Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization

The regenerator is the key component in magnetic cycles for refrigeration and heat pumping. It works as temporal thermal energy storage and separates two thermal reservoirs. Regenerators are typically made up of porous structures which may create complex flow pathways for the heat transfer fluid thr...

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Bibliographic Details
Main Author: Liu, Yifeng
Other Authors: Rowe, Andrew Michael
Language:English
en
Published: 2015
Subjects:
Online Access:http://hdl.handle.net/1828/6701
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spelling ndltd-uvic.ca-oai-dspace.library.uvic.ca-1828-67012015-09-19T15:50:12Z Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization Liu, Yifeng Rowe, Andrew Michael dead volume effectiveness regenerator simulation The regenerator is the key component in magnetic cycles for refrigeration and heat pumping. It works as temporal thermal energy storage and separates two thermal reservoirs. Regenerators are typically made up of porous structures which may create complex flow pathways for the heat transfer fluid through the regenerator. The periodically reversing flow allows the thermal energy exchange with the packing material in the regenerators. The performance of such thermal devices depends greatly on the geometry of the porous structure, material properties as well as operating conditions. This thesis is a study about the thermo-hydraulic properties of passive regenerators under oscillating flow conditions. The first part of the thesis presents a passive regenerator testing apparatus used to measure temperature distribution and pressure drop for various types of regenerators. Three kinds of loose spheres packed regenerator beds are characterized, and the regenerator effectiveness is evaluated. In the second part of the thesis, a numerical model is developed for the predictions of pressure drop and temperature field, and the theoretical findings are applied to experimentally obtained data to interpret regenerator performance. The dead volume is investigated quantitatively and considered to affect the regenerator performance adversely. Graduate 2015-09-17T20:18:43Z 2015-09-17T20:18:43Z 2015 2015-09-17 Thesis http://hdl.handle.net/1828/6701 P. Trevizoli, Y. Liu, A. Tura, A. Rowe, and J. Barbosa, “Experimental assessment of the thermal–hydraulic performance of packed-sphere oscillating-flow regenerators using water,” Exp. Therm. Fluid Sci., vol. 57, pp. 324–334, Sep. 2014. English en Available to the World Wide Web
collection NDLTD
language English
en
sources NDLTD
topic dead volume
effectiveness
regenerator
simulation
spellingShingle dead volume
effectiveness
regenerator
simulation
Liu, Yifeng
Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization
description The regenerator is the key component in magnetic cycles for refrigeration and heat pumping. It works as temporal thermal energy storage and separates two thermal reservoirs. Regenerators are typically made up of porous structures which may create complex flow pathways for the heat transfer fluid through the regenerator. The periodically reversing flow allows the thermal energy exchange with the packing material in the regenerators. The performance of such thermal devices depends greatly on the geometry of the porous structure, material properties as well as operating conditions. This thesis is a study about the thermo-hydraulic properties of passive regenerators under oscillating flow conditions. The first part of the thesis presents a passive regenerator testing apparatus used to measure temperature distribution and pressure drop for various types of regenerators. Three kinds of loose spheres packed regenerator beds are characterized, and the regenerator effectiveness is evaluated. In the second part of the thesis, a numerical model is developed for the predictions of pressure drop and temperature field, and the theoretical findings are applied to experimentally obtained data to interpret regenerator performance. The dead volume is investigated quantitatively and considered to affect the regenerator performance adversely. === Graduate
author2 Rowe, Andrew Michael
author_facet Rowe, Andrew Michael
Liu, Yifeng
author Liu, Yifeng
author_sort Liu, Yifeng
title Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization
title_short Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization
title_full Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization
title_fullStr Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization
title_full_unstemmed Dead Volume Effects in Passive Regeneration: Experimental and Numerical Characterization
title_sort dead volume effects in passive regeneration: experimental and numerical characterization
publishDate 2015
url http://hdl.handle.net/1828/6701
work_keys_str_mv AT liuyifeng deadvolumeeffectsinpassiveregenerationexperimentalandnumericalcharacterization
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