiple photovoltaic panels 21 are mounted on a single photovoltaic panel support 22, and the photovoltaic panel support 22 protects the photovoltaic panels 21. During the unfolding and retraction process, the photovoltaic panel support 22 is subjected to stress.
[0055] The photovoltaic container provided by the embodiment has the following advantages. Since the container body 1 has openings on opposite sides, other components in the container body 1 can be removed from the openings. The plurality of photovoltaic panel assemblies 2 are independently arranged in the container body 1 without being connected to each other. When it is necessary to lay the photovoltaic panel assemblies 2 outside the container body 1, the photovoltaic panel assemblies 2 are flipped from the vertical state to the flat state when being removed from the openings. When it is necessary to collect the photovoltaic panel assemblies 2 from outside the container body 1 to inside the container body 1, the photovoltaic panel assemblies 2 are flipped from the flat state to the vertical state when being removed into the container body 1 from the openings. Compared with the photovoltaic panel support 22 connected by a hinge in the prior art, the single photovoltaic panel assembly 2 has high flipping safety and will not be dangerous during disassembly, thereby reducing damage to the operator and the photovoltaic panel 21. In addition, the plurality of photovoltaic panel assemblies 2 can be laid out simultaneously from the two sides of the container body 1, which can reduce the length of the cable and thereby reduce the cable loss, improve the service life of the cable from the design source, and improve the work efficiency of laying the photovoltaic panel assemblies 2 on site. Furthermore, the photovoltaic panel assemblies 2 are laid flat, and the installation angle of each photovoltaic panel assembly 2 is consistent, which can improve the photovoltaic power generation capacity and the energy utilization rate compared with the existing ridge type arrangement.
[0056] It should be noted that, as shown in Figure 1 , the "side-by-side abutment" mentioned above refers to that, in the flat state, the long side edges of the plurality of photovoltaic panel assemblies 2 are sequentially spliced and arranged, and the plurality of photovoltaic panel assemblies 2 form an overall photovoltaic panel structure after being laid flat.
[0057] As shown in Figure 1 , the photovoltaic container in the embodiment further comprises a flipping assembly 3 arranged in the container body 1 and located at the opening. The flipping assembly 3 is used to flip the photovoltaic panel assembly 2 from the vertical state to the flat state or flip the photovoltaic panel assembly 2 from the flat state to the vertical state. When it is necessary to lay the photovoltaic panel assembly 2 outside the container body 1, the flipping assembly 3 is used to flip the photovoltaic panel assembly 2 from the vertical state to the flat state. When it is necessary to collect the photovoltaic panel assembly 2 to inside the container body 1, the flipping assembly 3 is used to flip the photovoltaic panel assembly 2 from the flat state to the vertical state.
[0058] Specifically, as shown in Figure 4 , the flipping assembly 3 comprises a flipping plate 31, a flipping shaft 32 and a driving mechanism 33. The flipping shaft 32 and the driving mechanism 33 are arranged on the inner bottom of the container body 1. The flipping plate 31 is connected to the top of the flipping shaft 32 and is parallel to the outside of the outermost photovoltaic panel assembly 2. The flipping shaft 32 is connected to the output end of the driving mechanism 33. The driving mechanism 33 can drive the flipping shaft 32 to rotate, thereby driving the flipping plate 31 to flip. The flipping of the flipping plate 31 drives the photovoltaic panel assembly 2 abutting against the flipping plate 31 to flip.
[0059] Further, a transmission mechanism 34 is arranged between the driving mechanism 33 and the turning shaft 32, one end of the transmission mechanism 34 is connected to the output end of the driving mechanism 33, and the other end is connected to the turning shaft 32, the driving mechanism 33 drives the turning shaft 32 to rotate through the transmission mechanism 34. Optionally, the driving mechanism 33 can be, but is not limited to, a motor, a hydraulic cylinder, etc. The transmission mechanism 34 can be, but is not limited to, a conveyor belt, a chain, a gear structure, a lever mechanism, etc.
[0060] The turning assembly 3 in the embodiment further comprises two fixing members 35, the two fixing members 35 are respectively arranged at the two ends of the turning shaft 32 and are fixed to the inner bottom of the container body 1, the two ends of the turning shaft 32 are respectively rotationally connected to the corresponding fixing members 35, the driving mechanism 33 and the transmission mechanism 34 are located at one end of the turning shaft 32, and the transmission mechanism 34 and the one end of the turning shaft 32 are in transmission connection to drive the turning shaft 32 to rotate.
[0061] In the embodiment, as shown in Figure 1 and Figure 5 , the photovoltaic container further comprises a guide rail 4 for supporting the unfolded photovoltaic panel support 22, the guide rail 4 can be accommodated in the container body 1 and can be unfolded outside the container body 1, and in the flat state, the photovoltaic panel assembly 2 is laid on the guide rail 4. The guide rail 4 is a straight guide rail in the shape of a Chinese character.
[0062] Specifically, the guide rail 4 is provided with a sliding groove 41, and the photovoltaic panel support 22 is provided with a sliding member 221, and the sliding member 221 and the sliding groove 41 are in sliding fit. By arranging the sliding groove 41 and the sliding member 221, the convenience and work efficiency of laying the photovoltaic panel assembly 2 are improved. Optionally, the sliding member 221 is a roller or a pulley. The sliding groove 41 is a strip-shaped groove opened along the length direction of the guide rail 4, and the sliding groove 41 penetrates through both ends of the length direction of the guide rail 4.
[0063] For easy accommodation, as shown in Figure 6 and Figure 7 , one side of the photovoltaic panel support 22 is provided with a sliding member 221, and the other side is provided with a groove 222 corresponding to the position of the sliding member 221, and in the vertical state, the sliding member 221 is placed in the groove 222. When folding the plurality of photovoltaic panel assemblies 2, the sliding member 221 is seated in the groove 222 of the photovoltaic panel support 22 adjacent to it, which can improve the neatness of the photovoltaic panel assembly 2 after being accommodated and reduce the occupied space after being accommodated.
[0064] In the embodiment, two groups of linearly arranged guide rail groups are arranged outside the two openings of the container body 1. The two guide rail groups on the same side are arranged in parallel, and each group of guide rail groups comprises a plurality of sequentially connected guide rails 4. The length of the guide rail group is not less than the total length of the photovoltaic panel assembly 2 arranged sequentially on the same side, and preferably, the length of the guide rail group is greater than the total length of the photovoltaic panel assembly 2 arranged sequentially on the same side, so that the two ends of the guide rail group can respectively extend out of the outermost photovoltaic panel assembly 2 by a distance, facilitating subsequent operation.
[0065] As shown in Figure 8 , the photovoltaic container further comprises a support fixing member 5, one end of which is connected with the photovoltaic panel support 22, and the other end is connected with the ground 100. The support fixing member 5 is provided with a first height adjusting structure 51 to adjust the length of the support fixing member 5, thereby adjusting the height of the photovoltaic panel support 22. The fixing of the support fixing member 5 to the ground 100 can be achieved by using ground stakes 200 or expansion bolts.
[0066] As shown in Figure 9 and Figure 10 , the photovoltaic container further comprises a guide rail support member 6, one end of which is connected with the guide rail 4, and the other end is connected with the ground 100. The guide rail support member 6 is provided with a second height adjusting structure 61 to adjust the length of the guide rail support member 6, thereby adjusting the height of the guide rail 4. If the ground 100 is not flat, the entire guide rail group can be leveled by the second height adjusting structure 61 to ensure the flatness of the photovoltaic panel 21 laid on the guide rail 4. Alternatively, the guide rail support member 6 comprises a base 62 supported on the ground 100. The base 62 can be selected to have a disc-shaped structure, which has a large contact area with the ground 100, thereby improving the support stability of the guide rail support member 6 to the guide rail 4. As shown in Figure 12 , the fixing of the guide rail support member 6 to the ground 100 can be achieved by using ground stakes 200 or expansion bolts. Alternatively, a heavy object 64 can be used, as shown in Figure 13 , a sleeve barrel 63 is installed on the base 62, and the sleeve barrel 63 can be filled with heavy objects 64 such as stones, sand, and soil, to prevent the guide rail support member 6 from being blown over, thereby improving the installation stability of the guide rail support member 6 and the stability of the photovoltaic panel assembly 2.
[0067] It can be understood that the inclination angle of the photovoltaic panel assembly 2 can be changed by adjusting the height of the two groups of guide rails on the same side and adjusting the height of the support fixing member 5. That is, by adjusting the two groups of guide rails to different heights, the inclination angle of the photovoltaic panel 21 can be adjusted. On the one hand, the power generation of the photovoltaic panel 21 can be improved, and on the other hand, dust accumulation can be prevented. The specific time of adjustment and the adjustment angle are determined according to the actual situation, and the present embodiment does not limit the same. It should be noted that the first height adjustment structure 51 and the second height adjustment structure 61 can be, but are not limited to, a screw nut structure, and other existing structures that can adjust the length can also be used.
[0068] As shown in Figure 11 The photovoltaic container in the present embodiment also includes a fixed frame 7 for bearing the photovoltaic panel assembly 2 received in the container body 1 and preventing the photovoltaic panel assembly 2 from being displaced during transportation to cause damage to the photovoltaic panel 21. The fixed frame 7 is installed in the container body 1 and includes support columns 71, a suspension rail 72, and a support base 73. The top end of the support column 71 is connected to the top of the container body 1, and the bottom end of the support column 71 is connected to the bottom of the container body 1. The suspension rail 72 is arranged at the upper portion of the support column 71, and the photovoltaic panel support 22 is provided with a suspension ear that is suspended on the suspension rail 72. The support base 73 is located below the photovoltaic panel assembly 2 and can move up and down to abut or disengage the lower end surface of the photovoltaic panel assembly 2. Specifically, when the photovoltaic panel assembly 2 needs to be moved, the support base 73 is lowered to disengage the lower end surface of the photovoltaic panel assembly 2, facilitating the movement of the photovoltaic panel assembly 2. When the photovoltaic panel assembly 2 is fully retracted in the fixed frame 7, the support base 73 is raised to abut the lower end surface of the photovoltaic panel assembly 2, preventing the photovoltaic panel assembly 2 from being displaced during transportation to cause damage to the photovoltaic panel 21.
[0069] Optionally, the upper surface of the suspension rail 72 is provided with a roller, and the suspension ear abuts against the roller, facilitating the movement of the photovoltaic panel support 22 and improving work efficiency. In the present embodiment, the fixed frame 7 includes four support columns 71, two suspension rails 72, and one support base 73. Two support columns 71 are arranged on the left and right sides of each opening of the container body 1, respectively. One suspension rail 72 is arranged between the two support columns 71 on the left side, and one suspension rail 72 is arranged between the two support columns 71 on the right side. The support base 73 is located below the four support columns 71 and can move up and down along the four support columns 71. The specific implementation can be a sliding groove structure or other linear motion mode.
[0070] In another possible implementation, as Figures 12 to 14As shown, the guide rail 4 is further provided with a limiting groove 42, the limiting groove 42 is provided with two, the two limiting grooves 42 are respectively arranged on the left and right sides of the sliding groove 41 and located on the outside of the sliding groove 41, and the limiting groove 42 penetrates the two ends of the guide rail 4 along the length direction of the guide rail 4. Correspondingly, the photovoltaic panel support 22 is detachably connected with a limiting block 2211 through a bolt or the like connecting piece, the limiting block 2211 is at least partially located in the limiting groove 42 and can slide along the limiting groove 42. The number of the limiting block 2211 is the same as that of the limiting groove 42 and is arranged one by one. When the sliding piece 221 slides along the sliding groove 41, the limiting block 2211 always moves along the limiting groove 42. Under this structure, the sliding piece 221 can only move along the length direction of the guide rail 4, and cannot move up and down, that is, the limiting block 2211 limits the movement of the sliding piece 221, and at the same time, the cooperation of the limiting block 2211 and the limiting groove 42 realizes the supporting effect of the photovoltaic panel support 22. Therefore, in this embodiment, the support fixing piece 5 is not needed, and the supporting and fixing of the photovoltaic panel support 22 can be realized.
[0071] Optionally, the photovoltaic container in the embodiment further comprises a distribution box and an inverter, the distribution box is used for turning off the circuit output by the inverter, and the inverter is used for inverting the direct current emitted by the photovoltaic panel 21 into alternating current.
[0072] Optionally, the photovoltaic container in the embodiment further comprises an anti-reverse distribution box, the anti-reverse distribution box is connected between the photovoltaic panel 21 and the inverter, the photovoltaic panel 21 is easily burned after being connected in reverse in the inverter, and the anti-reverse distribution box can prevent the risk of component self-ignition in the case of wrong connection.
[0073] Optionally, the photovoltaic container in the embodiment further comprises an energy storage piece, the electricity emitted by the photovoltaic panel 21 is used to power the energy storage piece, and the energy storage piece is used to power the electrical equipment.
[0074] Obviously, the above only describes the preferred embodiments of the present application and the technical principles applied. Those skilled in the art will understand that the present application is not limited to the specific embodiments herein, and those skilled in the art can make various obvious changes, readjustments and substitutions without departing from the protection scope of the present application. Therefore, although the present application has been described in detail through the above embodiments, the present application is not limited to the above embodiments, and can include more other equivalent embodiments without departing from the concept of the present application, and the scope of the present application is determined by the scope of the appended claims.
[0075] Note that, in describing the present application, the description of the terms "some embodiments," "other embodiments," etc. means that the particular feature, structure, material, or characteristic being described is included in at least one embodiment or example of the application. Such descriptions are not necessarily referring to the same embodiment or example. Furthermore, the described features, structures, materials, or characteristics can be combined in any suitable manner in one or more embodiments or examples.
Claims
1. A photovoltaic container, characterized in that, The photovoltaic container comprises: a container body (1) having two opposite sides each provided with an opening; a plurality of photovoltaic panel assemblies (2) arranged side by side in the container body (1), each photovoltaic panel assembly (2) comprising a photovoltaic panel (21) and a photovoltaic panel support (22), the photovoltaic panel (21) being mounted on the photovoltaic panel support (22), the photovoltaic panel assembly (2) having a standing state in which it is arranged in the container body (1) and a flat state in which it is arranged outside the container body (1), the photovoltaic panel assembly (2) being capable of being turned to the standing state or the flat state at the opening, and the photovoltaic panel assemblies (2) being arranged side by side in the flat state. The photovoltaic container further comprises:
2. The photovoltaic container of claim 1, wherein, a turning assembly (3) arranged in the container body (1) and located at the opening, the turning assembly (3) being used for turning the photovoltaic panel assembly (2) from the standing state to the flat state or from the flat state to the standing state.
3. The photovoltaic container according to claim 2, wherein the turning assembly (3) comprises a turning plate (31), a turning shaft (32) and a driving mechanism (33), the turning plate (31) being connected to the top of the turning shaft (32), the turning plate (31) being arranged parallel to the outside of the outermost photovoltaic panel assembly (2), the turning shaft (32) being connected to the output end of the driving mechanism (33), and the driving mechanism (33) being capable of driving the turning shaft (32) to rotate, thereby driving the turning plate (31) to turn. The photovoltaic container further comprises:
4. The photovoltaic container of claim 1, wherein, a guide rail (4) capable of being arranged in the container body (1) and capable of being arranged outside the container body (1), the photovoltaic panel assemblies (2) being arranged on the guide rail (4) in the flat state.
5. The photovoltaic container according to claim 4, wherein the guide rail (4) is provided with a sliding groove (41), and the photovoltaic panel support (22) is provided with a sliding piece (221), the sliding piece (221) and the sliding groove (41) being in sliding fit.
6. The photovoltaic container according to claim 5, wherein one side of the photovoltaic panel support (22) is provided with the sliding piece (221), and the other side is provided with a groove (222) corresponding to the position of the sliding piece (221), the sliding piece (221) being arranged in the groove (222) in the standing state.
7. The photovoltaic container according to claim 4, wherein the outer sides of the two openings of the container body (1) are respectively provided with two groups of guide rails arranged in a straight line, the two guide rail groups located on the same side are arranged in parallel, and each group of guide rails comprises a plurality of guide rails (4) connected in sequence.
8. The photovoltaic container according to claim 4, wherein The photovoltaic container further comprises a guide rail support (6), one end of the guide rail support (6) is connected with the guide rail (4), the other end is connected with the ground (100), and the guide rail support (6) is provided with a second height adjusting structure (61).
9. The photovoltaic container according to claim 1, wherein, The photovoltaic container further comprises a support fixing member (5), one end of the support fixing member (5) is connected with the photovoltaic panel support (22), the other end is connected with the ground (100), and the support fixing member (5) is provided with a first height adjusting structure (51).
10. The photovoltaic container according to claim 1, wherein, The photovoltaic container further comprises a fixed frame (7), the fixed frame (7) is installed in the container body (1), the fixed frame (7) comprises a support column (71), a suspension rail (72) and a support base (73), the top end of the support column (71) is connected with the top of the container body (1), the bottom end of the support column (71) is connected with the bottom of the container body (1), the suspension rail (72) is arranged on the upper part of the support column (71), the photovoltaic panel support (22) is provided with a suspension ear, the suspension ear is suspended on the suspension rail (72), and the support base (73) is located below the photovoltaic panel assembly (2). The support base (73) can move up and down to abut or separate from the lower end surface of the photovoltaic panel assembly (2).