Claims
- 1. A method of making a rotogravure printing medium which includes a member coated with a film that is selectively removable to produce ink-retaining cells, wherein the method comprises:
- depositing on the surface of the member a series of adjacent strip or bead portions of a self-levelling, irreversibly curable plastic composition which is engraveable after curing to produce ink-retaining cells, the adjacent strip or bead portions merging and self-levelling at and after deposition to produce a uniform, continuous coating of the plastic composition.
- 2. A method as in claim 1, wherein
- the printing medium is a roll,
- the member is a cylinder, and
- the adjacent strip or bead portions are portions of a continuous helical strip or bead of the plastic composition which is deposited on the surface of the cylinder.
- 3. A method as in claim 2, wherein:
- a dimension of the cross-section the plastic composition strip or bead as it is deposited on the cylinder, such dimension being taken parallel to the cylinder, is substantially equal to or greater than the center-to-center distance between adjacent portions of the strip or bead as they are deposited on the cylinder.
- 4. A method as in claim 2, wherein:
- depositing the plastic composition is effected by
- rotating the cylinder, and simultaneously
- flowing the plastic composition onto the cylinder from a site which travels across the cylinder parallel to its main axis.
- 5. A method as in claim 4, wherein:
- the cross-section of the plastic composition strip or bead as it is deposited on the rotating cylinder comprises a generally circular portion, which is trailing relative to the direction of travel of the site, and a contiguous lobate, wave-like portion, which is leading relative to the direction of travel of the site.
- 6. A method as in claim 5, wherein:
- a dimension of the cross-section which is parallel to the cylinder is substantially equal to or greater than the center-to-center distance between adjacent portions of the strip or bead as they are deposited on the cylinder.
- 7. A method as in claim 2, wherein:
- the continuous plastic composition coating has a thickness of about 0.003" to about 0.150".
- 8. A method as in claim 2, wherein:
- depositing the plastic composition includes
- flowing the plastic composition onto the surface of the cylinder from an orifice, and simultaneously
- effecting relative movement between the orifice and the cylinder.
- 9. A method as in claim 8, wherein:
- the orifice is elipisoidal with its major axis lying generally perpendicular to the major axis of the cylinder.
- 10. A method as in claim 9, wherein:
- the relative movement includes a first component which lies generally along the extent of the strip or bead, and
- the major axis of the orifice lies generally along the first component.
- 11. A method as in claim 10, wherein:
- the relative movement includes a second component which is generally transverse to the extent of the strip or bead, and
- the minor axis of the orifice lies generally along the second component.
- 12. A method as in claim 11, wherein:
- the plane of the orifice is tipped so that a first point thereon located at one terminus of the minor axis is trailing relative to the second component and engages the surface of the cylinder, and so that a second point thereon located at the other terminus of the minor axis is leading relative to the second component and is spaced from the surface of the cylinder.
- 13. A method as in claim 12, wherein:
- the first component is due to rotation of the cylinder, and
- the second component is due to movement of the orifice along the surface of the cylinder generally parallel to the main axis thereof.
- 14. A method as in claim 9, wherein:
- the relative movement includes a first component, produced by rotation of the cylinder, which lies generally along the extent of the strip or bead and transverse to the main axis of the cylinder, and a second component, produced by movement of the orifice across the surface of the cylinder generally parallel to the main axis thereof, which is generally transverse to the strip or bead.
- 15. A method as in claim 14, wherein:
- the major axis of the orifice lies generally along the first component, and
- the minor axis of the orifice lies generally along the second component.
- 16. A method as in claim 14, wherein:
- the cylinder is rotated at about 30 to about 90 rpm.
- 17. A method as in claim 16, wherein:
- the movement rate of the orifice is from about 0.008" per revolution of the cylinder to about 0.048" per revolution of the cylinder.
- 18. A method as in claim 9, wherein:
- the orifice is at the terminus of a right circular cylindrical bore and intersects the main axis of the bore at an angle of from about 75.degree. to about 83.degree..
- 19. A method as in claim 8, wherein:
- at least a portion of the orifice is in constant contact with the surface during relative orifice-member movement.
- 20. A method as in claim 19, wherein:
- the surface-contacting portion of the orifice is a point on periphery thereof.
- 21. A method as in claim 20, wherein:
- the plane of the orifice is tipped so that the contacting point trails non-contacting points on the orifice periphery as the orifice moves relatively to the surface.
- 22. A method as in claim 21, wherein:
- the orifice is ellipsoidal.
- 23. A method as in claim 22, wherein:
- the contacting point is on the minor axis of the orifice.
- 24. A method as in claim 1, wherein:
- depositing the plastic composition includes
- flowing the plastic composition onto the surface of the member from an orifice, and simultaneously
- effecting relative movement between the orifice and the member.
- 25. A method as in claim 24, wherein:
- the orifice is elipisoidal with its major axis lying generally parallel to the strip or bead portions.
- 26. A method as in claim 25, wherein:
- the relative movement includes a first component which lies generally along the extent of the strip or bead, and
- the major axis of the orifice lies generally along the first component.
- 27. A method as in claim 26, wherein:
- the relative movement includes a second component which is generally transverse to the extent of the strip or bead, and
- the minor axis of the orifice lies generally along the second component.
- 28. A method as in claim 27, wherein:
- the plane of the orifice is tipped so that a first point thereon located at one terminus of the minor axis, which first point is trailing relative to the second component, engages the surface of the member and a second point thereon located at the other terminus of the minor axis, which second point is leading relative to the second component, is spaced from the surface of the member.
- 29. A method as in claim 28, wherein:
- the cross-section of the plastic composition strip or bead as it flows onto the member comprises a generally circular portion, which is trailing relative to the second component, and a continuous, lobate, wave-like portion, which is leading relative to the second component.
- 30. A method as in claim 29, wherein:
- the plastic composition strip or bead as it is deposited on the member has a cross-section with a dimension lying along the second component which is equal to or greater than the center-to-center distance between adjacent portions of the strip or bead as they are deposited on the member.
- 31. A method as in claim 26, wherein:
- the relative movement includes a component which is generally transverse to the extent of the strip or bead, and
- the minor axis of the orifice lies generally along the second component.
- 32. A method as in claim 26, wherein:
- the relative movement includes a component which lies generally along the extent of the strip or bead,
- the major axis of the orifice lies generally along the component, and
- the minor axis of the orifice lies generally transverse to the component.
- 33. A method as in claim 32, wherein:
- the plane of the orifice is tipped so that a first point thereon located at one terminus of the minor axis is trailing relative to the component and engages the surface of the cylinder, and so that a second point thereon located at the other terminus of the minor axis is leading relative to the component and is spaced from the surface of the cylinder.
- 34. A method as in claim 33, wherein:
- the cross-section of the strip or bead as it flows onto the cylinder comprises a generally circular portion, which is trailing relative to the component, and a continuous lobate, wave-like portion, which is leading relative to the component.
- 35. A method as in claim 26, wherein:
- the minor axis of the orifice is about 0.010" to about 0.055".
- 36. A method as in claim 35, wherein:
- the minor axis of the orifice is about 0.030".
- 37. A method as in claim 26, wherein:
- the major axis of the orifice is about 4 to about 8 times greater than the minor axis.
- 38. A method as in claim 37, wherein:
- the minor axis of the orifice is about 0.010" to about 0.055".
- 39. A method as in claim 26, wherein:
- the plastic composition has a viscosity of about 800 cP to about 5000 cP when deposited on the surface.
- 40. A method as in claim 26, wherein:
- the plastic composition flows from the orifice at a pressure of from about 8 psi to about 60 psi.
- 41. A method of making a rotogravure printing medium which includes a member coated with a film that is selectively removable to produce ink-retaining cells, wherein the method comprises:
- depositing on the surface of the member a series of adjacent strip or bead portions of a self-levelling, irreversibly curable plastic composition having a viscosity of about 800 cP to about 5,000 cP which is engraveable or etchable after curing to produce ink-retaining cells, the adjacent strip or bead portions merging and self-levelling at and after deposition to produce a uniform, continuous coating of the plastic composition.
- 42. A method of making a rotogravure printing roll which includes a cylinder coated with a film that is engravable or otherwise selectively removable to produce ink-retaining cells, comprising:
- flowing onto the surface of the cylinder from an orifice, said orifice being ellipsoidal and having a major axis lying generally perpendicular to major axis of the cylinder and wherein the plane of said elliptical orifice is generally tangent to said cylinder, a series of adjacent strip or bead portions of a self-leveling, curable plastic composition which is engravable or etchable after curing, the adjacent strip or bead portions merging and self-leveling at and after deposition to produce a uniform, continuous coating of the plastic composition.
- 43. A method of coating a surface of a member with a curable, self levelling plastic composition through an orifice in a tube, the orifice being located at a tube end, the method comprising:
- depositing on the surface of the member a series of adjacent strip portions of said plastic composition such that the adjacent strip portions merge and self-level, said depositing including depositing said plastic through said orifice; and
- displacing at least one of the surface and orifice relative to each other during the depositing with the tube end having said orifice spaced sufficiently close to the surface so that the tube end with the orifice facing the surface engages that strip portion then being deposited, said depositing and displacing producing a uniform, continuous coating of the plastic composition.
- 44. The method of claim 43 wherein the the plastic is engraveable and etchable for forming a rotogravure printing medium.
- 45. A method of making a roll rotogravure printing medium which includes a cylindrical member coated with a film that is selectively removable to produce ink-retaining cells, wherein the method comprises:
- depositing on the surface of the member a series of adjacent strip or bead portions of a self-levelling, curable plastic composition which is engraveable after curing to produce ink-retaining cells, the adjacent strip or bead portions merging and self-levelling at and after deposition to produce a uniform, continuous coating of the plastic composition;
- the adjacent strip or bead portions comprising portions of a continuous helical strip or bead of the plastic composition which is deposited on the surface of the member;
- the depositing of the plastic composition being effected by rotating the member and simultaneously flowing the plastic composition onto the cylinder from a site which travels across the member parallel to its main axis; and
- the cross-section of the plastic composition strip or bead as it is deposited on the rotating cylinder comprises a generally circular portion, which is trailing relative to the direction of travel of the site, and a contiguous lobate, wave-like portion, which is leading relative to the direction of travel of the site.
- 46. A method of making a roll rotogravure printing medium which includes a cylindrical member having a surface coated with a film that is selectively removable to produce ink-retaining cells, wherein the method comprises:
- depositing on the surface of the member a series of adjacent strip or bead portions of a self-levelling, curable plastic composition which is engraveable after curing to produce ink-retaining cells, the adjacent strip or bead portions merging and self-levelling at and after deposition to produce a uniform, continuous coating of the plastic composition;
- the adjacent strip or bead portions comprising portions of a continuous helical strip or bead of the plastic composition which is deposited on the surface of the member;
- said depositing the plastic composition including flowing the plastic composition onto the surface of the cylindrical member from an orifice and simultaneously effecting relative movement between the orifice and the member;
- said orifice being ellipsoidal with its major axis lying generally perpendicular to the major axis of the cylindrical member;
- the relative movement including a first component which lies generally along the extent of the strip or bead; and
- the major axis of the orifice lies generally along the first component.
- 47. A method of making a rotogravure printing medium which includes a member having a surface coated with a film that is selectively removable to produce ink-retaining cells, wherein the method comprises:
- depositing on the surface of the member a series of adjacent strip or bead portions of a self-levelling, curable plastic composition which is engraveable after curing to produce ink-retaining cells, the adjacent strip or bead portions merging and self-levelling at and after deposition to produce a uniform, continuous coating of the plastic composition;
- said depositing the plastic composition including flowing the plastic composition onto the surface of the member from an orifice and simultaneously effecting relative movement between the orifice and the member;
- said orifice being ellipsoidal with its major axis lying generally parallel to the strip or bead portions;
- said relative movement including a first component which lies generally along the extent of the strip or bead; and
- the major axis of the orifice lies generally along the first component.
- 48. A method of making a roll rotogravure printing medium which includes a cylindrical member coated with a film that is selectively removable to produce ink-retaining cells, wherein the method comprises:
- depositing on the surface of the member a series of adjacent strip or bead portions of a self-levelling, curable plastic composition which is engravable after curing to produce ink-retaining cells, the adjacent strip or bead portions merging and self-levelling at and after deposition to produce a uniform, continuous coating of the plastic composition;
- the adjacent strip or bead portions comprising portions of a continuous helical strip or bead of the plastic composition which is deposited on the surface of the cylinder;
- said depositing the plastic composition including flowing the plastic composition onto the surface of the cylinder through an orifice in a tube end and simultaneously effecting relative movement between the orifice and the cylinder;
- at least a portion of the tube end with the orifice facing the surface being in constant contact with the surface during relative orifice-member movement.
Parent Case Info
The present invention is related to commonly assigned U.S. patent application Ser. No. 514,595, filed Apr. 26, 1990, now abandoned, and to commonly assigned, U.S. patent application Ser. No. 691,693, filed Apr. 26, 1991, now abandoned, both of which are incorporated by reference hereinto.
US Referenced Citations (3)
Number |
Name |
Date |
Kind |
3971115 |
Schneider et al. |
Jul 1976 |
|
4384011 |
Aoyama et al. |
May 1983 |
|
5112656 |
Nakamura |
May 1992 |
|