Information acquisition equipment based on low-carbon operation of green building
Through the design of guide components and protective components, the data inaccurate and damaged by information collection equipment in severe weather is solved, and the equipment protection and data accuracy are achieved.
Patent Information
- Application Number
- CN202510576037.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-06
- Publication Date
- 2025-07-18
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Information collection equipment is damaged by severe weather such as strong winds outdoors, resulting in inaccurate data and damage to the equipment.
The coordinated settings of the guide assembly, mounting cylinder, lifting rod, positioning assembly and rotating assembly are adopted to ensure that the analysis assembly is facing away from the wind direction, and double buffering protection is achieved through the protective assembly to reduce equipment vibration damage.
Improve the accuracy of data collection, reduce the probability of equipment damage, and ensure that the equipment works normally in bad weather conditions.
Smart Images

Figure CN120333522A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of information collection, and specifically to an information collection device based on the low-carbon operation of green buildings. Background Technique
[0002] A green building is a building that coexists in harmony with nature and can achieve the goals of energy conservation, water conservation, emission reduction, and land conservation during its maximum life cycle. The essence of low-carbon operation is low-carbon energy conservation, and its core purpose is to mitigate the greenhouse effect. From the above description, it can be seen that there is a close connection between green buildings and low-carbon operation, which is used to jointly achieve the environmental protection, energy conservation, and sustainable development of buildings. In this process, the collection of environmental information is essential. By analyzing the collected environmental information, the response policies can be adjusted in real time, which is conducive to achieving sustainable development.
[0003] At present, the information collection devices on green buildings are divided into indoor installation and outdoor installation. When the information collection device is installed outside the green building, solar energy can be fully utilized, which is conducive to achieving low-carbon operation. However, when the information collection device is installed outdoors, it will also be damaged by bad weather such as strong winds, which will not only cause inaccurate data collected by the information collection device, but even damage the information collection device.
[0004] In view of the above problems, an information collection device based on the low-carbon operation of green buildings is proposed. Summary of the Invention
[0005] The purpose of the present invention is to provide an information collection device based on the low-carbon operation of green buildings. By using this device for work, the problems that the information collection device installed outdoors will be damaged by bad weather such as strong winds, resulting in inaccurate data collected by the information collection device and damage to the information collection device in the above background are solved.
[0006] To achieve the above purpose, the present invention provides the following technical solution: An information collection device based on the low-carbon operation of green buildings, including a mounting plate and a base fixedly installed on the mounting plate. A lifting component is fixedly arranged on the mounting plate. An installation cylinder is rotatably arranged on the lifting component. A collection component, an analysis component, and a protection component are respectively fixedly arranged on the circumferential side wall of the upper end of the installation cylinder. A lifting rod is slidably arranged inside the installation cylinder. A guiding component is rotatably arranged at the top of the lifting rod. A positioning component is fixedly arranged on the circumferential side wall of the installation cylinder. An adjustment component is fixedly arranged inside the base. A rotating component is fixedly arranged on the bottom surface of the inner cavity of the base. The rotating component, the lifting rod, and the installation cylinder are concentrically arranged.
[0007] Further, the base includes a base body fixedly installed on the top surface of the mounting plate. An installation groove and a first clamping groove are respectively formed inside the base body. The position adjustment component is fixedly installed inside the installation groove, and a pressure sensor is fixedly installed inside the first clamping groove. The positioning component and the first clamping groove can form a clamping connection relationship.
[0008] Further, the lifting component includes two electric telescopic columns fixedly installed on the top surface of the mounting plate. The two electric telescopic columns are symmetrically arranged on both sides of the base body, and a connecting plate is fixedly installed at the output ends of the two electric telescopic columns.
[0009] Further, the installation cylinder includes a cylinder body rotatably installed through the connecting plate. A secondary friction wheel is fixedly sleeved on the circumferential side wall at the lower end of the cylinder body. A pair of long sliding grooves are symmetrically formed on the side wall of the inner cavity of the cylinder body. A short sliding groove is also formed on the side wall of the inner cavity of the cylinder body, and the length of the short sliding groove is less than that of the long sliding groove.
[0010] Further, the lifting rod includes a rod body. A pair of long sliding plates are symmetrically and fixedly installed on the circumferential side wall of the rod body. The long sliding plates are embedded and slidably installed in the inner cavity of the long sliding groove. A short sliding plate is also fixedly installed on the circumferential side wall of the rod body. The short sliding plate is embedded and slidably installed in the inner cavity of the short sliding groove. A receiving groove is formed at the upper end of the rod body, and the guiding component is rotatably installed in the inner cavity of the receiving groove.
[0011] Further, the positioning component includes a housing fixedly installed on the circumferential side wall of the cylinder body. A clamping column is slidably installed inside the housing. The clamping column and the first clamping groove can form a clamping connection relationship. The side wall of the clamping column and the side wall of the inner cavity of the housing are elastically connected by a first spring. An electromagnet is fixedly installed on the side wall of the inner cavity of the housing. A permanent magnet is fixedly installed on the side wall of the clamping column, and the permanent magnet and the electromagnet are concentrically arranged.
[0012] Further, the position adjustment component includes a motor fixedly installed inside the installation groove. A main friction wheel is fixedly connected to the output shaft of the motor, and the circumferential side wall of the main friction wheel is in contact with the circumferential side wall of the secondary friction wheel.
[0013] Further, the guiding component includes an installation column fixedly installed in the inner cavity of the receiving groove. A guiding plate is rotatably sleeved on the installation column, and the side wall of the guiding plate and the side wall of the inner cavity of the receiving groove are elastically connected by a torsion spring.
[0014] Further, the rotating component includes a support fixedly installed on the bottom surface of the inner cavity of the base body. A turntable is rotatably installed on the top of the support, and the turntable and the lifting rod are concentrically arranged.
[0015] Furthermore, the protection component includes a mounting ring fixedly sleeved on the circumferential side wall of the upper end of the cylinder body. A mounting frame is fixedly installed on the circumferential side wall of the mounting ring. A pair of sliding grooves are symmetrically formed inside the mounting frame. A sliding rod is slidably installed inside the sliding groove. The side wall of the sliding rod is elastically connected to the circumferential side wall of the mounting ring through a second spring. An air cylinder is fixedly installed on the side wall of the mounting frame. The piston in the air cylinder is fixedly connected to the side wall of the sliding rod through an L-shaped connecting rod. A gas valve is fixedly installed on the side wall of the sliding rod away from the second spring. A hollow ball is fixedly connected and communicated to the gas valve. The air cylinder and the gas valve are communicated through an air pipe. A pair of relief grooves are symmetrically formed inside the sliding rod. A clamping block is slidably installed inside the relief groove. The side wall of the clamping block is elastically connected to the side wall of the inner cavity of the relief groove through a third spring. An electromagnet II is fixedly installed on the side wall of the inner cavity of the relief groove. A permanent magnet II is fixedly installed on the side wall of the clamping block.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] 1. Through the cooperative setting of the guiding component, the mounting cylinder, the lifting rod, the positioning component and the rotating component, in the face of bad weather such as strong winds, under the action of the guiding plate, important components such as the analysis component on the information collection device face away from the wind direction. Even if there are foreign objects in the strong wind, they will not directly impact the front of important components such as the analysis component, playing a protective role. Moreover, the guiding plate rotates continuously with the wind direction, which enables important components such as the analysis component to always face away from the wind direction, achieving a continuous protection effect.
[0018] 2. Through the setting of the position adjustment component, all components of the information collection device can be restored to their original positions, preventing the collected samples from being unrepresentative due to changes in the positions of the components.
[0019] 3. The guiding component is set in a hidden manner, which will not affect the air flow direction and velocity of the surrounding environment during sample collection, making the collected samples more representative and conducive to improving the accuracy of the detection results.
[0020] 4. Through the setting of the protection component, the effect of double buffering is achieved, reducing the conduction amount of vibration, thereby reducing the probability of vibration damage to the main components of the information collection device. Moreover, the important components on the information collection device will not directly impact the ground, still being able to protect the main components of the information collection device. In addition, even if the information collection device rolls over, the main components of the information collection device will not directly impact the ground, also being able to reduce the probability of damage to important components.
[0021] 5. Set the gas volume in the hollow sphere to half of the volume of the hollow sphere. On the premise of achieving the buffering effect, the hollow sphere will not have too much elastic force to bounce the toppled information collection device, thus avoiding secondary damage to the information collection device. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is a schematic diagram of the overall structure of the present invention;
[0023] Figure 2 is Figure 1 an enlarged view of part A of
[0024] Figure 3 is a schematic diagram of the installation position of the rotating component of the present invention;
[0025] Figure 4 is Figure 3 an enlarged view of part B of
[0026] Figure 5 is a schematic diagram of the installation position of the guiding component of the present invention;
[0027] Figure 6 is Figure 5 an enlarged view of part C of
[0028] Figure 7 is a schematic diagram of the installation position of the positioning component of the present invention;
[0029] Figure 8 is Figure 7 an enlarged view of part D of
[0030] Figure 9 is a disassembled schematic diagram of the installation cylinder and the lifting rod of the present invention;
[0031] Figure 10 is a disassembled schematic diagram of the lifting rod and the guiding component of the present invention;
[0032] Figure 11 is a sectional schematic diagram of the protection component of the present invention;
[0033] Figure 12 is Figure 11 an enlarged view of part E of
[0034] In the figure: 1. mounting plate; 2. base; 21. seat body; 22. mounting groove; 23. first clamping groove; 24. pressure sensor; 3. lifting assembly; 31. electric telescopic column; 32. connecting plate; 4. mounting cylinder; 41. cylinder body; 42. auxiliary friction wheel; 43. long sliding groove; 44. short sliding groove; 5. acquisition assembly; 6. analysis assembly; 7. lifting rod; 71. rod body; 72. long sliding plate; 73. short sliding plate; 74. receiving groove; 8. positioning assembly; 81. housing; 82. clamping column; 83. first spring; 84. first electromagnet; 85. first permanent magnet; 9. position adjustment assembly; 91. motor; 92. main friction wheel; 10. guiding assembly; 101. mounting post; 102. guiding plate; 103. torsion spring; 20. protection assembly; 201. mounting ring; 202. mounting frame; 203. sliding track; 204. sliding rod; 205. second spring; 206. air cylinder; 207. L-shaped connecting rod; 208. air valve; 209. hollow ball; 220. relief groove; 230. clamping block; 240. third spring; 250. second electromagnet; 260. second permanent magnet; 30. rotating assembly; 301. support; 302. turntable. Detailed implementation manners
[0035] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0036] In order to solve the technical problems that the information acquisition device installed outdoors is damaged by severe weather such as strong winds, resulting in inaccurate data collected by the information acquisition device and damage to the information acquisition device, as Figure 1 and Figures 3 - 10 shown, the following preferred technical solutions are provided:
[0037] An information collection device based on low-carbon operation of green buildings comprises a mounting plate 1 and a base 2 fixedly mounted on the mounting plate 1. The mounting plate 1 is used to mount the entire information collection device on the outside of the green building, and the base 2 is used to install the components on the information collection device. A lifting assembly 3 is fixedly arranged on the mounting plate 1. When encountering severe weather such as strong winds, the height of the information collection device is lowered by the lifting assembly 3 to enhance the wind resistance of the information collection device and reduce the probability of the information collection device being blown down by the wind and damaged. A mounting cylinder 4 is rotatably arranged on the lifting assembly 3, and the circumferential side walls at the upper end of the mounting cylinder 4 are respectively fixedly arranged. There are a collection component 5, an analysis component 6 and a protection component 20. The collection component 5 is used to sample the surrounding environment. The collected samples enter the analysis component 6 for analysis and detection, and can monitor the environment around the green building in real time. A lifting rod 7 is slidably arranged inside the installation cylinder 4, and a guide component 10 is rotatably arranged on the top of the lifting rod 7. A positioning component 8 is fixedly arranged on the circumferential side wall of the installation cylinder 4. The positioning component 8 is used to position the installation cylinder 4. A positioning component 9 is fixedly arranged inside the base 2, and a rotating component 30 is fixedly arranged on the bottom surface of the inner cavity of the base 2. The rotating component 30, the lifting rod 7 and the installation cylinder 4 are concentrically arranged.
[0038] When the information collection device encounters severe weather such as strong winds, the positioning component 8 is started to operate, so that the restriction relationship between the positioning component 8 and the base 2 is released, and the installation tube 4 and the components on the installation tube 4 are driven to descend as a whole through the lifting component 3, and the overall height of the information collection device is reduced, so that the center of gravity of the information collection device is lowered, and the wind resistance performance is improved. When the installation tube 4 is lowered to a suitable position, the lifting rod 7 will contact the rotating component 30. At this time, the height of the lifting component 3 continues to decrease, and the lifting rod 7 will no longer continue to move downward under the obstruction of the rotating component 30, and the installation tube 4 will continue to descend with the lifting component 3, which makes the top of the lifting rod 7 extend to the outside of the installation tube 4. At this time, the guide component 10 at the top of the lifting rod 7 will rotate 90° under the action of elastic force, and the lifting component 3 will stop descending and position. When the guide component 10 is in a strong wind environment, under the action of wind force, the guide component 10 will drive the lifting rod 7, the installation tube 4 and the components on the installation tube 4 to rotate as a whole until the guide component 10 is parallel to the wind direction. At this time, important components such as the analysis component 6 are facing away from the wind direction;
[0039] When harsh environments such as strong winds disappear, the lifting component 3 is activated to drive the installation cylinder 4 and the components on the installation cylinder 4 to return upward to their original positions as a whole. During the upward reset process of the installation cylinder 4, the edge of the installation cylinder 4 will exert pressure on the guiding component 10, causing the guiding component 10 to rotate reversely by 90°. At this time, the installation cylinder 4 continues to rise. When the top of the installation cylinder 4 reaches the same level as the top of the lifting rod 7, it will drive the lifting rod 7 to reset upward together. At this time, the guiding component 10 is received into the lifting rod 7. After the installation cylinder 4 and the lifting rod 7 completely return to their original heights, the positioning component 9 is activated to drive the lifting rod 7, the installation cylinder 4, and the components on the installation cylinder 4 to start rotating until the limiting relationship between the positioning component 8 and the base 2 is restored, and the positioning component 9 stops operating. At this time, all components of the information collection device return to their original positions.
[0040] When strong winds blow down the information collection device, the protection component 20 can prevent the important components on the information collection device from directly hitting the ground, which also plays a role in protecting the information collection device.
[0041] The base 2 includes a seat body 21 fixedly installed on the top surface of the installation plate 1. An installation groove 22 and a first clamping groove 23 are respectively formed inside the seat body 21. The positioning component 9 is fixedly installed inside the installation groove 22, and a pressure sensor 24 is fixedly installed inside the first clamping groove 23. The positioning component 8 and the first clamping groove 23 can form a clamping relationship.
[0042] The lifting component 3 includes two electric telescopic columns 31 fixedly installed on the top surface of the installation plate 1. The two electric telescopic columns 31 are symmetrically arranged on both sides of the seat body 21, and a connecting plate 32 is fixedly installed at the output ends of the two electric telescopic columns 31.
[0043] The installation cylinder 4 includes a cylinder body 41 rotatably installed through the connecting plate 32. A secondary friction wheel 42 is fixedly sleeved on the circumferential side wall at the lower end of the cylinder body 41. A pair of long sliding grooves 43 are symmetrically formed on the side wall of the inner cavity of the cylinder body 41. A short sliding groove 44 is also formed on the side wall of the inner cavity of the cylinder body 41, and the length of the short sliding groove 44 is less than the length of the long sliding groove 43.
[0044] The lifting rod 7 includes a rod body 71. A pair of long sliding plates 72 are symmetrically and fixedly installed on the circumferential side wall of the rod body 71. The long sliding plates 72 are embedded and slidably installed in the inner cavity of the long sliding groove 43. A short sliding plate 73 is also fixedly installed on the circumferential side wall of the rod body 71. The short sliding plate 73 is embedded and slidably installed in the inner cavity of the short sliding groove 44. A receiving groove 74 is formed at the upper end of the rod body 71, and the guiding component 10 is rotatably installed in the inner cavity of the receiving groove 74.
[0045] Through the cooperative setting of the long slide plate 72 and the long slide groove 43, the rod body 71 will not rotate when sliding inside the cylinder body 41. The cooperative setting of the short slide groove 44 and the short slide plate 73 is used to limit the sliding distance of the rod body 71 inside the cylinder body 41 and prevent the rod body 71 from slipping off the cylinder body 41.
[0046] The positioning component 8 includes a housing 81 fixedly installed on the circumferential side wall of the cylinder body 41. A clamping column 82 is slidably installed inside the housing 81. A clamping connection relationship can be formed between the clamping column 82 and the first clamping groove 23. The side wall of the clamping column 82 and the side wall of the inner cavity of the housing 81 are elastically connected by a first spring 83. An electromagnet 84 is fixedly installed on the side wall of the inner cavity of the housing 81. A permanent magnet 85 is fixedly installed on the side wall of the clamping column 82, and the permanent magnet 85 and the electromagnet 84 are concentrically arranged.
[0047] The position adjustment component 9 includes a motor 91 fixedly installed inside the installation groove 22. A main friction wheel 92 is fixedly connected to the output shaft of the motor 91, and the circumferential side wall of the main friction wheel 92 is in contact with the circumferential side wall of the auxiliary friction wheel 42.
[0048] The guiding component 10 includes a mounting post 101 fixedly installed in the inner cavity of the accommodating groove 74. A guiding plate 102 is rotatably sleeved on the mounting post 101, and the side wall of the guiding plate 102 and the side wall of the inner cavity of the accommodating groove 74 are elastically connected by a torsion spring 103.
[0049] The rotating component 30 includes a support 301 fixedly installed on the bottom surface of the inner cavity of the seat body 21. A rotating disc 302 is rotatably installed on the top of the support 301, and the rotating disc 302 and the lifting rod 7 are concentrically arranged.
[0050] Specifically, when the information collection device encounters severe weather such as strong winds, the electromagnet 84 is energized, and the electromagnet 84 attracts the permanent magnet 85, and the card column 82 is pulled out from the inside of the card slot 23, so that the restriction relationship between the card column 82 and the card slot 23 is released, and the electric telescopic column 31 and the connecting plate 32 drive the installation cylinder 4 and the components on the installation cylinder 4 to descend as a whole, so that the overall height of the information collection device is reduced, so that the center of gravity of the information collection device is lowered, and the wind resistance of the information collection device can be improved. When the installation cylinder 4 is lowered to a suitable position, the main friction wheel 92 and the auxiliary friction wheel 42 are separated from each other, and the rod body 71 will contact the turntable 302. At this time, the height of the electric telescopic column 31 and the connecting plate 32 continues to decrease. The rod body 71 no longer moves downward under the obstruction of the turntable 302, and the installation cylinder 4 continues to descend with the electric telescopic column 31 and the connecting plate 32, which makes the top of the rod body 71 extend to The outside of the mounting tube 4, at this time, the guide plate 102 in the inner cavity of the accommodating groove 74 rotates 90° under the elastic force of the torsion spring 103, and then the lifting component 3 stops descending and is positioned. When the guide plate 102 is in a strong wind environment, under the action of wind force, the guide plate 102 will drive the rod body 71, the mounting tube 4 and the components on the mounting tube 4 to rotate as a whole. Since the turntable 302 rotates on the support 301, even if the rod body 71 and the turntable 302 are in contact with each other, it will not affect the normal rotation of the rod body 71. When the guide plate 102 is in a nearly parallel state with the wind direction, the important components such as the analysis component 6 on the information collection device are facing away from the wind direction. Even if there are foreign objects in the strong wind, they will not directly hit the front of the important components such as the analysis component 6, which plays a protective role. Moreover, the guide plate 102 rotates continuously with the wind direction, which makes the important components such as the analysis component 6 always facing away from the wind direction, which plays a continuous protection effect.
[0051] When harsh environments such as strong winds disappear, the electric telescopic column 31 and the connecting plate 32 are activated to drive the installation cylinder 4 and the components on the installation cylinder 4 to return upward to their original positions as a whole. During the upward resetting process of the installation cylinder 4, the edge of the installation cylinder 4 will exert pressure on the guide plate 102, and the exerted force is greater than the elastic force of the torsion spring 103, causing the guide plate 102 to rotate reversely by 90°, and it flips again into the inner cavity of the receiving groove 74 to be hidden. At this time, the installation cylinder 4 continues to rise. When the top end of the installation cylinder 4 reaches the same level as the top end of the rod body 71, it will drive the rod body 71 to return upward together. When the installation cylinder 4 and the lifting rod 7 completely return to their original heights, the main friction wheel 92 and the auxiliary friction wheel 42 return to the contact state again. The motor 91 is activated to drive the rod body 71, the installation cylinder 4, and the components on the installation cylinder 4 to rotate as a whole through the main friction wheel 92 and the auxiliary friction wheel 42. When the clamping column 82 is aligned with the position of the first clamping groove 23, under the elastic force of the first spring 83, the clamping column 82 is inserted into the inside of the first clamping groove 23 again, restoring the limiting relationship between the clamping column 82 and the first clamping groove 23. At the same time, after the pressure sensor 24 senses the clamping column 82, the motor 91 stops operating. At this time, all components of the information collection device return to their original positions, preventing the collected samples from being unrepresentative due to changes in the positions of the components. In addition, the above-mentioned guiding component 10 is arranged in a hidden manner and will not affect the air flow direction and velocity of the surrounding environment during sample collection, making the collected samples more representative and conducive to improving the accuracy of the detection results.
[0052] To solve the technical problem that strong winds may blow down the information collection device and damage the main components of the information collection device, as Figures 1 - 2 、 Figure 6 and Figures 11 - 12 shown, the following preferred technical solutions are provided:
[0053] The protection component 20 includes a mounting ring 201 fixedly sleeved on the circumferential side wall of the upper end of the cylinder body 41. A mounting frame 202 is fixedly installed on the circumferential side wall of the mounting ring 201. A pair of sliding grooves 203 are symmetrically formed inside the mounting frame 202. A sliding rod 204 is slidably installed inside the sliding groove 203. The side wall of the sliding rod 204 is elastically connected to the circumferential side wall of the mounting ring 201 through a second spring 205. An air cylinder 206 is fixedly installed on the side wall of the mounting frame 202. The piston in the air cylinder 206 is fixedly connected to the side wall of the sliding rod 204 through an L-shaped connecting rod 207. An air valve 208 is fixedly installed on the side wall of the sliding rod 204 away from the second spring 205. A hollow ball 209 is fixedly connected and communicated to the air valve 208. The air cylinder 206 and the air valve 208 are communicated through an air pipe. A pair of relief grooves 220 are symmetrically formed inside the sliding rod 204. A clamping block 230 is slidably installed inside the relief groove 220. The side wall of the clamping block 230 is elastically connected to the side wall of the inner cavity of the relief groove 220 through a third spring 240. An electromagnet 250 is fixedly installed on the side wall of the inner cavity of the relief groove 220. A permanent magnet 260 is fixedly installed on the side wall of the clamping block 230.
[0054] Specifically, when strong wind blows down the information collection device, the electromagnet 250 is powered on. The electromagnet 250 attracts the permanent magnet 260, causing the clamping block 230 to be withdrawn from the positioning groove on the mounting frame 202. Under the elastic force of the second spring 205, the sliding rod 204 extends outwards towards the outside of the mounting frame 202. During the sliding process of the sliding rod 204, it drives the piston inside the air cylinder 206 to slide through the L-shaped connecting rod 207, and conveys the gas inside the air cylinder 206 to the hollow ball 209 through the air pipe and the air valve 208. At this time, the gas in the hollow ball 209 is about half of the volume of the hollow ball 209. When the information collection device falls, the hollow ball 209 touches the ground first. Since there is gas inside the hollow ball 209, a buffering effect can be achieved, preventing the intense vibration from being transmitted to the main components of the information collection device during the fall. In addition, when the information collection device falls, the second spring 205 can also achieve a buffering effect. Through double buffering, the amount of vibration transmission is greatly reduced, and the probability of vibration damage to the main components of the information collection device is reduced. And when the protection component 20 is fully extended, the distance is greater than the width of the information collection device. Therefore, when strong wind blows down the information collection device, the important components on the information collection device will not directly impact the ground, and the protection of the main components of the information collection device can still be achieved. Moreover, even if the information collection device rolls over, the main components of the information collection device will not directly impact the ground, and the probability of damage to the important components can also be reduced.
[0055] Since the gas in the hollow sphere 209 is approximately half of the volume of the hollow sphere 209, on the premise of achieving the buffering effect, the situation where the excessive elastic force of the hollow sphere 209 bounces up the toppling information collection device will not occur, thus avoiding secondary damage to the information collection device.
[0056] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article or device.
[0057] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An information collection device based on the low-carbon operation of green buildings, comprising a mounting plate (1) and a base (2) fixedly installed on the mounting plate (1), wherein a lifting component (3) is fixedly arranged on the mounting plate (1), and it is characterized in that: A mounting cylinder (4) is rotatably arranged on the lifting assembly (3). A collection assembly (5), an analysis assembly (6) and a protection assembly (20) are respectively and fixedly arranged on the circumferential side wall at the upper end of the mounting cylinder (4). A lifting rod (7) is slidably arranged inside the mounting cylinder (4). A guiding assembly (10) is rotatably arranged at the top of the lifting rod (7). A positioning assembly (8) is fixedly arranged on the circumferential side wall of the mounting cylinder (4). An adjustment assembly (9) is fixedly arranged inside the base (2). A rotating assembly (30) is fixedly arranged on the bottom surface of the inner cavity of the base (2). The rotating assembly (30), the lifting rod (7) and the mounting cylinder (4) are concentrically arranged.
2. The information collection device based on the low-carbon operation of green buildings according to claim 1, wherein: The base (2) includes a seat body (21) fixedly mounted on the top surface of the mounting plate (1). An installation groove (22) and a first clamping groove (23) are respectively formed inside the seat body (21). The adjustment assembly (9) is fixedly mounted inside the installation groove (22). A pressure sensor (24) is fixedly mounted inside the first clamping groove (23). The positioning assembly (8) and the first clamping groove (23) can form a clamping connection relationship.
3. The information collection device based on the low-carbon operation of green buildings according to claim 2, characterized in that: The lifting assembly (3) includes two electric telescopic columns (31) fixedly mounted on the top surface of the mounting plate (1). The two electric telescopic columns (31) are symmetrically arranged on both sides of the seat body (21). A connecting plate (32) is fixedly mounted at the output ends of the two electric telescopic columns (31).
4. The information collection device based on the low-carbon operation of green buildings according to claim 3, characterized in that: The mounting cylinder (4) includes a cylinder body (41) rotatably mounted through the connecting plate (32). A secondary friction wheel (42) is fixedly sleeved on the circumferential side wall at the lower end of the cylinder body (41). A pair of long sliding grooves (43) are symmetrically formed on the side wall of the inner cavity of the cylinder body (41). A short sliding groove (44) is also formed on the side wall of the inner cavity of the cylinder body (41), and the length of the short sliding groove (44) is less than that of the long sliding groove (43).
5. An information collection device based on the low-carbon operation of green buildings according to claim 4, characterized in that: The lifting rod (7) includes a rod body (71). A pair of long sliding plates (72) are symmetrically and fixedly mounted on the circumferential side wall of the rod body (71). The long sliding plates (72) are slidably mounted inside the inner cavity of the long sliding grooves (43) in an embedded manner. A short sliding plate (73) is also fixedly mounted on the circumferential side wall of the rod body (71). The short sliding plate (73) is slidably mounted inside the inner cavity of the short sliding groove (44) in an embedded manner. A receiving groove (74) is formed at the upper end of the rod body (71). The guiding assembly (10) is rotatably mounted inside the inner cavity of the receiving groove (74).
6. The information collection device based on the low-carbon operation of green buildings according to claim 4, characterized in that: The positioning assembly (8) includes a housing (81) fixedly mounted on the circumferential side wall of the cylinder body (41). A clamping column (82) is slidably mounted inside the housing (81). The clamping column (82) and the first clamping groove (23) can form a clamping connection relationship. The side wall of the clamping column (82) and the side wall of the inner cavity of the housing (81) are elastically connected by a first spring (83). An electromagnet (84) is fixedly mounted on the side wall of the inner cavity of the housing (81). A permanent magnet (85) is fixedly mounted on the side wall of the clamping column (82), and the permanent magnet (85) and the electromagnet (84) are concentrically arranged.
7. An information collection device based on the low-carbon operation of green buildings according to claim 4, characterized in that: The position adjustment component (9) includes a motor (91) fixedly installed inside the installation groove (22). A main friction wheel (92) is fixedly connected to the output shaft of the motor (91), and the circumferential side wall of the main friction wheel (92) is in contact with the circumferential side wall of the auxiliary friction wheel (42).
8. An information collection device based on the low-carbon operation of green buildings according to claim 5, characterized in that: The guiding component (10) includes a mounting post (101) fixedly installed in the inner cavity of the accommodating groove (74). A guiding plate (102) is rotatably sleeved on the mounting post (101), and the side wall of the guiding plate (102) is elastically connected to the side wall of the inner cavity of the accommodating groove (74) through a torsion spring (103).
9. An information collection device based on the low-carbon operation of green buildings according to claim 5, characterized in that: The rotating component (30) includes a support (301) fixedly installed on the bottom surface of the inner cavity of the base body (21). A turntable (302) is rotatably installed on the top of the support (301), and the turntable (302) and the lifting rod (7) are concentrically arranged.
10. An information collection device based on the low-carbon operation of green buildings according to claim 4, characterized in that: The protection component (20) includes a mounting ring (201) fixedly sleeved on the circumferential side wall of the upper end of the cylinder body (41). Mounting brackets (202) are fixedly installed on the circumferential side wall of the mounting ring (201). A pair of sliding grooves (203) are symmetrically formed inside the mounting brackets (202). Slide rods (204) are slidably installed inside the sliding grooves (203). The side wall of the slide rod (204) is elastically connected to the circumferential side wall of the mounting ring (201) through a second spring (205). An air cylinder (206) is fixedly installed on the side wall of the mounting bracket (202). The piston in the air cylinder (206) is fixedly connected to the side wall of the slide rod (204) through an L-shaped connecting rod (207). An air valve (208) is fixedly installed on the side wall of the slide rod (204) away from the second spring (205). A hollow ball (209) is fixedly connected and communicated to the air valve (208). The air cylinder (206) and the air valve (208) are communicated through an air pipe. A pair of relief grooves (220) are symmetrically formed inside the slide rod (204). Blocks (230) are slidably installed inside the relief grooves (220). The side wall of the block (230) is elastically connected to the side wall of the inner cavity of the relief groove (220) through a third spring (240). An electromagnet two (250) is fixedly installed on the side wall of the inner cavity of the relief groove (220). A permanent magnet two (260) is fixedly installed on the side wall of the block (230).