A push assembly and a solar panel device
By introducing a driving component into the solar panel device, the angle of the two solar panel components can be adjusted to maximize the solar light collection area, solving the problems of low conversion efficiency and frequent adjustments of a single solar panel, and achieving efficient DC-DC conversion and a convenient user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU KEYAO ENERGY TECH CO LTD
- Filing Date
- 2025-08-22
- Publication Date
- 2026-07-31
AI Technical Summary
Existing solar panel installations typically use only one solar panel. As the sun moves, the area of sunlight that the solar panel is exposed to is limited, which reduces the direct current conversion efficiency of the solar panel. Furthermore, the frequent angle adjustments degrade the user experience.
The system employs a propulsion assembly, including a second power assembly and a reducer mounted on the mounting frame. By adjusting the length of the propulsion device, the angles of the two solar panel assemblies are adjusted so that they face opposite directions, thereby maximizing the solar energy collection area.
This improves the DC conversion efficiency of solar panels, reduces the need for frequent adjustments to the angle of the solar panels, and enhances the user experience.
Smart Images

Figure CN224583122U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of solar panel technology, and more particularly to a driving component and a solar panel device. Background Technology
[0002] With the widespread utilization of solar energy, the solar photovoltaic industry is gradually becoming a burgeoning sunrise industry. Solar photovoltaic panels are power generation devices that produce direct current (DC) electricity when exposed to sunlight. Shipping containers, as standardized transport and storage units, are characterized by their robust structure, high modularity, and ease of transport and deployment, playing a vital role in logistics, construction, energy, and other fields. Installing solar panels on the top of shipping containers to form containerized solar power generation systems is an innovative application in the field of solar energy utilization.
[0003] Currently, by installing solar panels on the top of shipping containers, it is possible to meet a certain scale of power generation needs. For example, in some temporary construction sites, field operations, or remote areas, using shipping containers as a basic structure and installing solar panels on their tops can power on-site equipment, reducing dependence on the traditional power grid and lowering energy costs. The solar panel installation consists of a mounting bracket and solar panels. The bracket allows adjustment of the angle of the solar panels, enabling them to face the sun and capture more solar energy.
[0004] However, current solar panel installations only have one solar panel. As the sun moves, the angle of the solar panel needs to be frequently adjusted. It is impossible to install solar panels at multiple angles on a fixed bracket, which greatly reduces the efficiency of the solar panel in converting direct current. Furthermore, the frequent adjustment of the solar panel's angle reduces the user experience. Utility Model Content
[0005] This application provides a driving component and a solar panel device to solve the technical problem that existing solar panel devices only have one solar panel, and the limited area of sunlight that the solar panel is exposed to as the sun moves reduces the direct current conversion efficiency of the solar panel.
[0006] The first aspect of this application provides a pushing component, including:
[0007] A second power assembly is mounted on the mounting frame; the second power assembly is connected to the first power assembly;
[0008] The second power component includes:
[0009] Storage slots and the following are provided within the storage slots:
[0010] A speed reducer connected to the first power assembly;
[0011] A pushing device is provided on both sides of the reducer; one end of the pushing device is connected to the reducer, and the other end is connected to the first solar panel assembly or the second solar panel assembly.
[0012] Specifically, the length of the pushing device outside the storage slot is adjusted by the first power component to increase or decrease simultaneously; when the length of the pushing device outside the storage slot increases, the angle between the first solar panel assembly and the second solar panel assembly and the plane of the mounting frame increases; when the length of the pushing device outside the storage slot decreases, the angle between the first solar panel assembly and the second solar panel assembly and the plane of the mounting frame decreases.
[0013] In this embodiment, the pushing device includes:
[0014] A first pushing device is disposed on one side of the reducer; one end of the first pushing device is connected to the reducer, and the other end is connected to the first solar panel assembly;
[0015] The second pushing device is located on the other side of the reducer; one end of the second pushing device is connected to the reducer, and the other end is connected to the second solar panel assembly.
[0016] In this embodiment, the reducer is provided with a main power end, a first driven power end, and a second driven power end, with the first driven power end and the second driven power end located on both sides of the reducer; the main power end is connected to the first power assembly; the first driven power end is connected to the first pushing device; and the second driven power end is connected to the second pushing device.
[0017] In this embodiment, when the first power component rotates in a first rotation direction, the first driven end and the second driven end rotate simultaneously in the first rotation direction, and the lengths of the first pushing device and the second pushing device outside the storage slot increase simultaneously; when the first power component rotates in a second rotation direction, the first driven end and the second driven end rotate simultaneously in the second rotation direction, and the lengths of the first pushing device and the second pushing device outside the storage slot decrease simultaneously; the second rotation direction is opposite to the first rotation direction.
[0018] In this embodiment, the storage slot includes:
[0019] The base plate has a plurality of snap-fit grooves along its length; a slide rail is arranged opposite to the base plate along its length, and the slide rail is located on one side of the base plate.
[0020] The top cover has several snap-fit posts inside; the snap-fit posts snap into the snap-fit grooves, so that the top cover is connected to the bottom plate to form a receiving space for accommodating the reducer and the pushing device.
[0021] In this embodiment, the pushing device includes:
[0022] A transmission rod, one end of which is connected to the reducer, and the other end of which is fitted with a sliding device; a threaded hole is provided at the center of the sliding device, and fixed plates are provided on both sides of the sliding device; when the first power assembly rotates, the sliding device is slidably connected to the transmission rod through the threaded hole;
[0023] A push rod is slidably connected to the slide rail; a sliding device is connected to the push rod via the fixed plate, and the sliding device is disposed on one side of the push rod; the other side of the push rod is connected to the first solar panel assembly or the second solar panel assembly.
[0024] When the first power assembly rotates in a first rotation direction, the push rods located on both sides of the reducer simultaneously move away from the reducer, increasing the angle between the first solar panel assembly and the second solar panel assembly and the plane of the mounting frame; when the first power assembly rotates in a second rotation direction, the push rods located on both sides of the reducer simultaneously move closer to the reducer, decreasing the angle between the first solar panel assembly and the second solar panel assembly and the plane of the mounting frame.
[0025] In this embodiment, a guide device is provided on the side of the push rod away from the reducer, and guide rods are arranged parallel to each other on both sides of the guide device, located on the side close to the reducer. One end of the guide rod is connected to the guide device, and the other end extends in the direction close to the reducer.
[0026] Hollow tubes are arranged opposite each other on both sides of the reducer, and the hollow tubes and the guide rod are located in the same horizontal direction;
[0027] When the first solar panel assembly is parallel to the second solar panel assembly, the guide rod is completely located inside the hollow tube.
[0028] In this embodiment, a connecting device is provided on the side of the guide device away from the push rod, and a connecting hole is provided at the center of the connecting device;
[0029] The mounting rod is fitted into the connecting hole, and both ends of the mounting rod are connected to the first solar panel assembly or the second solar panel assembly.
[0030] In this embodiment, the mounting rods located on both sides of the reducer are at different heights; when the first solar panel assembly is parallel to the second solar panel assembly, the distance between the first solar panel assembly and the second solar panel assembly is the height difference of the mounting rods located on both sides of the reducer.
[0031] A second aspect of this application provides a solar panel device, comprising:
[0032] A propulsion component as described in any of the first aspects above.
[0033] This application provides a pushing component and a solar panel device. The pushing component includes: a second power component disposed on a mounting frame; the second power component is connected to a first power component; the second power component includes: a receiving slot and a reducer disposed within the receiving slot, the reducer being connected to the first power component; a pushing device disposed on both sides of the reducer; one end of the pushing device is connected to the reducer, and the other end is connected to a first solar panel assembly or a second solar panel assembly; wherein, the length of the pushing device outside the receiving slot is simultaneously increased or decreased by adjusting the length of the pushing device outside the receiving slot through the first power component; when the length of the pushing device outside the receiving slot increases, the angle between the first solar panel assembly and the second solar panel assembly and the plane of the mounting frame increases; when the length of the pushing device outside the receiving slot decreases, the angle between the first solar panel assembly and the second solar panel assembly and the plane of the mounting frame decreases, so that the angle of the two solar panels can be adjusted by the pushing component, with the two solar panels facing opposite directions, thereby ensuring that the two solar panels collect solar energy with the maximum solar light collection area and improving the DC conversion efficiency of the solar panels. Attached Figure Description
[0034] To more clearly illustrate the technical solution of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0035] Figure 1 This is a first structural schematic diagram of the solar panel device with a double linkage bracket in this application;
[0036] Figure 2 This is a second structural schematic diagram of the solar panel device with a double-linkage bracket in this application;
[0037] Figure 3This is a schematic diagram of the structure of the solar panel device with dual linkage brackets in one embodiment of this application;
[0038] Figure 4 This is a schematic diagram of the assembly frame in this application;
[0039] Figure 5 This is a schematic diagram of the propulsion device in this application;
[0040] Figure 6 This is a schematic diagram of the structure of the driving component in one embodiment of this application;
[0041] Figure 7 This is a schematic diagram of the structure of the driving component in another embodiment of this application;
[0042] Figure 8 This is a schematic diagram of the reducer in this application;
[0043] Figure 9 This is a schematic diagram of the base plate in this application;
[0044] Figure 10 This is a schematic diagram of the top cover structure in this application.
[0045] Explanation of reference numerals in the attached figures:
[0046] 1-Mounting frame; 11-Support rod; 12-Protective device; 2-First power assembly; 21-Transmission rod; 22-Control turntable; 3-Second power assembly; 31-Storage slot; 311-Base plate; 3111-Snap-fit slot; 3112-Slide rail; 312-Top cover; 32-Reducer; 321-Driven power end; 322-First driven power end; 323-Second driven power end; 33-Pushing device; 331-Transmission rod; 332-Sliding... Device; 3321-Threaded hole; 3322-Fixing plate; 333-Push rod; 334-Guiding device; 3341-Guiding rod; 335-Hollow tube; 336-Connecting device; 337-Mounting rod; 4-First solar panel assembly; 41-First rotating rod; 42-Assembly frame; 421-Assembly rod; 43-Solar panel; 44-Third rotating rod; 5-Second solar panel assembly; 51-Second rotating rod; 52-Fourth rotating rod. Detailed Implementation
[0047] To enable those skilled in the art to better understand the technical solutions in this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this application.
[0048] This application provides a telescopic support rod assembly and a solar panel device to solve the technical problem that existing solar panel devices cannot adjust the angle of a single solar panel, thus failing to ensure that both solar panels collect solar energy at their maximum solar light collection area, resulting in reduced DC power conversion efficiency of the solar panels.
[0049] For example, such as Figure 1 and Figure 2 The diagram shown is a structural schematic of the solar panel device in this application.
[0050] This application provides a solar panel device, comprising:
[0051] The mounting frame 1 is a rectangular structure, and a plurality of support rods 11 are arranged in parallel inside the mounting frame 1; the installation of the support rods 11 makes the mounting frame 1 stronger.
[0052] A first power assembly 2 is disposed within the mounting frame 1 and is parallel to the support rod 11. At least one second power assembly 3 is connected to the first power assembly 2 and is perpendicular to it. One end of the second power assembly 3 is connected to one side of the first solar panel assembly 4, and the other end is connected to one side of the second solar panel assembly 5. The first solar panel assembly 4 and the second solar panel assembly 5 face opposite directions. The other side of the first solar panel assembly 4 is connected to the mounting frame 1 via a first rotating rod 41, which is positioned along the length of the first solar panel assembly 4. The first solar panel assembly 4 is located on both sides; the other side of the second solar panel assembly 5 is connected to the first solar panel assembly 4 via a second rotating rod 51, which is positioned on both sides of the second solar panel assembly 5 along its length. The first power assembly 2 causes the lengths of both ends of the second power assembly 3 to increase or decrease simultaneously. When the lengths of both ends of the second power assembly 3 increase, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 increases; when the lengths of both ends of the second power assembly 3 decrease, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 decreases. The positions of the ends of the first rotating rod 41 and the second rotating rod 51 on the first solar panel assembly 4 and the second solar panel assembly 5 are fixed.
[0053] This application provides a solar panel device comprising two solar panel assemblies: a first solar panel assembly 4 and a second solar panel assembly 5. The lengths of both ends of the second power assembly 3 can be adjusted by the first power assembly 2, thereby driving the first rotating rod 41 and the second rotating rod 51 to rotate, causing the first solar panel assembly 4 and the second solar panel assembly 5 to rotate. The first solar panel assembly 4 and the second solar panel assembly 5 have different orientations. It is understood that by adjusting the angles of the first solar panel assembly 4 and the second solar panel assembly 5 using the first power assembly 2, the solar panel device can always be exposed to sunlight as the sun moves. Compared to using a single solar panel assembly, this application improves the direct current conversion efficiency of the solar panel and eliminates the need for frequent adjustments to the angle of the solar panel assembly, thus improving the user experience.
[0054] In this embodiment, the first power component 2 includes:
[0055] A transmission rod 21 is parallel to the support rod 11 and is positioned in the middle of the mounting frame 1. Both ends of the transmission rod 21 are connected to control turntables 22. Rotating the control turntables 22 can drive the transmission rod 21 to rotate.
[0056] The second power component 3 includes:
[0057] At least one storage slot 31 is provided, the storage slot 31 being perpendicular to the transmission rod 21. A reducer 32 is disposed within the storage slot and is sleeved on the transmission rod 21. The power conversion end of the reducer 32 is connected to one end of the pushing device 33, and the power conversion end is located on both sides of the reducer 32. The other end of the pushing device 33 is connected to one side of the first solar panel assembly 4 or one side of the second solar panel assembly 5. By rotating the control turntable 22, the length of the pushing device 33 outside the storage slot driven by the reducer 32 can be increased or decreased simultaneously.
[0058] In this embodiment, by rotating the control turntable 22, the transmission rod 21 drives the pushing device 33, thereby increasing or decreasing the length of the pushing device 33 simultaneously, so as to adjust the angle of the first solar panel assembly 4 and the second solar panel assembly 5.
[0059] In this embodiment, a rubber sleeve is provided on the outer side of the control turntable 22; the rubber sleeve is provided to prevent the user's hands from being injured due to friction when rotating the control turntable 22.
[0060] When the control turntable 22 rotates in the first rotation direction, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 increases; when the control turntable 22 rotates in the second rotation direction, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 decreases; the second rotation direction is opposite to the first rotation direction. The first rotation direction is clockwise, and the second rotation direction is counterclockwise.
[0061] In this embodiment, when the control turntable 22 rotates along the first rotation direction, the first rotating rod 41 rotates along the first rotation direction; the second rotating rod 51 rotates along the second rotation direction.
[0062] In this embodiment, the first solar panel assembly 4 and the second solar panel assembly 5 have the same area. This arrangement makes the solar panel device easier to store.
[0063] like Figure 3 The diagram shown is a structural schematic of the solar panel device with a double linkage bracket in the stored state.
[0064] In this embodiment, the first solar panel assembly 4 and the second solar panel assembly 5 are configured with a collection state and a storage state. When the first solar panel assembly 4 and the second solar panel assembly 5 are in the collection state, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 is greater than 0°. When the first solar panel assembly 4 and the second solar panel assembly 5 are in the storage state, the angle between the first solar panel assembly 4 and the plane of the mounting frame 1 is equal to 0°. When the first solar panel assembly 4 and the second solar panel assembly 5 are in the storage state, the projection of the second solar panel assembly 5 onto the first solar panel assembly 4 completely covers the first solar panel assembly 4.
[0065] For example, solar panel devices are generally transported separately from containers. To facilitate the transportation and storage of the solar panel devices, this application sets the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 to 0° when the first solar panel assembly 4 and the second solar panel assembly 5 are in the stored state, and the projection of the second solar panel assembly 5 onto the first solar panel assembly 4 completely covers the first solar panel assembly 4, so that the solar panel device has a cuboid structure when stored, thus achieving the effect of easy storage of the solar panel device.
[0066] In this embodiment, a protective device 12 is provided opposite to each other along the length and width directions of the mounting frame 1. The protective device 12 has a first surface and a second surface that are perpendicular to each other. When the first solar panel assembly 4 and the second solar panel assembly 5 are in the stored state, the first solar panel assembly 4 and the second solar panel assembly 5 abut against the protective device 12, and the height of the protective device 12 is greater than the height of the second solar panel assembly 5.
[0067] In this embodiment, a protective device 12 is provided to prevent damage to the corners of the first solar panel assembly 4 and the second solar panel assembly 5 during storage, thus achieving a protective function. Furthermore, by setting the height of the protective device 12 to be greater than the height of the second solar panel assembly 5 during storage, the solar panel assembly can be stacked vertically, making it easier to store and transport.
[0068] like Figure 4 The diagram shown is a structural schematic of the assembly frame 42 in this application.
[0069] In this embodiment, the first solar panel assembly 4 and the second solar panel assembly 5 include:
[0070] An assembly frame 42 is a rectangular structure with a groove on its inner side. Several assembly rods 421 are arranged parallel to each other within the assembly frame 42, with equal distances between them. Grooves are provided on both sides of each assembly rod 421. A solar panel 43 is disposed within the space between the assembly rods 421 and the assembly frame 42, or between the assembly rods 421 and the frame. The solar panel 43 is snapped into the groove.
[0071] In this embodiment, the solar panel 43 can be snapped onto the assembly frame 42 by means of the grooves in the assembly frame 42 and the assembly rod 421. During transportation or when the solar panel device is installed in a container, the solar panel 43 can be first removed from the assembly frame 42. When the solar panel device is installed in the container, the solar panel 43 can be reinstalled on the assembly frame 42 to facilitate the operation of the tower crane and reduce the overall weight of the solar panel device.
[0072] In this embodiment, the first solar panel assembly 4 is connected to the support rod 11 via at least one third rotating rod 44. The third rotating rod 44 is disposed between the first rotating rods 41, with one end connected to the support rod 11 and the other end connected to the first solar panel assembly 4; the third rotating rod 44 is parallel to the first rotating rods 41. The third rotating rod 44 enhances the connection strength between the first solar panel assembly 4 and the mounting frame 1, thereby increasing the unfolding or retraction speed of the first solar panel assembly 4.
[0073] In this embodiment, the second solar panel assembly 5 is connected to the mounting frame 1 via at least one fourth rotating rod 52. The fourth rotating rod 52 is located near the connection point between the second power assembly 3 and the second solar panel assembly 5. One end of the fourth rotating rod 52 is connected to the mounting frame 1, and the other end is connected to the second solar panel assembly 5. The fourth rotating rod 52 enhances the connection strength between the second solar panel assembly 5 and the mounting frame 1, thereby increasing the unfolding or retraction speed of the second solar panel assembly 5.
[0074] Based on the solar panel device described above, the specific structure of the driving component will be described in detail below:
[0075] See Figures 5 to 10 This application provides a propulsion component, namely the second power component 3 described above, specifically including:
[0076] like Figure 6 and Figure 7 The diagram shown is a schematic representation of the structure of the driving component in this application.
[0077] The first aspect of this application provides a telescopic strut assembly, comprising:
[0078] The second power assembly 3 is mounted on the mounting frame 1; the second power assembly 3 is connected to the first power assembly 2; the first power assembly 2 is used to control the operation of the second power assembly 3.
[0079] The second power component 3 includes:
[0080] Storage slot 31 and the contents thereof disposed within the storage slot 31:
[0081] A speed reducer 32 is connected to the first power assembly 2; a pushing device 33 is disposed on both sides of the speed reducer 32; one end of the pushing device 33 is connected to the speed reducer 32, and the other end is connected to the first solar panel assembly 4 or the second solar panel assembly 5; wherein, the length of the pushing device 33 outside the storage slot 31 is adjusted by the first power assembly 2 to increase or decrease simultaneously; when the length of the pushing device 33 outside the storage slot 31 increases, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 increases; when the length of the pushing device 33 outside the storage slot 31 decreases, the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 decreases.
[0082] This application provides a second power assembly 3, which, through the structure of the reducer 32, simultaneously controls the pushing device 33 to push outward or retract inward of the receiving groove 31, thereby causing the first solar panel assembly 4 and the second solar panel assembly 5 to rotate. This adjusts the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1, so that the angle of the two solar panels can be adjusted by the pushing assembly. The two solar panels face opposite directions, thereby ensuring that the two solar panels collect solar energy with the maximum solar light collection area and improving the DC conversion efficiency of the solar panels.
[0083] In this embodiment, the pushing device 33 includes:
[0084] A first pushing device is disposed on one side of the reducer 32; one end of the first pushing device is connected to the reducer 32 and the other end is connected to the first solar panel assembly 4; a second pushing device is disposed on the other side of the reducer 32; one end of the second pushing device is connected to the reducer 32 and the other end is connected to the second solar panel assembly 5.
[0085] like Figure 8 The diagram shown is a structural schematic of the reducer in this application.
[0086] In this embodiment, the reducer 32 is provided with a main power end 321, a first driven power end 322, and a second driven power end 323. The first driven power end 322 and the second driven power end 323 are located on both sides of the reducer 32. The main power end 321 is connected to the first power assembly 2. The first driven power end 322 is connected to the first pushing device. The second driven power end 323 is connected to the second pushing device.
[0087] In this embodiment, when the first power component 2 rotates in a first rotation direction, the first driven end 322 and the second driven end 323 simultaneously rotate in the first rotation direction, and the lengths of the first pushing device and the second pushing device outside the receiving groove 31 simultaneously increase; when the first power component 2 rotates in a second rotation direction, the first driven end 322 and the second driven end 323 simultaneously rotate in the second rotation direction, and the lengths of the first pushing device and the second pushing device outside the receiving groove 31 simultaneously decrease; the second rotation direction is opposite to the first rotation direction. It can be understood that the reducer 32 can control the first driven end 322 and the second driven end 323 to rotate in opposite directions, thereby keeping the pushing devices 33 connected at both ends simultaneously pushing outwards or closing inwards, and the diameters of the first driven end 322 and the second driven end 323 are the same, making the moving lengths of the pushing devices 33 connected at both ends of the reducer 32 equal.
[0088] like Figure 5 The diagram shown is a schematic diagram of the pushing device in this application.
[0089] In this embodiment, the storage slot 31 includes:
[0090] Base plate 311, such as Figure 9 As shown, a plurality of snap-fit grooves 3111 are provided along the length direction of the base plate 311; a slide rail 3112 is provided opposite to the base plate 311 along the length direction of the base plate 311, and the slide rail 3112 is provided on one side of the base plate 311.
[0091] Top cover 312, such as Figure 10 As shown, the top cover 312 has several snap-fit posts inside; these posts snap into the snap-fit grooves 3111, connecting the top cover 312 to the base plate 311 to form a receiving space for accommodating the reducer 32 and the pushing device 33. The base plate 311 has threaded holes on its outer side, and corresponding threaded holes are also provided on the outer side of the top cover 312. Screws can be inserted through these threaded holes on both the base plate 311 and the top cover 312 to ensure a tighter connection between the top cover 312 and the base plate 311.
[0092] In this embodiment, the pushing device 33 includes:
[0093] A transmission rod 331 is provided, one end of which is connected to the reducer 32, and the other end is fitted with a sliding device 332. A threaded hole 3321 is provided at the center of the sliding device 332, and fixed plates 3322 are provided on both sides of the sliding device 332. When the first power component 2 rotates, the sliding device 332 is slidably connected to the transmission rod 331 through the threaded hole 3321.
[0094] A push rod 333 is slidably connected to the slide rail 3112; a sliding device 332 is connected to the push rod 333 via the fixed plate 3322, and the sliding device 332 is disposed on one side of the push rod 333; the other side of the push rod 333 is connected to the first solar panel assembly 4 or the second solar panel assembly 5.
[0095] When the first power assembly 2 rotates in a first rotation direction, the push rods 333 located on both sides of the reducer 32 simultaneously move away from the reducer 32, increasing the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1; when the first power assembly 2 rotates in a second rotation direction, the push rods 333 located on both sides of the reducer 32 simultaneously move closer to the reducer 32, decreasing the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1.
[0096] In this embodiment, rotating the first power component 2 causes the transmission rods 331 at both ends of the reducer 32 to rotate, thereby causing the sliding device 332 to slide on the transmission rods 331. The sliding device 332 drives the push rod 333 to move away from the reducer 32 or closer to the reducer 32, thereby causing the angle between the first solar panel assembly 4 and the second solar panel assembly 5 and the plane of the mounting frame 1 to decrease or increase under the action of the push rod 333.
[0097] In this embodiment, a guide device 334 is provided on the side of the push rod 333 away from the reducer 32. Guide rods 3341 are arranged parallel to each other on both sides of the guide device 334, located on the side close to the reducer 32. One end of the guide rod 3341 is connected to the guide device 334, and the other end extends towards the reducer 32. Hollow tubes 335 are arranged opposite each other on both sides of the reducer 32. The hollow tubes 335 and the guide rods 3341 are located in the same horizontal direction. When the first solar panel assembly 4 is parallel to the second solar panel assembly 5, the guide rods 3341 are completely located inside the hollow tubes 335. The guide device 334 and the hollow tube 335 provide guidance for the push rod 333. When the first solar panel assembly 4 is parallel to the second solar panel assembly 5, i.e., when the solar panel assembly is in the retracted state, the guide device 334 can abut against the hollow tube 335, so that the guide rod 3341 can be completely located inside the hollow tube 335, thus preventing the guide device 334 from moving further and allowing the push rod 333 to move within a set range.
[0098] In this embodiment, a connecting device 336 is disposed opposite to the side of the guiding device 334 away from the pushing rod 333, and a connecting hole is provided at the center of the connecting device 336; an mounting rod 337 is sleeved in the connecting hole, and both ends of the mounting rod 337 are connected to the first solar panel assembly 4 or the second solar panel assembly 5. The first solar panel assembly 4 or the second solar panel assembly 5 is rotatably connected to the mounting rod 337.
[0099] In this embodiment, the mounting rods 337 located on both sides of the reducer 32 are at different heights. When the first solar panel assembly 4 is parallel to the second solar panel assembly 5, the distance between the first solar panel assembly 4 and the second solar panel assembly 5 is the height difference of the mounting rods 337 located on both sides of the reducer 32. By controlling the height difference of the mounting rods 337 located on both sides of the reducer 32, the distance between the first solar panel assembly 4 and the second solar panel assembly 5 in the retracted state of the solar panel device can be adjusted to meet user needs.
[0100] A second aspect of this application provides a solar panel device, comprising:
[0101] A pushing component as described in any of the above embodiments.
[0102] It is worth noting that the effects of the above-described solar panel device embodiments can be found in the above description of the various components and functions of the solar panel device with dual linkage brackets, and will not be repeated here.
[0103] The above detailed embodiments further illustrate the purpose, technical solution, and beneficial effects of the embodiments of this application. It should be understood that the above are merely specific embodiments of the embodiments of this application and are not intended to limit the protection scope of the embodiments of this application. Any modifications, equivalent substitutions, improvements, etc., made on the basis of the technical solutions of the embodiments of this application should be included within the protection scope of the embodiments of this application.
Claims
1. A push assembly, characterized by include: The second power assembly (3) is mounted on the mounting frame (1); The second power component (3) is connected to the first power component (2); The second power assembly (3) includes: Storage slot (31) and the contents thereof disposed within the storage slot (31): A speed reducer (32) is connected to the first power assembly (2); A pushing device (33) is provided on both sides of the reducer (32); one end of the pushing device (33) is connected to the reducer (32), and the other end is connected to the first solar panel assembly (4) or the second solar panel assembly (5); The length of the pushing device (33) outside the storage slot (31) is adjusted by the first power component (2) to increase or decrease simultaneously; when the length of the pushing device (33) outside the storage slot (31) increases, the angle between the first solar panel assembly (4) and the second solar panel assembly (5) and the plane of the mounting frame (1) increases; when the length of the pushing device (33) outside the storage slot (31) decreases, the angle between the first solar panel assembly (4) and the second solar panel assembly (5) and the plane of the mounting frame (1) decreases.
2. A push assembly according to claim 1, wherein, The pushing device (33) includes: A first pushing device is disposed on one side of the reducer (32); one end of the first pushing device is connected to the reducer (32), and the other end is connected to the first solar panel assembly (4); The second driving device is located on the other side of the reducer (32); one end of the second driving device is connected to the reducer (32), and the other end is connected to the second solar panel assembly (5).
3. A push assembly according to claim 2, wherein, The reducer (32) is provided with a main power end (321), a first driven power end (322), and a second driven power end (323), the first driven power end (322) and the second driven power end (323) being located on both sides of the reducer (32); the main power end (321) is connected to the first power assembly (2); the first driven power end (322) is connected to the first pushing device; and the second driven power end (323) is connected to the second pushing device.
4. A push assembly according to claim 3, wherein, When the first power assembly (2) rotates in the first rotation direction, the first driven power end (322) and the second driven power end (323) rotate simultaneously in the first rotation direction, and the lengths of the first pushing device and the second pushing device outside the storage groove (31) increase simultaneously; when the first power assembly (2) rotates in the second rotation direction, the first driven power end (322) and the second driven power end (323) rotate simultaneously in the second rotation direction, and the lengths of the first pushing device and the second pushing device outside the storage groove (31) decrease simultaneously; the second rotation direction is opposite to the first rotation direction.
5. A push assembly according to claim 1, wherein, The storage slot (31) includes: The base plate (311) has a plurality of snap-fit grooves (3111) along its length direction; a slide rail (3112) is provided opposite to the base plate (311) along its length direction, and the slide rail (3112) is provided on one side of the base plate (311); The top cover (312) has a plurality of snap-fit posts inside; the top cover (312) is connected to the bottom plate (311) by snap-fit posts to form a receiving space for accommodating the reducer (32) and the push device (33).
6. A push assembly according to claim 5, wherein, The pushing device (33) includes: A transmission rod (331) is provided, one end of which is connected to the reducer (32), and the other end is fitted with a sliding device (332); a threaded hole (3321) is provided at the center of the sliding device (332), and fixed plates (3322) are provided on both sides of the sliding device (332); when the first power assembly (2) rotates, the sliding device (332) is slidably connected to the transmission rod (331) through the threaded hole (3321); A push rod (333) is slidably connected to the slide rail (3112); a sliding device (332) is connected to the push rod (333) through the fixed plate (3322), and the sliding device (332) is disposed on one side of the push rod (333); the other side of the push rod (333) is connected to the first solar panel assembly (4) or the second solar panel assembly (5); When the first power assembly (2) rotates in the first rotation direction, the push rods (333) located on both sides of the reducer (32) move away from the reducer (32) at the same time, increasing the angle between the first solar panel assembly (4) and the second solar panel assembly (5) and the plane of the mounting frame (1); when the first power assembly (2) rotates in the second rotation direction, the push rods (333) located on both sides of the reducer (32) move closer to the reducer (32) at the same time, decreasing the angle between the first solar panel assembly (4) and the second solar panel assembly (5) and the plane of the mounting frame (1).
7. A push assembly according to claim 6, wherein, A guide device (334) is provided on the side of the push rod (333) away from the reducer (32). Guide rods (3341) are arranged parallel to each other on both sides of the guide device (334) and are located on the side close to the reducer (32). One end of the guide rod (3341) is connected to the guide device (334), and the other end extends towards the reducer (32). Hollow tubes (335) are arranged opposite each other on both sides of the reducer (32), and the hollow tubes (335) and the guide rod (3341) are located in the same horizontal direction; When the first solar panel assembly (4) is parallel to the second solar panel assembly (5), the guide rod (3341) is completely located inside the hollow tube (335).
8. A push assembly according to claim 7, wherein, A connecting device (336) is provided on the side of the guide device (334) away from the push rod (333), and a connecting hole is provided at the center of the connecting device (336); Mounting rod (337) is fitted into the connecting hole, and both ends of the mounting rod (337) are connected to the first solar panel assembly (4) or the second solar panel assembly (5).
9. A push assembly according to claim 8, wherein, The mounting rods (337) located on both sides of the reducer (32) are at different heights; when the first solar panel assembly (4) is parallel to the second solar panel assembly (5), the distance between the first solar panel assembly (4) and the second solar panel assembly (5) is the height difference of the mounting rods (337) located on both sides of the reducer (32).
10. A solar panel arrangement, characterized by include: A propulsion component as described in any one of claims 1 to 9 above.