A kind of production corrugated paper water-based waterproof inkjet ink reaction equipment

By designing automated corrugated paper production equipment, precise proportioning of ink or water-repellent solution and automated feeding and unloading are achieved, solving the problems of difficult solution proportioning and low efficiency of manual operation in existing technologies, thus improving the efficiency of corrugated paper production and reducing costs.

CN117861900BActive Publication Date: 2026-07-31浙江材华科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
浙江材华科技有限公司
Filing Date
2024-01-08
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

In existing waterproof inkjet equipment for corrugated paper production, the ratio of ink or water-repellent solution is difficult to control, and the feeding, unloading, and collection of corrugated paper on the production line require manual operation, resulting in low efficiency and high cost.

Method used

Design a water-based waterproof inkjet ink reaction device that includes a movable conveyor belt, a feeding device, a discharging and collecting device, and a solution preparer. By automating feeding, discharging, and precise solution preparation, it can replace manual operation, improve production efficiency, and reduce costs.

Benefits of technology

It achieves precise mixing of ink or water-repellent solution, automated feeding and unloading collection, reduces labor intensity, improves production efficiency and reduces costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of rubber additive production, and in particular to a reaction device for producing water-based waterproof inkjet ink for corrugated paper. The device includes a production line with a movable conveyor belt. A feeding device is located on the left side of the production line, and the feeding device includes a rotatable transmission block. When the transmission block rotates, the feeding device intermittently feeds corrugated paper onto the conveyor belt. A mixing tank is located at the rear of the middle section of the production line, and a solution preparer is located at the upper end of the mixing tank. The solution preparer includes a first float that can move upwards, and a second float on the first float. The solution preparer also includes a rotatable ball valve, and when the second float moves upwards, the ball valve rotates. This device can accurately prepare ink or water-repellent solutions, and it can automatically feed, unload, and collect materials on the production line, reducing labor intensity, improving production efficiency, and lowering production costs.
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Description

Technical Field

[0001] This invention relates to the field of corrugated paper production technology, and in particular to a reaction device for producing corrugated paper using water-based waterproof inkjet ink. Background Technology

[0002] Corrugated cardboard is a multi-layered bonded structure, consisting of at least one layer of corrugated core paper and cardboard. It possesses high mechanical strength, capable of withstanding impacts and drops during handling. The corrugations of the cardboard resemble interconnected arches, arranged side-by-side and supporting each other to form a triangular structure, providing good mechanical strength and the ability to withstand pressure even on a flat surface. It is also elastic, offering excellent cushioning. It can be easily and quickly manufactured into various shapes and sizes of pads or containers compared to plastic cushioning materials. It is less affected by temperature, has good light-blocking properties, does not deteriorate when exposed to light, and is generally resistant to moisture. The effect of humidity is relatively small, but it is not suitable for long-term use in high humidity environments, as this will affect its strength. Since corrugated paper is afraid of water, it usually needs to be treated with inkjet printing or water-repellent coating during production to prevent water immersion and maintain the hardness of the corrugated paper. At present, there are still many defects in the waterproof inkjet printing equipment for corrugated paper production, such as the difficulty in controlling the ratio of ink or water-repellent solution, and the need for manual operation in the process of feeding or unloading and collecting corrugated paper on the production line, which results in low efficiency and increased production costs. To address these issues, a water-based waterproof inkjet printing ink reaction equipment for corrugated paper production is designed. Summary of the Invention

[0003] This invention addresses the shortcomings of existing technologies by providing a water-based waterproof inkjet ink reaction device for producing corrugated paper. This device can accurately prepare ink or water-repellent solutions and automatically feed, unload, and collect materials on the production line. This reduces the labor intensity of workers, improves production efficiency, and lowers production costs. It effectively solves problems such as the difficulty in controlling the ratio of ink or water-repellent solutions and the need for manual operation during the feeding or unloading of corrugated paper on the production line.

[0004] The technical solution adopted by the present invention to solve the above problems is as follows:

[0005] A water-based waterproof inkjet ink reaction device for producing corrugated paper includes a production line with a movable conveyor belt. A feeding device is located on the left side of the production line, including a rotatable transmission block. When the transmission block rotates, the feeding device intermittently feeds corrugated paper onto the conveyor belt. A discharge and collection device is located on the right side of the production line, including a clutch plate that cooperates with the corrugated paper. When the corrugated paper encounters the clutch plate, the discharge and collection device conveys the corrugated paper upwards. A mixing tank is located at the rear of the middle section of the production line, with a solution preparer at its upper end. The solution preparer includes a first float that can move upwards, a second float on the first float, and a rotatable ball valve. When the second float moves upwards, the ball valve rotates.

[0006] This invention features a novel structure, ingenious design, and simple and convenient operation, offering the following advantages compared to existing technologies:

[0007] 1. The solution preparer can accurately adjust the solution ratio in the mixing tank. In traditional solution preparation, a metering pump is usually used, which is often used in conjunction with a hose. Residual liquid often remains in the hose, resulting in inaccurate solution ratio. The solution preparer can replace the traditional metering pump and improve the accuracy of solution ratio.

[0008] 2. By placing the corrugated paper into the feeding device, that is, on the upper surface of the corresponding loading plate, after starting the second motor, the feeding device can intermittently feed the corrugated paper onto the conveyor belt, which facilitates subsequent inkjet printing or water-repellent coating treatment, replacing manual feeding of the transmission, reducing labor and saving labor costs.

[0009] 3. After starting the third motor, the corrugated paper is moved upwards by the unloading and collection device to collect the material from the corrugated paper, and a certain space is provided between each corrugated paper to allow the ink to dry. When the unloading and collection device is full, it will sound an alarm to remind the user to replace it, thus completely replacing manual collection of corrugated paper. Attached Figure Description

[0010] Figure 1 This is an isometric view I of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0011] Figure 2 This is an isometric view II of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0012] Figure 3 This is a cross-sectional view of the mixing tank of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0013] Figure 4This is a schematic diagram of the installation of a long cam in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0014] Figure 5 This is a cross-sectional view of the transmission tripod of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0015] Figure 6 This is a cross-sectional view of the mixing cylinder of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0016] Figure 7 This is a schematic diagram of the installation of the second float in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0017] Figure 8 This is a schematic diagram of the pry bar installation for a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0018] Figure 9 This is a schematic diagram of the inner sliding plate installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0019] Figure 10 This is a cross-sectional view of the fixed sleeve of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0020] Figure 11 This is a schematic diagram of the installation of a trapezoidal wedge in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0021] Figure 12 This is a cross-sectional view of the feed cylinder of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0022] Figure 13 This is a schematic diagram of the connection table installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0023] Figure 14 This is a schematic diagram of the long rod installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0024] Figure 15 This is a schematic diagram of the vertical plate structure of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0025] Figure 16 This is a schematic diagram of the track plate installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0026] Figure 17 This is a cross-sectional view of the loading rack of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0027] Figure 18 This is a schematic diagram of the material support plate installation in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0028] Figure 19 This is a schematic diagram of the clutch plate installation in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0029] Figure 20 This is a schematic diagram of the pusher plate installation in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0030] Figure 21 This is a schematic diagram of the installation of a long sliding pin in a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0031] Figure 22 This is a schematic diagram of the swing arm installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0032] Figure 23 This is a schematic diagram of the track plate structure of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0033] Figure 24 This is a schematic diagram of the connecting cylinder installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0034] Figure 25 This is a schematic diagram of the dial installation of a water-based waterproof inkjet ink reaction device for producing corrugated paper according to the present invention.

[0035] Numbering in the diagram: 1-Conveyor belt, 2-Mixing tank, 3-Tank lid, 4-First motor, 5-Rubber stopper, 6-Transmission triangle, 7-First slider, 8-Mixing shaft, 9-Mixing rod, 10-First connecting rod, 11-Ring sleeve, 12-First sliding pin, 13-Long cam, 14-Ring gear, 15-Spur gear, 16-Sprayer, 17-First float, 18-First float rod, 19-Indicator plate, 20-Extension rod, 21-Pry bar, 22-Second float rod, 23-First limiting plate, 24-Second float, 25-Second sliding pin, 26-Outer cylinder, 27- 28-Inner rod, 29-Third sliding pin, 30-Fixed sleeve, 31-Inner sliding plate, 32-Stop pin, 33-Long sliding plate, 34-First sleeve, 35-Trapezoidal wedge, 36-First spring, 37-Reset wedge, 38-Reset pin, 49-Connecting rod, 40-Swing pin, 41-Second spring, 42-Spring stop, 43-Ball valve, 44-Feeding cylinder, 45-Threaded interface, 46-Dispensing cylinder, 47-Second motor, 48-Transmission block, 49-Connecting platform, 50-Live shaft, 51-Third spring, 52-Right angle seat, 53-Live slider 54-Lever, 55-Square Sleeve, 56-Long Rod, 57-Extension Seat, 58-Drive Pin, 59-Loading Plate, 60-Discharge Port, 61-Triangle Plate, 62-Base, 63-Foot Brake Caster, 64-Upright Plate, 65-Handle, 66-Loading Rack, 67-Long Wedge, 68-Fourth Spring, 69-Support Plate, 70-Loading Plate, 73-Clutch Plate, 74-Push Plate, 75-Fifth Spring, 76-Clamping Pin, 77-Upright Slide Plate, 78-Support Plate, 79-Third Motor, 80-Drive Shaft, 81-Connecting Shaft, 82-Worm Gear, 83-Worm Wheel 84-Swing rod, 85-Long sliding pin, 86-Track plate, 87-Square slider, 88-Sliding plate, 89-Upright rod, 90-Pressure plate, 91-Top slider, 92-Guide pin, 93-Sixth spring, 94-Short connecting rod, 95-Clamping plate, 96-First bevel gear, 97-Second bevel gear, 98-Long rotating shaft, 99-Round contact pad, 100-Long connecting rod, 101-Connecting cylinder, 102-Splined shaft, 103-Dial wheel, 104-Mounting bracket, 105-Second slider, 106-Seventh spring, 107-Dial pin, 108-Billiard ball, 109-Bell. Detailed Implementation

[0036] The following are specific embodiments of the present invention, and the technical solutions of the present invention will be further described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.

[0037] like Figure 1-25As shown, this invention provides a reaction equipment for producing water-based waterproof inkjet ink for corrugated paper, including a production line. A movable conveyor belt 1 is provided on the production line. A feeding device is located on the left side of the production line, including a rotatable transmission block 48. When the transmission block 48 rotates, it can intermittently feed corrugated paper onto the conveyor belt 1. A discharge and collection device is located on the right side of the production line, including a clutch plate 73 that cooperates with the corrugated paper. When the corrugated paper encounters the clutch plate 73, it can convey the corrugated paper upwards. A stirring tank 2 is located at the rear of the middle section of the production line. A solution preparer is located at the upper end of the stirring tank 2. The solution preparer includes a first float 17 that can move upwards, a second float 24 on the first float 17, and a rotatable ball valve 43. When the second float 24 moves upwards, it can rotate the ball valve 43.

[0038] like Figure 1-3 As shown in Figures 6-7, 12-14, and 21, the conveyor belt 1 on the production line can transport corrugated paper from right to left. The conveyor belt 1 is driven by a motor and rollers. This is existing technology and will not be described further. A feeding device intermittently feeds corrugated paper onto the conveyor belt 1 as the transmission block 48 rotates, facilitating subsequent inkjet printing or water-repellent coating. This replaces manual feeding via transmission, reducing labor and saving labor costs. A sprayer 16 is connected to the front end of the mixing tank 2. The sprayer 16 is located at the upper middle of the conveyor belt 1. The sprayer 16 can draw the solution from the mixing tank 2 and apply it to the mixing tank. On the upper surface of the corrugated paper on conveyor belt 1, when the conveyor belt 1 drives the corrugated paper to move to the left and encounters the spraying machine 16, the spraying machine 16 can evenly apply ink or water-repellent agent to the upper surface of the corrugated paper, thereby making the corrugated paper waterproof. The spraying machine 16 is existing technology and will not be described in detail. After the corrugated paper is processed, it continues to move to the left with the conveyor belt 1 and touches the clutch plate 73. Through the unloading and collection device, the corrugated paper can be moved upward, thereby collecting and processing the corrugated paper in a centralized manner, which is convenient for subsequent transfer. Through the set solution preparer, the solution ratio in the mixing tank 2 can be accurately configured.

[0039] A bucket lid 3 is fixedly connected to the inner wall of the upper end of the mixing tank 2. A first float rod 18 is slidably connected to the inner wall of one side of the bucket lid 3. A first float ball 17 is fixedly connected to the lower end of the first float rod 18. An indicator plate 19 is fixedly connected to the upper surface of the first float rod 18. An extension rod 20 is fixedly connected to the upper surface of the indicator plate 19. A pry bar 21 is hinged to the upper end of the extension rod 20. A telescopic rod is hinged to one side of the pry bar 21. The bottom end of the telescopic rod is slidably connected to the bucket lid 3. A feeding cylinder 44 is also provided at the upper end of the bucket lid 3. A detachable dispensing cylinder 46 is provided at the upper end of the feeding cylinder 44. A first limiting plate 23 is fixedly connected to the upper side of the left end surface of the extension rod 20. A second float rod 22 extending to the bottom end of the dispensing cylinder 46 is slidably connected to the inner wall of the first limiting plate 23. The second float ball 24 is fixedly connected to the lower end of the second float rod 22. A second sliding pin 25 is fixedly connected to the inner wall of the upper end of the second float rod 22. A keyway that cooperates with the second sliding pin 25 is opened on the other side of the pry bar 21.

[0040] like Figure 3 , 6 As shown in Figure -9, the first float 18 penetrates the upper surface of the bucket lid 3 and is slidably connected to the inner wall of the bucket lid 3. The bucket lid 3 has a through hole, as shown in Figure -9. Figure 3 As shown, a rubber stopper 5 is provided on the inner wall of the through hole, which facilitates the addition of aqueous solution to the stirring tank 2; the pry bar 21 can be flipped up and down on the inner wall of the extension rod 20, and the telescopic rod and pry bar 21 are installed and shaped as follows. Figure 7 As shown, the telescopic rod includes an inner rod 27 and an outer cylinder 26. The inner rod 27 is slidably connected vertically to the inner wall of the outer cylinder 26, and the outer cylinder 26 is slidably connected horizontally to the upper surface of the lid 3. The top end of the inner rod 27 is hinged to one side of the lower end of the pry bar 21. The installation and shape of the first limiting plate 23, the second float 22, and the second sliding pin 25 are as shown. Figure 8 As shown, the second float 22 can only move up and down due to the limiting position of the first limiting plate 23; a discharge hole is provided at the barrel cover 3 corresponding to the discharge cylinder 44, through which the solution in the mixing cylinder 46 can flow into the stirring tank 2 when the ball valve 43 is opened; a threaded interface 45 is fixedly connected to the upper surface of the discharge cylinder 44, and the mixing cylinder 46 is threadedly connected to the outer surface of the threaded interface 45, so that the mixing cylinder 46 can be disassembled and replaced; the installation and shape of the mixing cylinder 46 are as follows. Figure 6As shown, the mixing cylinder 46 is used to hold ink or water-repellent agent. The mixing cylinder 46 is made of transparent material, making it easy to observe the internal contents at all times. The front end of the outer surface of the mixing cylinder 46 is also provided with a scale that cooperates with the indicator plate 19. When an aqueous solution is added to the mixing tank 2, the first float ball 17 will move upward under the buoyancy of the water. That is, the corresponding first float rod 18, indicator plate 19, extension rod 20, pry bar 21, first limiting plate 23, second float rod 22, and second float ball 24 move upward simultaneously. When the pry bar 21 moves upward, it will pull the corresponding telescopic rod to extend, that is, the corresponding inner rod 27 slides upward. The pry bar 21 can only flip upward under the obstruction of the first limiting plate 23, and cannot flip downward. Therefore, when the pry bar 21 moves upward, it will drive the second sliding pin 25, second float rod 22, and second float ball 24 to move upward simultaneously. When the indicator plate 19 reaches the position of the corresponding scale, the amount of solution inside the mixing tank 2 can be seen intuitively. By adding ink to the mixing cylinder 46... When the solution in the mixing cylinder 46 reaches a certain amount, that is, when the solution in the mixing cylinder 46 reaches the height of the second float 24, the buoyancy will cause the second float 24 to move upward. When the second float 24 moves upward, it will drive the corresponding second float rod 22 and second sliding pin 25 to move upward. When the second sliding pin 25 moves upward, it will cause the pry bar 21 to flip upward through the engagement with the key groove. When the pry bar 21 flips upward, the other end of the pry bar 21 will drive the corresponding telescopic rod to retract and move to the left. When the telescopic rod moves to the left, it can rotate the ball valve 43, thereby opening the valve and allowing the material in the mixing cylinder 46 to fall into the mixing tank 2. When the first float 17 moves upward, the second float 24 moves upward accordingly. According to the amount of solution in the mixing tank 2, the second float 24 rises to the required ink height, that is, the required amount of ink. Through the detachable and washable mixing cylinder 46, the diameter of the mixing cylinder 46 can be changed, thereby adjusting the solution concentration.

[0041] A long sliding plate 32 is slidably connected to the left side of the upper surface of the barrel lid 3. A connecting rod 38 is fixed to the left end surface of the long sliding plate 32. A ball valve 43 is rotatably connected to the inner wall of the feeding cylinder 44. A crank 40 is coaxially fixed to the front end of the ball valve 43. A swing pin 39 is fixed to the inner wall of the other end of the crank 40. A keyway that mates with the swing pin 39 is provided on the upper end of the connecting rod 38. A second spring 41 is fixed to the left end surface of the connecting rod 38. The other end of the second spring 41 is fixed to the barrel lid 3. A first sleeve 33 is fixed to the right side of the rear end surface of the long sliding plate 32. A trapezoidal wedge 34 is slidably connected to the inner wall of the first sleeve 33. A first spring 35 is fixed to the inner wall of the bottom end of the 3, and the other end of the first spring 35 is fixed to the trapezoidal wedge 34; a reset wedge 36 is fixed to the middle of the rear end surface of the long slide plate 32, and a reset pin 37 that cooperates with the reset wedge 36 is provided on the lower end surface of the indicator plate 19; a third sliding pin 28 is fixed to the lower side of the front end surface of the telescopic rod, and a fixed sleeve 29 that is fixed to the barrel cover 3 is provided at the rear end of the long slide plate 32. An inner slide plate 30 is slidably connected to the inner wall of the fixed sleeve 29. An oblique sliding groove that meshes with the third sliding pin 28 is opened on the inner slide plate 30, and a stop pin 31 that cooperates with the trapezoidal wedge 34 is also fixed to the front end surface of the inner slide plate 30.

[0042] like Figure 9-12 As shown, the ball valve 43, feed cylinder 44, crank 40, swing pin 39, and connecting rod 38 are installed and shaped as follows: Figure 12 As shown, ball valve 43 is rotatably connected to the inner wall of discharge cylinder 44. When ball valve 43 rotates 90 degrees, the valve of discharge cylinder 44 will be fully opened, thereby controlling the material to fall into the mixing tank 2. A rotating shaft is coaxially fixed to the inner wall of ball valve 43 and crank 40. The rotating shaft passes through the outer surface of discharge cylinder 44 and is rotatably connected to the inner wall of discharge cylinder 44. A spring stop 42 is fixed to the upper surface of the tank cover 3. The other end of the second spring 41 is fixed to the spring stop 42, which is equivalent to the second spring 41 being fixed to the tank cover 3. The second spring 41 exerts a pulling force on the connecting rod 38 that is always to the left, so that the connecting rod 38 and the long slide plate 32 have a driving force that is always to the left. The third sliding pin 28, fixed sleeve 29, inner slide plate 30, and stop pin 31 are installed and shaped as shown in the figure. Figure 10 As shown, the third sliding pin 28 is fixed to the lower side of the front end surface of the outer cylinder 26 of the telescopic rod, the inner sliding plate 30 is slidably connected to the inner wall of the fixed sleeve 29, and the stop pin 31 is vertically fixed to the inner sliding plate 30 through the support seat; the long sliding plate 32, the first sleeve 33, the first spring 35, the trapezoidal wedge 34, the stop pin 31, the reset wedge 36, and the reset pin 37 are installed and shaped as follows. Figure 11 As shown, the long sliding plate 32 is slidably connected to the upper surface of the bucket lid 3, and the trapezoidal wedge 34 is slidably connected to the inner wall of the first seat 33. The first spring 35 exerts a backward driving force on the trapezoidal wedge 34. Under the engagement of the trapezoidal wedge 34 and the stop pin 31, the long sliding plate 32 is prevented from moving to the left. The reset pin 37 is installed and shaped as shown in the figure. Figure 9 As shown, the reset pin 37 is fixed to the lower end of the indicator plate 19 by a support base. When an aqueous solution is injected into the mixing tank 2, the corresponding first float 17, second float 24, indicator plate 19, and reset pin 37 will move upward synchronously. When the first float 17 and second float 24 rise to a specified height, ink or water-repellent agent is added to the mixing cylinder 46. When the water-repellent agent reaches a specified height, the second float 24 will move upward. The upward movement of the second float 24 will drive the corresponding telescopic rod, i.e., the outer cylinder 26, to move to the left. The leftward movement of the outer cylinder 26 will drive the third sliding pin 28 to move to the left. The leftward movement of the third sliding pin 28, through engagement with the inclined sliding groove, will drive the inner sliding plate 30 to move upward. When the inner slide plate 30 moves upward, it drives the stop pin 31 to move upward. When the stop pin 31 moves upward and disengages from the trapezoidal wedge 34, the long slide plate 32, under the tension of the second spring 41, causes the connecting rod 38 and the long slide plate 32 to move to the left. When the connecting rod 38 moves to the left, it engages with the swing pin 39, causing the swing pin 39 and the crank 40 to rotate to the left. When the crank 40 rotates to the left, it drives the corresponding ball valve 43 to rotate, thereby opening the corresponding feed cylinder 44. At this time, the material in the mixing cylinder 46 will fall into the feed cylinder 44 and the mixing tank 2. When the solution in the mixing tank 2 is exhausted, the first float 17, the second float 24, the inner slide plate 30, and the stop pin 31 will... 1. Under the influence of gravity, the float returns to its initial position. When the first float 17 moves downward, it drives the indicator plate 19 and the reset pin 37 to move downward. When the reset pin 37 moves downward, it engages with the reset wedge 36, causing the reset wedge 36 to move to the right. The rightward movement of the reset wedge 36 causes the long slide plate 32, the trapezoidal wedge 34, and the connecting rod 38 to move to the right simultaneously. When the connecting rod 38 moves to the right, it engages with the swing pin 39, causing the ball valve 43 to rotate, thus closing the corresponding feed cylinder 44. When the trapezoidal wedge 34 moves to the right and engages with the stop pin 31, the inclined surface of the trapezoidal wedge 34 causes it to slide forward into the first seat 3. 3. On the inner wall, when the long slide plate 32 and the trapezoidal wedge 34 move to the top position, the trapezoidal wedge 34 will disengage from the stop pin 31. At this time, the trapezoidal wedge 34 will move backward and extend to reset under the elastic force of the first spring 35. Under the action of the right angle between the trapezoidal wedge 34 and the stop pin 31, the stop pin 31 will once again block the trapezoidal wedge 34 from moving to the left, preventing the ball valve 43 from rotating and the valve from being passively opened. This cycle can be repeated for repeated use. In traditional solution preparation, a metering pump is usually used. The metering pump is usually used in conjunction with a hose. There is often residual liquid in the hose, which leads to inaccurate solution ratio. By setting a solution preparer, the traditional metering pump can be replaced, improving the accuracy of solution ratio.

[0043] The mixing tank 2 is also equipped with a stirring device, which includes a first motor 4 fixedly connected to the tank cover 3. A transmission triangle 6 is fixedly connected to the output end of the first motor 4. Three evenly distributed first sliders 7 are slidably connected to the inner wall of the transmission triangle 6. A stirring shaft 8 is rotatably connected to the inner wall of the first slider 7. Multiple stirring rods 9 are fixedly connected to the lower end of the outer surface of the stirring shaft 8. A spur gear 15 is fixedly connected to the upper end of the outer surface of the stirring shaft 8. A spur rack 14 that meshes with the corresponding spur gear 15 is fixedly connected to the upper end surface of the transmission triangle 6. A first connecting rod 10 that tilts downwards is hinged to the inner end face of the first slider 7. A ring sleeve 11 is hinged to the other end of the three first connecting rods 10. A long cam 13 is fixedly connected to the center of the inner wall of the bottom end of the mixing tank 2. The ring sleeve 11 is sleeved on the outer surface of the long cam 13. A first sliding pin 12 that meshes with the long cam 13 is fixedly connected to the inner wall of the ring sleeve 11.

[0044] like Figure 3-5 As shown, the function of the first motor 4 is to provide rotational power for the stirring device. The first motor 4 is existing technology and will not be described in detail further; the installation and shape of the transmission triangle 6 are as follows. Figure 4-5 As shown, the first slider 7 can slide inward and outward along the inner wall of the transmission triangle 6; the stirring shaft 8 and stirring rod 9 can uniformly stir the liquid inside the stirring tank 2 when rotating; the first connecting rod 10, the annular sleeve 11, the first sliding pin 12, and the long cam 13 are installed and shaped as follows. Figure 4-5 As shown, the ring sleeve 11 is fitted onto the outer surface of the long cam 13, and the limiting ring sleeve 11 can both rotate and move up and down; the installation and shape of the spur gear 15 and the spur rack 14 are as follows. Figure 5As shown, when the first slider 7 moves, the meshing of the spur gear 15 and the rack 14 drives the spur gear 15, stirring shaft 8, and stirring rod 9 to rotate synchronously. When it is necessary to uniformly mix the materials in the mixing tank 2, starting the first motor 4 will cause the transmission triangle 6 to rotate. The rotation of the transmission triangle 6 will drive the corresponding first slider 7, stirring shaft 8, stirring rod 9, first connecting rod 10, and ring sleeve 11 to rotate synchronously. At the same time, the rotation of the ring sleeve 11 will drive the corresponding first sliding pin 12 to rotate. The rotation of the first sliding pin 12, through meshing with the long cam 13, will cause the first sliding pin 12 and the ring sleeve 11 to move up and down while rotating. When the ring sleeve 11 moves up and down, it will drive the corresponding first connecting rod 10 to rotate. One end of the rod 10 moves up and down reciprocally, while the other end of the first connecting rod 10 drives the corresponding first slider 7 to move inward or outward synchronously. When the first slider 7 moves inward or outward synchronously, it drives the spur gear 15, stirring shaft 8, and stirring rod 9 to move inward or outward synchronously. When the spur gear 15 moves inward or outward, it meshes with the spur rack 14, causing the spur gear 15, stirring shaft 8, and stirring rod 9 to rotate synchronously. Therefore, when the first motor 4 is started to rotate the transmission triangle 6, the corresponding stirring shaft 8 and stirring rod 9 will rotate in a circle and rotate on their own axis while moving inward or outward synchronously. This can mix and stir the materials in the mixing tank 2 over a large area evenly, so that the materials are fully mixed and the mixing efficiency is improved.

[0045] The feeding device also includes a connecting platform 49 that cooperates with the production line. A long rod 56 is fixedly connected to the lower side of the right end surface of the connecting platform 49. A square sleeve 55 is slidably connected to the outer surface of the long rod 56. A movable rod 54 is fixedly connected to the lower end surface of the square sleeve 55. A movable slider 53 is slidably connected to the outer surface of the movable rod 54. A movable shaft 50 is slidably connected to the inner wall of the transmission block 48. A right-angle seat 52 is fixedly connected to the top end of the movable shaft 50. The other end of the right-angle seat 52 is hinged to the movable slider 53. A third spring 51 that cooperates with the right-angle seat 52 is sleeved on the outer surface of the movable shaft 50. An extension seat 57 is provided at the upper end of the movable slider 53. A drive pin 58 is fixedly connected to the upper end surface of the extension seat 57.

[0046] like Figure 13-14As shown, a second motor 47 is also provided on the right side of the production line. The second motor 47 is fixed to the ground, and the transmission block 48 is fixed to the output end of the second motor 47. The function of the second motor 47 is to provide rotational power to the transmission block 48. When the second motor 47 starts, it can make the transmission block 48 rotate circumferentially. The square sleeve 55 is slidably connected to the outer surface of the long rod 56. Limiting plates are fixed to the left and right ends of the outer surface of the long rod 56, respectively. By limiting the square sleeve 55 through the two limiting plates, the square sleeve 55 can only slide left and right inside the two limiting plates; the movable rod 5 4. An anti-detachment cap is also fixed to the lower surface, which can prevent the movable slider 53 from separating from the movable rod 54; the movable slider 53 is slidably connected to the outer surface of the movable rod 54, the movable shaft 50 is slidably connected to the inner wall of the transmission block 48, one end of the third spring 51 is fixed to the right angle seat 52, and the other end of the third spring 51 is fixed to the transmission block 48. The third spring 51 can drive the right angle seat 52 with a driving force that always moves outward; when the second motor 47 is started and the transmission block 48 is rotated, it can drive the movable shaft 50 and the third spring 51. The right-angle seat 52 rotates synchronously. When the movable shaft 50 and the right-angle seat 52 rotate, under the elastic force of the third spring 51, they can drive the corresponding movable slider 53, movable rod 54, square sleeve 55, extension seat 57, and drive pin 58 to slide synchronously to the right. The corresponding movable shaft 50 will slide on the inner wall of the transmission block 48 under the elastic force of the third spring 51. When the square sleeve 55, movable slider 53, and movable rod 54 are driven to the top position to the right, the corresponding movable shaft 50 continues to rotate and will slide on the inner wall of the transmission block 48 under the extension and retraction of the third spring 51. The inner wall slides, and at the same time, the corresponding movable slider 53, movable rod 54, extension seat 57, and drive pin 58 move upward. When the movable slider 53, movable rod 54, extension seat 57, and drive pin 58 move upward to the top, under the drive of the movable shaft 50, the square sleeve 55, movable slider 53, extension seat 57, and drive pin 58 will move to the left. When they move to the top of the left, under the drive of the movable shaft 50, the extension seat 57 and drive pin 58 will move downward. Therefore, when the movable shaft 50 rotates in a circle, the drive pin 58 can move back and forth along a rectangular trajectory.

[0047] A loading plate 59 is fixedly attached to the upper side of the right end surface of the connecting platform 49. The loading plate 59 has a driving groove that cooperates with the driving pin 58. Triangular plates 61 are fixedly attached to the four corners of the upper end surface of the loading plate 59. The four triangular plates 61 form a loading space. A discharge port 60 is opened on the lower left side of the loading space.

[0048] like Figure 13 As shown, when the drive pin 58 moves from right to left at the top, it can move from left to right along the inner wall of the drive groove. The installation and shape of the four triangular plates 61 are as follows. Figure 13As shown, by placing the corrugated paper in the loading space enclosed by the triangular plate 61, when the drive pin 58 moves from right to left, it can drive the corrugated paper at the bottom end to move out of the feed port 60, so that the corrugated paper is pushed onto the conveyor belt 1, thereby enabling the corrugated paper to be pushed from the feed device onto the conveyor belt 1 intermittently.

[0049] The unloading and collecting device also includes a vertical plate 64, a push plate 74 slidably connected to the inner wall of the middle part of the vertical plate 64, a fifth spring 75 that cooperates with the clutch plate 73 is sleeved on the right end of the outer surface of the push plate 74, a support plate 78 is fixedly connected to the middle of the lower side of the left end surface of the vertical plate 64, a third motor 79 is fixedly connected to the right side of the upper end surface of the support plate 78, a transmission shaft 80 is fixedly connected to the output end of the third motor 79, a connecting shaft 81 is slidably connected to the inner wall of the left end of the transmission shaft 80, a vertical slide plate 77 that is fixedly connected to the push plate 74 is slidably connected to the middle of the upper end surface of the support plate 78, and the connecting shaft 81 is rotatably connected to the inner wall of the vertical slide plate 77; a worm gear 82 that cooperates with the connecting shaft 81 is rotatably connected to the left side of the upper end of the support plate 78, a worm wheel 83 is meshed at the lower end of the worm gear 82, and a swing rod 84 is coaxially fixed to the front and rear ends of the worm wheel 83 respectively.

[0050] like Figure 15-16 As shown in Figures 20-22, bases 62 are fixedly connected to the front and rear sides of the lower surface of the upright plate 64, and foot brake wheels 63 are fixedly connected to the left and right ends of the lower surface of the bases 62. The foot brake wheels 63 allow the unloading and collecting device to stop and lock after reaching a designated position, preventing the upright plate 64 from moving further. Handles 65 are fixedly connected to the front and rear ends of the upper side of the left end surface of the upright plate 64, facilitating device movement by driving the handles 65. When the unloading and collecting device is full, driving the handles 65 allows the device to move to the next workstation. Figure 20-22As shown, the push plate 74 is slidably connected to the inner wall of the vertical plate 64; one end of the fifth spring 75 is fixed to the vertical plate 64, and the other end is fixed to the clutch plate 73. Through the elastic force of the fifth spring 75, the clutch plate 73 can be driven to the right; the vertical slide plate 77 is slidably connected to the upper surface of the support plate 78; the function of the third motor 79 is to provide power for the unloading and collecting device; the left and right ends of the outer surface of the worm gear 82 are respectively rotatably connected to bearing seats, and the bottom ends of the bearing seats are respectively fixed to the upper surface of the support plate 78. On the surface, the worm 82 can only rotate; the connecting shaft 81 is slidably connected to the inner wall of the transmission shaft 80, and the connecting shaft 81 and the transmission shaft 80 are splined, so that the connecting shaft 81 can slide left and right on the inner wall of the transmission shaft 80, and when the transmission shaft 80 rotates, it can drive the connecting shaft 81 to rotate synchronously; the inner wall of the worm 82 has a spline groove that mates with the connecting shaft 81, and when the connecting shaft 81 moves to the left, it enters the inner wall of the spline groove, and when the connecting shaft 81 rotates, it can drive the worm 82 to rotate; the worm wheel 83 and two pendulums... A rotating shaft is fixed to the inner wall of rod 84. Bearing seats are rotatably connected to the front and rear ends of the outer surface of the rotating shaft. The bottom ends of the bearing seats are fixed to the upper surface of the support plate 78. The limiting worm gear 83 and the swing rod 84 rotate synchronously. The worm gear 83 and worm 82 have a one-way self-locking function when meshed. In use, starting the third motor 79 will cause the transmission shaft 80 and connecting shaft 81 to rotate synchronously. When the corrugated paper moves to the left and contacts the clutch plate 73, the friction between the corrugated paper and the conveyor belt 1 will cause the clutch plate 73 to move to the left. When the clutch plate 73 moves to the left, it will compress the fifth spring 75 and drive the push plate 74 to move to the left. The push plate 74 moving to the left will drive the vertical slide plate 77 and the connecting shaft 81 to move to the left. The connecting shaft 81 moving to the left will enter the inner wall of the spline groove. When the connecting shaft 81 enters the inner wall of the spline groove, it will drive the worm 82 to rotate. The rotation of the worm 82, through meshing with the worm wheel 83, will cause the worm wheel 83 and the swing arm 84 to rotate slowly. When the swing arm 84 rotates, it will cause the unloading collection device to convey the corrugated paper upward.

[0051] The left end surface of the upright plate 64 is fixedly connected to the front and rear ends of the lower side of the left side, and the inner wall of the swing rod 84 is provided with long key-shaped grooves, and long sliding pins 85 are slidably connected to the inner wall of the long key-shaped grooves. The inner end face of the track plate 86 is provided with rectangular track grooves that mesh with the long sliding pins 85. The outer surface of the long sliding pins 85 is rotatably connected to the sliding plate 88. The upper end surface of the track plate 86 is slidably connected to the square sliders 87, and the sliding plates 88 are slidably connected to the corresponding square sliders 87. The upper end surface of the sliding plate 88 is fixedly connected to the upright rod 89. The lower right end surface of the upright rod 89 is fixedly connected to the feeding plate 70 that cooperates with the production line. The left and right sides of the right end surface of the upright plate 64 are fixedly connected to multiple symmetrical loading racks 66. The inner wall of the loading rack 66 is slidably connected to the long wedges 67. The bottom inner wall of the 66 is provided with a fourth spring 68 that cooperates with the long wedge 67; the upper side of the right end surface of the upright 89 is provided with a plurality of material support plates 69 that cooperate with the loading rack 66; a locking pin 76 is fixedly connected to the middle of the lower end surface of the push plate 74; guide pins 92 are fixedly connected to the front and rear sides of the left end surface of the upright 64; top sliders 91 are slidably connected to the outer surface of the guide pins 92; a sixth spring 93 that cooperates with the top slider 91 is also sleeved on the outer surface of the guide pins 92; a short connecting rod 94 is hinged to the lower end surface of the top slider 91; a locking plate 95 that cooperates with the locking pin 76 is also slidably connected to the left end surface of the upright 64; the other end of the short connecting rod 94 is hinged to the corresponding locking plate 95; and a pressure plate 90 that cooperates with the corresponding top slider 91 is fixedly connected to the lower side of the inner end face of the upright 89.

[0052] like Figure 15-23 As shown, the track plate 86, swing rod 84, long sliding pin 85, movable slide plate 88, upright 89, and square slider 87 are installed and shaped as follows: Figure 22-23 As shown, circular pads are fixed to the outer surface of the long sliding pin 85, and the circular pads are slidably connected to the inner wall of the corresponding rectangular track groove. The square slider 87 is slidably connected to the upper surface of the track plate 86 from left to right, and the movable slide plate 88 is slidably connected to the inner end face of the square slide plate from top to bottom. By limiting the square slider 87, the movable slide plate 88 and the upright 89 can always maintain vertical up, down, left and right movement. When the swing arm 84 rotates, it will drive the corresponding long sliding pin 85 to reciprocate along the inner wall of the corresponding rectangular track groove in a rectangular trajectory. When the long sliding pin 85 reciprocates along the rectangular trajectory, it will drive the corresponding movable slide plate 88 and the upright 89 to reciprocate along the rectangular trajectory. The loading rack 66, long wedge 67, fourth spring 68, material support plate 69, feeding plate 70, clamping pin, and elastic sheet are installed and shaped as follows. Figure 15-18As shown, a rectangular groove is provided on the upright plate 64, which allows the material support plate 69 and the feeding plate 70 to move up and down or left and right. The loading rack 66 is arranged with a certain spacing, that is, the corresponding material support plate 69 and the loading rack 66 are set with an equal distance, so that when the corrugated paper is arranged at equal intervals on the loading rack 66, there are gaps between each corrugated paper to facilitate the drying of waterproof ink; the installation and shape of the long wedge 67, the fourth spring 68, and the loading rack 66 are as follows. Figure 17 As shown, the long wedge 67 can slide back and forth on the inner wall of the loading rack 66. Through the elastic force of the fourth spring 68, the long wedge 67 has an inward driving force. The long wedge 67 allows the corrugated paper to move upwards and pass through it, placing it on the long wedge 67. This allows the corrugated paper to move unidirectionally upwards through the long wedge 67. When the corrugated paper moves downwards, the long wedge 67 will block it. The initial position of the feeding plate 70 is on both sides of the conveyor belt 1, flush with the height of the conveyor belt 1. When the corrugated paper moves completely to the feeding plate 70 on the conveyor belt 1, it will squeeze the clutch plate 73. The clutch plate 73 has a certain height, and it will continue to squeeze the clutch plate 73 as the corrugated paper moves upward with the feeding plate 70. The top slider 91, guide pin 92, sixth spring 93, short connecting rod 94, clamping plate 95, clamping pin 76, and pressure plate 90 are installed and shaped as follows. Figure 20-21 As shown, the sixth spring 93 has a constant leftward thrust, which pushes the top slider 91 to move to the left. One end of the sixth spring 93 is fixed to the vertical plate 64, and the other end is fixed to the top slider 91. The top slider 91 can slide left and right on the outer surface of the guide pin 92. The clamping plate 95 can slide up and down on the vertical plate 64. The pressure plate 90 and the top slider 91 are installed and shaped as follows: Figure 20As shown, when the pressure plate 90 moves to the right, it will press the top slider 91 to move to the right; when the corrugated paper moves to the left and is fully inserted into the feeding plate 70, the corrugated paper will press the clutch plate 73 to move backward, thereby causing the corresponding connecting shaft 81 to mesh with the worm gear 82, that is, the corresponding swing arm 84 to rotate. When the swing arm 84 rotates, it will drive the corresponding long sliding pin 85, upright rod 89, pressure plate 90, feeding plate 70, and support plate 69 to move upward synchronously. When the feeding plate 70 moves upward, it will drive the corrugated paper to move upward. After the corrugated paper moves upward and loses contact with the conveyor belt 1, because the corrugated paper still has a certain friction force in contact with the feeding plate 70, it will continue to press the clutch plate 73 until the corrugated paper and pressure plate 90 move upward and press the pressure plate 90 disengages from the contact top slider 91. Under the self-elastic force of the sixth spring 93, the top slider 91 moves to the left. The leftward movement of the top slider 91 pulls the short connecting rod 94, causing the clamping plate 95 to move upward. The upward movement of the clamping plate 95 will prevent the locking pin 76 from moving to the right and resetting. At this time, the connecting shaft 81 will re-engage with the worm gear 82 for stable transmission. As the feeding plate 70 continues to move upward with the upright 89, the feeding plate 70 will drive the corrugated paper upward to encounter the long wedge 67. That is, the corrugated paper will meet the inclined surface of the long wedge 67. As the corrugated paper continues to move upward, it will move to the upper position of the long wedge 67 under the action of the inclined surface. At this time, the corresponding upright 89 moves upward to the top position. When the upright 89, feeding plate 70, and material support are in motion, the corrugated paper will move upward to the upper position of the long wedge 67. After the board 69 and corrugated paper move upwards to the top position, the engagement of the rectangular track groove and the long sliding pin 85 will cause the upright 89, the feeding plate 70, and the supporting plate 69 to move to the left. When the feeding plate 70 moves to the left, the corrugated paper cannot move to the left due to the obstruction of the upright plate 64. Therefore, the corrugated paper will stay at the upper position of the corresponding long wedge 67. After the upright 89 and the feeding plate 70 move to the top position to the left, that is, the feeding plate 70 moves to the left and moves out of the rectangular groove of the upright plate 64, so that the feeding plate 70 and the corrugated paper are completely separated. At this time, the corrugated paper will stay on the upper surface of the two long wedges 67 under the action of gravity. After the upright 89 and the feeding plate 70 move to the top position to the left, they will move downwards again, that is, downwards to the initial height. The corresponding feed plate 70 is moved downwards to a position level with the height of the conveyor belt 1. At this time, the upright 89 and feed plate 70 will move to the right. When the upright 89, feed plate 70, and pressure plate 90 move to the top position to the right, that is, the initial position of feed plate 70, the corresponding pressure plate 90 will press the top slider 91 to move to the right again. When the top slider 91 moves to the right, it will drive the corresponding short connecting rod 94 and clamping plate 95 to move downwards. When the clamping plate 95 moves downwards, it will no longer block the locking pin 76. At this time, the locking pin 76, push plate 74, and clutch plate 73 can be reset to their initial positions under the elastic force of the fifth spring 75. That is, at this time, the corresponding connecting shaft 81 will disengage from the worm gear 82, and the worm gear 82 will no longer rotate, that is, the corresponding upright 89 will no longer move.Furthermore, the unidirectional self-locking function of the worm gear 83 and worm 82 ensures that each component remains stably in its initial position, thus completing the upward output of the corrugated paper. As the support plate 69 moves upward following the upright rod 89, it sequentially conveys the corrugated paper on each corresponding long wedge 67 upwards. The principle is the same as the output of corrugated paper by the feed plate 70, and will not be elaborated further. Therefore, the feed plate 70 and support plate 69 sequentially convey the corrugated paper upwards on the conveyor belt 1. The upward arrangement of the corrugated paper with a certain gap allows for the drying of ink on the paper. When the next piece of corrugated paper on the conveyor belt 1 continues to move to the left and contacts the clutch plate 73, the feed plate 70 continues to convey the paper upwards, thus allowing for cyclical operation.

[0053] The unloading and collecting device also includes an alarm mechanism, which includes a circular contact pad 99 that mates with the corrugated paper. A long connecting rod 100 is slidably connected to the inner wall of the upper end of the upright plate 64. The circular contact pad 99 is fixed to one end of the long connecting rod 100. The other end of the long connecting rod is rotatably connected to a connecting cylinder 101. A splined shaft 102 is provided at the top of the connecting cylinder 101. A mounting bracket 104 is provided on the upper left side of the upright plate 64. A dial wheel 103 is rotatably connected to the mounting bracket 104. A splined hole that mates with the splined shaft 102 is opened on the inner wall of the lower end of the dial wheel 103. A second slider 105 is slidably connected to the inner wall of the mounting bracket 104. A pin 107 that mates with a dial wheel 103 is fixedly attached to the left end surface of block 105. A bell 109 is also fixedly attached to the mounting bracket 104. A ball 108 that mates with a bell 109 is fixedly attached to the right end surface of the second slider 105. A seventh spring 106 that mates with the second slider 105 is also fixedly attached to the inner wall of the mounting bracket 104. A first bevel gear 96 is fixedly attached to the outer surface of the transmission shaft 80. A second bevel gear 97 meshes with the upper end of the first bevel gear 96. A long rotating shaft 98 that is rotatably connected to the vertical plate 64 is fixedly attached to the inner wall of the second bevel gear 97. A connecting cylinder 101 is slidably connected to the upper end of the outer surface of the long rotating shaft 98.

[0054] like Figure 15-16 As shown in Figures 21 and 24-25, the alarm mechanism enables the unloading collection device to sound an alarm when it is full of corrugated paper, reminding the user to perform centralized unloading or replace the unloading collection device. The long connecting rod 100 is slidably connected to the inner wall of the vertical plate 64. The first bevel gear 96, the second bevel gear 97, and the long rotating shaft 98 are installed and shaped as follows: Figure 16 As shown in Figure 21, a bearing seat is rotatably connected to the outer surface of the long rotating shaft 98. The bottom end of the bearing seat is fixed to the vertical plate 64, limiting the long rotating shaft 98 to rotate only on the left end surface of the vertical plate 64. When the third motor 79 starts, through the meshing and coaxial transmission of the first bevel gear 96, the second bevel gear 97, and the long rotating shaft 98, the force can be transmitted to the connecting cylinder 101, even if the connecting cylinder 101 rotates; the long rotating shaft 98 and the connecting cylinder 101 are installed and shaped as follows: Figure 24As shown, the connecting cylinder 101 and the long rotating shaft 98 are connected by a spline. The connecting cylinder 101 can slide up and down on the upper surface of the outer surface of the long rotating shaft 98, and when the long rotating shaft 98 rotates, it can also drive the connecting cylinder 101 to rotate. A support plate is fixed to the upper surface of the left end of the vertical plate 64, and the mounting bracket 104 is fixed to the support plate. The mounting bracket 104, the second slider 105, the dial wheel 103, the dial pin 107, the striking bell 109, the striking ball 108, and the seventh spring 106 are installed and shaped as shown. Figure 25 As shown, one end of the seventh spring 106 is fixed to the second slider 105, and the other end is fixed to the inner wall of the top of the mounting bracket 104. Through the elastic force of the seventh spring 106, the second slider 105 can be driven to have a downward driving force. When the uppermost loading rack 66 is loaded with corrugated paper, that is, when the material support plate 69 drags the corrugated paper upward to be loaded onto the uppermost loading rack 66, the unloading and collecting device is fully loaded. The corrugated paper will drive the round contact pad 99 to move upward under the upward push of the material support plate 69. When 9 moves upward, the long connecting rod 100 and the connecting cylinder 101 will move upward synchronously. When the connecting cylinder 101 and the splined shaft 102 move upward and engage with the inner wall of the splined hole of the dial wheel 103, the long rotating shaft 98 will rotate, which will drive the corresponding connecting cylinder 101, splined shaft 102, and dial wheel 103 to rotate synchronously. When the dial wheel 103 rotates, it will engage with the pin 107, causing the pin 107, the second slider 105, and the striking bell 109 to move upward synchronously, and compress the seventh spring 106. When the dial wheel 10... When the engagement pin 107 moves upward to the top position, it will disengage from the engagement pin 107. At this time, the second slider 105 will move downward under the elastic force of the seventh spring 106. The downward movement of the second slider 105 will drive the pin 107 and the ball 108 downward. When the ball 108 moves to the bottom, it will strike the bell 109, causing the bell 109 to sound, thus reminding the user that the unloading collection device is full. Turning off the third motor 79 during transfer will activate the unloading collection device and alarm. The mechanism ceases to function; when the second slide pin 107 moves to the bottom, it will engage with the dial 103 again, causing the billiard ball 108 to repeatedly strike the bell 109 and emit an alarm sound. When the corrugated paper at the top is unloaded, that is, when the corrugated paper no longer acts on the round contact pad 99, the round contact pad 99, the long connecting rod 100, and the connecting cylinder 101 will move downwards and reset under their own gravity. Even if the spline shaft 102 disengages from the spline hole, the alarm mechanism is no longer in operation and is reset to its initial position.

[0055] In use, this invention allows for precise configuration of the solution ratio within the mixing tank 2 via a solution preparer. Traditional solution preparation typically uses a metering pump, which is usually paired with a flexible tube. Residual liquid often remains in the tube, leading to inaccurate solution ratios. The solution preparer replaces the traditional metering pump, improving the accuracy of the solution ratio. Corrugated paper is placed in the feeding device, corresponding to the upper surface of the loading plate 59. After starting the second motor 47, the feeding device intermittently feeds corrugated paper onto the conveyor belt 1, facilitating subsequent inkjet printing or water-repellent coating. This replaces manual feeding via a transmission system, reducing labor and saving labor costs. After starting the third motor 79, the unloading and collection device moves the corrugated paper upwards for material collection, ensuring sufficient space between each piece for ink drying. When the unloading and collection device is full, an alarm sounds, alerting the user to replace the corrugated paper, completely replacing manual collection.

[0056] The specific embodiments described herein are merely illustrative of the spirit of the invention. Those skilled in the art to which this invention pertains may make various modifications or additions to the described specific embodiments or use similar methods to replace them, without departing from the spirit of the invention or exceeding the scope defined by the appended claims.

Claims

1. A water-based waterproof inkjet ink production reaction apparatus for corrugated paper production line, characterized by: The production line is equipped with a movable conveyor belt (1), and a feeding device is provided on the left side of the production line. The feeding device includes a rotatable transmission block (48). When the transmission block (48) rotates, it can form a structure in which the feeding device intermittently feeds corrugated paper onto the conveyor belt (1). The production line is equipped with a discharge collection device on the right side. The discharge collection device also includes a clutch plate (73) that cooperates with the corrugated paper. When the corrugated paper meets the clutch plate (73), it can form a structure in which the discharge collection device conveys the corrugated paper upward. The production line is equipped with a mixing tank (2) on the rear side of the middle section. The mixing tank (2) is equipped with a solution preparation device at the upper end. The solution preparation device includes a first float ball (17) that can move upward. A second float ball (24) is provided on the first float ball (17). The solution preparation device also includes a rotatable ball valve (43). When the second float ball (24) moves upward, it can form a structure in which the ball valve (43) rotates. A bucket lid (3) is fixedly connected to the inner wall of the upper end of the mixing tank (2). A first float rod (18) is slidably connected to the inner wall of one side of the bucket lid (3). The first float ball (17) is fixedly connected to the lower end of the first float rod (18). An indicator plate (19) is fixedly connected to the upper surface of the first float rod (18). An extension rod (20) is fixedly connected to the upper surface of the indicator plate (19). A pry bar (21) is hinged to the upper end of the extension rod (20). A telescopic rod is hinged to one side of the pry bar (21). The bottom end of the telescopic rod is slidably connected to the bucket lid (3). The upper end of the bucket lid (3) is also provided with There is a feeding cylinder (44), and a detachable dispensing cylinder (46) is provided at the upper end of the feeding cylinder (44). A first limiting plate (23) is fixedly connected to the upper side of the left end surface of the extension rod (20). A second float (22) extending to the bottom end of the dispensing cylinder (46) is slidably connected to the inner wall of the first limiting plate (23). The second float (24) is fixedly connected to the lower end of the second float (22). A second sliding pin (25) is fixedly connected to the inner wall of the upper end of the second float (22). A keyway that cooperates with the second sliding pin (25) is opened on the other side of the pry bar (21). A long sliding plate (32) is slidably connected to the left side of the upper surface of the barrel lid (3). A connecting rod (38) is fixed to the left end surface of the long sliding plate (32). A ball valve (43) is rotatably connected to the inner wall of the feeding cylinder (44). A crank (40) is coaxially fixed to the front end of the ball valve (43). A swing pin (39) is fixed to the inner wall of the other end of the crank (40). A keyway that cooperates with the swing pin (39) is opened at the upper end of the connecting rod (38). A second spring (41) is fixed to the left end surface of the connecting rod (38). The other end of the second spring (41) is fixed to the barrel lid (3). A first sleeve (33) is fixed to the right side of the rear end surface of the long sliding plate (32). A trapezoidal wedge (34) is slidably connected to the inner wall of the first sleeve (33). 33) A first spring (35) is fixed to the inner wall of the bottom end, and the other end of the first spring (35) is fixed to the trapezoidal wedge (34); a reset wedge (36) is fixed to the middle of the rear end surface of the long slide plate (32), and a reset pin (37) that cooperates with the reset wedge (36) is provided on the lower end surface of the indicator plate (19); a third sliding pin (28) is fixed to the lower side of the front end surface of the telescopic rod, and a fixed sleeve (29) that is fixed to the bucket lid (3) is provided at the rear end of the long slide plate (32). An inner slide plate (30) is slidably connected to the inner wall of the fixed sleeve (29), and an oblique sliding groove that meshes with the third sliding pin (28) is opened on the inner slide plate (30). A stop pin (31) that cooperates with the trapezoidal wedge (34) is also fixed to the front end surface of the inner slide plate (30).

2. The water-based waterproof inkjet ink production reaction apparatus for corrugated paper according to claim 1, characterized by: The mixing tank (2) is also equipped with a stirring device, which includes a first motor (4) fixedly connected to the tank lid (3). A transmission triangle (6) is fixedly connected to the output end of the first motor (4). Three evenly distributed first sliders (7) are slidably connected to the inner wall of the transmission triangle (6). A stirring shaft (8) is rotatably connected to the inner wall of each of the first sliders (7). Multiple stirring rods (9) are fixedly connected to the lower end of the outer surface of the stirring shaft (8). A spur gear (15) is fixedly connected to the upper end of the outer surface of the stirring shaft (8). The transmission triangle (6) is... A spur rack (14) that meshes with the corresponding spur gear (15) is fixedly connected to the end surface of each of the three first sliders (7); a first connecting rod (10) that is inclined to the inner side of the lower end is hinged to the inner side of each of the three first connecting rods (10); a ring sleeve (11) is hinged to the other end of each of the three first connecting rods (10); a long cam (13) is fixedly connected to the center of the inner wall of the bottom end of the mixing tank (2); the ring sleeve (11) is sleeved on the outer surface of the long cam (13); a first sliding pin (12) that meshes with the long cam (13) is fixedly connected to the inner wall of the ring sleeve (11).

3. The water-based waterproof inkjet ink production reaction apparatus for corrugated paper according to claim 1, characterized by: The feeding device also includes a connecting table (49) that cooperates with the production line. A long rod (56) is fixedly connected to the lower side of the right end surface of the connecting table (49). A square sleeve (55) is slidably connected to the outer surface of the long rod (56). A movable rod (54) is fixedly connected to the lower end surface of the square sleeve (55). A movable slider (53) is slidably connected to the outer surface of the movable rod (54). A movable shaft (50) is slidably connected to the inner wall of the transmission block (48). A right-angle seat (52) is fixedly connected to the top end of the movable shaft (50). The other end of the right-angle seat (52) is hinged to the movable slider (53). A third spring (51) that cooperates with the right-angle seat (52) is sleeved on the outer surface of the movable shaft (50). An extension seat (57) is provided at the upper end of the movable slider (53). A drive pin (58) is fixedly connected to the upper end surface of the extension seat (57).

4. The water-based waterproof inkjet ink production reaction apparatus for corrugated paper according to claim 3, characterized by: A loading plate (59) is fixedly attached to the upper side of the right end surface of the connecting platform (49). A driving groove that cooperates with the driving pin (58) is opened on the loading plate (59). Triangular plates (61) are fixedly attached to the four corners of the upper end surface of the loading plate (59). The four triangular plates (61) form a loading space. A discharge port (60) is opened on the lower left side of the loading space.

5. The water-based waterproof inkjet ink production reaction apparatus for corrugated paper according to claim 1, characterized by: The unloading and collecting device also includes a vertical plate (64), a push plate (74) is slidably connected to the inner wall of the middle part of the vertical plate (64), a fifth spring (75) that cooperates with the clutch plate (73) is sleeved on the right end of the outer surface of the push plate (74), a support plate (78) is fixedly connected to the middle of the lower side of the left end surface of the vertical plate (64), a third motor (79) is fixedly connected to the right side of the upper end surface of the support plate (78), and a drive shaft (80) is fixedly connected to the output end of the third motor (79). A connecting shaft (81) is slidably connected to the inner wall of the left end of the support plate (78), and a vertical slide plate (77) fixed to the push plate (74) is slidably connected to the middle of the upper surface of the support plate (78). The connecting shaft (81) is rotatably connected to the inner wall of the vertical slide plate (77). A worm (82) that cooperates with the connecting shaft (81) is rotatably connected to the left side of the upper end of the support plate (78). A worm wheel (83) is meshed at the lower end of the worm (82), and a swing rod (84) is coaxially fixed to the front and rear ends of the worm wheel (83).

6. The water-based waterproof inkjet ink production reaction apparatus for corrugated paper according to claim 5, characterized by: The left end surface of the upright plate (64) is fixedly connected to the front and rear ends of the lower side of the left end surface, and the inner wall of the swing rod (84) is provided with a long keyway, and the inner wall of the long keyway is slidably connected to a long sliding pin (85). The inner end face of the track plate (86) is provided with a rectangular track groove that meshes with the long sliding pin (85). The outer surface of the long sliding pin (85) is rotatably connected to a sliding plate (88). The upper end surface of the track plate (86) is slidably connected to a square slider (87), and the sliding plate (88) is slidably connected to the corresponding square slider (87). The upper end surface of the sliding plate (88) is fixedly connected to an upright rod (89), and the lower side of the right end surface of the upright rod (89) is fixedly connected to a feeding plate (70) that cooperates with the production line. The left and right sides of the right end surface of the upright plate (64) are fixedly connected to multiple symmetrical loading racks (66), and the inner wall of the loading rack (66) is slidably connected to a long wedge (67). The bottom of the loading rack (66) The inner wall of each end is provided with a fourth spring (68) that cooperates with the long wedge (67); the upper side of the right end surface of the upright (89) is provided with multiple material support plates (69) that cooperate with the loading rack (66); a locking pin (76) is fixedly connected to the middle of the lower end surface of the push plate (74); guide pins (92) are fixedly connected to the front and rear sides of the left end surface of the upright (64); a top slider (91) is slidably connected to the outer surface of the guide pin (92); and the outer surface of the guide pin (92) is... Each of the above is fitted with a sixth spring (93) that cooperates with the top slider (91). The lower end surface of the top slider (91) is hinged with a short connecting rod (94). The left end surface of the upright plate (64) is also slidably connected with a locking plate (95) that cooperates with the locking pin (76). The other end of the short connecting rod (94) is hinged to the corresponding locking plate (95). The lower side of the inner end face of the upright (89) is fixed with a pressure plate (90) that cooperates with the corresponding top slider (91).

7. The water-based waterproof inkjet ink production reaction apparatus for corrugated paper according to claim 5, characterized by: The unloading and collecting device also includes an alarm mechanism, which includes a round contact pad (99) that mates with the corrugated paper. A long connecting rod (100) is slidably connected to the inner wall of the upper end of the upright plate (64). The round contact pad (99) is fixed to one end of the long connecting rod (100). A connecting cylinder (101) is rotatably connected to the other end of the long connecting rod. A spline shaft (102) is provided at the top of the connecting cylinder (101). A mounting bracket (104) is provided on the upper left side of the upright plate (64). A dial wheel (103) is rotatably connected to the mounting bracket (104). A spline hole that mates with the spline shaft (102) is opened on the inner wall of the lower end of the dial wheel (103). A second slider (105) is slidably connected to the inner wall of the mounting bracket (104). 5) A pin (107) that cooperates with the dial wheel (103) is fixedly attached to the left end surface. A bell (109) is also fixedly attached to the mounting bracket (104). A ball (108) that cooperates with the bell (109) is fixedly attached to the right end surface of the second slider (105). A seventh spring (106) that cooperates with the second slider (105) is also fixedly attached to the inner wall of the mounting bracket (104). A first bevel gear (96) is fixedly attached to the outer surface of the transmission shaft (80). A second bevel gear (97) meshes with the upper end of the first bevel gear (96). A long rotating shaft (98) that is rotatably connected to the vertical plate (64) is fixedly attached to the inner wall of the second bevel gear (97). A connecting cylinder (101) is slidably connected to the upper end of the outer surface of the long rotating shaft (98).