Photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation functions

By using an active motor-driven thermal insulation layer and adjusting the angle of the photovoltaic panels, the thermal insulation problem of container energy-saving mobile homes under extreme weather conditions has been solved, improving comfort and power generation efficiency.

CN223647484UActive Publication Date: 2025-12-09刘沛业
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Patent Information

Application Number
CN202423275222.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2025-12-09
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

Traditional container-style energy-saving mobile homes lack effective heat insulation measures under extreme weather conditions, leading to a sharp drop in internal temperature, affecting comfort, and potentially damaging solar photovoltaic panels, thus reducing power generation efficiency.

Method used

Design an energy-saving mobile container house with heat insulation function. The active motor drives the active shaft to rotate, which drives the active gear and transmission components to realize the expansion and retraction of the heat insulation layer, covering the container body and photovoltaic panels. Combined with the adjustment component, the photovoltaic panels are adjusted to ensure that they are aligned with the direction of sunlight.

Benefits of technology

It effectively protects the container body and photovoltaic panels in low-temperature environments, improves comfort and durability, enhances insulation, and maximizes the utilization of solar energy resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of container energy-saving mobile houses, in particular to a photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation functions. Comprising a container body energy-saving mobile house, a heat insulation top plate, a mounting frame, a guide sliding rail, a guide sliding rod, a guide sliding block, a guide sliding seat, a driving motor, a driving shaft, a driving wheel, a driven shaft, a driven wheel, a transmission belt, a driving gear, a heat insulation and heat preservation layer, a fixed top rod, a solar photovoltaic panel, an adjusting assembly, a mounting assembly, a transmission assembly and a sliding assembly. A solar photovoltaic panel is arranged in the mounting assembly, a driven wheel is arranged on the side wall of one end of the driven shaft, the driven wheel is arranged in the transmission belt and rotationally connected with the transmission belt, and a heat insulation and heat preservation layer is arranged on the side wall of the driven shaft. Effective protection and heat insulation of the container body energy-saving mobile house and the solar photovoltaic panel in a low-temperature environment are realized.
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Description

Technical Field

[0001] This utility model relates to the field of container energy-saving mobile housing technology, and in particular to a photovoltaic integrated container energy-saving mobile housing with heat insulation and heat preservation functions. Background Technology

[0002] This energy-saving mobile house is an integrated container that combines thermal insulation and photovoltaic power generation technology. It is easy to transport using shipping container ships to achieve the goals of energy conservation, emission reduction, and zero energy consumption. At the same time, the container is designed with ease of installation in mind, ensuring that installation can be completed within half a day. In particular, the photovoltaic panels on the top adopt a station-based modular installation method. During transportation, it is used as a standard container, with all configurations packed inside and assembled upon arrival at the station to meet the needs of flexible and efficient use.

[0003] In practical use, especially in extreme weather conditions such as wind, sand, and snow, container-type energy-saving mobile homes and solar photovoltaic panels are easily affected by low external temperatures, causing a sharp drop in internal temperature, affecting the comfort of living or working, and potentially damaging the container-type energy-saving mobile homes and solar photovoltaic panels. Traditional container-type energy-saving mobile homes usually lack effective heat insulation measures and cannot effectively block the invasion of low external temperatures. At the same time, the power generation efficiency of solar photovoltaic panels will also be significantly reduced under low temperature conditions, which urgently needs improvement. This makes it difficult to effectively protect and insulate the container-type energy-saving mobile homes and solar photovoltaic panels.

[0004] Therefore, to address the aforementioned difficulties in effectively protecting and insulating the container-type energy-saving mobile house and solar photovoltaic panels, a photovoltaic integrated container-type energy-saving mobile house with heat insulation function can be designed. During use, in extreme weather conditions such as sandstorms and snow, the active motor drives the active shaft to rotate, which in turn drives the active gear. The active gear meshes with the transmission components, causing the guide slide to slide along the adjustment components. Smooth movement is achieved through the guidance of the guide rail, guide rod, and guide slider. Simultaneously, the guide slide drives the sliding components to slide synchronously via a fixed top rod. Furthermore, the active shaft also drives the active wheel to rotate, which in turn drives the driven wheel to rotate via a transmission belt. The driven wheel is fixed to the driven shaft. The rotation of the shaft causes the thermal insulation layer to gradually expand and cover the top of the container-type energy-saving mobile house and solar photovoltaic panels. When the thermal insulation layer is fully expanded, it can effectively block the impact of low external temperatures on the interior of the container-type energy-saving mobile house, while protecting the solar photovoltaic panels from low-temperature damage. In addition, the thermal insulation layer can also reduce heat loss and improve the insulation effect inside the container-type energy-saving mobile house. When the outside temperature rises or thermal insulation is no longer needed, the active motor can reverse the drive gear to retract the thermal insulation layer to one side of the mounting frame. In summary, this utility model, through ingenious design, achieves effective protection and thermal insulation for the container-type energy-saving mobile house and solar photovoltaic panels in low-temperature environments, improving the comfort and durability of the mobile house. Utility Model Content

[0005] To address the challenges of container-based energy-saving mobile homes, especially in extreme weather conditions like wind, sandstorms, and snow, where the container-based energy-saving mobile homes and solar photovoltaic panels are susceptible to the effects of low external temperatures, leading to a sharp drop in internal temperature and impacting living or working comfort, and potentially damaging the container-based energy-saving mobile homes and solar photovoltaic panels, traditional container-based energy-saving mobile homes typically lack effective heat insulation measures. They are unable to effectively block the invasion of low external temperatures, and the power generation efficiency of solar photovoltaic panels also decreases significantly under low temperature conditions. These issues urgently require improvement, making it difficult to effectively protect and insulate the container-based energy-saving mobile homes and solar photovoltaic panels.

[0006] The technical solution of this utility model is as follows: a photovoltaic integrated container energy-saving mobile house with heat insulation function, comprising a container body energy-saving mobile house, a heat-insulating roof plate, an installation frame, a guide rail, a guide slide rod, a guide slider, a guide slide seat, an active motor, an active shaft, an active wheel, a driven shaft, a driven wheel, a transmission belt, an active gear, a heat insulation layer, a fixed top rod, a solar photovoltaic panel, an adjustment component, an installation component, a transmission component, and a sliding component. A heat-insulating roof plate is provided on top of the container body energy-saving mobile house, and an installation frame is provided above the heat-insulating roof plate. Multiple sets of installation components are installed inside the installation frame, and solar photovoltaic panels are installed inside the installation components. An adjustment component is provided on one side of the installation frame, and a transmission component is provided above the adjustment component. A guide slide seat is provided on the side wall of the adjustment component, and an active motor is provided inside the guide slide seat. An active shaft is provided at the output end of the active motor. A drive gear is installed at one end of the shaft, meshing with an adjusting gear plate. A sliding assembly is installed on the other side of the mounting frame. A driven shaft is installed above the mounting frame, with one end rotatably connected to the inner wall of the guide slide and the other end rotatably connected to the inner wall of the sliding assembly. A drive wheel is installed on the side wall of the drive shaft, and a transmission belt is installed on the side wall of the drive wheel, rotatably connected to the drive wheel. A driven wheel is installed on the side wall of one end of the driven shaft, located inside the transmission belt and rotatably connected to it. A heat insulation layer is installed on the side wall of the driven shaft, with one end fixedly connected to the side wall of the driven shaft and the other end fixedly connected to one side inner wall of the mounting frame. A fixed top rod is installed above the heat insulation layer, with one end fixedly connected to the upper end of the guide slide and the other end fixedly connected to the upper end of the sliding assembly. (Extreme weather conditions such as wind, sand, and snow are mentioned.)

[0007] Preferably, during the use of the container energy-saving mobile house, when extreme weather conditions such as wind, sand, and snow occur, the active motor drives the active shaft to rotate, which in turn drives the active gear to rotate. The active gear meshes with the transmission component, causing the guide slide to slide along the adjustment component. Smooth movement is achieved through the guidance of the guide rail, guide rod, and guide slider. Simultaneously, the guide slide drives the sliding component to slide synchronously via a fixed top rod. Furthermore, the active shaft also drives the active wheel to rotate, which in turn drives the driven wheel to rotate via a transmission belt. The driven wheel is fixed to the driven shaft. The rotation of the driven shaft causes the thermal insulation layer to gradually expand and cover the top of the container energy-saving mobile house and the solar photovoltaic panels. When the thermal insulation layer is fully expanded, it effectively blocks the impact of low external temperatures on the interior of the container energy-saving mobile house. This design not only protects the solar photovoltaic panels from low-temperature damage, but also reduces heat loss and improves the insulation effect inside the container-type energy-saving mobile house. When the outside temperature rises or insulation is no longer needed, the active motor can reverse the drive gear to retract the insulation layer to one side of the mounting frame. Furthermore, the starting adjustment component can drive multiple sets of mounting components to adjust and rotate, which in turn drives multiple sets of solar photovoltaic panels to adjust and rotate, ensuring they can accurately capture sunlight according to its direction and maximize the utilization of solar energy resources. In summary, this invention, through ingenious design, achieves effective protection and insulation of the container-type energy-saving mobile house and solar photovoltaic panels in low-temperature environments, improving the comfort and durability of the mobile house.

[0008] Preferably, the adjustment assembly includes an adjustment slide rail, an adjustment motor, and a protective housing. The adjustment slide rail is provided on one side of the mounting frame, and the protective housing is provided at one end of the adjustment slide rail. The adjustment motor is located inside the protective housing.

[0009] Preferably, the adjustment assembly also includes an adjustment screw and an adjustment slider. The output end of the adjustment motor is provided with an adjustment screw, and the side wall of the adjustment screw is provided with an adjustment slider, which is threadedly connected to the adjustment screw.

[0010] Preferably, the mounting assembly includes an adjustment shaft and an adjustment frame. Multiple adjustment shafts are arranged inside the mounting frame, and the adjustment frame is arranged on the side wall of the adjustment shaft. The solar photovoltaic panel is arranged inside the adjustment frame.

[0011] Preferably, the transmission assembly includes an adjusting gear and an adjusting toothed plate. The adjusting toothed plate is disposed above the adjusting slider, and the adjusting gear is disposed at one end of the adjusting shaft. The adjusting gear meshes with the adjusting toothed plate.

[0012] Preferably, the sliding assembly includes a sliding rail, a sliding rod, and a sliding seat. A sliding rail is provided on the other side of the mounting frame, a sliding rod is provided inside the sliding rail, and a sliding seat is provided on the side wall of the sliding rod.

[0013] Preferably, the sliding block and the sliding rod are slidably connected, the other end of the driven shaft is rotatably connected to the inner wall of the sliding block, and the other end of the fixed top rod is fixedly connected to the upper end of the sliding block.

[0014] The beneficial effects of this utility model are:

[0015] During the use of the containerized energy-saving mobile house, in the event of extreme weather conditions such as wind, sand, or snow, the active motor drives the active shaft to rotate. The active shaft, in turn, drives the active gear to rotate. The active gear meshes with the transmission components, causing the guide slide to slide along the adjusting components. Smooth movement is achieved through the guidance of the guide rails, guide rods, and guide sliders. Simultaneously, the guide slide, via a fixed top rod, drives the sliding components to slide synchronously. Furthermore, the active shaft also drives the active wheel to rotate, which in turn drives the driven wheel via a transmission belt. The driven wheel is fixed to the driven shaft. The rotation of the driven shaft causes the thermal insulation layer to gradually expand and cover the top of the containerized energy-saving mobile house and the solar photovoltaic panels. When the thermal insulation layer is fully expanded, it effectively blocks the impact of low external temperatures on the interior of the containerized energy-saving mobile house. This invention protects the solar photovoltaic panels from low-temperature damage. Furthermore, the thermal insulation layer reduces heat loss and improves the insulation effect inside the container-type energy-saving mobile house. When the outside temperature rises or the insulation is no longer needed, the active motor can reverse the drive gear, causing the thermal insulation layer to retract to one side of the mounting frame. Additionally, the starting adjustment component can drive multiple sets of mounting components to adjust and rotate, which in turn drives multiple sets of solar photovoltaic panels to adjust and rotate, ensuring they can accurately capture sunlight according to its direction and maximize the utilization of solar energy resources. In summary, this invention, through ingenious design, achieves effective protection and thermal insulation for the container-type energy-saving mobile house and solar photovoltaic panels in low-temperature environments, improving the comfort and durability of the mobile house. Attached Figure Description

[0016] Figure 1 The diagram shown is a first three-dimensional structural schematic of a photovoltaic integrated container energy-saving mobile house with heat insulation function according to this utility model.

[0017] Figure 2 The diagram shown is a partial three-dimensional structural schematic of a photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation function according to this utility model.

[0018] Figure 3The diagram shown is a partial three-dimensional structural schematic of a photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation function according to this utility model.

[0019] Figure 4 The diagram shown is a partial three-dimensional structural schematic of a photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation function according to this utility model.

[0020] Figure 5 The diagram shown is a partial three-dimensional structural schematic of a photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation functions according to this utility model.

[0021] Figure 6 The diagram shown is a partial three-dimensional structural schematic of a photovoltaic integrated container energy-saving mobile house with heat insulation and heat preservation function according to this utility model.

[0022] Explanation of reference numerals in the attached drawings: 1. Container-type energy-saving mobile house; 2. Insulated roof panel; 3. Mounting frame; 4. Guide rail; 5. Guide rod; 6. Guide slider; 7. Guide slide block; 8. Drive motor; 9. Drive shaft; 10. Drive wheel; 11. Driven shaft; 12. Driven wheel; 13. Transmission belt; 14. Drive gear; 15. Thermal insulation layer; 16. Fixed top rod; 17. Solar photovoltaic panel; 101. Adjustable rail; 102. Adjustable motor; 103. Protective shell; 104. Adjustable screw; 105. Adjustable slider; 201. Adjustable shaft; 202. Adjustable frame; 301. Adjustable gear; 302. Adjustable toothed plate; 401. Sliding rail; 402. Sliding rod; 403. Sliding slide block. Detailed Implementation

[0023] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0024] Please see Figures 1-6This utility model provides an embodiment: a photovoltaic integrated container energy-saving mobile house with heat insulation function, including a container body energy-saving mobile house 1, a heat-insulating roof plate 2, an installation frame 3, a guide rail 4, a guide slide rod 5, a guide slider 6, a guide slide seat 7, an active motor 8, an active shaft 9, an active wheel 10, a driven shaft 11, a driven wheel 12, a transmission belt 13, an active gear 14, a heat insulation layer 15, a fixed top rod 16, a solar photovoltaic panel 17, an adjustment component, an installation component, a transmission component, and a sliding component. The container body energy-saving mobile house 1 has a heat-insulating roof plate 2 on top, and an installation frame 3 on top of the heat-insulating roof plate 2. Multiple sets of installation components are installed inside the installation frame 3, and solar photovoltaic panels 17 are installed inside the installation components. An adjustment component is installed on one side of the installation frame 3, and a transmission component is installed above the adjustment component. A guide slide seat 7 is installed on the side wall of the adjustment component, and an active motor 8 is installed inside the guide slide seat 7. An active shaft 9 is installed at the output end of the active motor 8, and an active shaft 9 is installed at one end of the active shaft 9. Gear 14, the driving gear 14 meshes with the adjusting gear plate 302. A sliding assembly is provided on the other side of the mounting frame 3. A driven shaft 11 is provided above the mounting frame 3. One end of the driven shaft 11 is rotatably connected to the inner wall of the guide slide 7, and the other end of the driven shaft 11 is rotatably connected to the inner wall of the sliding assembly. A driving wheel 10 is provided on the side wall of the driving shaft 9, and a transmission belt 13 is provided on the side wall of the driving wheel 10. The driving wheel 10 is rotatably connected to the transmission belt 13. A driven wheel 12 is provided on the side wall of one end of the driven shaft 11. The driven wheel 12 is located inside the transmission belt 13 and is rotatably connected to the transmission belt 13. A heat insulation layer 15 is provided on the side wall of the driven shaft 11. One end of the heat insulation layer 15 is fixedly connected to the side wall of the driven shaft 11, and the other end of the heat insulation layer 15 is fixedly connected to the inner wall of one side of the mounting frame 3. A fixed top rod 16 is provided above the heat insulation layer 15. One end of the fixed top rod 16 is fixedly connected to the upper end of the guide slide 7, and the other end of the fixed top rod 16 is fixedly connected to the upper end of the sliding assembly.

[0025] Please see Figure 2The adjustment assembly includes an adjustment slide rail 101, an adjustment motor 102, and a protective housing 103. The adjustment slide rail 101 is located on one side of the mounting frame 3, and the protective housing 103 is located at one end of the adjustment slide rail 101. The adjustment motor 102 is housed inside the protective housing 103, which provides safety protection for the adjustment motor 102. The adjustment assembly also includes an adjustment screw 104 and an adjustment slider 105. The adjustment screw 104 is located at the output end of the adjustment motor 102, and its side wall has… An adjusting slider 105 is provided, which is threadedly connected to an adjusting screw 104. When the adjusting motor 102 is started, the adjusting slider 105 can be moved in parallel by the adjusting screw 104. The mounting assembly includes an adjusting shaft 201 and an adjusting frame 202. Multiple adjusting shafts 201 are provided inside the mounting frame 3. The adjusting frame 202 is provided on the side wall of the adjusting shaft 201. The solar photovoltaic panel 17 is set inside the adjusting frame 202 and is stably installed by the adjusting frame 202.

[0026] Please see Figures 3-6 The transmission assembly includes an adjusting gear 301 and an adjusting gear plate 302. The adjusting gear plate 302 is located above the adjusting slider 105, and the adjusting gear 301 is located at one end of the adjusting shaft 201. The adjusting gear 301 meshes with the adjusting gear plate 302. The adjusting screw 104 can drive the adjusting gear plate 302 to move along the adjusting slide rail 101 via the adjusting slider 105. The movement of the adjusting gear plate 302 can drive multiple sets of adjusting gears 301 to rotate synchronously. The multiple sets of adjusting gears 301 can drive multiple sets of adjusting shafts 201 and their adjusting frames 202 to rotate and adjust their angles. The solar photovoltaic panels 17 installed in the adjusting frame 202 adjust their angles accordingly to ensure that they can adjust according to the direction of sunlight. To achieve precise capture and maintain the optimal lighting angle, the sliding assembly includes a sliding rail 401, a sliding rod 402, and a sliding seat 403. The sliding rail 401 is located on the other side of the mounting frame 3. The sliding rod 402 is located inside the sliding rail 401, and the sliding seat 403 is located on the side wall of the sliding rod 402. The sliding seat 403 can be slidably guided by the sliding rod 402. The sliding seat 403 is slidably connected to the sliding rod 402. The other end of the driven shaft 11 is rotatably connected to the inner wall of the sliding seat 403. The other end of the fixed top rod 16 is fixedly connected to the upper end of the sliding seat 403. The sliding seat 403 can be slidably guided by the sliding rod 402.

[0027] When the container energy-saving mobile house is in use, and extreme weather conditions such as wind, sand, or snow occur, the active motor 8 is activated to drive the active shaft 9 to rotate. The active shaft 9 then drives the active gear 14 to rotate. The active gear 14 meshes with the adjusting gear plate 302, causing the guide slide 7 to slide along the adjusting slide rail 101. The guide slide 7 moves smoothly through the guidance of the guide rail 4, guide rod 5, and guide slider 6. Simultaneously, the guide slide 7 is connected to the sliding slide 403 via the fixed top rod 16, causing the sliding slide 403 to slide synchronously under the guidance of the sliding rail 401 and sliding rod 402.

[0028] In addition, the drive shaft 9 also drives the drive wheel 10 to rotate. The drive wheel 10 drives the driven wheel 12 to rotate via the transmission belt 13. The driven wheel 12 is fixed on the driven shaft 11. The rotation of the driven shaft 11 causes the heat insulation layer 15 on it to gradually expand and cover the top of the container-type energy-saving mobile house 1 and the solar photovoltaic panel 17.

[0029] When the thermal insulation layer 15 is fully deployed, it can effectively block the impact of low external temperatures on the interior of the container-type energy-saving mobile house 1, while protecting the solar photovoltaic panels 17 from low-temperature damage. Furthermore, the thermal insulation layer 15 can reduce heat loss and improve the internal insulation effect of the container-type energy-saving mobile house 1.

[0030] When the outside temperature rises or the insulation is no longer needed, the active motor 8 can reverse the direction of the active gear 14, which will then cause the insulation layer 15 to retract to one side of the mounting frame 3.

[0031] Furthermore, starting the adjusting motor 102 will drive the adjusting screw 104 to rotate. The adjusting screw 104, through the adjusting slider 105, will drive the adjusting gear plate 302 to move along the adjusting slide rail 101. The movement of the adjusting gear plate 302 will drive multiple sets of adjusting gears 301 to rotate synchronously. These multiple sets of adjusting gears 301 will then drive multiple sets of adjusting shafts 201 and their adjusting frames 202 to rotate and adjust their angles. The solar photovoltaic panels 17 installed in the adjusting frames 202 will adjust their angles accordingly, ensuring that they can accurately capture sunlight according to its direction and always maintain the optimal light-receiving angle. This will improve the energy storage efficiency of solar energy, achieving both heat insulation and thermal preservation of the container-type energy-saving mobile house 1, while maximizing the utilization of solar energy resources.

[0032] In summary, through ingenious design, this utility model effectively protects and insulates the container-type energy-saving mobile house 1 and the solar photovoltaic panel 17 in low-temperature environments, thereby improving the comfort and durability of the mobile house.

[0033] Through the above steps, when the container energy-saving mobile house is in use, and extreme weather conditions such as wind, sand, and snow occur, the active motor 8 is activated to drive the active shaft 9 to rotate. The active shaft 9 then drives the active gear 14 to rotate. The active gear 14 meshes with the transmission component, causing the guide slide 7 to slide along the adjustment component. Smooth movement is achieved through the guidance of the guide rail 4, guide rod 5, and guide slider 6. Simultaneously, the guide slide 7 drives the sliding component to slide synchronously via the fixed top rod 16. Furthermore, the active shaft 9 also drives the active wheel 10 to rotate. The active wheel 10 drives the driven wheel 12 to rotate via the transmission belt 13. The driven wheel 12 is fixed to the driven shaft 11. The rotation of the driven shaft 11 causes the heat insulation layer 15 on it to gradually expand and cover the top of the container energy-saving mobile house 1 and the solar photovoltaic panel 17. When the heat insulation layer 15 is fully expanded, it can effectively block the low temperatures from affecting the container. The energy-saving mobile house 1 is protected from the effects of low temperatures, and the heat insulation layer 15 also reduces heat loss and improves the heat preservation effect inside the container-type energy-saving mobile house 1. When the outside temperature rises or the heat preservation is no longer needed, the active motor 8 can reverse the drive gear 14 to drive the heat insulation layer 15 back to one side of the mounting frame 3. In addition, the start adjustment component can drive multiple sets of installation components to adjust and rotate through multiple sets of transmission components. Through multiple sets of installation components, multiple sets of solar photovoltaic panels 17 can be adjusted and rotated to ensure that they can accurately capture the direction of sunlight and maximize the use of solar energy resources. In summary, this utility model, through ingenious design, achieves effective protection and heat preservation of the container-type energy-saving mobile house 1 and solar photovoltaic panels 17 in low-temperature environments, improving the comfort and durability of the mobile house.

[0034] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A photovoltaic integrated container energy-saving mobile house with heat insulation function, comprising a container body energy-saving mobile house (1), characterized in that: It also includes an insulated roof panel (2), a mounting frame (3), a guide rail (4), a guide slide rod (5), a guide slider (6), a guide slide block (7), an active motor (8), an active shaft (9), an active wheel (10), a driven shaft (11), a driven wheel (12), a transmission belt (13), an active gear (14), an insulation layer (15), a fixed top rod (16), a solar photovoltaic panel (17), an adjustment assembly, an installation assembly, a transmission assembly, and a sliding assembly. An insulated roof panel (2) is installed above the container-type energy-saving mobile house (1). A mounting frame (3) is provided above the mounting plate (302). Multiple mounting components are installed inside the mounting frame (3). Solar photovoltaic panels (17) are installed inside the mounting components. An adjustment component is provided on one side of the mounting frame (3). A transmission component is provided above the adjustment component. A guide slide (7) is provided on the side wall of the adjustment component. An active motor (8) is provided inside the guide slide (7). An active shaft (9) is provided at the output end of the active motor (8). An active gear (14) is provided at one end of the active shaft (9). The active gear (14) meshes with the adjustment gear plate (302). A sliding assembly is provided on the other side of the mounting frame (3). A driven shaft (11) is provided above the mounting frame (3). One end of the driven shaft (11) is rotatably connected to the inner wall of the guide slide (7), and the other end of the driven shaft (11) is rotatably connected to the inner wall of the sliding assembly. A drive wheel (10) is provided on the side wall of the drive shaft (9), and a transmission belt (13) is provided on the side wall of the drive wheel (10). The drive wheel (10) and the transmission belt (13) are rotatably connected. A driven wheel (12) is provided on the side wall of one end of the driven shaft (11). The driven wheel (12) is located on the transmission belt. Inside the drive belt (13), the driven wheel (12) is rotatably connected to the drive belt (13). A heat insulation layer (15) is provided on the side wall of the driven shaft (11). One end of the heat insulation layer (15) is fixedly connected to the side wall of the driven shaft (11), and the other end of the heat insulation layer (15) is fixedly connected to the inner wall of one side of the mounting frame (3). A fixed top rod (16) is provided above the heat insulation layer (15). One end of the fixed top rod (16) is fixedly connected to the upper end of the guide slide (7), and the other end of the fixed top rod (16) is fixedly connected to the upper end of the sliding assembly.

2. The photovoltaic integrated container energy-saving mobile house with heat insulation function according to claim 1, characterized in that: The adjustment assembly includes an adjustment slide rail (101), an adjustment motor (102), and a protective housing (103). The adjustment slide rail (101) is provided on one side of the mounting frame (3), and the protective housing (103) is provided at one end of the adjustment slide rail (101). The adjustment motor (102) is provided inside the protective housing (103).

3. The photovoltaic integrated container energy-saving mobile house with heat insulation function according to claim 2, characterized in that: The adjustment assembly also includes an adjustment screw (104) and an adjustment slider (105). The output end of the adjustment motor (102) is provided with the adjustment screw (104), and the side wall of the adjustment screw (104) is provided with the adjustment slider (105). The adjustment slider (105) is threadedly connected to the adjustment screw (104).

4. A photovoltaic integrated container energy-saving mobile house with heat insulation function according to claim 2, characterized in that: The mounting assembly includes an adjustment shaft (201) and an adjustment frame (202). Multiple sets of adjustment shafts (201) are provided inside the mounting frame (3). The adjustment frame (202) is provided on the side wall of the adjustment shaft (201). The solar photovoltaic panel (17) is located inside the adjustment frame (202).

5. A photovoltaic integrated container energy-saving mobile house with heat insulation function according to claim 3, characterized in that: The transmission assembly includes an adjusting gear (301) and an adjusting toothed plate (302). The adjusting toothed plate (302) is provided above the adjusting slider (105), and the adjusting gear (301) is provided at one end of the adjusting shaft (201). The adjusting gear (301) meshes with the adjusting toothed plate (302).

6. A photovoltaic integrated container energy-saving mobile house with heat insulation function according to claim 3, characterized in that: The sliding assembly includes a sliding rail (401), a sliding rod (402), and a sliding seat (403). The sliding rail (401) is provided on the other side of the mounting frame (3). The sliding rod (402) is provided inside the sliding rail (401), and the sliding seat (403) is provided on the side wall of the sliding rod (402).

7. A photovoltaic integrated container energy-saving mobile house with heat insulation function according to claim 6, characterized in that: The sliding slide (403) is slidably connected to the sliding rod (402), the other end of the driven shaft (11) is rotatably connected to the inner wall of the sliding slide (403), and the other end of the fixed top rod (16) is fixedly connected to the upper end of the sliding slide (403).