Curtain wall aluminum plate wind load deformation monitoring device and system
By introducing pneumatic and hydraulically driven automated structures into the curtain wall aluminum plate wind load deformation monitoring system, the problems of aluminum plate sinking and jamming are solved, and automated monitoring and restoration of aluminum plate wind load deformation is realized to ensure data accuracy.
Patent Information
- Application Number
- CN202421677270.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-07-15
AI Technical Summary
After the existing curtain wall aluminum plate wind load deformation monitoring system is loaded, the aluminum plate frame is too large and the middle part sinks, affecting the wind load deformation monitoring data. Moreover, the aluminum plate after the wind load deformation is easily stuck between the static pressure box and needs to be manually restored.
The structures of the lower static pressure box, the upper static pressure box, the support column, the sealing component, the support component, the flattening component and the sliding rod are adopted, combined with pneumatic and hydraulic drives, and the automatic loading and deformation monitoring of the aluminum plate is realized. The elastic support of the spring column and the rubber plate is used to prevent the middle from sinking, and the hydraulic cylinder drives the lifting rod for reduction.
Automatic monitoring and reduction of air load deformation of aluminum plates is realized, manual intervention is avoided, and the accuracy of monitoring data and the normal operation of the equipment is ensured.
Smart Images

Figure CN223139161U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wind load deformation monitoring systems for curtain wall aluminum plate frames, and specifically relates to a wind load deformation monitoring device and system for curtain wall aluminum plates. Background Technique
[0002] Wind load is rather special. By using a box body and the action of a blower fan, wind pressure is generated at the lower part inside the box body, and the pressure is increased step by step until the test piece is damaged. The wind load deformation monitoring system test machine for curtain wall aluminum plate frames adopts two static pressure box bodies, namely an upper one and a lower one, with the test piece of the curtain wall aluminum plate frame clamped in the middle; it is connected to the respective independent pressure generating wind source, pipeline system and water pipeline system. Its main functions are to complete the airtightness, watertightness performance tests of the curtain wall aluminum plate frame surface, as well as the static wind load and dynamic wind load performance tests, and to complete the real-time wind pressure monitoring of each layer inside the structure of the curtain wall aluminum plate frame surface.
[0003] After the existing wind load deformation monitoring system for curtain wall aluminum plates is loaded with materials, when the area of the curtain wall aluminum plate frame is too large and wind load deformation monitoring has not been carried out, the middle part of the curtain wall aluminum plate frame sags, affecting the wind load deformation monitoring data. The curtain wall aluminum plate frame after wind load deformation is easily stuck between the two static pressure box bodies and needs to be manually restored for unloading. Content of the Utility Model
[0004] The purpose of the utility model is to provide a wind load deformation monitoring device and system for curtain wall aluminum plates, so as to solve the problems raised in the above background technique.
[0005] To achieve the above purpose, the utility model provides the following technical solutions:
[0006] A wind load deformation monitoring device and system for curtain wall aluminum plates includes a lower static pressure box body, an upper static pressure box body, support columns and a sealing component. The upper static pressure box body is movably installed at the top of the lower static pressure box body. The lower static pressure box body is fixedly connected with support columns at the bottom. The installation positions of the sealing component are provided with the lower static pressure box body and the upper static pressure box body. It also includes:
[0007] A support component, installed on the lower static pressure box body;
[0008] A flattening component, arranged on the upper static pressure box body;
[0009] Among them, a curtain wall aluminum plate frame pressing plate is movably installed at the top of the upper static pressure box body. A feeding port is opened at the front end of the upper static pressure box body. A curtain wall aluminum plate frame is movably installed inside the feeding port. A limiting card hole plate is fixedly connected to the top of the feeding port. A bolt is threadedly connected to the fixing position on the curtain wall aluminum plate frame. A sliding rod is movably installed at the front end of the curtain wall aluminum plate frame.
[0010] The curtain wall aluminum plate wind load deformation monitoring device and system as described above: The sliding rod slides into the inside of the loading port by pneumatically driving the curtain wall aluminum plate rack.
[0011] The curtain wall aluminum plate wind load deformation monitoring device and system as described above: The limit card hole plate on the loading port is aligned with the curtain wall aluminum plate rack, and the bolt thread penetrates through the inside of the limit card hole plate and the curtain wall aluminum plate rack.
[0012] The curtain wall aluminum plate wind load deformation monitoring device and system as described above: The support assembly includes a mounting frame fixedly connected inside the lower static pressure box body. A spring column is movably installed at the bottom end of the mounting frame, a rubber plate is fixed at the top end of the spring column, and an air outlet is opened inside the rubber plate.
[0013] The curtain wall aluminum plate wind load deformation monitoring device and system as described above: The mounting frame and the spring column elastically support at the bottom end of the rubber plate.
[0014] The curtain wall aluminum plate wind load deformation monitoring device and system as described above: The flattening assembly includes a hydraulic cylinder fixedly installed inside the upper static pressure box body, and a lifting rod is movably installed at the top end of the hydraulic cylinder.
[0015] The curtain wall aluminum plate wind load deformation monitoring device and system as described above: The lifting rod is connected to the pressing plate of the curtain wall aluminum plate rack, and the hydraulic cylinder hydraulically drives the lifting rod and the pressing plate of the curtain wall aluminum plate rack to perform a lifting movement.
[0016] Compared with the prior art, the beneficial effects of the present utility model are: The spring column and the rubber plate can elastically support at the bottom of the curtain wall aluminum plate. After the curtain wall aluminum plate rack is loaded with wind load deformation monitoring system, the spring column and the rubber plate elastically sink with the gravity of the curtain wall aluminum plate. The user can record data through the curtain wall aluminum plate rack wind load deformation monitoring system, which is beneficial for wind load deformation monitoring when the area of the curtain wall aluminum plate rack is too large, and prevents the middle part of the curtain wall aluminum plate from sinking and affecting the wind load deformation monitoring data.
[0017] The curtain wall aluminum plate with wind load deformation can be hydraulically pressed and restored, avoiding the curtain wall aluminum plate after wind load deformation from being stuck between the two lower static pressure box bodies and the upper static pressure box body. Then, through the sliding rod and the curtain wall aluminum plate rack, relying on the pneumatic equipment of the curtain wall aluminum plate rack wind load deformation monitoring device, pneumatic driving for loading and unloading is carried out. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a three-dimensional structural schematic diagram of the present utility model;
[0019] Figure 2 It is a structural schematic diagram of the support assembly of the present utility model;
[0020] Figure 3This is a schematic structural diagram of the flattening component of the utility model.
[0021] In the figure: 1, lower static pressure box body; 2, upper static pressure box body; 3, pressing plate for curtain wall aluminum plate frame; 4, feeding port; 5, limit card hole plate; 6, curtain wall aluminum plate frame; 7, bolt; 8, sliding rod; 9, support column; 10, air outlet; 11, spring column; 12, rubber plate; 13, mounting bracket; 14, lifting rod; 15, hydraulic cylinder. Specific embodiments
[0022] The following will refer to the accompanying drawings to detail various exemplary embodiments, features, and aspects of the present application. The same reference numerals in the drawings denote elements having the same or similar functions. Although various aspects of the embodiments are shown in the drawings, the drawings do not have to be drawn to scale unless otherwise specified.
[0023] The special term "exemplary" herein means "serving as an example, embodiment, or illustration". Any embodiment described herein as "exemplary" does not have to be construed as superior to or better than other embodiments.
[0024] In addition, for a better description of the present application, numerous specific details are given in the following specific embodiments. Those skilled in the art should understand that the present application can be implemented without some specific details. In some instances, methods, means, and elements well known to those skilled in the art are not described in detail to highlight the gist of the present application.
[0025] Please refer to Figures 1 to 3 , a curtain wall aluminum plate wind load deformation monitoring device and system are proposed, including a lower static pressure box body 1, an upper static pressure box body 2, a support column 9, and a sealing component.
[0026] An upper static pressure box body 2 is movably installed at the top of the lower static pressure box body 1, a support column 9 is fixedly connected to the bottom end of the lower static pressure box body 1, the installation part of the sealing component is provided with the lower static pressure box body 1 and the upper static pressure box body 2, a support component is installed on the lower static pressure box body 1; a flattening component is provided on the upper static pressure box body 2;
[0027] The support column 9 is fixedly connected to the bottom end of the lower static pressure box body 1, so that the support column 9 fixedly supports the bottom ends of the lower static pressure box body 1 and the upper static pressure box body 2, and then the curtain wall aluminum plate frame is installed between the lower static pressure box body 1 and the upper static pressure box body 2, clamping the test piece of the curtain wall aluminum plate frame in the middle;
[0028] Among them, a pressing plate 3 for the curtain wall aluminum plate frame is movably installed at the top of the upper static pressure box body 2, a feeding port 4 is opened at the front end of the upper static pressure box body 2, a curtain wall aluminum plate frame 6 is movably installed inside the feeding port 4, a limit card hole plate 5 is fixedly connected to the top end of the feeding port 4, a bolt 7 is threadedly connected to the fixed part of the curtain wall aluminum plate frame 6, and a sliding rod 8 is movably installed at the front end of the curtain wall aluminum plate frame 6.
[0029] In this embodiment, the user can place the curtain wall aluminum plate inside the curtain wall aluminum plate rack 6. The curtain wall aluminum plate rack 6 is pneumatically pushed into the feeding port 4 through the sliding rod 8, so that the curtain wall aluminum plate slides and inserts between the lower static pressure box 1 and the upper static pressure box 2. Then, the bolt 7 on the curtain wall aluminum plate rack 6 is disassembled by threading, and the bolt 7 penetrates through the limit card hole plate 5 and the curtain wall aluminum plate rack 6, and can fix and limit the curtain wall aluminum plate on the curtain wall aluminum plate rack 6 by buckling.
[0030] Preferably, the sliding rod 8 pneumatically drives the curtain wall aluminum plate rack 6 to slide into the feeding port 4. The curtain wall aluminum plate on the curtain wall aluminum plate rack 6 can be fed through the feeding port 4 between the lower static pressure box 1 and the upper static pressure box 2, which is convenient for the sliding rod 8 and the curtain wall aluminum plate rack 6 to perform pneumatic driving for loading and unloading through the curtain wall aluminum plate rack wind load deformation monitoring device.
[0031] Preferably, the limit card hole plate 5 on the feeding port 4 is aligned with the curtain wall aluminum plate rack 6, the bolt 7 is threaded through the limit card hole plate 5 and the inside of the curtain wall aluminum plate rack 6. After the curtain wall aluminum plate rack 6 is pneumatically pushed into the feeding port 4 through the sliding rod 8, so that the curtain wall aluminum plate slides and inserts between the lower static pressure box 1 and the upper static pressure box 2, then the bolt 7 is threadedly buckled on the feeding port 4 and the curtain wall aluminum plate rack 6 for fixed installation.
[0032] Please refer to Figure 1 and Figure 2 In this embodiment, the support assembly includes a mounting frame 13 fixedly connected inside the lower static pressure box 1. A spring column 11 is movably installed at the bottom end of the mounting frame 13, a rubber plate 12 is fixed at the top end of the spring column 11, and an air outlet 10 is formed inside the rubber plate 12.
[0033] The lower static pressure box 1 and the upper static pressure box 2 have their own independent pressure generating wind sources. The mounting frame 13 is installed at the pressure generating wind source, so that the pressure generating wind source passes through the middle of the spring column 11, the rubber plate 12 and the air outlet 10, and can perform wind load deformation monitoring on the curtain wall aluminum plate between the lower static pressure box 1 and the upper static pressure box 2.
[0034] Preferably, the mounting frame 13 and the spring column 11 are elastically supported at the bottom end of the rubber plate 12. When the curtain wall aluminum plate on the curtain wall aluminum plate rack 6 is fed through the feeding port 4 by pneumatic driving between the lower static pressure box 1 and the upper static pressure box 2, the spring column 11 and the rubber plate 12 can elastically support at the bottom of the curtain wall aluminum plate. After the curtain wall aluminum plate rack wind load deformation monitoring system is loaded, the spring column 11 and the rubber plate 12 elastically sink with the gravity of the curtain wall aluminum plate. The user can record data through the curtain wall aluminum plate rack wind load deformation monitoring system, which is beneficial for performing wind load deformation monitoring when the area of the curtain wall aluminum plate rack is too large, and preventing the middle part of the curtain wall aluminum plate from sinking and affecting the wind load deformation monitoring data.
[0035] Please refer to Figure 1 andFigure 3 In this embodiment, the flattening assembly includes a hydraulic cylinder 15 fixedly installed inside the upper static pressure box body 2, and a lifting rod 14 is movably installed at the top of the hydraulic cylinder 15.
[0036] The hydraulic cylinder 15 is fixedly installed inside the upper static pressure box body 2, so that the lifting rod 14 on the hydraulic cylinder 15 is hydraulically supported at the bottom of the pressing plate 3 of the curtain wall aluminum plate frame. The pressing plate 3 of the curtain wall aluminum plate frame can be hermetically installed inside the upper static pressure box body 2.
[0037] Preferably, the lifting rod 14 is connected to the pressing plate 3 of the curtain wall aluminum plate frame. The hydraulic cylinder 15 hydraulically drives the lifting rod 14 and the pressing plate 3 of the curtain wall aluminum plate frame to perform lifting motion. After the wind load deformation of the curtain wall aluminum plate frame is monitored, the user can start the hydraulic cylinder 15 inside the upper static pressure box body 2. The hydraulic cylinder 15 can drive the pressing plate 3 of the curtain wall aluminum plate frame to perform lifting and pressing through the lifting rod 14, and can perform hydraulic pressing and restoration on the curtain wall aluminum plate with wind load deformation, so as to avoid the curtain wall aluminum plate after wind load deformation from being stuck between the two lower static pressure box bodies 1 and the upper static pressure box body 2. Then, through the sliding rod 8 and the curtain wall aluminum plate frame 6, relying on the pneumatic equipment of the curtain wall aluminum plate frame wind load deformation monitoring device, pneumatic driving for loading and unloading is carried out.
[0038] As can be seen from the above, the curtain wall aluminum plate is slidably inserted between the lower static pressure box body 1 and the upper static pressure box body 2, and then the bolt 7 on the curtain wall aluminum plate frame 6 is disassembled by threading. The bolt 7 penetrates through the limit card hole plate 5 and the curtain wall aluminum plate frame 6, and can perform snap-fixing and limiting on the curtain wall aluminum plate on the curtain wall aluminum plate frame 6. The lower static pressure box body 1 and the upper static pressure box body 2 have their own independent pressure generating air sources. The mounting frame 13 is installed at the pressure generating air source, so that the pressure generating air source passes through the middle of the spring column 11, the rubber plate 12 and the air outlet 10, and can perform wind load deformation monitoring on the curtain wall aluminum plate between the lower static pressure box body 1 and the upper static pressure box body 2.
[0039] After the wind load deformation of the curtain wall aluminum plate frame is monitored, the user can start the hydraulic cylinder 15 inside the upper static pressure box body 2. The hydraulic cylinder 15 can drive the pressing plate 3 of the curtain wall aluminum plate frame to perform lifting and pressing through the lifting rod 14, and can perform hydraulic pressing and restoration on the curtain wall aluminum plate with wind load deformation.
[0040] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights.
[0041] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment contains only an independent technical solution. This narrative manner of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A wind load deformation monitoring device for curtain wall aluminum plates, comprising a lower static pressure box body (1), an upper static pressure box body (2), a support column (9) and a sealing component. The upper static pressure box body (2) is movably installed at the top of the lower static pressure box body (1), the support column (9) is fixedly connected to the bottom end of the lower static pressure box body (1), and the installation positions on the sealing component are provided with the lower static pressure box body (1) and the upper static pressure box body (2), characterized in that: It also includes being provided with, a support component, installed on the lower static pressure box body (1); a flattening component, arranged on the upper static pressure box body (2); Among them, a curtain wall aluminum plate frame pressing plate (3) is movably installed at the top end of the upper static pressure box body (2), a feeding port (4) is opened at the front end of the upper static pressure box body (2), a curtain wall aluminum plate frame (6) is movably installed inside the feeding port (4), a limiting card hole plate (5) is fixedly connected to the top end of the feeding port (4), a bolt (7) is threadedly connected to the fixing part of the curtain wall aluminum plate frame (6), and a sliding rod (8) is movably installed at the front end of the curtain wall aluminum plate frame (6).
2. The wind load deformation monitoring device for curtain wall aluminum plates according to claim 1, wherein The sliding rod (8) pneumatically drives the curtain wall aluminum plate frame (6) to slide into the feeding port (4).
3. The wind load deformation monitoring device for curtain wall aluminum plates according to claim 1, wherein The limiting card hole plate (5) on the feeding port (4) is aligned with the curtain wall aluminum plate frame (6), and the bolt (7) threadedly penetrates through the limiting card hole plate (5) and the curtain wall aluminum plate frame (6).
4. A curtain wall aluminum plate wind load deformation monitoring device according to claim 1, characterized in that, The support component includes a mounting frame (13) fixedly connected inside the lower static pressure box body (1), a spring column (11) is movably installed at the bottom end of the mounting frame (13), a rubber plate (12) is fixed at the top end of the spring column (11), and an air outlet (10) is opened inside the rubber plate (12).
5. The curtain wall aluminum plate wind load deformation monitoring device according to claim 4, characterized in that, The mounting frame (13) and the spring column (11) elastically support the bottom end of the rubber plate (12).
6. The deformation monitoring device for curtain wall aluminum plates under wind load according to claim 1, wherein, The flattening component includes a hydraulic cylinder (15) fixedly installed inside the upper static pressure box body (2), and a lifting rod (14) is movably installed at the top end of the hydraulic cylinder (15).
7. A curtain wall aluminum plate wind load deformation monitoring device according to claim 6, characterized in that, The lifting rod (14) is connected to the curtain wall aluminum plate frame pressing plate (3), and the hydraulic cylinder (15) hydraulically drives the lifting rod (14) and the curtain wall aluminum plate frame pressing plate (3) to perform a lifting motion.
8. A wind load deformation monitoring system for a curtain wall aluminum plate frame, characterized in that: The curtain wall aluminum plate wind load deformation monitoring system is installed with the curtain wall aluminum plate wind load deformation monitoring device as described in any one of claims 1-7.