Gluing equipment and gluing process for negative oxygen ion armor plate production
By introducing adjustment and anti-gluing devices into the glue application equipment, the problem that existing equipment cannot adjust the glue application range is solved, precise control of glue application and overflow recycling are achieved, and the stability of the production process and the glue application quality of the armor plate are improved.
Patent Information
- Application Number
- CN202510865263.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-26
- Publication Date
- 2025-07-22
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing glue application equipment cannot adjust the glue application range of the glue application roller according to the width of the armor plate, resulting in increased waste of glue application materials and increased cleaning difficulties, affecting production costs and quality stability.
A glue application equipment for the production of negative oxygen ion armor plates was designed. Through the adjustment device and anti-gluing device, including two-way screws, rubber stoppers, elastic telescopic rods, L-shaped deflectors and other components, the precise control of the glue application range and the recycling of overflow rubber are achieved, ensuring the stability and uniformity of glue application.
The precise control of adjusting the glue coating range according to the width of the armor plate is achieved, avoiding the waste of glue coating materials and overflow of glue, improving the accuracy and stability of the production process, and ensuring the glue coating quality of the armor plate.
Smart Images

Figure CN120346940A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of armor plate production, and specifically to a sizing device and a sizing process for the production of negative oxygen ion armor plates. Background Art
[0002] The sizing device for armor plate production is mainly used to evenly coat sizing materials on the surface of armor plates to improve the wear resistance, corrosion resistance and adhesion of the plates. The sizing device is widely used in the production process of high-strength materials such as protective armor plates and composite material plates.
[0003] Chinese Patent with the patent publication number CN219503115U discloses a sizing device for the production of environment-friendly decorative panels, including a horizontally arranged plate conveyor belt. Above the plate conveyor belt, there is a sizing box with an open bottom. At the lower ends of the left and right side walls of the sizing box, there are respectively a plate input port and a plate output port. Inside the sizing box, there is a longitudinally installed sizing roller. Above the sizing roller, there is a glue dropping mechanism. The bottom of the glue dropping mechanism has a glue output end, and the glue output from the glue output end falls on the surface of the sizing roller. The structure of this patent is reasonably designed. The glue dropping mechanism drops the glue on the surface of the sizing roller, and then the sizing roller rotates to evenly coat the glue on the surface of the double decorative panel to achieve sizing. It is not only simple in structure, but also effectively improves the sizing uniformity and sizing quality compared with the existing nozzle spraying method.
[0004] However, the current sizing device has the following problems: When the sizing device performs sizing operations on armor plates, it is inconvenient to adjust the coating range of the sizing roller according to the width of the armor plate. When the coating range of the sizing roller is too large, it will waste sizing materials, increase production costs, and increase the difficulty and time of cleaning the equipment. Therefore, we have proposed a sizing device and a sizing process for the production of negative oxygen ion armor plates. Summary of the Invention
[0005] Aiming at the deficiencies of the above technology, the present invention provides a sizing device and a sizing process for the production of negative oxygen ion armor plates, which solve the problems raised in the above background art.
[0006] To achieve the above object, the present invention is realized by the following technical solutions: A sizing device for producing negative oxygen ion armor plates, including an outer frame of the device. On both sides inside the outer frame of the device, there are conveyor belt groups arranged. In the middle inside the outer frame of the device, there is a support roller rotatably installed, and the support roller is driven by a motor. At the top of the outer frame of the device, a U-shaped frame is fixed. At the top of the U-shaped frame, there is a glue injection component arranged. Inside the U-shaped frame, there is a sizing component. The sizing component includes two sliders slidably installed on both sides of the U-shaped frame, a glue blocking roller and a sizing roller rotatably installed between the two sliders. The diameter of the glue blocking roller is smaller than that of the sizing roller, and the top horizontal plane of the glue blocking roller is flush with the top horizontal plane of the sizing roller. At the outer wall of the U-shaped frame, a threaded rod is rotatably installed through a bracket. A threaded block is threadedly connected to the outside of the threaded rod, and the threaded block is fixed to the outer wall of one of the sliders. The glue blocking roller and the sizing roller are driven by a transmission gearbox, and the transmission gearbox is composed of a housing fixed to the outer wall of the slider, two gears respectively fixed to one end of the glue blocking plate and the glue blocking roller, and a driving motor for driving a single gear to rotate. The glue injection component includes a liquid storage cylinder. The liquid storage cylinder is fixed to the top of the U-shaped frame. At the bottom of the liquid storage cylinder, a T-shaped nozzle pipe is fixed, and the nozzle of the T-shaped nozzle pipe is located between the upper parts of the glue blocking roller and the sizing roller. An opening and closing valve is arranged outside the T-shaped nozzle pipe. An adjusting device is arranged between the two sliders. The adjusting device includes a U-shaped liquid receiving plate fixed to the middle part of the inner wall of the outer frame of the device, and two side baffles respectively fixed to the sides of the two sliders close to each other through brackets. Inside the U-shaped liquid receiving plate, a liquid receiving box is slidably installed horizontally. The liquid receiving box horizontally penetrates the inner wall of the outer frame of the device. Between the rear sides of the two side baffles, a bidirectional screw rod is rotatably installed. On both sides of the outside of the bidirectional screw rod, there are glue blocking plates threadedly connected. The glue blocking plates are in contact with the outer walls of the tops of the glue blocking roller and the sizing roller. On the front sides of the two glue blocking plates, elastic telescopic rods are fixed. At the bottom of the elastic telescopic rod, a long side rod is fixed, and the long side rod is slidably installed on the top of the U-shaped liquid receiving plate. When it is necessary to adjust the coating range of the sizing roller according to the width of the armor plate, the staff rotates the bidirectional screw rod to drive the two glue blocking plates to move towards the sizing roller until the distance between the two glue blocking plates is the same as the width of the armor plate. The two glue blocking plates will limit the glue liquid to fall at the position between the tops of the sizing roller and the glue blocking roller. At the rear outer wall of the long side rod, a first I-shaped column is fixed. A connecting plate is slidably installed on the outside of the first I-shaped column, and a spring is arranged between the connecting plate and the first I-shaped column. At the bottom of the connecting plate, a top rod is fixed. On the side of the top rod close to the slider, an L-shaped diversion plate is fixed. At the top of the L-shaped diversion plate, an inclined side plate is fixed. The side of the glue blocking plate away from the slider, the side of the long side rod, the side of the top rod and the side of the inclined side plate away from the slider are on the same vertical plane. The bottom of the sizing roller is on the same horizontal plane as the bottom of the inclined side plate. The top of the top rod is in contact with the bottom outer wall of the sizing roller. During the process of the bidirectional screw rod driving the two glue blocking plates to move towards the sizing roller,The bi-directional screw rod drives the long side rod to move through the elastic telescopic rod, so that the width of the long side rod is equal to that of the armor plate. When the glue applying roller moves upward according to the thickness requirement of the armor plate, under the elastic force of the spring between the first I-shaped column and the connecting plate, the ejector rod will always abut against the bottom of the glue applying roller. At this time, the hypotenuse plate and the top of the armor plate are on the same horizontal plane. When the armor plate has glue overflow at the edge during the glue applying process, the hypotenuse plate will scrape the overflow glue of the armor plate into the L-shaped deflector. Under the guiding action of the L-shaped deflector, the glue liquid scraped by the hypotenuse plate will fall into the liquid receiving box.
[0007] According to the above technical solution, L-shaped inclined plates are fixed on the front sides of the two long side rods. At the same time, when the long side rods move, they will drive the L-shaped inclined plates to move. The two L-shaped inclined plates will guide the armor plates conveyed by the conveyor belt group on the front side, so as to ensure that the armor plates are conveyed along the correct path.
[0008] According to the above technical solution, an anti-glue solidification device is provided at the side baffle. The anti-glue solidification device includes a glue scraping box. The glue scraping box is embedded and fixed between the tops of the two side baffles, and the glue scraping box horizontally penetrates through the two glue blocking plates. The bottom sides of both sides of the glue scraping box are fixed with diversion pipes. The glue scraping box is located at the upper rear side of the glue blocking roller. A glue scraping opening is formed on the front side of the glue scraping box, and the bottom inner wall of the glue scraping box is arranged in a V-shaped surface. Cover plates are slidably installed on both sides of the front side of the glue scraping box, and the cover plates are fixed at the inner wall of the through groove between the glue blocking plate and the glue scraping box. As the glue applying roller rotates, a glue liquid layer will adhere to the surface of the glue applying roller. At the same time, a layer of glue liquid will also adhere to the surface of the glue blocking roller. During the rotation of the glue blocking roller, the glue scraping box will scrape the glue liquid on the surface of the glue blocking roller into the glue scraping box. At the same time, the V-shaped surface of the glue scraping box will divert the glue liquid to both sides of the glue scraping box, and the glue liquid flows into the liquid receiving box through the diversion pipes for collection.
[0009] According to the above technical solution, the anti-gumming device further includes two arc block wheels, two I-shaped columns II, and two U-shaped sliding plates. The two arc block wheels are respectively fixed on both sides of the glue-blocking roller, the two I-shaped columns II are respectively fixed on both sides of the glue scraping box, the upper cross plates of the two U-shaped sliding plates are respectively slidably installed on the outer walls of the two I-shaped columns II, and a spring is provided between the U-shaped sliding plate and the I-shaped column II. Impact columns are fixed at the bottoms of the upper cross plates of the two U-shaped sliding plates, and the bottoms of the impact columns are in contact with the top of the glue scraping box. The bottoms of the lower cross plates of the two U-shaped sliding plates are semicircularly arranged. A number of arc blocks are evenly fixed on the outer wall circumference of the arc block wheel. The semicircular shape of the U-shaped sliding plate is located on the movement track of the arc block of the arc block wheel. When the glue-blocking roller rotates, the glue-blocking roller drives the arc block wheel to rotate. When the arc block of the arc block wheel moves to the semicircular position of the U-shaped sliding plate, the arc block of the arc block wheel pushes the semicircular shape of the U-shaped sliding plate to drive the U-shaped sliding plate to slide upward along the outside of the I-shaped column. The corresponding spring of the U-shaped sliding plate is stretched, and the U-shaped sliding plate drives the impact column away from the glue scraping box. When the arc block of the arc block wheel no longer pushes the semicircular shape of the U-shaped sliding plate, under the action of the elastic force of the corresponding spring of the U-shaped sliding plate, the U-shaped sliding plate resets and drives the impact column to impact the glue scraping box, and both sides of the glue scraping box vibrate.
[0010] A sizing process for sizing equipment used in the production of negative oxygen ion armor plates includes the following steps: S1. Adjust the height position of the sizing roller according to the thickness of the armor plate. The worker manually rotates the threaded rod, and the threaded rod drives the threaded block to move up or down along the U-shaped frame, so that the bottom of the sizing roller reaches the thickness position of the armor plate. S2. When it is necessary to adjust the coating range of the sizing roller according to the width of the armor plate, the worker rotates the bidirectional screw rod to drive the two glue-blocking plates to move towards the sizing roller until the distance between the two glue-blocking plates is the same as the width of the armor plate. The two glue-blocking plates will limit the glue to fall at the position between the top of the sizing roller and the glue-blocking roller. S3. Then, drive the sizing roller and the glue-blocking roller to rotate through the transmission gearbox. The worker opens the T-shaped nozzle pipe through the opening and closing valve, and the glue in the liquid storage cylinder flows into the space between the top of the sizing roller and the glue-blocking roller through the T-shaped nozzle pipe. As the sizing roller rotates, a glue layer will adhere to the surface of the sizing roller. S4. Place the armor plate to be sized on the front conveyor belt group, start the two conveyor belt groups and drive the support rollers to rotate through the motor. S5. The front conveyor belt group transports the armor plate between the sizing roller and the support roller. At this time, the sizing roller will coat the glue layer on the surface of the armor plate. Then, the rear conveyor belt group will transport the armor plate coated with glue out of the position between the sizing roller and the support roller, so as to realize the sizing operation of the armor plate.
[0011] The present invention provides a sizing device and a sizing process for producing negative oxygen ion armor plates. It has the following beneficial effects: (1) Through the setting of the adjusting device in the present invention, when it is necessary to adjust the coating range of the sizing roller according to the width of the armor plate, the bidirectional screw drives two rubber baffle plates to limit the glue to fall between the top of the sizing roller and the rubber blocking roller, so that the width of the glue layer formed on the surface of the sizing roller can be controlled; at the same time, the bidirectional screw, the rubber baffle plate, the sizing roller, the elastic telescopic rod, the long side rod, the first I-shaped column, and the connecting plate cooperate to drive the bevel plate to scrape the overflow glue of the armor plate into the L-shaped diversion plate. Under the diversion effect of the L-shaped diversion plate, the glue scraped by the bevel plate will fall into the liquid receiving box. By effectively recycling the overflow glue, the stability of the coating operation is ensured, and the fluctuation of the coating quality of the armor plate is avoided.
[0012] (2) Through the setting of the L-shaped inclined plate in the present invention, the two L-shaped inclined plates guide the armor plate conveyed by the front conveyor belt group, so as to ensure that the armor plate is conveyed along the correct path, avoiding the problem of uneven sizing caused by the deviation of the armor plate from the conveying path, which can improve the accuracy and stability in the production process.
[0013] (3) Through the setting of the anti-glue solidification device in the present invention, the scraping glue box scrapes the glue on the surface of the rubber blocking roller into the scraping glue box, thus avoiding the problem that the glue on the surface of the rubber blocking roller solidifies to form rubber skin, the gap between the rubber blocking roller and the sizing roller becomes smaller, resulting in the glue not being able to adhere to the surface of the sizing roller evenly, affecting the stability and uniformity of the glue on the surface of the sizing roller. At the same time, the V-shaped surface of the scraping glue box will divert the glue to both sides of the scraping glue box, and the glue flows into the liquid receiving box through the diversion pipe for collection.
[0014] (4) Through the settings of the rubber blocking roller, the arc block wheel, the U-shaped sliding plate, etc. in the present invention, the U-shaped sliding plate drives the impact column to impact the scraping glue box, and both sides of the scraping glue box vibrate, thus promoting the flow speed of the glue inside the scraping glue box to both sides, thereby accelerating the efficiency of the diversion pipe to divert the glue into the liquid receiving box for collection, and avoiding the problem that the glue accumulates excessively inside the scraping glue box, affecting the scraping efficiency of the glue on the surface of the rubber blocking roller by the scraping glue box. Description of the Drawings
[0015] Figure 1 is a schematic diagram of the whole of the present invention; Figure 2 is a schematic diagram of the partial structure of the present invention; Figure 3 is a schematic diagram of the glue injection assembly of the present invention; Figure 4 is a schematic diagram of the sizing assembly of the present invention Figure 1 ; Figure 5 is a schematic diagram of the sizing assembly of the present invention Figure 2 ; Figure 6 Schematic diagram of the adjusting device of the present invention Figure 1 ; Figure 7 Schematic diagram of the adjusting device of the present invention Figure 2 ; Figure 8 Schematic diagram of the anti-gelling device of the present invention Figure 1 ; Figure 9 Schematic diagram of the anti-gelling device of the present invention Figure 2 ; Figure 10 For the present invention Figure 9 Schematic diagram of the enlarged structure at position A; Figure 11 Partial sectional schematic diagram of the anti-gelling device of the present invention.
[0016] In the figure: 1. Equipment outer frame; 2. Conveyor belt group; 3. U-shaped frame; 4. Glue application assembly; 41. Slide block; 42. Glue application roller; 43. Glue blocking roller; 44. Transmission gear box; 45. Threaded rod; 46. Threaded block; 5. Glue injection assembly; 51. Liquid storage cylinder; 52. T-shaped nozzle pipe; 53. Opening and closing valve; 6. Adjusting device; 61. U-shaped liquid receiving plate; 62. Liquid receiving box; 63. Side baffle; 64. Bidirectional screw; 65. Glue blocking plate; 66. Elastic telescopic rod; 67. Long side rod; 68. Thrust rod; 69. L-shaped guide plate; 610. Hypotenuse plate; 611. I-shaped column 1; 612. Connecting plate; 613. L-shaped inclined plate; 7. Anti-gelling device; 71. Glue scraping box; 72. Cover plate; 73. Diversion pipe; 74. Arc block wheel; 75. I-shaped column 2; 76. U-shaped sliding plate; 77. Impact column; 8. Support roller. Specific embodiments
[0017] 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 of the embodiments.
[0018] Please refer to Figures 1 - 11, an embodiment of the present invention is: a sizing device for producing negative oxygen ion armor plates, including an outer frame 1 of the device. On both sides inside the outer frame 1 of the device, conveyor belt groups 2 are provided. A support roller 8 is rotatably installed in the middle inside the outer frame 1 of the device, and the support roller 8 is driven by a motor. A U-shaped frame 3 is fixed to the top of the outer frame 1 of the device. A glue injection assembly 5 is provided on the top of the U-shaped frame 3. A sizing assembly 4 is provided inside the U-shaped frame 3. The sizing assembly 4 includes two sliders 41 slidably installed on both sides of the U-shaped frame 3, a glue blocking roller 43 and a sizing roller 42 rotatably installed between the two sliders 41. The diameter of the glue blocking roller 43 is smaller than that of the sizing roller 42, and the top horizontal plane of the glue blocking roller 43 is flush with the top horizontal plane of the sizing roller 42. A threaded rod 45 is rotatably installed on the outer wall of the U-shaped frame 3 through a bracket. A threaded block 46 is threadedly connected to the outside of the threaded rod 45, and the threaded block 46 is fixed to the outer wall of one slider 41. The glue blocking roller 43 and the sizing roller 42 are driven by a transmission gearbox 44. The glue injection assembly 5 includes a liquid storage cylinder 51. The liquid storage cylinder 51 is fixed to the top of the U-shaped frame 3. A T-shaped nozzle pipe 52 is fixed to the bottom of the liquid storage cylinder 51, and the nozzle of the T-shaped nozzle pipe 52 is located between the upper parts of the glue blocking roller 43 and the sizing roller 42. An opening and closing valve 53 is provided on the outside of the T-shaped nozzle pipe 52. An adjusting device 6 is provided between the two sliders 41. The adjusting device 6 includes a U-shaped liquid receiving plate 61 fixed to the middle of the inner wall of the outer frame 1 of the device, and two side baffles 63 respectively fixed to the sides of the two sliders 41 close to each other through brackets. A liquid receiving box 62 is horizontally slidably installed inside the U-shaped liquid receiving plate 61. The liquid receiving box 62 horizontally penetrates the inner wall of the outer frame 1 of the device. A bidirectional screw 64 is rotatably installed between the rear sides of the two side baffles 63. On both sides of the outside of the bidirectional screw 64, glue blocking plates 65 are threadedly connected. The glue blocking plates 65 are in contact with the outer walls of the tops of the glue blocking roller 43 and the sizing roller 42. Elastic telescopic rods 66 are fixed to the front sides of the two glue blocking plates 65. The bottom of the elastic telescopic rod 66 is fixed to a long side rod 67, and the long side rod 67 is slidably installed on the top of the U-shaped liquid receiving plate 61. The transmission gearbox 44 is composed of a housing fixed to the outer wall of the slider 41, two gears respectively fixed to one end of the glue blocking plate 65 and the glue blocking roller 43, and a driving motor for driving a single gear to rotate. Through the setting of the above structure, the bidirectional screw 64 drives the two glue blocking plates 65 to move towards the sizing roller 42 until the distance between the two glue blocking plates 65 is consistent with the width of the armor plate. The two glue blocking plates 65 will limit the glue liquid to fall at the position between the tops of the sizing roller 42 and the glue blocking roller 43, so as to control the width of the glue liquid layer formed on the surface of the sizing roller 42. An I-shaped column one 611 is fixed to the outer wall of the rear side of the long side rod 67. A connecting plate 612 is slidably installed on the outside of the I-shaped column one 611, and a spring is provided between the connecting plate 612 and the I-shaped column one 611. A top rod 68 is fixed to the bottom of the connecting plate 612. An L-shaped diversion plate 69 is fixed to the side of the top rod 68 close to the slider 41. A bevel plate 610 is fixed to the top of the L-shaped diversion plate 69.One side of the glue baffle 65 away from the slider 41, the long side rod 67, the ejector rod 68 and one side of the bevel plate 610 away from the slider 41 are on the same vertical plane. The bottom of the glue applicator roller 42 and the bottom of the bevel plate 610 are on the same horizontal plane. The top of the ejector rod 68 is in contact with the bottom of the outer wall of the glue applicator roller 42. Through the setting of the above structure, the ejector rod 68 always abuts against the bottom of the glue applicator roller 42, and the bevel plate 610 and the top of the armor plate are on the same horizontal plane. When the armor plate has glue overflow at the edge during the glue application process, the bevel plate 610 will scrape the overflow glue of the armor plate into the L-shaped deflector 69. Under the guiding action of the L-shaped deflector 69, the glue liquid scraped by the bevel plate 610 will fall into the liquid receiving box 62. By effectively recycling the overflow glue, the stability of the glue application operation is ensured, and the fluctuation of the glue application quality of the armor plate is avoided.,
[0019] L-shaped inclined plates 613 are fixed on the front sides of the two long side rods 67. Through the setting of the above structure, the two L-shaped inclined plates 613 will guide the armor plates conveyed by the front conveyor belt group 2, so as to ensure that the armor plates are conveyed along the correct path, avoiding the problem of uneven glue application caused by the deviation of the armor plates from the conveying path, which can improve the accuracy and stability in the production process.
[0020] During use, the height position of the glue applicator roller 42 is adjusted according to the thickness of the armor plate. The staff manually rotates the threaded rod 45, and the threaded rod 45 drives the threaded block 46 to move up or down along the U-shaped frame 3, so that the bottom of the glue applicator roller 42 reaches the thickness position of the armor plate. When it is necessary to adjust the glue application range of the glue applicator roller 42 according to the width of the armor plate, the staff rotates the bidirectional screw rod 64 to drive the two glue baffles 65 to move towards the glue applicator roller 42 until the distance between the two glue baffles 65 is the same as the width of the armor plate. The two glue baffles 65 will limit the position where the glue liquid falls between the top of the glue applicator roller 42 and the glue retaining roller 43, so that the width of the glue liquid layer formed on the surface of the glue applicator roller 42 can be controlled. Then, the glue applicator roller 42 and the glue retaining roller 43 are driven to rotate through the transmission gearbox 44. The staff opens the T-shaped nozzle pipe 52 through the opening and closing valve 53, and the glue liquid in the liquid storage cylinder 51 flows into the space between the top of the glue applicator roller 42 and the glue retaining roller 43 through the T-shaped nozzle pipe 52. As the glue applicator roller 42 rotates, a glue liquid layer will adhere to the surface of the glue applicator roller 42. The armor plate to be glued is placed on the front conveyor belt group 2, the two conveyor belt groups 2 are started and the support roller 8 is driven to rotate by the motor. The front conveyor belt group 2 conveys the armor plate to between the glue applicator roller 42 and the support roller 8. At this time, the glue applicator roller 42 will coat the glue liquid layer on the surface of the armor plate. Then, the rear conveyor belt group 2 will convey the armor plate coated with glue liquid out of the position between the glue applicator roller 42 and the support roller 8, thus realizing the glue application operation of the armor plate.
[0021] It should be noted that since the long side rod 67 is slidably mounted on the top of the U-shaped liquid receiving plate 61, the long side rod 67 will limit the lateral movement trajectory of the rubber blocking plate 65 through the elastic telescopic rod 66.
[0022] During the process of the two-way screw rod 64 driving the two rubber blocking plates 65 to move towards the direction of the glue applying roller 42, the two-way screw rod 64 will drive the long side rod 67 to move along through the elastic telescopic rod 66, so that the width of the long side rod 67 is equal to the width of the armor plate. When the glue applying roller 42 and the side baffle 63 move upward according to the thickness requirement of the armor plate, under the action of the spring force between the I-shaped column 611 and the connecting plate 612, the ejector rod 68 will always abut against the bottom of the glue applying roller 42. At this time, the hypotenuse plate 610 and the top of the armor plate are on the same horizontal plane. When the armor plate has glue overflow during the glue applying process, the hypotenuse plate 610 will scrape the overflow glue of the armor plate into the L-shaped diversion plate 69. Under the diversion action of the L-shaped diversion plate 69, the glue liquid scraped by the hypotenuse plate 610 will fall into the liquid receiving box 62. By effectively recycling the overflow glue, the stability of the glue applying operation is ensured, and the fluctuation of the glue applying quality of the armor plate is avoided.
[0023] Please refer to Figures 1 - 11 On the basis of the above embodiment, in another embodiment of the present invention, a glue anti-solidification device 7 is provided at the side baffle 63. The glue anti-solidification device 7 includes a glue scraping box 71. The glue scraping box 71 is embedded and fixed between the tops of the two side baffles 63, and the glue scraping box 71 horizontally penetrates through the two rubber blocking plates 65. The bottom of both sides of the glue scraping box 71 is fixed with a diversion pipe 73. The glue scraping box 71 is located above the rear side of the glue blocking roller 43. A glue scraping opening is provided on the front side of the glue scraping box 71, and the bottom of the inner wall of the glue scraping box 71 is arranged as a V-shaped surface. Both sides of the front side of the glue scraping box 71 are slidably mounted with a cover plate 72, and the cover plate 72 is fixed at the inner wall of the through groove between the rubber blocking plate 65 and the glue scraping box 71. Through the setting of the above structure, the glue scraping box 71 will scrape the glue liquid on the surface of the glue blocking roller 43 into the glue scraping box 71, thus avoiding the problem that the glue liquid on the surface of the glue blocking roller 43 solidifies to form rubber skin, the gap between the glue blocking roller 43 and the glue applying roller 42 becomes smaller, resulting in the glue liquid being unable to adhere to the surface of the glue applying roller 42 evenly, and affecting the stability and uniformity of the glue liquid on the surface of the glue applying roller 42.
[0024] The anti-gelling device 7 further includes two arc block wheels 74, two I-shaped columns II 75, and two U-shaped sliding plates 76. The two arc block wheels 74 are respectively fixed on both sides of the rubber blocking roller 43. The two I-shaped columns II 75 are respectively fixed on both sides of the rubber scraping box 71. The upper cross plates of the two U-shaped sliding plates 76 are respectively slidably installed on the outer walls of the two I-shaped columns II 75, and a spring is provided between the U-shaped sliding plate 76 and the I-shaped column II 75. Impact columns 77 are fixed to the bottoms of the upper cross plates of the two U-shaped sliding plates 76. The bottom of the impact column 77 is in contact with the top of the rubber scraping box 71. The bottoms of the lower cross plates of the two U-shaped sliding plates 76 are both semicircular. A number of arc blocks are evenly fixed on the outer wall circumference of the arc block wheel 74. The semicircle of the U-shaped sliding plate 76 is located on the movement track of the arc blocks of the arc block wheel 74. Through the setting of the above structure, when the arc blocks of the arc block wheel 74 no longer push the semicircle of the U-shaped sliding plate 76, under the action of the elastic force of the corresponding spring of the U-shaped sliding plate 76, the U-shaped sliding plate 76 drives the impact column 77 to impact the rubber scraping box 71, and both sides of the rubber scraping box 71 vibrate, thereby promoting the flow rate of the glue liquid inside the rubber scraping box 71 to both sides, thus accelerating the efficiency of the diversion pipe 73 to divert the glue liquid into the liquid receiving box 62 for collection, and avoiding the problem that the excessive accumulation of glue liquid inside the rubber scraping box 71 affects the rubber scraping efficiency of the surface of the rubber blocking roller 43 by the rubber scraping box 71.
[0025] During use, when the long side rod 67 moves, it will drive the L-shaped inclined plate 613 to move. The two L-shaped inclined plates 613 will guide the armor plates conveyed by the front conveyor belt group 2, so as to ensure that the armor plates are conveyed along the correct path, avoiding the problem of uneven glue application caused by the deviation of the armor plates from the conveying path, which can improve the accuracy and stability in the production process.
[0026] As the sizing roller 42 rotates, a sizing liquid layer will adhere to the surface of the sizing roller 42. At the same time, a layer of sizing liquid will also adhere to the surface of the rubber blocking roller 43. During the rotation of the rubber blocking roller 43, the rubber scraping box 71 will scrape the sizing liquid on the surface of the rubber blocking roller 43 into the rubber scraping box 71, thus avoiding the problem that the sizing liquid on the surface of the rubber blocking roller 43 solidifies to form rubber sheets, resulting in a smaller gap between the rubber blocking roller 43 and the sizing roller 42, which causes the sizing liquid to be unable to adhere evenly to the surface of the sizing roller 42 and affects the stability and uniformity of the sizing liquid on the surface of the sizing roller 42. At the same time, the V-shaped surface of the rubber scraping box 71 will divert the sizing liquid to both sides of the rubber scraping box 71, and the sizing liquid flows into the liquid receiving box 62 through the diversion pipe 73 for collection. At the same time, when the rubber blocking roller 43 rotates, the rubber blocking roller 43 drives the arc block wheel 74 to rotate. When the arc block of the arc block wheel 74 moves to the semi-circular position of the U-shaped slide plate 76, the arc block of the arc block wheel 74 pushes the semi-circular shape of the U-shaped slide plate 76 to drive the U-shaped slide plate 76 to slide upward along the outside of the second I-shaped column 75. The corresponding spring of the U-shaped slide plate 76 is stretched, and the U-shaped slide plate 76 drives the impact column 77 away from the rubber scraping box 71. When the arc block of the arc block wheel 74 no longer pushes the semi-circular shape of the U-shaped slide plate 76, under the elastic force of the corresponding spring of the U-shaped slide plate 76, the U-shaped slide plate 76 resets and drives the impact column 77 to impact the rubber scraping box 71, and vibrations occur on both sides of the rubber scraping box 71, thereby promoting the flow rate of the sizing liquid inside the rubber scraping box 71 to both sides, thus accelerating the efficiency of the diversion pipe 73 to divert the sizing liquid into the liquid receiving box 62 for collection, and avoiding the problem that the sizing liquid accumulates excessively inside the rubber scraping box 71 and affects the rubber scraping efficiency of the sizing liquid on the surface of the rubber blocking roller 43.
[0027] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present invention.
Claims
1. A sizing device for the production of negative oxygen ion armor plates, including an outer frame of the device, characterized in that: On both inner sides of the outer frame of the device, a conveyor belt group is provided. A support roller is rotatably installed in the middle inside the outer frame of the device. A U-shaped frame is fixed to the top of the outer frame of the device. A glue injection assembly is provided on the top of the U-shaped frame. A glue application assembly is provided inside the U-shaped frame. The glue application assembly includes two sliders slidably installed on both sides of the U-shaped frame, a glue blocking roller and a glue application roller rotatably installed between the two sliders. An adjusting device is provided between the two sliders. The adjusting device includes a U-shaped liquid receiving plate fixed to the middle of the inner wall of the outer frame of the device, two side baffles respectively fixed to the mutually adjacent sides of the two sliders through brackets. A bidirectional screw rod is rotatably installed between the rear sides of the two side baffles. On both outer sides of the bidirectional screw rod, glue blocking plates are threadedly connected. The glue blocking plates are in contact with the top outer walls of the glue blocking roller and the glue application roller. On the front sides of the two glue blocking plates, elastic telescopic rods are fixed. The bottom of the elastic telescopic rod is fixed with a long side rod, and the long side rod is slidably installed on the top of the U-shaped liquid receiving plate. A first I-shaped column is fixed to the outer wall at the rear side of the long side rod. A connecting plate is slidably installed on the outside of the first I-shaped column, and a spring is provided between the connecting plate and the first I-shaped column. The bottom of the connecting plate is fixed with a top rod. On the side of the top rod close to the slider, an L-shaped diversion plate is fixed. An inclined side plate is fixed to the top of the L-shaped diversion plate.
2. The sizing device for producing negative oxygen ion armor plates according to claim 1, characterized in that: The side of the glue blocking plate away from the slider is on the same vertical plane as the sides of the long side rod, the top rod and the inclined side plate away from the slider. The bottom of the glue application roller is on the same horizontal plane as the bottom of the inclined side plate. The top of the top rod is in contact with the bottom of the outer wall of the glue application roller.
3. The sizing equipment for producing negative oxygen ion armor plates according to claim 1, wherein: A liquid receiving box is horizontally slidably installed inside the U-shaped liquid receiving plate, and the liquid receiving box horizontally penetrates the inner wall of the outer frame of the device.
4. The sizing device for producing negative oxygen ion armor plates according to claim 1, characterized in that: L-shaped inclined plates are fixed to the front sides of the two long side rods.
5. The sizing device for producing negative oxygen ion armor plates according to claim 1, characterized in that: A threaded rod is rotatably installed on the outer wall of the U-shaped frame through a bracket. A threaded block is threadedly connected to the outside of the threaded rod. The threaded block is fixed to the outer wall of one slider. The glue blocking roller and the glue application roller are driven by a transmission gearbox.
6. The sizing device for producing negative oxygen ion armor plates according to claim 1, characterized in that: The glue injection assembly includes a liquid storage cylinder fixed to the top of the U-shaped frame. A T-shaped nozzle pipe is fixed to the bottom of the liquid storage cylinder, and the nozzle of the T-shaped nozzle pipe is located between the upper sides of the glue blocking roller and the glue application roller. An opening and closing valve is provided on the outside of the T-shaped nozzle pipe.
7. The sizing device for producing negative oxygen ion armor plates according to claim 1, characterized in that: An anti-glue solidification device is provided at the side baffle. The anti-glue solidification device includes a glue scraping box embedded and fixed between the tops of the two side baffles, and the glue scraping box horizontally penetrates the two glue blocking plates. Drainage pipes are fixed to the bottom sides of the two sides of the glue scraping box. The glue scraping box is located at the upper rear side of the glue blocking roller. A glue scraping opening is provided on the front side of the glue scraping box, and the bottom of the inner wall of the glue scraping box is arranged in a V-shaped surface. On both front sides of the glue scraping box, cover plates are slidably installed, and the cover plates are fixed to the inner wall of the through groove between the glue blocking plate and the glue scraping box.
8. The sizing device for producing negative oxygen ion armor plates according to claim 7, wherein: The anti-glue solidification device further includes two arc-shaped wheel blocks, two second I-shaped columns, and two U-shaped sliding plates. The two arc-shaped wheel blocks are respectively fixed to both sides of the glue blocking roller. The two second I-shaped columns are respectively fixed to both sides of the glue scraping box. The upper cross support plates of the two U-shaped sliding plates are respectively slidably installed on the outer walls of the two second I-shaped columns, and springs are provided between the U-shaped sliding plates and the second I-shaped columns. Impact columns are fixed to the bottoms of the upper cross support plates of the two U-shaped sliding plates, and the bottoms of the impact columns are in contact with the top of the glue scraping box.
9. The sizing device for producing negative oxygen ion armor plates according to claim 8, characterized in that: The bottoms of the lower cross support plates of the two U-shaped slide plates are both semicircularly arranged. A number of arc blocks are evenly fixed on the outer wall circumference of the arc block wheel. The semicircular shape of the U-shaped slide plate is located on the movement track of the arc blocks of the arc block wheel.
10. A sizing process for a sizing device used in the production of negative oxygen ion armor plates, including a sizing device for the production of negative oxygen ion armor plates according to any one of claims 1-9, characterized in that, It includes the following steps: S1. Adjust the height position of the glue application roller according to the thickness of the armor plate. The staff manually rotates the threaded rod, and the threaded rod drives the threaded block to move up or down along the U-shaped frame, so that the bottom of the glue application roller reaches the thickness position of the armor plate. S2. When it is necessary to adjust the glue application range of the glue application roller according to the width of the armor plate, the staff rotates the bidirectional screw rod to drive the two glue blocking plates to move towards the glue application roller until the distance between the two glue blocking plates is the same as the width of the armor plate. The two glue blocking plates will limit the glue to fall at the position between the top of the glue application roller and the glue blocking roller. S3. Then, drive the glue application roller and the glue blocking roller to rotate through the transmission gearbox. The staff opens the T-shaped nozzle pipe through the opening and closing valve, and the glue in the liquid storage cylinder flows into the space between the top of the glue application roller and the glue blocking roller through the T-shaped nozzle pipe. As the glue application roller rotates, a glue layer will adhere to the surface of the glue application roller. S4. Place the armor plate to be glued on the front conveyor belt group, start the two conveyor belt groups and drive the support rollers to rotate through the motor. S5. The front conveyor belt group transports the armor plate between the glue application roller and the support roller. At this time, the glue application roller will coat the glue layer on the surface of the armor plate. Then, the rear conveyor belt group will transport the armor plate coated with glue out of the position between the glue application roller and the support roller, so as to realize the glue application operation of the armor plate.
Citation Information
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