Vehicle awning equipment integrated with solar module
By integrating solar panels on the vehicle awning, the problem of space occupied by the awning and solar charging panels is solved, the dual functions of shading and energy conversion are achieved, and the vehicle's energy utilization efficiency and power support are improved.
Patent Information
- Application Number
- CN202511055468.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-30
- Publication Date
- 2025-09-19
AI Technical Summary
The independent awnings and solar charging panels on existing vehicles take up a lot of space, increase installation costs and are inconvenient to use.
A vehicle awning device with integrated solar panels is designed. By integrating solar panels on the awning cloth assembly, the dual functions of shading and energy conversion are achieved, the roof space is utilized, and energy utilization efficiency is improved.
Effectively utilize the roof space, provide sunshade and solar energy conversion functions, improve the overall energy efficiency of the vehicle, and provide sustainable power support.
Smart Images

Figure CN120663731A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of vehicle supporting equipment, and in particular to a vehicle awning device integrated with a solar module. Background Art
[0002] With the improvement of environmental awareness and the popularization of new energy vehicles, the effective use of solar energy to provide power support for vehicles has become an important research direction. In the existing technology, there are independent roof-mounted solar charging panels, which are usually installed on the roof of the vehicle as additional equipment. They include the following parts: Solar charging panel: composed of multiple solar cells, installed on the roof of the vehicle, used to convert solar energy into electrical energy. Charging controller: connected between the solar charging panel and the vehicle battery, used to control the charging process and protect the battery from damage due to overcharging or over-discharging. Mounting bracket: used to fix the solar charging panel to the roof of the vehicle to ensure that it is stable and can receive sufficient sunlight.
[0003] In some cases, vehicles also feature awnings on their roofs, primarily for shielding against sunlight and protecting the interior environment. The simultaneous presence of awnings and independent rooftop solar panels requires additional installation space, impacting the overall utilization of roof space and increasing installation costs. Furthermore, users need to monitor the status and operation of both the awning and the solar panel simultaneously, adding to the inconvenience of use. Summary of the Invention
[0004] The purpose of the present invention is to provide a vehicle awning device integrated with solar panels to solve the problems existing in the prior art. It aims to integrate solar panels and awning cloth components to not only effectively utilize the roof space to block sunlight, but also convert solar energy into electrical energy, providing sustainable power support for the vehicle and improving the overall energy utilization efficiency of the vehicle.
[0005] To achieve the above-mentioned object, the present invention provides the following solutions: The present invention provides a vehicle awning device integrated with a solar module, comprising a mounting housing, a awning cloth assembly, and a solar panel;
[0006] The mounting housing is used to be mounted on a roof of a vehicle;
[0007] The mounting shell is equipped with at least four sets of sunshade awning cloth assemblies, wherein two of the sunshade awning cloth assemblies can be horizontally deployed on both sides of the mounting shell along the width direction of the vehicle; and the other two sunshade awning cloth assemblies can be horizontally deployed on both sides of the mounting shell along the length direction of the vehicle;
[0008] The top of each sunshade awning assembly is covered with the solar panel, and the solar panel is unfolded synchronously with the sunshade awning assembly.
[0009] Preferably, four groups of sunshade awning cloth assemblies are arranged in sequence along the vertical direction, wherein two of the sunshade awning cloth assemblies are mounted on both sides of the mounting shell in a pull-out structure and slide horizontally along the width direction of the vehicle, and can be pulled out or retracted from the mounting shell; the other two sunshade awning cloth assemblies are mounted on both sides of the mounting shell in a pull-out structure and slide horizontally along the length direction of the vehicle, and can be pulled out or retracted from the mounting shell;
[0010] The solar cell panel moves synchronously with the sunshade awning assembly.
[0011] Preferably, the sunshade awning assembly includes a movable bracket and a sunshade awning;
[0012] Two of the movable brackets are mounted in the mounting housing for horizontal sliding along the width direction of the vehicle, and the other two movable brackets are mounted in the mounting housing for horizontal sliding along the length direction of the vehicle. The mounting housing is provided with openings on both sides in the width direction of the vehicle and on both sides in the length direction of the vehicle for extending the movable brackets respectively.
[0013] The sunshade awning is arranged on the corresponding movable bracket and moves synchronously with the movable bracket.
[0014] Preferably, the mobile support comprises two sets of inner tubes and outer tubes;
[0015] The two outer tubes are both fixed in the mounting shell, and are symmetrically arranged on both sides of the sunshade awning in a direction perpendicular to the movement direction of the sunshade awning, and extend along the movement direction of the sunshade awning;
[0016] The inner tube is coaxially and movably installed in the outer tube. Sliders are provided at both ends of the inner tube. The outer tube is provided with strip grooves for the two slides to extend out. The slides are slidably arranged along the strip grooves.
[0017] The sunshade awning cloth is located between the two inner tubes and is connected to each of the sliders.
[0018] Preferably, an elastic buffer gasket is connected between the sunshade awning cloth and each of the sliders.
[0019] Preferably, a plurality of driving mechanisms corresponding to the movable brackets are provided in the mounting shell, and the driving mechanisms are used to drive the movable brackets to extend or retract.
[0020] Preferably, the mobile bracket is equipped with a locking mechanism installed in the mounting shell, and the locking mechanism is used to fix the mobile bracket in an extended or retracted state.
[0021] Preferably, two telescopic rods are provided at the end of the sunshade awning cloth assembly facing away from the mounting shell after the sunshade awning cloth assembly is unfolded. The two telescopic rods are arranged on both sides of the sunshade awning cloth assembly in a direction perpendicular to the unfolding direction of the sunshade awning cloth assembly. The top end of the telescopic rod is connected to the sunshade awning cloth assembly, and the bottom end of the telescopic rod is provided with a connecting assembly that is detachably connected to the outer surface of the vehicle.
[0022] Preferably, the solar cell panels are thin-film solar cells.
[0023] Preferably, each of the solar cell panels is equipped with an electric energy storage mechanism, and each of the solar cell panels is electrically connected to the electric energy storage mechanism.
[0024] Compared with the prior art, the present invention has achieved the following technical effects:
[0025] The disclosed vehicle awning device, which integrates solar panels and a awning fabric assembly, aims to transform the awning fabric assembly into a device that simultaneously provides shade and energy conversion. This not only effectively utilizes the vehicle's roof space to block sunlight but also converts solar energy into electricity. Furthermore, the solar panels' ability to charge the vehicle or external devices provides sustainable power for the vehicle, improving the vehicle's overall energy efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0027] Figure 1 This is a schematic diagram of the structure of the sunshade awning assembly of the entire device disclosed in the present invention after it is unfolded. Figure 1 ;
[0028] Figure 2 This is a schematic diagram of the structure of the sunshade awning assembly of the entire device disclosed in the present invention after it is unfolded. Figure 2 ;
[0029] Figure 3 This is a schematic structural diagram of the entire device disclosed in the present invention after the sunshade awning assembly is retracted;
[0030] Figure 4 An exploded view of the mounting housing structure disclosed in the present invention;
[0031] Among them, 1-installation shell, 2-solar panel, 3-telescopic rod, 4-suction cup, 5-sunshade awning assembly, 6-luggage rack, 7-shell connector, 8-top partition, 9-middle partition, 10-bottom partition, 11-side partition, 12-corner connector. DETAILED DESCRIPTION
[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0033] The purpose of the present invention is to provide a vehicle awning device integrated with solar panels to solve the problems existing in the prior art. It aims to integrate solar panels and awning cloth components to not only effectively utilize the roof space to block sunlight, but also convert solar energy into electrical energy, providing sustainable power support for the vehicle and improving the overall energy utilization efficiency of the vehicle.
[0034] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments.
[0035] like Figures 1 to 4As shown, the present invention provides a vehicle awning device integrated with solar modules, comprising a mounting shell 1, a sunshade cloth assembly 5 and a solar cell panel 2; the mounting shell 1 is used to be mounted on the roof of the vehicle, wherein preferably a support frame is provided at the roof of the vehicle, and the mounting shell 1 is detachably mounted on the top of the support frame. In a specific implementation, the support frame can directly select a roof luggage rack 6, and the mounting shell 1 is mounted on the roof luggage rack 6 by using a shell connector 7, such as a bolt connection; the mounting shell 1 is equipped with at least four sets of sunshade cloth assemblies 5, wherein two sunshade cloth assemblies 5 are arranged along the width direction of the vehicle. The vehicle awning system 1 can be horizontally deployed on either side of the mounting housing 1. Two other sunshade assemblies 5 can be horizontally deployed on either side of the mounting housing 1 along the length of the vehicle. In other words, each sunshade assembly 5 can be simultaneously deployed on either side along the length and width of the vehicle to cover the entire roof of the vehicle, providing a sunshade effect. Each sunshade assembly 5 is topped with a solar panel 2, which deploys synchronously with the sunshade assembly 5. This allows the sunshade assembly 5 to support the solar panel 2, increasing the area available for the solar panel 2 and thereby fully utilizing solar energy and increasing the amount of solar energy converted into electrical energy. The disclosed vehicle awning system with integrated solar panels aims to transform the sunshade assembly 5 into a single device that simultaneously provides both shading and energy conversion functions by integrating the solar panel 2 and the sunshade assembly 5. This effectively utilizes the roof space to block sunlight while also converting solar energy into electrical energy. Furthermore, the present invention provides sustainable power for the vehicle by enabling the solar panel 2 to charge the vehicle or external devices, thereby improving the vehicle's overall energy efficiency.
[0036] Preferably, a solar cell panel 2 is provided on the top of the installation housing 1 to utilize the space on the top of the installation housing 1 and fully expand the area for utilizing solar energy.
[0037] In one specific embodiment, the mounting housing 1 is provided with a housing on both sides along the length and width of the vehicle. A reel can be provided in the housing to drive the reel in forward and reverse rotation, thereby achieving the winding and unwinding of the awning assembly 5, and the solar panel 2 is synchronously wound and unwound with the awning assembly 5. In this embodiment, a folding method can also be used, for example, by providing a folding bracket in the housing, placing the awning assembly 5 on the folding bracket and folding and storing it within the housing along with the folding bracket, or unfolding the awning assembly 5 by unfolding the folding bracket, thereby synchronously driving the folding, storage, or unfolding of the solar panel 2. In both of the above embodiments, the solar panel 2 uses thin-film solar cells, which are flexible structures to facilitate synchronous movement with the awning assembly 5.
[0038] In this embodiment, as a more preferred embodiment, four sets of sunshade awning assemblies 5 are arranged in sequence along the vertical direction. Two of the sunshade awning assemblies 5 are mounted on either side of the mounting housing 1 in a pull-out structure and slide horizontally along the width of the vehicle, allowing them to be withdrawn or retracted from the mounting housing 1. The other two sunshade awning assemblies are mounted on either side of the mounting housing 1 in a pull-out structure and slide horizontally along the length of the vehicle, allowing them to be withdrawn or retracted from the mounting housing 1. The solar panels 2 move synchronously with the sunshade awning assemblies 5. The pull-out structure refers to the sunshade awning assemblies 5 being able to slide back and forth through a mechanical device, thereby being manually or electronically withdrawn from the mounting housing 1 and deployed on one side of the mounting housing 1, or being used to adjust the shade area, thereby causing the solar panels 2 to be withdrawn or retracted synchronously. The pull-out structure allows users to adjust the shade area as needed and optimize solar energy collection efficiency. The pull-out structure makes the sunshade awning assemblies 5 more flexible and adaptable to different lighting conditions and user needs. Moreover, since the four groups of sunshade awning cloth assemblies 5 are arranged in sequence along the vertical direction, on the premise of ensuring that the structure of the sunshade awning cloth assembly 5 is large enough, if the structure of the sunshade awning cloth assembly 5 matches the cross-sectional structure of the mounting shell 1, positional interference between the sunshade awning cloth assemblies 5 during the process of being pulled out or retracted can be avoided.
[0039] The mounting housing 1 preferably includes a bottom partition 10 and a top partition 8 located above the bottom partition 10. A plurality of intermediate partitions 9 are evenly spaced vertically between the bottom partition 10 and the top partition 8. Side partitions 11 are provided around the edges of the bottom partition 10 and the top partition 8. The top partition 8, the bottom partition 10, and the intermediate partitions 9 are connected by the side partitions 11. Each side partition 11 has an opening for the sunshade awning assembly 5 to extend. Corner connectors 12 are connected between adjacent side partitions 11.
[0040] In this embodiment, the sunshade awning assembly 5 includes a movable bracket and a sunshade awning. The movable bracket is the main structure of the sunshade awning assembly 5, and is usually made of lightweight materials, such as aluminum alloy, plastic, or carbon fiber. Two of the movable brackets are installed in the mounting shell 1 for horizontal sliding along the width direction of the vehicle, and the other two movable brackets are installed in the mounting shell 1 for horizontal sliding along the length direction of the vehicle. The mounting shell 1 is provided with openings on both sides of the vehicle width direction and on both sides of the vehicle length direction for each movable bracket to extend out. The sunshade awning is set on the corresponding movable bracket and moves synchronously with the movable bracket. Preferably, the mounting shell 1 is provided with guide rails at positions on both sides of the sunshade awning assembly 5, and the two side edges of the movable bracket are respectively slidably installed on the corresponding guide rails to guide the movement of the sunshade awning. When it is necessary to pull out, retract or adjust the shading area, the movable bracket is driven manually or electrically to move along the track to reach the corresponding state.
[0041] In this embodiment, the movable bracket includes two sets of inner tubes and outer tubes; the two outer tubes are fixed in the mounting shell 1 and are symmetrically arranged on both sides of the sunshade cloth in a direction perpendicular to the direction of movement of the sunshade cloth, and extend in the direction of movement of the sunshade cloth; the inner tube is coaxially movably installed in the outer tube, wherein the structure of the inner tube and the outer tube match so that the inner tube can slide stably along the outer tube, and the inner tube can also be a rod-shaped structure to improve its structural strength; sliders are provided at both ends of the inner tube, and the outer tube is provided with a strip groove for the two sliders to extend, and the sliders are slidably arranged along the strip groove, and preferably the structure of the sliders matches the structure of the strip groove to ensure that the sliders can slide stably along the strip groove; the sunshade cloth is located between the two inner tubes and is connected to each slider so that the sunshade cloth can be unfolded. Preferably, an elastic buffer gasket, such as a silicone gasket, is connected between the sunshade cloth and each slider to absorb slight displacement deviations during movement.
[0042] Furthermore, the awning cloth can also be equipped with a supporting frame for unfolding the awning cloth. The supporting frame is located between the two inner tubes and is connected to each slider. The awning cloth is arranged on the supporting frame.
[0043] In a specific embodiment, a plurality of drive mechanisms corresponding to each mobile bracket are provided in the mounting housing 1, and the drive mechanisms are used to drive the mobile bracket to extend or retract. By providing the drive mechanisms, the mobile bracket can be electrically driven when the mobile bracket needs to be pulled out or retracted. Preferably, the two side edges of the mobile bracket are slidably mounted on corresponding guide rails to guide the movement of the sunshade awning. A screw slider structure commonly used in the prior art is provided in the mounting housing 1, which is equipped with a drive motor. The drive motor drives the screw to rotate, and the slider is connected to the mobile bracket, thereby achieving the driving of the mobile bracket. As another preferred embodiment, when the mobile bracket includes two sets of inner tubes and outer tubes, a screw slider structure commonly used in the prior art is provided in the mounting housing 1, which is equipped with a drive motor. The screw extends from one end into the outer tube and is rotatably connected to the inner tube. That is, the inner tube is used as a slider. Under the action of the drive motor, the screw rotates to cause the inner tube to move along the outer tube.
[0044] In a specific embodiment, the mobile bracket is equipped with a locking mechanism installed in the mounting housing 1. The locking mechanism is used to fix the mobile bracket in the extended or retracted state, so that the mobile bracket can be extended to the structure required by the mounting housing 1 and can prevent the mobile bracket from detaching from the mounting housing 1. For example, when the mobile bracket is electrically controlled by a drive motor in conjunction with a lead screw slider, the drive range of the drive motor is set in advance by the electronic control system, such as by installing a mechanical limit switch, an angle encoder, etc. in the prior art, as a locking mechanism to achieve the forward and reverse travel of the drive motor. When the mobile bracket is driven manually, for example, spring pins are provided at both ends of the mobile bracket along its travel direction so that it can be locked with the inner wall of the mounting housing 1. For another example, when an outer tube and an inner tube are used as the mobile bracket, spring pins can be provided at both ends of the inner tube so that after moving into position, the inner tube and the outer tube are locked by the spring pins.
[0045] In one specific embodiment, two telescopic rods 3 are provided at the end of the awning assembly 5 facing away from the mounting housing 1 after deployment. These rods 3 are arranged on either side of the awning assembly 5 perpendicular to the direction in which the awning assembly 5 is deployed. The top ends of the telescopic rods 3 are connected to the awning assembly 5, and the bottom ends of the telescopic rods 3 are provided with a connecting assembly that is removably connected to the exterior surface of the vehicle. This allows the telescopic rods 3 to be manually pulled to support the vehicle's exterior surface after the awning assembly 5 is deployed, thereby supporting the awning assembly 5. Preferably, the connecting assembly may be a suction cup 4, for attaching to the vehicle's exterior surface by suction. Alternatively, the bottom ends of the telescopic rods 3 may be supported on the ground, for example, by being inserted into the ground using ground spikes. Furthermore, a blocking strip is provided at the end of the awning assembly 5 facing away from the mounting housing 1 after deployment, allowing it to be sealed against the opening of the mounting housing 1 after retraction, thereby sealing the opening. The placement of the telescopic rods 3 on the blocking strip further optimizes the overall structure of the awning assembly 5.
[0046] In one specific embodiment, the solar panel 2 utilizes thin-film solar cells. Thin-film solar cells are semiconductor devices that convert light energy into electrical energy. Compared to traditional crystalline silicon solar cells, they are thinner, lighter, and more flexible, making them more flexible and suitable for a wider range of scenarios. The main structure of a thin-film solar cell includes a photoelectric conversion layer, a transparent conductive layer, a back electrode layer, and a protective encapsulation material. The photoelectric conversion layer is the core component and is composed of one or more thin-film materials, such as amorphous silicon, copper indium gallium selenide (CIGS), or cadmium telluride (CdTe). When light strikes the photoelectric conversion layer, photons interact with electrons in the semiconductor material, generating a photocurrent, known as the "photovoltaic effect." This process converts light energy into electrical energy, which is output through the transparent conductive layer and back electrode layer. In this embodiment, the thin-film solar cell is overlaid on the top surface of the awning. Preferably, the thin-film solar cell is riveted to the awning using rivets, and a sealing structure is provided at the connection between the rivets and the awning to seal the rivet connection. The thin-film solar cell is secured to the awning using a flexible adhesive material, ensuring that it moves synchronously with the awning.
[0047] In one specific embodiment, each solar panel 2 is equipped with an energy storage mechanism. Preferably, the energy storage mechanism is secured to the mounting housing 1 by clips or bolts to ensure shock resistance and sealing, and is vertically spaced apart from each awning assembly 5. Each solar panel 2 is electrically connected to the energy storage mechanism. Internal flexible conductors connect the positive and negative terminals of the energy storage unit, transmitting electrical energy to the energy storage mechanism via the conductors. The energy storage mechanism includes a battery pack for storing energy converted from solar energy. In one specific example, the energy storage mechanism includes a housing containing a battery pack, preferably a lithium battery pack, and a heat dissipation device and battery management system. In a solar power generation system, the energy storage mechanism plays a crucial role, storing excess energy during periods of abundant sunlight and releasing it when needed to ensure a stable power supply. In this embodiment, the energy storage mechanism comprises multiple batteries connected in series or parallel to achieve sufficient voltage and capacity to store energy. The battery contains components such as positive and negative plates, an electrolyte, and a separator. During charging, the electrical energy provided by an external power source is converted into chemical energy and stored in the battery. During discharge, the chemical energy in the battery is converted back into electrical energy for output. Through proper charge and discharge management, energy storage mechanisms can effectively store and utilize the electrical energy converted from solar energy.
[0048] In this embodiment, the mounting housing 1 is also provided with a waterproof charging port, which is electrically connected to the energy storage mechanism or solar panel 2 via a cable, for connecting a charging cable to charge the vehicle or meet other power needs. Waterproof charging ports include, but are not limited to, USB ports, Type-C ports, and dedicated vehicle charging ports, and are designed with an integrated waterproof cover.
[0049] In one specific embodiment, a vehicle awning system integrated with solar panels also includes an intelligent control unit that interacts with an energy storage mechanism through electrical components. The intelligent control unit is an integrated electronic control system for automating the solar power generation, energy storage, and charging processes. It is installed within the mounting housing 1 and positioned near the energy storage mechanism. It intelligently adjusts and controls the operation of the solar power generation system based on factors such as environmental conditions, user needs, and system status. The intelligent control unit typically consists of components such as a microprocessor, sensors, actuators, and a communication module. The microprocessor is the core of the control system, responsible for processing data collected by sensors, executing control algorithms, and issuing control commands. Sensors are used to monitor environmental conditions (such as light intensity and temperature) and system status (such as battery charge and voltage) in real time. The actuators perform corresponding actions based on the microprocessor's instructions, such as controlling the charging and discharging of the energy storage mechanism. The communication module is responsible for data transmission and communication with other devices or systems to enable remote monitoring and control. For example, the communication module can connect to a user's mobile phone app or vehicle-mounted system for remote monitoring. Through the management and control of the intelligent control unit, the entire vehicle awning equipment integrated with solar panels can operate more efficiently and stably, and provide users with more convenient and intelligent energy services.
[0050] Specifically, sensors collect key parameters such as light intensity, solar panel temperature, current, and voltage in real time. A microcontroller processes and analyzes this data to identify system status and user needs. Rule-based control: Based on preset rules and a knowledge base, the system selects the appropriate control strategy based on the current system status. For example, maximum power point tracking (MPPT) parameters are adjusted based on light intensity and solar panel temperature. Machine learning-based control: Utilizes machine learning algorithms (such as neural networks and support vector machines) to automatically learn system models and control strategies, achieving adaptive control. As data accumulates, the control effect is continuously optimized. Execution of control signals: The microcontroller outputs control signals based on the selected control strategy, driving the controlled object (such as a solar inverter or battery pack) through the execution circuit. Feedback regulation: System status changes are monitored in real time, and the control strategy is adjusted based on feedback signals to ensure stable and optimal system operation. Efficiency optimization: Optimization algorithms are used to adjust system parameters, such as the MPPT control strategy and the charge and discharge rates of the energy storage batteries, to improve the overall efficiency of the solar power generation system. Fault detection and protection: System operating status is monitored in real time. Once a fault is detected, an alarm is issued and protective measures are implemented to prevent it from escalating and affecting system stability.
[0051] During use, the user adjusts the shading area of the awning cloth assembly 5 as needed. The solar panel 2 starts working, converting solar energy into electrical energy, and transmitting the electrical energy to the energy storage mechanism for storage through a cable. When the vehicle or external device needs to be charged, the user only needs to connect the device to the charging port, and the intelligent control unit will automatically control the energy storage unit to provide power to the device. Through the technical solution of the present invention, not only the sunshade function is achieved, but also the energy conversion and storage functions are realized, providing additional power support for the vehicle. At the same time, the pull-out design makes the awning more flexible and adaptable to different usage scenarios and needs. The implementation of the intelligent control unit also makes the operation of the entire system more intelligent and convenient.
[0052] Adaptive changes based on actual needs are all within the scope of protection of the present invention.
[0053] It should be noted that it will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the present invention is defined by the appended claims, not the foregoing description, and it is intended that all variations within the meaning and range of equivalents of the claims be encompassed within the present invention. Any reference signs in the claims should not be construed as limiting the claim to which they relate.
[0054] The present invention uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only intended to help understand the method and core concept of the present invention. At the same time, those skilled in the art will find that the specific implementation methods and application scopes may vary based on the concept of the present invention. In summary, the contents of this specification should not be construed as limiting the present invention.
Claims
1. A vehicle awning device integrated with a solar panel, characterized in that: Includes installation of housing, awning assembly and solar panels; The mounting housing is used to be mounted on a roof of a vehicle; The mounting shell is equipped with at least four sets of sunshade awning cloth assemblies, wherein two of the sunshade awning cloth assemblies can be horizontally deployed on both sides of the mounting shell along the width direction of the vehicle; and the other two sunshade awning cloth assemblies can be horizontally deployed on both sides of the mounting shell along the length direction of the vehicle; The top of each sunshade awning assembly is covered with the solar panel, and the solar panel is unfolded synchronously with the sunshade awning assembly.
2. The vehicle awning device integrated with a solar module according to claim 1, characterized in that: The four groups of sunshade awning cloth assemblies are arranged in sequence along the vertical direction, wherein two of the sunshade awning cloth assemblies are mounted on both sides of the mounting shell in a pull-out structure so as to slide horizontally along the width direction of the vehicle and can be pulled out or retracted from the mounting shell; the other two sunshade awning cloth assemblies are mounted on both sides of the mounting shell in a pull-out structure so as to slide horizontally along the length direction of the vehicle and can be pulled out or retracted from the mounting shell; The solar cell panel moves synchronously with the sunshade awning assembly.
3. The vehicle awning device integrated with a solar module according to claim 2, characterized in that: The sunshade awning assembly includes a movable bracket and a sunshade awning; Two of the movable brackets are mounted in the mounting housing for horizontal sliding along the width direction of the vehicle, and the other two movable brackets are mounted in the mounting housing for horizontal sliding along the length direction of the vehicle. The mounting housing is provided with openings on both sides in the width direction of the vehicle and on both sides in the length direction of the vehicle for extending the movable brackets respectively. The sunshade awning is arranged on the corresponding movable bracket and moves synchronously with the movable bracket.
4. The vehicle awning device integrated with a solar module according to claim 3, characterized in that: The mobile support comprises two sets of inner tubes and outer tubes; The two outer tubes are both fixed in the mounting shell, and are symmetrically arranged on both sides of the sunshade awning in a direction perpendicular to the movement direction of the sunshade awning, and extend along the movement direction of the sunshade awning; The inner tube is coaxially and movably installed in the outer tube. Sliders are provided at both ends of the inner tube. The outer tube is provided with strip grooves for the two slides to extend out. The slides are slidably arranged along the strip grooves. The sunshade awning cloth is located between the two inner tubes and is connected to each of the sliders.
5. The vehicle awning device integrated with a solar module according to claim 4, characterized in that: Elastic buffer pads are connected between the sunshade awning cloth and each of the sliders.
6. The vehicle awning device integrated with a solar module according to any one of claims 3 to 5, characterized in that: A plurality of driving mechanisms corresponding to the movable brackets are provided in the mounting shell, and the driving mechanisms are used to drive the movable brackets to extend or retract.
7. The vehicle awning device integrated with a solar module according to any one of claims 3 to 5, characterized in that: The movable bracket is equipped with a locking mechanism installed in the mounting housing, and the locking mechanism is used to fix the movable bracket in an extended or retracted state.
8. The vehicle awning device integrated with a solar module according to claim 1, characterized in that: After the sunshade awning assembly is unfolded, two telescopic rods are provided at the end facing away from the mounting shell. The two telescopic rods are arranged on both sides of the sunshade awning assembly in a direction perpendicular to the unfolding direction of the sunshade awning assembly. The top end of the telescopic rod is connected to the sunshade awning assembly, and the bottom end of the telescopic rod is provided with a connecting assembly that is detachably connected to the outer surface of the vehicle.
9. The vehicle awning device integrated with a solar module according to claim 1, characterized in that: The solar cell panel adopts thin film solar cells.
10. The vehicle awning device integrated with a solar module according to claim 1, characterized in that: Each of the solar cell panels is equipped with an electric energy storage mechanism, and each of the solar cell panels is electrically connected to the electric energy storage mechanism.