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Technical Papers and Discussions - Lithium - Laboratory Preparation of Lithium Metal by Vacuum Metallurgy (Metals Tech., June 1947, TP 2179)By A. W. Schlechten, W. J. Kroll
As this paper is written, the only method for the commercial production of lithium metal is by the fusion electrolysis of LiC1-KC1 mixtures, as first proposed by Gunkz.2 The details of the industrial
Jan 1, 1949
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Technical Papers and Discussions - Lithium - Vacuum Process for Preparation of Lithium Metal from Spodumcne (Metals Tech., September 1947, TP 2268) (With discussion)By R. A. Stauffer
The chief ore of lithium is spodumene, a lithium-aluminum silicate containing up to 3 pct lithium. The preparation of lithium salts from spodumene is costly because of the low concentration of the met
Jan 1, 1949
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Technical Papers and Discussions - Magnesium - Magnesium from Olivine (Metals Tech., April 1945, TP 1828)By E. C. Houston
The presence in the Tennessee Valley of extensive deposits of olivine, a silicate of magnesium and iron that contains approximately 28 per cent magnesium, has been recognized since 1896 when Lewis8 pu
Jan 1, 1949
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Technical Papers and Discussions - Magnesium - Pilot-plant Production of Electrolytic Magnesium from Magnesia (Metals Tech., April 1945, TP 1848)By C. K. Stoddard, R. G. Knickerbocker, E. T. Leidigh, R. R. Lloyd, K. L. Mattingly
During July 1941, a study was initiated at the Boulder City Experiment Station of the Bureau of Mines on proposed methods for the production of magnesium metal. The major emphasis was placed upon deve
Jan 1, 1949
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Technical Papers and Discussions - Magnesium - Production of Magnesium at Painesville, Ohio (Metals Tech., April 1945, TP 1829)By R. F. Evans, J. M. Avert
Much has been written of the glamour of magnesium from sea water, the Aladdin-like creation of a huge magnesium plant in the Nevada desert using cheap hydroelectric power from Boulder Dam; the marvels
Jan 1, 1949
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Technical Papers and Discussions - Magnesium - The Plant of the Dow Magnesium Corporation at Velasco, Texas (Metals Tech., April 1945, TP 1845)By C. M. Shigley
The record of the largest magnesium plant in the country utilizing sea water as a primary raw material stands as another victory in the struggle for large-scale production of pure chemical elements fr
Jan 1, 1949
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Technical Papers and Discussions - Magnesium - The Refractory or "Fireless Cooker" Method of Producing Magnesium (Metals Tech., December 1945, TP 1941)By E. G. De Coriolis
The development of huge production facilities and of new or improved processes for manufacturing magnesium from its raw sources has been an outstanding achievement of this war. Furthermore, at least o
Jan 1, 1949
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Technical Papers and Discussions - Magnesium Alloys - Properties of Cerium-containing klagnesium Alloys at Room and Elevated Temperatures (Metals Tech., Apr. 1995, with discussion)By T. E. Leontis, J. P. Murphy
During the last few years, the trend in the aircraft and automotive industries has been toward higher and higher operating engine temperatures. This has created considerable interest in the effect of
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Properties of Cerium-containing klagnesium Alloys at Room and Elevated Temperatures (Metals Tech., Apr. 1995, with discussion)By J. P. Murphy, T. E. Leontis
During the last few years, the trend in the aircraft and automotive industries has been toward higher and higher operating engine temperatures. This has created considerable interest in the effect of
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Rates of High Temperature Oxidation of Magnesium and Magnesium Alloys (Metals Tech., June 1946, T. P. 2003, with discussion)By F. N. Rhines, T. E. Leonitis
The oxide scale that forms upon magnesium at elevated temperatures is non-protective in the sense that the rate of oxidation is constant and thus does not decrease with the growth of the scale as it d
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Rates of High Temperature Oxidation of Magnesium and Magnesium Alloys (Metals Tech., June 1946, T. P. 2003, with discussion)By T. E. Leonitis, F. N. Rhines
The oxide scale that forms upon magnesium at elevated temperatures is non-protective in the sense that the rate of oxidation is constant and thus does not decrease with the growth of the scale as it d
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Some Properties of Sand-cast Alloys in the ;\lagnesium-rich Corner of the Magnesium-aluminum-zinc System (Metlas Tech., June 1946, T. P. 2009, with discussion)By R. S. Busk, R. F. Marande
The magnesium-aluminum-zinc 'system contains most of the magnesium-base alloys used commercially, although in practice the ternary alloys are usually modified by the addition of a small amount
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Some Properties of Sand-cast Alloys in the ;\lagnesium-rich Corner of the Magnesium-aluminum-zinc System (Metlas Tech., June 1946, T. P. 2009, with discussion)By R. F. Marande, R. S. Busk
The magnesium-aluminum-zinc 'system contains most of the magnesium-base alloys used commercially, although in practice the ternary alloys are usually modified by the addition of a small amount
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Superheating of hlagnesium Alloys (Metals Tech., Oct. 1945, T. P. 1935, with discussion)By N. Tiner
The mechanical properties of magnesium-alloy castings are greatly improved by grain refinement, and at present considerable attention is being paid to methods of obtaining fine-grained castings. One m
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Superheating of hlagnesium Alloys (Metals Tech., Oct. 1945, T. P. 1935, with discussion)By N. Tiner
The mechanical properties of magnesium-alloy castings are greatly improved by grain refinement, and at present considerable attention is being paid to methods of obtaining fine-grained castings. One m
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Susceptibility of Four hlagnesium Casting Alloys to Microporosity and Its Effect on the Mechanical Properties (Metals Tech., Feb. 1946, T. P. 1955, with discussion)By Jay R. Burns
TWO magnesium sand-casting alloys are commonly favored in the United States. These are referred to as H and C alloys (Dow Chemical Co.) or 4Mz65 and AM260 alloys (American Magnesium Corporation). Both
Jan 1, 1946
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Technical Papers and Discussions - Magnesium Alloys - Susceptibility of Four hlagnesium Casting Alloys to Microporosity and Its Effect on the Mechanical Properties (Metals Tech., Feb. 1946, T. P. 1955, with discussion)By Jay R. Burns
TWO magnesium sand-casting alloys are commonly favored in the United States. These are referred to as H and C alloys (Dow Chemical Co.) or 4Mz65 and AM260 alloys (American Magnesium Corporation). Both
Jan 1, 1946
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Technical Papers and Discussions - Magnesium and Magnesium Alloys - A Process of Augmenting Cold-drawability of the Magnesium +1.5 Percent Manganese Alloy (Metals Tech., April 1947, T. P. 2149, with discussion)By Louis A. Carapella, William E. Shaw
Magnesium and its alloys have long been characterized as possessing limited capacity for mechanical forming at atmospheric temperatures prior to rupturing despite their outstanding performances in thi
Jan 1, 1947
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Technical Papers and Discussions - Magnesium and Magnesium Alloys - A Process of Augmenting Cold-drawability of the Magnesium +1.5 Percent Manganese Alloy (Metals Tech., April 1947, T. P. 2149, with discussion)By William E. Shaw, Louis A. Carapella
Magnesium and its alloys have long been characterized as possessing limited capacity for mechanical forming at atmospheric temperatures prior to rupturing despite their outstanding performances in thi
Jan 1, 1947