US2280175A - Aluminum alloy - Google Patents

Aluminum alloy Download PDF

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US2280175A
US2280175A US359245A US35924540A US2280175A US 2280175 A US2280175 A US 2280175A US 359245 A US359245 A US 359245A US 35924540 A US35924540 A US 35924540A US 2280175 A US2280175 A US 2280175A
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per cent
alloy
columbium
tantalum
aluminum
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US359245A
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Philip T Stroup
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Howmet Aerospace Inc
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Aluminum Company of America
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Priority claimed from US301594A external-priority patent/US2226594A/en
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    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C21/00Alloys based on aluminium
    • C22C21/12Alloys based on aluminium with copper as the next major constituent

Definitions

  • grain size refers to the dimensions of the individual crystals which compose the me tallic body.
  • the grain size is usually referred to as being fine, medium, or coarse, and the shape of the grains is described as being equiaxed or elongated, depending upon the relative dimensions of the grain.
  • a fine equiaxed grain size is considered to be most desirable in an alloy both from the standpoint of strength and hardness, as well as workability.
  • the aluminum base alloys which are particularly benefited by the addition. of at least one of the elements of the columbium-tantalum group are those containing from 0.25 to 12 per cent copper, or 0.5 to 15 per cent magnesium, or 0.25 to 14 per cent silicon, or 0.5 to 20 per cent zinc, or 0.1 to 3 per cent manganese, or combinations of two or more of these elements.
  • alloys may also contain one'or more of the following elements, often referred to as hardeners, in the following percentages: 0.05 to 0.5 per cent chromium, 0.01 to 0.5 per cent titanium, 0.25 to 2.5 per cent nickel, 0.01 to 0.5 per cent boron, 0.002 to 2 per cent beryllium, 0.1 to 0.5 per cent molybdenum and 0.1 to 0.5 per cent zirconium.
  • the total amount of the latter elements should not exceed about 3 per cent.
  • sium 0.25 per cent chromium; 2 per cent MgzSi, 0.25 per cent chromium; 4 per cent copper; 5
  • the tantalum and columbium may be added to molten aluminum base alloys in any convenient manner. I have found that the ferroalloys of these two elements provide a satisfactory source.
  • the ferro-alloy is preferably diluted both elements, to a particular alloy is illustrated I Fig. 4 is a photomicrograph of the same alloy to which 0.02 per cent columbium and. 0.07 per cent tantalum had been added.
  • the alloy employed for the test was one which is widely used in wrought form, and has a nominal composition of 2.5 per cent magnesium, 0.25
  • this diluted alloy containing, for example, 2 to 5 per cent of columbium or tantalum is used for making additions.
  • This diluted alloy may be referred to as a hardening or rich alloy.
  • the amount of tantalum and columbium used is so small, the amount of iron which is also introduced along with these elements from the ferro-alloys is likewise small and has no significant effect in the case of most alloys.
  • Another advantage obtained through using the ferro-alloys as a source of columbium and tantalum is that both of these elements will usually be present and therefore tend to produce an even finer structure than if only one is employed.
  • aluminum base alloys herein, I mean those which contain at least 50 per cent aluminum.
  • the term aluminum as herein employed refers to the metal as commercially produced which contains impurities.
  • a quantity of the alloy was first melted and a specimen poured at a temperature of 1350 mold having the shape ofa frustum of an inverted cone with a diameter of about three inches at the F. into a cold thin-walled ironbase of the cone. About five minutes was required for the metal to completely solidify, which tended to promote the formation of large grains. The remaining melt was divided into three portions, 0.03 per cent columbium being added to one, 0.06 per cent tantalum being added to the second, and 0.02 per cent columbium and 0.07 per cent tantalum being added to the third. Specimens were cast at a temperature of 1350? F. in
  • Fig. 1 the large grains of the may be plainly seen. Grains of this size are regarded as being too coarse for a satisfactory cast ing as well as promoting cracking and checking in a body that is to be subsequently worked.
  • the criss-cross markings on some of the grains illustrate a common solidification phenomenon known as dendritic formation.
  • the grain-refining effect of adding columbium to the allow is seen in Fig. 2. In comparison to Fig. 1, the grains are very small and equi-axed.
  • Fig. 3 the large grains of the may be plainly seen. Grains of this size are regarded as being too coarse for a satisfactory cast ing as well as promoting cracking and checking in a body that is to be subsequently worked.
  • the criss-cross markings on some of the grains illustrate a common solidification phenomenon known as dendritic formation.
  • the grain-refining effect of adding columbium to the allow is seen in Fig. 2.
  • the grains are very small and e
  • a cast article composed of an aluminum base alloy consisting of from 0.25 to 12 per cent copper, 0.5 to 15 per cent magnesium, 0.25 to 14 per cent silicon, at least 0.01 per cent each of the metals tantalum and columbium, the total amount of said two metals not exceeding 0.5 per cent, and the balance aluminum.
  • a cast article composed of an aluminum base alloy containing from 0.25 to 12 per cent copper, 0.5 to 15 per cent magnesium, 0.25 to 14 per cent silicon, and at least 0.01 per cent of each of the metals tantalum and columbium, the total amount of said two metals not exceeding 0.5 per cent and the balance substantially aluminum, said alloy being characterized in the ascast condition by a finer grain size than the same alloy containing either tantalum or columbium alone.
  • a cast article composed of an aluminum base alloy consisting of from 0.25 to 12 per cent copper, 0. 5 to 15 per cent magnesium, 0.25 to 14 per cent silicon, and at least one of the hardeners of the group composed of 0.05 to 0.5 per 0.5 .per cent titanium, 0.25 to 2.5 per cent nickel, 0.01 to 0.5 per cent boron, 0.002 to 2 per cent beryllium, 0.1 to 0.5 per cent molybdenum, and 0.1 to 0.5 per cent zirconlum, the total amount of said hardeners not exceeding about 3 per cent, and at least 0.01 per cent of each of the metals tantalum and columbium, the total amount of said two metals not exceeding 0.5 per cent, the balance of the alloy being aluminum.

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • Mechanical Engineering (AREA)
  • Metallurgy (AREA)
  • Organic Chemistry (AREA)
  • Continuous Casting (AREA)

Description

- April 21, 1942.
P. STROUP ALUMINUM ALLOY Origina led Oct INVENTOR Pfz i/ip 7.".Sfroup ATTORNEY portant is the grain size of the metal.
Patented Apr. 21, 1942 UNITED STATES PATENT OFFICE 2,250,175 ALUMINUM ALLOY Philip T. Stroup, New Kensington, Pa., assignor to Aluminum Company of America, Pittsburgh, Pa., a corporation of Pennsylvania Original application October 27, 1939, Serial No. 301,594. Divided and this application October 1, 1940, Serial No. 359,245
3 Claims. (01. 75-142) This invention relates to aluminum base alloys, and it is particularly concerned with controlling the grain size in castings. This is a divisional application of my copending application, Serial No.- 301,594, filed October 27, 1939.
Among the factors which affect the properties and behavior of both wrought and cast alum inum base alloy articles, one of the most im- The term grain size refers to the dimensions of the individual crystals which compose the me tallic body. The grain size is usually referred to as being fine, medium, or coarse, and the shape of the grains is described as being equiaxed or elongated, depending upon the relative dimensions of the grain. Generally, a fine equiaxed grain size is considered to be most desirable in an alloy both from the standpoint of strength and hardness, as well as workability. Since some aluminum base alloys do not inherently exhibit a small grain size in the as-cast of grains in aluminum base alloy castings should possess the following characteristics: (1) convenience in application; (2) uniformity in effect; and (3) a minimum of undesired effect on other important properties. i
It is the principal object of my invention to provide a-simple means for producing small equiaxed grains in cast aluminum base alloys. Another object is to provide a meansfor effecting this control of grain size which'has the abovev mentioned characteristics. These and other objects will. become apparent from the following description of my invention.
I have discovered that the addition of small amounts of one or both of the elements, columbium and tantalum, to aluminum base alloys produces a small grain size in the as-cast product. While the presence of either element alone in an alloy has a pronounced effect upon the grain size, an even greater effect is obtained if both elements are present. As far as I have 010- served, the addition of these elements to aluminum base alloys does not adversely afiect other properties which are generally desired, such as hardness, strength, ductility, workability, and resistance to corrosion. I have also observed that the grain-refining effect obtained through the addition. of these elements is substantially uniform throughout the entire article. This uniformity in effect is particularly advantageous in the casting of ingots or other articles of relatively large cross sectional dimension.
' The benefit derived from adding columbium and/or tantalum toaluminum base alloys as mentioned hereinabove is particularly evident in the reduction of the grain size of the as-cast metal. However, the addition of these elements may also have other. beneficial effects both in the casting and in the wrought product made from the cast article. By emphasizing the effect upon the grain size of the cast alloys, 1 do not wish to minimize any advantages gained in other respects.
Only relatively small amounts of columbium and tantalum are required to produce a fine grainsize in castings, from 0.01 to 0.1 per cent of either one generally being sumcient for the purpose. In certain cases it may be necessary to employ even more, but in no event should the amount exceed 0.5 per cent, and preferably not over 0.4 per cent. Although either element is effective when used separately, I have found that an even more pronounced grain-refining effect is obtained if both are simultaneously employed. In such a case the total amount should not be less than about 0.02 per cent, nor should it exceed about 0.5 per cent.
The elements columbium and tantalum, for the purposes of my invention, are regarded'as being equivalent to each other, thatis, one may be substituted for. the other although not necessarily in the same proportions, and therefore they constitute a group. In addition to having a similar grain refining effect on aluminum base alloys, these'elements resemble each other in that both of them occur in the same subgroup of group V of the periodic table, both have bodycentered space lattices, and. both form the same type of alloy constitutional diagram with aluminum.
The aluminum base alloys. which are particularly benefited by the addition. of at least one of the elements of the columbium-tantalum group are those containing from 0.25 to 12 per cent copper, or 0.5 to 15 per cent magnesium, or 0.25 to 14 per cent silicon, or 0.5 to 20 per cent zinc, or 0.1 to 3 per cent manganese, or combinations of two or more of these elements. These alloys may also contain one'or more of the following elements, often referred to as hardeners, in the following percentages: 0.05 to 0.5 per cent chromium, 0.01 to 0.5 per cent titanium, 0.25 to 2.5 per cent nickel, 0.01 to 0.5 per cent boron, 0.002 to 2 per cent beryllium, 0.1 to 0.5 per cent molybdenum and 0.1 to 0.5 per cent zirconium. The total amount of the latter elements, however, should not exceed about 3 per cent. As
- and exemplary of the variety of alloys whose grain size has been found to be reduced by the addition of columbium and/or tantalum, the following compositions are cited, wherein aluminum constitutes the balance of the alloy in each case:
1.25 per cent manganese; 2.5 per cent magne'.
sium, 0.25 per cent chromium; 2 per cent MgzSi, 0.25 per cent chromium; 4 per cent copper; 5
per cent silicon; 5.25 per cent MgZnz; 1.25 per cent magnesium, 0.5 per cent zinc, 0.15 per cent copper; and 4.4 per cent copper, 0.65 per cent manganese, 1.5 per cent magnesium.
The effect of adding columbium or tantalum, or
of both columbium and tantalum on the grain size is shown in Fig. 4. The grain size is so small as to be scarcely distinguishable at a magnification of threediameters, which is the same magnification that was used in the other photomicrographs. I
The tantalum and columbium may be added to molten aluminum base alloys in any convenient manner. I have found that the ferroalloys of these two elements provide a satisfactory source. The ferro-alloy is preferably diluted both elements, to a particular alloy is illustrated I Fig. 4 is a photomicrograph of the same alloy to which 0.02 per cent columbium and. 0.07 per cent tantalum had been added.
The alloy employed for the test was one which is widely used in wrought form, and has a nominal composition of 2.5 per cent magnesium, 0.25
per cent chromium, and the balance aluminum with aluminum at a high temperature, and this diluted alloy containing, for example, 2 to 5 per cent of columbium or tantalum is used for making additions. This diluted alloy may be referred to as a hardening or rich alloy. Generally speaking, since the amount of tantalum and columbium used is so small, the amount of iron which is also introduced along with these elements from the ferro-alloys is likewise small and has no significant effect in the case of most alloys. Another advantage obtained through using the ferro-alloys as a source of columbium and tantalum is that both of these elements will usually be present and therefore tend to produce an even finer structure than if only one is employed.
In referring to aluminum base alloys herein, I mean those which contain at least 50 per cent aluminum. The term aluminum" as herein employed refers to the metal as commercially produced which contains impurities.-
containing. a maximum of 0.3 per cent iron and silicon as impurities. A quantity of the alloy was first melted and a specimen poured at a temperature of 1350 mold having the shape ofa frustum of an inverted cone with a diameter of about three inches at the F. into a cold thin-walled ironbase of the cone. About five minutes was required for the metal to completely solidify, which tended to promote the formation of large grains. The remaining melt was divided into three portions, 0.03 per cent columbium being added to one, 0.06 per cent tantalum being added to the second, and 0.02 per cent columbium and 0.07 per cent tantalum being added to the third. Specimens were cast at a temperature of 1350? F. in
the same iron' mold as the alloy'without the columbium or tantalum additionathe mold-in each case being at room temperature, or cold, when the metal. was poured into it. The specimens were sectioned in a vertical plane, polished, and etched in an aqueous solution of nitric and hydrochloricacids. A representative section of each specimen was then photographed at a magnification of three diameters.
In Fig. 1 the large grains of the may be plainly seen. Grains of this size are regarded as being too coarse for a satisfactory cast ing as well as promoting cracking and checking in a body that is to be subsequently worked. The criss-cross markings on some of the grains illustrate a common solidification phenomenon known as dendritic formation. The grain-refining effect of adding columbium to the allow is seen in Fig. 2. In comparison to Fig. 1, the grains are very small and equi-axed. In Fig. 3, the
grain size of the alloy to which tantalum had been added may be seen. since 0.06 per cent tantalum was employed, as compared to 0.03 per cent columbium in the preceding example, it is not surprising that the grain size should be smaller than in Fig. .2. The very marked eil'ect untreated alloy I cent chromium, 0.01 to Where, in the appended claims, the balance ofv an alloy is said to be substantially aluminum," it is intended thatthis expression shall permit theinclusion in the alloy composition of one or more of the hardening elements mentioned hereinabove as' well as the usual impurities.
I claim: I
1. A cast article composed of an aluminum base alloy consisting of from 0.25 to 12 per cent copper, 0.5 to 15 per cent magnesium, 0.25 to 14 per cent silicon, at least 0.01 per cent each of the metals tantalum and columbium, the total amount of said two metals not exceeding 0.5 per cent, and the balance aluminum.
2. A cast article composed of an aluminum base alloy containing from 0.25 to 12 per cent copper, 0.5 to 15 per cent magnesium, 0.25 to 14 per cent silicon, and at least 0.01 per cent of each of the metals tantalum and columbium, the total amount of said two metals not exceeding 0.5 per cent and the balance substantially aluminum, said alloy being characterized in the ascast condition by a finer grain size than the same alloy containing either tantalum or columbium alone.
3. A cast article composed of an aluminum base alloy consisting of from 0.25 to 12 per cent copper, 0. 5 to 15 per cent magnesium, 0.25 to 14 per cent silicon, and at least one of the hardeners of the group composed of 0.05 to 0.5 per 0.5 .per cent titanium, 0.25 to 2.5 per cent nickel, 0.01 to 0.5 per cent boron, 0.002 to 2 per cent beryllium, 0.1 to 0.5 per cent molybdenum, and 0.1 to 0.5 per cent zirconlum, the total amount of said hardeners not exceeding about 3 per cent, and at least 0.01 per cent of each of the metals tantalum and columbium, the total amount of said two metals not exceeding 0.5 per cent, the balance of the alloy being aluminum.
' PHILIP T. S'I'ROUP.
US359245A 1939-10-27 1940-10-01 Aluminum alloy Expired - Lifetime US2280175A (en)

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2532070A (en) * 1946-04-27 1950-11-28 Aluminum Co Of America Cast piano plate
US3356494A (en) * 1964-12-23 1967-12-05 Reynolds Metals Co Fluxless aluminum brazing alloys
DE2235168A1 (en) * 1971-07-20 1973-02-01 British Aluminium Co Ltd ALUMINUM ALLOYS, METHOD OF MANUFACTURING AND USING THEREOF
JPS4830805B1 (en) * 1968-11-12 1973-09-25

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2532070A (en) * 1946-04-27 1950-11-28 Aluminum Co Of America Cast piano plate
US3356494A (en) * 1964-12-23 1967-12-05 Reynolds Metals Co Fluxless aluminum brazing alloys
JPS4830805B1 (en) * 1968-11-12 1973-09-25
DE2235168A1 (en) * 1971-07-20 1973-02-01 British Aluminium Co Ltd ALUMINUM ALLOYS, METHOD OF MANUFACTURING AND USING THEREOF

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