Glass cement production detector with cleaning function

Through the design of the electric push rod and connecting cylinder driving the extrusion block, combined with the hollow part and cleaning block, the problem of low solidification and cleaning efficiency in the glass glue detection equipment is solved, rapid solidification and efficient cleaning are achieved, and cost and manual operation burden are reduced.

CN120293834APending Publication Date: 2025-07-11SHANDONG YOUKESHU NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202510475453.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

Existing glass glue testing equipment cannot be fast solidified and cleaned, resulting in long inspection time, low efficiency and high cost.

Method used

The glass glue production detector with cleaning function is adopted. The extrusion block is driven by electric push rods and connecting cylinders to achieve uniform application and automatic glue delivery. Combined with the hollow part and cleaning block design, the glass glue is quickly solidified by ultraviolet rays, and efficient cleaning is achieved through dissolving agents and airbags.

Benefits of technology

It realizes rapid solidification and efficient cleaning of glass glue, reduces inspection and maintenance costs, improves inspection efficiency and accuracy, and reduces manual operation burden.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of glass cement processing, in particular to a glass cement production detector with a cleaning function, which comprises a worktable, an electric push rod I, a test plate, a fixed plate and the like, the workbench is fixedly connected with at least four first electric push rods. Telescopic parts of all the electric push rods are jointly and fixedly connected with a test plate; the workbench is fixedly connected with a fixed plate; the fixed plate is positioned right above the test plate; the first electric push rod is connected with the tension display device. The extrusion block is driven to rise through the connecting cylinder, so that the extrusion block is far away from the fixing plate, the glass cement is poor in fluidity and keeps the original shape after being extruded, the whole glass cement is hollowed out at the moment, then the ultraviolet lamp can irradiate the glass cement through the hollowed-out part to enable the glass cement to be rapidly solidified, and when cleaning is needed, only a dissolving agent needs to be injected into the hollowed-out part. The contact area of the dissolving agent and the glass cement is enlarged, the softening speed of the glass cement is increased, and cleaning work is facilitated.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass glue processing, and in particular to a glass glue production detector with a cleaning function. Background Art

[0002] Glass glue plays an important role in multiple industries such as construction and decoration. Its viscosity is one of the key indicators to measure its performance. When producing glass glue, in order to ensure that the glass glue of each production batch meets the production standards, it is necessary to take out some glass glue for testing, so as to ensure the production quality of the glass glue.

[0003] When detecting glass glue currently, the taken-out glass glue is coated on a board, and then another board is controlled to descend by a push rod. The two boards are bonded together by the glass glue. When the glass glue solidifies, the board connected to it is driven to rise by pushing, so as to detect the viscosity of the glass glue, and thus ensure that the produced glass glue meets the standards. In order to simulate the actual use situation, two boards of different materials are used for bonding inspection. However, when using a non-transparent material board for detection, the two boards will block the glass glue, resulting in a small ultraviolet irradiation area. The glass glue can only be air-dried and solidified by ultraviolet irradiation from the side, and cannot solidify the glass glue quickly, resulting in a long detection time, affecting the detection efficiency. And after the glass glue is detected, the board used for detection needs to be cleaned to facilitate the next detection work and reduce the detection cost. Before cleaning, the glass glue is softened by contacting with a dissolving agent to facilitate cleaning. However, the existing cleaning method cannot make the dissolving agent contact the glass glue in a large area, resulting in a long softening time of the glass glue and affecting the cleaning speed. Summary of the Invention

[0004] In order to overcome the drawback that the glass glue cannot be solidified quickly, resulting in a long detection time and affecting the detection efficiency, the present invention provides a glass glue production detector with a cleaning function.

[0005] The technical solution of the present invention is as follows: A glass glue production detector with a cleaning function includes a workbench, a first electric push rod, a test board, and a fixing board; at least four first electric push rods are fixedly connected to the workbench; the telescopic parts of all the first electric push rods are commonly fixedly connected to the test board; the fixing board is fixedly connected to the workbench; the fixing board is located directly above the test board; the first electric push rod is connected to a tensile display device; it further includes a connecting frame, a second electric push rod, a connecting cylinder, and an extrusion block; the connecting frame is fixedly connected to the workbench; several second electric push rods are fixedly connected to the connecting frame; the telescopic parts of all the second electric push rods are commonly fixedly connected to the connecting cylinder; several extrusion blocks are connected to the connecting cylinder; several hollow parts are provided on the fixing board; each extrusion block is aligned with the corresponding hollow part; the connecting cylinder is provided with glue inlet holes; at least four communication holes are provided at the lower part of each extrusion block.

[0006] More preferably, it further includes an electric push rod three and an extrusion plate; at least four electric push rods three are fixedly connected to the upper part of the connecting cylinder; the telescopic parts of all the electric push rods three are commonly fixedly connected with an extrusion plate, the extrusion plate is in close contact with the inside of the connecting cylinder, the extrusion plate is provided with a number of cleaning parts, each cleaning part is aligned with the corresponding extrusion block, and the outer diameter of the cleaning part is the same as the inner diameter of the extrusion block.

[0007] More preferably, a limit ring is provided on the upper part of the test plate.

[0008] More preferably, the connecting cylinder is provided with a liquid inlet hole.

[0009] More preferably, the glue inlet hole should be higher than the liquid inlet hole.

[0010] More preferably, it further includes an air inlet hose, an airbag and a cleaning block; the connecting cylinder is communicated with the air inlet hose; the extrusion plate is provided with an air outlet hole; the air outlet hole is communicated with the air inlet hose; each cleaning part of the extrusion plate is fixedly connected with an airbag; at least four cleaning blocks are slidably connected to each cleaning part of the extrusion plate, and the cleaning blocks are fixedly connected with the corresponding airbags; each cleaning block is aligned with the corresponding communication hole.

[0011] More preferably, the side of the cleaning block close to the extrusion block is arc-shaped, so that the cleaning part and the cleaning block are in a complete circular shape when viewed from above.

[0012] More preferably, at least four silica gel blocks are embedded in the upper part of each hollow part.

[0013] More preferably, it further includes a spring, a scraping blade and a DD motor; at least three springs are fixedly connected to each hollow part of the fixed plate; a scraping blade is slidably connected to each hollow part of the fixed plate, and the scraping blade is fixedly connected with the corresponding spring; a number of DD motors are fixedly connected to the lower part of the connecting cylinder; the rotating part of each DD motor is fixedly connected with the corresponding extrusion block; the extrusion block is rotatably connected with the connecting cylinder; the DD motor is connected to an external power supply.

[0014] More preferably, the scraping blade is inclined, and the contact surface of the scraping blade with the extrusion block is arc-shaped.

[0015] Advantages of the present invention:

[0016] By driving the extrusion block to rise through the connecting cylinder, the extrusion block is separated from the fixed plate. Since the glass glue has poor fluidity and will remain the same after being extruded, the glass glue is in a hollow shape at this time. Then, the ultraviolet lamp can irradiate the glass glue through the hollow part to make it quickly solidify. And when cleaning is required, only a dissolving agent needs to be injected into the hollow part, increasing the contact area between the dissolving agent and the glass glue and accelerating the softening speed of the glass glue, which is convenient for cleaning work.

[0017] The automated glue feeding work is achieved through the cooperation of the connecting cylinder and the extrusion block, which can make the application of the glass glue uniform, reduce the use and maintenance costs compared with applying glue using external mechanical devices, and the bottom of the extrusion block does not contact the glass glue, reducing the area to be cleaned subsequently and lightening the cleaning burden.

[0018] The extrusion block can quickly and accurately spray the dissolving agent, eliminating the need for workers to align and spray the dissolving agent into the hollow parts one by one, thus lightening the workload. The glue inlet hole should be higher than the liquid inlet hole to prevent the dissolving agent from discharging through the glue inlet hole.

[0019] The cleaning block is inserted into the communication hole to extrude the glass glue remaining in the communication hole, thus preventing the glass glue remaining in the communication hole from solidifying and causing the communication hole to become blocked and unusable. Description of the Drawings

[0020] Figure 1 Schematic structural diagram of the glass glue production detector with a cleaning function disclosed by the present invention;

[0021] Figure 2 Cross-sectional view of the fixed plate of the glass glue production detector with a cleaning function disclosed by the present invention;

[0022] Figure 3 Cross-sectional view of the connecting cylinder of the glass glue production detector with a cleaning function disclosed by the present invention;

[0023] Figure 4 Cross-sectional view of the fixed plate, connecting cylinder, extrusion block and extrusion plate of the glass glue production detector with a cleaning function disclosed by the present invention.

[0024] The labels in the figure are: 1 - workbench, 2 - first electric push rod, 3 - test plate, 4 - fixed plate, 5 - connecting frame, 6 - second electric push rod, 7 - connecting cylinder, 8 - extrusion block, 101 - third electric push rod, 102 - extrusion plate, 111 - air inlet hose, 112 - airbag, 113 - cleaning block, 121 - silica gel block, 201 - spring, 202 - scraping blade, 203 - DD motor, 3001 - limiting ring, 4001 - hollow part, 7001 - glue inlet hole, 7002 - liquid inlet hole, 8001 - communication hole, 10201 - air delivery hole, 10202 - cleaning part. Detailed Description of the Invention

[0025] The following further describes the present invention in detail in conjunction with the drawings and specific embodiments, but does not limit the protection scope and application scope of the present invention.

[0026] Embodiment 1

[0027] A glass glue production detector with a cleaning function, as Figures 1 - 4As shown, it includes a workbench 1, an electric push rod 2, a test plate 3 and a fixed plate 4; the workbench 1 is fixedly connected to four electric push rods 2; the telescopic parts of all the electric push rods 2 are commonly fixedly connected to the test plate 3; the workbench 1 is fixedly connected to the fixed plate 4; the fixed plate 4 is located directly above the test plate 3; the electric push rod 2 is connected to the tension display device;

[0028] It also includes a connecting frame 5, an electric push rod 2 6, a connecting tube 7 and an extrusion block 8; the workbench 1 is fixedly connected to the connecting frame 5; a plurality of four electric push rods 2 6 are fixedly connected to the connecting frame 5; the telescopic parts of all electric push rods 2 6 are commonly fixedly connected to the connecting tube 7; the connecting tube 7 is connected to a plurality of extrusion blocks 8; the fixed plate 4 is provided with a plurality of hollow parts 4001; each extrusion block 8 is aligned with the corresponding hollow part 4001; the electric push rod 1 2 and the electric push rod 2 6 are respectively connected to an external power supply; the connecting tube 7 is provided with a glue inlet hole 7001; and each extrusion block 8 is provided with four connecting holes 8001 at the lower part.

[0029] Silicone is provided at the bottom of the extrusion block 8 so that when the test board 3 rises and contacts the extrusion block 8 , the extrusion block 8 and the test board 3 fit tightly together to avoid gaps that cause the glass glue to adhere to the bottom of the extrusion block 8 .

[0030] It also includes an electric push rod 3 101 and an extrusion plate 102; four electric push rods 3 101 are fixedly connected to the upper part of the connecting tube 7; the telescopic parts of all the electric push rods 3 101 are commonly fixedly connected to the extrusion plate 102, the extrusion plate 102 is tightly attached to the inside of the connecting tube 7, and the extrusion plate 102 is provided with a plurality of cleaning parts 10202, each cleaning part 10202 is aligned with the corresponding extrusion block 8, and the outer diameter of the cleaning part 10202 is the same as the inner diameter of the extrusion block 8.

[0031] A limiting ring 3001 is provided on the upper part of the test plate 3. When the test plate 3 rises, the limiting ring 3001 is in close contact with the fixing plate 4 to prevent part of the glass glue from being squeezed out of the fixing plate 4 during coating.

[0032] The connecting tube 7 is provided with a liquid inlet hole 7002, through which the solvent is transported, so that the glass glue remaining inside the connecting tube 7 is also dissolved, making it easier to clean the remaining glass glue.

[0033] The glue inlet hole 7001 should be higher than the liquid inlet hole 7002 to prevent the solvent from being discharged from the glue inlet hole 7001.

[0034] It also includes an intake hose 111, an airbag 112 and a cleaning block 113; the connecting cylinder 7 is communicated with the intake hose 111; the pressing plate 102 is provided with an air vent hole 10201; the air vent hole 10201 is communicated with the intake hose 111; each cleaning part 10202 of the pressing plate 102 is fixedly connected with an airbag 112; each cleaning part 10202 of the pressing plate 102 is slidably connected with four cleaning blocks 113, and the cleaning blocks 113 are fixedly connected with the corresponding airbags 112; each cleaning block 113 is aligned with the corresponding communication hole 8001.

[0035] The side of the cleaning block 113 close to the pressing block 8 is arc-shaped, so that when viewed from above, the cleaning part 10202 and the cleaning block 113 form a complete circle.

[0036] Four silica gel blocks 121 are embedded in the upper part of each hollow part 4001, and the communication hole 8001 is blocked by the rebound of the silica gel blocks 121, so that the dissolving agent dissolves the residual and uncured glass glue in the connecting cylinder 7 and the pressing block 8.

[0037] The specific working steps are as follows:

[0038] The liquid inlet hole 7002 is connected to an external liquid delivery device, the external liquid delivery device delivers the dissolving liquid, and the external air delivery device is connected to the intake hose 111.

[0039] When it is necessary to detect the glass glue, the glass glue is applied to the test plate 3 through a peripheral mechanical device (a manipulator cooperating with an automatic glue applicator). Then, the electric push rod 1-2 pushes the test plate 3 upward, so that the glass glue on the test plate 3 contacts and presses against the fixed plate 4. Then, a peripheral ultraviolet irradiation lamp is moved above the fixed plate 4 to solidify the glass glue, so that the test plate 3 is fixed to the fixed plate 4 through the glass glue. Since the fixed plate 4 is provided with a hollow part 4001, at this time, the ultraviolet light will increase the irradiation range (area) of the glass glue through the hollow part 4001, thereby accelerating the solidification of the glass glue. However, when the test plate 3 rises and presses the glass glue, the glass glue will enter the hollow part 4001 and overflow to the upper part of the fixed plate 4, which will increase the cleaning workload. Moreover, the glass glue overflowing to the upper part of the fixed plate 4 will reduce the glass glue between the test plate 3 and the fixed plate 4, affecting the detection. Therefore, before the electric push rod 1-2 pushes the test plate 3 upward, the electric push rod 2-6 drives the extrusion block 8 to descend through the connecting cylinder 7, so that the extrusion block 8 is located in the hollow part 4001, and the extrusion block 8 fills the hollow part 4001. When the test plate 3 drives the glass glue to rise and contact the fixed plate 4, it can prevent the glass glue from overflowing to the upper part of the fixed plate 4 through the hollow part 4001, resulting in the problems of increased cleaning workload and affecting detection. Then, the electric push rod 2-6 drives the extrusion block 8 to rise through the connecting cylinder 7, so that the extrusion block 8 is away from the fixed plate 4. Since the glass glue has poor fluidity and will remain the same after being extruded, the glass glue is in a hollow shape at this time. Then, the ultraviolet lamp can irradiate the glass glue through the hollow part 4001 to make it solidify quickly. And when cleaning is needed, only a dissolving agent needs to be injected into the hollow part 4001, which increases the contact area between the dissolving agent and the glass glue and accelerates the softening speed of the glass glue, facilitating the cleaning work. Thus, the hollow part 4001 plays a role in facilitating the solidification and cleaning of the glass glue. When the glass glue is solidified, the electric push rod 1-2 is controlled to drive the test plate 3 to pull the glass glue downward. At this time, the tensile force display device will display the tensile force applied by the electric push rod 1-2, thereby detecting the viscosity of the glass glue.

[0040] Considering that when conducting detection work in the above - mentioned manner, the use and maintenance costs of the peripheral mechanical device for applying glue are high. Therefore, when detection work is required, first control the electric push rod 2 to drive the test plate 3 to rise, so that the test plate 3 is in close contact with the extrusion block 8. Then, the glue outlet of the peripheral glue dispenser conveys glass glue into the inside of the connecting cylinder 7 through the glue inlet hole 7001, so that the glass glue fills the inside of the connecting cylinder 7 and the extrusion block 8. Then, the electric push rod 101 of the third stage pushes the extrusion plate 102 to descend, so that the extrusion plate 102 extrudes the glass glue, and the glass glue will be discharged from the communication hole 8001, thereby automatically filling the glass glue between the test plate 3 and the fixing plate 4. When the glass glue is discharged completely, control the electric push rod 6 of the second stage to drive the extrusion block 8 to rise through the connecting cylinder 7. Thus, only the glass glue needs to be squeezed into the connecting cylinder 7, and then the cooperation of the connecting cylinder 7 and the extrusion block 8 realizes the automatic glue - feeding work, which can make the glass glue evenly applied, reducing the use and maintenance costs compared with using the peripheral mechanical device for applying glue. Moreover, the bottom of the extrusion block 8 does not contact the glass glue, reducing the area that needs to be cleaned subsequently and lightening the cleaning burden. And by the extrusion plate 102 descending to extrude the glass glue, the glass glue is discharged, which can avoid the residual glass glue in the connecting cylinder 7, prevent the glass glue from solidifying, resulting in difficult cleaning subsequently. And by the extrusion plate 102 descending to extrude the glass glue, all the glass glue can be discharged, avoiding the mixing of the glass glue of two batches when detecting the next batch of glass glue, resulting in inaccurate detection results. It should be noted that when the test plate 3 rises, the limit ring 3001 is in close contact with the fixing plate 4, avoiding some glass glue being extruded out of the range of the fixing plate 4, thereby preventing the problem of deviation in detection data.

[0041] It should be noted that when the extrusion plate 102 descends to extrude the glass glue, the cleaning part 10202 enters the extrusion block 8. Thus, when the extrusion plate 102 descends to extrude the glass glue, the cleaning part 10202 extrudes the glass glue in the extrusion block 8 from the communication hole 8001, and the outer diameter of the cleaning part 10202 is the same as the inner diameter of the extrusion block 8, thereby avoiding the residual glass glue in the extrusion block 8.

[0042] After the detection is completed, the electric push rod 101 of the third stage first drives the extrusion plate 102 to rise back to the original position, so that the extrusion plate 102 is higher than the liquid inlet hole 7002. Then, the peripheral liquid - feeding device conveys liquid to the liquid inlet hole 7002, so that the dissolving agent is sent into the connecting cylinder 7 and then discharged from the communication hole 8001 of the extrusion block 8. Since the extrusion block 8 is aligned with the hollow part 4001, at this time, the dissolving agent will just enter between the test plate 3, the fixing plate 4 and the glass glue through the hollow part 4001, enabling the dissolving agent to soften the glass glue, thus facilitating the subsequent cleaning work. Therefore, the extrusion block 8 can quickly and accurately spray the dissolving agent, eliminating the need for workers to spray the dissolving agent one by one at the hollow part 4001, lightening the work burden. And the glue inlet hole 7001 should be higher than the liquid inlet hole 7002 to avoid the discharge of the dissolving agent from the glue inlet hole 7001.

[0043] Considering that the extrusion plate 102 cannot clean the communication holes 8001, glass glue will remain on the communication holes 8001. After long-term use, the communication holes 8001 will be blocked. Therefore, after the extrusion plate 102 descends, an external air supply device will convey gas to the intake hose 111, so that the gas will pass through the intake hose 111 and the air intake holes 10201 in sequence, and finally enter the airbag 112 to make it expand. The expanded airbag 112 will push the cleaning block 113 to move, so that the cleaning block 113 is inserted into the communication holes 8001, and then the glass glue remaining in the communication holes 8001 is extruded, thus avoiding the glass glue remaining in the communication holes 8001 from solidifying and causing the communication holes 8001 to be blocked and unable to be used.

[0044] It should be noted that it is impossible to avoid the remaining glass glue inside the connecting cylinder 7 and the extrusion block 8. Therefore, a silica gel block 121 is embedded in the upper part of the hollow part 4001 of the fixing plate 4. When the extrusion block 8 is performing glue application work inside the hollow part 4001, the silica gel block 121 will be extruded. When the extrusion block 8 rises after the glue application is completed, the communication holes 8001 on the extrusion block 8 will rise to contact the silica gel block 121, so that the silica gel block 121 rebounds to block the communication holes 8001. Then, a dissolving agent is injected into the connecting cylinder 7 and the extrusion block 8, so that the dissolving agent dissolves the remaining and uncured glass glue inside the connecting cylinder 7 and the extrusion block 8, making it dissolve. Then, the remaining glass glue is separated from the inner walls of the connecting cylinder 7 and the extrusion block 8. Then, when the dissolving agent is discharged, the extrusion block 8 rises and leaves the hollow part 4001, so that the communication holes 8001 are no longer blocked, and thus the dissolving agent is discharged to the hollow part 4001. At this time, the separated glass glue will be discharged together with the dissolving agent.

[0045] Embodiment 2

[0046] Based on Embodiment 1, as Figure 4 shown, it further includes a spring 201, a scraping blade 202 and a DD motor 203; three springs 201 are fixedly connected to each hollow part 4001 of the fixing plate 4; a scraping blade 202 is slidably connected to each hollow part 4001 of the fixing plate 4, and the scraping blade 202 is fixedly connected to the corresponding spring 201; several DD motors 203 are fixedly connected to the lower part of the connecting cylinder 7; the rotating part of each DD motor 203 is fixedly connected to the corresponding extrusion block 8; the extrusion block 8 is rotatably connected to the connecting cylinder 7; the DD motor 203 is connected to an external power supply.

[0047] The scraping blade 202 is inclined, which is convenient for the scrap to fall, and the contact surface between the scraping blade 202 and the extrusion block 8 is arc-shaped, so as to fit the extrusion block 8 more closely.

[0048] The specific working steps are as follows:

[0049] After the glass glue is extruded from the communication hole 8001 and fills the space between the test plate 3 and the fixing plate 4, part of the glass glue will adhere to the side of the extrusion block 8. Therefore, when the extrusion block 8 rises, the area of the extrusion block 8 located between the test plate 3 and the fixing plate 4 stays beside the wiper 202, and the compressed spring 201 will rebound to push the wiper 202 to closely adhere to the extrusion block 8. Then, from the perspective of looking down, the DD motor 203 drives the extrusion block 8 to rotate counterclockwise, so that the wiper 202 scrapes off the glass glue attached to the extrusion block 8, thus avoiding the need for subsequent cleaning by workers.

[0050] It should be noted that when the dissolving agent is discharged downward from the communication hole 8001 of the extrusion block 8, the dissolving agent will fill the hollow parts and the hollow portion 4001 of the hollow-shaped glass glue, so that the dissolving agent can soften the glass glue on the wiper 202 and the hollow portion 4001 for subsequent cleaning.

[0051] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those skilled in the art.

Claims

1. A glass glue production detector with a cleaning function, comprising a workbench (1), a first electric push rod (2), a test board (3) and a fixing board (4); at least four first electric push rods (2) are fixedly connected to the workbench (1); a test board (3) is fixedly connected to the telescopic parts of all the first electric push rods (2); a fixing board (4) is fixedly connected to the workbench (1); the fixing board (4) is located directly above the test board (3); the first electric push rod (2) is connected to a tensile force display device; it is characterized in that: It further includes a connecting frame (5), a second electric push rod (6), a connecting cylinder (7) and a pressing block (8); the workbench (1) is fixedly connected with the connecting frame (5); the connecting frame (5) is fixedly connected with several (four in number) second electric push rods (6); the telescopic parts of all the second electric push rods (6) are jointly fixedly connected with the connecting cylinder (7); the connecting cylinder (7) is connected with several pressing blocks (8); the fixing plate (4) is provided with several hollow parts (4001); each pressing block (8) is aligned with the corresponding hollow part (4001); the connecting cylinder (7) is provided with a glue inlet hole (7001); at least four communicating holes (8001) are provided at the lower part of each pressing block (8).

2. The glass glue production detector with a cleaning function according to claim 1, characterized in that: It further includes a third electric push rod (101) and a pressing plate (102); at least four third electric push rods (101) are fixedly connected to the upper part of the connecting cylinder (7); the telescopic parts of all the third electric push rods (101) are jointly fixedly connected with the pressing plate (102), the pressing plate (102) is in close contact with the inside of the connecting cylinder (7), the pressing plate (102) is provided with several cleaning parts (10202), each cleaning part (10202) is aligned with the corresponding pressing block (8), and the outer diameter of the cleaning part (10202) is the same as the inner diameter of the pressing block (8).

3. A glass glue production detector with a cleaning function according to claim 1, characterized in that: A limiting ring (3001) is provided at the upper part of the test plate (3).

4. A glass glue production detector with a cleaning function according to claim 2, characterized in that: The connecting cylinder (7) is provided with a liquid inlet hole (7002).

5. The glass glue production detector with a cleaning function according to claim 4, wherein: The glue inlet hole (7001) should be higher than the liquid inlet hole (7002).

6. The glass glue production detector with a cleaning function according to claim 5, wherein: It further includes an air inlet hose (111), an airbag (112) and a cleaning block (113); the connecting cylinder (7) is communicated with the air inlet hose (111); the pressing plate (102) is provided with an air outlet hole (10201); the air outlet hole (10201) is communicated with the air inlet hose (111); each cleaning part (10202) of the pressing plate (102) is fixedly connected with an airbag (112); at least four cleaning blocks (113) are slidably connected to each cleaning part (10202) of the pressing plate (102), and the cleaning blocks (113) are fixedly connected with the corresponding airbags (112); each cleaning block (113) is aligned with the corresponding communicating hole (8001).

7. The glass glue production detector with a cleaning function according to claim 6, wherein: The side of the cleaning block (113) close to the pressing block (8) is arc-shaped, so that when viewed from above, the cleaning part (10202) and the cleaning block (113) form a complete circle.

8. A glass glue production detector with a cleaning function according to claim 1, characterized in that: At least four silica gel blocks (121) are embedded in the upper part inside each hollow part (4001).

9. The glass glue production detector with a cleaning function according to claim 8, characterized in that: It further includes a spring (201), a scraping blade (202) and a DD motor (203); at least three springs (201) are fixedly connected to each hollow part (4001) of the fixing plate (4); a scraping blade (202) is slidably connected to each hollow part (4001) of the fixing plate (4), and the scraping blade (202) is fixedly connected with the corresponding spring (201); several DD motors (203) are fixedly connected to the lower part of the connecting cylinder (7); the rotating part of each DD motor (203) is fixedly connected with the corresponding pressing block (8); the pressing block (8) is rotatably connected with the connecting cylinder (7); the DD motor (203) is connected to an external power supply.

10. A glass glue production detector with a cleaning function according to claim 9, characterized in that: The scraping blade (202) is inclined, and the contact surface of the scraping blade (202) with the pressing block (8) is arc-shaped.