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Part One Fundamentals and materials 1 The power grid and the impact of high
temperature superconductor technology: An overview A. P. Malozemoff, American
Superconductor (AMSC), USA 2 Fundamentals of superconductivity C. M. Rey
(Energy to Power Solutions (E2P) and A.P. Malozemoff, American Superconductor
(AMSC), USA 3 Bismuth-based oxide (BSCCO) high temperature superconducting
cables and wires for power grid applications: Properties and fabrication K.
Sato, Sumitomo Electric Industries Ltd., Japan 4 Second generation (2G) coated
high temperature superconducting cables and wires for power grid applications
M. W. Rupich, American Superconductor (AMSC), USA Part Two high temperature
superconducting (HTS) cable technology 5 High temperature superconducting
(HTS) AC cables for power grid applications A. P. Malozemoff, J. Yuan,
American Superconductor (AMSC), USA and C. M. Rey Energy to Power Solutions
(E2P), USA 6 Using superconducting DC cables to improve the efficiency of
electricity transmission and distribution (T&D;) networks: An overview C.
Bruzek, Nexans, France 7 High temperature superconducting (HTS) GHe DC cables
for power grid applications S. Pamidi, Florida State University, USA 8 High
temperature superconducting cable cooling systems for power grid applications
J. A. Demko, LeTourneau University, USA Part Three Applications 9 High
temperature superconducting fault current limiters (FCLs) for power grid
applications V. Meerovich, Ben-Guiron University of the Negev, Israel 10 High
temperature superconducting motors and generators for power grid applications
J. W. Bray, GE Global Research, USA 11 High temperature superconducting
magnetic energy storage (SMES) for power grid applications T. A. Coombs,
Cambridge University, UK 12 High temperature superconducting (HTS)
transformers for power grid applications R. G. Buckley, Victoria University of
Wellington, Australia 13 Implementing high temperature superconductors for the
power grid in practice: The case of China L. Y. Xiao, Chinese Academy of
Sciences, China