Automatic detection device for anti-seismic glass door

By designing the slag-brushing mechanism and sealing components of the automatic detection device of the earthquake-resistant glass door, the problem of slag-brushing and inconvenient cleaning of glass is solved, and safe and efficient detection and cleaning are achieved.

CN120333972APending Publication Date: 2025-07-18JIANGSU CHUANGAN FIREPROOF DOOR & WINDOW TECH CO LTD
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Patent Information

Application Number
CN202510553238.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

During the inspection process, the existing earthquake-resistant glass door detection device is prone to splashing and difficult to clean quickly, which poses safety hazards and inconvenient cleaning problems.

Method used

An automatic detection device for earthquake-resistant glass doors is designed, including a slag push mechanism, a front port closure assembly, a limiting mechanism, a connecting drive assembly and an upper port closure assembly. Through the synergy of these components, the automatic roll-out and closure of the glass slag is realized, ensuring safety and cleaning convenience during the inspection process.

Benefits of technology

It effectively avoids the splash of glass slag during the inspection process, ensures the safety of the inspection process, simplifies the cleaning process of slag, and improves work efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of detection devices, in particular to an anti-seismic glass door automatic detection device which comprises a detection box, a disintegrating slag pushing mechanism is installed in the detection box, glass disintegrating slag can be pushed out of the detection box through the disintegrating slag pushing mechanism, and a front end opening sealing assembly is arranged at the front end of the detection box. The disintegrating slag pushing mechanism drives the front end opening sealing assembly to move to seal the front end opening of the detection box, the limiting mechanism is installed on the front end opening sealing assembly, the disintegrating slag pushing mechanism is limited through the limiting mechanism, and after the slag baffles are closed together, the disintegrating slag pushing plate can be fixed under the action of the movable limiting plate; therefore, the stability of the bearing movable strip and the slag baffle is guaranteed, the smooth detection is guaranteed, after the detection is completed, the slag baffle is moved reversely to push the disintegrating slag out from the front end port of the detection box, and the disintegrating slag is convenient to clean.
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Description

Technical Field

[0001] The invention relates to the technical field of detection devices, in particular to an automatic detection device for shock-resistant glass doors. Background Art

[0002] When earthquake-resistant glass doors are produced, they need to undergo industry-related standardized quality inspections, including an impact strength inspection of the glass of earthquake-resistant glass doors, that is, using a steel ball or other heavy object to impact the glass and detecting the pressure value at the moment of its breaking. The detection device commonly used for impact strength testing is a drop ball tester, and the drop ball tester under the existing technology has a relatively simple structure. When testing earthquake-resistant glass doors, it is often necessary to use additional components to cover the test box to prevent glass debris generated during the test from splashing randomly and causing injuries. After the test is completed, the glass debris in the test box is difficult to clean up quickly and is relatively troublesome to clean up. Summary of the invention

[0003] The object of the present invention is to provide an automatic detection device for earthquake-resistant glass doors to solve the problems raised in the above-mentioned background technology.

[0004] To achieve the above object, the present invention provides the following technical solutions: An automatic detection device for earthquake-resistant glass doors comprises a detection box, wherein a debris pushing mechanism is installed in the detection box, and glass debris can be pushed out of the detection box by the debris pushing mechanism; A front port closing component is provided at the front end of the detection box, and the slag pushing mechanism drives the front port closing component to move to close the front port of the detection box; A limiting mechanism is installed on the front port closing assembly, and the slag pushing mechanism is limited by the limiting mechanism; A connection drive assembly is provided at the rear end of the detection box, and upper port closing assemblies are also provided on both sides of the detection box. The slag pushing mechanism drives the upper port closing assembly to move through the connection drive assembly to close the upper port of the detection box. The upper port closing component and the connection driving component are connected with a falling channel forming mechanism, and the falling channel forming mechanism is driven by the connection driving component and the upper port closing component.

[0005] Preferably, the debris pushing mechanism is a debris pushing plate, and when the glass is tested, the debris pushing plate moves toward the rear end of the test box to leave space for placing the glass.

[0006] Preferably, the front port closing assembly includes a bearing movable bar and a driving support plate, and the bearing movable bar moves downward to close the front port of the detection box.

[0007] Preferably, the driving support plate is movably connected to the load-bearing movable bar, and the slag pushing plate drives the load-bearing movable bar to move through the driving support plate.

[0008] Preferably, the limiting mechanism is a movable limiting plate, and the movable limiting plate cooperates with the slag pushing plate to limit and fix the slag pushing plate.

[0009] Preferably, the connection driving assembly includes a connection carrier plate and a rotating connection shaft. The connection carrier plate is located outside the detection box, and the slag pushing plate pushes the connection carrier plate to move.

[0010] Preferably, when the connection carrier plate moves, it drives the rotating connection shaft to rotate, and then can drive the upper port closing assembly to move.

[0011] Preferably, the upper port closing assembly is a slag blocking plate. There are two slag blocking plates, which are respectively arranged on both sides of the detection box. The slag blocking plates are closed together to close the upper port of the detection box.

[0012] Preferably, the falling channel forming mechanism includes a movable plate bar and a second limiting vertical plate. The movable plate bar is movably connected to the connection carrier plate, and the connection carrier plate can drive the movable plate bar to move.

[0013] Preferably, the movable plate bar is also movably connected to the slag blocking plate, and the slag blocking plate can also drive the movable plate bar to move; The second limiting vertical plate is installed on the slag blocking plate, and the second limiting vertical plate is driven to move up and down by the movable plate bar.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: The structure of the present invention is reasonably arranged and has strong functionality, and has the following advantages: 1. When detecting the glass of the earthquake-resistant glass door, push the slag pushing plate to move it away from the front end port of the detection box, then place the glass in the detection box, and push the slag pushing plate again. At this time, under the action of the pushing carrier plate, the driving support plate can be pushed to move, and then drive the load-bearing movable bar to move downward to close the front end port of the detection box, avoiding the slag generated during the detection from overflowing from the front end port of the detection box.

[0015] 2. During the process of the pushing carrier plate pushing the driving support plate to move, as the slag pushing plate moves, it will drive the connection carrier plate to move, and then under the action of the connection carrier plate, it will drive the slag blocking plates to move towards each other and close together to close the upper port of the detection box. In this way, it can avoid the slag from overflowing from the upper port of the detection box during the detection process, and when the slag blocking plates are closed together, the first limiting vertical plates will also be closed together to form a falling ball channel.

[0016] 3. Additionally, as the connecting carrier plate and the slag baffle move, the movable slats will also be driven to move. Then, under the action of the upward pushing connecting rod, the second limiting vertical plate will be driven to move upward, causing a part of it to move out of the plug-in plate cavity. And as the first limiting vertical plate closes, the second limiting vertical plate will also close together. In this way, the height of the ball dropping channel can be increased to ensure that the steel balls can smoothly fall into the detection box to detect the glass. Moreover, when the slag baffle closes together, the slag pushing plate can be fixed under the action of the movable limiting plate, thus ensuring the stability of the bearing movable strip and the slag baffle and guaranteeing the smooth progress of the detection. After the detection is completed, moving the slag baffle in the reverse direction can push the slag out from the front end port of the detection box, facilitating the cleaning of the slag. Description of the Drawings

[0017] Figure 1 Schematic diagram of the first perspective of the assembly of the detection box.

[0018] Figure 2 For Figure 1 Enlarged schematic diagram of part A in

[0019] Figure 3 Schematic diagram of the second perspective of the assembly of the detection box.

[0020] Figure 4 Schematic diagram of the structure of the detection box.

[0021] Figure 5 Schematic diagram of the first perspective of the cooperation between the slag pushing plate and the bearing movable strip.

[0022] Figure 6 Schematic diagram of the second perspective of the cooperation between the slag pushing plate and the bearing movable strip.

[0023] Figure 7 Schematic diagram of the cooperation between the connecting carrier plate and the slag baffle.

[0024] Figure 8 Schematic diagram of the assembly of the connecting carrier plate, the rotating connecting shaft, the movable slats and the second limiting vertical plate.

[0025] Figure 9 Schematic diagram of the cooperation between the rotating connecting shaft and the slag baffle.

[0026] Figure 10 Schematic diagram of the structure of the slag baffle.

[0027] In the figure: 1. Detection box; 11. Moving slideway; 12. Insertion guide hole; 13. Fitting bearing hole; 14. Outer bearing block; 15. Support guide hole; 16. Support chute; 17. Lateral load-bearing rod; 18. Support bottom strip; 19. Installation bearing hole; 2. Scrap pushing plate; 21. Support slider; 22. Connecting bearing rod; 23. Operating scaffold; 24. Pushing top load plate; 25. Limit card slot; 3. Load-bearing movable strip; 30. Blocking and restricting plate; 31. Load-bearing convex block; 32. Fitting through hole; 33. Guide load rod; 34. Fitting bottom block; 35. First return spring; 36. Lower pushing connecting rod; 37. Driving bearing plate; 38. Support load strip; 4. Movable limit plate; 41. Fitting bearing rod; 42. Limit insertion block; 5. Connecting load plate; 51. Installation bearing rod; 52. Fitting load block; 53. Second return spring; 54. Connecting load strip; 55. Meshing teeth; 56. Lower bearing strip plate; 57. Lower load-bearing rod; 6. Rotating connecting shaft; 61. Fitting bearing; 62. Gear; 63. Rotating strip plate; 64. Connecting rotating hole; 7. Scrap blocking plate; 71. First limit vertical plate; 72. Insertion plate cavity; 73. First convex block; 74. First bearing rod; 75. Second bearing block; 76. Limit insertion hole; 77. Second bearing rod; 78. Connecting slider; 781. Fitting slide hole; 782. Driving connecting rod; 8. Moving plate strip; 81. Load-bearing movable hole; 82. Upper connecting plate strip; 83. Insertion bearing hole; 84. Upper pushing connecting rod; 9. Second limit vertical plate; 91. Connecting bearing plate; 92. Fitting vertical plate. Detailed implementation manners

[0028] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0029] The present invention provides a technical solution: As Figure 1 And Figure 3As shown in the figure, an automatic detection device for earthquake-resistant glass doors includes a detection box 1. A slag pushing mechanism is installed in the detection box 1. Through the slag pushing mechanism, glass slag can be pushed out of the detection box 1. A front port closing component is arranged at the front end of the detection box 1. The slag pushing mechanism drives the front port closing component to move to close the front port of the detection box 1. A limiting mechanism is installed on the front port closing component to limit the slag pushing mechanism. A connection driving component is arranged at the rear end of the detection box 1, and upper port closing components are also arranged on both sides of the detection box 1. The slag pushing mechanism drives the upper port closing components to move through the connection driving component to close the upper port of the detection box 1. The upper port closing components and the connection driving component are connected to a falling channel forming mechanism, and the falling channel forming mechanism is driven by the connection driving component and the upper port closing components.

[0030] As Figure 4 shown, moving slides 11 are symmetrically opened on both sides inside the detection box 1. A plugging guide hole 12 is arranged at the front end of the moving slide 11. Matching bearing holes 13 are symmetrically opened at the rear end of the detection box 1. Outer bearing blocks 14 are symmetrically and fixedly arranged on both sides of the front port of the detection box 1. A support guide hole 15 and a support chute 16 are opened on the outer bearing block 14. Lateral bearing rods 17 are symmetrically and fixedly arranged on both sides outside the detection box 1. A support bottom strip 18 is fixedly arranged on the detection box 1 below the lateral bearing rod 17. An installation bearing hole 19 is opened on the support bottom strip 18.

[0031] As Figure 1 、 Figure 3 、 Figure 5 and Figure 6 shown, the slag pushing mechanism is a slag pushing plate 2. When the slag pushing plate 2 detects the glass, it moves towards the rear end of the detection box 1 to leave a glass placement space. The slag pushing plate 2 is plugged into the detection box 1. Support sliders 21 are symmetrically and fixedly arranged on both sides of the slag pushing plate 2. The support sliders 21 are plugged into the moving slides 11. A connecting bearing rod 22 is fixedly arranged on the support slider 21. The connecting bearing rod 22 is plugged into the plugging guide hole 12. The other end of the connecting bearing rod 22 is fixedly provided with an operation handrail 23. Push top carrier plates 24 are symmetrically and fixedly arranged on the operation handrail 23. A limiting card slot 25 is opened on the push top carrier plate 24.

[0032] As Figure 1 、 Figure 2 、 Figure 5 and Figure 6As shown, the front port closing assembly includes a load-bearing movable bar 3 and a driving support plate 37. The load-bearing movable bar 3 moves downward to close the front port of the detection box 1. The driving support plate 37 is movably connected to the load-bearing movable bar 3. The slag pushing plate 2 drives the load-bearing movable bar 3 to move through the driving support plate 37. A blocking and restricting plate 30 is fixedly arranged at the lower end of the load-bearing movable bar 3. Load-bearing bumps 31 are symmetrically and fixedly arranged on the load-bearing movable bar 3. A mating through hole 32 is formed in the load-bearing bump 31. Guide load rods 33 are also symmetrically and fixedly arranged on the load-bearing movable bar 3. The guide load rods 33 are inserted into the support guide holes 15. A mating bottom block 34 is fixedly arranged at the lower end of the guide load rod 33. A first return spring 35 is sleeved on the guide load rod 33. The first return spring 35 is located below the outer support block 14, and both ends of the first return spring 35 are fixedly connected to the outer support block 14 and the mating bottom block 34 respectively.

[0033] A lower push connecting rod 36 is hinged to the mating bottom block 34. The upper end of the lower push connecting rod 36 is hinged to the driving support plate 37. A support load bar 38 is fixedly arranged on the driving support plate 37. The support load bar 38 is inserted into the support sliding groove 16.

[0034] The limiting mechanism is a movable limiting plate 4. The movable limiting plate 4 cooperates with the slag pushing plate 2 to limit and fix the slag pushing plate 2.

[0035] As Figure 5 shown, mating support rods 41 are symmetrically and fixedly arranged on the movable limiting plate 4. The mating support rods 41 are inserted into the mating through holes 32. A limiting insertion block 42 is fixedly arranged at the lower end of the mating support rod 41. When the limiting insertion block 42 does not fix the slag pushing plate 2, it is supported by the driving support plate 37.

[0036] The upper end surface of the driving support plate 37 is flush with the upper end surface of the pushing top plate 24. When the limiting insertion block 42 fixes the slag pushing plate 2, it is inserted into the limiting card slot 25.

[0037] As Figure 3 and Figure 8 shown, the connection driving assembly includes a connection support plate 5 and a rotating connection shaft 6. The connection support plate 5 is located outside the detection box 1. The slag pushing plate 2 pushes the connection support plate 5 to move. Mounting support rods 51 are symmetrically and fixedly arranged on the connection support plate 5. The mounting support rods 51 are inserted into the mating bearing holes 13. A mating load block 52 is fixedly arranged on the mounting support rod 51. A second return spring 53 is sleeved on the mounting support rod 51. The second return spring 53 is located outside the detection box 1, and both ends of the second return spring 53 are fixedly connected to the connection support plate 5 and the detection box 1 respectively. Connection load bars 54 are also symmetrically and fixedly arranged on the connection support plate 5. Engaging teeth 55 are arranged on the connection load bars 54. A lower support strip plate 56 is also fixedly arranged on the connection load bar 54. A lower load-bearing rod 57 is fixedly arranged at the lower end of the lower support strip plate 56.

[0038] As Figure 8 and Figure 9 shown, when the connecting carrier plate 5 moves, it drives the rotating connecting shaft 6 to rotate, and then can drive the upper port closing assembly to move. A mating bearing 61 is sleeved on the rotating connecting shaft 6, and the mating bearing 61 is installed in the installation bearing hole 19. A gear 62 is fixedly arranged at the upper end of the rotating connecting shaft 6. The gear 62 meshes with the meshing teeth 55, and a rotating strip plate 63 is fixedly arranged on the gear 62. A connecting rotating hole 64 is formed in the rotating strip plate 63.

[0039] As Figure 1 、 Figure 7 、 Figure 9 and Figure 10 shown, the upper port closing assembly is a slag baffle 7. There are two slag baffles 7, which are respectively arranged on both sides of the detection box 1. The slag baffles 7 are closed together to close the upper port of the detection box 1. A first limiting vertical plate 71 is fixedly arranged on one side of the slag baffle 7. A plugging plate cavity 72 is formed in the first limiting vertical plate 71. A first convex block 73 is fixedly arranged at the upper end of the other side of the slag baffle 7. A first bearing rod 74 is fixedly arranged on the first convex block 73. Second bearing blocks 75 are symmetrically and fixedly arranged on the slag baffle 7 below the first convex block 73. A limiting jack 76 is formed in the second bearing block 75. A lateral bearing rod 17 is plugged in the limiting jack 76, and a second bearing rod 77 is fixedly arranged between the second bearing blocks 75.

[0040] A connecting slider 78 is sleeved on the second bearing rod 77. A mating sliding hole 781 is formed in the connecting slider 78. The mating sliding hole 781 cooperates with the second bearing rod 77, and a driving connecting rod 782 is fixedly arranged at the lower end of the connecting slider 78. The driving connecting rod 782 is plugged in the connecting rotating hole 64.

[0041] As Figure 7 and Figure 8As shown, the falling channel forming mechanism includes a moving slat 8 and a second limiting vertical plate 9. The moving slat 8 is movably connected to the connecting carrier plate 5, and the connecting carrier plate 5 can drive the moving slat 8 to move. The moving slat 8 is also movably connected to the slag baffle 7, and the slag baffle 7 can also drive the moving slat 8 to move. The second limiting vertical plate 9 is installed on the slag baffle 7. By driving the second limiting vertical plate 9 to move up and down through the moving slat 8, a bearing moving hole 81 is opened at the lower end of the moving slat 8, and a lower bearing rod 57 is inserted into the bearing moving hole 81. Moreover, an upper connecting slat 82 is fixedly arranged at the upper end of the moving slat 8. An inserting and bearing hole 83 is opened on the upper connecting slat 82, and a first bearing rod 74 is inserted into the inserting and bearing hole 83. Moreover, an upper pushing connecting rod 84 is hinged on the upper connecting slat 82. The upper end of the upper pushing connecting rod 84 is hinged to the second limiting vertical plate 9. The second limiting vertical plate 9 is inserted into the inserting plate cavity 72. Moreover, a connecting bearing plate 91 is fixedly arranged at the upper end of the second limiting vertical plate 9. A matching vertical plate 92 is fixedly arranged on the connecting bearing plate 91, and the matching vertical plate 92 is hinged to the upper end of the upper pushing connecting rod 84.

[0042] When conducting the inspection of the glass, push the manipulator frame 23 to move the slag pushing plate 2 towards the rear end of the inspection box 1 until the pushing and supporting plate 24 on the manipulator frame 23 contacts the driving supporting plate 37. At this time, the slag pushing plate 2 also contacts the matching carrier block 52. Then, place the glass on the glass door to be inspected into the inspection box 1, making it located between the slag pushing plate 2 and the bearing movable strip 3. After placing it well, push the manipulator frame 23 again. At this time, under the action of the pushing and supporting plate 24, it will push the driving supporting plate 37 to move towards the inspection box 1. With the movement of the driving supporting plate 37, under the action of the downward pushing connecting rod 36, it will drive the bearing movable strip 3 to move downward, thereby enabling the sealing and restricting plate 30 to close the front port of the inspection box 1. During this process, the limit insertion block 42 will not move downward under the support of the pushing and supporting plate 24 until the sealing and restricting plate 30 closes the front port of the inspection box 1 and the limit insertion block 42 aligns with the limit slot 25. In this way, under the action of the self - weight of the movable limit plate 4, the limit insertion block 42 is inserted into the limit slot 25 to fix the slag pushing plate 2, thereby ensuring the stability of the bearing movable strip 3 and the slag blocking plate 7 during the glass inspection process. In addition, when the slag pushing plate 2 moves again, it will also push the matching carrier block 52 to move, thereby driving the connecting carrier plate 5 to move away from the inspection box 1. In this way, under the action of the meshing teeth 55, it will drive the gear 62 to rotate, and then drive the rotating strip plate 63 to rotate 180 degrees. With the rotation of the rotating strip plate 63, it will drive the connecting slider 78 to move back and forth along the second supporting rod 77. During the back - and - forth movement of the connecting slider 78, it will also drive the slag blocking plate 7 to move, thereby making the two slag blocking plates 7 on both sides of the inspection box 1 close together to block the upper end face of the inspection box 1. At this time, the glass is in the closed space formed by the slag pushing plate 2, the sealing and restricting plate 30, and the slag blocking plate 7. When the slag blocking plates 7 close together, the first limiting vertical plates 71 on the slag blocking plates 7 also close together. In addition, when the connecting carrier plate 5 moves away from the inspection box 1, it will also drive the moving plate strip 8 to move with it, thereby enabling the moving plate strip 8 to move relatively between the first supporting rod 74 and the slag blocking plate 7. And when the slag blocking plate 7 moves, it will also drive the moving plate strip 8 to move along the lower supporting rod 57. When the moving plate strip 8 moves along the first supporting rod 74, the distance between the moving plate strip 8 and the first limiting vertical plate 71 becomes smaller. In this way, under the action of the upward pushing connecting rod 84, it will push the second limiting vertical plate 9 to move upward, thereby enabling the second limiting vertical plate 9 to partially move out of the plug - in plate cavity 72, and at this time, the two second limiting vertical plates 9 also close together. When the first limiting vertical plates 71 close together, a steel ball falling channel is formed. With the upward movement of the second limiting vertical plate 9, the length of the steel ball falling channel is increased, thereby making the upper port of the steel ball falling channel closer to the steel ball, ensuring that the steel ball can smoothly fall into the inspection box 1 to conduct an impact resistance test on the glass. After the inspection is completed,Lift the movable limit plate 4 upward so that the limit insertion block 42 on the movable limit plate 4 exits the limit card slot 25, so that the slag pushing plate 2 can be in an unlocked state. Under the action of the first return spring 35 and the second return spring 53, the load-bearing movable strip 3 and the connecting carrier plate 5 are respectively reset. As they are reset, the larger broken glass can be taken out from the upper port of the detection box 1. Then, pull the operating handrail 23 to drive the slag pushing plate 2 to reset. During the reset process of the slag pushing plate 2, the glass slag in the detection box 1 can be driven from the front port of the detection box 1, and it only needs to be received by a receiving container, which is very convenient and greatly improves the working efficiency of cleaning the glass slag.

[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An automatic detection device for earthquake-resistant glass doors, comprising a detection box, characterized in that: A slag pushing mechanism is installed in the detection box, and the glass slag can be pushed out of the detection box through the slag pushing mechanism; A front port closing component is arranged at the front end of the detection box, and the slag pushing mechanism drives the front port closing component to move to realize the closing of the front port of the detection box; A limiting mechanism is installed on the front port closing component, and the slag pushing mechanism is limited by the limiting mechanism; A connection driving component is arranged at the rear end of the detection box, and upper port closing components are also arranged on both sides of the detection box. The slag pushing mechanism drives the upper port closing components to move through the connection driving component to realize the closing of the upper port of the detection box; The upper port closing component and the connection driving component are connected with a falling channel forming mechanism, and the falling channel forming mechanism is driven by the connection driving component and the upper port closing component.

2. The automatic detection device for earthquake-resistant glass doors according to claim 1, wherein: The slag pushing mechanism is a slag pushing plate. When the glass is being detected, the slag pushing plate moves towards the rear end of the detection box, leaving a glass placement space.

3. An automatic detection device for an earthquake-resistant glass door according to claim 2, characterized in that: The front port closing component includes a bearing movable strip and a driving bearing plate. The bearing movable strip moves downward to close the front port of the detection box.

4. An automatic detection device for an earthquake-resistant glass door according to claim 3, characterized in that: The driving bearing plate is movably connected with the bearing movable strip, and the slag pushing plate drives the bearing movable strip to move through the driving bearing plate.

5. An automatic detection device for an earthquake-resistant glass door according to claim 4, characterized in that: The limiting mechanism is a movable limiting plate, and the movable limiting plate cooperates with the slag pushing plate to realize the limiting and fixing of the slag pushing plate.

6. An automatic detection device for earthquake-resistant glass doors according to claim 5, characterized in that: The connection driving component includes a connection carrier plate and a rotating connection shaft. The connection carrier plate is located outside the detection box, and the slag pushing plate pushes the connection carrier plate to move.

7. An automatic detection device for an earthquake-resistant glass door according to claim 6, characterized in that: When the connection carrier plate moves, it drives the rotating connection shaft to rotate, and then can drive the upper port closing component to move.

8. An automatic detection device for an earthquake-resistant glass door according to claim 7, characterized in that: The upper port closing component is a slag blocking plate. There are two slag blocking plates, which are respectively arranged on both sides of the detection box. The slag blocking plates are closed together to close the upper port of the detection box.

9. An automatic detection device for an earthquake-resistant glass door according to claim 8, characterized in that: The falling channel forming mechanism includes a moving plate strip and a second limiting vertical plate. The moving plate strip is movably connected with the connection carrier plate, and the connection carrier plate can drive the moving plate strip to move.

10. An automatic detection device for an earthquake-resistant glass door according to claim 9, characterized in that: The moving plate strip is also movably connected with the slag blocking plate, and the slag blocking plate can also drive the moving plate strip to move.

11. An automatic detection device for an earthquake-resistant glass door according to claim 10, characterized in that: The second limiting vertical plate is installed on the slag blocking plate, and the moving plate strip drives the second limiting vertical plate to move up and down.

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