US2196161A - Protecting magnesium and its alloys - Google Patents

Protecting magnesium and its alloys Download PDF

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Publication number
US2196161A
US2196161A US127563A US12756337A US2196161A US 2196161 A US2196161 A US 2196161A US 127563 A US127563 A US 127563A US 12756337 A US12756337 A US 12756337A US 2196161 A US2196161 A US 2196161A
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United States
Prior art keywords
magnesium
alloys
anodic oxidation
treatment
silicate
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Expired - Lifetime
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US127563A
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English (en)
Inventor
Frasch Jean
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
SAMUEL FRATKINE
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SAMUEL FRATKINE
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Application filed by SAMUEL FRATKINE filed Critical SAMUEL FRATKINE
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Classifications

    • CCHEMISTRY; METALLURGY
    • C25ELECTROLYTIC OR ELECTROPHORETIC PROCESSES; APPARATUS THEREFOR
    • C25DPROCESSES FOR THE ELECTROLYTIC OR ELECTROPHORETIC PRODUCTION OF COATINGS; ELECTROFORMING; APPARATUS THEREFOR
    • C25D11/00Electrolytic coating by surface reaction, i.e. forming conversion layers
    • C25D11/02Anodisation
    • C25D11/30Anodisation of magnesium or alloys based thereon

Definitions

  • My invention offers means for efficiently protecting magnesium and its alloys, by a process for vitrifying the surface thereof, which process is 30 preceded by a preliminary operation of anodic oxidation and also (if desired) by mordanting and tinting or painting.
  • I subject the surface of the metal to anodic oxidation, com- 35 bined with a vitrifying treatment by means of a soluble silicate.
  • the anodic oxidation treatment has the effect of coating the surface of the metal with a deposit composed of oxide, hydrate and silicate of magnesium; and furthermore, of creating cavities and/or superficial irregularities in the structure of the metal.
  • the vitrification is effected through the action of a soluble silicate, such as, for example, NazSiOa, which, in the presence of the oxide and hydrate of magnesium, produces magnesium silicate, which deposits in the form of an adherent and continuous coating containing small crystals of silica liberated by hydrolysis.
  • a soluble silicate such as, for example, NazSiOa
  • magnesium silicate which deposits in the form of an adherent and continuous coating containing small crystals of silica liberated by hydrolysis.
  • I effect in succession, first the anodic oxidation treatment, and then that of vitrification, by subjecting the metal to the action of two special reagent solutions.
  • these two operations may also be combined, by using a single bath containing all the constituents required for both operations.
  • the essential reagent of the anodic oxidation is a caustic base or a basic salt, preferably in the presence of a soluble silicate.
  • a caustic base or a basic salt preferably in the presence of a soluble silicate.
  • the results may be improved by adding a small quantity of alumina, for example, in solub.e form; the colloidal alumina liberated is deposited in the minute cavities and irregularities of the metallic surface and improves the adherence and continuity of the protective coating formed in the process of vitrification.
  • vitrification may be effected with or without electric current, and at moderate or boiling temperature. Furthermore, the two operations of oxidation and vitrification may also be combined with a mordanting process intended to permit coloring of the protective coating. 0n the other hand, a final coat of paint may also be applied to said coating.
  • I make use of a bath, the essential dissolved constituents of which are a caustic base or a basic salt, to which I add a small quantity of a soluble silicate.
  • the cathodes are of iron.
  • the cell functions either hot or cold, under a tension of 4 to 10 volts, and a current density of 10 to 50 amperes per square foot of anode surface.
  • ingredients being in aqueous solution, and the temperature of the bath being preferably between 40 and 60 C.
  • the object under treatment is washed, first in pure running water, then in ammonia water, and finally once more in pure running water.
  • This operation is effected in a bath containing the salt of a weak metallic base, such as, for example, aluminium, which, by hydrolysis, deposits its insoluble oxide in the cavities or superficial irregularities formed during the anodic oxidation.
  • a weak metallic base such as, for example, aluminium
  • This bath functions without electric current and preferably at a temperature materially above that of the atmosphere; it may also contain the dye or coloring matter required to color the protective coating, if such is desired. Otherwise, said dyeing or coloring operations may follow that of mordanting.
  • the process of mordanting is no longer necessary, and the dye or coloring matter may be applied directly to the object under treatment, immediately after the withdrawal of the latter from the oxidation bath.
  • composition of the mordanting bath may be as follows:
  • compositions of the baths given above are only as examples, and are not to be construed as limiting my invention.
  • Another advantage of said process is that it adapts itself to the treatment of complete and complicated parts, even when the latter are assembled with aluminium or dural (duralumin) rivets.
  • it enables the -magnesium to be insulated and protected from electro-chemical action, by avoiding the formation of the magnesium-aluminium electric couple.
  • the surface coating prepared by the anodic oxidation process or by vitrification constitutes an excellent base for the subsequent application of any paint or coloring matter.
  • My invention also extends to the novel industrial products which result from the process of vitrification, and also to the different underlying deposits obtained by the process described, as well as to all objects or parts comprising protective coatings or sub-coatings of the type described.
  • a process for the protection against corrosion. of magnesium and alloys in which magnesium predominates which comprises subjecting the surface of the same to anodic oxidation in an aqueous bath containing a. caustic alkali in an amount equivalent to to 20% of NaOH, and thereafter subjecting such oxidized surface to a vitrifying treatment with an aqueous solution of a soluble silicate.
  • a process for the protection against corrosion, of magnesium and alloys in which magnesium predominates which comprises subjecting the surface of the same to anodic oxidation in an aqueous solution containing a caustic alkali in amount equivalent to 5 to 20% of NaOH. and containing a soluble silicate, and thereafter subjecting such oxidized surface to a vitrifylng treatment in an aqueous solution of a soluble silicate, at least one of said aqueous solutions containing a dissolved aluminum compound.
  • a process for the protection against corrosion, of magnesium and alloys in which magnesium predominates which process comprises subjecting the surface of the same to anodic oxidation in an aqueous bath containing a caustic alkali, a soluble silicate and alumina, and thereafter subjecting the same to a vitrifying treatment with an aqueous solution of a soluble silicate.
  • a process for the protection of magnesium and alloys in which magnesium predominates which consists in subjecting the surface of the same to anodic oxidation in an aqueous alkaline bath containing caustic alkali equivalent in amount to 5 to 20% of NaOH and containing a soluble silicate, and subjecting such oxidized surface to a vitrifying treatment in an aqueous solution of a soluble silicate which also contains dissolved alumina.
  • a process for the protection of magnesium and alloys in which magnesium predominates which consists in subjecting the surface of the same to anodic oxidation in an aqueous alkaline bath containing caustic alkali equivalent in amount to 5 to 20% of NaOH and containing a soluble silicate, and subjecting such oxidized surface to a vitrifying treatment in an aqueous solution of a soluble silicate.
  • a process for the protection against corrosion, of magnesium and alloys in which magnesium predominates which process comprises subjecting the surface of the same to anodic oxidation in an aqueous bath containing from 5 to of sodium hydroxide, 2 to 3% of sodium silicate, 2 to 3% of alumina and 0.1 to 0.2% of potassium permanganate, and following the said anodic oxithe surface of the same dation by a treatment in an aqueous solution of a silicate containing dissolved caustic alkali.
  • a process for the protection against corrosion, of magnesium and alloys in which magnesium predominates which comprises subjectin the surface of the same to anodic oxidation in an aqueous bath containing as essential reagent a caustic alkali in amount equivalent to 5 to 20% of NaOH, and then to a treatment in an aqueous bath containing 5 to 30% of soluble silicate and 3 to 4% of sodium hydroxide and 1 to 2% of a soluble aluminum compound.
  • a process for the protection against corrosion, of magnesium and alloys in which magnesium predominates which comprises subjecting to anodic oxidation in an aqueous bath containing from 5 to 20% of alumina and sodium hydroxide, 2 to 3% of sodium silicate, 2 to 3% of alumina and 0.1 to 0.2% of potassium permanganate, and then following the said anodic oxidation by a treatment in an aqueous solution containing 5 to 30% of soluble silicate and 3 to 4% of sodium hydroxide and 1 to 2% of a soluble aluminum compound.
  • a process for the protection against corrosion, of magnesium and alloys in which magnesium predominates which comprises subjecting the surface of the same to anodic oxidation in an aqueous bath containing 5 to 20% of sodium hydroxide, 2 to 3% of sodium silicate, 2 to 3% of alumina. and 0.1% to 0.2% of potassium permanganate, and thereafter subjecting such oxidized surface to a vitrifying treatment with an aqueous solution of a soluble silicate.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Electrochemistry (AREA)
  • Materials Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Chemical Treatment Of Metals (AREA)
  • Chemically Coating (AREA)
  • Paints Or Removers (AREA)
US127563A 1936-02-26 1937-02-24 Protecting magnesium and its alloys Expired - Lifetime US2196161A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
FR491025X 1936-02-26

Publications (1)

Publication Number Publication Date
US2196161A true US2196161A (en) 1940-04-02

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US127563A Expired - Lifetime US2196161A (en) 1936-02-26 1937-02-24 Protecting magnesium and its alloys

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US (1) US2196161A (ko)
FR (2) FR48802E (ko)
GB (1) GB491025A (ko)
NL (1) NL46668C (ko)

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2497036A (en) * 1944-07-12 1950-02-07 Cons Vultee Aircraft Corp Coating magnesium and magnesium base alloys
US2512563A (en) * 1946-11-09 1950-06-20 Dow Chemical Co Method of electrolytically coating magnesium and its alloys
US3293158A (en) * 1963-09-17 1966-12-20 Mcneill William Anodic spark reaction processes and articles
US3374155A (en) * 1965-02-19 1968-03-19 Ludwig J. Weber Modified oxide-coated aluminum and the method of modifying
DE3808609A1 (de) * 1988-03-15 1989-09-28 Electro Chem Eng Gmbh Verfahren zur erzeugung von korrosions- und verschleissbestaendigen schutzschichten auf magnesium und magnesiumlegierungen
DE3808610A1 (de) * 1988-03-15 1989-09-28 Electro Chem Eng Gmbh Verfahren zur oberflaechenveredelung von magnesium und magnesiumlegierungen

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2497036A (en) * 1944-07-12 1950-02-07 Cons Vultee Aircraft Corp Coating magnesium and magnesium base alloys
US2512563A (en) * 1946-11-09 1950-06-20 Dow Chemical Co Method of electrolytically coating magnesium and its alloys
US3293158A (en) * 1963-09-17 1966-12-20 Mcneill William Anodic spark reaction processes and articles
US3374155A (en) * 1965-02-19 1968-03-19 Ludwig J. Weber Modified oxide-coated aluminum and the method of modifying
DE3808609A1 (de) * 1988-03-15 1989-09-28 Electro Chem Eng Gmbh Verfahren zur erzeugung von korrosions- und verschleissbestaendigen schutzschichten auf magnesium und magnesiumlegierungen
DE3808610A1 (de) * 1988-03-15 1989-09-28 Electro Chem Eng Gmbh Verfahren zur oberflaechenveredelung von magnesium und magnesiumlegierungen

Also Published As

Publication number Publication date
FR50029E (fr) 1939-11-10
NL46668C (ko) 1939-09-15
GB491025A (en) 1938-08-25
FR48802E (fr) 1938-07-12

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