US491220A - William mild - Google Patents

William mild Download PDF

Info

Publication number
US491220A
US491220A US491220DA US491220A US 491220 A US491220 A US 491220A US 491220D A US491220D A US 491220DA US 491220 A US491220 A US 491220A
Authority
US
United States
Prior art keywords
bath
metal
pounds
ammonia
coating
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
Publication date
Application granted granted Critical
Publication of US491220A publication Critical patent/US491220A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • 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
    • C23C22/00Chemical surface treatment of metallic material by reaction of the surface with a reactive liquid, leaving reaction products of surface material in the coating, e.g. conversion coatings, passivation of metals
    • C23C22/82After-treatment
    • C23C22/83Chemical after-treatment

Definitions

  • the object of my invention is a process of and means for coating metals to protect them IO from oxidation, which coating can he cheaply applied and will not scale or crack by bending the metal which is coated with it.
  • the invention is especially intended for use upon sheet metal, Wire the, which are now usually coated by What is known as the galyanizing process. This coating will crack and scale oil in use, and soon becomes oxidized when exposed to the elements. My invention overcomes these difficulties and can be applied much cheaper.
  • My metallic bath in which the metal to be coated is dipped is composed of lead, block tin, hismuth,sodiurn, and muriate of ammonia, in about the following proportions.
  • I take thirteen hundred pounds of lead, seven hundred pounds of block tin, one half pound bismuth, and six ounces of the metal sodium. ⁇ Vhen these are melted together I stir for twenty minutes and then let it stand 3o for twenty minutes more, after which I skim all the dress from the surface and then add two pounds of inuriate of ammonia and the hath is ready for use.
  • the articles are prepared for coating in the 5 following manner: The articles are first immersed in a Warm hath composed of one part of sulphuric acid to twenty parts of water and left in the hath until all scales and impurities are removed, or loosened. The articles are then removed and plunged into clean Water to wash od What scales are left adhering. The articles are taken from this bath and dipped in a bath composed of two hundred pounds of inuriat-ic acid two pounds of muriate of ammonia and ten pounds of spelterzincdissolvcd together. From this bath they are placed in a drying oven and when dry the articles are lowered into the metallic bath and left there until coated with metal, which will be crdi- 5o narily about one minute.
  • the article is a casting or fitting which is greasyl add to the first piclrlingbath about four pounds of caustic sodato remove the grease.
  • the articles will take up more than a proportionate amount of sodium. This fact is indicated by the color of the coated article. So soon as the coating shows a bluish cast when removed from the metallic bath, it indicates to the operator that more sodium should be added. Usually from one-half to one ounce of the metal sodium will correct the bath. This can he readily determined by the operator, as when the bath has the requisite amount of sodium the coated article comes outof the bath with bright White coating.

Landscapes

  • Chemical & Material Sciences (AREA)
  • General Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Other Surface Treatments For Metallic Materials (AREA)
  • Chemically Coating (AREA)

Description

UNITED STATES ,A pFlQE.
WILLlAM Milli), OF HAMILTON, OHIO, ASSIGNOR OF ONE-HALF TOSTEPHEN CRANE, OF SAME PLACE.
PROCESS OF AND GOMPOUND FOR COATiNG METALS.
SPEGIFIUATION forming part of Letters TPatent No. 491,220, dated February 7, 1893.
Application filed February 8, 1892.
To 5625 whom it may concern.-
Be it known that 1, WILLIAM MILD, a citizen of the United States, and a resident of Hamilton, in the county of Butler and State of Ohio, have invented a certain new and useful Process of and Compound for Coating Metals, of which the following is a specification.
The object of my invention is a process of and means for coating metals to protect them IO from oxidation, which coating can he cheaply applied and will not scale or crack by bending the metal which is coated with it.
The invention is especially intended for use upon sheet metal, Wire the, which are now usually coated by What is known as the galyanizing process. This coating will crack and scale oil in use, and soon becomes oxidized when exposed to the elements. My invention overcomes these difficulties and can be applied much cheaper.
My metallic bath in which the metal to be coated is dipped, is composed of lead, block tin, hismuth,sodiurn, and muriate of ammonia, in about the following proportions. For a ton loath, I take thirteen hundred pounds of lead, seven hundred pounds of block tin, one half pound bismuth, and six ounces of the metal sodium. \Vhen these are melted together I stir for twenty minutes and then let it stand 3o for twenty minutes more, after which I skim all the dress from the surface and then add two pounds of inuriate of ammonia and the hath is ready for use.
The articles are prepared for coating in the 5 following manner: The articles are first immersed in a Warm hath composed of one part of sulphuric acid to twenty parts of water and left in the hath until all scales and impurities are removed, or loosened. The articles are then removed and plunged into clean Water to wash od What scales are left adhering. The articles are taken from this bath and dipped in a bath composed of two hundred pounds of inuriat-ic acid two pounds of muriate of ammonia and ten pounds of spelterzincdissolvcd together. From this bath they are placed in a drying oven and when dry the articles are lowered into the metallic bath and left there until coated with metal, which will be crdi- 5o narily about one minute. llhcn taken out Serial No. 420,768. (lie specimens) of this bath the articles are shaken to free them of the surplus metal and immediately plunged into a boiling bath composed of two pounds of inuriate of ammonia to eighty gallons of water. This removes all dross or im- 5 5 purities adhering to the surface and leaves the finished articles with a clean bright coat of flexible metal.
hen the article is a casting or fitting which is greasyl add to the first piclrlingbath about four pounds of caustic sodato remove the grease.
As a substitute for the sodium used in the metallic bath I can use eighteen pounds of britannia metal, or the proportionate amount of the metals of which it is composed. I prefer to use the sodium as it gives a brighter and smoother coat I find in use that the metallic bath will deteriorate and I ascertain this fact by the formation of a thick frothy scum upon top. When this occurs I skim 0d the scum, and add about one pound of muriate of ammonia.
It is also a fact to be noticed that the articles will take up more than a proportionate amount of sodium. This fact is indicated by the color of the coated article. So soon as the coating shows a bluish cast when removed from the metallic bath, it indicates to the operator that more sodium should be added. Usually from one-half to one ounce of the metal sodium will correct the bath. This can he readily determined by the operator, as when the bath has the requisite amount of sodium the coated article comes outof the bath with bright White coating.
I have described my process when used with a one ton bath which is about as small as it is economical to use. It is necessary to keep the bath kettle pretty Well filled. For this go purpose I mold the first bath into ingots, and when the metal is withdrawn from the bath 1 add the alloy to keep the kettle full. By this means I keep a supply of the metal in stock. I am enabled by having a quantity of 5 the metal prepared to run my process continuously. This is impossible with the ordinary galvanizing or zinc process which forms a heavy sediment that settles in the kettle. From twenty to thirty per cent of the metal {00 settles and is Worthless for coating. I have no difficulty of this kind as all my metal is used the sediment amounts to very little.
I intend to prepare my alloy in ingots for sale to parties who desire to use my coating process on a limited scale. The proportions I have given above for the alloy, and for the baths for preparing the metals to be coated, I have found after experience to be the best, but these proportions may be varied somewhat.
What I claim as new and desire to secure by Letters Patent is:
1. In the process of coating with metal, immersing the metal to be coated in a bath consisting of lead, block tin, bismuth, sodium, and muriate of ammonia in about the following proportions for acne ton bath to wit: lead thirteen hundred pounds block tin seven hundred pounds, bismuth one-half pound,
sodium six ounces, and muriate of ammonia two pounds prepared substantially as speciammonia two pounds, spelter zinc ten pounds,
and after drying dipping the article in a hot metallic bath of lead, block tin, bismuth, sodium, and muriate of ammonia-,in the proportions specified and finally plunging the article in a bath of boiling waterand muriate of ammonia in the proportions one pound of muriate of ammonia to forty gallons of water.
WVM. MILD. lVitnesses:
F. T. IIAMMERLE, E. SAMUELS.
US491220D William mild Expired - Lifetime US491220A (en)

Publications (1)

Publication Number Publication Date
US491220A true US491220A (en) 1893-02-07

Family

ID=2560066

Family Applications (1)

Application Number Title Priority Date Filing Date
US491220D Expired - Lifetime US491220A (en) William mild

Country Status (1)

Country Link
US (1) US491220A (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2774686A (en) * 1952-01-08 1956-12-18 Kaiser Aluminium Chem Corp Hot dip aluminum coating process

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2774686A (en) * 1952-01-08 1956-12-18 Kaiser Aluminium Chem Corp Hot dip aluminum coating process

Similar Documents

Publication Publication Date Title
US3320040A (en) Galvanized ferrous article
US2569097A (en) Method of coating ferrous metal with aluminum or an aluminum alloy
US2686355A (en) Process for coating metals with aluminum
CA1064786A (en) Low tin terne coating
CN101374970B (en) Hot-dip galvanizing bath and galvanized iron article
US2774686A (en) Hot dip aluminum coating process
US213015A (en) Improvement in processes for galvanizing and tinning iron
US1741388A (en) Metal coating metal sheets
US2303035A (en) Brightening electrodeposited tincontaining coatings
JP3501697B2 (en) Flux and method for producing hot-dip Zn-Mg-Al-based alloy-plated steel using the same
US1941750A (en) Method of thermically coating objects of iron or steel with aluminum or aluminum alloy
US2052363A (en) Protecting metal surfaces from corrosion
US547381A (en) Robert mcknight
US2209291A (en) Rust removing composition
US135028A (en) Improvement in metallic compounds for coating cutlery
US2493768A (en) Method of lead coating
US990443A (en) Process for combining a permeating metallic protective with the surfaces of ferric articles.
US1364051A (en) Process of electroplating
US328239A (en) Alloy for coating metals
US1378439A (en) Coating ferrous metals
DE535988C (en) Core supports and similar foundry supplies
US1254796A (en) Coating of pipes.
US516551A (en) Process of coating cast-iron with other metals or alloys
US1231285A (en) Process of making tin-plate.
US242624A (en) Process of coating metals with lead