An automatically adjustable temperature-controlled reflective device

CN122805066APending Publication Date: 2026-09-25SHENZHEN RESEARCH INSTITUTE OF NORTHWEST A & F UNIVERSITY
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Patent Information

Application Number
CN202611124403.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-07-28
Publication Date
2026-09-25

AI Technical Summary

Technical Problem

本发明实施例的目的是提供一种可自动调节的温控反射装置,旨在至少解决现有遮阳伞天气变化拆装调整过程复杂、不能根据天气变化情况自动调节的问题

Benefits of technology

相对于现有技术而言,本发明实施例提供的可自动调节的温控反射装置,包括第一支架机构、第一驱动机构和伞体机构,第一驱动机构包括第一传动组件和第一电机;伞体机构包括基座、多组伞骨架组件和安装于伞骨架组件的伞盖,将伞体机构设置在第一支架机构的顶端部,并且每组伞骨架组件可转动的安装在基座,多组伞骨架组件分设于第一传动组件在X轴的相对两侧,位于第一传动组件同侧的多组伞骨架组件沿着X轴的延伸方向成排布设,因此第一电机驱动第一传动组件带动第一传动组件相对两侧的伞骨架组件转动时,可以实现伞盖的开闭,从而可以根据天气变化情况自动调节伞盖的开闭。

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Abstract

The present application relates to temperature control device technical field, specifically disclose a kind of automatically regulated temperature control reflection device.The temperature control reflection device includes first support mechanism, first drive mechanism and umbrella body mechanism;First support mechanism has the bottom end for fixing first support mechanism to installation position and the top end opposite to bottom end and provided with umbrella body mechanism;First drive mechanism includes first transmission assembly and first motor;Umbrella body mechanism includes base, multiple groups of umbrella frame assembly and umbrella cover installed on umbrella frame assembly;Each group of umbrella frame assembly can be rotatably mounted on base;Multiple groups of umbrella frame assembly are arranged on the opposite sides of first transmission assembly along X-axis, and multiple groups of umbrella frame assembly on the same side of first transmission assembly are arranged in rows along the extension direction of X-axis;When first motor drives first transmission assembly to reciprocate along the extension direction of X-axis, the umbrella frame assembly on the opposite sides is rotated to open and close umbrella cover.The present temperature control reflection device can be automatically regulated.
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Description

Technical Field

[0001] This invention relates to the field of temperature control equipment technology, and in particular to an automatically adjustable temperature control reflective device. Background Technology

[0002] Existing outdoor parasols are fixed in place to provide shade or rain protection, preventing people beneath them from direct sunlight or getting wet, thus meeting the needs of outdoor cafes, beach lounges, camping, and other similar settings. However, some users want to close the parasols after the weather changes from sunny to cloudy, requiring manual operation. Furthermore, the angle of sunlight changes throughout the day, and current parasols cannot adjust the canopy angle. Changes in temperature, UV radiation, wind speed, wind direction, and rainfall also mean that current parasols cannot meet users' individual needs. To address these various requirements, parasols often need to be disassembled and reassembled, a complex process that urgently needs improvement. Summary of the Invention The purpose of this invention is to provide an automatically adjustable temperature-controlled reflective device, which aims to at least solve the problems of existing sun umbrellas having complex disassembly and adjustment processes for weather changes and not being able to automatically adjust according to weather conditions.

[0003] To achieve the above objectives, the technical solutions adopted in the embodiments of the present invention are as follows: An automatically adjustable temperature-controlled reflective device includes a first support mechanism, a first drive mechanism, and an umbrella mechanism; The first support mechanism has a bottom end portion and a top end portion opposite to the bottom end portion, the bottom end portion being used to fix the first support mechanism to the installation position; The first driving mechanism includes a first motor and a first transmission assembly. The first motor is used to drive the first transmission assembly to reciprocate along the extension direction of the X-axis. The umbrella body mechanism is located at the top end and includes a base, an umbrella canopy, and multiple sets of umbrella frame components; The canopy is mounted on the umbrella frame assembly; Each of the umbrella frame assemblies is rotatably mounted on the base; Multiple sets of umbrella frame assemblies are respectively disposed on opposite sides of the first transmission assembly on the X-axis. At least two sets of umbrella frame assemblies are provided on each side of the first transmission assembly. Multiple sets of umbrella frame assemblies located on the same side of the first transmission assembly are arranged in rows at intervals along the extension direction of the X-axis. The first transmission component is used to drive the umbrella frame components located on opposite sides of the first transmission component to rotate relative to the base, thereby driving the umbrella canopy to open and close.

[0004] In one possible implementation, each set of the umbrella frame assemblies includes an umbrella frame, a first bearing, and a second transmission component; The first bearing is mounted on the base; The umbrella frame has a mounting part and a supporting part. One end of the mounting part passes through the central hole of the first bearing, and the other end is connected to the supporting part. The supporting part extends away from the first bearing to support the umbrella canopy. The second transmission component is mounted on the mounting portion, and the first transmission assembly is used to drive the second transmission component to rotate.

[0005] In one possible implementation, the first transmission assembly includes a guide and a first transmission member. The guide extends along the extension direction of the X-axis and is mounted on the base. The first transmission member is movably mounted on the guide. The first transmission member has a transmission part on each of the opposite sides of the X-axis, and each transmission part is correspondingly connected to at least one second transmission member disposed on the same side.

[0006] In one possible implementation, the transmission part is a rack structure; the second transmission member is a gear structure, and the rack structure and the gear structure are paired and meshed.

[0007] In one possible implementation, the number of umbrella frame assemblies is four to ten, with two to five sets of umbrella frame assemblies provided on each side of the first transmission assembly; and / or, The first motor is mounted on the base.

[0008] In one possible implementation, the automatically adjustable temperature-controlled reflective device further includes a control system; The control system includes a controller and a detection component. The detection component is used to detect information around the automatically adjustable temperature-controlled reflective device and feed back the detected information to the controller. The controller is used to control the first drive mechanism to work.

[0009] In one possible implementation, the automatically adjustable temperature-controlled reflective device further includes a second support mechanism and a second drive mechanism; The second support mechanism is movably connected to the first support mechanism; the base is connected to the second support mechanism; The second drive mechanism is connected to the second support mechanism and electrically connected to the controller, and is used to drive the umbrella mechanism to rotate about the X-axis.

[0010] In one possible implementation, the automatically adjustable temperature-controlled reflective device further includes a second support mechanism and a third drive mechanism; The second support mechanism is movably connected to the first support mechanism; the base is connected to the second support mechanism; The third drive mechanism is installed at the top end and connected to the second support mechanism and electrically connected to the controller, and is used to drive the second support mechanism to drive the umbrella mechanism to rotate around the Z-axis.

[0011] In one possible implementation, the detection component includes: A first detector, signal-connected to the controller, is used to detect temperature information and feed back the detected temperature information to the controller; and / or, The second detector, connected to the controller, is used to detect wind speed and direction information and feed back the detected wind speed and direction information to the controller; and / or, A third detector, signal-connected to the controller, is used to detect ultraviolet (UV) information and feed back the detected UV information to the controller; and / or, A fourth detector, connected to the controller, is used to detect the angle of sunlight and feed back the detected angle of sunlight to the controller; and / or, The fifth detector is connected to the controller and is used to detect rainfall or dew information and feed back the detected rainfall or dew information to the controller.

[0012] In one possible implementation, the automatically adjustable temperature-controlled reflector further includes a power source for supplying power to the control system.

[0013] The beneficial effects of this invention are as follows: Compared to existing technologies, the automatically adjustable temperature-controlled reflective device provided in this embodiment of the invention includes a first support mechanism, a first drive mechanism, and an umbrella body mechanism. The first drive mechanism includes a first transmission component and a first motor. The umbrella body mechanism includes a base, multiple sets of umbrella frame components, and an umbrella canopy mounted on the umbrella frame components. The umbrella body mechanism is located at the top of the first support mechanism, and each set of umbrella frame components is rotatably mounted on the base. The multiple sets of umbrella frame components are located on opposite sides of the first transmission component on the X-axis. The multiple sets of umbrella frame components located on the same side of the first transmission component are arranged in a row along the extension direction of the X-axis. Therefore, when the first motor drives the first transmission component to rotate the umbrella frame components on opposite sides of the first transmission component, the opening and closing of the umbrella can be realized, thereby automatically adjusting the opening and closing of the umbrella canopy according to weather changes. Attached Figure Description

[0014] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0015] Figure 1 A side view schematic diagram of an automatically adjustable temperature-controlled reflective device provided in an embodiment of the present invention; Figure 2 An exploded structural diagram of an automatically adjustable temperature-controlled reflective device provided in an embodiment of the present invention; Figure 3 This is an exploded structural diagram of the umbrella mechanism in an embodiment of the present invention; Figure 4 This is a three-dimensional structural diagram of the first driving mechanism in an embodiment of the present invention; Figure 5 This is a three-dimensional structural diagram of the base in an embodiment of the present invention; Figure 6 This is a three-dimensional structural diagram of the umbrella frame assembly in an embodiment of the present invention; Figure 7 This is a block diagram of the control system and power supply in an embodiment of the present invention.

[0016] Figure label: 10. Automatically adjustable temperature control reflector; 11. First support mechanism; 1101. Bottom end; 1102. Top end; 12. First drive mechanism; 121. First transmission assembly; 1211. Guide member; 1212. First transmission member; 1213. Slider; 122. First motor; 13. Umbrella body mechanism; 131. Base; 132. Umbrella canopy; 133. Umbrella frame assembly; 1331. Umbrella frame; 13311. Mounting part; 13312. Bearing part; 1332. First bearing; 1333. Second transmission component; 1334. Bearing seat; 14. Control system; 141. Controller; 142. Detection assembly; 1421. First detector; 1422. Second detector; 1423. Third detector; 1424. Fourth detector; 1425. Fifth detector; 15. Second support mechanism; 151. First plate; 152. Second plate; 153. Third plate; 16. Second drive mechanism; 17. Third drive mechanism; 18. Power supply. Detailed Implementation

[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0018] Details of the automatically adjustable temperature-controlled reflective device 10 and its components provided in this embodiment of the invention are as follows: Figures 1 to 7 As shown.

[0019] To clearly explain the technical solution of this embodiment, it is necessary to define the three-dimensional space of the automatically adjustable temperature control reflective device 10, that is, to define the automatically adjustable temperature control reflective device 10 as having an X-axis, a Y-axis, and a Z-axis, with the X-axis, Y-axis, and Z-axis intersecting each other. In some embodiments, the X-axis, Y-axis, and Z-axis are mutually perpendicular. For example, the X-axis can be a horizontal axis, the Y-axis can be another horizontal axis perpendicular to the X-axis, the XY plane containing the X-axis and Y-axis constitutes a horizontal plane, and the Z-axis is a vertical direction, or the height direction.

[0020] Please see Figure 1 , Figure 2 , Figure 3 and Figure 4 The automatically adjustable temperature-controlled reflective device 10 provided in this embodiment of the invention includes a first support mechanism 11, a first drive mechanism 12, and an umbrella mechanism 13. The first support mechanism 11 has a bottom end portion 1101 and a top end portion 1102, which are disposed opposite to each other. The bottom end portion 1101 is used to fix the first support mechanism 11 to the installation position, while the top end portion 1102 is used to install the umbrella mechanism 13. The first drive mechanism 12 includes a first motor 122 and a first transmission assembly 121. The first motor 122 is used to drive the first transmission assembly 121 to reciprocate along the extension direction of the X-axis to drive the umbrella mechanism 13 to open and close. The umbrella mechanism 13 is located at the top end 1102 and includes a base 131, an umbrella cover 132, and multiple sets of umbrella frame assemblies 133. The umbrella cover 132 is mounted on the umbrella frame assemblies 133. Each set of umbrella frame assemblies 133 is rotatably mounted on the base 131. The multiple sets of umbrella frame assemblies 133 are distributed on opposite sides of the first transmission assembly 121 along the X-axis. Each side of the first transmission assembly 121 has at least two sets of umbrella frame assemblies 133, and the multiple sets of umbrella frame assemblies 133 located on the same side of the first transmission assembly 121 are arranged in a row along the extension direction of the X-axis. The first transmission assembly 121 is used to drive the umbrella frame assemblies 133 located on opposite sides of the first transmission assembly 121 to rotate relative to the base 131, thereby driving the umbrella cover 132 to open and close.

[0021] Please see Figure 3, Figure 6 , Figure 5 In some embodiments, each umbrella frame assembly 133 includes an umbrella frame 1331, a first bearing 1332, and a second transmission member 1333. The first bearing 1332 is mounted on the base 131; the umbrella frame 1331 has a mounting portion 13311 and a supporting portion 13312; one end of the mounting portion 13311 passes through the central hole of the first bearing 1332, and the other end is connected to the supporting portion 13312; the supporting portion 13312 extends away from the first bearing 1332 to support the umbrella canopy 132; the second transmission member 1333 is mounted on the mounting portion 13311, and the first transmission assembly 121 drives the second transmission member 1333 to rotate. In some embodiments, the support portion 13312 can extend in a direction parallel to the XY plane or in a direction at an angle to the XY plane. For example, the distance between the support portion 13312 and the plane containing the top surface of the base 131 can gradually increase along the extension length direction, so that when the umbrella cover 132 in the open state is cut along the extension direction of the Z axis, the cut surface is arc-shaped. In some embodiments, the base 131 is equipped with a bearing seat 1334, so that the first bearing 1332 can be mounted on the base 131. When the first motor 122 drives the first transmission assembly 121 to reciprocate in the extension direction of the X axis, the first transmission assembly 121 drives the second transmission member 1333 to rotate, and the second transmission member 1333 drives the umbrella frame 1331 to rotate clockwise or counterclockwise around the central axis of the first bearing 1332 (see details). Figure 1 , Figure 3 The dotted arrow (symbolizing the rotation of the umbrella frame) rotates, thereby causing the canopy 132 to open and close. Specifically, one side of the umbrella frame 1331 of the first transmission assembly 121 rotates clockwise, while the other side rotates counterclockwise, closing the canopy 132; conversely, the other side rotates clockwise, opening the canopy 132. In some embodiments, the canopy 132 comprises multiple pieces, each in a fan shape. A canopy 132 is positioned between two adjacent umbrella frames 1331 on the same side of the first transmission assembly 121 and is connected to the two adjacent umbrella frames 1331.

[0022] Please see Figure 2 , Figure 3 , Figure 4In some embodiments, the first transmission assembly 121 includes a guide member 1211 and a first transmission member 1212. The guide member 1211 extends along the X-axis and is mounted on the base 131. The first transmission member 1212 is movably mounted on the guide member 1211, allowing it to travel along the X-axis. The first transmission member 1212 has transmission portions on opposite sides of the X-axis, each transmission portion correspondingly connected to at least one second transmission member 1333 located on the same side. In some embodiments, the first transmission assembly 121 further includes a slider 1213, which is slidably mounted on the guide member 1211, and the first transmission member 1212 is connected to the slider 1213. In some embodiments, the guide member 1211 may be a guide rail.

[0023] In some embodiments, the transmission unit is a rack and pinion structure; the second transmission member 1333 is a gear structure. The rack and pinion structure mesh with each other, thereby converting the linear motion of the first transmission component 121 into the rotational motion of the second transmission member 1333, ultimately driving the umbrella frame 1331 to rotate. In some embodiments, the rack and pinion structure drives the second transmission member 1333, which is positioned in a first position on each side along the X-axis extension direction, to rotate. Thus, under the rotational action of the second transmission member 1333 in the first position, the umbrella canopy 132 is moved along... Figure 1 or Figure 3 The dotted arc direction retracts towards the second transmission member 1333 located at the second and third positions on the same side, causing the umbrella frame 1331 at the second and third positions on the same side to rotate, further driving the canopy 132 to close until the entire canopy 132 is closed. When it is necessary to open the canopy 132, the rack and pinion structure drives the second transmission member 1333 located at the first position on each side to rotate in the opposite direction along the X-axis extension direction. Thus, under the rotation of the second transmission member 1333 located at the first position, the canopy 132 on the opposite side moves along... Figure 1 or Figure 3 The dotted arcs move towards each other, causing the second transmission components 1333 on their respective sides to rotate in the second and third positions, and causing the umbrella frames 1331 on the same side to rotate in the second and third positions, further driving the canopy 132 to open, and finally causing the entire canopy 132 to be opened.

[0024] In some alternative embodiments, the first transmission component 121 can be a common conveyor belt structure in the mechanical field, and therefore will not be described in detail here. The conveyor belt of the conveyor belt structure is fixed with a rack and pinion section. The first motor 122 drives the conveyor belt structure to drive the second transmission component 1333 to rotate, thereby realizing the opening and closing of the umbrella cover 132.

[0025] Please see Figure 1 , Figure 2 , Figure 3In some embodiments, the number of umbrella frame assemblies 133 is four to ten, and each side of the first transmission assembly 121 is provided with two to five sets of umbrella frame assemblies 133. For example, if the number of umbrella frame assemblies 133 is four, then each side of the first transmission assembly 121 is provided with two sets of umbrella frame assemblies 133; or if the number of umbrella frame assemblies 133 is six, then each side of the first transmission assembly 121 is provided with three sets of umbrella frame assemblies 133; or if the number of umbrella frame assemblies 133 is eight, then each side of the first transmission assembly 121 is provided with four sets of umbrella frame assemblies 133; or if the number of umbrella frame assemblies 133 is ten, then each side of the first transmission assembly 121 is provided with five sets of umbrella frame assemblies 133.

[0026] Please see Figure 4 , Figure 5 In some embodiments, the first motor 122 is mounted on the base 131. The first motor 122 can be a stepper motor, a cylinder, or a motor structure commonly used in the mechanical field, which will not be described in detail here.

[0027] Please see Figure 1 , Figure 2 as well as Figure 7 In some embodiments, the automatically adjustable temperature-controlled reflector 10 further includes a control system 14, thereby enabling automatic adjustment. Specifically, the control system 14 includes a controller 141 and a detection component 142. The detection component 142 is used to detect information around the automatically adjustable temperature-controlled reflector 10 and feed back the detected information to the controller 141. The controller 141 is used to control the operation of the first drive mechanism 12. The information around the automatically adjustable temperature-controlled reflector 10 may be temperature information, wind speed and direction information, ultraviolet radiation information, rainfall information, dew information, sunlight angle, etc. The user can set corresponding thresholds in the controller 141. When the information fed back by the detection component 142 is higher than the corresponding threshold, the controller 141 controls the first drive mechanism 12 to drive the umbrella mechanism 13 to open based on the information fed back by the detection component 142. When the information fed back by the detection component 142 is lower than the corresponding threshold, the controller 141 controls the first drive mechanism 12 to drive the umbrella mechanism 13 to close based on the information fed back by the detection component 142.

[0028] Please see Figure 7In some embodiments, the detection component 142 includes at least one of a first detector 1421, a second detector 1422, a third detector 1423, a fourth detector 1424, and a fifth detector 1425. Specifically, when the first detector 1421 is provided, it is signal-connected to the controller 141 and is used to detect temperature information and feed back the detected temperature information to the controller 141. When the second detector 1422 is provided, it is signal-connected to the controller 141 and is used to detect wind speed information and feed back the detected wind speed information to the controller 141; it can also be used to detect wind direction information. When the third detector 1423 is provided, it is signal-connected to the controller 141 and is used to detect ultraviolet radiation information and feed back the detected ultraviolet radiation information to the controller 141. When the fourth detector 1424 is provided, it is signal-connected to the controller 141 and is used to detect the angle of sunlight and feed back the detected angle of sunlight to the controller 141. When a fifth detector 1425 is provided, the fifth detector 1425 is signal-connected to the controller 141 and is used to detect information about rainfall or dew and to feed back the detected information about rainfall or dew to the controller 141.

[0029] Please see Figure 2 , Figure 3 In some embodiments, the automatically adjustable temperature-controlled reflective device 10 further includes a second support mechanism 15 and a second drive mechanism 16. The second support mechanism 15 is movably connected to the first support mechanism 11; the base 131 is connected to the second support mechanism 15; the second drive mechanism 16 is connected to the second support mechanism 15 and is used to drive the umbrella body mechanism 13 to rotate around the X-axis, thereby adjusting the tilt of the canopy 132. The second drive mechanism 16 is also electrically connected to a controller 141, so that the controller 141 can control the operation of the second drive mechanism 16. In some embodiments, the second drive mechanism 16 is a common motor structure in the field of mechanical technology, which will not be described in detail here.

[0030] Please see Figure 2 , Figure 3In some embodiments, the automatically adjustable temperature-controlled reflective device 10 further includes a third drive mechanism 17. The third drive mechanism 17 is mounted on the top end 1102 and connected to the second support mechanism 15, driving the second support mechanism 15 to rotate the umbrella mechanism 13 around the Z-axis. When the third drive mechanism 17 drives the second support mechanism to rotate the umbrella mechanism 13 around the Z-axis, the first drive mechanism 12 and the second drive mechanism 16 also rotate as a whole with the umbrella mechanism 13. The third drive mechanism 17 is also electrically connected to a controller 141, allowing the controller 141 to control the operation of the third drive mechanism 17. In some embodiments, the third drive mechanism 17 is a common motor structure in the field of mechanical technology, which will not be described in detail here.

[0031] Please see Figure 2 , Figure 3 In some embodiments, the second support mechanism 15 includes a first plate 151, a second plate 152, and a third plate 153. The second plate 152 and the third plate 153 are disposed on opposite sides of the first plate 151. The second drive mechanism 16 is mounted on the second plate 152 and partially passes through the second plate 152 to connect with the base 131. In some embodiments, the third plate 153 is fitted with a second bearing. The portion of the second drive mechanism 16 exposed on the second plate 152 and the third plate 153 is provided with a connector (not shown in the figure), which connects the second drive mechanism 16 to the base 131, thereby improving the reliability and stability of the second drive mechanism 16 driving the umbrella mechanism 13 to tilt.

[0032] Please see Figure 7 In some embodiments, the automatically adjustable temperature-controlled reflective device 10 further includes a power supply 18 for supplying power to the control system 14. In some embodiments, the power supply 18 also supplies power to the first drive mechanism 12, the second drive mechanism 16, and the third drive mechanism 17. In some embodiments, the power supply 18 may be a rechargeable battery or may be directly connected to mains power via a wire.

[0033] The automatically adjustable temperature-controlled reflective device 10 of this application can be used as a sunshade for street cafes, outdoor camping, fishing, and other outdoor plazas. After the automatically adjustable temperature-controlled reflective device 10 is installed and fixed, the corresponding threshold parameters can be input through a display screen or smart terminal, or after assembly, the automatically adjustable temperature-controlled reflective device 10 can be activated. The device automatically captures the surrounding natural conditions and automatically sets the corresponding thresholds for automatic use. For example, it can automatically open or close the umbrella mechanism 13 according to the temperature. Alternatively, it can adjust the tilt angle and opening degree of the umbrella mechanism 13 according to the angle of sunlight. Specifically, it can automatically rotate the angle of the canopy 132 (shading surface or reflective surface) according to the sun's altitude and angle of sunlight over different time periods, so that the shading surface is perpendicular to the angle of sunlight, achieving a better shading effect. Alternatively, it can adjust the tilt direction of the canopy 132 according to the wind speed and direction of the wind to prevent it from being destroyed by excessive wind load.

[0034] The above are merely specific embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in the present invention, and these modifications or substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. An automatically adjustable temperature-controlled reflective device, characterized in that, It includes a first support mechanism, a first drive mechanism, and a canopy mechanism; The first support mechanism has a bottom end portion and a top end portion opposite to the bottom end portion, the bottom end portion being used to fix the first support mechanism to the installation position; The first driving mechanism includes a first motor and a first transmission assembly. The first motor is used to drive the first transmission assembly to reciprocate along the extension direction of the X-axis. The umbrella body mechanism is located at the top end and includes a base, an umbrella canopy, and multiple sets of umbrella frame components; The canopy is mounted on the umbrella frame assembly; Each of the umbrella frame assemblies is rotatably mounted on the base; Multiple sets of umbrella frame assemblies are respectively disposed on opposite sides of the first transmission assembly on the X-axis. At least two sets of umbrella frame assemblies are provided on each side of the first transmission assembly. Multiple sets of umbrella frame assemblies located on the same side of the first transmission assembly are arranged in rows at intervals along the extension direction of the X-axis. The first transmission component is used to drive the umbrella frame components located on opposite sides of the first transmission component to rotate relative to the base, thereby driving the umbrella canopy to open and close.

2. The automatically adjustable temperature-controlled reflective device as described in claim 1, characterized in that, Each umbrella frame assembly includes an umbrella frame, a first bearing, and a second transmission component; The first bearing is mounted on the base; The umbrella frame has a mounting part and a supporting part. One end of the mounting part passes through the central hole of the first bearing, and the other end is connected to the supporting part. The supporting part extends away from the first bearing to support the umbrella canopy. The second transmission component is mounted on the mounting portion, and the first transmission assembly is used to drive the second transmission component to rotate.

3. The automatically adjustable temperature-controlled reflective device as described in claim 1, characterized in that, The first transmission assembly includes a guide and a first transmission component. The guide extends along the extension direction of the X-axis and is mounted on the base. The first transmission component is movably mounted on the guide. The first transmission component has a transmission part on each of the opposite sides of the X-axis. Each transmission part is correspondingly connected to at least one second transmission component provided on the same side.

4. The automatically adjustable temperature-controlled reflective device as described in claim 3, characterized in that, The transmission part is a rack and pinion structure; the second transmission component is a gear structure, and the rack and pinion structure are paired and meshed.

5. The automatically adjustable temperature-controlled reflective device as described in claim 1, characterized in that, The number of umbrella frame assemblies is four to ten sets, and each side of the first transmission assembly is provided with two to five sets of the umbrella frame assemblies; and / or... The first motor is mounted on the base.

6. The automatically adjustable temperature-controlled reflective device as described in any one of claims 1 to 5, characterized in that, The automatically adjustable temperature-controlled reflective device also includes a control system; The control system includes a controller and a detection component, the detection component being used to detect information around the automatically adjustable temperature-controlled reflective device and to feed back the detected information to the controller; The controller is used to control the operation of the first drive mechanism.

7. The automatically adjustable temperature-controlled reflective device as described in claim 6, characterized in that, The automatically adjustable temperature-controlled reflective device also includes a second support mechanism and a second drive mechanism. The second support mechanism is movably connected to the first support mechanism; the base is connected to the second support mechanism; The second drive mechanism is connected to the second support mechanism and electrically connected to the controller, and is used to drive the umbrella mechanism to rotate about the X-axis.

8. The automatically adjustable temperature-controlled reflective device as described in claim 6, characterized in that, The automatically adjustable temperature-controlled reflective device also includes a second support mechanism and a third drive mechanism; The second support mechanism is movably connected to the first support mechanism; the base is connected to the second support mechanism; The third drive mechanism is installed at the top end and connected to the second support mechanism and electrically connected to the controller, and is used to drive the second support mechanism to drive the umbrella mechanism to rotate around the Z-axis.

9. The automatically adjustable temperature-controlled reflective device as described in claim 6, characterized in that, The detection component includes: A first detector, signal-connected to the controller, is used to detect temperature information and feed back the detected temperature information to the controller; and / or, The second detector, connected to the controller, is used to detect wind speed and direction information and feed back the detected wind speed and direction information to the controller; and / or, A third detector, signal-connected to the controller, is used to detect ultraviolet (UV) information and feed back the detected UV information to the controller; and / or, A fourth detector, connected to the controller, is used to detect the angle of sunlight and feed back the detected angle of sunlight to the controller; and / or, The fifth detector is connected to the controller and is used to detect rainfall or dew information and feed back the detected rainfall or dew information to the controller.

10. The automatically adjustable temperature-controlled reflective device as described in claim 6, characterized in that, The automatically adjustable temperature-controlled reflective device also includes a power supply for supplying power to the control system.