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OPTIMIZATION OF A TWO STAGE PULSE TUBE REFRIGERATOR FOR THE INTEGRATED CURRENT LEAD SYSTEM

Authors :
R. Maekawa
Y. Matsubara
A. Okada
S. Takami
M. Konno
A. Tomioka
T. Imayoshi
H. Hayashi
T. Mito
J. G. Weisend
John Barclay
Susan Breon
Jonathan Demko
Michael DiPirro
J. Patrick Kelley
Peter Kittel
Arkadiy Klebaner
Al Zeller
Mark Zagarola
Steven Van Sciver
Andrew Rowe
John Pfotenhauer
Tom Peterson
Jennifer Lock
Source :
AIP Conference Proceedings.
Publication Year :
2008
Publisher :
AIP, 2008.

Abstract

Implementation of a conventional current lead with a pulse tube refrigerator has been validated to be working as an Integrated Current Lead (ICL) system for the Superconducting Magnetic Energy Storage (SMES). Realization of the system is primarily accounted for the flexibility of a pulse tube refrigerator, which does not posses any mechanical piston and/or displacer. As for an ultimate version of the ICL system, a High Temperature Superconducting (HTS) lead links a superconducting coil with a conventional copper lead. To ensure the minimization of heat loads to the superconducting coil, a pulse tube refrigerator has been upgraded to have a second cooling stage. This arrangement reduces not only the heat loads to the superconducting coil but also the operating cost for a SMES system. A prototype two-stage pulse tube refrigerator, series connected arrangement, was designed and fabricated to satisfy the requirements for the ICL system. Operation of the first stage refrigerator is a four-valve mode, while the second stage utilizes a double inlet configuration to ensure its confined geometry. The paper discusses the optimization of second stage cooling to validate the conceptual designImplementation of a conventional current lead with a pulse tube refrigerator has been validated to be working as an Integrated Current Lead (ICL) system for the Superconducting Magnetic Energy Storage (SMES). Realization of the system is primarily accounted for the flexibility of a pulse tube refrigerator, which does not posses any mechanical piston and/or displacer. As for an ultimate version of the ICL system, a High Temperature Superconducting (HTS) lead links a superconducting coil with a conventional copper lead. To ensure the minimization of heat loads to the superconducting coil, a pulse tube refrigerator has been upgraded to have a second cooling stage. This arrangement reduces not only the heat loads to the superconducting coil but also the operating cost for a SMES system. A prototype two-stage pulse tube refrigerator, series connected arrangement, was designed and fabricated to satisfy the requirements for the ICL system. Operation of the first stage refrigerator is a four-valve mode, while the...

Details

ISSN :
0094243X
Database :
OpenAIRE
Journal :
AIP Conference Proceedings
Accession number :
edsair.doi...........50dc866bc591be75b99202db4b1a9e79