Title:
Simulation of Boundary Layer Effects in the Pulse Tube of a Miniature Cryocooler

dc.contributor.author Conrad, T. J. en_US
dc.contributor.author Ghiaasiaan, S. Mostafa en_US
dc.contributor.author Kirkconnell, Carl Scott en_US
dc.contributor.corporatename Georgia Institute of Technology en_US
dc.contributor.corporatename Iris Technology Corporation en_US
dc.date.accessioned 2011-05-05T19:56:53Z
dc.date.available 2011-05-05T19:56:53Z
dc.date.issued 2008-05
dc.description Presented at the 16th International Cryocooler Conference, held May 17-20, 2008 in Atlanta, Georgia. en_US
dc.description.abstract As pulse tube cryocoolers are miniaturized, boundary layer effects in the pulse tube may become more important than they are for larger refrigerators. Nearly uniform flow in the pulse tube is necessary for efficient cooling, and this condition is compromised as the pulse tube diameter becomes smaller relative to the thermal and viscous boundary layer thicknesses. As a result, miniature pulse tube cryocoolers are likely to experience enhanced acoustic streaming losses compared to larger PTC’s. This acoustic streaming results from thermal and viscous interactions between the working fluid and the pulse tube walls. The thermal and viscous penetration depths and their magnitudes relative to the pulse tube diameter and wall thickness are therefore important parameters for this phenomenon. A parametric study of the effects of the pulse tube diameter, scaled to a non-dimensional value by the relevant boundary layer thicknesses, on acoustic streaming in the pulse tube was performed using CFD modeling. The effect of the operating frequency was also considered through the frequency dependence of the viscous and thermal penetration depths. Temperature dependant material properties were included in the CFD models because they play an important role in acoustic streaming. Results indicated that close attention must be paid to the sizes of the boundary layers relative to the pulse tube physical dimensions when designing miniature pulse tube cryocoolers. en_US
dc.identifier.isbn 978-1-934021-02-6
dc.identifier.uri http://hdl.handle.net/1853/38786
dc.language.iso en_US en_US
dc.publisher Georgia Institute of Technology en_US
dc.publisher.original ICC Press en_US
dc.relation.ispartofseries Cryocoolers 16. Pulse tube analysis and experimental measurements en_US
dc.subject Pulse tube analysis and experimental measurements en_US
dc.subject Pulse tube cryocoolers en_US
dc.subject Miniature cryocoolers en_US
dc.subject Boundary layer effects en_US
dc.subject Acoustic streaming losses en_US
dc.title Simulation of Boundary Layer Effects in the Pulse Tube of a Miniature Cryocooler en_US
dc.type Text
dc.type.genre Proceedings
dspace.entity.type Publication
local.contributor.author Ghiaasiaan, S. Mostafa
local.contributor.corporatename Cryo Lab
local.relation.ispartofseries International Cryocooler Conference
relation.isAuthorOfPublication b1bd027d-ac1a-4f96-ad2f-394e7238320e
relation.isOrgUnitOfPublication e67c90ea-6bb5-40f5-9d25-5bf484c9e22a
relation.isSeriesOfPublication d45e414a-b7fa-4f13-92d2-61f4f7ba805a
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