Glass curtain wall detection device

By designing a detection part that releases air pressure and a glass curtain wall detection device that slides the roller, the scratch problem of glass during the inspection process is solved, and high-precision and stable detection effect is achieved. It is suitable for building quality evaluation, maintenance and new product research and development.

CN223050652UActive Publication Date: 2025-07-01SHENZHEN SHENKE ENG TESTING CO LTD
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Patent Information

Application Number
CN202421636621.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-10
Publication Date
2025-07-01
Estimated Expiration
2034-07-10

AI Technical Summary

Technical Problem

The existing glass curtain wall flatness detection device is prone to scratches on the glass during the inspection process, and the accuracy and stability of light pressure detection are difficult to ensure.

Method used

A glass curtain wall detection device including a detection table, a sliding mechanism and a detection component is designed. The detection member is fitted with the glass curtain wall by releasing air pressure, reducing contact pressure, and sliding the detection member along the axial circumferential array through the arrangement of the rollers, reducing the risk of scratches.

Benefits of technology

It effectively reduces the scratch risk of glass curtain walls during the inspection process, improves the accuracy and stability of inspection, and is suitable for building quality assessment, maintenance and quality inspection in the research and development stages of new product.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model provides a glass curtain wall detection device which comprises a detection table for placing a glass curtain wall, and further comprises a sliding mechanism which is connected with the detection table and slides in the vertical direction of the detection table and the horizontal direction perpendicular to the vertical direction; comprising a detection assembly, and the detection assembly comprises a rolling shaft and a detection piece. The detection piece is connected and slides in the vertical direction and the horizontal direction perpendicular to the vertical direction, and the detection piece releases air pressure to be attached to the glass curtain wall so as to reduce the contact pressure between the detection piece and the glass curtain wall; the rolling shaft is connected with the sliding mechanism and slides in the vertical direction to be close to the detection table, and the detection pieces are arranged on the rolling shaft in an axial circumferential array mode. Through the structure, scratches to the glass curtain wall in the detection process are reduced.
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Description

Technical Field

[0001] This application relates to the field of building curtain walls, and particularly to a glass curtain wall detection device. Background Art

[0002] With the development of modern architecture, glass curtain walls, as a common form of building exterior walls, are widely used in various buildings. The flatness of a glass curtain wall is one of the important indicators to measure its quality. Therefore, the detection of the flatness of a glass curtain wall is particularly important. However, there are some problems with existing glass curtain wall flatness detection devices. For example, during the detection operation, the detection device is likely to cause damage to the glass, which restricts the development and application of glass curtain wall flatness detection devices.

[0003] Currently, in order to reduce scratches on the glass during detection, some technical solutions adopt a light-pressure detection method, reducing the contact pressure to reduce the risk of scratches. However, it is difficult to ensure the accuracy and stability of light-pressure detection, which is easily affected by external factors such as vibration and temperature changes. Therefore, a glass curtain wall detection device that reduces scratches on the glass curtain wall during detection is needed. Summary of the Utility Model

[0004] In view of this, it is necessary to provide a glass curtain wall detection device that reduces scratches on the glass curtain wall during detection to solve the above problems.

[0005] An embodiment of this application provides a glass curtain wall detection device, including a detection table for placing the glass curtain wall, and further including a sliding mechanism connected to the detection table to form sliding in the vertical direction and the horizontal direction perpendicular to the vertical direction of the detection table; including a detection component, the detection component including a roller and a detector. The detector is connected to slide in the vertical direction and the horizontal direction perpendicular to the vertical direction, and the detector releases air pressure to fit with the glass curtain wall to reduce the contact pressure with the glass curtain wall; the roller is connected to the sliding mechanism and slides vertically close to the detection table, and the detectors are arranged in a circumferential array along the axial direction of the roller. In at least one embodiment of this application,

[0006] In at least one embodiment of this application, the detector includes:

[0007] A detection part that fits with the glass curtain wall to release air pressure to fit and detect the glass curtain wall;

[0008] A clamping part that is connected to the roller and is located at one end of the roller away from the axis;

[0009] The air pressure part is integrally formed with the detection part at one end and the clamping part at the other end. The clamping part and the detection part are internally penetrated. The air pressure part stores gas. When the detection part is attached to the glass curtain wall, the detection part overlaps with the air pressure part.

[0010] In at least one embodiment of the present application, air holes are provided on the joint surface of the detection part and the glass curtain wall, where

[0011] When the detection part is attached to the glass curtain wall instantaneously, the air holes release gas;

[0012] When the detection part is released from the glass curtain wall instantaneously, the air holes collect gas into the air pressure part.

[0013] In at least one embodiment of the present application, a protective layer is provided on the joint surface of the detection table and the glass curtain wall to reduce glass scratches; the detection piece is made of a rubber structure to further prevent scratches on the glass curtain wall.

[0014] In at least one embodiment of the present application, the detection assembly further includes a clamping plate, and the clamping plate is connected to the clamping part to prevent the detection piece from deforming.

[0015] In at least one embodiment of the present application, the clamping plate is provided with a clamping hole corresponding to the air pressure part, and the air pressure part passes through the clamping hole and is attached to the clamping plate, located at the connection part of the clamping part and the air pressure part.

[0016] In at least one embodiment of the present application, the sliding mechanism includes a first sliding component and a second sliding component. The first sliding component is slidably connected along the vertical direction of the detection assembly. The second sliding component is slidably connected to the detection table in the horizontal direction. The second sliding component is located above the detection table. The first sliding component is connected to the second sliding component. The first sliding component is located at one end of the second sliding component close to the detection table.

[0017] In at least one embodiment of the present application, the first sliding component includes:

[0018] A first driving motor that generates power for sliding in the vertical direction;

[0019] A connecting shaft, one end of which is connected to the roller;

[0020] A telescopic rod, which is connected to the first driving motor, slides in the vertical direction and approaches the glass curtain wall, and is connected to the other end of the connecting shaft to drive the detection assembly to slide in the vertical direction.

[0021] In at least one embodiment of the present application, the second sliding component includes:

[0022] The second driving motor generates the power for sliding in the horizontal direction;

[0023] The connecting member, the second driving motor drives the connecting member to slide in the horizontal direction, and drives the first sliding assembly to slide in the horizontal direction, thereby driving the detection assembly to slide in the horizontal direction;

[0024] The conveying member, the connecting member slides in the horizontal direction along the conveying member.

[0025] In at least one embodiment of the present application, a glass curtain wall detection device further includes a support assembly. One end of the support assembly is connected to the detection table, and the other end is connected to the second sliding assembly. The support assembly is located at one end of the detection table away from the ground.

[0026] The provided glass curtain wall detection device releases air pressure through the detection member, fits and slides with the glass curtain wall, reduces the contact pressure, and thus effectively reduces the risk of scratching the glass curtain wall. At the same time, the setting of the rollers enables the detection member to slide freely in the axial circumferential array during the sliding process, providing a more detailed and stable detection for the glass curtain wall, and achieving the reduction of scratches generated during the detection of the glass curtain wall. Description of the Drawings

[0027] Figure 1 Is a perspective view of the glass curtain wall detection device described in the present application;

[0028] Figure 2 Is a left view of the glass curtain wall detection device described in the present application;

[0029] Figure 3 Is a sectional view of the detection assembly described in the present application;

[0030] Figure 4 Is Figure 3 The partial enlarged view of A-A in

[0031] Explanation of the Main Element Symbols

[0032] 100, glass curtain wall detection device; 10, detection table; 11, protective layer; 20, sliding mechanism; 21, first sliding assembly; 211, first driving motor; 212, connecting shaft; 213, telescopic rod; 22, second sliding assembly; 221, second driving motor; 222, connecting member; 223, conveying member; 30, detection assembly; 31, detection member; 311, detection part; 3111, air hole; 312, clamping part; 313, air pressure part; 32, roller; 33, clamping plate; 331, clamping hole; 40, support assembly; 60, horizontal direction; 70, vertical direction; 80, axial direction. Detailed Description of the Embodiments

[0033] The following will describe the embodiments of the present application in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments.

[0034] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be an intermediate component at the same time. When a component is considered to be "disposed on" another component, it can be directly disposed on the other component or there may be an intermediate component at the same time. The terms "top", "bottom", "upper", "lower", "left", "right", "front", "rear", and similar expressions used herein are only for the purpose of illustration.

[0035] An embodiment of the present application provides a glass curtain wall detection device, including a detection table for placing a glass curtain wall, and further including a sliding mechanism connected to the detection table to form sliding in the vertical direction and the horizontal direction perpendicular to the vertical direction of the detection table; including a detection component, the detection component includes a roller and a detection member. The detection member is connected to slide in the vertical direction and the horizontal direction perpendicular to the vertical direction, and the detection member releases air pressure to fit the glass curtain wall to reduce the contact pressure with the glass curtain wall; the roller is connected to the sliding mechanism and slides vertically close to the detection table, and the detection members are arranged in a circumferential array along the axial direction of the roller on the roller.

[0036] The above-provided glass curtain wall detection device releases air pressure through the detection member and fits and slides with the glass curtain wall, reducing the contact pressure, thereby effectively reducing the risk of scratching the glass curtain wall. At the same time, the setting of the roller enables the detection members to slide freely in a circumferential array along the axial direction during the sliding process, providing a more detailed and stable detection for the glass curtain wall, achieving a reduction in scratches generated during the detection of the glass curtain wall.

[0037] The following will describe in detail some embodiments of the present application in conjunction with the accompanying drawings. Without conflict, the following embodiments and the features in the embodiments can be combined with each other.

[0038] Please refer to Figures 1-4, an embodiment of the present application provides a glass curtain wall detection device 100, including a detection table 10 for placing the glass curtain wall, and further including a sliding mechanism 20 connected to the detection table 10 to form sliding in the vertical direction 70 and the horizontal direction 60 perpendicular to the vertical direction 70 of the detection table 10; including a detection component 30, the detection component 30 includes a roller 32 and a detector 31. The detector 31 is connected to slide in the vertical direction 70 and the horizontal direction 60 perpendicular to the vertical direction 70, and the detector 31 releases air pressure to fit with the glass curtain wall to reduce the contact pressure with the glass curtain wall; the roller 32 is connected to the sliding mechanism 20 and slides close to the detection table 10 in the vertical direction 70, and the detectors 31 are arranged in a circumferential array along the axial direction 80 of the roller 32 on the roller 32.

[0039] Specifically, the detection table 10 is the basis of the entire device, used to support and fix the glass curtain wall for detection. The sliding mechanism 20 is connected to the detection table 10 and can achieve horizontal sliding in the vertical direction 70 and the horizontal direction 60 perpendicular to the vertical direction 70 of the detection table 10. This design enables the detection device to operate on glass curtain walls of different heights and angles, increasing the flexibility and scope of detection. The detection component 30 is the core part of the device, used to actually contact and detect the glass curtain wall.

[0040] Furthermore, the detector 31 can slide in the vertical direction 70 and the horizontal direction 60 perpendicular to the vertical direction 70, and releases air pressure through the detector 31 to fit with the glass curtain wall. This design can reduce the contact pressure with the glass curtain wall and prevent damage to the glass. The roller 32 ensures that the detector 31 can accurately contact the glass curtain wall at various positions and angles, thereby improving the detection accuracy.

[0041] Still further, the sliding mechanism 20 can slide horizontally in the vertical direction 70 and the horizontal direction 60 perpendicular to the vertical direction 70 of the detection table 10, which increases the flexibility and scope of detection, enabling the detection device to adapt to glass curtain walls of different heights and angles. The design of the detector 31 can fit and slide with the glass curtain wall according to the air pressure change, thereby reducing the contact pressure with the glass curtain wall and preventing damage to the glass.

[0042] Even further, the detectors 31 can be arranged in a circumferential array along the axial direction 80 of the roller 32 to ensure accurate contact with the glass curtain wall at various positions and angles, thereby improving the detection accuracy. The entire device has a compact structure and is easy to operate, and can quickly and accurately complete the detection work of the glass curtain wall, saving labor and time costs.

[0043] In summary, after starting the device, the sliding mechanism 20 drives the roller 32 to slide in the vertical direction 70 and the direction perpendicular to the vertical direction 70 of the detection table 10. As the roller 32 slides, the detection member 31 begins to move along the axial direction 80 of the roller 32 and gradually approaches the glass curtain wall. At this time, the air pressure part 313 releases air pressure, causing the detection member 31 to closely fit the glass curtain wall. This fit ensures accurate detection results while reducing the contact pressure with the glass and preventing possible scratches.

[0044] In a specific embodiment, the detection member 31 includes: a detection part 311, a clamping part 312, and an air pressure part 313. The detection part 311 fits against the glass curtain wall to release air pressure and fit and detect the glass curtain wall; the clamping part 312 is connected to the roller 32 and is located at one end of the roller 32 away from the axis; one end of the air pressure part 313 is integrally formed with the detection part 311, and the other end is integrally formed with the clamping part 312. The inside of the clamping part 312 and the detection part 311 is penetrated, and the air pressure part 313 stores gas. When the detection part 311 fits against the glass curtain wall, the detection part 311 overlaps with the air pressure part 313.

[0045] Specifically, the detection part 311 is the part that directly contacts the glass curtain wall and is used to release air pressure and fit against the glass curtain wall. By adjusting the air pressure, the detection part 311 can closely fit the glass curtain wall, thereby ensuring the accuracy of the detection.

[0046] Further, the clamping part 312 is connected to the roller 32 and is located at one end of the roller 32 away from the axis. Its main function is to provide mechanical fixation to ensure that the detection member 31 does not deform during the sliding process.

[0047] Still further, the air pressure part 313 is integrally formed with both the detection part 311 and the clamping part 312. It acts as a gas storage part and can adjust the air pressure of the detection part 311. When the detection part 311 fits against the glass curtain wall, the air pressure part 313 overlaps with the detection part 311, ensuring the stability and uniform distribution of the air pressure.

[0048] In a specific embodiment, air holes 3111 are provided on the fitting surface of the detection part 311 and the glass curtain wall. Among them, when the detection part 311 fits against the glass curtain wall instantaneously, the air holes 3111 release gas; when the detection part 311 loosens from the glass curtain wall instantaneously, the air holes 3111 collect gas into the air pressure part 313.

[0049] Specifically, when the detection part 311 fits against the glass curtain wall, the air holes 3111 will release the pre-stored gas, helping the detection part 311 to more closely fit the glass curtain wall. This design helps to improve the accuracy and reliability of the detection, ensuring that the air pressure between the detection member 31 and the glass curtain wall is uniform and stable.

[0050] Furthermore, when the detection part 311 is released from the glass curtain wall, the air holes 3111 will collect the released gas and store it in the air pressure part 313. This design not only ensures the effective utilization of the gas but also prepares the air pressure for the next fitting.

[0051] Furthermore, this design is applicable to various scenarios that require high-precision and high-efficiency detection of glass curtain walls. For example, in building quality assessment, it can quickly and accurately detect minor defects or problems in the glass curtain wall; during the maintenance of the glass curtain wall, it can be used to check its performance and integrity; in the new product R & D stage, it can help manufacturers understand the performance characteristics of the glass curtain wall. This device improves the accuracy and efficiency of detection and provides strong technical support for related fields.

[0052] In a specific embodiment, a protective layer 11 is provided on the fitting surface between the detection table 10 and the glass curtain wall to reduce glass scratches. The detection part 31 is made of a rubber structure to further prevent scratches on the glass curtain wall.

[0053] Specifically, the protective layer 11 is provided on the fitting surface between the detection table 10 and the glass curtain wall, and its main purpose is to reduce the possible scratches on the glass curtain wall during the detection process. The materials of the glass curtain wall are usually very fragile and are easily damaged during friction or contact.

[0054] Furthermore, by introducing the protective layer 11, the direct contact and friction with the glass curtain wall during the detection process can be greatly reduced, thus effectively reducing damages such as scratches and breakages.

[0055] Furthermore, when the detection table 10 is fitted with the glass curtain wall, the protective layer 11 first contacts the glass curtain wall and absorbs most of the frictional force, playing a buffering role. This can ensure that the direct contact between the detection part 31 and the glass curtain wall is reduced to the minimum, further protecting the glass curtain wall from damage. It is applicable to various scenarios that require precise detection of glass curtain walls, such as building quality assessment, maintenance, or quality inspection during the new product R & D stage.

[0056] Furthermore, the detection part 31 is made of rubber material, making it have good elasticity and friction resistance. This structure ensures the softness and smoothness of the detection part 31 when it is fitted with the glass curtain wall, further preventing scratches on the glass curtain wall. Due to its unique physical properties, the rubber material can maintain a low friction coefficient during the close fitting with the glass curtain wall, thus reducing the possibility of scratches.

[0057] Furthermore, when the detection member 31 is attached to the glass curtain wall, the rubber structure enables it to flexibly adapt to the surfaces of glass curtain walls of various shapes and sizes, ensuring a tight fit while preventing scratches on the glass. This is also applicable to various scenarios where precise detection of glass curtain walls is required, especially in those occasions where frequent detection or extremely high detection accuracy is demanded.

[0058] In summary, by introducing the protective layer 11 and using the detection member 31 with a rubber structure, the problem of scratches that the glass curtain wall may face during the detection process is effectively solved. These designs improve the reliability and safety of the detection, especially in those application scenarios that require frequent and high-precision detection, and have high practical value.

[0059] In a specific embodiment, the detection assembly 30 further includes a clamping plate 33, and the clamping plate 33 is connected to the clamping portion 312 to prevent the detection member 31 from deforming.

[0060] Specifically, the main function of the clamping plate 33 is to be connected to the clamping portion 312 of the detection member 31 to ensure that the detection member 31 will not deform or shift due to external forces during the sliding process. By providing the clamping plate 33, the detection member 31 can be effectively fixed, enabling it to remain stable under various test conditions and ensuring the accuracy and reliability of the detection results.

[0061] Furthermore, when the detection member 31 is connected to the clamping portion 312, the clamping plate 33 will be attached to and connected with the air pressure portion 313. Due to the pressure of the air pressure portion 313, the clamping plate 33 will fit more closely with the clamping portion 312, further enhancing the fixing effect on the detection member 31. This is applicable to various scenarios that require high-precision and high-efficiency detection of glass curtain walls, such as building quality assessment, maintenance, or quality inspection during the new product R & D stage. Through this design, accurate detection results can be ensured under various complex environments and conditions.

[0062] In a specific embodiment, the clamping plate 33 is provided with a clamping hole 331 corresponding to the air pressure portion 313, and the air pressure portion 313 passes through the clamping hole 331 to be attached to and connected with the clamping plate 33, located at the connection between the clamping portion 312 and the air pressure portion 313.

[0063] Specifically, the main function of the clamping hole 331 is to provide a connection point between the air pressure portion 313 and the clamping plate 33. By having the air pressure portion 313 pass through the clamping hole 331, the clamping plate 33 can closely fit with the air pressure portion 313 to ensure the stability of the detection member 31.

[0064] Furthermore, the design of the clamping hole 331 avoids loosening or displacement between the air pressure portion 313 and the clamping plate 33, improving the overall stability and reliability of the detection device.

[0065] Furthermore, when the air pressure part 313 passes through the clamping hole 331 and fits with the clamping plate 33, due to the pressure of the air pressure part 313, the clamping hole 331 will fit more closely with the air pressure part 313, enhancing the fixing effect. It is applicable to various scenarios that require high-precision and high-efficiency detection of glass curtain walls, such as building quality assessment, maintenance, or quality inspection during the new product R & D stage. Through this design, accurate detection results can be ensured under various complex environments and conditions.

[0066] In a specific embodiment, the first sliding component 21 includes: a first driving motor 211, a connecting shaft 212, and a telescopic rod 213. The first driving motor 211 generates power to slide along the vertical direction 70. One end of the connecting shaft 212 is connected to the roller 32. The telescopic rod 213 is connected to the first driving motor 211, slides along the vertical direction 70 and approaches the glass curtain wall, and is connected to the other end of the connecting shaft 212 to drive the detection component 30 to slide in the vertical direction 70.

[0067] Specifically, the first driving motor 211 provides power for the device to slide along the vertical direction 70, ensuring that the detection component 30 can slide stably and accurately. One end of the connecting shaft 212 is connected to the roller 32, serving as a medium for transmitting power to ensure that the detection component 30 can slide along a predetermined trajectory. The telescopic rod 213 is connected to the first driving motor 211, and the telescopic rod 213 can slide along the vertical direction 70 and approach the glass curtain wall. When the telescopic rod 213 is connected to the other end of the connecting shaft 212, it can drive the detection component 30 to slide in the vertical direction 70.

[0068] Furthermore, when the first driving motor 211 is started, it drives the telescopic rod 213 to slide along the vertical direction 70 and approach the glass curtain wall through the connecting shaft 212. The telescopic rod 213 is connected to the other end of the connecting shaft 212, thereby driving the detection component 30 to slide in the vertical direction 70. This design ensures that the sliding of the detection component 30 is stable, continuous, and precise.

[0069] In a specific embodiment, the second sliding component 22 includes: a second driving motor 221, a connecting member 222, and a transmission member 223. The second driving motor 221 generates power to slide along the horizontal direction 60. The connecting member 222 is driven by the second driving motor 221 to slide along the horizontal direction 60 and drives the first sliding component 21 to slide along the horizontal direction 60, thereby driving the detection component 30 to slide along the horizontal direction 60. The transmission member 223 enables the connecting member 222 to slide along the horizontal direction 60 of the transmission member 223.

[0070] Specifically, the second driving motor 221 generates power for sliding in the horizontal direction 60, ensuring that the detection component 30 can move smoothly and precisely in the horizontal direction 60. It provides power for the movement of the detection component 30 in the horizontal direction 60, ensuring the efficiency and accuracy of the detection process.

[0071] Furthermore, the connecting piece 222 connects the second driving motor 221 and the first sliding component 21, playing a role in transmitting power. When the second driving motor 221 drives the connecting piece 222 to slide in the horizontal direction 60, it can drive the first sliding component 21 and the detection component 30 to slide in the horizontal direction 60. It effectively transmits the power of the second driving motor 221 to the first sliding component 21, enabling the detection component 30 to move precisely in the horizontal direction 60.

[0072] Still further, the conveying piece 223 enables the connecting piece 222 to slide in the horizontal direction 60 along the conveying piece 223, providing a stable sliding platform to ensure that the movement of the detection component 30 in the horizontal direction 60 is smooth and continuous. It provides a stable sliding platform, reducing the vibration and deviation of the detection component 30 when moving in the horizontal direction 60 and ensuring the accuracy of the detection results.

[0073] Even further, when the second driving motor 221 is started, it drives the connecting piece 222 to slide in the horizontal direction 60. The connecting piece 222 is connected to the first sliding component 21, thereby driving the first sliding component 21 and the detection component 30 to slide in the horizontal direction 60. During this process, the conveying piece 223 provides a stable sliding platform to ensure that the movement of the detection component 30 is smooth and continuous.

[0074] In a specific embodiment, a glass curtain wall detection device 100 further includes a support component 40. One end of the support component 40 is connected to the detection table 10, and the other end is connected to the second sliding component 22. The support component 40 is located at the end of the detection table 10 facing away from the ground.

[0075] Specifically, the support component 40 is connected to the detection table 10: providing stable support for the detection table 10 to ensure that the detection table 10 can remain stable under various environments and conditions, thereby ensuring the accuracy of the detection results.

[0076] Furthermore, by connecting with the second sliding component 22, the support component 40 can adjust its position correspondingly as the detection table 10 moves, ensuring that the movement of the entire detection device in the horizontal and vertical directions 70 is smooth and continuous.

[0077] Furthermore, the design of the end of the inspection table 10 facing away from the ground enables the support assembly 40 to better bear the weight and pressure from the inspection table 10 and the inspection assembly 30, further enhancing the overall stability of the inspection device.

[0078] Moreover, during the inspection process, as the second sliding assembly 22 drives the inspection table 10 to move in the horizontal direction 60, the support assembly 40 will be adjusted accordingly to ensure that stable support is always provided for the inspection table 10.

[0079] Thereby, the provided glass curtain wall inspection device 100 releases air pressure through the inspection member 31 and fits and slides with the glass curtain wall, reducing the contact pressure, thereby effectively reducing the risk of scratching the glass curtain wall. At the same time, the setting of the roller 32 enables the inspection member 31 to slide freely in a circumferential array along the axial direction 80 during the sliding process, providing a more detailed and stable inspection for the glass curtain wall, achieving a reduction in the scratches generated on the glass curtain wall during the inspection process.

[0080] The above are only the implementation manners of the present application. It should be noted here that for those of ordinary skill in the art, improvements can be made without departing from the creative concept of the present application, but these all fall within the protection scope of the present application.

Claims

1. A glass curtain wall detection device, comprising a detection platform on which the glass curtain wall is placed, characterized in that: include: A sliding mechanism connected to the detection platform to slide in the vertical direction and in the horizontal direction perpendicular to the vertical direction of the detection platform; Detection components, including: The detection piece is connected to slide along the vertical direction and the horizontal direction perpendicular to the vertical direction, and the detection piece releases air pressure to fit the glass curtain wall to perform sliding detection; The roller is connected with the sliding mechanism and slides along the vertical direction to approach the detection platform. The detection members are arranged on the roller in an axial circumferential array along the roller.

2. A glass curtain wall detection device according to claim 1, characterized in that: The detection part comprises: A detection part, which is attached to the glass curtain wall to release air pressure to attach to and detect the glass curtain wall; A clamping portion, connected to the roller and located at an end of the roller away from the axis; The air pressure part has one end integrally formed with the detection part and the other end integrally formed with the clamping part. The clamping part and the detection part penetrate each other. The air pressure part stores gas. When the detection part is attached to the glass curtain wall, the detection part overlaps with the air pressure part.

3. A glass curtain wall detection device according to claim 2, characterized in that: The detection part and the glass curtain wall bonding surface are provided with air holes, wherein: The moment the detection part is attached to the glass curtain wall, the pores release gas; At the moment when the detection part is released from the glass curtain wall, the air holes collect the gas to the air pressure part.

4. The glass curtain wall detection device according to claim 1, characterized in that: The test platform and the glass curtain wall bonding surface are provided with a protective layer; the test piece is provided with a rubber structure.

5. The glass curtain wall detection device according to claim 2, characterized in that: The detection assembly also includes a clamping plate, and the clamping plate is connected to the clamping portion.

6. A glass curtain wall detection device according to claim 5, characterized in that: The clamping plate is provided with a clamping hole corresponding to the air pressure part, and the air pressure part passes through the clamping hole and is closely connected with the clamping plate, and is located at the connection between the clamping part and the air pressure part.

7. The glass curtain wall detection device according to claim 1, characterized in that: The sliding mechanism includes a first sliding component and a second sliding component, the first sliding component is slidably connected along the vertical direction of the detection component, the second sliding component is slidably connected to the detection platform in the horizontal direction, the second sliding component is located above the detection platform, the first sliding component is connected to the second sliding component, and the first sliding component is located at one end of the second sliding component close to the detection platform.

8. The glass curtain wall detection device according to claim 7, characterized in that: The first sliding assembly comprises: A first driving motor generates power for sliding in a vertical direction; A connecting shaft, one end of which is connected to the roller; The telescopic rod is connected to the first driving motor, slides in the vertical direction and approaches the glass curtain wall, and is connected to the other end of the connecting shaft to drive the detection component to slide in the vertical direction.

9. The glass curtain wall detection device according to claim 8, characterized in that: The second sliding assembly comprises: A second driving motor generates power for sliding in a horizontal direction; The second driving motor drives the connecting member to slide in a horizontal direction, and drives the first sliding component to slide in a horizontal direction, thereby driving the detection component to slide in a horizontal direction; The conveying member and the connecting member slide in the horizontal direction along the conveying member.

10. The glass curtain wall detection device according to claim 7, characterized in that: The glass curtain wall detection device also includes a support component, one end of which is connected to the detection platform, and the other end is connected to the second sliding component. The support component is located at the end of the detection platform away from the ground.