Claims
- 1. A method of manufacturing a steel sheet coated with a Zn-Mg layer having one of a tri-layered or penta-layered structure comprising a first sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, an intermediate sublayer including a Zn-Mg alloy having a Mg concentration of about 7 wt. % or more and an outermost sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, wherein the sublayers are successively laminated on a substrate steel wherein a Zn-Fe or Zn-Fe-Mg alloy layer is formed at a boundary between the substrate steel and the Zn-Mg coating layer, said method comprising the steps of:
- vapor depositing primary Zn on a surface of a steel sheet; and
- successively vapor depositing Mg and Zn on said surface,
- wherein a ratio of said primary Zn deposition to said Mg deposition is controlled to a value of about 1.5 or more.
- 2. The manufacturing method according to claim 1, wherein the steel sheet is held at a temperature of about 180.degree. C. or higher during vapor deposition.
- 3. A method of manufacturing a steel sheet coated with a Zn-Mg Layer, having one of a tri-layered or penta-layered structure comprising a first sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, an intermediate sublayer including a Zn-Mg alloy having a Mg concentration of about 7 wt. % or more and an outermost sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, wherein the sublayers are successively laminated on a substrate steel wherein a Zn-Fe or Zn-Fe-Mg alloy layer is formed at a boundary between the substrate steel and the Zn-Mg coating layer, said method comprising the steps of:
- carrying a steel sheet having a surface activated by reductive heating through a reducing atmosphere, a chamber held in a N.sub.2 atmosphere, a duct held in a N.sub.2 atmosphere and inlet sealing rolls into a vacuum chamber; and
- successively vapor depositing primary Zn, Mg and Zn on the surface of said steel sheet,
- wherein said steel sheet is passed through said duct under conditions satisfying the relationships of X.times.Z.gtoreq.1.2 and Y.times.Z.congruent.35, wherein X represents a vol. % O.sub.2 concentration of the atmosphere in said duct, Y represents a vol. % H.sub.2 O concentration of the atmosphere in said duct, and Z represents the time period of said steel sheet passing through said duct.
- 4. The manufacturing method defined in claim 3, wherein H.sub.2 is added to the atmosphere in the duct.
- 5. The manufacturing method defined in claim 4, wherein the steel sheet is passed through the duct held in the atmosphere to which H.sub.2 is added in an amount of 0.05-4 vol. % under the conditions satisfying the relationships of X.times.Z.ltoreq.3.8 and Y.times.Z.ltoreq.80.
- 6. A method of manufacturing a steel sheet coated with a Zn-Mg layer having one of a tri-layered or penta-layered structure comprising a first sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, an intermediate sublayer including a Zn-Mg alloy having a Mg concentration of about 7 wt. % or more and an outermost sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, wherein the sublayers are successively laminated on a substrate steel wherein a Zn-Fe or Zn-Fe-Mg alloy layer is formed at a boundary between the substrate steel and the Zn-Mg coating layer, said method comprising the steps of:
- successively vapor depositing Zn, Mg and then Zn on a surface of a steel sheet; and
- controlling the temperature of said steel sheet within the range of about 270.degree.-370.degree. C. at a completion of vapor deposition, whereby the coating layer is conditioned to one of the tri-layered or penta-layered structure by the mutual diffusion between Mg and Zn.
- 7. A method of manufacturing a steel sheet coated with a Zn-Mg layer having one of a tri-layered or penta-layered structure comprising a first sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, an intermediate sublayer including a Zn-Mg alloy having a Mg concentration of about 7 wt. % or more and an outermost sublayer including a Zn-Mg alloy having a Mg concentration of about 0.5 wt. % or less, wherein the sublayers are successively laminated on a substrate steel wherein a Zn-Fe or Zn-Fe-Mg alloy layer is formed at a boundary between the substrate steel and the Zn-Mg coating layer, said method comprising the steps of:
- successively vapor depositing Zn, Mg and then Zn on a surface of a steel sheet; and
- heating said steel sheet about 1 hr. or longer at about 150.degree.-240.degree. C. after the completion of vapor deposition, whereby the coating layer is conditioned to one of the tri-layered or penta-layered structure by the mutual diffusion between Mg and Zn.
Priority Claims (2)
Number |
Date |
Country |
Kind |
7-65096 |
Feb 1995 |
JPX |
|
7-294736 |
Oct 1995 |
JPX |
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Parent Case Info
This is a divisional of application Ser. No. 08/607,703 filed on Feb. 27, 1996 now U.S. Pat. No. 5,648,177.
Foreign Referenced Citations (4)
Number |
Date |
Country |
0175640 |
Mar 1986 |
EPX |
2217627 |
Apr 1972 |
DEX |
08081761 |
Mar 1996 |
JPX |
08134632 |
May 1996 |
JPX |
Non-Patent Literature Citations (1)
Entry |
Extended Abstract--"Effect of Coating Structure on Corrosion Resistance of ZN-MG Alloy Vapor Deposited Steel Sheets", vol. 93/1, Jan. 1, 1993, pp. 1948-1949. |
Divisions (1)
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Number |
Date |
Country |
Parent |
607703 |
Feb 1996 |
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