Vehicle rooftop tent and vehicle
By installing ventilation ducts and heat insulation layers in the roof tent, the service life and safety hazards of energy storage components due to high temperature are solved, and effective heat dissipation and safety improvements are achieved.
Patent Information
- Application Number
- PCT/CN2024/142363
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-01-23
- Filing Date
- 2024-12-25
- Publication Date
- 2025-07-31
AI Technical Summary
The energy storage components of the existing roof tent have increased in temperature under sunlight, which affects the service life and poses safety hazards.
The ventilation duct is installed on the base or cover assembly of the roof tent. The energy storage assembly is located in the ventilation duct. The ventilation hole avoids the end of the ventilation duct. The external air flow enters the ventilation duct and takes away the heat from the energy storage assembly. Heat exchanges with the outside through the ventilation duct, and combines the thermal insulation layer and the heat dissipation hole design to achieve heat dissipation.
Effectively reduce the temperature of energy storage components, extend the service life, avoid safety hazards, and improve the safety and reliability of energy storage components.
Smart Images

Figure CN2024142363_31072025_PF_FP_ABST
Abstract
Description
Rooftop tent and vehicle
[0001] Priority information
[0002] This application claims priority and benefits of patent application No. 202410099091.2 filed with the State Intellectual Property Office of China on January 23, 2024, and the entire text of which is incorporated herein by reference. Technical Field
[0003] The present application relates to the technical field of energy storage equipment, and in particular to a roof tent and a vehicle. Background Art
[0004] As consumers' demand for roof tents increases, the functions of roof tents are also increasing. For roof tents with newly added solar panels and energy storage functions, the internal temperature of the roof tent will gradually rise under sunlight. The energy storage structure will be exposed to high temperature for a long time, which will affect its service life and even cause safety hazards. Summary of the Invention
[0005] This application aims to solve one of the technical problems existing in the prior art or related technologies.
[0006] In view of this, in the first aspect, the present application proposes a roof tent, comprising: a base; a cover assembly connected to the base; a ventilation pipe connected to the base or the cover assembly, and ventilation holes are provided on the cover assembly or the base, and the ventilation holes are used to avoid the ends of the ventilation pipe; an energy storage assembly is located in the ventilation pipe.
[0007] A ventilation pipe is installed on the base or the cover assembly, and the energy storage assembly is installed in the ventilation pipe. Ventilation holes are provided on the base or the cover assembly. The ventilation holes avoid the end of the ventilation pipe so that the external airflow of the roof tent can flow into the ventilation pipe. When air flows into the ventilation pipe, the airflow can take away the surface heat of the energy storage assembly, thereby realizing heat dissipation of the energy storage assembly. The energy storage assembly can effectively exchange heat with the outside, avoiding the energy storage assembly from being affected by high temperature for a long time, which is beneficial to improving the service life of the energy storage assembly. Since the temperature of the energy storage assembly is not easy to be too high, the safety hazards caused by high temperature can be effectively eliminated.
[0008] In addition, the roof tent according to the above technical solution provided by this application may also have the following additional technical features:
[0009] In some technical solutions, optionally, the cover assembly has a first side and a second side facing away from each other, ventilation holes are provided on the first side and the second side, the first end of the ventilation pipe extends to the first side, and the second end of the ventilation pipe extends to the second side.
[0010] The two opposite sides of the cover assembly are respectively the first side and the second side. The first side of the ventilation duct extends to the first side, and the second end of the ventilation duct extends to the second side. The ventilation duct is a straight tube structure, and the airflow can flow smoothly in the ventilation duct, thereby accelerating the heat dissipation of the energy storage assembly.
[0011] Moreover, since the end of the ventilation pipe extends directly to the side of the cover assembly, the external airflow can flow directly into the ventilation pipe, and the cover assembly will not hinder the airflow flowing to the ventilation pipe, thereby improving the smoothness of the airflow flowing into the ventilation pipe, which is conducive to further improving the heat dissipation speed of the energy storage component.
[0012] In some technical solutions, optionally, the energy storage component includes: a shell connected to the inner wall of the ventilation pipe, the shell including a first plate and a second plate, the first plate facing the first side, the second plate facing the second side, and heat dissipation holes being provided on the first plate and the second plate; and an energy storage component located inside the shell.
[0013] The housing has two opposing sides, a first plate and a second plate. Both plates are provided with heat dissipation holes. This allows airflow to flow into the housing through one of the first and second plates. The airflow entering the housing then exchanges heat with the energy storage element. After heat exchange, the airflow exits the housing through the other of the first and second plates. Compared to methods that dissipate heat from the housing, dissipating holes in the first and second plates allows airflow to dissipate heat directly from the heat sink, improving the heat dissipation effect on the energy storage element.
[0014] In some technical solutions, optionally, the housing further includes: a bottom plate, the first plate body and the second plate body are connected to the bottom plate, there are multiple heat dissipation holes, and any heat dissipation hole is spaced apart from the bottom plate.
[0015] Multiple heat dissipation holes are provided on both the first plate and the second plate. There is a spacing between any heat dissipation hole and the bottom plate, so that a safe distance is left between the heat dissipation hole and the bottom of the ventilation pipe, preventing rainwater splashing into the ventilation pipe from entering the interior of the shell through the heat dissipation hole, thereby improving the safety of the energy storage component installation environment.
[0016] In some technical solutions, optionally, the roof tent further includes: a first heat insulation layer, which is provided on the inner wall of the ventilation duct and / or the outer wall of the ventilation duct.
[0017] A first thermal insulation layer is formed on the inner wall and / or the outer wall of the ventilation duct. The first thermal insulation layer has a thermal insulation function, so that the first thermal insulation layer can block the heat inside the roof tent from being transferred to the energy storage component. The energy storage component is not easily affected by the high temperature inside the roof tent, so that the energy storage component can be in a relatively low temperature environment, thereby reducing the damage rate of the energy storage component and improving the safety of the energy storage component.
[0018] In some technical solutions, optionally, the energy storage assembly further includes: an output panel connected to the housing, a through hole is provided on the ventilation pipe, and the output panel is arranged opposite to the through hole.
[0019] The output panel can be provided with a variety of interfaces, which are electrically connected to the energy storage component, so that users can use the interfaces to charge when they need electricity. A through hole is provided on the ventilation pipe, and the output panel is directly opposite the through hole, so as to prevent the ventilation pipe from affecting the user's use of the output panel.
[0020] In some technical solutions, optionally, the roof tent further includes: a sliding cover, slidably connected to the ventilation pipe, and the sliding cover is used to open or close the through hole.
[0021] The sliding cover is mounted on the ventilation duct and can slide relative to the duct. When the user needs to access the output panel, the cover can be slid to open the through hole without blocking the output panel. When the user does not need to use the output panel, the cover can be slid to close the through hole, preventing the output panel from contacting external objects and reducing the risk of damage to the output panel.
[0022] In some technical solutions, optionally, the roof tent further includes: a second heat insulation layer, which is provided on a side of the sliding cover facing the output panel and / or a side of the sliding cover facing away from the output panel.
[0023] A second thermal insulation layer is formed on the inward and / or outward side of the output panel. This second thermal insulation layer provides thermal insulation, preventing heat from within the rooftop tent from being transferred to the output panel. This reduces the high temperatures within the rooftop tent, allowing the output panel to be kept in a relatively cool environment, reducing damage to the output panel and improving its safety. Furthermore, while the second thermal insulation layer blocks heat transfer to the output panel, it also prevents heat from being transferred to the energy storage component through the through-holes, further improving the safety of the energy storage component.
[0024] In some technical solutions, optionally, a solar panel is provided on the side of the cover assembly away from the base. Based on the fact that the ventilation pipe is provided on the base, the roof tent also includes: an elastic connecting line, a first end of the elastic connecting line is electrically connected to the solar panel, and a second end of the elastic connecting line is electrically connected to the energy storage assembly.
[0025] A solar panel is mounted on the cover assembly, and is electrically connected to an energy storage assembly. The energy storage assembly can store the electricity converted by the solar panel, and can be used by the user when electricity is needed. An electrical connection line is required to connect the energy storage assembly and the solar panel. When the ventilation duct is mounted on the base, as the cover assembly moves relative to the base, the cover assembly will pull on the electrical connection line. Therefore, an elastic connection line is provided between the energy storage assembly and the cover assembly. The elastic connection line can expand and contract with the movement of the cover assembly, and the elastic connection line is not easily broken, thereby ensuring that the solar panel can stably transmit electricity to the energy storage assembly.
[0026] In a second aspect, the present application proposes a vehicle, comprising: a vehicle body; and a roof tent such as in the first aspect, the roof tent being connected to the vehicle body.
[0027] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become obvious from the description below, or will be learned through practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:
[0029] FIG1 is a schematic diagram showing a roof tent in an unused state according to an embodiment of the present application;
[0030] FIG2 shows one of the schematic diagrams of the roof tent in use according to the embodiment of the present application;
[0031] FIG3 shows a second schematic diagram of the roof tent in use according to an embodiment of the present application;
[0032] FIG4 shows a third schematic diagram of a roof tent in use according to an embodiment of the present application;
[0033] FIG5 shows a cross-sectional view in the CC direction in FIG1 ;
[0034] FIG6 shows an enlarged view of point A in FIG5 ;
[0035] FIG7 shows a cross-sectional view in the DD direction in FIG1 ;
[0036] FIG. 8 shows an enlarged view of point B in FIG. 7 .
[0037] Explanation of the reference numerals of the main components: 100 roof tent, 110 base, 120 cover assembly, 121 solar panel, 122 ventilation hole, 123 first side, 124 second side, 130 tarpaulin, 140 ventilation pipe, 141 through hole, 150 energy storage assembly, 151 shell, 152 first plate, 153 second plate, 154 heat dissipation hole, 155 energy storage component, 156 bottom plate, 157 output panel, 161 first thermal insulation layer, 162 second thermal insulation layer, 170 sliding cover, 180 elastic connecting line, 191 rotating connecting member, 192 telescopic rod, 200 vehicle body. DETAILED DESCRIPTION
[0038] The following describes in detail embodiments of the present application, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present application, and should not be construed as limiting the present application.
[0039] The disclosure below provides many different embodiments or examples for realizing different structures of the embodiments of the present application. In order to simplify the disclosure of the embodiments of the present application, the components and settings of specific examples are described below. Of course, they are merely examples and are not intended to limit the present application. The embodiments of the present application may repeat reference numbers and / or reference letters in different examples, and such repetition is for the purpose of simplicity and clarity, and does not itself indicate the relationship between the various embodiments and / or settings discussed. In addition, the embodiments of the present application provide examples of various specific processes and materials, but those of ordinary skill in the art will appreciate the application of other processes and / or the use of other materials.
[0040] As shown in Figures 1, 2, and 4, an embodiment of the present application provides a roof tent 100, comprising a base 110, a cover assembly 120, a tarpaulin 130, a ventilation duct 140, and an energy storage assembly 150. The cover assembly 120 is connected to the base 110. The ventilation duct 140 is connected to the base 110 or the cover assembly 120. The cover assembly 120 or the base 110 is provided with a ventilation hole 122, which is used to avoid the end of the ventilation duct 140. The energy storage assembly 150 is located within the ventilation duct 140.
[0041] The cover assembly 120 is installed on the base 110, and the cover assembly 120 can move relative to the base 110. The roof tent 100 also includes a tarpaulin 130. When the cover assembly 120 is in a first position, the cover assembly 120 is buckled on the base 110, and the roof tent 100 is in an unused state. At this time, the tarpaulin 130 is folded between the cover assembly 120 and the base 110. When the cover assembly 120 is in a second position, at least a portion of the cover assembly 120 is separated from the base 110, and the roof tent 100 is in use. At this time, the tarpaulin 130 is in an unfolded state.
[0042] As shown in FIG1 , the rooftop tent 100 is in a stowed state on the roof of the vehicle. At this time, the interior of the rooftop tent 100 is sealed and airtight. Under the sun's scorching heat, the internal temperature will rise to the highest level.
[0043] A ventilation pipe 140 is installed on the base 110 or the cover assembly 120, and the energy storage assembly 150 is installed in the ventilation pipe 140. Ventilation holes 122 are provided on the base 110 or the cover assembly 120. The ventilation holes 122 avoid the end of the ventilation pipe 140, so that the external airflow of the roof tent 100 can flow into the ventilation pipe 140. When air flows into the ventilation pipe 140, the airflow can carry away the surface heat of the energy storage assembly 150, thereby achieving heat dissipation of the energy storage assembly 150. The energy storage assembly 150 can effectively exchange heat with the outside, avoiding the energy storage assembly 150 from being affected by high temperature for a long time, which is beneficial to improving the service life of the energy storage assembly 150. Since the temperature of the energy storage assembly 150 is not easy to be too high, the safety hazards caused by high temperature can be effectively eliminated.
[0044] In this embodiment, the cover assembly 120 is rotatably connected to the base 110, and a rotating connector 191 is provided between the base 110 and the cover. The rotating connector 191 can be a rotating shaft, and the cover assembly 120 rotates relative to the base 110 along the rotating connector 191. The roof tent 100 also includes a telescopic rod 192, and the two ends of the telescopic rod 192 are respectively connected to the cover assembly 120 and the base 110. The telescopic rod 192 can support the cover assembly 120 when extended.
[0045] In this embodiment, the ventilation duct 140 is disposed on the base 110. Of course, in other embodiments, the ventilation duct 140 may also be disposed on the cover assembly 120. As shown in FIG2 and FIG3 , the ventilation duct 140 may be disposed on a side of the rooftop tent 100 close to the rotating connector 191, or on a side of the rooftop tent 100 away from the rotating connector 191. In this embodiment, the relative position of the ventilation duct 140 and the base 110 is not limited.
[0046] As shown in Figure 4, in some embodiments, optionally, the cover body assembly 120 has a first side portion 123 and a second side portion 124 that are opposite to each other, and ventilation holes 122 are provided on the first side portion 123 and the second side portion 124, and the first end of the ventilation pipe 140 extends to the first side portion 123, and the second end of the ventilation pipe 140 extends to the second side portion 124.
[0047] The two opposite side portions of the cover assembly 120 are respectively a first side portion 123 and a second side portion 124. The first side of the ventilation pipe 140 extends to the first side portion 123, and the second end of the ventilation pipe 140 extends to the second side portion 124. The ventilation pipe 140 is a straight tube structure, and the air flow can flow smoothly in the ventilation pipe 140, thereby accelerating the heat dissipation speed of the energy storage assembly 150.
[0048] Moreover, since the end of the ventilation pipe 140 extends directly to the side of the cover assembly 120, the external airflow can flow directly into the ventilation pipe 140, and the cover assembly 120 will not hinder the airflow flowing to the ventilation pipe 140, thereby improving the smoothness of the airflow flowing into the ventilation pipe 140, which is conducive to further improving the heat dissipation speed of the energy storage assembly 150.
[0049] In other embodiments, side panels may be provided on the sides of the base 110 , and ventilation holes 122 may be provided on the side panels.
[0050] As shown in Figures 5, 6, 7 and 8, in some embodiments, optionally, the energy storage assembly 150 includes: a shell 151 and an energy storage member 155, the energy storage member 155 is located in the shell 151, the shell 151 is connected to the inner wall of the ventilation pipe 140, the shell 151 includes a first plate 152 and a second plate 153, the first plate 152 faces the first side 123, the second plate 153 faces the second side 124, and the first plate 152 and the second plate 153 are provided with heat dissipation holes 154.
[0051] The two opposing sides of the housing 151 are respectively a first plate 152 and a second plate 153. Both the first plate 152 and the second plate 153 are provided with heat dissipation holes 154. Therefore, airflow can flow into the housing 151 through one of the first plate 152 and the second plate 153. The airflow entering the housing 151 undergoes heat exchange with the energy storage element 155. After heat exchange, the airflow exits the housing 151 through the other of the first plate 152 and the second plate 153. Compared to methods that dissipate heat from the housing 151, when heat dissipation holes 154 are provided on the first plate 152 and the second plate 153, the airflow can dissipate heat directly from the heat sink, thereby improving the heat dissipation effect on the energy storage element 155.
[0052] In a possible application, the energy storage component 155 includes a battery, an inverter, etc.
[0053] As shown in Figure 8, in some embodiments, optionally, the housing 151 also includes: a bottom plate 156, the first plate body 152 and the second plate body 153 are connected to the bottom plate 156, and there are multiple heat dissipation holes 154, and any heat dissipation hole 154 is spaced apart from the bottom plate 156.
[0054] A plurality of heat dissipation holes 154 are provided on the first plate 152 and the second plate 153. There is a distance between any heat dissipation hole 154 and the bottom plate 156, so that a safe distance is left between the heat dissipation hole 154 and the bottom of the ventilation pipe 140, preventing rainwater splashing into the ventilation pipe 140 from entering the interior of the shell 151 through the heat dissipation hole 154, thereby improving the safety of the installation environment of the energy storage component 150.
[0055] The heat dissipation holes 154 on the left and right sides of the energy storage assembly 150 effectively help the energy storage assembly 150 transfer heat to the external environment when air flows through the ventilation tube 140, preventing heat from accumulating inside the roof tent 100. The heat dissipation holes 154 maintain a safe distance from the bottom of the ventilation tube, effectively preventing rainwater from splashing into the ventilation tube 140 and then entering the energy storage assembly 150.
[0056] In a possible application, the bottom plate 156 may be fixed to the inner wall of the ventilation pipe 140 by bonding, welding, locking, or the like.
[0057] As shown in FIG. 6 , in some embodiments, optionally, the roof tent 100 further includes: a first heat insulating layer 161 , which is provided on the inner wall of the ventilation pipe 140 and / or the outer wall of the ventilation pipe 140 .
[0058] A first thermal insulation layer 161 is formed on the inner wall of the ventilation duct 140 and / or the outer wall of the ventilation duct 140. The first thermal insulation layer 161 has a thermal insulation function, so that the first thermal insulation layer 161 can prevent the heat inside the roof tent 100 from being transferred to the energy storage assembly 150. The energy storage assembly 150 is not easily affected by the high temperature inside the roof tent 100, so that the energy storage assembly 150 can be in a relatively low temperature environment, thereby reducing the damage rate of the energy storage assembly 150 and improving the safety of the energy storage assembly 150.
[0059] As shown in FIG6 , in some embodiments, optionally, the energy storage assembly 150 further includes: an output panel 157 , the output panel 157 is connected to the housing 151 , the ventilation pipe 140 is provided with a through hole 141 , and the output panel 157 is arranged opposite to the through hole 141 .
[0060] The output panel 157 can be provided with a variety of interfaces, which are electrically connected to the energy storage element 155. When the user needs electricity, they can use the interfaces to charge. The ventilation tube 140 is provided with a through hole 141, and the output panel 157 is directly opposite the through hole 141, so that the ventilation tube 140 does not affect the user's use of the output panel 157.
[0061] As shown in FIG. 6 , in some embodiments, optionally, the roof tent 100 further includes a sliding cover 170 , which is slidably connected to the ventilation pipe 140 and is used to open or close the through hole 141 .
[0062] Sliding cover 170 is mounted on ventilation duct 140 and is slidable relative to ventilation duct 140. When a user needs to use output panel 157, they can slide sliding cover 170 to open through-hole 141, without blocking output panel 157. When the user no longer needs to use output panel 157, they can slide sliding cover 170 to close through-hole 141, preventing output panel 157 from contacting external objects and reducing the risk of damage to output panel 157.
[0063] As shown in FIG6 , in some embodiments, the roof tent 100 optionally further includes: a second insulation layer 162 , which is provided on a side of the sliding cover 170 facing the output panel 157 and / or a side of the sliding cover 170 facing away from the output panel 157 .
[0064] A second thermal insulation layer 162 is formed on the inward and / or outward side of the output panel 157. This second thermal insulation layer 162 provides thermal insulation, preventing heat from within the rooftop tent 100 from being transferred to the output panel 157. This reduces the high temperatures within the rooftop tent 100, allowing the output panel 157 to be exposed to a relatively low temperature, thereby reducing the risk of damage to the output panel 157 and improving its safety. Furthermore, while the second thermal insulation layer 162 blocks heat transfer to the output panel 157, it also prevents heat from being transferred to the energy storage element 155 through the through-hole 141, further improving the safety of the energy storage element 155.
[0065] The first insulation layer 161 and the second insulation layer 162 effectively prevent heat in the enclosed space of the roof tent 100 from being transferred to the energy storage assembly 150. The installation environment of the energy storage assembly 150 does not affect the heat exchange between the energy storage assembly 150 and the external environment, and prevents rainwater from the external environment from splashing into the interior of the energy storage assembly 150.
[0066] As shown in Figure 4, in some embodiments, optionally, a solar panel 121 is provided on the side of the cover assembly 120 away from the base 110. Based on the fact that the ventilation pipe 140 is provided on the base 110, the roof tent 100 also includes: an elastic connecting line 180, a first end of the elastic connecting line 180 is electrically connected to the solar panel 121, and a second end of the elastic connecting line 180 is electrically connected to the energy storage assembly 150.
[0067] A solar panel 121 is provided on the cover assembly 120. The solar panel 121 is electrically connected to the energy storage assembly 150. The energy storage assembly 150 can store the electricity converted by the solar panel 121. When a user needs electricity, the energy storage assembly 150 can be used. An electrical connection line is required to connect the energy storage assembly 150 and the solar panel 121. When the ventilation pipe 140 is installed on the base 110, as the cover assembly 120 moves relative to the base 110, the cover assembly 120 will pull on the electrical connection line. Therefore, an elastic connection line 180 is provided between the energy storage assembly 150 and the cover assembly 120. The elastic connection line 180 can expand and contract with the movement of the cover assembly 120. The elastic connection line 180 is not easily broken, thereby ensuring that the solar panel 121 can stably transmit electricity to the energy storage assembly 150.
[0068] As shown in Figure 4, the solar panel 121 continues to charge the energy storage component 150 through the elastic connecting line 180 and dissipates heat through the heat dissipation holes 154. The inner wall of the ventilation pipe 140 is provided with a first thermal insulation layer 161 (such as aluminum foil, foam, phase change material, etc.). The back of the sliding cover 170 is affixed with a second thermal insulation layer 162. The second thermal insulation layer 162 is made of the same material as the first thermal insulation layer 161. When the energy storage component 150 is no longer needed for power supply, it is slid out to isolate the output panel 157 from the interior space of the roof tent 100. This thermal insulation design will effectively prevent the heat inside the roof tent 100 from being transferred to the energy storage component 150.
[0069] Exemplarily, the elastic connecting member is a spring wire.
[0070] The solar panel 121 is located on the top of the cover assembly 120. The solar panel 121 can directly serve as the top plate of the cover assembly 120, or the cover assembly 120 has a top plate and the solar panel 121 is fixed on the top plate.
[0071] As shown in Figures 1, 2 and 3, in an embodiment of the present application, a vehicle is proposed, including: a vehicle body 200 and a roof tent 100 in any of the above embodiments, and the roof tent 100 is connected to the vehicle body 200. The vehicle in this embodiment can achieve the technical effects in any of the above embodiments, which will not be repeated here.
[0072] The roof tent is usually installed on the top of the vehicle body. Specifically, the base is connected to the top of the vehicle body.
[0073] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "illustrative embodiments," "examples," "specific examples," or "some examples" means that specific features, structures, materials, or characteristics described in conjunction with an embodiment or example are included in at least one embodiment or example of the present application. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0074] Although the embodiments of the present application have been shown and described, those skilled in the art will appreciate that various changes, modifications, substitutions, and variations may be made to the embodiments without departing from the principles and intent of the present application, and that the scope of the present application is defined by the claims and their equivalents.
Claims
1. A roof tent, wherein, Comprising: Base; Cover assembly, connected to the base; Ventilation pipe, connected to the base or the cover assembly, ventilation holes are provided on the cover assembly or the base, and the ventilation holes are used to avoid the ends of the ventilation pipe; Energy storage assembly, located inside the ventilation pipe.
2. The roof tent according to claim 1, wherein, The cover assembly has a first side and a second side facing away from each other, ventilation holes are provided on the first side and the second side, the first end of the ventilation pipe extends to the first side, and the second end of the ventilation pipe extends to the second side.
3. The roof tent according to claim 2, wherein, The energy storage assembly includes: Shell, connected to the inner wall of the ventilation pipe, the shell includes a first plate body and a second plate body, the first plate body faces the first side, the second plate body faces the second side, and heat dissipation holes are provided on the first plate body and the second plate body; Energy storage element, located inside the shell.
4. The roof tent according to claim 3, wherein, The shell further includes: Bottom plate, the first plate body and the second plate body are connected to the bottom plate, the number of the heat dissipation holes is multiple, and any one of the heat dissipation holes is spaced from the bottom plate.
5. The roof tent according to any one of claims 1 to 4, wherein, The roof tent further includes: First heat insulation layer, provided on the inner wall and / or the outer wall of the ventilation pipe.
6. The roof tent according to claim 3, wherein, The energy storage assembly further includes: Output panel, connected to the shell, a through hole is provided on the ventilation pipe, and the output panel is disposed opposite to the through hole.
7. The roof tent according to claim 6, wherein, The roof tent further includes: Sliding cover, slidably connected to the ventilation pipe, and the sliding cover is used to open or close the through hole.
8. The roof tent according to claim 7, wherein, The roof tent further includes: Second heat insulation layer, provided on the side of the sliding cover facing the output panel and / or the side of the sliding cover facing away from the output panel.
9. The roof tent according to any one of claims 1 to 4, wherein, A solar panel is provided on the side of the cover assembly away from the base. Based on the case where the ventilation pipe is provided on the base, the roof tent further includes: Elastic connection line, the first end of the elastic connection line is electrically connected to the solar panel, and the second end of the elastic connection line is electrically connected to the energy storage assembly.
10. A vehicle, wherein, Comprising: Vehicle body; The roof tent according to any one of claims 1 to 9, the roof tent is connected to the vehicle body.
Citation Information
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