Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines

The unique properties of superfluid helium (He II) make it a very efficient cooling agent for superconducting rotating machines. Steady and transient transport characteristics and design formulas for the cooling of superconducting windings are enumerated in this article. Several superfluid transport...

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Main Author: Thomas C. Chuang
Format: Article
Language:English
Published: Hindawi Limited 2003-01-01
Series:International Journal of Rotating Machinery
Online Access:http://dx.doi.org/10.1155/S1023621X03000411
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spelling doaj-37143377b3894bef90bf1c1b04a8d4792020-11-24T23:21:21ZengHindawi LimitedInternational Journal of Rotating Machinery1023-621X2003-01-019642743610.1155/S1023621X03000411Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating MachinesThomas C. Chuang0NEO Research Center, Van Nung University of Science and Technology, 1, Van Nung Road, Jung-Li, , TaiwanThe unique properties of superfluid helium (He II) make it a very efficient cooling agent for superconducting rotating machines. Steady and transient transport characteristics and design formulas for the cooling of superconducting windings are enumerated in this article. Several superfluid transport analytical models and useful design equations are discussed: laminar flow; turbulent flow; and pure superfluid flow under steady-state and transient conditions. An effort was made to consolidate all analytical models and experimental results into a common framework. Under conditions of steady He II transport, a dimensionless heat flux number Nq, a dimensionless driving force number N∇T, and a characteristic length where used so that a generalized equation could be derived to describe superfluid transport in any geometry. In the case of transient transport of He II, a dimensionless heat flux number Nq∗ and a dimensionless driving time number Nt were used so that a generalized equation could be derived to describe transient superfluid transport in laminar flow and turbulent regimes. Many experimental data were compiled to substantiate the analysis.http://dx.doi.org/10.1155/S1023621X03000411
collection DOAJ
language English
format Article
sources DOAJ
author Thomas C. Chuang
spellingShingle Thomas C. Chuang
Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines
International Journal of Rotating Machinery
author_facet Thomas C. Chuang
author_sort Thomas C. Chuang
title Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines
title_short Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines
title_full Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines
title_fullStr Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines
title_full_unstemmed Characteristics of Steady and Transient Superfluid Transport for the Cooling of Superconducting Rotating Machines
title_sort characteristics of steady and transient superfluid transport for the cooling of superconducting rotating machines
publisher Hindawi Limited
series International Journal of Rotating Machinery
issn 1023-621X
publishDate 2003-01-01
description The unique properties of superfluid helium (He II) make it a very efficient cooling agent for superconducting rotating machines. Steady and transient transport characteristics and design formulas for the cooling of superconducting windings are enumerated in this article. Several superfluid transport analytical models and useful design equations are discussed: laminar flow; turbulent flow; and pure superfluid flow under steady-state and transient conditions. An effort was made to consolidate all analytical models and experimental results into a common framework. Under conditions of steady He II transport, a dimensionless heat flux number Nq, a dimensionless driving force number N∇T, and a characteristic length where used so that a generalized equation could be derived to describe superfluid transport in any geometry. In the case of transient transport of He II, a dimensionless heat flux number Nq∗ and a dimensionless driving time number Nt were used so that a generalized equation could be derived to describe transient superfluid transport in laminar flow and turbulent regimes. Many experimental data were compiled to substantiate the analysis.
url http://dx.doi.org/10.1155/S1023621X03000411
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