Results 211 to 220 of about 183,398 (265)
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Strengthening mechanisms in Elgiloy

Journal of Materials Science, 1984
The effects of cold-working and age-hardening on the microstructure of Elgiloy (composition in wt %, 40 Co, 20 Cr, 15 Ni, 7 Mo, 2 Mn, 0.1 C, balance Fe) have been established. 36% and 72% cold reduction of the solution treated (ST) alloy (f c c) produced a network of thin f c c deformation twins and h c pe-martensite platelets.
M. Assefpour-Dezfuly, W. Bonfield
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Strengthening mechanisms in Cu3Au

Acta Metallurgica, 1978
The effect of temperature and strain rate on the mechanical behavior of originally disordered and ordered polycrystalline Cu3Au was investigated in the range 273–648 K. While stress-strain curves exhibit serrations identical to those attributable to dynamic strain aging, no correlation seems to exist between the presence of the serrations and the yield
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Strengthening Mechanisms

2010
Abstract This chapter discusses the metallurgical changes that occur and the improvements that can be achieved in superalloys through solid-solution hardening, precipitation hardening, and dispersion strengthening. It also explains how further improvements can be achieved through the control of grain structure, as in columnar-grained ...
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Mechanical behavior and strengthening mechanisms in ultrafine grain precipitation-strengthened aluminum alloy

Acta Materialia, 2014
To provide insight into the relationships between precipitation phenomena, grain size and mechanical behavior in a complex precipitation-strengthened alloy system, Al 7075 alloy, a commonly used aluminum alloy, was selected as a model system in the present study. Ultrafine-grained (UFG) bulk materials were fabricated through cryomilling, degassing, hot
Kaka Ma   +7 more
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Mechanical Properties and Strengthening Mechanisms

2011
Abstract This chapter introduces the concepts of mechanical properties and the various underlying metallurgical mechanisms that can be used to alter the strength of materials. The mechanical properties discussed include elasticity, plasticity, creep deformation, fatigue, toughness, and hardness.
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Strengthening mechanism of bonded alumina crowns

The Journal of Prosthetic Dentistry, 1981
The results of this study suggest that the strengthening of aluminous porcelain with Sn-plated Pt is an effect of (1) a chemical interaction involving diffusion and dissolution of Sn-oxide in the glass phase of the porcelain and (2) a better wetting of te Sn-plated substrate by the porcelain. This conclusion supports and confirms the earlier hypothesis
N K, Sarkar, E E, Jeansonne
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Substructure strengthening mechanisms

Metallurgical Transactions A, 1977
The mechanisms which give rise to substructural strength originate in the dislocation character of the substructure boundary, in the size of sources for continued slip which the boundaries permit, and in the size of the cells or subgrains. The interrelation of these factors must be considered in obtaining a general view of the strengthening.
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An analysis of strengthening mechanisms in a mechanically alloyed, oxide dispersion strengthened iron aluminide intermetallic

Acta Materialia, 2002
An iron aluminide alloy of base composition Fe-40Al has been prepared by mechanical alloying and processed using a variety of powder consolidation methods and heat treatments to produce a range of grain sizes and oxide dispersoid sizes. The strengths of these materials have been determined at room temperature and related to the various aspects of ...
Muñoz-Morris, M. Antonia   +2 more
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Strengthening Mechanisms in Fatigue

1970
The present state of knowledge of the role of metallurgical structure in the achievement of high fatigue resistance is critically examined and the application of such knowledge is discussed. At the present time resistance to fatigue is best characterized in terms of phenomenological parameters such as the cyclic strain hardening exponent. The effect of
CE Feltner, P Beardmore
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Strength and Strengthening Mechanisms

1984
The strength of a material depends on various intrinsic and extrinsic factors. Although the most important is the chemical composition, the properties can be manipulated by altering the structure. Various mechanical, thermal, and surface treatments are used to create the desired balance of strength, hardness, and ductility.
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