Claims
- 1. A coated abrasive article with a reduced tendency to accumulate static electric charge during the abrading of an electrically insulating workpiece, said coated abrasive article having:
- (a) a backing having a front surface and a back surface; and
- (b) an abrasive layer bonded to said front surface of the backing, said abrasive layer comprising abrasive grain and a layer(s) selected from the group consisting of a make layer and a size layer; a make layer, a size layer, and a supersize layer; a slurry layer; and a slurry layer and a supersize layer, wherein each of said make layer, said size layer, said slurry layer, and said supersize layer have a top surface, said improvement comprising at least one of
- (i) a pattern coating of a cured electrically conductive ink printed onto at least one of said back surface of said backing, said front surface of said backing, said top surface of said make layer, said top surface of said size layer, said top surface of said slurry layer, and said top surface of said supersize layer;
- (ii) a continuous coating of electrically conductive ink printed onto said back surface of said backing; and
- (iii) a continues coating of electrically conductive ink printed onto said front surface of said backing,
- wherein areas of said pattern are non-continuous if said pattern is applied to said back surface of said backing or said front surface of said backing, otherwise said areas of said pattern are non-connected, said cured electrically conductive inks comprising a sufficient amount of electrically conductive material to reduce accumulation of static electric charge during said abrading of an electrically insulating workpiece, with the proviso that said amount of electrically conductive material in any single continuous coating of electrically conductive ink is less than 5 g/m.sup.2.
- 2. The coated abrasive article according to claim 1 wherein said continuous coating is printed onto at least one of said front and back surface of said backing.
- 3. The coated abrasive article according to claim 1 wherein said pattern coating is printed onto at least one of said front and back surface of said backing.
- 4. The coated abrasive article according to claim 1 wherein said abrasive layer includes said slurry layer.
- 5. The coated abrasive article according to claim 4 wherein said pattern coating is printed onto said exposed top surface of said slurry layer.
- 6. The coated abrasive according to claim 1 wherein said abrasive layer includes said make layer and said size layer.
- 7. The coated abrasive according to claim 6 wherein said pattern coating is printed onto said top surface of said make layer.
- 8. The coated abrasive according to claim 6 wherein said pattern coating is printed onto said top surface of said size layer.
- 9. The coated abrasive according to claim 1 wherein said abrasive layer includes said supersize layer.
- 10. The coated abrasive article according to claim 9 wherein said pattern coating is printed onto said top surface of said supersize layer.
- 11. The coated abrasive article according to claim 1 wherein each of said pattern coatings of cured electrically conductive ink comprise less than 5 g/m.sup.2 of said electrically conductive material.
- 12. The coated abrasive article according to claim 1 wherein each of said pattern coatings of cured electrically conductive ink comprise less than 3 g/m.sup.2 of said electrically conductive material.
- 13. The coated abrasive article according to claim 1, wherein said coating of said cured electrically conductive ink has a surface resistivity of less than 5000 kilo-ohms/square.
- 14. The coated abrasive article according to claim 1, wherein said coating of said cured electrically conductive ink has a surface resistivity of less than 2000 kilo-ohms/square.
- 15. The coated abrasive article according to claim 1 wherein said electrically conductive material is selected from the group consisting of graphite, carbon black, metals, metal alloys, and mixtures thereof.
- 16. The coated abrasive article of claim 1 wherein said pattern coating is a repeating pattern which includes unprinted areas and printed areas.
- 17. The coated abrasive article of claim 1 wherein said pattern coating is a non-repeating pattern which includes unprinted areas and printed areas.
- 18. The coated abrasive article according to claim 1 wherein said cured electrically conductive ink comprises a cured polymeric medium selected from the group consisting of dried linseed oil, cured alkyd resins, cured phenolic resins, cured acrylate resins, dried glue, cured melamine formaldehyde resins, cured urea formaldehyde resins, cured epoxy resins, cured urethane resins, and mixtures thereof.
- 19. The coated abrasive article according to claim 1 wherein said backing is selected from the group consisting of paper, polymeric film, fiber, nonwoven fibrous material, cloth, treated versions thereof, and combinations thereof.
- 20. The coated abrasive article according to claim 1 wherein said abrasive grains are selected from the group consisting of fused aluminum oxide, ceramic aluminum oxide, cofused alumina-zirconia, silicon carbide, diamond, cubic boron nitride, garnet, heat-treated aluminum oxide, and mixtures thereof.
- 21. The coated abrasive article according to claim 1 having a continuous coating of said cured electrically conductive ink printed on said back surface of said backing and contrasting indicia printed over said continuous coating.
- 22. The coated abrasive article according to claim 1, said cured electrically conductive ink further comprising cured curable medium, wherein said electrically conductive material and said cured curable medium have a weight ratio of electrically conductive material to cured curable medium of greater than 1 to 10.
- 23. The coated abrasive article according to claim 1, said cured electrically conductive ink further comprising cured curable medium, wherein said electrically conductive material and said cured curable medium have a weight ratio of electrically conductive material to cured curable medium of greater than 1 to 1.
- 24. The coated abrasive article according to claim 1, said cured electrically conductive ink further comprising cured curable medium, wherein said electrically conductive material and said cured curable medium have a weight ratio of electrically conductive material to cured curable medium of greater than 4 to 1.
- 25. A method of making a coated abrasive with a reduced tendency to accumulate static electric charge during the abrading of an electrically insulating workpiece, said method having the steps of
- (a) selecting a backing having a front surface and a back surface; and
- (b) applying an abrasive layer to said front surface of said backing, said abrasive layer comprising abrasive grain and a layer(s) selected from the group consisting of a make layer and a size layer; a make layer, a size layer, and a supersize layer; a slurry layer; and a slurry layer and a supersize layer, wherein each of said make layer, said size layer, said slurry layer, and said supersize layer have a top surface, said improvement comprising
- (c) applying at least one of
- (i) a pattern of a coatable electrically conductive ink to at least one of said back surface of said backing, said front surface of said backing, said top surface of said make layer, said top surface of said size layer, said top surface of said slurry layer, and said top surface of said supersize layer;
- (ii) a continuous coating of said coatable electrically conductive ink to said back surface of said backing; and
- (iii) a continuous coating of said coatable electrically conductive ink to said front surface of said backing,
- wherein areas of said pattern are non-continuous if said pattern is applied to said back surface of said backing or said front surface of said backing, otherwise said areas of said pattern are non-connected, and wherein said coatable electrically conductive ink comprises a sufficient amount of electrically conductive material to provide upon curing a coated abrasive article having a reduced tendency to accommodate static electric charge during the abrading of an electrically insulating workpiece; and
- (d) curing said electrically conductive inks to provide a coated abrasive having a reduced tendency to accumulate static electric charge during the abrading of an electrically insulating workpiece, with the proviso that said amount of electrically conductive material in any single continuous coating of electrically conductive ink is less than 5 g/m.sup.2.
- 26. The method of claim 25 wherein said continuous coating is applied to at least one of said front and back surface of said backing.
- 27. The method of claim 25 wherein said pattern coating is applied to at least one of said front and back surface of said backing.
- 28. The method of claim 25 wherein said abrasive layer includes said slurry layer.
- 29. The method of claim 28 wherein said pattern coating is applied to said top surface of said slurry layer.
- 30. The method of claim 25 wherein said abrasive layer includes said make layer and said size layer.
- 31. The method of claim 30 wherein said pattern coating is applied to said top surface of said make layer.
- 32. The method of claim 30 wherein said pattern coating is applied to said top surface of said size layer.
- 33. The method of claim 25 wherein said abrasive layer includes said supersize layer.
- 34. The method of claim 33 wherein said pattern coating is applied onto said top surface of said supersize layer.
- 35. The method according to claim 25 wherein each of said printed pattern coatings of said cured electrically conductive ink comprise less than 5 g/m.sup.2 of said electrically conductive material.
- 36. The method according to claim 25 wherein each of said printed pattern coatings of said cured electrically conductive ink comprise less than 3 g/m.sup.2 of said electrically conductive material.
- 37. The method according to claim 25 wherein said cured electrically conductive ink has a surface resistivity of less than 5000 kilo-ohms/square.
- 38. The method according to claim 25 wherein said cured electrically conductive ink has a surface resistivity of less than 2000 kilo-ohms/square.
- 39. The method according to claim 25 wherein said electrically conductive material is selected from the group consisting of graphite, carbon black, metals, metal alloys, and mixtures thereof.
- 40. The method of claim 25 wherein said pattern coating is a repeating pattern which includes unprinted areas and printed areas.
- 41. The method of claim 25 wherein said pattern coating is a non-repeating pattern which includes unprinted and printed areas.
- 42. The method according to claim 25 wherein said continuous coating of said curable electrically conductive ink is applied to said back surface in step (c), and including the further step of
- (e) printing contrasting indicia over said continuous coating.
- 43. The method according to claim 25 wherein said coatable, curable electrically conductive ink further comprises curable medium having solids, wherein said electrically conductive material and coatable, curable medium have a weight ratio of electrically conductive material to said coatable, curable medium solids of greater than 1 to 10.
- 44. The method according to claim 25 wherein said coatable, curable electrically conductive ink comprises curable medium having solids, wherein said electrically conductive material and coatable, curable medium have a weight ratio of electrically conductive material to said coatable, curable medium solids of greater than 1 to 1.
- 45. The method according to claim 25 wherein said coatable, curable electrically conductive ink further comprises curable medium having solids, wherein said electrically conductive material and coatable, curable medium have a weight ratio of electrically conductive material to said coatable, curable medium solids of greater than 4 to 1.
Parent Case Info
This is a continuation-in-part of application Ser. No. 07/564,715, filed Aug. 8, 1990.
US Referenced Citations (19)
Foreign Referenced Citations (5)
Number |
Date |
Country |
54-152197 |
Nov 1979 |
JPX |
58-171264 |
Oct 1983 |
JPX |
61-152373 |
Jul 1986 |
JPX |
885192 |
Dec 1961 |
GBX |
2018811 |
Oct 1979 |
GBX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
564715 |
Aug 1990 |
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