A high-rise aluminum plate curtain wall performance detection device based on BIM technology
By combining a multi-head testing device with BIM technology, the problem of low testing efficiency for high-rise aluminum panel curtain walls has been solved, enabling rapid and comprehensive performance testing of multiple aluminum panel curtain walls and adapting to adjustments for aluminum panel curtain walls of different thicknesses.
Patent Information
- Application Number
- CN202411973180.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2044-12-30
AI Technical Summary
In existing technologies, the performance testing efficiency of high-rise aluminum panel curtain walls is low, and it is difficult to conduct rapid and comprehensive testing on multiple curtain walls at the same time.
By employing a multi-pressure head detection device and combining it with BIM technology, a combination of transmission rollers, pneumatic telescopic tubes, and pressure sensors is used to achieve transmission-type detection and multi-point pressure testing of multiple aluminum panel curtain walls.
It improves testing efficiency, enabling rapid and comprehensive performance testing of multiple aluminum panel curtain walls simultaneously, and adapts to adjustments for aluminum panel curtain walls of different thicknesses.
Smart Images

Figure CN119959044B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of curtain wall performance testing, and in particular to a high-rise aluminum panel curtain wall performance testing device based on BIM technology. Background Technology
[0002] Building Information Modeling (BIM) is a new tool in architecture, engineering, and civil engineering. It helps to integrate building information, from design, construction, and operation to the end of the building's entire life cycle. All kinds of information are integrated into a three-dimensional model information database. Design teams, construction units, facility operation departments, and owners can collaborate based on BIM, effectively improving work efficiency, saving resources, reducing costs, and achieving sustainable development. During the research and development and mass production of curtain walls, it is necessary to test some indicators of the curtain wall. The main test indicators include materials, structural bearing capacity, thermal conductivity, tensile strength, and shear strength. These indicators are analyzed to ensure the safety of the curtain wall.
[0003] Patent publication number (CN118706582A) discloses a glass curtain wall performance testing device, belonging to the technical field of curtain wall processing equipment. It includes a workbench with a placement platform fixedly connected to its upper surface. The placement platform is rectangular, and a placement frame is mounted on its upper surface. The placement frame is rectangular and annular. A connecting mechanism facilitates the operator's installation and removal of the placement frame between the placement frame and the placement platform. An annular groove is formed on the upper surface of the placement frame, with one side of the groove communicating with the inner wall of the placement frame. A locking mechanism is provided on the inner wall of the annular groove. A bracket is mounted on the workbench, and a drive cylinder is fixedly connected to the bracket. A pressure block is fixedly connected to the output end of the drive cylinder, and a pressure sensor is fixedly connected to the pressure block. This invention has the advantages of facilitating the operator's fixing of the curtain wall to the placement frame and allowing the operator to fine-tune the position of the curtain wall on the placement frame as needed.
[0004] The aforementioned technologies, which rely on the movement of a single pressure head for detection, are slow to detect multiple locations on the curtain wall. Furthermore, when testing multiple curtain walls, these technologies require sequential installation of each curtain wall, making multi-curtain wall testing inconvenient and necessitating improvement. To address this, we propose a high-rise aluminum panel curtain wall performance testing device based on BIM technology. Summary of the Invention
[0005] Purpose of the invention: The purpose of this invention is to provide a device for inspecting curtain walls using multiple pressure heads, resulting in faster inspection efficiency; another purpose of this invention is to provide a device that facilitates the sequential inspection of multiple curtain walls.
[0006] Technical Solution: A performance testing device for high-rise aluminum panel curtain walls based on BIM technology. The device includes a base plate, with side plates symmetrically fixedly connected to the right side of the upper surface of the base plate. Multiple transmission rollers are rotatably connected between two opposite side plates via a rotating shaft. A dual-axis motor is fixedly connected to the front surface of the side plate located in front of the upper surface of the base plate. The rear end of the output shaft of the dual-axis motor is fixedly connected to the front end of the central shaft of the transmission roller located on the left side of the upper surface of the base plate.
[0007] A U-shaped frame is fixedly connected to the top of both side plates. Multiple pneumatic telescopic tubes are fixedly connected to the upper surface of the U-shaped frame. The bottom end of each pneumatic telescopic tube extends through to the bottom of the U-shaped frame and is fixedly connected to a pressure sensor. A pressure head is fixedly connected to the bottom end of the pressure sensor. An air vent is fixedly connected to the top end of each pneumatic telescopic tube.
[0008] A drive motor is fixedly connected to the front surface of the side plate located in front of the upper surface of the base plate. A cam is fixedly connected to the front end of the output shaft of the drive motor. Multiple pressure boxes are provided on the outer side wall of the drive motor. The pressure boxes are fixedly connected to the opposite side of the side plate. A second air vent is fixedly connected to the outer side wall of the pressure box. A piston plate is slidably connected inside the pressure box. Multiple first springs are fixedly connected between the piston plate and the pressure box. A push rod is fixedly connected to the end of the piston plate away from the first spring. The end of the push rod away from the piston plate is in contact with the outer side wall of the cam.
[0009] Support plates are symmetrically fixedly connected to the upper right side of the base plate. A storage box is fixedly connected to the top of the two support plates. A transmission wheel is fixedly connected to the rear end of the central shaft of each of the multiple transmission rollers. A transmission belt is connected to the outer side wall of each transmission wheel.
[0010] Furthermore, guide rails are fixedly connected to opposite sides of the support plate, and a sliding plate is slidably connected to opposite sides of the two guide rails. L-shaped rods are symmetrically fixedly connected to the upper surface of the sliding plate, and a lifting box is fixedly connected to the lower part of the L-shaped rod. Lifting slots are opened on opposite sides of the two lifting boxes, and lifting blocks are slidably connected inside the lifting boxes. A toggle post is fixedly connected to the upper surface of the lifting block, and the top end of the toggle post extends through to the top of the L-shaped rod and is slidably connected to the L-shaped rod. Lifting bars are fixedly connected to opposite sides of the two lifting blocks, and a threaded rod is threadedly connected to the center of the upper surface of the lifting bar. The bottom end of the threaded rod extends through to the lower part of the lifting bar and is rotatably connected to the upper surface of the sliding plate through a rotating shaft.
[0011] Furthermore, a rotating rod is rotatably connected to the front surface of the support plate located in front of the upper surface of the base plate via a rotating shaft. The front end of the rotating rod and the front end of the output shaft of the dual-axis motor are both fixedly connected to a second transmission wheel. The outer side walls of the two second transmission wheels are connected to a second transmission belt. The rear end of the rotating rod extends between the two support plates and is fixedly connected to an eccentric disc. A traction rod is rotatably connected to the left side of the rear surface of the eccentric disc via a rotating shaft. The left end of the traction rod is rotatably connected to a rotating connector via a rotating shaft. The left end of the rotating connector is fixedly connected to the right side of the sliding plate.
[0012] Furthermore, a pneumatic telescopic tube 2 is fixedly connected to the rear of the lower surface of the sliding plate, and an air nozzle 3 is integrally formed on the outer side wall of the pneumatic telescopic tube 2.
[0013] Furthermore, the front surface of the side plate is provided with adjustment ports above the dual-axis motor. A shaft column is provided inside the adjustment port. The opposite ends of the two shaft columns are fixedly connected to a transmission roller. A spring is fixedly connected to the upper surface of the adjustment port. An arc-shaped stop block is fixedly connected to the bottom end of the spring on the outer side wall of the shaft column.
[0014] Furthermore, a conical toothed roller is fixedly connected to the rear end of the first shaft located behind the upper surface of the base plate, and a second shaft is fixedly connected to the rear end of the central shaft of the first transmission wheel located on the left side of the side plate. A toothed disc is sleeved on the outer side wall of the second shaft, and the toothed disc meshes with the conical toothed roller.
[0015] Furthermore, a limiting opening is provided on the outer side wall of the second shaft column, and a limiting block is slidably connected inside the limiting opening. The outer side wall of the limiting block is fixedly connected to the inner side of the gear plate.
[0016] Furthermore, a pneumatic telescopic tube three is fixedly connected to the rear surface of the support plate located behind the upper surface of the base plate. An air vent four is integrally formed on the outer side wall of the pneumatic telescopic tube three. A concave connecting block is fixedly connected to the rear end of the pneumatic telescopic tube three on the outer side of the gear plate.
[0017] Furthermore, the storage box has a through-type discharge port on the right side, and the storage box has an integrally formed through-type L-shaped actuating groove on the left side and bottom. An electric telescopic rod is fixedly connected to the right side of the front surface of the side plate located in front of the upper surface of the bottom plate, and a clamping plate is fixedly connected to the rear end of the output end of the electric telescopic rod between the two side plates.
[0018] Beneficial effects:
[0019] Multiple aluminum panel curtain walls to be tested for hardness are placed inside the storage box. By moving the actuating column back and forth along the L-shaped actuating groove, the aluminum panel curtain walls can be pushed out from the discharge port in sequence. They are then transferred between the two side plates by the transmission roller. Activating the electric telescopic rod can push the clamping plate to move and clamp the aluminum panel curtain wall, ensuring that the aluminum panel curtain wall does not move easily during testing. This method can be used for transmission testing of multiple aluminum panel curtain walls.
[0020] The drive motor is started, and the cam sequentially squeezes multiple push rods, allowing the gas inside multiple pressure boxes to be sequentially filled into multiple pneumatic telescopic tubes. This controls multiple pressure heads to descend sequentially and perform pressure tests on the aluminum panel curtain wall to detect its hardness. Multiple positioning can be detected. At the same time, the electric telescopic rods can be controlled to extend and retract intermittently, thus intermittently squeezing the aluminum panel curtain wall, allowing for more comprehensive multi-point detection of the aluminum panel curtain wall during transmission.
[0021] When the dual-axis motor starts, it drives the transmission roller to rotate, which in turn drives the eccentric disc to rotate. This causes the sliding plate and the actuating column to move to the right together. At this time, the aluminum panel curtain wall stored in the storage box can be pushed out of the discharge port for subsequent testing. The lifting bar can be raised or lowered by controlling the rotation of the threaded rod, and the height of the actuating column extending from the L-shaped rod can be controlled, so as to adjust the aluminum panel curtain wall with different thicknesses as needed.
[0022] The meshing of the conical toothed roller and the toothed disc causes the second transmission roller to rotate relative to the first transmission roller when the first transmission roller rotates. This facilitates the transfer of the aluminum panel curtain wall pushed to the outlet to multiple transmission rollers. When the extension length is controlled by the actuating column, gas can be exchanged between the third and second pneumatic telescopic tubes, thereby controlling the movement of the toothed disc and its meshing with the conical toothed roller at different positions. At the same time, it will drive the second transmission roller to rise or fall, which can be adjusted according to the different thicknesses of the aluminum panel curtain wall. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 This is a schematic diagram of the rear view structure of the present invention;
[0025] Figure 3 In this invention Figure 1 A structural diagram after removing the storage box;
[0026] Figure 4 This is a schematic diagram of the internal structure of the pressure box of the present invention;
[0027] Figure 5 This is a side view schematic diagram of the connection structure of the guide rail, sliding plate, lifting bar and L-shaped rod of the present invention;
[0028] Figure 6 This is a side view of the vertical cross-section of the lifting box of the present invention;
[0029] Figure 7 This is a schematic diagram of the structure of the second shaft column of the present invention.
[0030] In the diagram: 1. Base plate; 2. Side plate; 3. Drive roller 1; 4. Dual-axis motor; 5. U-shaped frame; 6. Pneumatic telescopic tube 1; 7. Pressure sensor; 8. Pressure head; 9. Drive motor; 10. Cam; 11. Pressure box; 12. Vent 2; 13. Piston plate; 14. Spring 1; 15. Push rod; 16. Support plate; 17. Storage box; 18. Drive wheel 1; 19. Drive belt 1; 20. Guide rail; 21. Sliding plate; 22. L-shaped rod; 23. Lifting box; 24. Lifting groove; 25. Lifting block; 26. Actuating column; 27. Lifting bar; 28. Threaded rod; 29. 30. Rotating rod; 31. Transmission wheel 2; 32. Transmission belt 2; 33. Eccentric disc; 34. Traction rod; 35. Rotating connector; 36. Pneumatic telescopic tube 2; 37. Air nozzle 3; 48. Adjustment port; 39. Shaft column 1; 40. Transmission roller 2; 41. Spring 2; 42. Arc-shaped stop block; 43. Conical toothed roller; 44. Shaft column 2; 45. Toothed disc; 46. Limiting port; 47. Limiting block; 48. Pneumatic telescopic tube 3; 49. Air nozzle 4; 50. Concave connecting block; 51. Discharge port; 52. L-shaped actuating groove; 53. Air nozzle 1; 54. Electric telescopic rod; 55. Clamping plate. Detailed Implementation
[0031] To make the technical solution of the present invention clearer, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0032] Example 1
[0033] like Figure 1 , Figure 2 ,and Figure 3As shown, a performance testing device for high-rise aluminum panel curtain walls based on BIM technology is provided. This device includes a base plate 1. Side plates 2 are symmetrically fixedly connected to the right side of the upper surface of the base plate 1. Multiple transmission rollers 3 are rotatably connected between two opposite side plates 2 via a rotating shaft. A dual-axis motor 4 is fixedly connected to the front surface of the side plate 2 located in front of the upper surface of the base plate 1. The rear end of the output shaft of the dual-axis motor 4 is fixedly connected to the front end of the central shaft of the transmission rollers 3 located on the left side of the upper surface of the base plate 1. The right side of the upper surface of the base plate 1 is symmetrically fixedly connected to the side plates 2. A support plate 16 is attached, and a storage box 17 is fixedly connected to the top of the two support plates 16. The rear ends of the central shafts of multiple transmission rollers 3 are all fixedly connected to transmission wheels 18. The outer side walls of the transmission wheels 18 are connected to a transmission belt 19. A through-type discharge port 50 is opened on the right side of the storage box 17. A through-type L-shaped actuation groove 51 is integrally formed on the left side and bottom of the storage box 17. An electric telescopic rod 53 is fixedly connected to the right side of the front surface of the side plate 2 located in front of the upper surface of the bottom plate 1. A clamping plate 54 is fixedly connected to the rear end of the output end of the electric telescopic rod 53 between the two side plates 2.
[0034] When using the device, multiple aluminum panel curtain walls to be tested for hardness can be placed inside the storage box 17. By moving the actuating column 26 back and forth along the L-shaped actuating groove 51, the aluminum panel curtain walls can be pushed out from the discharge port 50 in sequence. After being transmitted through the transmission roller 3, they are transferred between the two side plates 2. Activating the electric telescopic rod 53 can push the clamping plate 54 to move and clamp the aluminum panel curtain wall, ensuring that the aluminum panel curtain wall is not easily moved during testing. This method can perform transmission testing on multiple aluminum panel curtain walls.
[0035] like Figure 1 and Figure 4 As shown, a U-shaped frame 5 is fixedly connected to the top of both side plates 2. Multiple pneumatic telescopic tubes 6 are fixedly connected to the upper surface of the U-shaped frame 5. The bottom end of each pneumatic telescopic tube 6 extends through to the bottom of the U-shaped frame 5 and is fixedly connected to a pressure sensor 7. A pressure head 8 is fixedly connected to the bottom end of the pressure sensor 7. A vent 52 is fixedly connected to the top end of each pneumatic telescopic tube 6. A drive motor 9 is fixedly connected to the front surface of the side plate 2 located in front of the upper surface of the base plate 1. The front end of the output shaft of the drive motor 9 is fixedly connected to... The cam 10 has multiple pressure boxes 11 on the outer wall of the drive motor 9. The pressure boxes 11 are fixedly connected to the opposite side of the side plate 2. The outer wall of the pressure box 11 is fixedly connected to the air vent 12. The piston plate 13 is slidably connected inside the pressure box 11. Multiple springs 14 are fixedly connected between the piston plate 13 and the pressure box 11. A push rod 15 is fixedly connected to the end of the piston plate 13 away from the springs 14. The end of the push rod 15 away from the piston plate 13 is in contact with the outer wall of the cam 10.
[0036] Vent 12 and vent 52 are connected by a ventilation hose. When the aluminum panel curtain wall moves under multiple pressure heads 8 and is clamped by clamping plate 54, the drive motor 9 can be started. The cam 10 presses multiple push rods 15 in sequence, so that the gas inside multiple pressure boxes 11 can be sequentially filled into multiple pneumatic telescopic tubes 6. The multiple pressure heads 8 are controlled to descend in sequence, and the aluminum panel curtain wall is pressure tested to detect its hardness. Multiple positioning can be detected. At the same time, the aluminum panel curtain wall can be intermittently pressed by controlling the electric telescopic rod 53 to extend and retract. This allows for more comprehensive multi-point detection of the aluminum panel curtain wall during transmission.
[0037] like Figure 3 , Figure 5 , Figure 6 and Figure 7 As shown, guide rails 20 are fixedly connected to opposite sides of the support plate 16. A sliding plate 21 is slidably connected to opposite sides of the two guide rails 20. L-shaped rods 22 are symmetrically fixedly connected to the upper surface of the sliding plate 21. A lifting box 23 is fixedly connected below the L-shaped rods 22. Lifting slots 24 are provided on opposite sides of the two opposing lifting boxes 23. Lifting blocks 25 are slidably connected inside the lifting boxes 23. A toggle post 26 is fixedly connected to the upper surface of the lifting block 25. The top of the toggle post 26 extends through to the top of the L-shaped rod 22 and is slidably connected to it. Lifting bars 27 are fixedly connected to opposite sides of the two lifting blocks 25. A threaded rod 28 is threadedly connected to the center of the upper surface of the lifting bar 27. The bottom end of 28 extends to the bottom of the lifting bar 27 and is rotatably connected to the upper surface of the sliding plate 21 via a rotating shaft. The front surface of the support plate 16 located in front of the upper surface of the base plate 1 is rotatably connected to the rotating rod 29 via a rotating shaft. The front end of the rotating rod 29 and the front end of the output shaft of the dual-axis motor 4 are both fixedly connected to the transmission wheel 30. The outer side walls of the two transmission wheels 30 are connected to the transmission belt 31. The rear end of the rotating rod 29 extends between the two support plates 16 and is fixedly connected to the eccentric disc 32. The left side of the rear surface of the eccentric disc 32 is rotatably connected to the traction rod 33 via a rotating shaft. The left end of the traction rod 33 is rotatably connected to the rotating connector 34 via a rotating shaft. The left end of the rotating connector 34 is fixedly connected to the right side of the sliding plate 21.
[0038] When the dual-axis motor 4 starts and drives the transmission roller 3 to drive the transmission, it can drive the eccentric disk 32 to rotate, thereby pulling the sliding plate 21 to move left and right repeatedly along the guide rail 20. When the sliding plate 21 moves to the right, the actuating column 26 will move to the right as well. At this time, the aluminum panel curtain wall stored in the storage box 17 can be pushed out from the discharge port 50 for subsequent inspection. The lifting bar 27 can be raised or lowered by controlling the rotation of the threaded rod 28, and the height of the actuating column 26 extending from the L-shaped rod 22 can be controlled, so as to facilitate the adjustment of aluminum panel curtain walls of different thicknesses as needed.
[0039] A pneumatic telescopic tube 25 is fixedly connected to the rear of the lower surface of the sliding plate 21. An air nozzle 36 is integrally formed on the outer wall of the pneumatic telescopic tube 25. A pneumatic telescopic tube 37 is fixedly connected to the rear surface of the support plate 16 located behind the upper surface of the base plate 1. An air nozzle 48 is integrally formed on the outer wall of the pneumatic telescopic tube 37. A concave connecting block 49 is fixedly connected to the rear end of the pneumatic telescopic tube 37 located outside the gear plate 44. An adjustment port 37 is opened on the front surface of the side plate 2 above the dual-axis motor 4. A shaft column 38 is set inside the adjustment port 37. The opposite ends of the two shaft columns 38 are fixedly connected to the transmission roller 3. 9. A spring 40 is fixedly connected to the upper surface of the adjustment port 37. An arc-shaped abutment 41 is fixedly connected to the bottom end of the spring 40 on the outer side wall of the shaft column 38. A conical toothed roller 42 is fixedly connected to the rear end of the shaft column 38 located behind the upper surface of the base plate 1. A shaft column 43 is fixedly connected to the rear end of the central shaft of the transmission wheel 18 located on the left side plate 2. A toothed disc 44 is sleeved on the outer side wall of the shaft column 43. The toothed disc 44 meshes with the conical toothed roller 42. A limiting port 45 is opened on the outer side wall of the shaft column 43. A limiting block 46 is slidably connected inside the limiting port 45. The outer side wall of the limiting block 46 is fixedly connected to the inner side of the toothed disc 44.
[0040] The engagement of the conical toothed roller 42 with the toothed disc 44 causes the transmission roller 39 to rotate relative to the transmission roller 3 when the transmission roller 3 rotates. This facilitates the transfer of the aluminum panel curtain wall pushed to the discharge port 50 between multiple transmission rollers 3. Furthermore, the ventilation nozzles 48 and 36 can be connected by a pipe, allowing the pneumatic telescopic tubes 47 and 35 to exchange gas when the extension length is controlled by the actuating column 26. This controls the movement of the toothed disc 44, which engages with the conical toothed roller 42 at different positions. Simultaneously, it drives the transmission roller 39 to rise or fall, allowing for adjustment based on the thickness of the aluminum panel curtain wall.
[0041] The embodiments described above are merely illustrative of several implementations of the present invention, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these modifications and improvements all fall within the scope of protection of the present invention. Therefore, the scope of protection of this patent should be determined by the appended claims.
Claims
1. A high-rise aluminum plate curtain wall performance detection device based on BIM technology, comprising a bottom plate (1), characterized in that: The upper surface right side of the bottom plate (1) is fixedly connected with the side plate (2) in front and back symmetry, a plurality of transmission rollers one (3) are rotatably connected between the two side plates (2) opposite to each other, the front surface of the side plate (2) located in the front of the upper surface of the bottom plate (1) is fixedly connected with a double-shaft motor (4), and the rear end of the output shaft of the double-shaft motor (4) is fixedly connected with the center shaft of the transmission roller one (3) located in the left side of the upper surface of the bottom plate (1). The top of the two side plates (2) is fixedly connected with a U-shaped frame (5), the upper surface of the U-shaped frame (5) is fixedly connected with a plurality of pneumatic telescopic pipes one (6), the bottom end of the pneumatic telescopic pipe one (6) penetrates to the lower side of the U-shaped frame (5), and a pressure sensor (7) is fixedly connected, the bottom end of the pressure sensor (7) is fixedly connected with a pressure head (8), and the top end of the pneumatic telescopic pipe one (6) is fixedly connected with a gas nozzle one (52). The front surface of the side plate (2) located in the front of the upper surface of the bottom plate (1) is fixedly connected with a driving motor (9), the front end of the output shaft of the driving motor (9) is fixedly connected with a cam (10), a plurality of air pressure boxes (11) are arranged on the outer side wall of the driving motor (9), the air pressure boxes (11) are fixedly connected with the opposite sides of the side plate (2), the outer side wall of the air pressure box (11) is fixedly connected with a gas nozzle two (12), the inside of the air pressure box (11) is slidably connected with a piston plate (13), a plurality of springs one (14) are fixedly connected between the piston plate (13) and the air pressure box (11), the end, away from the spring one (14), of the piston plate (13) is fixedly connected with a push rod (15), and the end, away from the piston plate (13), of the push rod (15) is attached to the outer side wall of the cam (10) The upper surface right side of the bottom plate (1) is fixedly connected with the support plate (16) in front and back symmetry, the top of the two support plates (16) is fixedly connected with a storage box (17), the rear end of the center shaft of the plurality of transmission rollers one (3) is fixedly connected with a transmission wheel one (18), and the outer side wall of the transmission wheel one (18) is commonly connected with a transmission belt one (19).
2. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 1, characterized in that: Both opposite sides of the support plate (16) are fixedly connected with guide rails (20), the opposite sides of the two guide rails (20) are commonly connected with a sliding plate (21) in a sliding mode, the upper surface of the sliding plate (21) is fixedly connected with L-shaped rods (22) in a front-rear symmetrical mode, the lower side of the L-shaped rod (22) is fixedly connected with lifting boxes (23), the opposite sides of the two lifting boxes (23) are both provided with lifting grooves (24), the inside of the lifting box (23) is slidably connected with lifting blocks (25), the upper surface of the lifting block (25) is fixedly connected with a push column (26), the top end of the push column (26) penetrates through the upper side of the L-shaped rod (22) and is slidably connected with the L-shaped rod (22), the opposite sides of the two lifting blocks (25) are commonly fixedly connected with lifting strips (27), the upper surface center of the lifting strip (27) is threadedly connected with a threaded rod (28), the bottom end of the threaded rod (28) penetrates through the lower side of the lifting strip (27) and is rotatably connected with the upper surface of the sliding plate (21) through a rotating shaft.
3. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 2, characterized in that: The front surface of the support plate (16) located in front of the upper surface of the bottom plate (1) is rotatably connected with a rotating rod (29) through a rotating shaft, the front end of the rotating rod (29) and the front end of the output shaft of the double-shaft motor (4) are both fixedly connected with a second transmission wheel (30), the outer side walls of the two second transmission wheels (30) are commonly connected with a second transmission belt (31) in a transmission mode, the rear end of the rotating rod (29) extends between the two support plates (16) and is fixedly connected with an eccentric disc (32), the rear surface left side of the eccentric disc (32) is rotatably connected with a traction rod (33) through a rotating shaft, the left end of the traction rod (33) is rotatably connected with a rotating connecting piece (34) through a rotating shaft, the left end of the rotating connecting piece (34) is fixedly connected with the right side of the sliding plate (21).
4. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 2, characterized in that: The lower surface rear side of the sliding plate (21) is fixedly connected with a second pneumatic telescopic tube (35), the outer side wall of the second pneumatic telescopic tube (35) is integrally formed with an air nozzle (36).
5. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 1, characterized in that: The front surface of the side plate (2) located above the double-shaft motor (4) is provided with an adjusting opening (37), the inside of the adjusting opening (37) is provided with a first shaft column (38), the opposite ends of the two first shaft columns (38) are commonly fixedly connected with a second transmission roller (39), the upper surface of the adjusting opening (37) is fixedly connected with a second spring (40), the bottom end of the second spring (40) is fixedly connected with an arc-shaped resisting block (41) on the outer side wall of the first shaft column (38).
6. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 5, characterized in that: The rear end of the first shaft column (38) located behind the upper surface of the bottom plate (1) is fixedly connected with a conical tooth roller (42), the rear end of the central shaft of the first transmission wheel (18) located left of the side plate (2) is fixedly connected with a second shaft column (43), the outer side wall of the second shaft column (43) is sleeved with a tooth disc (44), the tooth disc (44) is meshedly connected with the conical tooth roller (42).
7. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 6, characterized in that: The outer side wall of the axle column two (43) is provided with a limiting opening (45), the inner side of the limiting opening (45) is slidably connected with a limiting block (46), and the outer side wall of the limiting block (46) is fixedly connected with the inner side of the tooth disc (44).
8. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 7, characterized in that: The rear surface of the supporting plate (16) located at the rear of the upper surface of the bottom plate (1) is fixedly connected with a pneumatic telescopic pipe three (47), the outer side wall of the pneumatic telescopic pipe three (47) is integrally formed with a vent four (48), and the rear rear end of the pneumatic telescopic pipe three (47) is fixedly connected with a concave connecting block (49) located at the outer side of the tooth disc (44).
9. The high-rise aluminum plate curtain wall performance detection device based on BIM technology according to claim 1, characterized in that: The right side of the storage box (17) is provided with a through-type discharge port (50), the left side and the bottom of the storage box (17) are integrally formed with a through-type L-shaped pushing groove (51), the front surface right side of the side plate (2) located at the front of the upper surface of the bottom plate (1) is fixedly connected with an electric telescopic rod (53), and the output end rear end of the electric telescopic rod (53) is fixedly connected with a clamping plate (54) located between the two side plates (2).
Citation Information
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