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Titlebook: Alloy Phase Stability; G. M. Stocks,A. Gonis Book 1989 Kluwer Academic Publishers 1989 electron.electron microscope.intermetallic compound

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发表于 2025-3-21 17:20:53 | 显示全部楼层 |阅读模式
期刊全称Alloy Phase Stability
影响因子2023G. M. Stocks,A. Gonis
视频video
学科分类NATO Science Series E:
图书封面Titlebook: Alloy Phase Stability;  G. M. Stocks,A. Gonis Book 1989 Kluwer Academic Publishers 1989 electron.electron microscope.intermetallic compound
影响因子One of the ultimate goals of materials research is to develop a fun­ damental and predictive understanding of the physical and metallurgical properties of metals and alloys. Such an understanding can then be used in the design of materials having novel properties or combinations of proper­ ties designed to meet specific engineering applications. The development of new and useful alloy systems and the elucidation of their properties are the domain of metallurgy. Traditionally, the search for new alloy systems has been conducted largely on a trial and error basis, guided by the skill and intuition of the metallurgist, large volumes of experimental data, the principles of 19th century thermodynamics and ad hoc semi-phenomenological models. Recently, the situation has begun to change. For the first time, it is possible to understand the underlying mechanisms that control the formation of alloys and determine their properties. Today theory can begin to offer guidance in predicting the properties of alloys and in developing new alloy systems. Historically, attempts directed toward understanding phase stability and phase transitions have proceeded along distinct and seemingly diverse line
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Development of Long-Term Retentioncommercial nickel-base superalloys, but for this reason it is anticipated to utilize them as a single phase high temperature material. In order to design an alloy compound for the purpose, it is necessary to make comprehensive understanding on the effect of ternary additions on the temperature depen
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Carolyn Rovee-Collier,C.-W. Gary ShyieAl are of particular interest because of lack of strategic elements in these alloys. The phase diagrams containing these two ordered structures are illustrated in Figures 1 and 2. The B2 crystal structure is illustrated in Figure 3 and is seen to extend over a wide range of aluminum contents for bo
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https://doi.org/10.1007/3-540-07851-7e study of metallic solids. Although at that time certain fundamental microscopic properties, such as the phonon spectrum, were reasonably well known for a wide range of materials, there was little detailed information about the electronic energy bands except in some ordered systems at the Fermi lev
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Elementary description of spectrometers,h as noble metal alloys like Cu.Au, Cu.Pd, Ag.Mg…, known for their long range interactions and such as TiAl. [1] or such as Pt.V alloys, [2, 3] certainly characterized by short-range interactions [4, 5]. Regarding their structure, they can be described, basically, as one dimensional commensurate or
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Elementary description of spectrometers,metastable phases. Among the stable phases occuring in the composition range used for this study are the face centered cubic α-phase (short range ordered), the cubic α.-phase (fcc with long period anti-phase boundary lattice) and the γ.-phase (complex cubic with 52 atoms per unit cell). (Fig. 1.) Up
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Electron motion in cylindrical fields,ich correspond with Nb.Ga., Nb.Ga., Nb.Ga. and Nb.Ga. have been found. The superstructures are closely related to the alloy compositions. The long period superstructure of Nb.Ga. comprises two types of antiphase boundaries alternately arranged, and has an unusually long c-axis (8.02nm). Other supers
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