By J. Gerhold (auth.), U. Balu Balachandran, K. Ted Hartwig, Donald U. Gubser, Victoria A. Bardos (eds.)
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Extra info for Advances in Cryogenic Engineering Materials : Volume 46, Part A
Hence, a rigorous rationale may aim to rely strictly on highly performing solids for cryogenic high voltage insulation, and in fact. some workers in the field have advocated defect - free all - solid insulation as a kind of "Super Electrical Insulation" (SEI) without any stress in fluids or vacuum 13. Unfortunately, a homogeneous all-solid insulation without defects may be hard to achieve in superconducting equipment. Thermal contraction as well as manufacturing needs may give severe restrictions.
Ya. Georgieva. Transformation - induced plasticity steels - a new class of high - strength steels with increased plasticity, Metalloved. 3 (1976), pp. 18-26. 9. Y. Rigo, F. Lecroisey and T. Mori, Relation between applied stress and orientation relationship of u-- martensite in stainless steel single crystal, Acta. , 22:313 (1974). 10. G. Stone and G. Thomas. Deformation induced alpha and epsilon martensites in Fe-NiCr single crystals, Mat. Trans. 5:2095 (1974). 27 CEC/ICMC Plenary Speakers (I to r) Juergen Gerhold, Robert Richardson, and Kenneth Johnson DEPENDENCE OF THE TEMPERATURE OF THE MARTENSITIC TRANSFORMATION ONSET UPON THE YIELD STRENGTH OF AUSTENITE M.
Z. Anorg. Chern. 180: I (1929). 6. L. Leslie and RJ. Miller. The stabilization of austenite by closely-spaced boundaries. Trans. Soc. ASM. 57:972 (1964). 7. R. Entwisle. Kinetics of burst transformation to martensite. 1. Iron Steellnsf. 203:905 (1965). S. Zh. Friedel. "Dislocations," Mir Publishers (1964), 644 pp. 9. F. D. Robertson. Martensite transformation and plastic deformation of single crystals made of Fe alloys. Acta. Metall. II :547 (1963). 10. M. Harmelin, C. Dimitrov, M. Da. Cunha Belo, and O.