CONTINUOUS PRINTING APPARATUS USING VACUUM SUCTION ROLLER AND METHOD THEREOF
20230031339 · 2023-02-02
Inventors
Cpc classification
B41F16/0026
PERFORMING OPERATIONS; TRANSPORTING
B41J11/0085
PERFORMING OPERATIONS; TRANSPORTING
B41F16/006
PERFORMING OPERATIONS; TRANSPORTING
B41F23/007
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41J11/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a continuous printing apparatus using a vacuum suction roller, and it is to provide a continuous printing apparatus and method using a vacuum suction roller capable of reducing costs and improving productivity by continuously printing on the surface of a woven fabric using the vacuum suction roller.
Claims
1-12. (canceled)
13. A continuous sublimation transfer method using a continuous sublimation transfer apparatus employing a vacuum suction roller, the apparatus comprising: a first unwinding roller for unwinding an air permeable fabric to be printed; a second unwinding roller for unwinding a printing film coated with a sublimination transfer dye on one side surface; a first heating unit for preheating the air permeable fabric unwound from the first unwinding roller; a vacuum suction roller configured so that, while the printing film is laminated on one side surface of the air permeable fabric that has passed through the first heating unit, the other side surface of the air permeable fabric is in contact with one side of the roller; a second heating unit positioned to be spaced from the surface of the vacuum suction roller in contact with the air permeable fabric at a certain interval to heat the air permeable fabric and the printing film; a first recovery roller for recovering the air permeable fabric that has passed through the vacuum suction roller; and a second recovery roller for recovering the printing film that passed through the vacuum suction roller, wherein a plurality of pores is formed on the lateral surface of the vacuum suction roller, and the second heating unit is for accelerating the sublimation function of the sublimation transfer dye coated on the printing film, the method comprising: a step of unwinding the air permeable fabric from the first unwinding roller and then preheating the unwound air permeable fabric through the first heating unit; a step of unwinding the printing film from the second unwinding roller and then laminating the unwound printing film on one side surface of the air permeable fabric; a step of passing the air permeable fabric laminated with the printing film through the vacuum suction roller to bring the exposed surface of the air permeable fabric into contact with the vacuum suction roller, wherein the air permeable fabric laminated with the printing film is heated by the second heating unit and the dye coated on the printing film is sublimated, and then the sublimated gaseous dye is guided toward the pores of the vacuum suction roller by the negative pressure formed inside the vacuum suction roller; and a step of separating the printing film from the air permeable fabric to obtain a dyed fabric.
14. The continuous sublimation transfer method according to claim 13, wherein the surface of the vacuum suction roller in contact with the air permeable fabric is formed of an air permeable porous material having a plurality of pores, and the gas containing the sublimated dye on the surface of the vacuum roller is sucked into the vacuum suction roller through the plurality of pores to bring the printing film into close contact with the air permeable fabric.
15. The continuous sublimation transfer method according to claim 14, wherein the air permeable material having the plurality of pores and forming the surface of the vacuum suction roller in contact with the air permeable fabric is selected from porous SUS, ceramic and gypsum.
16. The continuous sublimation transfer method according to claim 13, wherein the air permeable fabric is a knitted fabric or a woven fabric manufactured by a weaving method.
17. The continuous sublimation transfer method according to claim 13, wherein the first heating unit is to preheat the air permeable fabric to a temperature of 100° C. to 200° C.
18. The continuous sublimation transfer method according to claim 13, wherein the material of the printing film is selected from the group consisting of PET, A-PET, PP, PE and paper.
19. The continuous sublimation transfer method according to claim 13, wherein the second heating unit is to heat the air permeable fabric and the printing film to a temperature of 130° C. to 250° C.
20. The continuous sublimation transfer method according to claim 13, wherein the continuous sublimation transfer apparatus further comprises a cooling roller for cooling the air permeable fabric between the vacuum suction roller and the first recovery roller.
21. The continuous sublimation transfer method according to claim 20, further comprises a step of cooling the dyed fabric by a cooling roller.
Description
BRIEF DESCRIPTION OF DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
[0041] Hereinafter, embodiments according to the present invention will be described in detail with reference to the accompanying drawings. The size or shape of the components shown in the drawings may be exaggerated for clarity and convenience of explanation. In addition, terms specially defined in consideration of the configuration and action of the present invention may vary depending on the intention or custom of the user or operator. Definition of these terms should be made based on the content throughout this specification.
[0042] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms “center”, “top”, “bottom”, “left”, “right”, “vertical”, “horizontal”, “inside”, “outside”, “one side”, “other side”, etc. is based on the orientation or positional relationship shown in the drawings or the orientation or positional relationship that is usually arranged when using the product of the present invention, and it is only for the description and brief description of the present invention and is not intended to be construed as limiting the present invention because it does not suggest or imply that the indicated apparatus or device necessarily has the specified orientation and must be configured or operated in the specified orientation.
[0043]
[0044] The continuous printing apparatus using the vacuum suction roller of the present invention may be to print dyes on the air permeable fabric 11 which is air permeable on both sides. In the continuous printing apparatus using the vacuum suction roller of the present invention, a sublimation transfer film that can be used for various purposes may be used as the printing film 12, and the dye of the sublimation transfer film may be transferred to the air permeable fabric 11 by bringing the sublimation transfer film into close contact with the air permeable fabric 11 using the vacuum suction roller 400.
[0045] As shown in
[0046] a first unwinding roller 100 for unwinding an air permeable fabric 11 to be printed;
[0047] a second unwinding roller 200 for unwinding a printing film 12 coated with dye on one side surface;
[0048] a first heating unit 300 for preheating the air permeable fabric 11 unwound from the first unwinding roller 100;
[0049] a vacuum suction roller 400 configured so that while the printing film 12 is laminated on one side surface of the air permeable fabric 11 that has passed through the first heating unit 300 the other side surface of the air permeable fabric 11 is in contact with one side of the roller;
[0050] a second heating unit 500 positioned to be spaced from the surface of the vacuum suction roller 400 in contact with the air permeable fabric 11 at a certain interval to heat the air permeable fabric 11 and the printing film 12;
[0051] a first recovery roller 700 for recovering the air permeable fabric 11 that has passed through the vacuum suction roller 400; and
[0052] a second recovery roller 800 for recovering the printing film 12 that passed through the vacuum suction roller 400.
[0053] The air permeable fabric 11 may be printed. The air permeable fabric 11 is made of an air permeable material, and may be applicable without limitation to the material that is air permeable between one side surface to which the dye is transferred and the other side surface.
[0054] For example, the air permeable fabric 11 may be a knitted fabric or a woven fabric manufactured by a weaving method. There is no limitation on the weaving pattern of the air permeable fabric 11, and one side surface of the air permeable fabric 11 to which dye is transferred may be applicable without limitation among flat surfaces or three-dimensional surfaces provided with protrusions and concave portions.
[0055] The air permeable fabric 11 may be prepared with being wound around the cylindrical first unwinding roller 100.
[0056] Before the printing film 12 is laminated on one side surface of the air permeable fabric 11, the air permeable fabric 11 may be preheated through the first heating unit 300.
[0057] The first heating unit 300 may be preheated to a temperature at which the air permeable fabric 11 is not deformed or damaged by heat. For example, the first heating unit 300 may be to preheat the air permeable fabric 11 to a temperature of 100° C. to 200° C.
[0058] The first heating unit 300 is provided in the form of a chamber having a heating means 310 therein, and the air permeable fabric 11 may be preheated while passing through the first heating unit 300. The heating means 310 may be an IR heater.
[0059] The printing film 12 may be a sublimation transfer film. A dye id applied to one side surface of the printing film 12, and the dye of the printing film 12 may be transferred to one side surface of the air permeable fabric 11 by heat and pressure. The printing film 12 may be laminated on the preheated air permeable fabric 11 so that one side surface of the printing film 12 coated with dye faces one side surface of the air permeable fabric 11. The printing film 12 may be printed (applied) in a predetermined pattern or color.
[0060] The material of the printing film 12 may be selected from PET, A-PET, PP, PE and paper. The printing film 12 is made of a non-air-permeable material and may be compressed on the surface of the vacuum suction roller 400 with the air permeable fabric 11 therebetween by the suction force of the vacuum suction roller 400.
[0061] The material of the printing film 12 is determined in consideration of the weaving pattern of the air permeable fabric 11. For example, when the surface of the air permeable fabric 11 is formed as a three-dimensional surface, the printing film 12 may be preferably made of a thermoplastic film such as A-PET.
[0062] The printing film 12 may be prepared while being wound around the cylindrical second unwinding roller 200.
[0063] The vacuum suction roller 400 is provided in a cylindrical shape and the lateral surface may be in contact with the air permeable fabric 11 having the printing film laminated. Specifically, as shown in
[0064] A plurality of pores is formed on the lateral surface of the vacuum suction roller 400 in contact with the breathable fabric 11, and the gas containing the sublimated dye on the surface of the vacuum suction roller 400 is sucked into the vacuum suction roller 400 through the plurality of pores to bring the printing film 12 into close contact with the air permeable fabric 11. Specifically, the dye of the printing film 12 is sublimated by the second heating unit 500, which will be described later, and then the sublimated gaseous dye is guided into the pores by the negative pressure formed inside the vacuum suction roller 400. In the process, the dye may be stably adsorbed to the air permeable fabric 11.
[0065] The air permeable material having the plurality of pores and forming the lateral surface of the vacuum suction roller 400 in contact with the air permeable fabric 11 may be selected form porous SUS, ceramic and gypsum. The air permeable material having the plurality of pores and forming the lateral surface of the vacuum suction roller 400 in contact with the air permeable fabric 11 is not limited thereto, and any air permeable material having heat resistance capable of withstanding the heat emitted from the second heating unit 500 may be used without limitation.
[0066] The vacuum suction roller 400 is formed of a cylindrical cylinder that is air permeable inside and outside, and the cylindrical cylinder is provided with suction holes or has a porous structure, so that there is air permeable inside and outside. When a vacuum is applied inside the cylindrical cylinder, the gas on the surface of the cylindrical cylinder is sucked into the cylinder, thereby adsorbing the air permeable fabric 11 and the printing film 12 on the surface.
[0067] Specifically, as shown in
[0068] The central axis of the inner cylinder 410 may be a rotation axis. The outer cylinder 420 is also provided in a cylindrical shape, and the outer cylinder 420 may be provided with a plurality of suction holes 421. The external gas of the outer cylinder 420 may be sucked into the outer cylinder 420 through suction holes 421. Specifically, the outer circumferential surface of the inner cylinder 410 and the inner circumferential surface of the outer cylinder 420 may be spaced apart from each other to provide a vacuum forming space 440, and the sublimated dye gas located outside the outer cylinder 420 may be sucked into the vacuum forming space 440 through the hole 421 after passing through the porous layer.
[0069] At this time, in order to prevent the negative pressure from being concentrated at the suction hole 421 on the outer circumferential surface of the outer cylinder 420, the outer circumferential surface of the outer cylinder 420 may be covered with an air permeable porous layer 430. By providing the porous layer 430, the entire surface of the vacuum suction roller 400 may have a constant air permeability.
[0070] The porous layer 430 may be formed to a thickness of 5 mm to 15 mm More preferably, the porous layer 430 may be formed to a thickness of 7 mm to 12 mm. The difference in air permeability for each portion of the porous layer 430 may be 1 cfm to 10 cfm. More preferably, the difference in air permeability for each portion of the porous layer 430 may be 2 cfm to 3 cfm. For example, the porous layer 430 between the vacuum forming space 440 and the outer space of the outer cylinder 420 may be formed to have the air permeability of 1 cfm to 10 cfm.
[0071] The porous layer 430 may be at least one selected from porous SUS, ceramic and gypsum. The porous layer 430 is manufactured by a template method, a replication method, a direct foaming method, etc. using ceramic or gypsum as a material, or manufactured by sintering metal powders or wires of SUS.
[0072] In another embodiment, as shown in
[0073] Each space of the vacuum forming space separated by the partition walls may be provided with a cooling flow path 442. The cooling flow path 442 may be provided for temperature correction of the outer circumferential surface of the vacuum suction roller 400.
[0074] The second heating unit 500 may heat the air permeable fabric 11 and the printing film 12. The second heating unit 500 may include an IR heater as a heat source.
[0075] The second heating unit 500 may be provided in a semi-cylindrical shape corresponding to the surface of the vacuum suction roller 400, and the inner circumferential surface of the vacuum suction roller 400 spaced apart from the outer circumferential surface by a predetermined distance.
[0076] The second heating unit 500 may be for accelerating the sublimation function of the printed sublimation transfer dye of the printing film 12, Therefore, the second heating unit 500 may be to heat the air permeable fabric 11 and the printing film 12 to 130° C. to 250° C.
[0077] The printing apparatus using the vacuum suction roller of the present invention may further comprise a cooling roller for cooling the air permeable fabric 11 by contacting one side of the roller with the air permeable fabric 11 between the vacuum suction roller 400 and the first recovery roller 700.
[0078] The dye transferred to the air permeable fabric 11 may be stabilized by the cooling roller 600 and the air permeable fabric 11 that has passed through the cooling roller 600 may be a printed product, which is recovered by the first recovery roller 700.
[0079] The printing film 12 after use may be recovered by the second recovery roller 800.
[0080] As shown in
[0081] a fabric preparation and preheating step (S10) of unwinding the air permeable fabric 11 from the first unwinding roller 100 and then preheating it through the first heating unit 300;
[0082] a printing film arrangement step (S20) of unwinding the printing film 12 from the second unwinding roller 200 and then laminating it on one side surface of the air permeable fabric 11;
[0083] a dyeing step (S30) using the vacuum suction roller 400 of passing the air permeable fabric 11 through the vacuum suction roller to bring the other side surface of the air permeable fabric 11 into contact with one side of the vacuum suction roller 400;
[0084] a printing film separation step (S40) of separating the printing film 12 from the air permeable fabric 11; and
[0085] a dyed fabric cooling step (S50) of cooling the air permeable fabric 11 by the cooling roller 600.
[0086] In the dyeing step using the vacuum suction roller 400, the air permeable fabric 11 in close contact with the vacuum suction roller 400 may be heated by the second heating unit 500.
[0087] Although the embodiments according to the present invention have been described above, these are merely exemplary, and those of ordinary skill in the art will understand that various modifications and equivalent ranges of embodiments are possible therefrom. Accordingly, the true technical protection scope of the present invention should be defined by the following claims.
EXPLANATION OF CODE
[0088] 11 . . . air permeable fabric [0089] 12 . . . printing film [0090] 13 . . . dye [0091] 100 . . . first unwinding roller [0092] 200 . . . second unwinding roller [0093] 300 . . . first heating unit [0094] 310 . . . heating means [0095] 400 . . . vacuum suction roller [0096] 500 . . . second heating unit [0097] 600 . . . cooling roller [0098] 700 . . . first recovery roller [0099] 800 . . . second recovery roller