By E. Morales
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2007), becomes evident by considering the effective chemical potentials (ECPs) of the bulk and the (100) surface. Figure 11 (left axis) shows the bulk and surface ECP plotted as a function of the bulk Cr concentration. Data is shown for surfaces containing 0, 10, 20, and 30 at. % Cr. Comparing these curves one can easily construct a clear picture of the driving forces behind the peculiar trend of the surface chemistry of Fe-Cr alloys. 08), the ECP in bulk is above the ECP at the pure Fe surface.
Calculated surface-energy anomaly in the 3d metals. Phys. Rev. , 69, 2296. , Skriver, H. , & Johansson, B. (1994). Surface energy and magnetism of the 3d metals. Surf. , 315, 157. Andersen, O. , & Krier, G. (1994). Lectures on Methods of Electronic Structure Calculations. , Andersen, O. , & Mookerjee, A. Singapore: World Scientific Publishing, pp. 63–124. Argon, A. , McClintock, F. , (1966). Metallurgy and Materials. Ontario: Addison-Wesley Publishing Company. , & Laurella, F. (2001). Oxidation of FeCrAl alloy: influence of temperature and atmosphere on scale growth rate and mechanism.
Ontario: Addison-Wesley Publishing Company. , & Laurella, F. (2001). Oxidation of FeCrAl alloy: influence of temperature and atmosphere on scale growth rate and mechanism. Surf. Coat. , 135, 291. Bain, E. C. (1924). The nature of martensite. Trans. Am. Inst. Min. Metal. , 70, 25. Brady, M. , & Wright, I. G. (2000). Alloy design strategies for promoting protective oxide-scale formation. J. Min. Met. Mat. , 52, 16. 26 Alloy Steel – Properties and Use Dowben, P. , & Wright, D. (1983). Surface segregation of chromium in Fe72Cr28(110) crystal.
Alloy Steel - Properties and Use by E. Morales