Claims
- 1. A thermally convertible lithographic printing precursor developable using an aqueous medium, said precursor comprising:
a) a hydrophilic lithographic base; b) a radiation sensitive coating on a surface of said base, said coating comprising:
i) uncoalesced particles of a hydrophobic thermoplastic polymer; ii) a non-crosslinkable aqueous-soluble composition, said composition being present in said coating in a concentration sufficient to allow the removal of said coating by said aqueous medium in areas thereof that are not exposed to said radiation; and iii) a converter substance capable of converting radiation into heat.
- 2. A precursor according to claim 1, wherein said hydrophilic lithographic base is one of a metalized plastic sheet, a treated aluminum plate, a sleeveless printing press cylinder, a printing press cylinder sleeve and a flexible support having thereon a cross-linked hydrophilic layer.
- 3. A precursor according to claim 2, wherein said sleeveless printing press cylinder and said printing press cylinder sleeve are seamless.
- 4. A precursor according to claim 1 wherein the surface of said lithographic base is anodized aluminum.
- 5. A precursor according to claim 1, wherein said hydrophobic thermoplastic polymer is a member of at least one of the following groups of polymers: polystyrene, polymers of substituted polystyrene, polyethylene, poly(meth)acrylates, polyvinylchloride, polyurethanes, polyesters, polyacrylonitrile, and copolymers thereof.
- 6. A t precursor according to claim 1 wherein the amount of said hydrophobic thermoplastic polymer in said coating is in the range of 20-95% by weight of said coating.
- 7. A precursor according to claim 1 wherein said aqueous-soluble composition is an inorganic salt selected from the group consisting of sodium acetate, potassium carbonate, lithium acetate, sodium metasilicate, sodium phosphate and sodium carbonate.
- 8. A precursor according to claim 1 wherein said aqueous-soluble composition is an inorganic salt and the concentration of said inorganic salt is in the range of 2-50% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 9. A precursor according to claim 1 wherein said aqueous-soluble composition is an inorganic salt and the concentration of said inorganic salt is in the range of 10-40% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 10. A precursor according to claim 1 wherein said aqueous-soluble composition is an organic base and the concentration of said organic base is in the range of 50-500% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 11. A precursor according to claim 1 wherein said aqueous-soluble composition is an organic base and the concentration of said organic base is in the range of 80-200% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 12. A precursor according to claim 1 wherein said aqueous-soluble 15 composition is an organic acid selected from the group consisting of malonic acid, D,L lactic acid and citric acid.
- 13. A precursor according to claim 1 wherein said aqueous-soluble composition is an organic acid and the concentration of said organic acid is in the range of 0.1-100% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 14. A precursor according to claim 1 wherein said aqueous-soluble composition is an organic acid and the concentration of said organic acid is in the range of 10-80% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 15. A precursor according to claim 1 wherein said aqueous-soluble composition is an organic acid and the concentration of said organic acid is in the range of 20-50% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 16. A precursor according to claim 1 wherein said aqueous-soluble composition is a metal complex selected from the group consisting of zinc acetate, copper(II) phthalocyaninetetrasulphonic acid, tetra sodium salt, aluminium acetylacetonate, copper acetylacetonate, cobalt acetylacetonate and zinc acetylacetonate.
- 17. A precursor according to claim 1 wherein said aqueous-soluble composition is a metal complex and the concentration of said metal complex is in the range of 0.1-100% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 18. A precursor according to claim 1 wherein said aqueous-soluble composition is a metal complex and the concentration of said metal complex is in the range of 10-80% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 19. A precursor according to claim 1 wherein said aqueous-soluble composition is a metal complex and the concentration of said metal complex is in the range of 20-50% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 20. A precursor according to claim 1, wherein said converter substance is at least one of carbon black, a pigment and a dye.
- 21. A precursor according to claim 1, wherein said converter substance is an infrared absorbing dye.
- 22. A precursor according to claim 1 wherein the amount of said converter substance in said coating is in the range of 0.25-10% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 23. A precursor according to claim 1 wherein the amount of said converter substance in said coating is in the range of 0.5-6% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 24. A precursor according to claim 1, wherein said radiation is light.
- 25. A precursor according to claim 24, wherein said light is infra-red.
- 26. A precursor according to claim 1 wherein said aqueous medium is fountain solution having a pH of 8 or less.
- 27. A precursor according to claim 1 wherein said aqueous-soluble composition is non-polymeric.
- 28. A thermally-convertible lithographic printing precursor developable using an aqueous medium, said thermally-convertible lithographic printing precursor comprising:
a) a hydrophilic lithographic base; and b) a radiation-sensitive coating on a surface of said hydrophilic lithographic base, wherein said coating comprises two or more layers, said coating comprising:
i. uncoalesced particles of a hydrophobic thermoplastic polymer; ii. a non-crosslinkable aqueous-soluble composition, said composition being present in said coating in a concentration sufficient to allow the removal of said coating by said aqueous medium in areas thereof that are not exposed to said radiation; and iii. a converter substance capable of converting radiation into heat, each of said layers comprising one or more of said components (i), (ii) or (iii).
- 29. A precursor according to claim 28 wherein one of said layers comprises said converter substance and a second of said layers comprises said hydrophobic thermoplastic polymer and said aqueous-soluble composition.
- 30. A precursor as in claim 29, wherein said converter substance is present in the same layer as said uncoalesced particles of hydrophobic thermoplastic polymer.
- 31. A composition for forming a coating of thermally-imageable medium on a hydrophilic lithographic base, comprising:
a) uncoalesced particles of a hydrophobic thermoplastic polymer; b) a non-crosslinkable aqueous-soluble composition; and c) a converter substance capable of converting light into heat.
- 32. A method for making a lithographic printing surface, said method comprising the steps of:
a) imagewise irradiating a thermally-convertible lithographic printing precursor with radiation, said thermally-convertible lithographic printing precursor comprising on a hydrophilic lithographic base a coating of thermally-imageable medium comprising:
i) uncoalesced particles of a hydrophobic thermoplastic polymer; ii) a non-crosslinkable aqueous-soluble composition, said composition being present in said coating in a concentration sufficient to allow the removal of said coating by an aqueous medium in areas thereof that are not exposed to said radiation; and iii) a converter substance capable of converting radiation into heat; and b) removing with said aqueous medium the parts of said thermally-imageable medium that were not irradiated in said imagewise irradiating step.
- 33. A method as in claim 32, wherein said hydrophilic lithographic base is one of a metallized plastic sheet, a treated aluminum plate, a sleeveless printing press cylinder and a printing press cylinder sleeve and a flexible support having thereon a cross-linked hydrophilic layer.
- 34. A method as in claim 32, wherein said radiation is infrared.
- 35. A method according to claim 32, wherein said aqueous-soluble composition is an inorganic salt selected from the group consisting of sodium acetate, potassium carbonate, lithium acetate, sodium metasilicate, sodium phosphate and sodium carbonate.
- 36. A method according to claim 32, wherein said aqueous-soluble composition is an inorganic salt and the concentration of said inorganic salt is in the range of 2-50% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 37. A method according to claim 32, wherein said aqueous-soluble composition is an inorganic salt and the concentration of said inorganic salt is in the range of 10-40% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 38. A method according to claim 32, wherein said aqueous-soluble composition is an organic base and the concentration of said organic base is in the range of 50-500% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 39. A method according to claim 32, wherein said aqueous-soluble composition is an organic base and the concentration of said organic base is in the range of 80-200% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 40. A method according to claim 32, wherein said aqueous-soluble composition is an organic acid selected from the group consisting of malonic acid, D, L lactic acid and citric acid.
- 41. A method according to claim 32, wherein said aqueous-soluble composition is an organic acid and the concentration of said organic acid is in the range of 0.1-100% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 42. A method according to claim 32, wherein said aqueous-soluble composition is an organic acid and the concentration of said organic acid is in the range of 10-80% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 43. A method according to claim 32, wherein said aqueous-soluble composition is an organic acid and the concentration of said organic acid is in the range of 10-50% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 44. A method according to claim 32, wherein said aqueous-soluble composition is a metal complex selected from the group consisting of zinc acetate, copper (II) phthalocyaninetetrasulphonic acid, tetra sodium salt, aluminium acetylacetonate, copper acetylacetonate, cobalt acetylacetonate and zinc acetylacetonate.
- 45. A method according to claim 32, wherein said aqueous-soluble composition is a metal complex and the concentration of said metal complex is in the range of 0.1-100% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 46. A method according to claim 32, wherein said aqueous-soluble composition is a metal complex and the concentration of said metal complex is in the range of 10-80% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 47. A method according to claim 32, wherein said aqueous-soluble composition is a metal complex and the concentration of said metal complex is in the range of 20-50% weight relative to the weight of said hydrophobic thermoplastic polymer.
- 48. A method according to claim 32, wherein step (a) is performed while said thermally-convertible lithographic printing precursor is mounted on a printing press.
- 49. A method according to claim 32 wherein step (b) is performed while said thermally-convertible lithographic printing precursor is mounted on a printing press.
- 50. A method according to claim 32 further comprising, after step (b), the step of heating said precursor.
- 51. A method for making a lithographic printing surface, said method comprising the steps of:
a) coating onto a hydrophilic lithographic base a coating of thermally-imageable medium comprising:
i) uncoalesced particles of a hydrophobic thermoplastic polymer; ii) a non-crosslinkable aqueous-soluble composition, said composition being present in said coating in a concentration sufficient to allow the removal of said coating by an aqueous medium in areas thereof that are not exposed to said radiation; and iii) a converter substance capable of converting radiation into heat; b) imagewise irradiating said coating of thermally-imageable medium with radiation; and c) removing with said aqueous medium the parts of said layer of thermally-imageable medium that were not irradiated in said imagewise irradiating step.
- 52. A method according to claim 51 further comprising the step, after step (a), of curing said coating of thermally-imageable medium.
- 53. A method according to claim 51 wherein said method is performed while said base is mounted on a printing press.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of our prior application Ser. No. 09/745,548, filed Dec. 26, 2000; Ser. No. 09/745,520, filed Dec. 26, 2000; Ser. No. 09/785,339, filed Feb. 20, 2001; Ser. No. 09/785,338, filed Feb. 20, 2001; Ser. No. 09/909,791, filed Jul. 23, 2001; Ser. No. 09/909,792, filed Jul. 23, 2001; Ser. No. 09/909,777, filed Jul. 23, 2001; and Ser. No. 09/909,964, filed Jul. 23, 2001.
Continuation in Parts (8)
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Dec 2000 |
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10347836 |
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10347836 |
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09785339 |
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10347836 |
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09785338 |
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10347836 |
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09909791 |
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10347836 |
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09909792 |
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10347836 |
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