Printing and cutting all-in-one machine

By incorporating a moving mechanism and an adsorption mechanism into the integrated printing and cutting machine, the problems of substrate positional displacement and dust diffusion are solved, resulting in higher operational accuracy and equipment cleanliness, and extending service life.

CN224026743UActive Publication Date: 2026-03-24GUANGDONG JIANYIN TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-27
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing printing and cutting all-in-one machines are prone to substrate displacement during processing, affecting operational accuracy, and the dust generated during cutting is difficult to remove, leading to equipment contamination.

Method used

The first moving mechanism connects the printing module and the laser cutting module, driving them to move along the X-axis. The second moving mechanism drives the support plate and the adsorption mechanism to move along the Y-axis. Combined with the array of through holes and the adsorption mechanism, the substrate is stably positioned and dust is absorbed.

Benefits of technology

It effectively prevents the substrate from shifting during processing, reduces the risk of dust diffusion, improves operational accuracy, and extends the service life of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of processing equipment, in particular to a printing and cutting all-in-one machine. The printing and cutting all-in-one machine comprises a supporting plate, an adsorption mechanism, a printing module, a laser cutting module, a first moving mechanism and a second moving mechanism, the adsorption mechanism is arranged below the supporting plate, and an adsorption opening of the adsorption mechanism communicates with a first through hole; the printing module is used for printing a preset pattern on a base material; the laser cutting module is used for cutting a preset pattern on a base material; the first moving mechanism is connected with the printing module and the laser cutting module and drives the printing module and the laser cutting module to move in the X-axis direction. The second moving mechanism is connected with the supporting plate and the adsorption mechanism and drives the supporting plate and the adsorption mechanism to move in the Y-axis direction. According to the printing and cutting all-in-one machine, the adsorption mechanism uniformly adsorbs the base material through the multiple first through holes and also absorbs dust generated in the laser cutting process, displacement of the base material in the machining process is avoided, meanwhile, pollution to the printing and cutting all-in-one machine is avoided, and the service life is prolonged.
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Description

TECHNICAL FIELD

[0001] The utility model relates to processing equipment technical field, especially a printing cutting all -in -one. BACKGROUND

[0002] Traditional printing and laser cutting equipment usually exists as an independent machine, and printing and cutting operations need to be performed respectively, which not only increases the equipment cost, but also leads to low processing efficiency. In recent years, printing cutting all-in-one machines have appeared, which integrate printing and cutting functions in the same device.

[0003] The existing printing cutting all-in-one machine is prone to position deviation during processing due to the shaking of the printing and cutting substrate, affecting the operation accuracy, and the dust generated during the cutting process is difficult to remove and is prone to spread in the processing area, polluting the equipment itself. UTILITY MODEL CONTENT

[0004] The technical problem to be solved by the embodiment of the utility model is to provide a printing cutting all-in-one machine to solve the problem of position deviation of the substrate during processing of the printing cutting all-in-one machine in the prior art, affecting the operation accuracy, and the dust generated polluting the equipment.

[0005] The utility model discloses a printing cutting all-in-one machine, which comprises:

[0006] A support plate is used to place the substrate, and a plurality of first through holes are arranged in an array on the support plate;

[0007] An adsorption mechanism is arranged below the support plate, and the adsorption port of the adsorption mechanism is communicated with the first through holes;

[0008] A printing module is used to print a preset pattern on the substrate;

[0009] A laser cutting module is used to cut a preset pattern on the substrate;

[0010] A first moving mechanism is connected with the printing module and the laser cutting module and drives the printing module and the laser cutting module to move along the X-axis direction;

[0011] A second moving mechanism is connected with the support plate and the adsorption mechanism and drives the support plate and the adsorption mechanism to move along the Y-axis direction.

[0012] Optionally, the printing cutting all-in-one machine further comprises a receiving seat, the receiving seat is provided with a first chamber, the support plate cover is arranged on the top of the receiving seat to cover the first chamber, and the first chamber is communicated with the first through holes and the adsorption port of the adsorption mechanism.

[0013] Optionally, the printing and cutting all-in-one machine further comprises a protection plate, a plurality of second through holes are arranged on the protection plate in an array, the protection plate is arranged between the support plate and the receiving seat, a second cavity is formed between the protection plate and the support plate, the second cavity is communicated with the first through hole and the first cavity through the second through hole, and the first through hole is larger than the second through hole.

[0014] Optionally, the suction mechanism comprises at least one fan, and a suction port of the fan is communicated with the first cavity.

[0015] Optionally, the bottom of the receiving seat is provided with at least one third through hole, a suction port of one of the fans is arranged correspondingly to one of the third through holes, and the suction port of the fan is communicated with the first cavity through the third through hole.

[0016] Optionally, the printing module is a UV printing module, the printing and cutting all-in-one machine further comprises a curing lamp and a mounting seat, the printing module, the laser cutting module and the curing lamp are integrated and mounted on the mounting seat, the curing lamp is arranged close to the printing module, and the first moving mechanism is connected with the mounting seat and drives the mounting seat to move along the X-axis direction.

[0017] Optionally, the printing and cutting all-in-one machine further comprises a first circuit module, the first circuit module is connected with the first moving mechanism and the second moving mechanism, and is used for controlling the first moving mechanism and the second moving mechanism to work after the printing module is started.

[0018] Optionally, the printing and cutting all-in-one machine further comprises a second circuit module, the second circuit module is connected with the first moving mechanism and the second moving mechanism, and is used for controlling the first moving mechanism and the second moving mechanism to work after the laser cutting module is started.

[0019] Optionally, the printing and cutting all-in-one machine further comprises a third circuit module, the third circuit module is connected with the printing module, and is used for controlling the printing module to print a preset pattern on a base material.

[0020] Optionally, the printing and cutting all-in-one machine further comprises an operation platform and a plurality of ink cartridge bodies, the ink cartridge bodies are used for containing ink and providing ink for the printing module, the first moving mechanism and the second moving mechanism are arranged on the operation platform, the operation platform is provided with a containing groove for placing the ink cartridge bodies, and an elastic abutting member is arranged on the side wall of the containing groove, the elastic abutting member elastically abuts against the ink cartridge body when the ink cartridge body is placed in the containing groove.

[0021] Compared with the prior art, the printing and cutting integrated machine has the beneficial effects that: the first moving mechanism is arranged to connect the printing module and the laser cutting module, the printing module and the laser cutting module are driven to move along the X-axis direction, the second moving mechanism drives the supporting plate and the adsorption mechanism to move along the Y-axis direction, the printing module and the laser cutting module can print and / or cut the preset pattern on the base material, the printing module and the laser cutting module share one first moving mechanism, the volume occupied by the overall device can be reduced, the first through holes arranged in an array are arranged on the supporting plate, the adsorption mechanism is arranged below the supporting plate, the adsorption mechanism can uniformly adsorb the base material through the first through holes and absorb the dust generated in the laser cutting process during the working process of the laser cutting module, the displacement of the base material during the processing process is avoided, the risk of dust diffusion is reduced, the printing and cutting integrated machine is prevented from being polluted, and the service life of the printing and cutting integrated machine is prolonged. BRIEF DESCRIPTION OF DRAWINGS

[0022] The technical scheme of the utility model will be further explained in detail below with reference to the drawings and embodiments, and the drawings are as follows:

[0023] Figure 1 is one of the three-dimensional structure schematic diagram of the printing and cutting integrated machine provided by the utility model embodiment;

[0024] Figure 2 is the three-dimensional structure schematic diagram of the printing and cutting integrated machine provided by the utility model embodiment;

[0025] Figure 3 is the three-dimensional structure schematic diagram of the supporting plate, the receiving seat and the adsorption mechanism provided by the utility model embodiment;

[0026] Figure 4 is Figure 3 the explosion structure schematic diagram;

[0027] Figure 5 is Figure 4 the A position local amplification schematic diagram in the;

[0028] Figure 6 is Figure 4 the B position local amplification schematic diagram in the;

[0029] Figure 7 is Figure 4 the sectional structure schematic diagram of the supporting plate, the receiving seat and the adsorption mechanism connection state in the;

[0030] Figure 8 is Figure 7 the C position local amplification schematic diagram in the;

[0031] Figure 9It is the printing module, the laser cutting module and the curing lamp integrated on the mounting seat of the embodiment of the utility model, and the three-dimensional structure schematic diagram is provided.

[0032] Figure 10 It is the part three-dimensional structure schematic diagram of the printing and cutting all-in-one machine provided by the embodiment of the utility model.

[0033] The reference signs in the drawings are as follows:

[0034] 110, support plate; 110a, first through hole; 110b, second cavity; 120, adsorption mechanism; 120a, adsorption port; 121, fan; 130, printing module; 140, laser cutting module; 150, first moving mechanism; 160, second moving mechanism; 170, receiving seat; 170a, first cavity; 170b, third through hole; 180, protection plate; 180a, second through hole; 190, curing lamp; 210, mounting seat; 220, first circuit module; 230, second circuit module; 240, third circuit module; 250, operation platform; 250a, accommodating groove; 251, elastic abutting piece; 260, ink box body. DETAILED DESCRIPTION

[0035] It should be noted that the embodiments in the present application and the features in the embodiments can be combined with each other without conflict. The preferred embodiments of the utility model will be described in detail in combination with the drawings.

[0036] The embodiment of the utility model provides a printing and cutting all-in-one machine, integrates the functions of printing and cutting, can perform printing and cutting operations on the base material, prints a preset pattern on the base material, or cuts out a preset pattern, or cuts out the preset pattern after printing the preset pattern.

[0037] As Figures 1 to 4 The printing and cutting all-in-one machine of the embodiment of the application includes a support plate 110, an adsorption mechanism 120, a printing module 130, a laser cutting module 140, a first moving mechanism 150 and a second moving mechanism 160.

[0038] The support plate 110 is used for placing the base material. The support plate 110 is provided with a plurality of first through holes 110a arranged in an array. The support plate 110 can provide a stable bearing platform for the base material. The plurality of first through holes 110a are arranged in an array, which can make the adsorption force uniformly distributed on the surface of the base material. This uniform adsorption force can ensure that the base material remains flat during processing. The shape of the first through hole 110a can be circular, square, rectangular, etc. Exemplarily, the shape of the first through hole 110a is circular.

[0039] The suction mechanism 120 is arranged below the support plate 110. The suction port 120a of the suction mechanism 120 is in communication with the first through hole 110a.

[0040] The printing module 130 is used for printing a preset pattern on the substrate.

[0041] The laser cutting module 140 is used for cutting a preset pattern on the substrate.

[0042] The first moving mechanism 150 is connected with the printing module 130 and the laser cutting module 140, and drives the printing module 130 and the laser cutting module 140 to move along the X-axis direction.

[0043] The second moving mechanism 160 is connected with the support plate 110 and the suction mechanism 120, and drives the support plate 110 and the suction mechanism 120 to move along the Y-axis direction.

[0044] The first moving mechanism 150 is connected with the printing module 130 and the laser cutting module 140, and drives the printing module 130 and the laser cutting module 140 to move along the X-axis direction.

[0045] The substrate can be paper, paperboard, leather, polyvinyl chloride board, etc. The user can print and / or engrave the desired preset pattern on the substrate through the printing and cutting all-in-one machine.

[0046] In the optional embodiment of the present application, the first moving mechanism 150 can drive the printing module 130 and the laser cutting module 140 to move along the X-axis direction by adopting the cooperation of the motor and the synchronous belt driving structure. The motor is connected with the synchronous belt pulley, drives the synchronous belt pulley to rotate to drive the synchronous belt to rotate, the synchronous belt is connected with the printing module 130 and the laser cutting module 140, and drives the printing module 130 and the laser cutting module 140 to move along the X-axis direction.

[0047] Similarly, the second moving mechanism 160 can be in the form of a motor and synchronous belt driving structure to drive the support plate 110 and the adsorption mechanism 120 to move along the Y-axis direction, which will not be described here.

[0048] Reference Figures 2 to 4 In the optional embodiment of the present application, the printing and cutting all-in-one machine further comprises a receiving seat 170, the receiving seat 170 is provided with a first chamber 170a, the support plate 110 is arranged on the top of the receiving seat 170 to cover the first chamber 170a, and the first chamber 170a is in communication with the first through hole 110a and the adsorption port 120a of the adsorption mechanism 120.

[0049] The first chamber 170a is arranged on the receiving seat and is in communication with the adsorption port 120a of the adsorption mechanism 120, so that a negative pressure space can be formed, the adsorption coverage area is large, and the adsorption effect is better. Therefore, the first chamber 170a in combination with the adsorption mechanism 120 can use the negative pressure adsorption mode to effectively adsorb the entire substrate, position the substrate on the support plate 110, effectively prevent the material from moving during the printing and cutting process, and improve the operation precision. At the same time, the adsorption mechanism 120 uses the negative pressure adsorption mode to timely adsorb the debris generated in the cutting process on a larger adsorption coverage area, avoids the diffusion of the debris in the processing area, ensures the normal work of the overall equipment, and prolongs the service life of the equipment.

[0050] Further, reference Figures 4 to 7 The printing and cutting all-in-one machine further comprises a protection plate 180, a plurality of second through holes 180a are arranged in an array on the protection plate 180, the protection plate 180 is arranged between the support plate 110 and the receiving seat 170, a second chamber 110b is formed between the protection plate 180 and the support plate 110, the second chamber 110b is in communication with the first through hole 110a and the first chamber 170a through the second through hole 180a, and the first through hole 110a is larger than the second through hole 180a.

[0051] The second chamber 110b between the protection plate 180 and the support plate 110 can form a negative pressure space under the adsorption action of the adsorption mechanism 120, and adsorb and position the substrate on the support plate 110 through the first through hole 110a. The second through hole 180a on the protection plate 180 can communicate the first chamber 170a and the second chamber 110b, and the protection plate 180 can form a physical isolation and effectively block larger particle debris from entering the first chamber 170a and the adsorption mechanism 120, thereby protecting the adsorption mechanism 120 from being damaged, because the second through hole 180a is smaller than the first through hole 110a. The plurality of second through holes 180a arranged in an array on the protection plate 180 can communicate the first chamber 170a and the second chamber 110b, and can enhance the adsorption uniformity.

[0052] The second through hole 180a can be circular, square, rectangular, or the like. For example, the second through hole 180a is circular.

[0053] Referring to Figure 4 , Figure 7 and Figure 8 , in the optional embodiment of the present application, the suction mechanism 120 includes at least one fan 121, and the suction port 120a of the fan 121 is in communication with the first chamber 170a.

[0054] The fan 121 is used as a power source for generating negative pressure suction, which can achieve efficient airflow delivery and pressurization. The airflow speed and direction of the fan 121 can be precisely controlled by adjusting parameters such as blade angle and rotation speed, achieving appropriate suction effect. In addition, in the selection of the fan 121, the designer can choose a fan 121 with lower noise to provide a more quiet processing environment. In other embodiments, the suction mechanism 120 can also use a gas pump, air compressor, or other power source that can generate negative pressure suction.

[0055] The number of fans 121 can be one, two, three, or more, and the designer can set it according to actual needs. For example, four fans 121 are provided, and the suction port 120a of each fan 121 is in communication with the first chamber 170a, and a negative pressure space is formed in the first chamber 170a when the four fans 121 are working.

[0056] Further, the bottom of the receiving seat 170 is provided with at least one third through hole 170b, and the suction port 120a of one fan 121 is correspondingly arranged with one third through hole 170b and communicates with the first chamber 170a through the third through hole 170b.

[0057] The fan 121 communicates with the first chamber 170a through the third through hole 170b in the bottom of the receiving seat, which can reduce the transmission of noise and vibration to the inside of the first chamber 170a, thereby reducing the noise level during equipment operation and providing a more quiet working environment. In addition, the heat generated by the fan 121 will be taken away and will not directly accumulate in the first chamber 170a, which helps to maintain the temperature stability inside the equipment and avoids the problem of overheating of the equipment caused by heat accumulation. At the same time, it is easier to maintain and replace the fan 121, reducing the difficulty of maintenance.

[0058] Referring to Figure 2 and Figure 9In an optional embodiment of the present application, the printing module 130 is a UV printing module 130, and the printing and cutting all-in-one machine further comprises a curing lamp 190 and a mounting seat 210. The printing module 130, the laser cutting module 140 and the curing lamp 190 are integrally installed on the mounting seat 210. The curing lamp 190 is arranged close to the printing module 130. The first moving mechanism 150 is connected with the mounting seat 210 and drives the mounting seat 210 to move along the X-axis direction.

[0059] The UV printing module 130 sprays the UV-sensitive ink onto the substrate through its nozzle to form a preset pattern according to the design requirements. The curing lamp 190 arranged close to the printing module 130 can emit ultraviolet light to convert the printing material from a liquid or semi-solid state to a solid state, thereby accelerating the printing speed and improving the production efficiency. Therefore, the UV printing module 130 combined with the curing lamp 190 has a faster printing speed. The curing lamp 190 can accurately control the intensity and irradiation time of the ultraviolet light to ensure that the printing material is properly treated during the curing process, thereby ensuring the printing quality.

[0060] The mounting seat 210 provides an installation platform for the printing module 130, the laser cutting module 140 and the curing lamp 190, and integrally installs the printing module 130, the laser cutting module 140 and the curing lamp 190 together, so that the overall structure is compact. When the first moving mechanism 150 drives the mounting seat 210 to move along the X-axis direction, the printing module 130, the laser cutting module 140 and the curing lamp 190 can be simultaneously driven to move along the X-axis direction, and the first moving mechanism 150 is shared, thereby reducing the complexity of the equipment, reducing hardware redundancy, reducing the overall size of the equipment, and better coordinating the work of the printing module 130 and the curing lamp 190 to ensure that the preset pattern after printing is cured in the first time, avoid damage to the preset pattern due to curing delay, and at the same time, reduce the vibration caused by independent movement between different modules, and improve the stability of the equipment.

[0061] Reference Figure 2 In an optional embodiment of the present application, the printing and cutting all-in-one machine further comprises a first circuit module 220. The first circuit module 220 is connected with the first moving mechanism 150 and the second moving mechanism 160, and is used to control the first moving mechanism 150 and the second moving mechanism 160 to work after the printing module 130 is started.

[0062] By arranging the first circuit module 220, the movement of the first moving mechanism 150 and the second moving mechanism 160 can be accurately controlled after the printing module 130 is started, so as to ensure that the printing module 130 can perform printing operation at a specified position when working.

[0063] The first circuit module 220 can be realized by a conventional circuit, which will not be described here.

[0064] Further, the printing and cutting all-in-one machine further comprises a second circuit module 230, which is connected with the first moving mechanism 150 and the second moving mechanism 160, and is configured to control the first moving mechanism 150 and the second moving mechanism 160 to work after the laser cutting module 140 is started.

[0065] By arranging the second circuit module 230, the first moving mechanism 150 and the second moving mechanism 160 can be controlled to work after the laser cutting module 140 is started, so that the laser cutting module 140 can be ensured to perform cutting operation at a specified position when working.

[0066] The second circuit module 230 can be implemented by a conventional circuit, which will not be described herein.

[0067] The present application controls the movement of the printing module 130 and the laser cutting module 140 through different circuit modules, so that independent operation of the two modules can be realized, which means that the movement speed, direction and stroke can be flexibly adjusted according to specific task requirements when performing printing or cutting operation, without mutual interference, and has high flexibility.

[0068] Further, the printing and cutting all-in-one machine further comprises a third circuit module 240, which is connected with the printing module 130, and is configured to control the printing module 130 to perform printing operation on the base material.

[0069] The third circuit module 240 can finely control the printing module 130, including accurate adjustment of parameters such as ink ejection amount and ink ejection speed of the printing head, so as to ensure high precision and high quality of the printed pattern.

[0070] The third circuit module 240 can be implemented by a conventional circuit, which will not be described herein.

[0071] Reference Figure 9 and 10 In the optional embodiment of the present application, the printing and cutting all-in-one machine further comprises an operation platform 250 and a plurality of ink cartridge bodies 260, the ink cartridge bodies 260 are configured to contain ink and provide ink for the printing module 130, the first moving mechanism 150 and the second moving mechanism 160 are arranged on the operation platform 250, the operation platform 250 is provided with a containing groove 250a for placing the ink cartridge bodies 260, and the side wall of the containing groove 250a is provided with an elastic abutting member 251, which elastically abuts against the ink cartridge bodies 260 when the ink cartridge bodies 260 are placed in the containing groove 250a.

[0072] The elastic abutting member 251 can elastically abut against the ink cartridge body 260, thereby firmly positioning the ink cartridge body 260 in the accommodation groove 250a. This design can effectively prevent the ink cartridge body 260 from loosening or shifting due to vibration or external force during equipment operation. The elastic abutting member 251 has a certain elasticity and can be adjusted according to the actual size of the ink cartridge body 260, thereby adapting to ink cartridge bodies 260 of different specifications. Stable placement of the ink cartridge can ensure the continuity and stability of ink supply, thereby improving the printing quality and reducing printing errors caused by insufficient or unstable ink supply.

[0073] It should be understood that the above embodiments are only used to illustrate the technical solutions of the present application, but not to limit them. For those skilled in the art, the technical solutions recorded in the above embodiments can be modified, or some technical features can be replaced by equivalents; all these modifications and replacements shall belong to the protection scope of the appended claims of the present application.

Claims

1. A printing and cutting all-in-one machine, characterized in that, The application relates to a printing and cutting integrated machine. The printing and cutting integrated machine comprises a support plate for placing a substrate; a plurality of first through holes arranged in an array are formed in the support plate; An adsorption mechanism is arranged below the support plate, and an adsorption port of the adsorption mechanism is communicated with the first through holes; A printing module is arranged on the support plate and used for printing a preset pattern on the substrate; A laser cutting module is arranged on the support plate and used for cutting the preset pattern on the substrate; A first moving mechanism is connected with the printing module and the laser cutting module and drives the printing module and the laser cutting module to move along an X-axis direction; A second moving mechanism is connected with the support plate and the adsorption mechanism and drives the support plate and the adsorption mechanism to move along a Y-axis direction.

2. The all-in-one printer-cutter according to claim 1, characterized in that, The printing and cutting integrated machine further comprises a receiving seat, a first cavity is arranged on the receiving seat, the support plate is arranged on the top of the receiving seat to cover the first cavity, and the first cavity is communicated with the first through holes and the adsorption port of the adsorption mechanism.

3. The all-in-one printer-cutter according to claim 2, characterized in that, The printing and cutting integrated machine further comprises a protection plate, a plurality of second through holes arranged in an array are formed in the protection plate, the protection plate is arranged between the support plate and the receiving seat, a second cavity is formed between the protection plate and the support plate, the second cavity is communicated with the first through holes and the first cavity through the second through holes, and the first through holes are larger than the second through holes.

4. The all-in-one printer-cutter according to claim 2, characterized in that, The adsorption mechanism comprises at least one fan, and the adsorption port of the fan is communicated with the first cavity.

5. The all-in-one printer-cutter according to claim 4, characterized in that, The bottom of the receiving seat is provided with at least one third through hole, the adsorption port of one fan is arranged in correspondence with one third through hole, and the adsorption port of the fan is communicated with the first cavity through the third through hole.

6. The printing and cutting all-in-one machine according to any one of claims 1-5, characterized in that, The printing module is a UV printing module, the printing and cutting integrated machine further comprises a curing lamp and a mounting seat, the printing module, the laser cutting module and the curing lamp are integrated on the mounting seat, the curing lamp is arranged close to the printing module, the first moving mechanism is connected with the mounting seat and drives the mounting seat to move along the X-axis direction.

7. The printing and cutting all-in-one machine according to any one of claims 1-5, characterized in that, The printing and cutting integrated machine further comprises a first circuit module, the first circuit module is connected with the first moving mechanism and the second moving mechanism, and is used for controlling the first moving mechanism and the second moving mechanism to work after the printing module is started.

8. The all-in-one printer-cutter according to claim 7, characterized in that, The printing and cutting integrated machine further comprises a second circuit module, the second circuit module is connected with the first moving mechanism and the second moving mechanism, and is used for controlling the first moving mechanism and the second moving mechanism to work after the laser cutting module is started.

9. The all-in-one printer-cutter according to claim 8, characterized in that, The printing and cutting integrated machine further comprises a third circuit module, the third circuit module is connected with the printing module, and is used for controlling the printing module to print the preset pattern on the substrate. 10.The printing and cutting all-in-one machine according to claim 6, characterized in that, The printing and cutting integrated machine further comprises an operation platform and a plurality of ink cartridges, the ink cartridges are used for containing ink and providing ink for the printing module, the first moving mechanism and the second moving mechanism are arranged on the operation platform, the operation platform is provided with containing grooves for placing the ink cartridges, and elastic abutting members are arranged on the side walls of the containing grooves, the elastic abutting members elastically abut against the ink cartridges when the ink cartridges are placed in the containing grooves.