Claims
- 1. A multicolor printing apparatus including a printing apparatus comprising:
a plurality of blanket cylinders normally-contacting to a impression cylinder; plate cylinders normally-contacting to the respective blanket cylinders; and ink coating apparatus for coating the respective plate cylinders with ink, wherein said ink coating apparatus are arranged substantially in a direction of gravity, a feeding apparatus for feeding sheets of recording mediums to said printing apparatus and a discharging apparatus for discharging sheets of recording mediums are provided on a side opposite to a setting side of said ink coating apparatus with respect to said blanket cylinders.
- 2. The multicolor printing apparatus according to claim 1, wherein the number of the impression cylinder is the plural number.
- 3. The multicolor printing apparatus according to claim 1, wherein said feeding apparatus for feeding sheets of recording mediums is positioned at a lower side than the discharging apparatus such that said sheets of recording mediums flow from a lower side to an upper side.
- 4. The multicolor printing apparatus according to claim 1, wherein each of said ink coating apparatus comprises a coating roller with an elastic surface, and a doctor blade, structured to move back and forth freely to the outer peripheral surface of said coating roller, for controlling the thickness of coated ink film formed on said outer peripheral surface.
- 5. The multicolor printing apparatus according to claim 2, wherein said impression cylinders are double-diametered impression cylinders, and the transfer of the recording mediums between said double-diametered impression cylinders is carried out by a triple-diametered transfer cylinder.
- 6. The multicolor printing apparatus according to claim 2, wherein said impression cylinders are triple-diametered impression cylinders, and the transfer of the recording mediums between said triple-diametered impression cylinders is carried out by a double-diametered transfer cylinder.
- 7. The multicolor printing apparatus according to claim 1, further comprising means for drying coloring agent on said sheets of recording mediums after discharging printed sheets of recording mediums between the final blanket cylinder and the final impression cylinder.
- 8. The multicolor printing apparatus according to claim 1, further comprising a discharge station on which the printed sheets of recording mediums are stacked after the printed sheets of recording mediums are discharged between said final blanket cylinder and said final impression cylinder, said discharge station is configured to be horizontally rotatable, thereby said stacked printed sheets of recording mediums can be rotatable in a 180° arc with respect to the direction of a normal line.
- 9. The multicolor printing apparatus according to claim 8, further comprising discharge station moving means for moving said discharge station to the feeding position of said recording mediums of said feeding means after said stacked printed sheets of recording mediums are rotated in a 180° arc with respect to the direction of the normal line of said recording mediums.
- 10. The multicolor printing apparatus according to claim 1, wherein said plate cylinders will have waterless plates to be wound therearound.
- 11. A duplex printing method, in a printing apparatus comprises a plurality of blanket cylinders normally-contacting to an impression cylinder, plate cylinders normally-contacting to the respective blanket cylinders, and ink coating apparatus, arranged in a substantially gravity direction, for coating the respective plate cylinders with ink, said duplex printing method comprising the steps of:
feeding recording mediums to said blanket cylinders of said printing apparatus from a recording medium feeding position on a side opposite to a side where said ink coating apparatus are arranged; passing said sheets of recording mediums between said blanket cylinders and said impression cylinders so as to transfer an ink image onto a first surface of said recording mediums; stacking said recording mediums discharged from said opposite side on a discharge station; rotating said discharge station in a 180° arc with respect to the direction of a normal line of said recording mediums so as to feed said stacked recording mediums to said recording medium feeding position; and passing said recording mediums again between said blanket cylinders and said impression cylinder so as to transfer an ink image onto a second surface of said recording mediums.
- 12. A coating apparatus comprising:
a coating roller with an elastic surface; and a doctor blade, configured to move back and forth freely to the outer peripheral surface of said coating roller, for controlling the thickness of coated film formed on said outer peripheral surface; wherein said coating apparatus is provided at least one flattening member for flattening a surface of said coated film on said coating roller.
- 13. The coating apparatus according to claim 12, wherein a plurality of flattening members for flattening said surface of the coated film is provided.
- 14. The coating apparatus according to claim 12, wherein at least one flattening member for flattening said surface of the coated film is a blade.
- 15. The coating apparatus according to claim 12, wherein at least one flattening member for flattening said surface of the coated film is a roller, and its peripheral speed is lower than said coating roller or its rotational direction is the same as said coating roller.
- 16. The coating apparatus according to claim 12, wherein at least one flattening member for flattening said surface of the coated film is positioned at an upstream side of said doctor blade with respect to the direction where said coating roller progresses.
- 17. The coating apparatus according to claim 12, wherein at least one flattening member for flattening said surface of the coated film is positioned at a downstream side of said doctor blade with respect to the direction where said coating roller progresses on a coating surface.
- 18. The coating apparatus according to claim 12, wherein at least one flattening member for flattening said surface of the coated film is a blade, front edges of leading sides of said doctor blade and said blade as the flattening member, are formed to be curved, and the radius of curvature of said doctor blade is the same as that of said flattening blade or larger than that of said flattening blade.
- 19. The coating apparatus according to claim 12, further comprising:
an auxiliary coating roller provided at each of the upstream and downstream sides of said coating roller to the direction where the surface to be coated by said coating roller progresses; and ink distributing rollers, provided between said coating roller and said auxiliary coating rollers, contacting said coating roller and said auxiliary coating roller simultaneously and oscillating in the axial direction.
- 20. A printing apparatus characterized in that said printing apparatus comprises:
a coating apparatus according to claim 12; and plate cylinders around which printing plates for receiving ink supply from said coating apparatus are wound.
- 21. A coating apparatus comprising:
a coating roller with an elastic surface; and a doctor blade, configured to move back and forth freely to an outer peripheral surface of said coating roller, for controlling the thickness of coated film formed on said outer peripheral surface; wherein said coating apparatus is provided at least one auxiliary coating roller provided at each of the upstream and downstream sides of said coating roller to the direction where the surface to be coated by the coating roller progresses; and ink distributing rollers, provided between said coating roller and said auxiliary coating rollers, contacting said coating roller and said auxiliary coating rollers simultaneously and oscillating in the axial direction.
- 22. A coating apparatus comprising:
a coating roller with an elastic surface; and a doctor blade, configured to move back and forth freely to an outer peripheral surface of said coating roller, for controlling the thickness of coated film formed on said outer peripheral surface; wherein said coating apparatus is provided at least one auxiliary coating roller provided at each of the upstream and downstream sides of said coating roller to the direction where the surface to be coated by said coating roller progresses; ink distributing rollers, provided between said coating roller and said auxiliary coating rollers, contacting said coating roller and said auxiliary coating rollers simultaneously and oscillating in the axial direction; and at least one flattening member for flattening the surface of said coated film on said coating roller.
- 23. A coating apparatus comprising:
a coating roller with an elastic surface; and a doctor blade, configured to move back and forth freely to the outer peripheral surface of said coating roller, for controlling the thickness of coated film formed on said outer peripheral surface, wherein said coating roller is formed of a non-elastic rotation shaft and an elastic member having a multilayer structure in which at least an uppermost surface layer wrapping said rotation shaft is formed of polyurethane, and hardness of each elastic layer of said elastic member of said coating roller becomes higher than an inner layer as approaching to the surface layer.
- 24. The coating apparatus according to claim 23,
wherein surface hardness of said coating roller surface layer is more than 40° of rubber hardness based on JISA.
- 25. A printing system comprising:
an imaging apparatus for generating a change in an imaging characteristic according to imaging data on said imaging medium by irradiation of an energy beam so as to execute imaging; and a printing apparatus for supplying ink to said imaging medium so as to execute printing on recording mediums, wherein a positioning method of said imaging medium in said printing apparatus is substantially the same as that of said imaging medium in said imaging apparatus.
- 26. The printing system according to claim 25,
wherein a fixing method of the imaging medium to said printing apparatus is substantially the same as that of the imaging medium to said imaging apparatus.
- 27. The printing system according to claim 26,
wherein both said imaging apparatus and said printing apparatus are configured such that the imaging medium is wound around plate cylinders, and the plate cylinders of said imaging apparatus and that of said printing apparatus have substantially the same configuration.
- 28. The printing system according to claim 25,
wherein the positioning method of the imaging medium in said imaging apparatus is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said imaging apparatus.
- 29. The printing system according to claim 25,
wherein the positioning method of the imaging medium in said imaging apparatus and that of the imaging medium in said printing apparatus are carried out by abutting an abutting portion processed to a predetermined shape in the imaging medium against an abutment receiving portion of said imaging apparatus or said printing apparatus.
- 30. The printing system according to claim 25,
wherein the positioning method of the imaging medium in said imaging apparatus is carried out based on a detection result of said positioning holes provided in said imaging medium detected by positioning hole detecting means provided in said imaging apparatus.
- 31. The printing system according to claim 28,
wherein the positioning method of the imaging medium in said printing apparatus is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said printing apparatus.
- 32. The printing system according to claim 28,
wherein the positioning method of the imaging medium in said printing apparatus is carried out based on a detection result of said positioning holes provided in said imaging medium detected by positioning hole detecting means provided in said printing apparatus.
- 33. The printing system according to claim 25,
wherein the positioning method of the imaging medium in said imaging apparatus is carried out based on a detection result of position of a register mark, formed on said imaging medium prior to imaging, detected by register mark position detecting means provided in said imaging apparatus.
- 34. The printing system according to claim 25,
wherein the positioning method of the imaging medium in said printing apparatus is carried out based on a detection result of a position of a register mark, formed on said imaging medium prior to printing, detected by register mark position detecting means provided in said printing apparatus.
- 35. The printing system according to claim 25,
wherein a positioning method of an image on the imaging medium in said imaging apparatus is carried out based on a detection result of a position of a register mark formed on an imaging medium attaching member of said imaging apparatus detected by register mark position detecting means provided in said imaging apparatus.
- 36. The printing system according to claim 25,
wherein the positioning method of a printing position in said printing apparatus is carried out based on a detection result of a position of a register mark formed on an imaging medium attaching member of said printing apparatus detected by register mark position detecting means formed in said printing apparatus.
- 37. A printing method comprising the steps of:
positioning an imaging medium at an imaging apparatus; generating a change in an imaging characteristic according to imaging data on said imaging medium by irradiation of an energy beam so as to execute imaging; positioning said imaging medium at a printing apparatus by substantially the same positioning method as said imaging apparatus; and feeding ink to said imaging medium so as to execute printing on a recording medium.
- 38. A printing method comprising the steps of:
positioning an imaging mediums at an imaging apparatus; positioning said imaging medium, on which a change in an imaging characteristic according to imaging data is generated by irradiation of an energy beam, at a printing apparatus by substantially the same positioning method as said imaging apparatus; and feeding ink to said imaging medium so as to execute printing on a recording medium.
- 39. An imaging apparatus for generating a change in an imaging characteristic according to imaging data on an imaging medium by irradiation of an energy beam so as to execute imaging,
wherein said imaging medium is positioned by substantially the same method as a printing apparatus for feeding ink onto said imaging medium imaged by said imaging apparatus so as to execute printing on a recording medium.
- 40. The imaging apparatus according to claim 39,
wherein said imaging medium is wound around plate cylinder as rotating the plate cylinder in a first rotation direction, imaging is executed in this state, and said imaging medium is detached from the plate cylinder as rotating said plate cylinder in a second rotation direction opposite to said first rotation direction.
- 41. A printing apparatus, which uses an imaging apparatus for generating a change in an imaging characteristic according to imaging data on an imaging medium by irradiation of an energy beam so as to execute imaging, for printing on a recording medium by feeding ink onto said imaging medium imaged by said imaging apparatus,
wherein said imaging medium is positioned by substantially the same method as said imaging apparatus.
- 42. An imaging method for executing imaging using an imaging apparatus for generating a change in an imaging characteristic according to imaging data on an imaging medium by irradiation of an energy beam so as to execute imaging,
wherein said imaging medium is positioned at said imaging apparatus by substantially the same method as a printing apparatus for printing on a recording medium by feeding ink onto said imaging medium imaged by said imaging apparatus.
- 43. An imaging apparatus, which comprises a feeding apparatus for feeding an imaging medium to said imaging apparatus and a discharging apparatus for discharging the medium from said imaging apparatus on the same side,
wherein said imaging medium fed from said feeding apparatus is wound around plate cylinder as rotating the plate cylinder in a first rotation direction, imaging is executed in this state, said imaging medium is detached from the plate cylinder as rotating said plate cylinder in a second rotation direction opposite to said first rotation direction so as to discharge said imaging medium by said discharging apparatus.
- 44. An imaging apparatus, in which a positioning method of an imaging medium is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said imaging apparatus,
wherein for use of a resin film as a base material of said imaging medium, when the engagement state between the positioning holes provided in said imaging medium and the positioning pins provided in said imaging apparatus is set such that an opening diameter of each of said positioning holes is larger than an outer diameter of each of said positioning pins, the diameter difference is set to be smaller than the dot pitch, and when the engagement state is set such that the opening diameter of each of said positioning holes is smaller than the outer diameter of each of said positioning pins, the diameter difference is set to be within a range where said positioning holes are not broken by the engagement.
- 45. A printing apparatus, in which a positioning method of an imaging medium is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said printing apparatus,
wherein for use of a resin film as a base material of said imaging medium, when the engagement state between the positioning holes provided in said imaging medium and the positioning pins provided in said imaging apparatus is set such that an opening diameter of each of said positioning holes is larger than an outer diameter of each of said positioning pins, the diameter difference is set to be smaller than the dot pitch, and when the engagement state is set such that the opening diameter of each of said positioning holes is smaller than the outer diameter of each of said positioning pins, the diameter difference is set to be within a range where said positioning holes are not broken by the engagement.
- 46. An imaging apparatus, in which a positioning method of an imaging medium is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said imaging apparatus,
wherein for use of metal as a base material of said imaging medium, when the engagement state between the positioning holes provided on said imaging medium and the positioning pins provided in said imaging apparatus is set such that an opening diameter of each of said positioning holes is larger than an outer diameter of each of said positioning pins and the diameter difference is smaller than the dot pitch.
- 47. A printing apparatus, in which a positioning method of an imaging medium is carried out by engaging positioning holes provided on said imaging medium with positioning pins provided in said printing apparatus,
wherein for use of metal as a base material of said imaging medium, when the engagement state between the positioning holes provided in said imaging medium and the positioning pins provided in said imaging apparatus is set such that an opening diameter of each of said positioning holes is larger than an outer diameter of each of said positioning pins and the diameter difference is smaller than the dot pitch.
- 48. The printing system according to claim 25, in which a positioning method of an imaging medium in said imaging apparatus is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said imaging apparatus,
wherein for use of a resin film as a base material of said imaging medium, when the engagement state between the positioning holes provided in said imaging medium and positioning pins provided in said imaging apparatus is set such that an opening diameter of each of said positioning holes is larger than an outer diameter of each of said positioning pins, the diameter difference is set to be smaller than dot pitch, and when the engagement state is set such that the opening diameter of each of said positioning holes is smaller than the outer diameter of each of said positioning pins, the diameter difference is set to be within a range where said positioning holes are not broken by the engagement.
- 49. The printing system according to claim 25, in which a positioning method of an imaging medium in said imaging apparatus is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said imaging apparatus,
wherein for use of metal as a base material of said imaging medium, when the engagement state between the positioning holes provided on said imaging medium and positioning pins provided in said imaging apparatus is set such that an opening diameter of each of said positioning holes is larger than an outer diameter of each of said positioning pins and the diameter difference is smaller than the dot pitch.
- 50. The printing system according to claim 48 or 49, in which a positioning method of an imaging medium in said imaging apparatus is carried out by engaging positioning holes provided in said imaging medium with positioning pins provided in said imaging apparatus,
wherein at least one of the sizes, the arrangement, and the shapes of said positioning pins and said positioning holes is changed in each of the cases when the base material of said imaging medium is the resin film and when the base material of said imaging medium is metal.
- 51. An imaging medium imaged by an imaging apparatus for generating a change in an imaging characteristic according to imaging data on the imaging medium by irradiation of an energy beam so as to execute imaging,
wherein at least a side end portion on the opposite side surface to the imaging surface of the imaging medium, in which the imaging medium is started to be wound around an imaging medium attaching member of said imaging apparatus, is chamfered.
- 52. An imaging medium imaged by an imaging apparatus for generating a change in an imaging characteristic according to imaging data on the imaging medium by irradiation of an energy beam so as to execute imaging,
wherein said imaging medium is cut from an opposite side surface of an imaging surface when being cut to a predetermined size.
- 53. An imaging apparatus for generating a change in an imaging characteristic according to imaging data on the imaging medium by irradiation of an energy beam so as to execute imaging,
wherein at least the circumferential surface of an attaching member around which said imaging medium is wound is treated so that it is harder than the base material of said imaging medium.
- 54. An imaging apparatus for generating a change in an imaging characteristic according to imaging data on the imaging medium by irradiation of an energy beam so as to execute imaging, wherein said imaging apparatus comprising:
an attaching member for winding said imaging medium therearound; a motor for rotating said attaching member; and scanning means for scanning an irradiation apparatus of said energy beam in substantially the same direction as the direction of the rotation axis of said attaching member, wherein said scanning direction is inclined against the rotation axis of said attaching member substantially by a ratio of a scanning speed of said scanning means to a peripheral speed of the surface of the imaging medium wound around said attaching member when said irradiation apparatus is scanned in substantially the same direction as the direction of the rotation axis of said attaching member.
- 55. An imaging apparatus for generating a change in an imaging characteristic according to imaging data on the imaging medium by irradiation of an energy beam so as to execute imaging, wherein said imaging apparatus comprising:
an attaching member for winding said imaging medium therearound; a motor for rotating said attaching member; scanning means for scanning an irradiation apparatus of said energy beam in substantially the same direction as the direction of the rotation axis of said attaching member; and positioning means for positioning said imaging medium such that a reference direction of an imaging area is inclined against the rotation axis of said attaching member substantially by a ratio of a scanning speed of said scanning means to a peripheral speed of the surface of the imaging medium wound around said attaching member when said imaging medium is attached to said attaching member.
- 56. The imaging apparatus according to claim 55, wherein said scanning direction of said irradiation apparatus of the energy beam is inclined against the rotation axis of said attaching member substantially by a ratio of a scanning speed of said scanning means to a peripheral speed of the surface of the imaging medium wound around said attaching member.
- 57. An imaging method wherein when imaging is executed by attaching an imaging medium to an attaching member, rotating said attaching member, scanning an irradiation apparatus of energy beam in substantially the same direction as the direction of a rotation axis of said attaching member and generating a change in an imaging characteristic according to imaging data on said imaging mediums by irradiation of said energy beam, a reference direction of an imaging area is inclined against the rotation axis of said attaching member substantially by a ratio of a scanning speed of said irradiation apparatus to a peripheral speed of the surface of the imaging medium wound around said attaching member when said imaging medium is wound around said attaching member.
- 58. The imaging method, wherein when a irradiation apparatus of energy beam is scanned, a scanning direction of said energy beam is inclined against the rotation axis of an attaching member and about a beam irradiation direction of said irradiation apparatus as the rotation axis substantially by a ratio of a scanning speed of said irradiation apparatus to a peripheral speed of the surface of a imaging medium wound around said attaching member.
- 59. A printing system comprising:
an imaging apparatus for generating a change in an imaging characteristic according to imaging data on an imaging medium by irradiation of an energy beam so as to execute imaging; and a printing apparatus for printing on a recording medium by feeding ink onto said imaging medium imaged, wherein said imaging apparatus comprises an attaching member for imaging to wind said imaging medium therearound, a motor for rotating said attaching member for imaging, and scanning means for scanning an irradiation apparatus of said energy beam in substantially the same direction as the direction of the rotation axis of said attaching member, and said printing apparatus comprises an attaching member for printing to wind said imaging medium therearound after imaging, and a motor for rotating said attaching member for printing, said printing system wherein the direction where said imaging medium is wound around said each attaching member is different substantially by a ratio of a scanning speed of said scanning means of said irradiation apparatus of energy beam to a peripheral speed of the surface of the imaging medium wound around said attaching member in each of the cases when said imaging medium is wound around said attaching member for imaging and when said imaging medium after imaging is wound around said attaching member for printing.
- 60. The printing system according to claim 59, wherein the scanning direction of said irradiation apparatus of energy beam is inclined against the rotation axis of said attaching member and about a beam irradiation direction of said irradiation apparatus as the rotation axis substantially by a ratio of a scanning speed of said scanning means to a peripheral speed of the surface of said imaging medium wound around said attaching member.
- 61. The printing system according to claim 59,
wherein a positioning method of said imaging medium in said printing apparatus is substantially the same as that of said imaging medium in said imaging apparatus except for the difference in said winding direction.
- 62. The printing system according to claim 59,
wherein a attaching method of the imaging medium in said printing apparatus is substantially the same as that of the imaging medium in said imaging apparatus except for the difference in said winding direction.
- 63. The printing system according to claim 59,
wherein the attaching member of the imaging medium in said imaging apparatus and that of a printing plate in said printing apparatus have substantially the same configuration excepting the difference in said winding direction.
- 64. The imaging apparatus according to claim 55,
wherein the positioning method of the imaging medium in said imaging apparatus is carried out by engaging positioning holes provided in said imaging mediums with positioning pins provided in said imaging apparatus.
- 65. The imaging apparatus according to claim 55,
wherein the positioning method of the imaging medium in said imaging apparatus and that of the imaging medium in said printing apparatus are carried out by abutting an abutting portion of said imaging medium processed to a predetermined shape against an abutment receiving portion of said imaging apparatus.
- 66. The imaging apparatus according to claim 55,
wherein a positioning method of an image on the imaging medium in said imaging apparatus is carried out based on a detection result of said positioning holes provided on said imaging medium detected by positioning hole detecting means provided in said imaging apparatus.
- 67. The imaging apparatus according to claim 55,
wherein a positioning method of an image on the imaging medium in said imaging apparatus is carried out based on a detection result of a position of a register mark formed on said imaging medium attaching member of said imaging apparatus detected by register mark position detecting means provided in said imaging apparatus.
- 68. The imaging apparatus according to claim 55,
wherein a positioning method of an image on the imaging medium in said imaging apparatus is carried out based on a detection result of a position of a register mark, formed on said imaging medium prior to imaging, detected by register mark position detecting means provided in said imaging apparatus.
Priority Claims (4)
Number |
Date |
Country |
Kind |
9-069637 |
Mar 1997 |
JP |
|
9-109375 |
Apr 1997 |
JP |
|
9-130990 |
May 1997 |
JP |
|
9-191491 |
Jul 1997 |
JP |
|
Parent Case Info
[0001] This is a continuation-in-part application of PCT International Application No. PCT/JP98/01281 filed Mar. 24, 1998 designating the United States for the national phase.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09725246 |
Nov 2000 |
US |
Child |
10100072 |
Mar 2002 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09197489 |
Nov 1998 |
US |
Child |
09725246 |
Nov 2000 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
PCT/JP98/01281 |
Mar 1998 |
US |
Child |
09197489 |
Nov 1998 |
US |