By J. Georg Bednorz (auth.), Prof. Kaoru Yamafuji, Dr. Tadataka Morishita (eds.)

The box of high-temperature superconductivity has inspired an inter­ disciplinary method of examine. It has required major cooperation and collaboration between researchers, each one of whom has dropped at it a wealthy number of event from many different fields. lately, nice advancements were made within the caliber of analysis. the topic has matured and been embarked on the subsequent level in the course of the resonance among technology and know-how. the present development of fabrics processing and engineering during this box is similar to that in the past noticeable within the improvement of semiconductors. those comprise the looks of fabrics taking where of YBa2Cu307 due to their enhanced houses (higher serious temperatures and more suitable flux pin­ ning) within which infrequent earth ions with huge radii (La, Nd, Sm) replacement for Y; the advance of expertise allowing development keep an eye on at the nanometer scale; and unique and reproducible measurements that may be used as rigorous assessments of theoretical types, which in flip are anticipated to steer to the strengthen­ ment of latest units. For extra growth in high-T study, teachers and c technologists needs to pool their wisdom and adventure. i'm hoping that this quantity will advertise that objective by way of delivering the reader with the most recent result of high-temperature superconductor learn and should stimulate extra dialogue and collaboration.

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Extra resources for Advances in Superconductivity VII: Proceedings of the 7th International Symposium on Superconductivity (ISS’94), November 8–11, 1994, Kitakyushu. Volume 1

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The application of SMES in commercial use has not yet started. For large scale SMES the main reason for this is the problem of getting a big budget and a risk for development. and for small scale one it is a cost-benefit problem. However. recently. many studies have appeared for these problems and the interest with SMES is rising in utilities. which might encourage the growth of this field. The very recently started 500kWh SMES project of Anchorage ML&P-B&W may lead this trend. The author is indebted to the members of SMES group who supported him for the preparation of this manuscript .

Longmire. Elementary Plasma Physics. Interscience Publishers. 1963 8. F. hie. Proc. Intern. Symp. on Flux Pinning and Electromag. 1985. pi 9. Okada. K. F. K. to be published 10. C. Rix. C. Luongo. W. Bingham. A Bulc. K. Cooke. D. Lieurance. K. Partain. and S. ' A self-Supporting Superconducting Magnetic Energy System (SMES) Concept'. 1994 II. W. V. Hassenzahl and R. Reed. 'An accessment of Self- (Cold-) Supported SMES Systems'. 1994 12. Conf .. (LI-ll 1992 13. Xu. Conf. 1994 14. D. Lieurance. F.

V. (1991) SOy. J. Low Temp. Phys. 17: 364. , Rosner K and Winzer K (1994) Journ. ofSupercond. 7: 361. [ 4 ] Likharev KK, Dynamics of Josephson Junctions and Circuits (Gordon and Breach, New York, 1986). , Holtzberg F. et al. (1989) Phys. Rev. Lett. 62: 217 . A. and Claeson T. (1994) Phys. Rev. Lett. 72: 1260. [ 7 ] Ambegaokar V. and Baratoff A (1963) Phys. Rev. Lett. 10: 486. T. and de Lozanne AL. (1992) Phys. Rev. Lett. 69: 2967. , Ben-Jacob E. and Jaklevic Re. (1990) Phys. Rev. B41: 8904. , Potel M.

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