Intelligent quality detector for display screen production

By designing a quality intelligent detection machine for display screen production, using cylinder drive simulation board and soft rubber to simulate human body sitting pressure, combined with an opaque detection cylinder and camera, the performance detection problem of existing equipment being unable to simulate the display screen after sitting pressure on seats of different materials is improved, and the detection accuracy is improved.

CN120253187APending Publication Date: 2025-07-04DONGGUAN TECENSTAR PHOTOELECTRICITY TECH LTD
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Patent Information

Application Number
CN202510434444.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-07-04

AI Technical Summary

Technical Problem

Existing equipment cannot effectively simulate the performance detection of mobile phone display screens after being pressed by human body on seats made of different materials, and traditional methods are prone to ignore hidden defects such as fine cracks and touch failures.

Method used

A quality intelligent detection machine for display screen production is designed, which simulates human body sitting pressure through cylinder drive simulation board and soft rubber, and combines an opaque detection cylinder and camera to achieve accurate detection of the display screen.

Benefits of technology

It realizes simulated detection of human body seating on seats of different materials, improves the accuracy of detection of defects such as fine cracks and touch failures, and reduces external light interference.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of display screen detection, in particular to an intelligent quality detector for display screen production, which comprises a base, the device further comprises a detection box, a mounting plate, a cylinder, a simulation plate and the like. The base is fixedly connected with a detection box for placing a display screen body; the detection box is detachably connected with a cover plate; the detection box is fixedly connected with a mounting plate; the mounting plate is connected with a cylinder; the telescopic end of the cylinder is connected with a simulation plate. A manipulator is controlled to enable a fixing plate to drive a connecting block, a detection cylinder and a camera to vertically move downwards until the detection cylinder is vertically close to a display screen body, then the display screen body is electrified, and then the manipulator is controlled to enable the detection cylinder and the camera to move close to the display screen body; defects existing after the display screen body is pressed are observed through the camera, the detection barrel is made of the opaque material, so that the detection area of the camera is always in a dark light environment, interference of external light is reduced, and the detection accuracy is improved.
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Description

Technical Field

[0001] The present invention relates to the field of display screen detection, and particularly to an intelligent quality detector for display screen production. Background Art

[0002] When a mobile phone display screen is produced, quality inspection of the display screen is required. However, in actual use of the mobile phone display screen, there is a situation where the mobile phone is pressed by a human body after being placed on a seat. Therefore, it is necessary to detect whether the performance of the mobile phone display screen is normal after being pressed by a human body to ensure that it meets the actual use requirements. The traditional methods relying on manual visual inspection or simple sensors are prone to ignoring hidden defects such as fine cracks and touch failure after being pressed, and the existing equipment cannot simulate the performance detection of the mobile phone display screen after being pressed by a human body on seats of different materials, resulting in great limitations. Summary of the Invention

[0003] In order to overcome the defect that the existing equipment cannot simulate the performance detection of the mobile phone display screen after being pressed by a human body on seats of different materials, the present invention provides an intelligent quality detector for display screen production.

[0004] Technical Solution: An intelligent quality detector for display screen production includes a base; it further includes a detection box, a mounting plate, a cylinder, a simulation plate, a soft rubber, a rotating rod, a motor, a hard plate, a soft plate, a clamping assembly, a driving assembly, and a detection assembly; the base is fixedly connected with a detection box for placing a display screen body; the detection box is detachably connected with a cover plate; the detection box is fixedly connected with a mounting plate; the mounting plate is connected with a cylinder; the telescopic end of the cylinder is connected with a simulation plate; the simulation plate is fixedly connected with a soft rubber; the detection box is connected with a driving assembly for driving the soft rubber to move, and the driving assembly is connected with the cylinder; the driving assembly is connected with a rotating rod; the driving assembly is connected with a motor, and the output shaft of the motor is fixedly connected with the rotating rod; the detection box is connected with a hard plate, and the hard plate is located below the rotating rod; the detection box is connected with a soft plate, and the soft plate is located below the rotating rod; the rotating rod is connected with a clamping assembly for clamping the display screen body; the detection box is connected with a detection assembly for detecting the display screen body.

[0005] Furthermore, the clamping assembly includes a spring rod I and a clamping rod; several spring rods I are fixedly connected to the rotating rod; the telescopic end of each spring rod I is fixedly connected with a clamping rod, and the clamping rod is slidably connected with the rotating rod.

[0006] Furthermore, an electric heater is arranged inside the simulation plate.

[0007] Furthermore, it further includes a fixing hoop; the simulation plate is detachably connected with the fixing hoop.

[0008] Furthermore, it further includes an electric guide rail III, a moving block III, a spring rod II, a fixing ball, and a fixing rod; the simulation board is provided with a moving groove, and the telescopic end of the air cylinder slides in the moving groove; the mounting plate is fixedly connected with the electric guide rail III; the electric guide rail III is slidably connected with the moving block III; the moving block III is fixedly connected with the spring rod II, and the telescopic end of the spring rod II is fixedly connected with the simulation board; the simulation board is fixedly connected with a plurality of fixing balls; the mounting plate is fixedly connected with a fixing rod, and there is intermittent extrusion between the fixing rod and the fixing ball.

[0009] Furthermore, the hard board is detachably connected to the detection box; the soft board is detachably connected to the detection box.

[0010] Furthermore, the surface of the clamping rod is roughened.

[0011] Furthermore, the detection component includes a manipulator, a fixing plate, a connecting block, a detection cylinder, and a camera; the detection box is fixedly connected with the manipulator; the manipulator is fixedly connected with the fixing plate; the fixing plate is connected with the connecting block; the connecting block is fixedly connected with the detection cylinder; the connecting block is fixedly connected with the camera, and the camera is located inside the detection cylinder.

[0012] Furthermore, the detection cylinder is made of an opaque material.

[0013] Furthermore, it further includes a spherical ball, a connecting ring, a bolt rod I, a circular ring, a hemispherical body, and a bolt rod II; the connecting block is rotatably connected with the bolt rod I; the bolt rod I is fixedly connected with the connecting ring; the connecting ring is fixedly connected with a plurality of spherical balls; the connecting block is rotatably connected with the bolt rod II; the bolt rod II is fixedly connected with the circular ring; the circular ring is fixedly connected with a plurality of hemispherical bodies, and the hemispherical bodies and the spherical balls are arranged alternately.

[0014] The beneficial effects of the present invention are as follows: By controlling the air cylinder to drive the simulation board and the soft rubber to move downward until the soft rubber is pressed against the upper side of the display screen body, the extrusion situation of the display screen body when being pressed by a human body sitting is simulated. Moreover, it can control the air cylinder to drive the simulation board and the soft rubber to move downward instantaneously, and the soft rubber is instantaneously pressed against the upper side of the display screen body to simulate the extrusion situation of the display screen body when a human body quickly sits down. After the extrusion is completed, control the air cylinder to drive the simulation board and the soft rubber to move upward back to the initial position. Then, control the electric guide rail II to make the moving block II drive the rotating rod and the display screen body to move forward to the lower part of the detection component. Subsequently, the detection component is used to detect the display screen body after being pressed, avoiding the hidden defects such as fine cracks and touch failure that are easily overlooked by the traditional methods of manual visual inspection or simple sensors.

[0015] In the present invention, the manipulator is controlled to drive the fixing plate to drive the connecting block, the detection cylinder and the camera to move vertically downward until the detection cylinder is vertically close to the display screen body. Then, the display screen body is powered on, and then the manipulator is controlled to move the detection cylinder and the camera close to the display screen body. The defects existing in the display screen body after being pressed are observed through the camera. Since the detection cylinder is made of an opaque material, the detection area of the camera can always be in a dark environment, reducing the interference of external light and improving the detection accuracy.

[0016] In the present invention, the bolt rod II is manually rotated to drive the ring and the hemisphere to move upward, so that the hemisphere is higher than the upper end of the detection cylinder. Then, the manipulator is used to drive the detection cylinder to bring the hemisphere into contact with the surface of the display screen body, and the edge and corner areas of the display screen body are touched and squeezed by the hemisphere. Since the hemisphere has a smaller volume, compared with a sphere, it can squeeze the edge and corner areas of the display screen body more precisely. Then, the camera is used to observe whether defects occur in the edge and corner areas of the display screen body during the touch and squeeze process. Description of the Drawings

[0017] Figure 1 is a schematic structural diagram disclosed for the quality intelligent detector for display screen production of the present invention; Figure 2 is a schematic diagram of the first partial structure disclosed for the quality intelligent detector for display screen production of the present invention; Figure 3 is a schematic diagram of the second partial structure disclosed for the quality intelligent detector for display screen production of the present invention; Figure 4 is a schematic diagram of the combined partial structure of the detection box, the electric guide rail II, the moving block II, the rotating rod, the motor, the spring rod I, the clamping rod, the hard plate, and the soft plate disclosed for the quality intelligent detector for display screen production of the present invention; Figure 5 is a schematic structural diagram of the detection component disclosed for the quality intelligent detector for display screen production of the present invention.

[0018] In the above drawings: 1 - base, 2 - detection box, 3 - mounting plate, 4 - display body, 101 - cylinder, 102 - simulation board, 103 - soft rubber, 104 - electric guide rail I, 105 - moving block I, 106 - electric guide rail II, 107 - moving block II, 108 - rotating rod, 109 - motor, 1010 - spring rod I, 1001 - clamping rod, 1011 - electric guide rail III, 1012 - moving block III, 1013 - spring rod II, 1014 - fixed ball, 1015 - fixed rod, 1016 - fixing hoop, 1017 - hard board, 1018 - soft board, 301 - manipulator, 302 - fixing plate, 303 - connecting block, 304 - detection cylinder, 305 - camera, 306 - spherical ball, 307 - connecting ring, 308 - bolt rod I, 309 - ring, 3010 - hemisphere, 3011 - bolt rod II, 23 - cover plate, 1021 - moving groove. Detailed implementation mode

[0019] 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.

[0020] Embodiment 1 An intelligent quality detector for display production, as Figures 1 - 5 shown, includes a base 1; It further includes a detection box 2, a mounting plate 3, a cylinder 101, a simulation board 102, a soft rubber 103, a rotating rod 108, a motor 109, a hard board 1017, a soft board 1018, a clamping assembly, a driving assembly and a detection assembly; the base 1 is fixedly connected with a detection box 2 for placing the display body 4; the detection box 2 is detachably connected with a cover plate 23; the detection box 2 is fixedly connected with a mounting plate 3; the mounting plate 3 is connected with a cylinder 101; the telescopic end of the cylinder 101 is connected with a simulation board 102; the simulation board 102 is fixedly connected with a soft rubber 103; the detection box 2 is connected with a driving assembly for driving the soft rubber 103 to move, and the driving assembly is connected with the cylinder 101; the driving assembly is connected with a rotating rod 108; the driving assembly is connected with a motor 109, and the output shaft of the motor 109 is fixedly connected with the rotating rod 108; the detection box 2 is connected with a hard board 1017, and the hard board 1017 is located below the rotating rod 108; the detection box 2 is connected with a soft board 1018, and the soft board 1018 is located below the rotating rod 108; the rotating rod 108 is connected with a clamping assembly for clamping the display body 4; the detection box 2 is connected with a detection assembly for detecting the display body 4.

[0021] The driving assembly includes an electric guide rail I 104, a moving block I 105, an electric guide rail II 106 and a moving block II 107; two electric guide rails I 104 are bolted to the mounting plate 3; each electric guide rail I 104 is slidably connected with a moving block I 105, and the two moving blocks I 105 are jointly fixed to the cylinder 101; two electric guide rails II 106 are bolted to the detection box 2; each electric guide rail II 106 is slidably connected with a moving block II 107, and the two moving blocks II 107 are jointly rotatably connected to the rotating rod 108, and one of the moving blocks II 107 is bolted to the motor 109.

[0022] The clamping assembly includes a spring rod I 1010 and a clamping rod 1001; two spring rods I 1010 are fixed to the rotating rod 108; the telescopic end of each spring rod I 1010 is fixed with a clamping rod 1001, and the clamping rod 1001 is slidably connected to the rotating rod 108.

[0023] An electric heater is arranged in the simulation board 102.

[0024] It also includes a fixing hoop 1016; the simulation board 102 is detachably connected with the fixing hoop 1016.

[0025] It also includes an electric guide rail III 1011, a moving block III 1012, a spring rod II 1013, a fixing ball 1014 and a fixing rod 1015; a moving groove 1021 is formed in the simulation board 102, and the telescopic end of the cylinder 101 slides in the moving groove 1021; an electric guide rail III 1011 is bolted to the mounting plate 3; the electric guide rail III 1011 is slidably connected with a moving block III 1012; the moving block III 1012 is fixed with a spring rod II 1013, and the telescopic end of the spring rod II 1013 is fixed to the simulation board 102; several fixing balls 1014 are fixed to the simulation board 102; a fixing rod 1015 is fixed to the mounting plate 3, and the fixing rod 1015 is intermittently pressed against the fixing ball 1014.

[0026] The hard board 1017 is detachably connected to the detection box 2; the soft board 1018 is detachably connected to the detection box 2, which is convenient for quickly replacing the hard board 1017 and the soft board 1018 with different materials to detect the compressive performance of the detection display screen body 4 under different materials.

[0027] The surface of the clamping rod 1001 is roughened to increase the resistance when the display screen body 4 is placed between the two clamping rods 1001, and prevent the display screen body 4 from sliding when being pressed.

[0028] Taking the hard board 1017 as marble and the soft board 1018 as wood board for example, during use, first, the operator removes the cover plate 23 manually, then places the display screen body 4 to be detected between the two clamping rods 1001. Under the action of elastic force, the clamping rods 1001 clamp the display screen body 4. By sliding the two clamping rods 1001 on the rotating rod 108, it can adapt to display screen bodies 4 of different sizes, improving the adaptability of the device. At this time, the display screen body 4 faces upward and first contacts the soft board 1018, then the cover plate 23 is reinstalled. Then, control the air cylinder 101 to drive the simulation board 102 and the soft rubber 103 to move downward until the soft rubber 103 is pressed on the upper side of the display screen body 4, thereby simulating the extrusion situation of the display screen body 4 when being pressed by a person sitting. And it can control the air cylinder 101 to drive the simulation board 102 and the soft rubber 103 to move downward instantaneously, and the soft rubber 103 instantaneously presses on the upper side of the display screen body 4 to simulate the extrusion situation of the display screen body 4 when a person sits down quickly. After the extrusion is completed, control the air cylinder 101 to drive the simulation board 102 and the soft rubber 103 to move upward back to the initial position. Then, control the electric guide rail II 106 to make the moving block II 107 drive the rotating rod 108 and the display screen body 4 to move forward to the lower part of the detection component. Subsequently, the detection component detects the display screen body 4 after being pressed, avoiding the hidden defects such as fine cracks and touch failure that are easily overlooked by the traditional methods of manual visual inspection or simple sensors.

[0029] In daily use, the mobile phone screen may be placed face down and pressed by sitting. Therefore, after detecting the sitting pressure situation of the display screen body 4 facing upward, first control the electric guide rail II 106 to make the moving block II 107 drive the rotating rod 108 and the display screen body 4 to move backward to the upper side of the soft board 1018. Subsequently, control the motor 109 to start, and drive the rotating rod 108, the spring rod I 1010, the clamping rods 1001 and the display screen body 4 to perform a 180-degree flip through the output shaft of the motor 109, so that the display screen body 4 faces downward and contacts the soft board 1018. Then, control the air cylinder 101 to drive the simulation board 102 and the soft rubber 103 to move downward until the soft rubber 103 is pressed on the upper side of the display screen body 4, thereby simulating the extrusion situation of the display screen body 4 when it is placed face down on the soft board 1018 and is pressed by a person sitting. After the extrusion is completed, control the air cylinder 101 to drive the simulation board 102 and the soft rubber 103 to move upward back to the initial position. Then, control the electric guide rail II 106 to make the moving block II 107 drive the rotating rod 108 and the display screen body 4 to move forward to the lower part of the detection component, and then detect the performance of the display screen body 4 after being pressed face down by the simulation board 102 and the soft rubber 103, which conforms to the actual use situation.

[0030] During the use of a mobile phone screen, it may be placed on a hard seat and pressed by the human body. Therefore, after the detection of the soft board 1018 with the display body 4 placed downward is completed, the electric guide rail II 106 is controlled to drive the moving block II 107 to drive the rotating rod 108 and the display body 4 to move above the soft board 1018, so that the display body 4 contacts the upper side of the hard board 1017 downward. Then, the simulation board 102 and the soft rubber 103 are lowered to squeeze the display body 4. The display body 4 and the hard board 1017 are squeezed against each other. Then, the performance of the squeezed display body 4 is detected by the detection component.

[0031] Next, the motor 109 is controlled to start, and the output shaft of the motor 109 drives the rotating rod 108, the spring rod I 1010, the clamping rod 1001 and the display body 4 to perform a 180-degree flip, so that the display body 4 contacts the hard board 1017 upward. Then, the simulation board 102 and the soft rubber 103 are lowered to squeeze the display body 4. The display body 4 and the hard board 1017 are squeezed against each other. Then, the performance of the squeezed display body 4 is detected by the detection component.

[0032] After the display body 4 is pressed by the simulation board 102 and the soft rubber 103 for a long time, due to the accumulation of human body heat, the surrounding of the display body 4 is in a relatively hot environment. Therefore, the electric heater is powered on to heat the soft rubber 103, and then the cylinder 101 is controlled to drive the simulation board 102 and the soft rubber 103 to move downward, so that the soft rubber 103 squeezes the display body 4. The performance of the display body 4 in a relatively hot environment after being pressed by the simulation board 102 and the soft rubber 103 for a long time is simulated and detected by the detection component.

[0033] After the mobile phone screen is pressed by the human body, the human body will move back and forth unconsciously, generating a reciprocating squeezing force on the mobile phone screen. Therefore, after the simulation board 102 and the soft rubber 103 press the display body 4, the electric guide rail III 1011 is controlled to drive the moving block III 1012 to drive the spring rod II 1013, the simulation board 102, the soft rubber 103 and the fixed ball 1014 to move horizontally, so that a relative movement occurs between the fixed ball 1014 and the fixed rod 1015. Furthermore, the plurality of fixed balls 1014 drive the simulation board 102 and the soft rubber 103 to move up and down intermittently under the limiting action of the fixed rod 1015, so that the simulation board 102 and the soft rubber 103 squeeze the display body 4 up and down when moving horizontally. The performance of the display body 4 under the action of the reciprocating squeezing force is detected by the detection component.

[0034] Manually put the fabric on the soft rubber 103 at the same time, fix the fabric through the fixing hoop 1016, then make the simulation board 102 and the soft rubber 103 covered with the fabric closely adhere to the surface of the display body 4 for reciprocating friction, and then detect the performance of the display body 4 under the action of fabric friction through the detection component.

[0035] Embodiment 2 On the basis of Embodiment 1, as Figure 5 shown, the detection component includes a manipulator 301, a fixing plate 302, a connecting block 303, a detection cylinder 304 and a camera 305; the detection box 2 is fixedly connected with the manipulator 301; the manipulator 301 is fixedly connected with the fixing plate 302; the fixing plate 302 is connected with the connecting block 303; the connecting block 303 is fixedly connected with the detection cylinder 304; the connecting block 303 is fixedly connected with the camera 305, and the camera 305 is located inside the detection cylinder 304.

[0036] The detection cylinder 304 is made of opaque material.

[0037] It further includes a spherical ball 306, a connecting ring 307, a bolt rod I 308, a ring 309, a hemisphere 3010 and a bolt rod II 3011; the connecting block 303 is rotatably connected with the bolt rod I 308; the bolt rod I 308 is fixedly connected with the connecting ring 307; the connecting ring 307 is fixedly connected with a number of annularly distributed spherical balls 306; the connecting block 303 is rotatably connected with the bolt rod II 3011; the bolt rod II 3011 is fixedly connected with the ring 309; the ring 309 is fixedly connected with a number of hemispheres 3010, and the hemispheres 3010 and the spherical balls 306 are arranged in an alternating manner.

[0038] The working steps of the detection component in Embodiment 1 are as follows: after the display body 4 is pressed by sitting, control the manipulator 301 to make the fixing plate 302 drive the connecting block 303, the detection cylinder 304 and the camera 305 to move vertically downward until the detection cylinder 304 is vertically close to the display body 4, then power on the display body 4, and then control the manipulator 301 to make the detection cylinder 304 and the camera 305 close to the display body 4 for movement, observe the defects existing in the display body 4 after being pressed through the camera 305. Since the detection cylinder 304 is made of opaque material, the detection area of the camera 305 can always be in a dark environment, reducing the interference of external light and improving the detection accuracy.

[0039] It is necessary to simulate and detect whether the touch function of the display body 4 is normal after being pressed. Therefore, by setting the spherical ball 306 in the detection cylinder 304, the manipulator 301 is used to make the detection cylinder 304 drive the spherical ball 306 to contact the surface of the display body 4, the display body 4 is touched and extruded through the spherical ball 306, and then the camera 305 is used to observe whether defects occur in the display body 4 during the touch extrusion process.

[0040] After the display screen body 4 is pressed, the edge and corner areas are more likely to have damage defects. Therefore, manually rotate the bolt rod I 308 to drive the connecting ring 307 and the spherical ball 306 to move downward, so that the spherical ball 306 is lower than the upper end of the detection cylinder 304. Subsequently, manually rotate the bolt rod II 3011 to drive the circular ring 309 and the hemispherical body 3010 to move upward, so that the hemispherical body 3010 is higher than the upper end of the detection cylinder 304. Then, through the manipulator 301, the detection cylinder 304 drives the hemispherical body 3010 to contact the surface of the display screen body 4, and the edge and corner areas of the display screen body 4 are touched and squeezed through the hemispherical body 3010. Since the volume of the hemispherical body 3010 is smaller, compared with the spherical ball 306, it enables more precise squeezing of the edge and corner areas of the display screen body 4. After that, observe through the camera 305 whether defects occur in the edge and corner areas of the display screen body 4 during the touch and squeeze process.

[0041] The above embodiments are provided for those skilled in the art to implement or use the present invention. Those skilled in the art can make various modifications or changes to the above embodiments without departing from the inventive concept of the present invention. Therefore, the protection scope of the present invention is not limited by the above embodiments, but should be the maximum scope that conforms to the innovative features mentioned in the claims.

Claims

1. An intelligent quality inspection machine for display screen production, comprising a base (1); characterized in that: It also includes a detection box (2), a mounting plate (3), a cylinder (101), a simulation plate (102), a soft rubber (103), a rotating rod (108), a motor (109), a hard plate (1017), a soft plate (1018), a clamping assembly, a driving assembly and a detection assembly; the base (1) is fixedly connected with a detection box (2) for placing the display body (4); the detection box (2) is detachably connected with a cover plate (23); the detection box (2) is fixedly connected with a mounting plate (3); the mounting plate (3) is connected with a cylinder (101); the telescopic end of the cylinder (101) is connected with a simulation plate (102); the simulation plate (102) is fixedly connected with a soft rubber (103); the detection box (2) is connected with a driving assembly for driving the soft rubber (103) to move, and the driving assembly is connected with the cylinder (101); the driving assembly is connected with a rotating rod (108); the driving assembly is connected with a motor (109), and the output shaft of the motor (109) is fixedly connected with the rotating rod (108); the detection box (2) is connected with a hard plate (1017), and the hard plate (1017) is located below the rotating rod (108); the detection box (2) is connected with a soft plate (1018), and the soft plate (1018) is located below the rotating rod (108); the rotating rod (108) is connected with a clamping assembly for clamping the display body (4); the detection box (2) is connected with a detection assembly for detecting the display body (4).

2. The quality intelligent detector for display screen production according to claim 1, characterized in that, The clamping assembly includes a spring rod I (1010) and a clamping rod (1001); the rotating rod (108) is fixedly connected with a plurality of spring rods I (1010); the telescopic end of each spring rod I (1010) is fixedly connected with a clamping rod (1001), and the clamping rod (1001) is slidably connected with the rotating rod (108).

3. An intelligent quality inspection machine for display screen production according to claim 1, characterized in that, An electric heater is arranged inside the simulation plate (102).

4. An intelligent quality inspection machine for display screen production according to claim 1, characterized in that, It also includes a fixing hoop (1016); the simulation plate (102) is detachably connected with the fixing hoop (1016).

5. An intelligent quality inspection machine for display screen production according to claim 1, characterized in that, It also includes an electric guide rail III (1011), a moving block III (1012), a spring rod II (1013), a fixed ball (1014) and a fixed rod (1015); the simulation plate (102) is provided with a moving groove (1021), and the telescopic end of the cylinder (101) slides in the moving groove (1021); the mounting plate (3) is fixedly connected with an electric guide rail III (1011); the electric guide rail III (1011) is slidably connected with a moving block III (1012); the moving block III (1012) is fixedly connected with a spring rod II (1013), and the telescopic end of the spring rod II (1013) is fixedly connected with the simulation plate (102); the simulation plate (102) is fixedly connected with a plurality of fixed balls (1014); the mounting plate (3) is fixedly connected with a fixed rod (1015), and the fixed rod (1015) and the fixed ball (1014) are intermittently extruded.

6. An intelligent quality inspection machine for display screen production according to claim 1, characterized in that it is hard The hard plate (1017) is detachably connected with the detection box (2); the soft plate (1018) is detachably connected with the detection box (2).

7. An intelligent quality inspection machine for display screen production according to claim 2, characterized in that, The surface of the clamping rod (1001) is roughened.

8. An intelligent quality inspection machine for display screen production according to claim 1, characterized in that, The detection component includes a manipulator (301), a fixing plate (302), a connecting block (303), a detection cylinder (304) and a camera (305); the detection box (2) is fixedly connected with the manipulator (301); the manipulator (301) is fixedly connected with the fixing plate (302); the fixing plate (302) is connected with the connecting block (303); the connecting block (303) is fixedly connected with the detection cylinder (304); the connecting block (303) is fixedly connected with the camera (305), and the camera (305) is located inside the detection cylinder (304).

9. An intelligent quality inspection machine for display screen production according to claim 8, characterized in that, The detection cylinder (304) is made of opaque material.

10. An intelligent quality inspection machine for display screen production according to claim 8, characterized in that, It also includes a spherical ball (306), a connecting ring (307), a bolt rod I (308), a ring (309), a hemisphere (3010) and a bolt rod II (3011); the connecting block (303) is rotatably connected with the bolt rod I (308); the bolt rod I (308) is fixedly connected with the connecting ring (307); the connecting ring (307) is fixedly connected with a plurality of spherical balls (306); the connecting block (303) is rotatably connected with the bolt rod II (3011); the bolt rod II (3011) is fixedly connected with the ring (309); the ring (309) is fixedly connected with a plurality of hemispheres (3010), and the hemispheres (3010) and the spherical balls (306) are arranged alternately.