US3055771A - Method of coating a ferrous base with aluminum - Google Patents

Method of coating a ferrous base with aluminum Download PDF

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US3055771A
US3055771A US737485A US73748558A US3055771A US 3055771 A US3055771 A US 3055771A US 737485 A US737485 A US 737485A US 73748558 A US73748558 A US 73748558A US 3055771 A US3055771 A US 3055771A
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aluminum
coating
bath
metal
ferrous
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John D Sprowl
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Kaiser Aluminum and Chemical Corp
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Kaiser Aluminum and Chemical Corp
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Priority to US153710A priority patent/US3136632A/en
Priority to US153735A priority patent/US3180716A/en
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    • CCHEMISTRY; METALLURGY
    • C23COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
    • C23CCOATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
    • C23C2/00Hot-dipping or immersion processes for applying the coating material in the molten state without affecting the shape; Apparatus therefor
    • C23C2/04Hot-dipping or immersion processes for applying the coating material in the molten state without affecting the shape; Apparatus therefor characterised by the coating material
    • C23C2/12Aluminium or alloys based thereon
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S428/00Stock material or miscellaneous articles
    • Y10S428/922Static electricity metal bleed-off metallic stock
    • Y10S428/9265Special properties
    • Y10S428/927Decorative informative
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S428/00Stock material or miscellaneous articles
    • Y10S428/922Static electricity metal bleed-off metallic stock
    • Y10S428/9335Product by special process
    • Y10S428/939Molten or fused coating
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/12All metal or with adjacent metals
    • Y10T428/12493Composite; i.e., plural, adjacent, spatially distinct metal components [e.g., layers, joint, etc.]
    • Y10T428/12736Al-base component
    • Y10T428/1275Next to Group VIII or IB metal-base component
    • Y10T428/12757Fe

Definitions

  • This invention relates to a method for producing composite metal articles having a ferrous metal base portion coated with aluminum or aluminum base alloys, the composite article produced thereby and the aluminum base coating alloys. More particularly this invention relates to a method for coating a ferrous metal base with aluminum or aluminum alloys which provides a coating characterized by a lustrous smooth appearance free from the presence of stains, the composite articles produced thereby and the aluminum base coating alloys.
  • Coatings of aluminum on ferrous metal products are highly desirable since the composites resulting in effect embody superior properties resident in each metal.
  • the aluminum coating adds the more salient properties of resistance to corrosion and oxidation at both atmospheric and somewhat elevated temperatures, enhanced electrical conductivity, improvement in the brazing of aluminum to steel and a more attractive appearance.
  • the appearance of the coating In the production of aluminum coated ferrous metal articles one of the primary factors in regard to commercially acceptable results is the appearance of the coating.
  • a lustrous smooth appearance similar to the color and texture of cast aluminum is a desirable characteristic in such aluminum coatings.
  • the coatings may display a brown or tan stain, particularly if the ferrous article is quenched in water while the coating is still molten.
  • many aluminizing alloys may not be productive of satisfactory results.
  • beryllium has been added to aluminizing alloys to provide a clean bath surface and to prevent staining of the coating during air cooling.
  • beryllium is very expensive and while the amount of beryllium added to the aluminizing alloy may be small, a continual replacement is required to maintain bright coatings.
  • the use of beryllium in aluminizing alloys isexpensive. Accordingly, it is an object of the present invention to provide a method of coating feirous base metal to produce composite articles wherein the coating is characterized by a smooth appearance free or essentially free from any presence of staining.
  • Examples of prior art aluminum metal baths for coating ferrous base metal are commercially pure aluminum, aluminum-silicon alloys and an alloy consisting essentially of by weight from 1 to 6% silicon, at least one element selected from the group consisting of chromium, molybdenum and tungsten in amount from about 0.1 to 0.4%, the total not exceeding about 0.5%, at least one element selected from the group consisting of boron, titanium, vanadium and zirconium in amount from about 0.02 to about 0.20% boron and titanium, and from about 0.1 to about 0.25% vanadium and zirconium, the total of these last named elements not exceeding about 0.5 0.001 to 0.10% sodium, balance substantially all aluminum and impurities in normal amounts.
  • magnesium from about 0.05 to 0.45% by weight are productive of satisfactory results wherein the production of an attractive relatively smooth stain free coating is the primary factor with regard to the intended purpose of the composite article.
  • optimum results in regard to smoothness and freedom from staining are realized by amounts of magnesium from about 0.1 to 0.2% by weight of the total alloy bath. Beyond a magnesium content of about 0.45% there is a tendency for the oxide film to produce a wrinkled and poor surface texture to the coating. On the other hand, amounts below about 0.05% by weight magnesium do not provide sufiicient resistance to staining.
  • the ferrous articles to be coated are first thoroughly cleaned by a suitable method, such as acid pickling, to remove oxide film or scale. They may then be rinsed, dryed and immersed in the coating bath with or Without the use of a conventional flux. For large sections the use of flux may be used for further cleaning before immersion in the alloy bath.
  • the articles with or without pickling depending on the nature of the surface, may be pretreated by bright annealing in suitable apparatus in an inert or reducing atmosphere and then directly immersed in the molten coating bath without exposure to the atmosphere.
  • the bath temperature is maintained sufliciently high so that the alloys employed are completely molten.
  • the particular bath temperature depends upon the coating alloy composition and the composition and nature of the ferrous article and, in regard to the alloys herein disclosed, temperatures generally of from 1280 to 1375 F. are recommended.
  • the time of immersion depends principally upon the composition of the molten bath, the composition and nature of the ferrous article and the temperature of the molten bath.
  • the immersion time and also the bath temperature may be regulated to produce a composition suitable for the intended application. Extending the time of immersion tends to increase the thickness of the Fe-Al layer and, accordingly, the shortest immersion time consistent with satisfactory coverage is usually recommended.
  • Panels of mild steel measuring 4" x 6" x .035 were degreased by furnace bluing then pickled in a 20% HCl solution at 170 F. for from 30 to 120 seconds. This was followed by dipping in an aqueous solution of Na SiF plus ZrCl Each specimen was then dipped for from 4 to 15 seconds in a molten bath of aluminum base alloy maintained at 1300 F. The compositions of the bath employed are indicated below. The coated specimens were then withdrawn and tapped lightly while in a vertical position to facilitate removal of the excess coating.
  • One aluminum coating bath was made up from approxi mately 10 pounds of commercially pure, i.e. 99.00% by weight minimum purity aluminum which was melted in an induction furnace. It is to be noted that during the course of operation either batch or continuous, the molten aluminum bath gradually increases in iron content due to the fact of pickup of iron from the base metal. In order to represent this iron pickup which would be encountered in continued operation, 1.7% by Weight iron was added to the melt. The amounts of magnesium as indicated in Table I below were then incrementally added to the melt and specimens immersed in each alloy. Table I indicates the appearance of these specimens.
  • Another aluminum base alloy bath was made up from approximately 10 pounds of an aluminum-5% by weight silicon alloy which was melted in an induction furnace and to which 1.7% by Weight iron was added for reasons given above.
  • the amounts of magnesium as indicated in Table III below were then incrementally added to the melt and specimens immersed in each alloy. Table III indicated the appearance of these specimens.
  • Another aluminum base alloy bath was made up from approximately 10 pounds of an aluminum base alloy consisting essentially of, by weight, 2.50% silicon, 0.10% chromium, 0.10% molybdnum, 0.05% titanium, 0.002% sodium, balance substantially all aluminum and impurities in normal amounts, which was melted in an induction furnace and to which 1.7% by weight iron was added for reasons given above.
  • the amounts of magnesium as indicated in Table IV below were then incrementally added to the melt and specimens immersed in each alloy. Table IV indicates the appearance of these specimens.
  • aluminum is meant to cover high purity aluminum, commercial purity aluminum and aluminum base alloys.
  • a method of coating ferrous base metal with aluminum metal comprising providing a molten bath of a metal selected from the group consisting of aluminum and aluminum base alloys, said bath containing from about 0.05 to 0.45% magnesium, immersing said ferrous base metal in said bath and withdrawing the coated ferrous base metal from said bath.
  • a method of coating ferrous base metal with aluminum metal comprising providing a molten bath of a metal selected from the group consisting of aluminum and aluminum base alloys, said bath containing from about 0.1 to 0.2% magnesium, immersing said ferrous base metal in said bath and withdrawing the ferrous base metal from said bath.
  • a method of coating ferrous base metal with aluminum metal comprising the steps of cleaning the ferrous metal article to be coated, dipping said article in an aqueous flux solution, immersing said ferrous base metal article in a molten bath of a metal selected from the group consisting of aluminum and aluminum base alloys.
  • a method of coating ferrous base metal with aluminum metal comprising the steps of immersing said ferrous base metal in a molten bath of 99.00% minimum purity aluminum to which is added from about 0.05 to 0.45 of magnesium.
  • a method of coating ferrous base metal with aluminum metal comprising the steps of immersing said ferrous base metal in a molten bath of an aluminum base alloy consisting essentially of from about 2.5 to 5% silicon, balance substantially all aluminum and impurities in normal amounts, to which is added from about 0.05 to 0.45% magnesium.
  • a method of coating ferrous base metal with aluminum metal comprising the steps of immersing said ferrous base metal in a molten bath of an alloy consisting essentially of from about 1 to 6% silicon, at least one element selected from the group consisting of chromium, molybdenum and tungsten in amount from about 0.1 to about 0.4%, the total not exceeding about 0.5%, at least one element selected from the group consisting of boron, titanium, vanadium and zirconium in amount from about 0.02 to about 0.20% boron and titanium, and from about 0.1 to about 0.25% vanadium and zirconium, the total of these last named elements not exceeding about 0.5%, 0.001 to 0.10% sodium, the balance substantially all aluminum and impurities in normal amounts to which is added from about 0.05 to 0.45% magnesium.

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  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Coating With Molten Metal (AREA)

Description

Patented Sept. 25, 1962 3,055,771 METHOD OF COATING A FERROUS BASE Wli'lH ALUMENUM John D. Sprowl, Spokane, Wash, assignor to Kaiser Aluminum 8; Chemical Corporation, Oakland, Calif., a corporation of Delaware No Drawing. Filed May 26, 1958, Ser. No. 737,485 3 Claims. (ill. 117-414) This invention relates to a method for producing composite metal articles having a ferrous metal base portion coated with aluminum or aluminum base alloys, the composite article produced thereby and the aluminum base coating alloys. More particularly this invention relates to a method for coating a ferrous metal base with aluminum or aluminum alloys which provides a coating characterized by a lustrous smooth appearance free from the presence of stains, the composite articles produced thereby and the aluminum base coating alloys.
Coatings of aluminum on ferrous metal products are highly desirable since the composites resulting in effect embody superior properties resident in each metal. To the strength and other desirable characteristics of the iron or steel core, the aluminum coating adds the more salient properties of resistance to corrosion and oxidation at both atmospheric and somewhat elevated temperatures, enhanced electrical conductivity, improvement in the brazing of aluminum to steel and a more attractive appearance.
In the production of aluminum coated ferrous metal articles one of the primary factors in regard to commercially acceptable results is the appearance of the coating. A lustrous smooth appearance similar to the color and texture of cast aluminum is a desirable characteristic in such aluminum coatings. When utilizing many aluminizing alloys the coatings may display a brown or tan stain, particularly if the ferrous article is quenched in water while the coating is still molten. Where the aluminum coated ferrous articles is intended for ornamental purposes or for some other reason a stain free surface is desired, many aluminizing alloys may not be productive of satisfactory results.
In accordance with the prior art, beryllium has been added to aluminizing alloys to provide a clean bath surface and to prevent staining of the coating during air cooling. However, beryllium is very expensive and while the amount of beryllium added to the aluminizing alloy may be small, a continual replacement is required to maintain bright coatings. Thus the use of beryllium in aluminizing alloys isexpensive. Accordingly, it is an object of the present invention to provide a method of coating feirous base metal to produce composite articles wherein the coating is characterized by a smooth appearance free or essentially free from any presence of staining.
It is a further object of this invention to provide an aluminum base alloy for coating ferrous base metal articles which provides a coating in the solid state or ascoated condition eminently suitable for ornamental or other purposes due to a lustrous smooth appearance and freedom from the presence of stains. 7
It is a still further object of the invention to provide aluminum alloy coated composite articles characterized by a lustrous smooth appearance and freedom from stains and relatively inexpensive aluminum base alloys for production thereof wherein conventional methods of hot dip coating may be employed.
Other objects and advantages of the invention will be apparent from the following detailed description thereof.
It has been discovered that the maintenance of a small but effective amount of magnesium in a molten coating bath of aluminum results in a coating exhibiting an appearance characterized by freedom from staining. When compared to the appearance of prior art commercially pure aluminum and aluminum alloy coatings, the freedom from staining of the coatings of the present invention is unique. Examples of prior art aluminum metal baths for coating ferrous base metal are commercially pure aluminum, aluminum-silicon alloys and an alloy consisting essentially of by weight from 1 to 6% silicon, at least one element selected from the group consisting of chromium, molybdenum and tungsten in amount from about 0.1 to 0.4%, the total not exceeding about 0.5%, at least one element selected from the group consisting of boron, titanium, vanadium and zirconium in amount from about 0.02 to about 0.20% boron and titanium, and from about 0.1 to about 0.25% vanadium and zirconium, the total of these last named elements not exceeding about 0.5 0.001 to 0.10% sodium, balance substantially all aluminum and impurities in normal amounts.
in general it has been found that amounts of magnesium from about 0.05 to 0.45% by weight are productive of satisfactory results wherein the production of an attractive relatively smooth stain free coating is the primary factor with regard to the intended purpose of the composite article. However, optimum results in regard to smoothness and freedom from staining are realized by amounts of magnesium from about 0.1 to 0.2% by weight of the total alloy bath. Beyond a magnesium content of about 0.45% there is a tendency for the oxide film to produce a wrinkled and poor surface texture to the coating. On the other hand, amounts below about 0.05% by weight magnesium do not provide sufiicient resistance to staining.
Although the addition of magnesium to the aluminum alloy in accordance with this invention is primarily suited for ornamental purposes due to the freedom from staining obtained, it was found that there was a lack of any substantial adverse effect upon the ductility of the. composites produced.
In accordance with this invention, the ferrous articles to be coated are first thoroughly cleaned by a suitable method, such as acid pickling, to remove oxide film or scale. They may then be rinsed, dryed and immersed in the coating bath with or Without the use of a conventional flux. For large sections the use of flux may be used for further cleaning before immersion in the alloy bath. On the other hand, the articles with or without pickling, depending on the nature of the surface, may be pretreated by bright annealing in suitable apparatus in an inert or reducing atmosphere and then directly immersed in the molten coating bath without exposure to the atmosphere.
The bath temperature is maintained sufliciently high so that the alloys employed are completely molten. Of course, the particular bath temperature depends upon the coating alloy composition and the composition and nature of the ferrous article and, in regard to the alloys herein disclosed, temperatures generally of from 1280 to 1375 F. are recommended.
Since thickness of the FeAl interfacial layer increases with bath temperature, it is recommended that the lowest operating temperature consistent with good coating results be used to minimize cracking and spalling tendencies.
The time of immersion depends principally upon the composition of the molten bath, the composition and nature of the ferrous article and the temperature of the molten bath. The immersion time and also the bath temperature may be regulated to produce a composition suitable for the intended application. Extending the time of immersion tends to increase the thickness of the Fe-Al layer and, accordingly, the shortest immersion time consistent with satisfactory coverage is usually recommended.
The improved results obtained by the practice of this invention are more fully illustrated with reference to the examples below:
Panels of mild steel measuring 4" x 6" x .035 were degreased by furnace bluing then pickled in a 20% HCl solution at 170 F. for from 30 to 120 seconds. This was followed by dipping in an aqueous solution of Na SiF plus ZrCl Each specimen was then dipped for from 4 to 15 seconds in a molten bath of aluminum base alloy maintained at 1300 F. The compositions of the bath employed are indicated below. The coated specimens were then withdrawn and tapped lightly while in a vertical position to facilitate removal of the excess coating.
One aluminum coating bath was made up from approxi mately 10 pounds of commercially pure, i.e. 99.00% by weight minimum purity aluminum which was melted in an induction furnace. It is to be noted that during the course of operation either batch or continuous, the molten aluminum bath gradually increases in iron content due to the fact of pickup of iron from the base metal. In order to represent this iron pickup which would be encountered in continued operation, 1.7% by Weight iron was added to the melt. The amounts of magnesium as indicated in Table I below were then incrementally added to the melt and specimens immersed in each alloy. Table I indicates the appearance of these specimens.
TABLE I Appearance of Alaminized Steel Panels An aluminum base alloy bath was made up from approximately 10 pounds of an aluminum-2.5% by weight silicon alloy which Was melted in an induction furnace and to which 1.7% by weight iron was added for reasons given above. The amounts of magnesium as indicated in Table II below were then incrementally added to the melt and specimens immersed in each alloy. Table II indicates the appearance of these specimens.
TABLE H Appearance of Aluminized Steel Panels Percent Mg. Color Luster Surface Texture By Wt.
Brown Spotted Dull Smooth. L- ht Bright-.. Do. Do. do Do. do D0.
dn Slightly wrinkled. do Wrinkled.
" Wrinkled, Rough.
Another aluminum base alloy bath was made up from approximately 10 pounds of an aluminum-5% by weight silicon alloy which was melted in an induction furnace and to which 1.7% by Weight iron was added for reasons given above. The amounts of magnesium as indicated in Table III below were then incrementally added to the melt and specimens immersed in each alloy. Table III indicated the appearance of these specimens.
4 TABLE I11 Appearance of Aluminized Steel Panels Percent Color Luster Surface Texture Mg. By Wt.
Do. Sliglgly Rough.
0. Rough, Wrinkled.
Very Rough, Wrinkled.
Another aluminum base alloy bath was made up from approximately 10 pounds of an aluminum base alloy consisting essentially of, by weight, 2.50% silicon, 0.10% chromium, 0.10% molybdnum, 0.05% titanium, 0.002% sodium, balance substantially all aluminum and impurities in normal amounts, which was melted in an induction furnace and to which 1.7% by weight iron was added for reasons given above. The amounts of magnesium as indicated in Table IV below were then incrementally added to the melt and specimens immersed in each alloy. Table IV indicates the appearance of these specimens.
It is readily seen from the results indicated above that the surfaces of the aluminized articles employing the principles of this invention were superior to those produced outside the teachings of this invention. More specifically, it will be noted that those coating baths containing magnesium in amounts above about 0.45% resulted in coatings which were wrinkled and, accordingly, unsatisfactory. Those coating baths containing magnesium contents below about 0.05% resulted in coatings characterized by tan or brown stain and thus were also unsatisfactory. While some of the samples having magnesium contents within the broad range of the invention exhibited slight wrinkling or slight roughness, the coatings produced were satisfactory from an appearance standpoint for many purposes.
As used herein the term aluminum is meant to cover high purity aluminum, commercial purity aluminum and aluminum base alloys.
It will be understood that various changes, omissions and additions may be made to this invention without departing from the spirit and scope thereof as set forth in the appended claims.
All percentages in the claims are by weight of the total coating bath.
What is claimed is:
1. A method of coating ferrous base metal with aluminum metal comprising providing a molten bath of a metal selected from the group consisting of aluminum and aluminum base alloys, said bath containing from about 0.05 to 0.45% magnesium, immersing said ferrous base metal in said bath and withdrawing the coated ferrous base metal from said bath.
2. A method of coating ferrous base metal with aluminum metal comprising providing a molten bath of a metal selected from the group consisting of aluminum and aluminum base alloys, said bath containing from about 0.1 to 0.2% magnesium, immersing said ferrous base metal in said bath and withdrawing the ferrous base metal from said bath.
3. In the art of hot dip coating ferrous metal articles with aluminum wherein the ferrous article is immersed in, and withdrawn from a molten coating bath of a metal selected from the group consisting of aluminum and aluminum base alloys, the improvement comprising providing said bath in a substantially magnesium-free condition and adding magnesium to said bath in amount of from about 0.05 to 0.45%.
4. The coating method according to claim 3 wherein magnesium is added to the bath in an amount of from about 0.1 to 0.2%.
5. A method of coating ferrous base metal with aluminum metal, comprising the steps of cleaning the ferrous metal article to be coated, dipping said article in an aqueous flux solution, immersing said ferrous base metal article in a molten bath of a metal selected from the group consisting of aluminum and aluminum base alloys.
6. A method of coating ferrous base metal with aluminum metal, comprising the steps of immersing said ferrous base metal in a molten bath of 99.00% minimum purity aluminum to which is added from about 0.05 to 0.45 of magnesium.
7. A method of coating ferrous base metal with aluminum metal comprising the steps of immersing said ferrous base metal in a molten bath of an aluminum base alloy consisting essentially of from about 2.5 to 5% silicon, balance substantially all aluminum and impurities in normal amounts, to which is added from about 0.05 to 0.45% magnesium.
8. A method of coating ferrous base metal with aluminum metal, comprising the steps of immersing said ferrous base metal in a molten bath of an alloy consisting essentially of from about 1 to 6% silicon, at least one element selected from the group consisting of chromium, molybdenum and tungsten in amount from about 0.1 to about 0.4%, the total not exceeding about 0.5%, at least one element selected from the group consisting of boron, titanium, vanadium and zirconium in amount from about 0.02 to about 0.20% boron and titanium, and from about 0.1 to about 0.25% vanadium and zirconium, the total of these last named elements not exceeding about 0.5%, 0.001 to 0.10% sodium, the balance substantially all aluminum and impurities in normal amounts to which is added from about 0.05 to 0.45% magnesium.
References Cited in the file of this patent UNITED STATES PATENTS 1,805,448 Frary May 12, 1931 2,406,245 Organowski et al. Aug. 20, 1946 2,436,578 Korn et al. Feb. 24, 1948 2,583,473 Cooper Jan. 22, 1952 2,665,475 Campbell et al. Jan. 12, 1954 2,752,268 Whitfield et a1. June 26, 1956 2,764,482 Willmore Sept. 25, 1956 2,774,686 Hodge Dec. 18, 1956 2,915,391 Criner Dec. 1, 1959 FOREIGN PATENTS 485,956 Great Britain May 27, 1938 804,170 Great Britain Nov. 12, 1958

Claims (1)

1. A METHOD OF COATING FERROUS BASE METAL WITH ALUMINUM METAL COMPRISING PROVIDING A MOLTEN BATH OF A METAL SELECTED FROM THE GROUP CONSISTING OF ALUMINUM AND ALUMINUM BASE ALLOYS, SAID BATH CONTAINING FROM ABOUT 0.05 TO 0.45% MAGNESIUM, IMMERSING SAID FERROUS BASE METAL IN SAID BATH AND WITHDRAWING THE COATED FERROUS BASE METAL FROM SAID BATH.
US737485A 1958-05-26 1958-05-26 Method of coating a ferrous base with aluminum Expired - Lifetime US3055771A (en)

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US737485A US3055771A (en) 1958-05-26 1958-05-26 Method of coating a ferrous base with aluminum
US153710A US3136632A (en) 1958-05-26 1961-11-20 Aluminum base alloy
US153735A US3180716A (en) 1958-05-26 1961-11-20 Aluminum coated ferrous material

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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3134685A (en) * 1961-09-25 1964-05-26 Standard Oil Co Method of aluminum coating a ferrous base with a molten solution of aluminum in magnesium
EP0097487A2 (en) * 1982-06-17 1984-01-04 Uss Engineers And Consultants, Inc. Method of producing corrosion-resistant coatings on ferrous-base articles
US20040018316A1 (en) * 2002-07-11 2004-01-29 Unionsteel Manufacturing Co., Ltd., Production method for aluminum alloy coated steel sheet
US20040166245A1 (en) * 2002-07-29 2004-08-26 Unionsteel Manufacturing Co., Ltd. Production method for aluminum alloy coated steel sheet
DE112016006868T5 (en) 2016-05-17 2019-03-07 Dongkuk Steel Mill Co., Ltd. An apparatus for forming a nitrogen cloud for producing a melt-coated steel sheet excellent in surface quality and a method of producing a zinc-aluminum hot dip coated steel sheet using the same

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1805448A (en) * 1929-11-30 1931-05-12 Aluminum Co Of America Corrosion-resistant aluminum alloy article
GB485956A (en) * 1936-05-27 1938-05-27 Aluminiumwalzwerk Wutoeschinge Method of plating metal
US2406245A (en) * 1940-12-30 1946-08-20 American Rolling Mill Co Coating ferrous metals with aluminum
US2436578A (en) * 1944-03-04 1948-02-24 Ruskin Means for altering the reflection of radar waves
US2583473A (en) * 1947-07-31 1952-01-22 Acme Aluminum Alloys Inc Aluminum-magnesium alloys
US2665475A (en) * 1950-03-18 1954-01-12 Fansteel Metallurgical Corp Highly refractory body
US2752268A (en) * 1951-08-04 1956-06-26 Whitfield & Sheshunoff Inc Process of making alluminum coated ferrous bodies
US2764482A (en) * 1950-08-24 1956-09-25 William F Jobbins Inc Aluminum-magnesium casting alloys
US2774686A (en) * 1952-01-08 1956-12-18 Kaiser Aluminium Chem Corp Hot dip aluminum coating process
GB804170A (en) * 1956-08-11 1958-11-12 Ver Leichtmetallwerke Gmbh Compound metal
US2915391A (en) * 1958-01-13 1959-12-01 Aluminum Co Of America Aluminum base alloy

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1805448A (en) * 1929-11-30 1931-05-12 Aluminum Co Of America Corrosion-resistant aluminum alloy article
GB485956A (en) * 1936-05-27 1938-05-27 Aluminiumwalzwerk Wutoeschinge Method of plating metal
US2406245A (en) * 1940-12-30 1946-08-20 American Rolling Mill Co Coating ferrous metals with aluminum
US2436578A (en) * 1944-03-04 1948-02-24 Ruskin Means for altering the reflection of radar waves
US2583473A (en) * 1947-07-31 1952-01-22 Acme Aluminum Alloys Inc Aluminum-magnesium alloys
US2665475A (en) * 1950-03-18 1954-01-12 Fansteel Metallurgical Corp Highly refractory body
US2764482A (en) * 1950-08-24 1956-09-25 William F Jobbins Inc Aluminum-magnesium casting alloys
US2752268A (en) * 1951-08-04 1956-06-26 Whitfield & Sheshunoff Inc Process of making alluminum coated ferrous bodies
US2774686A (en) * 1952-01-08 1956-12-18 Kaiser Aluminium Chem Corp Hot dip aluminum coating process
GB804170A (en) * 1956-08-11 1958-11-12 Ver Leichtmetallwerke Gmbh Compound metal
US2915391A (en) * 1958-01-13 1959-12-01 Aluminum Co Of America Aluminum base alloy

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3134685A (en) * 1961-09-25 1964-05-26 Standard Oil Co Method of aluminum coating a ferrous base with a molten solution of aluminum in magnesium
EP0097487A2 (en) * 1982-06-17 1984-01-04 Uss Engineers And Consultants, Inc. Method of producing corrosion-resistant coatings on ferrous-base articles
EP0097487A3 (en) * 1982-06-17 1984-09-12 Uss Engineers And Consultants, Inc. Method of producing corrosion-resistant coatings on ferrous-base articles
US20040018316A1 (en) * 2002-07-11 2004-01-29 Unionsteel Manufacturing Co., Ltd., Production method for aluminum alloy coated steel sheet
US20040166245A1 (en) * 2002-07-29 2004-08-26 Unionsteel Manufacturing Co., Ltd. Production method for aluminum alloy coated steel sheet
DE112016006868T5 (en) 2016-05-17 2019-03-07 Dongkuk Steel Mill Co., Ltd. An apparatus for forming a nitrogen cloud for producing a melt-coated steel sheet excellent in surface quality and a method of producing a zinc-aluminum hot dip coated steel sheet using the same
DE112016006868B4 (en) 2016-05-17 2022-10-20 Dongkuk Steel Mill Co., Ltd. A nitrogen cloud forming apparatus for producing a hot-dip coated steel sheet having excellent surface quality and a method of producing a zinc-aluminum hot-dip coated steel sheet using the same

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