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Institute of Metals Division - Crack Propagation in the Hydrogen-Induced Brittle Fracture of SteelBy A. R. Troiano, W. J. Barnett
IN recent years the demands of space limitations and increased loads, particularly in the aircraft industry, have accelerated the trend toward utilization of ultra-high strength steels. The increased
Jan 1, 1958
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Institute of Metals Division - Crack Suppression by a Fine-Grained Surface Layer During Creep of Nickel (TN)By R. J. Sherman, M. R. Achter
IT has often been reported that coatings may strengthen single crystals and polycrystalline specimens of coarse grain size. This note reports the effect of a surface layer of fine grains on the creep
Jan 1, 1962
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Institute of Metals Division - Crack, Slip Band InteractionBy S. Wiederhorn
The energy and force of interaction between a crack and a slip band have been calculated. When the distance between the crack and the slip band is greater than the dislocation spacing of- the slip ban
Jan 1, 1962
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Institute of Metals Division - Creep and Creep-Rupture Relationships in an Austenitic Stainless SteelBy W. F. Domis, F. von Gemmingen, R. W. Whitmore, F. Garofalo
Constant-load creep-rupture tests at 1100°, 1300° and 1500°F were made on a Type-316, 18 Cr-8 Ni-ZMo, austenitic stainless steel to determine the relationship between ruptzire life and other aspects o
Jan 1, 1962
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Institute of Metals Division - Creep and Grain Boundary Sliding in Aluminum-3 Pct Copper AlloyBy N. J. Grant, A. W. Mullendore, Y. Ishida
Creep tests were performed at 500°F on polished specimens of A1-3 pct Cu at stresses of 2000, 4000, and 6000 psi. The effects of the size and distnbution of the second phase were studied in connectio
Jan 1, 1964
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Institute of Metals Division - Creep and Stress Rupture Behavior of Aluminum as a Function of PurityBy Nicholas J. Grant, Italo S. Servi
Extensive data of minimum creep rates and rupture times for high purity and commercial aluminum confirm the existence of a transition range from the low temperature-type to the high temperature-type b
Jan 1, 1952
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Institute of Metals Division - Creep Behavior of Extruded Electrolytic MagnesiumBy C. S. Roberts
The creep mechanism and kinetics of fine-grained magnesium have been studied over the temperature range 200' to 600°F. As a result of a photographic study of microstructural changes, transient an
Jan 1, 1954
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Institute of Metals Division - Creep Behavior of Magnesium-Cerium AlloysBy C. S. Roberts
Four binary alloys in this system were creep tested at 300°' to 600°F. A photographic study of microstructural changes showed that the outstanding creep resistance results primarily from a potent
Jan 1, 1955
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Institute of Metals Division - Creep Behavior of Zinc Modified by Copper in the Surface LayerBy Milton R. Pickus, Earl R. Parker
THE modern theories of creep¹-4 in general have been based upon the concept of generation and migration of dislocations, with the generation process normally assumed to be rate controlling. The theori
Jan 1, 1952
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Institute of Metals Division - Creep Characteristics of Some Platinum Metals at 1382°FBy ED. E. Furman, R. H. Atkinson
HITHERTO the practical creep testing of precious metals has received little or no attention. The only previous creep tests of precious metals have been made with wires under conditions such as to yiel
Jan 1, 1952
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Institute of Metals Division - Creep Correlations in Alpha Solid Solutions of AluminumBy O. D. Sherby, J. E. Dorn
SEVERAL years ago Zener and Hollomon1 suggested that the flow stress of metals might be related to the temperature and strain rate in accord with the functional equation: s=s(eeh/rt) [1]
Jan 1, 1953
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Institute of Metals Division - Creep Correlations of Metals at Elevated Temperatures (Discussion page 1318)By R. L. Orr, O. D. Sherby, J. E. Dorn
Creep data for pure metals at temperatures above those at which rapid recovery occurs (above about 0.45 the melting temperature) are correlatable by means of the equations and These correlations were
Jan 1, 1955
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Institute of Metals Division - Creep Deformation of Aluminum-Copper Two-Phase AlloysBy R. M. N. Pelloux
This study of aluminum-copper alloys had two aims: 1) To determine the effect of the amount and distribution of a second phase, CuAl2, on the creep-rupture strength, ductility, and fracture chara
Jan 1, 1960
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Institute of Metals Division - Creep Deformation of Magnesium at Elevated Temperatures by Nonbasal SlipBy H. C. Chang, N. J. Grant, A. R. Chaudhuri
During the creep of coarse-grained polycrystalline magnesium at elevated temperatures, a nonbasal type of slip was found to play an important role in the deformation processes. The nonbasal slip trace
Jan 1, 1956
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Institute of Metals Division - Creep Fracture of Thoriated Nickel (TN)By B. A. Wilcox, A. H. Clauer
DURING the course of an investigation on the high-temperature creep behavior of TD Nickel* (Ni + 2) vol pct ThO2), it was observed that the creep fractures were similar in appearance to low-tempera
Jan 1, 1965
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Institute of Metals Division - Creep of a Dispersion-Hardened Aluminum AlloyBy G. S. Ansell, J. Weertman
The creep behavior of an aluminum alloy hardened with a finely dispersed phase of aluminum oxide was investigated. The as-extruded alloy shows an approximate steady-state creep in which the creed ra
Jan 1, 1960
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Institute of Metals Division - Creep of a Recrystallized Aluminum SAP-Type AlloyBy F. V. Lenel, G. S. Ansell
The creep behavior of an aluminum -aluminum oxide alloy, A T 400, fabricated by compacting an atomized aluminum powder, extruding the compact, cold working, and recrystallizing the extrusion, was inve
Jan 1, 1962
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Institute of Metals Division - Creep of Al-Cu Alloys During Age HardeningBy Ervin E. Underwood
IT has been recognized for many years that dis-persed particles have great value in raising the creep resistance of metallic alloys. In fact, some of the most successful high-temperature alloys owe th
Jan 1, 1958
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Institute of Metals Division - Creep of Copper at Intermediate TemperaturesBy T. E. Tietz, J. E. Dorn
Activation energies for creep of copper at intermediate temperatures, where crystal recovery was negligible, were determined by the simple technique of rapidly alternating the test temperature between
Jan 1, 1957
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Institute of Metals Division - Creep of Indium, Lead, and Some of Their Alloys with Various MetalsBy J. Weertman
High-temperature creep experiments were carried out on indium, lead, and on binary substitutional alloys of In-Pb, In-Sn, In-TI, In-Cd, In-Hg, Pb-Bi, Pb-Sn, Pb-In, and Pb-Cd. The stress at which the
Jan 1, 1961