An energy-saving intelligent windproof device for building walls
By introducing a wind-gathering mechanism and energy storage components into the windproof device, the problem of insufficient airflow collection is solved, the effective collection of airflow and the utilization of wind energy is achieved, and the energy saving and stability of the device is improved.
Patent Information
- Application Number
- CN202311019323.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-14
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2043-08-14
AI Technical Summary
The existing windproof devices lack guidance and convergence treatment when collecting airflow, resulting in limited airflow treatment and inability to effectively utilize wind energy.
The installation plate, hedging pipe, air receiving member, air collecting mechanism and drive assembly are used to drive the two-way screw to rotate through the drive assembly, deflect the angle of the air collecting plate, and the air flow collects into the hedging pipe, and the wind energy is converted into electric energy storage through the energy storage assembly, and the drive device continues to operate.
It realizes the effective collection of airflow and the utilization of wind energy, the device operation is energy-saving and environmentally friendly, improves operation convenience and stability, and avoids damage to fixed parts.
Smart Images

Figure CN116876683B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building construction, and in particular to an energy-saving intelligent windproof device for building walls. Background Art
[0002] Building walls are the basic components of buildings, used to bear structural loads, isolate spaces and provide safety protection. As the part of the building that provides safety protection, building walls often need to deal with the impact of airflow. When the impact of the airflow is too large, it is easy to cause damage to the building walls. Therefore, the building walls need to be protected from wind. Existing windproof devices generally use airflow counteraction to offset the impact force generated by the airflow, allowing the airflow to be split into two streams and flow into the interior of the pipe, reducing the impact through the collision between the airflows. However, when collecting airflow, existing devices usually allow the airflow to move naturally to the inside of the pipe for counteraction, lacking certain guidance and convergence processing, resulting in limited airflow that can be processed.
[0003] Therefore, in order to solve the above problems, an energy-saving intelligent windproof device for building walls is now developed, which can gather and collect airflow and utilize the wind energy generated by the airflow. Summary of the Invention
[0004] In order to overcome the shortcomings of existing devices that, when collecting airflow, usually allow the airflow to move naturally to the inside of the pipe for offset, lack certain guidance and convergence processing, resulting in limited airflow that can be processed, the present invention provides an energy-saving intelligent windproof device for building walls that can gather and collect airflow and utilize the wind energy generated by the airflow.
[0005] The technical solution of the present invention is: an energy-saving intelligent windproof device for building walls, comprising a mounting plate, a hedging pipe, an elastic part, a wind receiving part and a wind gathering mechanism, the front side of the mounting plate is rotatably connected to the hedging pipe, and the rear part of the hedging pipe is slidably connected to two groups of wind receiving parts, each group of wind receiving parts is symmetrically distributed on the left and right, and elastic parts are connected between the left and right adjacent wind receiving parts, and a wind gathering mechanism is provided on the hedging pipe, and the wind gathering mechanism comprises a fixed frame, a two-way screw rod, a sliding part, a wind gathering plate, a first fixed seat, a driving assembly and an energy storage assembly, the front side of the hedging pipe is connected to the fixed frame, the front of the fixed frame is rotatably connected to the two-way screw rod, the two-way screw rod is threadedly connected to the sliding part, the upper and lower sides of the hedging pipe are connected to the first fixed seat, the first fixed seat is rotatably connected to the wind gathering plate, the wind gathering plates are slidably and rotatably connected to the adjacent sliding parts, the top of the fixed frame is connected to the driving assembly, and the right part of the hedging pipe is connected to the energy storage assembly.
[0006] As a preferred technical solution of the present invention, it also includes an adjustment mechanism, which includes a mounting frame, a drive motor and a gear set. The mounting frame is connected to the middle position of the top of the mounting plate by bolts, the front of the mounting frame is connected to the drive motor, and a gear set is connected between the mounting frame and the output shaft of the drive motor, and the gear set is connected to the hedge pipe.
[0007] As a preferred technical solution of the present invention, it also includes a pressure release mechanism, which includes a fixed plate, a first rotating plate and a torsion spring. The upper part of the wind gathering plate is connected to the fixed plate by bolts, and the middle part of the fixed plate is rotatably connected to the first rotating plate. Two left and right torsion springs are connected between the first rotating plate and the fixed plate.
[0008] As a preferred technical solution of the present invention, it also includes a stabilizing mechanism, which includes a fixed slide rail, a sliding rod and a spring. The bottom of the hedge pipe and the mounting plate are connected to the fixed slide rail by bolts, the fixed slide rail is slidably connected to the sliding rod, and the sliding rods are rotatably connected with springs.
[0009] As a preferred technical solution of the present invention, it also includes a protective mechanism, which includes a second fixed seat, a mounting frame and an isolation net. The outer sides of the four air inlets of the hedge pipe are connected to the second fixed seat by bolts, and the second fixed seat is rotatably connected to the mounting frame, and the mounting frame is connected to the isolation net.
[0010] As a preferred technical solution of the present invention, it also includes a splicing mechanism, which includes a third fixed seat, a second rotating plate and a threaded member. The front side of the right part of the mounting plate is connected to two upper and lower third fixed seats by bolts. The second rotating plate is rotatably connected between the third fixed seats. The upper and lower parts of the second rotating plate are rotatably connected to the threaded member. The left part of the mounting plate is provided with two upper and lower threaded holes that are threadedly connected to the threaded member.
[0011] As a preferred technical solution of the present invention, the drive assembly includes a drive motor and a drive wheel. The drive motor is connected to the top of the fixed frame by bolts. The output shaft of the drive motor is set to face upward. The output shaft of the drive motor and the middle part of the bidirectional screw are connected to the drive wheels that are meshed with each other.
[0012] As a preferred technical solution of the present invention, the energy storage component includes a conversion and storage component, a threaded rotating rod and an air duct. The right part of the hedging pipe is connected to the conversion and storage component, the front side of the conversion and storage component is rotatably connected to the threaded rotating rod, the right part of the hedging pipe is connected to the air duct, and the threaded rotating rod is located inside the air duct.
[0013] As a preferred technical solution of the present invention, the gear set is composed of two gears. A gear is rotatably connected to the lower side of the front of the mounting frame, and a gear is also connected to the output shaft of the driving motor. The two gears are meshed with each other, and the bottom of the front gear is connected to the hedge pipe.
[0014] As a preferred technical solution of the present invention, the front end of each threaded member is provided with a power-assisting block.
[0015] Beneficial effects: 1. The present invention starts the driving component to rotate the bidirectional screw, so that the sliding parts drive the wind gathering plate to deflect the angle, and then the airflow is gathered and flows into the hedge pipe. At the same time, during the movement of the airflow, the wind energy is converted by the energy storage component, and the converted electrical energy is stored, so as to achieve the effect of using clean energy to supply the driving component for continuous operation, making the operation more energy-saving and environmentally friendly.
[0016] 2. The present invention drives the rear gear to rotate by driving the motor output shaft, so that the front gear drives the hedge pipe to automatically adjust the angle, thereby making the air inlet of the hedge pipe face the direction of air flow movement, thereby improving the convenience of operation.
[0017] 3. The present invention expands and extends the wind gathering plate through the fixed plate, thereby increasing the gathering range of the airflow. At the same time, relying on the cooperation between the first rotating plate and the torsion spring, it can perform pressure relief when the impact force of the airflow is too large, thereby preventing the fixed plate and the wind gathering plate from being damaged by the strong airflow impact.
[0018] 4. The present invention adjusts the angle of the hedge pipe through the cooperation between the spring and the sliding rod, and relies on the tension of the spring to buffer the thrust of the airflow, thereby improving the stability of the hedge pipe. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0020] Figure 2 It is a partial cross-sectional three-dimensional structural schematic diagram of the present invention.
[0021] Figure 3 It is a schematic diagram of the three-dimensional structure of the wind gathering mechanism of the present invention.
[0022] Figure 4 It is a partial three-dimensional structural schematic diagram of the wind gathering mechanism of the present invention.
[0023] Figure 5 It is a schematic diagram of the three-dimensional structure of the adjustment mechanism of the present invention.
[0024] Figure 6 It is a schematic diagram of the three-dimensional structure of the pressure release mechanism of the present invention.
[0025] Figure 7 It is a schematic diagram of the three-dimensional structure of the stabilizing mechanism of the present invention.
[0026] Figure 8 It is a schematic diagram of the three-dimensional structure of the protection mechanism of the present invention.
[0027] Figure 9 It is a schematic diagram of the three-dimensional structure of the splicing mechanism of the present invention.
[0028] Figure 10 It is a partially exploded three-dimensional structural schematic diagram of the present invention.
[0029] Marked in the figure: 1-mounting plate, 2-hedge pipe, 3-elastic part, 4-wind receiving part, 5-wind gathering mechanism, 51-fixed frame, 52-bidirectional screw, 53-sliding part, 54-wind gathering plate, 55-first fixed seat, 56-driving assembly, 57-energy storage assembly, 6-adjusting mechanism, 61-mounting frame, 62-driving motor, 63-gear set, 7-pressure release mechanism, 71-fixed plate, 72-first rotating plate, 73-torsion spring, 8-stabilizing mechanism, 81-fixed slide rail, 82-sliding rod, 83-spring, 9-protective mechanism, 91-second fixed seat, 92-mounting frame, 93-isolation net, 10-splicing mechanism, 101-third fixed seat, 102-second rotating plate, 103-threaded part, 104-threaded hole. DETAILED DESCRIPTION
[0030] The present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments, but this does not limit the scope of protection and application of the present invention.
[0031] An energy-saving intelligent windproof device for building walls, such as Figure 1 and Figure 2 As shown, it includes a mounting plate 1, a counter-offset pipe 2, an elastic member 3, a wind-receiving member 4 and a wind-gathering mechanism 5. The front side of the mounting plate 1 is rotatably connected to the counter-offset pipe 2 for offsetting the airflow. The rear part of the counter-offset pipe 2 is slidably connected to two groups of upper and lower wind-receiving members 4. Each group of wind-receiving members 4 is symmetrically distributed on the left and right. Elastic members 3 for buffering are connected between the adjacent wind-receiving members 4 on the left and right. The counter-offset pipe 2 is provided with a wind-gathering mechanism 5 for guiding and gathering the airflow.
[0032] It should be noted that the walls of buildings will be impacted by airflow for a long time. In order to reduce the damage to the walls of buildings caused by high-intensity airflow impact, this device can be installed on the walls of buildings to offset and buffer the airflow and reduce the impact force of the airflow. First, the mounting plate 1 is installed on the wall of the building, and then the windward angles of the wind gathering mechanism 5 and the counter-hedge pipe 2 are adjusted so that the wind gathering mechanism 5 can present a convergence angle so that the airflow can converge into the counter-hedge pipe 2. When the airflow enters the inside of the counter-hedge pipe 2, it will directly contact the wind receiving part 4, so that the elastic part 3 is subjected to force and deformed. Through the cooperation between the wind receiving part 4 and the elastic part 3, the airflow entering the inside of the counter-hedge pipe 2 is finally buffered and unloaded.
[0033] like Figure 1 、 Figure 3 、 Figure 4 and Figure 10 As shown, the wind gathering mechanism 5 includes a fixed frame 51, a bidirectional screw rod 52, a sliding member 53, a wind gathering plate 54, a first fixed seat 55, a driving assembly 56 and an energy storage assembly 57. The front side of the hedging pipe 2 is connected to the fixed frame 51, the front of the fixed frame 51 is rotatably connected to the bidirectional screw rod 52, and the bidirectional screw rod 52 is threadedly connected to the sliding member 53. The upper and lower sides of the hedging pipe 2 are connected to the first fixed seat 55, and the first fixed seat 55 is rotatably connected to the wind gathering plate 54 for gathering and collecting the airflow. The wind gathering plates 54 are slidably and rotatably connected to the adjacent sliding members 53. The top of the fixed frame 51 is connected to The drive assembly 56 includes a drive motor and a drive wheel. The top of the fixed frame 51 is connected to the drive motor by bolts. The output shaft of the drive motor is set to face upward. The output shaft of the drive motor and the middle part of the bidirectional screw rod 52 are connected to mutually meshing drive wheels. The right part of the hedge pipe 2 is connected to an energy storage assembly 57 for converting and storing wind energy generated by the airflow. The energy storage assembly 57 includes a conversion and storage component, a threaded rotating rod and an air duct. The right part of the hedge pipe 2 is connected to the conversion and storage component. The front side of the conversion and storage component is rotatably connected to the threaded rotating rod. The right part of the hedge pipe 2 is connected to the air duct, and the threaded rotating rod is located inside the air duct.
[0034] It should be noted that when the airflow impacts the building wall, the driving component 56 can be started according to the airflow state. After the driving component 56 is started, it will drive the bidirectional screw 52 to rotate, so that the sliding parts 53 are all driven by the bidirectional screw 52 to move to the side away from each other, and then the wind gathering plates 54 are all flipped and moved closer to the side close to each other, thereby forming a certain inclination angle. When the airflow contacts the wind gathering plates 54, it will flow into the counter-hedge pipe 2 due to the inclination angle of the wind gathering plates 54, thereby achieving the effect of gathering airflow. At the same time, as the airflow continues to flow into the counter-hedge pipe 2, the energy storage component 57 will store the wind energy generated by the airflow movement. The collected and converted electricity is stored, and the stored electricity can continuously provide operating power for the drive component 56, so that the drive component 56 no longer needs to rely on conventional energy supply, achieving energy saving and environmental protection. In summary, by starting the drive component 56, the bidirectional screw 52 is rotated, so that the sliding member 53 drives the wind gathering plate 54 to deflect the angle, thereby making the airflow converge and flow into the hedge pipe 2. At the same time, in the process of air flow movement, the wind energy is converted by the energy storage component 57, and the converted electricity is stored, so as to achieve the effect of using clean energy to supply the drive component 56 for continuous operation, making the operation more energy-saving and environmentally friendly.
[0035] like Figure 1 and Figure 5As shown, it also includes an adjustment mechanism 6, which includes a mounting frame 61, a drive motor 62 and a gear set 63. The mounting frame 61 is connected to the middle position of the top of the mounting plate 1 by bolts, and the front of the mounting frame 61 is connected to the drive motor 62. The output shaft of the drive motor 62 is set to face downward, and a gear set 63 is connected between the mounting frame 61 and the output shaft of the drive motor 62. The gear set 63 is connected to the hedge pipe 2. The gear set 63 consists of two gears. A gear is rotatably connected to the lower side of the front of the mounting frame 61, and a gear is also connected to the output shaft of the drive motor 62. The two gears are meshed with each other, and the bottom of the front gear is connected to the hedge pipe 2.
[0036] It should be noted that when the windward angle of the hedge pipe 2 needs to be adjusted, the drive motor 62 can be started directly. The rotation of the output shaft of the drive motor 62 will drive the gear on the rear side to start rotating, so that the gear on the front side drives the hedge pipe 2 to deflect the angle, thereby achieving the effect of automatically adjusting the windward angle of the hedge pipe 2. After the adjustment is completed, the drive motor 62 can be turned off. In summary, the output shaft of the drive motor 62 drives the gear on the rear side to rotate, so that the gear on the front side drives the hedge pipe 2 to automatically adjust the angle, so that the air inlet of the hedge pipe 2 can face the direction of airflow movement, thereby improving the convenience of operation.
[0037] like Figure 1 and Figure 6 As shown, a pressure release mechanism 7 is also included, which includes a fixed plate 71, a first rotating plate 72 and a torsion spring 73. The upper part of the wind gathering plate 54 is connected to the fixed plate 71 for extending the wind gathering range by bolts, and the middle part of the fixed plate 71 is rotatably connected to the first rotating plate 72. Two left and right torsion springs 73 are connected between the first rotating plate 72 and the fixed plate 71.
[0038] It should be noted that, in order to prevent the air gathering range of the air gathering plate 54 from being too small, the air gathering range of the air gathering plate 54 is expanded by the fixed plate 71. At the same time, when the air flow moves too fast and the impact force caused is too strong, in order to prevent the fixed plate 71 from being damaged, when the air flow impacts the first rotating plate 72, the first rotating plate 72 will flip backward due to the impact of the air flow, and the torsion spring 73 will be deformed by the force. As the first rotating plate 72 flips backward, the middle part of the fixed plate 71 becomes hollow, and the air flow can pass through the hollow. , thereby reducing the impact force of the airflow on the fixed plate 71, and also protecting the wind gathering plate 54. When the airflow speed decreases, under the action of the torsion spring 73, the first rotating plate 72 will flip forward and reset. In summary, the wind gathering plate 54 is expanded and extended by the fixed plate 71, thereby increasing the gathering range of the airflow. At the same time, relying on the cooperation between the first rotating plate 72 and the torsion spring 73, the pressure relief treatment can be performed when the airflow impact force is too large, thereby avoiding the fixed plate 71 and the wind gathering plate 54 from being damaged by the strong airflow impact.
[0039] like Figure 1 and Figure 7 As shown, it also includes a stabilizing mechanism 8, which includes a fixed slide rail 81, a sliding rod 82 and a spring 83. The bottom of the hedge pipe 2 and the mounting plate 1 are both connected to the fixed slide rail 81 by bolts, and the sliding rod 82 is slidably connected to the fixed slide rail 81. The sliding rods 82 are rotatably connected between the sliding rods 82 and the springs 83 for traction buffering are rotatably connected.
[0040] It should be noted that when the hedge pipe 2 is adjusted to face the wind, the hedge pipe 2 as a whole will rotate, so that the fixed guide rail on the front side will move synchronously. In this process, the sliding rod 82 on the front side will slide adaptively, so that the spring 83 will rotate with the sliding rod 82 on the rear side as the axis point. In the initial state, the spring 83 is in a stretched state. When the hedge pipe 2 is impacted after adjusting the angle, the protruding side of the hedge pipe 2 will be impacted by a larger airflow. At this time, the airflow will push the hedge pipe 2 to reset and rotate, relying on the tension of the spring 83 to buffer the thrust of the airflow, thereby ensuring the stability of the hedge pipe 2. In summary, through the cooperation between the spring 83 and the sliding rod 82, after the hedge pipe 2 is adjusted in angle, the tension of the spring 83 is relied upon to buffer the thrust of the airflow, thereby improving the stability of the hedge pipe 2.
[0041] like Figure 1 and Figure 8 As shown, a protective mechanism 9 is also included, which includes a second fixed seat 91, a mounting frame 92 and an isolation net 93. The outer sides of the four air inlets of the hedge pipe 2 are connected to the second fixed seat 91 by bolts, and the second fixed seat 91 is rotatably connected to the mounting frame 92. The mounting frame 92 is connected to the isolation net 93 for blocking debris.
[0042] It should be noted that when the hedge pipe 2 buffers and unloads the airflow, in order to prevent debris from entering the hedge pipe 2 and causing blockage, so that the airflow cannot enter the hedge pipe 2, the isolation net 93 is used to block the debris, thereby preventing the debris from entering the hedge pipe 2. During daily maintenance, the installation frame 92 can be flipped outward with the second fixed seat 91 as the axis point, and then maintenance can be carried out.
[0043] like Figure 1 and Figure 9As shown, it also includes a splicing mechanism 10, which includes a third fixed seat 101, a second rotating plate 102 and a threaded member 103. The front side of the right part of the mounting plate 1 is connected to two upper and lower third fixed seats 101 by bolts, and the second rotating plate 102 is rotatably connected between the third fixed seats 101. The upper and lower parts of the second rotating plate 102 are rotatably connected to the threaded member 103 for splicing and installation. The front end of the threaded member 103 is provided with a power-assisting block, and the left part of the mounting plate 1 is provided with two upper and lower threaded holes 104 that are threadedly connected to the threaded member 103.
[0044] It should be noted that when it is difficult to block the airflow impact by using a single device, multiple devices can be spliced and installed. When splicing, the two mounting plates 1 need to be placed horizontally, and then the threaded rod on one mounting plate 1 is connected to the threaded hole 104 on the other mounting plate 1, and then the threaded rod is rotated to engage with the threaded hole 104.
[0045] While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all modifications and equivalent structures and functions.
Claims
1. An energy-saving intelligent windproof device for building walls, comprising a mounting plate (1), a counter-hedge pipe (2), an elastic member (3), a wind receiving member (4) and a wind gathering mechanism (5), wherein the mounting plate (1) is rotatably connected to the counter-hedge pipe (2) at the front side, and two groups of upper and lower wind receiving members (4) are slidably connected to the rear of the counter-hedge pipe (2), each group of wind receiving members (4) is symmetrically distributed on the left and right, and elastic members (3) are connected between adjacent wind receiving members (4) on the left and right, and a wind gathering mechanism (5) is provided on the counter-hedge pipe (2), wherein the wind receiving member (4) is symmetrically distributed on the left and right sides, and an elastic member (3) is connected between adjacent wind receiving members (4) on the left and right sides, and the wind gathering mechanism (5) is provided on the counter-hedge pipe (2), wherein the wind receiving member (4) is symmetrically distributed on the left and right sides, and the elastic member (3) is connected between adjacent wind receiving members (4) on the left and right sides, and the wind gathering mechanism (5) is provided on the counter-hedge pipe (2), and the wind gathering mechanism (5) is symmetrically distributed on the left and right sides, and the wind receiving member (4) is symmetrically distributed on the left and right sides, and the elastic member (3) is connected between adjacent wind receiving members (4) on the left and right sides, and the wind gathering mechanism (5) is symmetrically distributed on the left and right sides, and the wind receiving member (4) is symmetrically distributed on the left and right sides, and the elastic member (3) is connected to the ... The wind gathering mechanism (5) comprises a fixed frame (51), a bidirectional screw rod (52), a sliding member (53), a wind gathering plate (54), a first fixed seat (55), a driving assembly (56) and an energy storage assembly (57). The front side of the hedging pipe (2) is connected with the fixed frame (51), the front part of the fixed frame (51) is rotatably connected with the bidirectional screw rod (52), the bidirectional screw rod (52) is threadedly connected with the sliding member (53), the upper and lower sides of the hedging pipe (2) are connected with the first fixed seat (55), the first fixed seat (55) is rotatably connected with the wind gathering plate (54), the wind gathering plate (54) is slidably and rotatably connected to the adjacent sliding member (53), the top of the fixed frame (51) is connected with the driving assembly (56), and the right part of the hedging pipe (2) is connected with the energy storage assembly (57).
2. An energy-saving intelligent windproof device for building walls according to claim 1, characterized in that: The utility model also includes an adjusting mechanism (6), which includes a mounting frame (61), a driving motor (62) and a gear set (63). The mounting frame (61) is connected to the middle position of the top of the mounting plate (1) by bolts, the front of the mounting frame (61) is connected to the driving motor (62), and the gear set (63) is connected between the mounting frame (61) and the output shaft of the driving motor (62). The gear set (63) is connected to the hedge pipe (2).
3. An energy-saving intelligent windproof device for building walls according to claim 2, characterized in that: The invention also includes a pressure release mechanism (7), which includes a fixed plate (71), a first rotating plate (72) and a torsion spring (73). The upper part of the wind collecting plate (54) is connected to the fixed plate (71) by bolts, and the middle part of the fixed plate (71) is rotatably connected to the first rotating plate (72). Two left and right torsion springs (73) are connected between the first rotating plate (72) and the fixed plate (71).
4. The energy-saving intelligent windproof device for building walls according to claim 3 is characterized in that: The utility model also includes a stabilizing mechanism (8), which includes a fixed slide rail (81), a sliding rod (82) and a spring (83). The bottom of the hedge pipe (2) and the mounting plate (1) are both connected to the fixed slide rail (81) by bolts, and the sliding rod (82) is slidably connected to the fixed slide rail (81). The spring (83) is rotatably connected between the sliding rods (82).
5. The energy-saving intelligent windproof device for building walls according to claim 4 is characterized in that: The invention also includes a protection mechanism (9), which includes a second fixing seat (91), a mounting frame (92) and an isolation net (93). The outer sides of the four air inlets of the hedge pipe (2) are all connected to the second fixing seat (91) by bolts, the second fixing seat (91) is rotatably connected to the mounting frame (92), and the mounting frame (92) is connected to the isolation net (93).
6. The energy-saving intelligent windproof device for building walls according to claim 5 is characterized in that: The invention also includes a splicing mechanism (10), which includes a third fixing seat (101), a second rotating plate (102) and a screw member (103). The front side of the right portion of the mounting plate (1) is connected to two third fixing seats (101) by bolts, and the second rotating plate (102) is rotatably connected between the third fixing seats (101). The upper and lower parts of the second rotating plate (102) are both rotatably connected to the screw member (103). The left portion of the mounting plate (1) is provided with two upper and lower screw holes (104) that are threadedly connected to the screw member (103).
7. The energy-saving intelligent windproof device for building walls according to claim 1 is characterized in that: The driving assembly (56) includes a driving motor and a driving wheel. The top of the fixing frame (51) is connected to the driving motor by bolts. The output shaft of the driving motor is set upward. The output shaft of the driving motor and the middle of the bidirectional screw rod (52) are both connected to mutually meshing driving wheels.
8. The energy-saving intelligent windproof device for building walls according to claim 1 is characterized in that: The energy storage component (57) includes a conversion storage component, a threaded rotating rod and an air duct. The right part of the hedging pipe (2) is connected to the conversion storage component. The front side of the conversion storage component is rotatably connected to the threaded rotating rod. The right part of the hedging pipe (2) is connected to the air duct. The threaded rotating rod is located inside the air duct.
9. The energy-saving intelligent windproof device for building walls according to claim 2 is characterized in that: The gear set (63) is composed of two gears. The lower front side of the mounting frame (61) is rotatably connected to a gear. The output shaft of the driving motor (62) is also connected to a gear. The two gears are meshed with each other. The bottom of the gear on the front side is connected to the hedge pipe (2).
10. The energy-saving intelligent windproof device for building walls according to claim 6, characterized in that: The front ends of the threaded members (103) are each provided with a power-assisting block.
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