Claims
- 1. A method for forming a coating on a pre-sheared, electroconductive, flat blank having two major surfaces and sheared edges, said method comprising the following steps:
(1) conveying the blank to an electrodeposition bath located on a coating line; (2) applying an aqueous electrodepositable coating composition to both major surfaces and the sheared edges of the blank as the blank passes through the electrodeposition bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces and the sheared edges of the blank as a substantially continuous coating as electric current is passed between the electrodes; (3) conveying the coated blank of step (2) from the electrodeposition bath to a drying station located on the coating line; and (4) drying the electrodeposited coating as it passes through the drying station.
- 2. The method of claim 1, further comprising conveying the coated blank of step (4) to a coating station located on the coating line; applying a second non-electrophoretic coating composition to at least one major surface of the blank as it passes through the coating station to form a continuous coating thereon; conveying the coated blank from the coating station to a second drying station located on the coating line; and drying the coating as it passes through the second drying station.
- 3. The method of claim 2, wherein the coating station comprises a powder coating booth and the non-electrophoretic coating composition is a powder coating composition.
- 4. The method of claim 2, wherein the coating station is a spray booth and the second non-electrophoretic coating composition is a liquid coating composition.
- 5. The method of claim 2, wherein the coating station is a roll-coating station and the non-electrophoretic coating composition is a liquid coating composition.
- 6. The method of claim 1, wherein the electrodepositable coating composition is capable of being deposited on a cathode.
- 7. The method of claim 1, wherein the electrodepositable coating composition is capable of being deposited on an anode.
- 8. The method of claim 1, wherein the electrodeposited coating is a post-formable coating capable of providing a T-bend rating ranging from 0T to 6T.
- 9. The method of claim 1, wherein the blank is contacted with a pretreatment composition prior to step (1).
- 10. The method of claim 9, wherein the pretreatment composition comprises a zinc phosphate coating composition.
- 11. A method for forming a multi-layer composite coating on a pre-sheared, electroconductive, flat blank having two major surfaces and sheared edges, said process comprising the following steps:
(1) conveying the blank to a first electrodeposition bath located on a coating line; (2) applying a first aqueous electrodepositable coating composition to both major surfaces and the sheared edges of the blank as it passes through the electrodeposition, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces and the sheared edges of the blank as a substantially continuous electroconductive coating as electric current is passed between the electrodes; (3) optionally, conveying the coated blank of step (2) from the first electrodeposition bath to a first drying station located on the coating line; and drying the electroconductive coating as it passes through the first drying station; (4) conveying the coated blank of step (2) or, optionally, step (3), to a second electrodeposition bath located on the coating line; (5) applying a second electrodepositable coating composition to the coated blank as it passes through the second electrodeposition bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the second aqueous electrodepositable coating composition, the composition being deposited onto one of the major surfaces of the coated blank as a substantially continuous electrically insulating coating as electric current is passed between the electrodes; (6) conveying the coated blank of step (5) to a drying station located on the coating line; and (7) drying the electrically insulating coating as the blank of step (6) passes through the drying station.
- 12. The method of claim 11, wherein the electroconductive coating is a corrosion-resistant coating.
- 13. The method of claim 11, wherein the first electrodepositable coating composition comprises:
(a) an electrodepositable ionic resin, and (b) one or more electrically conductive pigments.
- 14. The method of claim 13, wherein the electrodepositable ionic resin is electrodepositable on a cathode.
- 15. The method of claim 14, wherein the electrodepositable resin comprises cationic onium salt groups.
- 16. The method of claim 14, wherein the electrodepositable resin comprises cationic amine salt groups.
- 17. The method of claim 13, wherein the electrodepositable ionic resin is electrodepositable on an anode.
- 18. The method of claim 17, wherein the electrodepositable ionic resin comprises anionic acid salt groups.
- 19. The method of claim 13, wherein the electrically pigment comprises one or more particulate materials selected from the group consisting of black iron oxide, graphite, conductive carbon black, molybdenum disulphide, polyaniline, conductive silica, antimony-doped titanium dioxide, nickel-doped titanium dioxide and mixtures thereof.
- 20. The method of claim 13, wherein the electrically conductive pigment comprises conductive carbon black.
- 21. The method of claim 13, wherein the electrically conductive pigment is present in the first aqueous electrodepositable coating composition in an amount sufficient to provide an electrically conductive coating having a specific resistance of less than or equal to 1010 Ohms centimeter.
- 22. The method of claim 11, wherein the specific resistance of the electrically conductive coating ranges from 103 to 108 Ohms centimeter.
- 23. The method of claim 11, wherein the second electrodepositable coating composition comprises:
(a) an active hydrogen group-containing ionic resin, and (b) a curing agent having functional groups reactive with the active hydrogen groups of the ionic resin (a).
- 24. The method of claim 23, wherein the ionic resin (a) comprises cationic onium salt groups.
- 25. The method of claim 23, wherein the ionic resin (a) comprises cationic amine salt groups.
- 26. The method of claim 24, wherein the ionic resin (a) comprises an acrylic polymer having cationic onium salt groups.
- 27. The method of claim 11, wherein the multi-layer composite coating comprises a post-formable multi-layer composite coating capable of providing a T-bend rating of less than 6T.
- 28. A pre-sheared, flat electroconductive blank having two major surfaces and coated with a multi-layer composite coating composition on one major surface, the multi-layer composite coating composition comprising:
(a) a corrosion-resistant, electrically conductive first coating electrodeposited over both major surfaces of the blank from a first aqueous electrodepositable coating composition comprising:
(i) an electrodepositable ionic resin; and (ii) one or more electrically conductive pigments; and (b) an appearance enhancing, electrically insulating top coating which has been electrodeposited over the electrically conductive first coating on one major surface of the blank from an aqueous electrodepositable top coating composition.
- 29. The coated blank of claim 28, wherein the electrodepositable ionic resin (i) is electrodepositable on a cathode.
- 30. The coated blank of claim 28, wherein the electrodepositable ionic resin (i) is electrodepositable on an anode.
- 31. The coated blank of claim 28, wherein the electrically conductive pigment (ii) comprises one or more particulate materials selected from the group consisting of black iron oxide, graphite, conductive carbon black, molybdenum disulphide, polyaniline, conductive silica, antimony-doped titanium dioxide, nickel-doped titanium dioxide and mixtures thereof.
- 32. The coated blank of claim 28, wherein the electrically conductive pigment (ii) comprises conductive carbon black.
- 33. The coated blank of claim 28, wherein the electrically conductive pigment (ii) is present in the first aqueous electrodepositable coating composition in an amount sufficient to provide an electrically conductive coating having a specific resistance of less than or equal to 1010 ohms centimeter.
- 34. The coated blank of claim 28, wherein the specific resistance of the electrically conductive coating ranges from 103 to 108 Ohms centimeter.
- 35. The coated bland of claim 28, wherein the second electrodepositable coating composition comprises:
(a) an active hydrogen group-containing ionic resin, and (b) a curing agent having functional groups reactive with the active hydrogen groups of the ionic resin (a).
- 36. The coated blank of claim 35, wherein the ionic resin (a) comprises cationic onium salt groups.
- 37. The coated blank of claim 35, wherein the ionic resin (a) comprises cationic amine salt groups.
- 38. The coated blank of claim 36, wherein the ionic resin (a) comprises an acrylic polymer having cationic onium salt groups.
- 39. The coated blank of claim 28, wherein multi-layer composite coating comprises a post-formable multi-composite coating capable of providing a T-bend rating ranging from 0T to 6T.
- 40. A method for forming and coating metal blanks comprising the following steps:
(1) supplying a continuous metal strip from a coil through an entrance of a shear located prior to an entrance end of an electrodeposition bath located on a coating line; (2) shearing the metal strip to form a flat blank having two major surfaces and sheared edges as the metal strip passes through the shear; (3) conveying the blank formed in step (2) to the electrodeposition bath; (4) applying an electrodepositable coating composition to the blank as it passes through the bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces and the sheared edges of the blank as a substantially continuous coating as electric current is passed between the electrodes; (5) conveying the coated blank of step (4) to a drying station located on the coating line; and (6) drying the coated blank as it passes through the drying station.
- 41. The method of claim 40, wherein the metal strip is contacted with a pretreatment composition prior to step (1).
- 42. The method of claim 41, wherein the pretreatment composition comprises a zinc phosphate composition.
- 43. The method of claim 40, wherein the blank of step (2) is contacted with a pretreatment composition prior to step (3).
- 44. The method of claim 43, wherein the pretreatment composition comprises a zinc phosphate composition.
- 45. The method of claim 40, wherein the electrodepositable coating composition comprises:
(a) an active hydrogen group-containing electrodepositable ionic resin, and (b) a curing agent having functional groups reactive with the active hydrogens of the ionic resin.
- 46. The method of claim 45, wherein the electrodepositable ionic resin (a) is electrodepositable on a cathode.
- 47. The method of claim 46, wherein the ionic resin (a) comprises cationic onium salt groups.
- 48. The method of claim 46, wherein the ionic resin (a) comprises cationic amine salt groups.
- 49. The method of claim 45, wherein the electrodepositable ionic resin (a) is electrodepositable on an anode.
- 50. The method of claim 49, wherein the electrodepositable ionic resin comprises anionic acid salt groups.
- 51. The method of claim 40, wherein the electrodeposited coating is a post-formable coating capable of providing a T-bend rating of less than 6T.
- 52. The method of claim 40, further comprising: conveying the coated blank of step (6) to a coating station located on the coating line; applying a second, non-electrophoretic coating composition to at least one major surface of the blank as it passes through the coating station to form a continuous coating thereon; conveying the coated blank from the coating station to a second drying station located on the coating line; and drying the coating as it passes through the second drying station.
- 53. The method of claim 52, wherein the coating station comprises a powder coating booth and the non-electrophoretic coating composition is a powder coating composition.
- 54. The method of claim 52, wherein the coating station is a spray booth and the second non-electrophoretic coating composition is a liquid coating composition.
- 55. The method of claim 52, wherein the coating station is a roll-coating station and the non-electrophoretic coating composition is a liquid coating composition.
- 56. A method for forming and coating metal blanks comprising the following steps:
(1) supplying a continuous metal strip from a coil through an entrance of a shear located prior to an entrance end of a first electrodeposition bath located on a coating line; (2) shearing the metal strip to form a flat blank having two major surfaces and sheared edges as the metal strip passes through the shear; (3) conveying the blank formed in step (2) to the first electrodeposition bath; (4) applying a first aqueous electrodepositable coating composition to both major surfaces and the sheared edges of the blank as it passes through the first electrodeposition bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the first aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces and the sheared edges of the blank as a substantially continuous electrically conductive coating as electric current is passed between the electrodes; (5) optionally, conveying the coated blank of step (4) to a first drying station located in the coating line, and drying the coated blank as it passes through the drying station; (6) conveying the coated blank of step (4) or, optionally, step (5) to a second electrodeposition bath located on the coating line; (7) applying a second electrodepositable coating composition to the coated blank as it passes through the second electrodeposition bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the second aqueous electrodepositable coating composition, the composition being deposited onto one of the major surfaces of the coated blank as a substantially continuous electrically insulating coating as electric current is passed between the electrodes; (8) conveying the coated blank of step (7) to a drying station located on the coating line; and (9) drying the electrically insulating coating as the blank passes through the drying station.
- 57. The method of claim 56, wherein the metal strip is contacted with a pretreatment composition prior to step (1).
- 58. The method of claim 57, wherein the pretreatment composition comprises a zinc phosphate composition.
- 59. The method of claim 56, wherein the blank of step (2) is contacted with a pretreatment composition prior to step (3).
- 60. The method of claim 59, wherein the pretreatment composition comprises a zinc phosphate composition.
- 61. The method of claim 56, wherein the first electrodepositable coating composition comprises:
(a) an electrodepositable ionic resin, and (b) one or more electrically conductive pigments.
- 62. The method of claim 61, wherein the electrodepositable ionic resin (a) is electrodepositable on a cathode.
- 63. The method of claim 62, wherein the ionic resin (a) comprises cationic onium salt groups.
- 64. The method of claim 62, wherein the ionic resin (a) comprises cationic amine salt groups.
- 65. The method of claim 61, wherein the electrodepositable ionic resin is electrodepositable on an anode.
- 66. The method of claim 65, wherein the electrodepositable ionic resin comprises anionic acid salt groups.
- 67. The method of claim 61, wherein the electrically pigment comprises one or more particulate materials selected from the group consisting of black iron oxide, graphite, conductive carbon black, molybdenum disulphide, polyaniline, conductive silica, antimony-doped titanium dioxide, nickel-doped titanium dioxide and mixtures thereof.
- 68. The method of claim 67, wherein the electrically conductive pigment comprises conductive carbon black.
- 69. The method of claim 61, wherein the electrically conductive pigment is present in the first aqueous electrodepositable coating composition in an amount sufficient to provide an electrically conductive coating having a specific resistance of less than or equal to 1010 Ohms centimeter.
- 70. The method of claim 56, wherein the specific resistance of the electrically conductive coating ranges from 103 to 108 Ohms centimeter.
- 71. The method of claim 56, wherein the second electrodepositable coating composition comprises:
(a) an active hydrogen group-containing ionic resin, and (b) a curing agent having functional groups reactive with the active hydrogen groups of the ionic resin (a).
- 72. The method of claim 71, wherein the ionic resin (a) comprises cationic onium salt groups.
- 73. The method of claim 71, wherein the ionic resin (a) comprises cationic amine salt groups.
- 74. The method of claim 73, wherein the ionic resin (a) comprises an acrylic polymer having cationic onium salt groups.
- 75. The method of claim 56, wherein the multi-layer composite coating comprises a post-formable, multi-layer composite coating capable of providing a T-bend rating of less than 6T.
- 76. A method for coating a continuous metal strip and thereafter forming a coated blank therefrom comprising the following steps:
(1) supplying a continuous metal strip having two major surfaces to the entrance of an electrodeposition bath located on a coating line; (2) applying an electrodepositable coating composition to both major surfaces of the metal strip as it passes through the bath, the metal strip serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces of the metal strip as a substantially continuous coating as electric current is passed between the electrodes; (3) conveying the metal strip from step (2) to a drying station located on the coating line; (4) drying the electrodeposited coating as the metal strip passes through the drying station; (5) optionally, conveying the coated metal strip from step (4) to a recoiling station and recoiling the coated metal strip; (6) conveying the coated metal strip from step (4) or, optionally, the recoiled coated metal strip of step (5) to an entrance of a shear located at an exit end of the drying station; and (7) shearing the coated metal strip to form a flat coated blank as the strip passes through the shear.
- 77. The method of claim 76, wherein the metal strip is contacted with a pretreatment composition prior to step (1).
- 78. The method of claim 77, wherein the pretreatment composition comprises a zinc phosphate composition.
- 79. The method of claim 76, wherein the electrodepositable coating composition comprises:
(a) an active hydrogen group-containing electrodepositable ionic resin, and (b) a curing agent have functional groups reactive with the active hydrogen groups of the ionic resin (a).
- 80. The method of claim 79, wherein the electrodepositable ionic resin (a) is electrodepositable on a cathode.
- 81. The method of claim 80, wherein the ionic resin (a) comprises cationic onium salt groups.
- 82. The method of claim 80, wherein the ionic resin (a) comprises cationic amine salt groups.
- 83. The method of claim 79, wherein the electrodepositable ionic resin is electrodepositable on an anode.
- 84. The method of claim 83, wherein the electrodepositable ionic resin comprises anionic acid salt groups.
- 85. The method of claim 76, wherein the electrodeposited coating comprises a post-formable coating capable of providing a T-bend rating of less than 6T.
- 86. A method for forming a coating on a continuous metal strip and thereafter forming a multi-layer composite coating on a blank formed therefrom, the method comprising the following steps:
(1) supplying a continuous metal strip having two major surfaces to an entrance of an electrodeposition bath located on a coating line; (2) applying a first electrodepositable coating composition to both major surfaces of the metal strip as it passes through the bath, the metal strip serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the first aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces of the metal strip as a substantially continuous electrically conductive coating as electric current is passed between the electrodes; (3) optionally, conveying the metal strip from step (2) to a first drying station located on the coating line, and drying the electrically conductive coating as the metal strip passes through the first drying station; (4) optionally, conveying the coated metal strip of step (3) to a recoiling station located off the coating line, and recoiling the coated metal strip; (5) transferring the coated metal strip from step (2), or, optionally, step (3) or step (4) to an entrance of a shear located at an exit end of the drying station; (6) shearing the coated metal strip to form a flat coated blank as the metal strip passes through the shear; (7) conveying the coated blank from step (6) to a second electrodeposition bath located in the coating line; (8) applying a second electrodepositable coating composition to one of the major surfaces of the coated blank as it passes through the second electrodeposition bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the second aqueous electrodepositable coating composition, the composition being deposited onto one major surface of the coated blank as a substantially continuous electrically insulating coating as electric current is passed between the electrodes; (9) conveying the coated blank of step (8) to a drying station located on the coating line; and (10) drying the electrically insulating coating as the blank of step (9) passes through the drying station.
- 87. The method of claim 86, wherein the metal strip is contacted with a pretreatment composition prior to step (1).
- 88. The method of claim 87, wherein the pretreatment composition comprises a zinc phosphate composition.
- 89. The method of claim 86, wherein the first electrodepositable coating composition comprises:
(a) an electrodepositable ionic resin, and (b) one or more electrically conductive pigments.
- 90. The method of claim 89, wherein the electrodepositable ionic resin (a) is electrodepositable on a cathode.
- 91. The method of claim 90, wherein the ionic resin (a) comprises cationic onium salt groups.
- 92. The method of claim 90, wherein the ionic resin (a) comprises cationic amine salt groups.
- 93. The method of claim 89, wherein the electrodepositable ionic resin is electrodepositable on an anode.
- 94. The method of claim 93, wherein the electrodepositable ionic resin comprises anionic acid salt groups.
- 95. The method of claim 89, wherein the electrically pigment comprises one or more particulate materials selected from the group consisting of black iron oxide, graphite, conductive carbon black, molybdenum disulphide, polyaniline, conductive silica, antimony-doped titanium dioxide, nickel-doped titanium dioxide and mixtures thereof.
- 96. The method of claim 95, wherein the electrically conductive pigment comprises conductive carbon black.
- 97. The method of claim 89, wherein the electrically conductive pigment is present in the first aqueous electrodepositable coating composition in an amount sufficient to provide an electrically conductive coating having a specific resistance of less than or equal to 1010 Ohms centimeter.
- 98. The method of claim 86, wherein the specific resistance of the electrically conductive coating ranges from 103 to 108 Ohms centimeter.
- 99. The method of claim 86, wherein the second electrodepositable coating composition comprises:
(a) an active hydrogen group-containing ionic resin, and (b) a curing agent having functional groups reactive with the active hydrogen groups of the ionic resin (a).
- 100. The method of claim 99, wherein the ionic resin (a) comprises cationic onium salt groups.
- 101. The method of claim 99, wherein the ionic resin (a) comprises cationic amine salt groups.
- 102. The method of claim 99, wherein the ionic resin (a) comprises an acrylic polymer having cationic onium salt groups.
- 103. The method of claim 86, wherein the multi-layer composite coating comprises a post-formable multi-layer composite coating capable of providing a T-bend rating of less than 6T.
- 104. A method for forming a multi-layer composite coating on a continuous metal strip and thereafter forming a coated blank therefrom comprising the following steps:
(1) supplying a continuous metal strip having two major surfaces to an entrance of an electrodeposition bath located on a coating line; (2) applying a first electrodepositable coating composition to both major surfaces of the metal strip as it passes through the bath, the metal strip serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the first aqueous electrodepositable coating composition, the composition being deposited onto both major surfaces of the metal strip as a substantially continuous electrically conductive coating as electric current is passed between the electrodes; (3) optionally, conveying the metal strip from step (2) to a first drying station located on the coating line, and drying the electrically conductive coating as the metal strip passes through the first drying station; (4) optionally, conveying the coated metal strip of step (3) to a recoiling station located off the coating line, and recoiling the coated metal strip; (5) conveying the coated metal strip from step (3) or, optionally step (4) to a second electrodeposition bath located on the coating line; (6) applying a second electrodepositable coating composition to one of the major surfaces of the coated metal strip as it passes through the second electrodeposition bath, the metal strip serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the second aqueous electrodepositable coating composition, the composition being deposited onto one of the major surfaces of the coated metal strip as a substantially continuous electrically insulating coating as electric current is passed between the electrodes; (7) conveying the coated metal strip of step (6) to a drying station located on the coating line; (8) drying the electrically insulating coating as the coated metal strip of step (7) passes through the drying station; (9) optionally, transferring the coated metal strip of step (8) to a recoiling station located off the coating line, and recoiling the coated metal strip; (10) transferring the coated metal strip from step (8), or, optionally, step (9) to an entrance of a shear located at an exit end of the drying station; and (11) shearing the coated metal strip to form a coated blank as the metal strip passes through the shear.
- 105. The method of claim 104, wherein the metal strip is contacted with a pretreatment composition prior to step (1).
- 106. The method of claim 105, wherein the pretreatment composition comprises a zinc phosphate composition.
- 107. The method of claim 104, wherein the first electrodepositable coating composition comprises:
(a) an electrodepositable ionic resin, and (b) one or more electrically conductive pigments.
- 108. The method of claim 107, wherein the electrodepositable ionic resin is electrodepositable on a cathode.
- 109. The method of claim 108, wherein the ionic resin (a) comprises cationic onium salt groups.
- 110. The method of claim 108, wherein the ionic resin (a) comprises cationic amine salt groups.
- 111. The method of claim 107, wherein the electrodepositable ionic resin is electrodepositable on an anode.
- 112. The method of claim 111, wherein the electrodepositable ionic resin comprises anionic acid salt groups.
- 113. The method of claim 107, wherein the electrically pigment comprises one or more particulate materials selected from the group consisting of black iron oxide, graphite, conductive carbon black, molybdenum disulphide, polyaniline, conductive silica, antimony-doped titanium dioxide, nickel-doped titanium dioxide and mixtures thereof.
- 114. The method of claim 113, wherein the electrically conductive pigment comprises conductive carbon black.
- 115. The method of claim 107, wherein the electrically conductive pigment is present in the first aqueous electrodepositable coating composition in an amount sufficient to provide an electrically conductive coating having a specific resistance of less than or equal to 1010 Ohms centimeter.
- 116. The method of claim 104, wherein the specific resistance of the electrically conductive coating ranges from 103 to 108 Ohms centimeter.
- 117. The method of claim 104, wherein the second electrodepositable coating composition comprises:
(a) an active hydrogen group-containing ionic resin, and (b) a curing agent having functional groups reactive with the active hydrogen groups of the ionic resin (a).
- 118. The method of claim 117, wherein the ionic resin (a) comprises cationic onium salt groups.
- 119. The method of claim 117, wherein the ionic resin (a) comprises cationic amine salt groups.
- 120. The method of claim 118, wherein the ionic resin (a) comprises an acrylic polymer having cationic onium salt groups.
- 121. The method of claim 104, wherein the multi-layer composite coating comprises a post-formable multi-layer composite coating capable of providing a T-bend rating of less than 6T.
- 122. A method for forming a coating on a pre-sheared, electroconductive, flat blank having two major surfaces and sheared edges, said method comprising the following steps:
(1) conveying the blank to an electrodeposition bath located on a coating line; (2) applying an aqueous electrodepositable coating composition to one major surface and the sheared edges of the blank as the blank passes through the electrodeposition bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto one major surface and the sheared edges of the blank as a substantially continuous coating as electric current is passed between the electrodes; (3) conveying the coated blank of step (2) from the electrodeposition bath to a drying station located on the coating line; and (4) drying the electrodeposited coating as it passes through the drying station.
- 123. A method for forming and coating metal blanks comprising the following steps:
(1) supplying a continuous metal strip from a coil through an entrance of a shear located prior to an entrance end of an electrodeposition bath located on a coating line; (2) shearing the metal strip to form a flat blank having two major surfaces and sheared edges as the metal strip passes through the shear; (3) conveying the blank formed in step (2) to the electrodeposition bath; (4) applying an electrodepositable coating composition to the blank as it passes through the bath, the blank serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto one major surface and the sheared edges of the blank as a substantially continuous coating as electric current is passed between the electrodes; (5) conveying the coated blank of step (4) to a drying station located on the coating line; and (6) drying the coated blank as it passes through the drying station.
- 124. A method for coating a continuous metal strip comprising the following steps:
(1) supplying a continuous metal strip having two major surfaces to the entrance of an electrodeposition bath located on a coating line; (2) applying an electrodepositable coating composition to one major surface of the metal strip as it passes through the bath, the metal strip serving as an electrode in an electrical circuit comprising the electrode and a counter-electrode immersed in the aqueous electrodepositable coating composition, the composition being deposited onto one major surface of the metal strip as a substantially continuous coating as electric current is passed between the electrodes; (3) conveying the metal strip from step (2) to a drying station located on the coating line; (4) drying the electrodeposited coating as the metal strip passes through the drying station; and (5) optionally, conveying the coated metal strip from step (4) to a recoiling station and recoiling the coated metal strip.
- 125. The method of claim 124, further comprising the steps of conveying the coated metal strip from step (4) or, optionally, the recoiled coated metal strip of step (5), to an entrance of a shear located at an exit end of the drying station, and shearing the coated metal strip to form a flat coated blank as the strip passes through the shear.
Parent Case Info
[0001] This application is related to U.S. patent application Ser. No. 09/______, entitled “Apparatus and Methods for Continuously Electrocoating Metal Blanks and/or Coiled Metal Substrates” of Donald Emmonds et al., and filed concurrently herewith, which related application is herein incorporated by reference in its entirety.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09798627 |
Mar 2001 |
US |
Child |
10460143 |
Jun 2003 |
US |