US2026567A - Free cutting alloys - Google Patents

Free cutting alloys Download PDF

Info

Publication number
US2026567A
US2026567A US2026567DA US2026567A US 2026567 A US2026567 A US 2026567A US 2026567D A US2026567D A US 2026567DA US 2026567 A US2026567 A US 2026567A
Authority
US
United States
Prior art keywords
per cent
alloy
lead
aluminum
bismuth
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 US2026567A publication Critical patent/US2026567A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C22METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
    • C22CALLOYS
    • C22C21/00Alloys based on aluminium
    • C22C21/02Alloys based on aluminium with silicon as the next major constituent

Definitions

  • This invention relates to aluminum base alloys and it is particularly concerned with alloys of this nature containing substantial amounts of silicon together with other elements such as copper, nickel, magnesium and the like.
  • One of the objects of our invention is to diminish the irregularity in cut caused by the hard silicon particles in an alloy of the kind described in a simple, economical manner and to thereby obtain a smooth, uniformly cut, machined finish. Another object is to accomplish the foregoing end without substantial detriment to the physical properties of the alloy.
  • An alloy of this type adapted to the manufacture of wrought or cast pistons is one which contains from about '7 to 15 per cent silicon, 0.5 to '7 per cent nickel, 0.3 to 4 per cent copper, and 0.2 to 3 per cent magnesium.
  • the machining quality of such an alloy may be markedly improved by the addition of at least one of the class of elements lead, bismuth, cadmium, and/or thallium in amounts of from about 0.1 to 6 per cent.
  • the aforesaid elements are substantially equivalent in alloys of the type herein described by reason of their similar effect upon the machining quality of said alloys.
  • lead, thallium, bismuth, and/or cadmium may be added to an aluminum-siliconnickel-magnesium-copper alloy in the proportion hereinabove disclosed, we prefer to use between about 1 and 4 per cent for many applications. We have further found that better results are often obtained by adding not less than about 1.5 per cent of cadmium or bismuth to the aforementioned class of alloys. Formany purposes a base alloy is very satisfactory which contains from about 10 to 15 per cent of silicon, from about 2 to 5 per cent of nickel, from about 0.5 to 2 per cent of copper and. from about 0.2 to 1 per cent of magnesium. Machining tests on alloys within this range containing additions of lead, thallium, bismuth, and/or cadmium have shown a marked superiority over the same alloy without the added elements.
  • the tensile properties of the alloy are not materially affected by the additions of lead, thallium, cadmium, and bismuth inv total amounts of less than about 4 per cent. If a greater quantity is used, there may be a slight decline in strength but the machinability is often better which compensates in part for the decrease in another property. For certain applications such a compromise in properties may be desirable.
  • the lead, thallium, bismuth and/or cadmium are most conveniently added to the molten alloy in solid metallic form since they melt at a temperature considerably below that of the aluminum and aluminum-silicon base alloys. If more The chips flow freely from than about 1.5 per cent of these elements is to be added to the alloy, the molten bath should be heated somewhat above the ordinary melting temperatures and vigorously stirred to assure a uniform mixture.
  • the method of adding heavy low melting point metals to aluminum or its alloys here referred to is more fully described in copending application Serial No. 639,885 now Patent 'No. 1,959,029, granted May 15, 1934. When cadmium is added to the alloy, however, the temperature should not exceed about 1400 F. to avoid volatilization of the metal.
  • alloys herein disclosed may be subjected to the usual thermal treatments familiar to those skilled in the art for the purpose of improving or altering their physical characteristics.
  • An aluminum base alloy containing from about '7 to 15 per cent of silicon, from about 0.3 to 4 per cent of copper, from about 0.2 to 3 per cent of magnesium, from about 0.5 to 7 per cent of nickel, at least 0.1 per cent of lead and at least about 0.1 per cent of bismuth, the total amount of lead and bismuth being from about 1 to 4 per cent, the balance being aluminum.

Description

Patented Jan. 7, 1936 UNITED STATES PATENT OFFICE FREE CUTTING ALLOYS Louis W. Kempi and Walter A. Dean, Cleveland, Ohio, assignors to Aluminum Company of America, Pittsburgh, Pa., a corporation of Pennsylvania 5 Claims This invention relates to aluminum base alloys and it is particularly concerned with alloys of this nature containing substantial amounts of silicon together with other elements such as copper, nickel, magnesium and the like.
This application is a division of our copending application Serial No. 689,882, filed September 18, 1933. Alloys disclosed but not claimed herein are claimed in our above mentioned application Serial No. 689,882 and our copending applications Serial Nos. 19,619, 19,620, 19,621, 19,622, and 19,623, filed May 3, 1935.
The development of internal combustion engines of increased efliciency has rendered desirable the use of aluminum base alloys because of their lightness, strength, and thermal conductivity. The relatively large thermal expansion of aluminum has, however, been a handicap Where there is considerable localized variation in temperature such as in parts closely associated with the combustion chamber. For this reason alloys have been developed which have a thermal expansion closely akin to that of cast iron, the material commonly used for cylinder blocks. A type of aluminum base alloy of this character is one wherein a substantial amount of silicon is used in conjunction with smaller quantities of other elements. While such alloys are well adapted to use in internal combustion engines, they nevertheless present a difficult problem in machining because of the trouble encountered in obtaining an evenly cut, smooth surface. This condition arises in part through the occurrence of hard particles of elementary silicon distributed throughout the alloy which appear to have segregated during cooling of the alloy from the molten state. These hard particles not only cause an excessive wear on the cutting tool edge but they are also likely to be loosened from the alloy surface during the machining operation and cause a scoring or galling of the machined surface which is quite objectionable in the finished article. A means of improving the machinability is, therefore, eminently desirable especially from the standpoint of economical production of the finished article and from the behavior of the part in service.
One of the objects of our invention is to diminish the irregularity in cut caused by the hard silicon particles in an alloy of the kind described in a simple, economical manner and to thereby obtain a smooth, uniformly cut, machined finish. Another object is to accomplish the foregoing end without substantial detriment to the physical properties of the alloy.
We have now discovered that the addition of lead, bismuth, cadmium, and/or thallium greatly improves the machinabllity and appearance of an aluminum base alloy containing silicon, nickel, copper, and magnesium in spite of any hard particles that may be present. An alloy of this type adapted to the manufacture of wrought or cast pistons is one which contains from about '7 to 15 per cent silicon, 0.5 to '7 per cent nickel, 0.3 to 4 per cent copper, and 0.2 to 3 per cent magnesium. The machining quality of such an alloy may be markedly improved by the addition of at least one of the class of elements lead, bismuth, cadmium, and/or thallium in amounts of from about 0.1 to 6 per cent. For the purpose of our invention the aforesaid elements are substantially equivalent in alloys of the type herein described by reason of their similar effect upon the machining quality of said alloys.
Although lead, thallium, bismuth, and/or cadmium may be added to an aluminum-siliconnickel-magnesium-copper alloy in the proportion hereinabove disclosed, we prefer to use between about 1 and 4 per cent for many applications. We have further found that better results are often obtained by adding not less than about 1.5 per cent of cadmium or bismuth to the aforementioned class of alloys. Formany purposes a base alloy is very satisfactory which contains from about 10 to 15 per cent of silicon, from about 2 to 5 per cent of nickel, from about 0.5 to 2 per cent of copper and. from about 0.2 to 1 per cent of magnesium. Machining tests on alloys within this range containing additions of lead, thallium, bismuth, and/or cadmium have shown a marked superiority over the same alloy without the added elements.
As a particular example of the improvement in machinability obtained through the application of our invention, the case of an alloy which is employed in making wrought pistons for aircraft motors may be cited. The design of such pistons requires that considerable machining be done to finish them for service. An alloy used for this purpose has a nominal composition of 12.5 per cent silicon, 0.8 per cent nickel, 1.15 per cent magnesium, and 0.8 per cent copper, the balance being aluminum. Pistons made from this alloy frequently have score marks on the machined surface where a particle of elementary silicon may have been drawn across the metal by the tool in the course of the machining operation. The Variation in hardness of the surface, probably caused by the presence of elementary silicon, also'tends to produce an irregular machined surface. It is very difficult to obtain satisfactory machined surfaces on the above alloy on a commercial scale with ordinary cutting tools without a frequent resharpening. By the addition of about 3 per cent of lead to an alloy of the composition glven above, it is possible to obtain a very smooth surface with an ordinary carbon steel cutting tool. the article being machined and are shorter and. more breakable than when no lead is added to the alloy. There appears to be no undesirable chatteror vibration of the cutting tool which would be induced by a marked variation in hardness. A uniformly smooth out is made by the 7 'an aluminum base alloy containing about 12.5
per cent of silicon, 0.8 per cent of nickel, 1.15 per cent of magnesium, 0.8 per cent of copper, and about 1 per cent each of lead and bismuth, balance substantially aluminum, machined more readily under test than the same alloy containing only 2 per cent of lead and no bismuth. Likewise a combination of 2 per cent each of lead and bismuth produced a better machining quality in the alloy than 4 per cent of lead alone. The total amount of the added elements here referred to should not exceed about 6 per cent; and preferably a maximum of 4 per cent total is adhered to in order to obtain the most advantageous combination of all the properties of the alloy.
The tensile properties of the alloy are not materially affected by the additions of lead, thallium, cadmium, and bismuth inv total amounts of less than about 4 per cent. If a greater quantity is used, there may be a slight decline in strength but the machinability is often better which compensates in part for the decrease in another property. For certain applications such a compromise in properties may be desirable.
The lead, thallium, bismuth and/or cadmium are most conveniently added to the molten alloy in solid metallic form since they melt at a temperature considerably below that of the aluminum and aluminum-silicon base alloys. If more The chips flow freely from than about 1.5 per cent of these elements is to be added to the alloy, the molten bath should be heated somewhat above the ordinary melting temperatures and vigorously stirred to assure a uniform mixture. The method of adding heavy low melting point metals to aluminum or its alloys here referred to is more fully described in copending application Serial No. 639,885 now Patent 'No. 1,959,029, granted May 15, 1934. When cadmium is added to the alloy, however, the temperature should not exceed about 1400 F. to avoid volatilization of the metal.
The term aluminum used herein and in the appendedclaimsembraces the usual impurities found in aluminum ingot of commercial grade, or picked up in the course of the usual handling operations incident to ordinary melting practice.
The alloys herein disclosed may be subjected to the usual thermal treatments familiar to those skilled in the art for the purpose of improving or altering their physical characteristics.
' We claim:
1. An aluminum base alloy containing from about '7 to 15 per cent of silicon, from about 0.3
to 4 per cent of copper, from about 0.2 to 3 per cent of magnesium, from about 0.5 to 7 per cent of nickel, at least 0.1 per cent of lead and at least about 0.1 per cent of bismuth,-the total amount of lead and bismuth being not over about 6 per cent, the balance being aluminum.
2. An aluminum base alloy containing from about '7 to 15 per cent of silicon, from about 0.3 to 4 per cent of copper, from about 0.2 to 3 per cent of magnesium, from about 0.5 to 7 per cent of nickel, at least 0.1 per cent of lead and at least about 0.1 per cent of bismuth, the total amount of lead and bismuth being from about 1 to 4 per cent, the balance being aluminum.
3. An aluminum base alloy containing about 12.5 per cent of silicon, 0.8 per cent of nickel, 1.15
per cent of magnesium, 0.8 per cent of copper,
and l per cent each of lead and bismuth, the balance being aluminum.
4. An aluminum base alloy containing about 12.5 per cent of silicon, 0.8 per cent of nickel, 1.15
per cent of magnesium, 0.8 per cent of copper and 2 per cent each of lead and bismuth, the balance being aluminum.
5. An aluminum base alloy containing from about 10 to 15 per cent of silicon, from about 0.5
to 2 per cent of copper, from about 0.2 to 1 per cent of magnesium, from about 2 to 5 per cent of nickel, at. least 0.1 per cent of lead, and at least about 0.1 per cent of bismuth, the total amount of lead and bismuth being not over about 6 per cent, the balance being aluminum.
LOUIS W. KEMPF. WALTER A. DEAN.
US2026567D Free cutting alloys Expired - Lifetime US2026567A (en)

Publications (1)

Publication Number Publication Date
US2026567A true US2026567A (en) 1936-01-07

Family

ID=3427610

Family Applications (1)

Application Number Title Priority Date Filing Date
US2026567D Expired - Lifetime US2026567A (en) Free cutting alloys

Country Status (1)

Country Link
US (1) US2026567A (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS60106937A (en) * 1983-11-15 1985-06-12 Showa Alum Corp Wear resistant aluminum alloy with superior machinability
US6168675B1 (en) 1997-12-15 2001-01-02 Alcoa Inc. Aluminum-silicon alloy for high temperature cast components

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS60106937A (en) * 1983-11-15 1985-06-12 Showa Alum Corp Wear resistant aluminum alloy with superior machinability
JPS6214206B2 (en) * 1983-11-15 1987-04-01 Showa Aluminium Co Ltd
US6168675B1 (en) 1997-12-15 2001-01-02 Alcoa Inc. Aluminum-silicon alloy for high temperature cast components

Similar Documents

Publication Publication Date Title
US1947121A (en) Aluminum base alloys
US2185348A (en) Aluminum base alloy
US2026572A (en) Free cutting alloys
US2026567A (en) Free cutting alloys
US2026571A (en) Free cutting alloys
US2026568A (en) Free cutting alloys
US2026570A (en) Free cutting alloys
US2026544A (en) Free cutting alloys
US2026569A (en) Free cutting alloys
US2026541A (en) Free cutting alloys
US2026542A (en) Free cutting alloys
US1986827A (en) Free cutting alloy
US2026575A (en) Free cutting alloys
US2026543A (en) Free cutting alloys
US2026566A (en) Free cutting alloys
JPH0434621B2 (en)
US2026561A (en) Free cutting alloys
US1698934A (en) Alloy and method of making the same
US2026557A (en) Free cutting alloys
US2053346A (en) Roll for fabricating hot metal
US2026565A (en) Free cutting alloys
US2026576A (en) Free cutting alloys
US1932838A (en) Aluminum alloys
US2026551A (en) Free cutting alloys
US2026562A (en) Free cutting alloys