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  • AIME
    Institute of Metals Division - High Temperature X-Ray Diffraction Investigation of the Zr-H System

    By J. R. Bridge, D. A. Vaughan

    The phase diagram of the Zr-H system over the range 0 to 65 atomic pet was determined by high temperature X-ray diffraction methods. Results show a eutectoid between a zirconium and the hydride phase.

    Jan 1, 1957

  • AIME
    Institute of Metals Division - High-Strength Zirconium Alloy: Zr-4 Wt Pct Sn-1.6 Wt Pct Mo

    By W. Chubb

    FOR the past several years there has been considerable interest in the development of zirconium and zirconium alloys for application in nuclear reactors. In a portion of the development work being con

    Jan 1, 1958

  • AIME
    Institute of Metals Division - High-Temperature Aging Structures in v’-Hardened Austenitic Alloys

    By W. C. Hagel, H. J. Beattie

    Variations in the secondary phase reactions of six nickel-and cobalt-base alloys were determined as a function of solu-tioning from 1700" to 2200°F and aging at 1200" to 1800° F for times up to 1000 h

    Jan 1, 1960

  • AIME
    Institute of Metals Division - High-Temperature Creep of Tantalum

    By W. V. Green

    Creep of tantalum was measured at temperatures from 0.6 to 0.89 of the absolute melting temperature. The creep curves include first, second, and third stages. Steady-state creep rate depends on the fo

    Jan 1, 1965

  • AIME
    Institute of Metals Division - High-Temperature Short-Time Creep of Graphite. H E Martens

    By D. D. Button, L. D. Jaffee

    INTEREST in the use of graphite as a high-temperature engineering structural material has recently increased markedly. However, actual use of this material has been limited, in part because informat

    Jan 1, 1961

  • AIME
    Institute of Metals Division - High-Temperature Slip in Tungsten

    By J. W. Pugh, Sam Leber

    Single crystals of tungsten were made and deformed in tension at 3000°C. The slip traces so formed on these crystals were analysed to determine the apparent slip system. Results indicate that defor

    Jan 1, 1961

  • AIME
    Institute of Metals Division - High-Temperature Solid Solution-Strengthened Columbium Alloys

    By E. F. Bradley, R. I. Jaffee, H. R. Ogden, E. S. Bartlett, D. N. Williams

    The mechanical properties of solid-solution-strengthened columbium alloys have been assessed as a function of alloying additions. Studies included the effects of tungsten, tantalum, molybdenum, and

    Jan 1, 1963

  • AIME
    Institute of Metals Division - High-Temperature Thermodynamics of the Silicon, Nitrogen, Silicon-Nitride System

    By R. D. Pehlke, J. F. Elliott

    The equilibrium pressure of nitrogen gas over pure silicon metal and silicon nitride has been measured in the temperature range 1400° to 1700°C. From the experimental data, the standard free energies

    Jan 1, 1960

  • AIME
    Institute of Metals Division - Homogeneous Solidification of Ge-Si Alloys

    By L. Ekstrom, J. P. Dismukes

    The homogeneity and microstrcture of zone-leveled Ge-Si alloys haw been investigated by sellera1 physical techniques and by metallography as a function of growth rate in the range 3 x 10 1x10 cm-sec&a

    Jan 1, 1965

  • AIME
    Institute of Metals Division - Homogeneous Yielding of Carburized and Nitrided Single Iron Crystals

    By A. N. Holden, J. H. Hollomon

    Inhomogeneous yielding during the early stages of plastic flow has been observed in many metals and has long been a subject of controversy. Low carbon steel, when strained at room temperature, exhi

    Jan 1, 1950

  • AIME
    Institute of Metals Division - Homogeneous Yielding of Carburized and Nitrided Single Iron Crystals - Discussion

    By A. N. Holden, J. H. Hollomon

    A. H. COTTRELL* and A. T. * Dept. of Metallurgy, Birmingham Univ., England. CHURCHMAN*—We have been making some experiments recently very similar to those reported by Messrs. Holden

    Jan 1, 1950

  • AIME
    Institute of Metals Division - Homogenization Kinetics of a Sintered Columbium Alloy

    By S. Leber, R. F. Hehemann

    This investigation describes the kinetics of alloying in a (Cb-15 wt pct W. 5 wt pct Mo, 1 wt pct Zr) powder-metallurgy alloy. The degree of homogeneity obtained in hydrostatic ally pressed and vacuum

    Jan 1, 1964

  • AIME
    Institute of Metals Division - Hot Indentation Testing of Magnesium and Other Selected Materials

    By R. G. Wheeler, J. W. Goffard

    The Larson-Miller parameter was used to correlate time, temperature, and indentation creep of magnesium, aluminum, and some of their alloys. In the temperature range 300" to 450°C, the short-time Meye

    Jan 1, 1960

  • AIME
    Institute of Metals Division - Hot Pressing of Lead Spheres (TN)

    By R. G. Carlson, F. E. Westermann

    HOT pressing of powder particles has gained importance recently, since it affords a method in which high densities are rapidly attained. In a recent study on hot pressing of alumina powders, Mangsen,

    Jan 1, 1962

  • AIME
    Institute of Metals Division - Hot Pressing of Molybdenum Powder

    By R. W. Heckel

    The densification of molybdenum powder by hot pressing has been studied as a function of time (up to about 3 x 104 sec) at pressures of 5000, 15,000, and 30,000 psi in the temperature range from 3700o

    Jan 1, 1965

  • AIME
    Institute of Metals Division - Hydrogen Diffusion in a Beta-Titanium Alloy

    By F. Paredes, W. R. Holman, R. W. Crawford

    The diffusion coefficient for hydrogen in the ß titanium alloy containing 13 pct V, 11 pct CY, and 3 pct A1 was measured over the temperature range 20° to 500°C. Results fit the expression: D= 1.58

    Jan 1, 1965

  • AIME
    Institute of Metals Division - Hydrogen Distribution in Heat-Treated Titanium as Established by Autoradiography

    By O. J. Huber

    HYDROGEN effects in titanium alloys have been the subject of extensive research in recent years. Lenning, Craighead, and Jaffee1 showed that hydrogen embrittles a titanium and, at the same time, eleva

    Jan 1, 1958

  • AIME
    Institute of Metals Division - Hydrogen Embrittlement in an Ultra-High-Strength 4340 Steel

    By G. Sachs, B. B. Muvdi, E. P. Klier

    IT is now generally i-ecognized that hydrogen is responsible for delayed failures encountered in high-strength steels,'.' and the hydrogen responsible for the embrittlement is introduce

    Jan 1, 1958

  • AIME
    Institute of Metals Division - Hydrogen Embrittlement of a Commercial Alpha-Beta Titanium Alloy

    By E. J. Ripling

    A NY mechanism proposed to explain hydrogen embrittlement in titanium and its alloys must, of course, be consistent with the experimental data that characterize this embrittlement. Unfortunately, howe

    Jan 1, 1957

  • AIME
    Institute of Metals Division - Hydrogen Embrittlement of Beta-Stabilized Titanium Alloys

    By R. I. Jaffee, C. M. Craighead, G. A. Lenning

    The a-p type alloys are subject to a loss of tensile ductility with increasing hydrogen content. No hydride phase is visible in embrittled a-B type alloys. The embrittlement encountered appeared to be

    Jan 1, 1957