Research data supporting "On the nature of the omega tri-layer periodicity in rapidly cooled Ti-15Mo"
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Howard Stone | Paul A. Midgley | J. M. Bennett | Jonathan S. Barnard | David Rugg | Nicholas Jones | P. Midgley | D. Rugg | H. Stone | J. Barnard | N. Jones | J. Bennett
[1] D. Fontaine. Mechanical instabilities in the b.c.c. lattice and the beta to omega phase transformation , 1970 .
[2] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[3] R. Kilaas,et al. Optimal and near‐optimal filters in high‐resolution electron microscopy , 1998 .
[4] Y. Vohra,et al. Omega phase in materials , 1982 .
[5] J. Williams,et al. The ω-phase as an example of an unusual shear transformation , 1973 .
[6] J S Tiley,et al. Novel mixed-mode phase transition involving a composition-dependent displacive component. , 2011, Physical review letters.
[7] D. Wexler,et al. The evolution of microstructure and mechanical properties of Ti–5Al–5Mo–5V–2Cr–1Fe during ageing , 2015 .
[8] V. Radmilović,et al. HAADF imaging of the omega (ω) phase in a gum metal-related alloy , 2014 .
[9] O. Stéphan,et al. Mapping titanium and tin oxide phases using EELS: an application of independent component analysis. , 2011, Ultramicroscopy.
[10] J. Silcox,et al. Simulation of annular dark field stem images using a modified multislice method , 1987 .
[11] T. Pasang,et al. Confirmation of the ω-phase in electron beam welded Ti–5Al–5V–5Mo–3Cr by high-resolution scanning transmission electron microscopy: An initial investigation into its effects on embrittlement , 2014 .
[12] Raghavan Srinivasan,et al. Experimental evidence of concurrent compositional and structural instabilities leading to ω precipitation in titanium-molybdenum alloys , 2012 .
[13] D. Dye,et al. Superelastic load cycling of Gum Metal , 2015 .
[14] D R G Mitchell,et al. Scripting-customized microscopy tools for Digital Micrograph. , 2005, Ultramicroscopy.
[15] D. Fontaine. Simple models for the omega phase transformation , 1988 .
[16] W. Liu,et al. Investigation of atomic structure of ω-phase crystals in Ti-Mo alloys using high-resolution electron microscopy , 1994 .
[17] M. Jackson,et al. On the mechanism of superelasticity in Gum metal , 2009 .
[18] Stephen J. Pennycook,et al. High-resolution Z-contrast imaging of crystals , 1991 .
[19] E. Sukedai,et al. Microscopic approaches to isothermal transformation of incommensurate omega phase zones in Ti-20wt%Mo alloy studied by XDS, HREM and EXAFS , 1988 .
[20] Y. Kitano,et al. Investigation of initial structures of aged ω-phase crystals in β-titanium alloys using high resolution electron microscopy , 1997 .
[21] Soumya Nag,et al. A novel combinatorial approach to the development of beta titanium alloys for orthopaedic implants , 2005 .
[22] J. Williams,et al. The omega phase transformation in titanium alloys as an example of displacement controlled reactions , 1971 .
[23] B. S. Hickman. The formation of omega phase in titanium and zirconium alloys: A review , 1969 .
[24] H. Hashimoto,et al. Investigation of omega-phase in Ti–Mo alloys by high resolution electron microscopy, image processing and dark-field methods , 1991 .
[25] H. Fraser,et al. ω-Assisted nucleation and growth of α precipitates in the Ti–5Al–5Mo–5V–3Cr–0.5Fe β titanium alloy , 2009 .
[26] E. Sukedai,et al. Investigation of microstructure of mechanically alloyed TiMo particles using high-resolution electron microscope observations , 1993, Journal of Materials Science.
[27] B. Muddle,et al. Age-hardening behaviour of two metastable beta-titanium alloys , 2010 .
[28] M. Jackson,et al. β Phase decomposition in Ti–5Al–5Mo–5V–3Cr , 2009 .