Manufacturing and printing equipment for corrugated carton

By designing a clamping and walking mechanism and a rotating air jet frame, the corrugated cardboard printing equipment solves the problems of instability and dust residue in the printing process, achieving stable printing and rapid drying of the cardboard.

CN120941875APending Publication Date: 2025-11-14ZHU MA DIAN SHI KANG DA BAO ZHUANG ZHI PIN YOU XIAN GONG SI
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Patent Information

Application Number
CN202511218730.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-28
Publication Date
2025-11-14

AI Technical Summary

Technical Problem

Existing printing presses often result in unstable cardboard that is prone to dust residue when printing corrugated boxes, and the printed pattern is difficult to dry quickly, affecting print quality.

Method used

A corrugated cardboard box printing device was designed. The device uses a clamping and rotating mechanism to ensure stable movement of the cardboard during the printing process. An air jet frame is used for angle switching and temperature control to blow away dust and accelerate the drying of the pattern.

Benefits of technology

It achieves stable clamping and dust removal of cardboard during the printing process, ensuring printing quality, and accelerates pattern drying by rotating the air blower to prevent pattern damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to manufacturing and printing equipment for corrugated cartons. The problems that a printing machine cannot guarantee that paperboards are kept stable in the printing process during printing and the like are effectively solved. According to the technical scheme, a clamping walking mechanism is arranged on the upper surface of a frame body, the clamping walking mechanism comprises walking wheels, a walking belt and a mounting rod, a rotating mechanism is arranged on the lower surface of the mounting rod, and the rotating mechanism comprises a rotating piece, a sliding piece, an extrusion piece and an extrusion spring; and the rotating piece is rotationally arranged on the lower surface of the mounting rod, and a reciprocating adjusting mechanism is arranged on the surface of the rotating piece. According to the paperboard printing equipment, hot air can be blown out to the surface of a pattern during printing so that the pattern can be air-dried in an accelerated mode, the situation that the pattern of a paperboard is rubbed and damaged by an instrument after printing is avoided, air blowing can be conducted by rotating the angle in the air blowing process, an air blowing channel is controlled to be replaced in the swinging process, and the effect of multi-angle air blowing replacement is achieved.
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Description

Technical Field

[0001] This invention relates to the field of cardboard box production technology, and in particular to a corrugated cardboard box manufacturing and printing equipment. Background Technology

[0002] Corrugated cardboard boxes are one of the most widely used packaging products, consistently ranking first in usage among various packaging materials. For over half a century, corrugated cardboard boxes have gradually replaced wooden crates and other transport packaging containers due to their superior performance and good processing properties, becoming the mainstay of transport packaging. Besides protecting goods and facilitating warehousing and transportation, they also beautify and promote products. Corrugated cardboard boxes are considered green and environmentally friendly products, benefiting both environmental protection and ease of loading and unloading. Corrugated cardboard box printing mostly utilizes printing presses. The printing plate is mounted on a printing cylinder, and the ink system transfers ink to the plate. As the corrugated cardboard boxes enter in parallel and orderly, they rotate for printing. However, existing printing presses cannot guarantee the stability of the cardboard during printing, resulting in some dust remaining on the surface of the box, which affects the printing process and hinders the rapid drying of the pattern.

[0003] In view of the above, we provide a corrugated cardboard box manufacturing and printing equipment to solve the above problems. Summary of the Invention

[0004] In view of the above situation, the present invention provides a corrugated cardboard box manufacturing and printing equipment. The frame can allow the cardboard to enter the printing cylinder in an orderly manner for printing, and can clamp and fix the two sides of the cardboard during the printing process, so that the cardboard can move stably on the surface of the frame. The blowing angle and blowing temperature can also be switched during printing.

[0005] A corrugated cardboard box manufacturing and printing device includes a frame. A clamping and traveling mechanism is provided on the upper surface of the frame. The clamping and traveling mechanism includes traveling wheels, a traveling belt, and a mounting rod. A rotating mechanism is provided on the lower surface of the mounting rod. The rotating mechanism includes a rotating component, a sliding component, a pressing component, and a pressing spring. The rotating component is rotatably mounted on the lower surface of the mounting rod. A reciprocating adjustment mechanism is provided on the surface of the rotating component. The reciprocating adjustment mechanism includes a translation frame, a slot, an air jet frame, a control frame, and a control slot. The translation frame is slidably mounted on the upper surface of the pressing component and overlaps with the slot. The slot is located on one side of the air jet frame. The air jet frame is rotatably mounted in the middle of the rotating frame. A control frame is slidably mounted on one side of the air jet frame, and a control slot is provided on one side of the control frame.

[0006] The beneficial effects of the above technical solution are as follows: The frame designed in this scheme allows the cardboard to enter the printing cylinder in an orderly manner for printing. During the printing process, it can clamp and fix the two sides of the cardboard, making the cardboard stable on the surface of the frame for movement. During printing, it can also switch the blowing angle and blowing temperature to blow away dust on the surface of the cardboard. During printing, it can blow hot air onto the pattern surface to accelerate the drying of the pattern and prevent the pattern from being damaged by the friction of the equipment after printing. During the blowing process, it can also rotate the blowing angle and control the changing of the blowing channel during the swinging process to achieve the effect of multi-angle changing blowing. Attached Figure Description

[0007] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the main view of the frame of the present invention; Figure 3 This is a schematic diagram of the side cut of the frame of the present invention; Figure 4 For the present invention Figure 3 Enlarged view of point A in the middle; Figure 5 This is a schematic diagram of the mounting rod of the present invention; Figure 6 This is a schematic diagram of one side of the mounting rod of the present invention; Figure 7 This is a schematic diagram of a single-sided cutting of the mounting rod of the present invention; Figure 8 This is a schematic diagram of a single-sided cutting of the extruded part of the present invention; Figure 9 This is a schematic diagram of the cutting of the top of the mounting rod of the present invention; Figure 10 For the present invention Figure 7 Enlarged view of point B in the middle; Figure 11 This is a schematic diagram of the cutting of the top of the mounting rod of the present invention; Figure 12 For the present invention Figure 11 Enlarged view of point C in the middle; Figure 13 This is a schematic diagram of a single-side cut of the walking wheel of the present invention.

[0008] In the diagram: 1. Frame; 2. Wheels; 3. Belt; 4. Mounting rod; 5. Rotating component; 6. Sliding component; 7. Pressing component; 8. Pressing spring; 9. Translation frame; 10. Slot; 11. Jet frame; 12. Control frame; 13. Control slot; 14. Air supply channel; 15. Control valve; 16. Channel 1; 17. Channel 2; 18. Spring 1; 19. Connecting pipe; 20. Bending spring; 21. Control panel; 22. Torsion spring; 23. Overlapping block; 24. Spring No. 2; 25. Ordinary channel; 26. Valve No. 1; 27. Heating channel; 28. Heating wire; 29. ​​Valve No. 2; 30. Spring No. 3; 31. Transmission gear; 32. Tooth block; 33. Long groove; 34. Printing roller; 35. Positioning strip; 36. Positioning port; 37. Supply hole; 38. Drive wheel; 39. Conveyor belt; 40. Wheel No. 2; 41. Wheel No. 1. Detailed Implementation

[0009] The foregoing and other technical contents, features and effects of the present invention are described in conjunction with the appendix below. Figures 1 to 13 As will be clearly shown in the detailed description of the embodiments, all structural contents mentioned in the following embodiments are based on the accompanying drawings.

[0010] This embodiment provides a corrugated cardboard box manufacturing and printing device, as shown in the attached document. Figure 1-4 As shown in the attached diagram, this is the overall structural diagram of the solution. All structures of this solution are described in the attached diagram. Figure 1 The instruction manual is attached. Figure 2 This is the front view of the instruction manual frame 1. (Instruction manual appendix) Figure 3 This is a 3D cutting diagram to facilitate viewing the toothed block 32, long groove 33, and positioning strip 35 of this design. (Instruction manual attached.) Figure 4 Instruction manual attached Figure 3 The enlarged view in the instruction manual provides a clear view of the features and shapes of the toothed block 32, the long groove 33, and the positioning strip 35. Figure 1 As shown, the frame 1 in this solution resembles a conveyor belt. Because conveyor belts facilitate the transport of cartons and allow for orderly printing, the drive wheel 38 requires a motor. This solution does not describe the motor; instead, the frame 1, conveyor belt 39, and drive wheel 38 constitute the existing conveyor, which is already motor-driven. Therefore, this solution does not describe the motor. The drive wheel 38 rotates, driving the conveyor belt 39 to transport materials. Simultaneously, it drives the first wheel to rotate. The drive wheel 38 and the first wheel are connected by a belt for transmission. Both the first and second wheels 40 are limited in rotation on the frame 1. (See the attached instruction manual.) Figure 1As can be seen, wheels 1 and 2 (40) are similar in shape, each having a pulley that engages with the belt. One side of each pulley has a gear for meshing. The arrangement of wheels 1 and 2 (40) allows the traveling belt 3 and the conveyor belt 39 to rotate in opposite directions, holding the cardboard between the conveyor belt 39 and the traveling belt 3 for printing, preventing relative displacement of the carton during printing. Because the gears between wheels 1 and 2 (40) have a certain transmission ratio, this design ensures that the linear speeds of the traveling belt 3 and the conveyor belt 39 are consistent. One side of wheel 2 (40) rotates the traveling belt 3 via a belt. (See the attached instruction manual.) Figure 1 As can be seen from the diagram, both the walking belt 3 and the conveyor belt 39 are supported and driven by two sets of wheels. Therefore, one side of the drive wheel 38 and the walking wheel 2 has a wheel that can assist in supporting the operation. The walking belt 3 can be a chain. It is only necessary to change the walking wheel 2 to a wheel that is compatible with the chain. This is the effect brought about by the above four diagrams. It allows the cardboard to be clamped between the walking belt 3 and the conveyor belt 39 and to operate, so that the cardboard can be printed stably. The reserved distance between the conveyor belt 39 and the walking belt 3 is designed according to the thickness of the cardboard. Finally, let me introduce the printing roller. This solution does not design the existing printing roller. Therefore, the electrical control of the printing roller, such as stopping and starting, is not designed in this solution. The printing roller is only symbolically drawn. The printing roller needs to be used in conjunction with the conveyor belt 39. The positioning strip 35 is extended and fixed on the inner side of the top of the frame 1. As attached Figure 5-8 As shown, the mounting rod 4 is vertically mounted on the traveling belt 3. Six mounting rods 4 are evenly mounted on the traveling belt 3, with equal distance between each pair of mounting rods 4. The focus of this design is on the mounting rod 4, therefore a detailed description is necessary. A rotatable rotating component 5 is rotatably mounted below the mounting rod 4. An air jet frame 11 is rotatably mounted in the middle of the rotating component 5. A sliding component 6 is slidably mounted on the lower surface of the rotating component 5. A rotatable pressing component 7 is mounted on the lower surface of the sliding component 6. The rotating component 5 and the sliding component 6 can rotate as a unit, while the mounting rod 4 and the pressing component 7 cannot rotate. The pressing component 7 cannot detach from the sliding component 6. There is also a relationship between the pressing component 7 and the mounting rod 4: a non-detachable pressing frame is slidably mounted below the mounting rod 4. This is why the sliding component 6 does not drive the pressing component 7 to rotate. The sliding component 6 is designed to provide an elastic force when clamping the cardboard, allowing it to exert pressure for clamping. This pressure is provided by the compression spring 8. (See the attached instruction manual.) Figure 5The compression spring 8 is in a compressed state, therefore the mounting rod 4 in this design can rotate. The purpose of rotating the mounting rod 4 is to push the cardboard along both sides for a certain distance so that one side of the air jet frame 11 faces the printing end of the printing roller (that is, the part of the cardboard that has already been printed), and then air is sprayed. The rotational power of the rotating part 5 comes from the toothed block 32, which is shown in the instruction manual. Figure 4 As can be seen, the toothed block 32 is positioned on the travel path of the transmission gear 31. After reaching a certain distance, it will mesh with the transmission gear 31, causing the transmission gear 31 to rotate. One side of the transmission wheel can mesh with the rotating part 5, thus ultimately causing the mounting rod 4 to rotate. The mounting rod 4 will rotate 45 degrees, continuously venting air at an angle towards the printed area. Notice that the translation frame 9 is slidably positioned above the extrusion part 7. In fact, the position of the translation frame 9 is controlled by the second spring 24. The upper end of the second spring 24 is fixedly installed on the lower extension end of the mounting rod 4. (Here, it is necessary to introduce that there is a uniform L-shaped extension end on both sides of the mounting block. This extension end is integrally set below the mounting rod 4. This extension end allows the rotating part 5 to rotate.) The stable rotation is located below the mounting rod 4 and cannot be detached. This extended end also connects to the second spring 24. Therefore, there is an arc-shaped piece in the figure. This arc-shaped piece is fixed below the mounting rod 4 and has nothing to do with the rotating part 5. Therefore, the position of the translation frame 9 is determined by the mounting rod 4. The translation frame 9 corresponds to the lateral height of the long groove 33 when it is not subjected to external force. The long groove 33 is a groove with two self-shaped sides, and its width is greater than the diameter of the cylinder on one side of the translation frame 9, so that one side of the translation frame 9 can enter the long groove 33. Here, it should be noted that one side of the translation frame 9 has an extended cylinder, which is responsible for overlapping the long groove 33. The long groove 33 has an upward protruding path, which can be found in the instruction manual. Figure 4 As can be seen, after the cardboard is about to be printed, the toothed block 32 will engage and the translation frame 9 will move up and down. The engagement of the toothed block 32 causes the rotating part 5 to rotate, while the long groove 33 causes the air jet frame 11 to blow air at an angle. Under the action of the long groove 33, the translation frame 9 slides upward, and the upward sliding of the translation frame 9 causes the slot 10 to rotate upward, that is, the air jet frame 11 rotates along the rotating part 5. Here, the shape of the translation frame 9 is described. The translation frame 9 is an arc-shaped ring. This ring overlaps the slot 10, which facilitates the rotation of the rotating part 5. After rotation, the slot 10 can also drive the air jet frame 11 to rotate. Because the long groove 33 can make the air jet frame 11 rotate up and down, reciprocating rotation is not necessarily beneficial to ink drying, as it will cause the ink blowing to become disordered. Based on this, this solution designs a control frame 12. The purpose of the control frame 12 is to control the air to blow out in only one direction, as shown in the instruction manual. Figure 5As shown, when the jet frame 11 rotates clockwise and counterclockwise, it will not emit air because the control bar moves the control valve 15 downwards. This downward movement of the control valve 15 indicates that the second channel 17 is about to connect with the air supply channel 14. At this point, the air supply channel 14 will enter along the rotating member 5, and gas will be supplied to the side of the extrusion member 7 from the second channel 17. When the jet frame 11 rotates clockwise, the control valve 15 moves upwards, aligning the first channel 16 with the air supply channel 14. This is equivalent to the control valve 15 opening the air supply in the middle of the air supply channel 14, allowing the jet frame 11 to eject hot air. The content in parentheses describes the channel switching between jet frames 11, which is achieved through the control valve 15. Please refer to the attached instruction manual. Figure 10 As shown, the position of control valve 15 is set through control groove 13. How control groove 13 controls the position of control valve 15 is explained by the use of a U-shaped design, as shown in the attached instruction manual. Figure 10 As shown, when the control frame 12 moves to the left, one side of the control valve 15 will hit the lower edge of the left corner of the control groove 13 and slide along the lower edge, causing the control valve 15 to move downward. When it reaches the rightmost side of the control groove 13, the control frame 12 returns, and the control valve 15 will hit the upper edge of the right corner of the control groove 13 and move upward, causing the control valve 15 to move upward. This is because the translation frame 9 drives the control frame 12 to move (one side of the translation frame 9 is right next to the control frame 12, and one side of the control frame 12 has a spring 18 for reset, so when the translation frame 9 moves upward, the control frame 12 slides relative to the jet frame 11, and when the translation frame 9 moves downward, the control frame 12 slides and resets on the jet frame 11). (See the attached instruction manual.) Figure 7 As can be seen, the channel on one side of the extrusion rack connected to channel 17 in channel 2 is replaced, which is the core of this solution. As attached Figure 9-13 As shown, the air supply mechanism of this solution is introduced last. The air supply mechanism is the supply port 37. An air compressor or fan needs to be installed on the supply port 37 (since air compressors and fans are existing technologies, they will not be described in detail). That is, the air compressor or fan connects to the supply port 37 to fill it with air. This solution is intended to demonstrate these existing technologies, but it does not mean that these devices are not present on the mounting rod 4. The supply port 37 can supply gas to one of the nozzle channel and the heating channel 27. This is because the rotating part 5 rotates; therefore, this solution is designed with two sets of channels for easy alignment during rotation, and the other set of channels automatically closes when the supply port 37 aligns, as shown in the attached instruction manual. Figure 12As shown, valve 26 is open and valve 29 is closed at this time. (Because this design uses many springs, it is not described in this design that there is a spring between valve 26 and valve 29. See the attached instruction manual.) Figure 12 As shown, both valve 26 and valve 29 have spring return mechanisms. The springs extend valve 26 or valve 29, indicating that the channel is open. Valve 26 or valve 29 is not automatically blocked by the bottom of the mounting rod 4 when it is not under the supply hole 37. The bottoms of both valves 26 and 29 are sealed. Valve 29 is unique in that it has an internal heating wire 28 that heats the air, causing the heating channel 27 to blow out hot air. The blowing temperature varies depending on the rotation angle of the rotating component 5. This solution describes the stage of blowing dust off the cardboard surface (rotating component 5 only rotates to heat the surface when a certain position is reached). The position of rotating component 5 is described below. Under normal conditions without external force, rotating component 5 is as shown in the attached instruction manual. Figure 5 As shown, after rotating part 5 rotates 45 degrees, it will no longer correspond to the rack. Instead, it will be positioned by pressing against the side of the positioning strip 35 at a 45-degree angle. One side of rotating part 5 has a positioning port 36. After rotating a certain angle, it will be fixed by the positioning strip 35. It is also explained that the positioning port 36 will be next to the side of the positioning strip 35 to ensure the rotation angle of the mounting rod 4. When it moves to the side of the traveling belt 3, the positioning port 36 is released. At this time, under the reset of the third spring 30, it reaches the position specified in the instruction manual. Figure 5 The state (spring 30 is a torsion spring, which can be rotated to return to its original position. Spring 30 is connected to the sliding part 6 at the top and the pressing part 7 at the bottom, so it can be rotated to return to its original position. Spring 30 is attached to the instruction manual). Figure 5 (In the untwisted state), finally, let's introduce the extrusion frame and connecting pipe 19. The rotation and reset of the rotating part 5 indicates that the cardboard printing is finished and the cardboard needs to be released. Therefore, an air vent is provided at the bottom of the extrusion part 7. When the rotating part 5 rotates to a certain angle and resets, the air vent opens, allowing air to escape from the bottom of the extrusion part 7, preventing the cardboard from sticking to the extrusion part 7 and facilitating the quick removal of the cardboard. This is the reason for designing the control panel 21. The control panel 21 is rotatably installed in the middle of the extrusion part 7. The control panel 21 can rotate and reset because it is equipped with a bending spring 20, which can move and rotate to reset. The bending spring 20 is sleeved on the extrusion part 7 and cannot be detached. Please refer to the attached instruction manual. Figure 9A long strip extends from the bottom of the rotating component 5. The bottom of this strip touches the middle of the overlapping block 23. When the mounting rod 4 rotates 45 degrees, it reaches the clockwise side of the overlapping block 23. (During this process, since the control disk 21 cannot rotate, the long strip causes the overlapping block 23 to twist and reset. One side of the overlapping block 23 is a torsion spring 22, which can rotate and reset. The overlapping block 23 remains vertical under the external force of the torsion spring 22 (the torsion spring 22 has a greater elastic force than the bending spring 20). Thus, when the rotating component 5 rotates, it drives the control disk 21 to rotate. After reaching a certain limit, it twists the overlapping block 23. Because the rotation angle of the control disk 21 on the pressing component 7 is less than 45 degrees, after rotating a certain angle, the rotating component 5 will continue to rotate counterclockwise, and the overlapping block 23 will twist and disengage from the long strip, resetting to the position specified in the instruction manual under the action of the bending spring 20.) Figure 9 In this state, it's important to understand that the rotating part 5 rotates and resets, causing the control disk 21 to rotate. However, the control disk 21 doesn't rotate during clockwise rotation, but rather during the return stroke. At the end of the return stroke, the control disk 21 aligns with the hole on the extrusion part 7. Please refer to the attached instruction manual. Figure 8 As shown, the control panel 21 has corresponding oval holes, which will only be activated during the return process. This means the air supply channel 14 will reach the pressing component 7 and blow air downwards to facilitate the cardboard's release. A torsion spring is also provided between the air jet frame 11 and the rotating component 5, ensuring that the air jet frame 11, as shown in the instruction manual... Figure 5 As shown, please refer to the instruction manual appendix at the end. Figure 8 Included with instruction manual Figure 7Both the ordinary channel 25 and the heating channel 27 enter the rotation center of the jet frame 11, and then reach the air delivery channel 14 from the rotation center. The jet frame 11 and the rotating component 5 rotate directly in a sealed manner. The upper surface of the frame 1 is provided with a clamping and traveling mechanism, which includes a traveling wheel 2, a traveling belt 3, and a mounting rod 4. The lower surface of the mounting rod 4 is provided with a rotating mechanism, which includes a rotating component 5, a sliding component 6, a pressing component 7, and a pressing spring 8. The rotating component 5 is rotatably mounted on the lower surface of the mounting rod 4. The surface of the rotating component 5 is provided with a reciprocating adjustment mechanism, which includes a translation frame 9, a slot 10, the jet frame 11, a control frame 12, and a control slot 13. The translation frame 9 is slidably mounted on the upper surface of the pressing component 7, and the translation frame 9 overlaps with the slot 10. The upper part of the jet frame 11 has a slot 10 located on one side. The jet frame 11 is rotatably mounted in the middle of the rotating part 5. A control frame 12 is slidably mounted on one side of the jet frame 11. A control slot 13 is opened on one side of the control frame 12. An air supply channel 14 is provided inside the jet frame 11. A control mechanism is slidably mounted on the surface of the jet frame 11. The control mechanism includes a control valve 15, a first channel 16, and a second channel 17. A control slot 13 is overlapped on one side of the control valve 15. A first channel 16 is opened in the middle of the control valve 15. A second channel 17 is provided through the lower part of the control valve 15. A pressing part 7 is connected to one side of the second channel 17. A first spring 18 is provided between the control frame 12 and the jet frame 11. A driving mechanism is provided below the jet frame 11. The moving mechanism includes a connecting pipe 19, a bending spring 20, a control disc 21, and a torsion spring 22. The control disc 21 is rotatably mounted on the upper surface of the extruder 7. A bending spring 20 is disposed between the control disc 21 and the extruder 7. An overlapping block 23 is rotatably mounted on the upper surface of the control disc 21. A torsion spring 22 is disposed on one side of the overlapping block 23. One end of the connecting pipe 19 is connected to an air supply channel 14, and the other end of the connecting pipe 19 is connected to the extruder 7. The extruder 7 is slidably mounted on the upper surface of the sliding member 6. A compression spring 8 is disposed between the sliding member 6 and the extruder 7. A rotating member 5 is slidably mounted on the upper surface of the sliding member 6. The extruder 7 is overlapped on one side of the mounting rod 4. A second spring 24 is disposed between the translation frame 9 and the rotating member 5. The rotating member 5 is positioned above... A standard channel 25 is provided, with a valve 26 slidingly mounted on its surface. A heating channel 27 is located above the rotating component 5, with a heating wire 28 inside. A valve 29 slidingly mounted on the surface of the heating channel 27 is also provided. A spring 30 is installed on the sliding component 6 and the pressing component 7. A control rotation mechanism is provided on one side of the rotating component 5, including a transmission gear 31 and a toothed block 32. The transmission gear 31 is rotatably mounted on the lower surface of the mounting rod 4, with the rotating component 5 meshing on one side and the toothed block 32 meshing on the other side. The toothed block 32 is fixedly mounted on one side of the frame 1. A long slot 33 is provided on one side of the frame 1 for connecting a sliding frame 9. A printing roller 34 is located in the middle of the frame 1.A positioning strip 35 is integrally provided on one side of the frame 1; a positioning port 36 is provided on one side of the rotating part 5; a supply hole 37 is provided on one side of the mounting rod 4; a drive wheel 38 is provided on the surface of the frame 1; a conveyor belt 39 overlaps the surface of the drive wheel 38; a first wheel 41 is connected to one side of the drive wheel 38 via a belt; a second wheel 40 is engaged on one side of the first wheel 41; a traveling wheel 2 is connected to one side of the second wheel 40 via a belt; a traveling belt 3 is connected to the surface of the traveling wheel 2; and a mounting rod 4 is provided on the surface of the traveling belt 3.

[0011] The above description is only for illustrating the present invention and should be understood as not being limited to the above embodiments. Various modifications that conform to the spirit of the present invention are within the protection scope of the present invention.

Claims

1. A corrugated cardboard box manufacturing and printing device, comprising a frame (1), characterized in that, The upper surface of the frame (1) is provided with a clamping and walking mechanism, which includes a walking wheel (2), a walking belt (3), and a mounting rod (4). The lower surface of the mounting rod (4) is provided with a rotating mechanism, which includes a rotating component (5), a sliding component (6), a pressing component (7), and a pressing spring (8). The rotating component (5) is rotatably disposed on the lower surface of the mounting rod (4). The surface of the rotating component (5) is provided with a reciprocating adjustment mechanism, which includes a translation frame (9). The assembly includes a slot (10), a jet frame (11), a control frame (12), and a control slot (13). The translation frame (9) is slidably disposed on the upper surface of the extruder (7). The translation frame (9) overlaps and is disposed on the slot (10). The slot (10) is disposed on one side of the jet frame (11). The jet frame (11) is rotatably disposed in the middle of the rotating component (5). The control frame (12) is slidably disposed on one side of the jet frame (11). The control slot (13) is provided on one side of the control frame (12).

2. The corrugated cardboard box manufacturing and printing equipment according to claim 1, characterized in that, The jet frame (11) has an internal air supply channel (14), and a control mechanism is slidably provided on the surface of the jet frame (11). The control mechanism includes a control valve (15), a first channel (16), and a second channel (17). A control groove (13) is provided on one side of the control valve (15). A first channel (16) is opened in the middle of the control valve (15). A second channel (17) is provided through the bottom of the control valve (15). A pressing member (7) is connected to one side of the second channel (17). A first spring (18) is provided between the control frame (12) and the jet frame (11).

3. The corrugated cardboard box manufacturing and printing equipment according to claim 2, characterized in that, A driving mechanism is provided below the jet frame (11). The driving mechanism includes a connecting pipe (19), a bending spring (20), a control disc (21), and a torsion spring (22). The control disc (21) is rotatably disposed on the upper surface of the extruder (7). A bending spring (20) is provided between the control disc (21) and the extruder (7). An overlapping block (23) is rotatably disposed on the upper surface of the control disc (21). A torsion spring (22) is provided on one side of the overlapping block (23). One end of the connecting pipe (19) is connected to an air supply channel (14), and the other end of the connecting pipe (19) is connected to the extruder (7).

4. The corrugated cardboard box manufacturing and printing equipment according to claim 1, characterized in that, A pressing member (7) is slidably disposed on the upper surface of the sliding member (6), a pressing spring (8) is disposed between the sliding member (6) and the pressing member (7), and a rotating member (5) is slidably disposed on the upper surface of the sliding member (6).

5. The corrugated cardboard box manufacturing and printing equipment according to claim 1, characterized in that, An extrusion member (7) is attached to one side of the mounting rod (4). A second spring (24) is provided between the translation frame (9) and the rotating member (5). A normal channel (25) is provided above the rotating member (5). A first valve (26) is slidably provided on the surface of the normal channel (25). A heating channel (27) is provided above the rotating member (5). A heating wire (28) is provided inside the heating channel (27). A second valve (29) is slidably provided on the surface of the heating channel (27). A third spring (30) is provided between the sliding member (6) and the extrusion member (7).

6. The corrugated cardboard box manufacturing and printing equipment according to claim 1, characterized in that, A control rotation mechanism is provided on one side of the rotating component (5). The control rotation mechanism includes a transmission gear (31) and a tooth block (32). The transmission gear (31) is rotatably disposed on the lower surface of the mounting rod (4). The rotating component (5) is meshed on one side of the transmission gear (31), and the tooth block (32) is meshed on the other side of the transmission gear (31). The tooth block (32) is fixedly disposed on one side of the frame (1). A long slot (33) for connecting the translation frame (9) is provided on one side of the frame (1).

7. The corrugated cardboard box manufacturing and printing equipment according to claim 1, characterized in that, A printing roller (34) is provided in the middle of the frame (1), a positioning strip (35) is integrally provided on one side of the frame (1), and a positioning port (36) is provided on one side of the rotating part (5).

8. The corrugated cardboard box manufacturing and printing equipment according to claim 1, characterized in that, A supply hole (37) is provided on one side of the mounting rod (4), a drive wheel (38) is provided on the surface of the frame (1), a conveyor belt (39) is attached to the surface of the drive wheel (38), and a No. 41 is attached to one side of the drive wheel (38) via a belt.

9. The corrugated cardboard box manufacturing and printing equipment according to claim 8, characterized in that, One side of the first wheel (41) is engaged with the second wheel (40), and one side of the second wheel (40) is connected to the walking wheel (2) by a belt. The surface of the walking wheel (2) is connected to the walking belt (3), and the surface of the walking belt (3) is provided with the mounting rod (4).