US1932846A - Aluminum alloys - Google Patents

Aluminum alloys Download PDF

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US1932846A
US1932846A US634164A US63416432A US1932846A US 1932846 A US1932846 A US 1932846A US 634164 A US634164 A US 634164A US 63416432 A US63416432 A US 63416432A US 1932846 A US1932846 A US 1932846A
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per cent
alloy
aluminum
alloys
weight
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US634164A
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Walter A Dean
Louis W Kempf
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Howmet Aerospace Inc
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Aluminum Company of America
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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
    • C22C21/06Alloys based on aluminium with magnesium as the next major constituent

Description

Patented Get. 31, 1933 NITED STATES ALUMINUIH ALLOYS Walter A. Dean and Louis W. Kempf, Cleveland, Ohio, assignors to Aluminum Company of America, Pittsburgh, Pennsylvania Pa., a corporation .of
No Drawing. Application September 21, 1932 Serial No. 634,164
3 Claims.
This invention relates to aluminum base alloys which have excellent properties at elevated temperatures, which are generally adapted to foundry purposes and which are insensitive to the common impurities found in commercial aluminum.
A good foundry alloy which will retain a substantial proportion of its physical and tensile properties at elevated temperatures is constantly beingsearched for in the field of light metals. By light metals is not meant the'ordinary aluminum base alloys but only such of those alloys as contain substantial amounts of a metal lighter than aluminum so as to compensate in the alloy for the addition of metals heavier than aluminum. To provide such an alloy of good foundry characteristics and excellent strength at high temperatures is the object of this invention.
The aluminum base alloys containing magnesium are lighter than aluminum. They should therefore be excellent material from which to manufacture reciprocating parts which operate at elevated temperatures were it not for the fact 'that these alloys at elevated temperatures (such as 400 to 700 Fahrenheit) do not have the strength, the ductility and the hardness which are so often necessary. Moreover, the binary aluminum-magnesium alloys are somewhat lacking in the required foundry characteristics.
We have discovered, after extensive experimentation, an aluminum base alloy containing magnesium which fulfills, to a surprising extent, the requirements above mentioned. This alloy is one containing 3.0 to 8.0 per cent by weight of magnesium, 0.5 to 4.0 per cent by weight of manganese, and 0.5 to 4.0 per cent by weight of nickel, the balance being principally aluminum. This alloy, we have discovered, has excellent foundry characteristics, being capable of use either in sand or permanent molds. The alloy is light, is strong and hard and possesses these latter properties to a substantial extent at high temperatures. alloy is, moreover, constant in its properties over long periods at high temperature and is therefore a very dependable engineering material. Also the alloy is insensitive to impurities, which is to say that its properties are not materially aflected by the varying amount of impurities, such as iron, which may be found in the commercial aluminum from which it is usually made.
The tensile strength of the alloy is high at elevated temperature and its elongation, a measure of ductility, is adequate. It retains this high strength at elevated temperatures over long periods without substantial change and does not become brittle. Examples of the strength and due- The.
tility of the alloys will be found in Table I where are listed the tensile-strength and elongation of three sand castings made of the alloy, annealed for 4 hours at 700 Fahrenheit, 20 days at 600 For comparison it may be stated that a binary aluminum-magnesium alloy containing 6 per cent magnesium and in sand cast form had, after a similar thermal treatment, a tensile strength of only 15,000 pounds per square inch and an elongation of 5 per cent in 2 inches.
The constancy of the properties of our new alloys is well illustrated by a comparison of one 8 of the alloys in sand cast form with a sand casting made of a well known aluminum alloy containing copper. Sand castings made of an alloy containing 6 per cent magnesium, 1.0 per cent manganese, and 1.5 per cent nickel, balance aluminum, were annealed for 2 hours at 550 Fahrenheit, the temperature was then increased to 600 Fahrenheit and the alloys tested at that temperature and then again tested at the expiration of 9 20 days at 600 Fahrenheit. Similar treatment 0 was aiforded sand castings made of an alloy containing 10 per cent copper, 0.2 per cent magnesium, and 1.2 per cent iron, balance aluminum, and these castings were similarly tested. The results are shown in Table II.
Table II Tensile strength Percent Days 1 Alloy composition pounds at per tion in F square Zinches inch 6% M 15% Ni 10% Mn 15,140 0.7 0
0% ml5%Ni 10%Mn 14,700 11.0 20 10 Cu... 02% M 12 Fe 16,200 3.2 0 10 011... 0.2% Mg.-. 1 2% Fe 9,400 11.2 20
A comparison of the values given in Table II will demonstrate that the aluminum-copper alloy lost about 42 per cent of its tensile strength in 20 days at 600 Fahrenheit while the tensile strength of the aluminum-magnesium-manganese-nickel alloy remained practically constant, losing only about 7 per cent.
The aluminum-magnesium-manganese-nickel alloys to which this invention refers have certain preferred forms. Within the composition limits above described, the alloys are satisfactory for most purposes, but we have found the best combination of properties in alloys containing 3.5 to 6.5 per cent by weight of magnesium, 0.5 to 2.0 per cent by weight of manganese, and 0.5 to 3.0 per cent by weight of nickel, balance principally aluminum. Excellent casting characteristics are found in an alloy containing 6 per cent by weight of magnesium, 1 per cent by weight of manganese, and 1.5 per cent by weight of nickel, balance principally aluminum. We have likewise discovered that certain other elements may be added to the alloy to effect particular purposes without materially harming the leading properties of the alloy. For instance:
The addition of very small amounts of antimony and bismuth (which metals may be regarded as a class) exerts a remarkable effect upon the properties of the alloys at high temperatures. The amount of antimony or bismuth to be added is small-from about 0.05 to 0.4 per cent by weight of the total alloy. Substantially larger amounts have the reverse effect and are detrimental to the alloy. Therefore, while antimony and his-- muth may be present singly or together, their total should not exceed about 0.4 per cent of the total alloy. The eifect exerted by the addition of small amounts of these elements is shown in Table III where are tabulated the results of tests on a number of sand castings which were annealed for 4 hours at 700 Fahrenheit and then 20 days at 600 Fahrenheit and finally tested at the latter temperature.
Table III Alloy composition grz l l g ti Percent pounds elongapersquare t1-on m Mg Ni Mn Sb Bi inch Zmches It will be noted that the addition of antimony or bismuth materially increases the ductility of the alloy at elevated temperature.
The alloys which are herein described may be made by any of the usual methods of compounding alloys, care being taken, of course, not to overheat or dross the metal during alloying.
Another property of these alloys is their improved fluidlty as compared with the alloys which have, heretofore, been widely used as a material for parts operating at elevated temperatures. Comparative tests, based upon the distance that the molten alloy, originally heated to a given temperature, will flow through a spiral formed in a sand mold, have shown that our novel alloys are very superior with respect to fluidity.
The aluminum used in the manufacture of the alloys may be of the highest purity or it may contain amounts of usual impurities, and the term aluminum as used herein and in the cla ms designates the aluminum of commerce. It is an incidental property of our alloys that the presence of iron in amounts as high as 2 per cent by weight is not harmful to the high temperature properties of the alloys and, therefore, a wide choice between the various grades of commercial alumnum is possible.
We claim:
1. A metallic alloy characterized by high physical and tensile properties at elevated temperatures and good fluidity and consisting of 3.0 to 8.0 per cent by weight of magnesium, 0.5 to 4.0 per cent by we'ght of manganese, 0.5 to 4.0 per cent by weight of nickel, and 0.05 to 0.4 per cent by weight of at least one of the class of elements composed of antimony and bismuth, the total amount of the antimony and/or bismuth being not greater than 0.4 per cent by weight, the balance being aluminum.
2. A metallic alloy characterized by high physical and tensile properties at elevated temperatures and good fluidity and consisting of 6 per cent by weight of magnesium, 1.0 per cent by weight of nickel, 0.5 per cent by weight of manganese, and 0.05 per cent by weight of antimony, the balance being aluminum.
3. A metallic alloy characterized by high physical and tensile properties at elevated temperatures and good fluidity and consisting of 6.0 per cent by weight of magnesium, 1.0 per cent by weight of nickel, 0.5 per cent by weight of manganese, and 0.05 per cent by weight of bismuth, the balance being aluminum.
WALTER A. DEAN. LOUIS W. KEMPF.
US634164A 1932-09-21 1932-09-21 Aluminum alloys Expired - Lifetime US1932846A (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4469537A (en) * 1983-06-27 1984-09-04 Reynolds Metals Company Aluminum armor plate system
US4626294A (en) * 1985-05-28 1986-12-02 Aluminum Company Of America Lightweight armor plate and method

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4469537A (en) * 1983-06-27 1984-09-04 Reynolds Metals Company Aluminum armor plate system
US4626294A (en) * 1985-05-28 1986-12-02 Aluminum Company Of America Lightweight armor plate and method

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