Multiscale thermo-hydraulic modeling of cryogenic heat exchangers

The cryogenic industry has experienced a continuous growth in the last decades, partially sustained by the worldwide development of Liquefaction of Natural Gas (LNG) projects. LNG technology provides an economically feasible way of transporting natural gas over long distances, and currently accounts...

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Main Author: Pacio, Julio César
Format: Doctoral Thesis
Language:English
Published: Norges teknisk-naturvitenskapelige universitet, Institutt for energi- og prosessteknikk 2012
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-16090
http://nbn-resolving.de/urn:isbn:978-82-471-3233-3
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spelling ndltd-UPSALLA1-oai-DiVA.org-ntnu-160902013-01-08T13:08:58ZMultiscale thermo-hydraulic modeling of cryogenic heat exchangersengPacio, Julio CésarNorges teknisk-naturvitenskapelige universitet, Institutt for energi- og prosessteknikkNTNU2012The cryogenic industry has experienced a continuous growth in the last decades, partially sustained by the worldwide development of Liquefaction of Natural Gas (LNG) projects. LNG technology provides an economically feasible way of transporting natural gas over long distances, and currently accounts for nearly 30% of the international trade of this resource. The economic feasibility of these projects, in terms of both capital and operating costs, is to a large extent controlled by the performance of the main cryogenic two-phase flow heat exchanger. This industrial scenario provides then the motivation for a detailed study of the heat exchanger from a design perspective. On the one hand, it is widely accepted that a highly detailed analysis is required at a micro scale to properly take account of the two phase heat transfer process. On the other hand, a process-level description corresponds to larger time and space scales. In general, determining the proper methodology for considering these scales and their interaction remains a challenging problem. For this reason, current techniques focus in only one particular scale. The main objective of this project is then to develop a multiscale model applicable for two-phase flow heat exchangers. In this context, a three-scale framework is postulated. This thesis was divided into macro, meso (medium) and micro scale analysis. First, a macroscopic analysis provides a broad description in terms of overall heat transfer and pressure drop, using simple models without taking into account the details of physical phenomena at lower scales. Second, at mesoscale level, flow in parallel channels is considered following a homogenization approach, thus including the effects of flow maldistribution and partial mixing. Third, the microscopic description conceives a phenomenological representation of boiling flows, following multifluid formulations, for two specific flow patterns: annular-mist and post-dryout regimes. Finally, a multiscale design algorithm is proposed. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-16090urn:isbn:978-82-471-3233-3Doktoravhandlinger ved NTNU, 1503-8181 ; 2012:2application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
description The cryogenic industry has experienced a continuous growth in the last decades, partially sustained by the worldwide development of Liquefaction of Natural Gas (LNG) projects. LNG technology provides an economically feasible way of transporting natural gas over long distances, and currently accounts for nearly 30% of the international trade of this resource. The economic feasibility of these projects, in terms of both capital and operating costs, is to a large extent controlled by the performance of the main cryogenic two-phase flow heat exchanger. This industrial scenario provides then the motivation for a detailed study of the heat exchanger from a design perspective. On the one hand, it is widely accepted that a highly detailed analysis is required at a micro scale to properly take account of the two phase heat transfer process. On the other hand, a process-level description corresponds to larger time and space scales. In general, determining the proper methodology for considering these scales and their interaction remains a challenging problem. For this reason, current techniques focus in only one particular scale. The main objective of this project is then to develop a multiscale model applicable for two-phase flow heat exchangers. In this context, a three-scale framework is postulated. This thesis was divided into macro, meso (medium) and micro scale analysis. First, a macroscopic analysis provides a broad description in terms of overall heat transfer and pressure drop, using simple models without taking into account the details of physical phenomena at lower scales. Second, at mesoscale level, flow in parallel channels is considered following a homogenization approach, thus including the effects of flow maldistribution and partial mixing. Third, the microscopic description conceives a phenomenological representation of boiling flows, following multifluid formulations, for two specific flow patterns: annular-mist and post-dryout regimes. Finally, a multiscale design algorithm is proposed.
author Pacio, Julio César
spellingShingle Pacio, Julio César
Multiscale thermo-hydraulic modeling of cryogenic heat exchangers
author_facet Pacio, Julio César
author_sort Pacio, Julio César
title Multiscale thermo-hydraulic modeling of cryogenic heat exchangers
title_short Multiscale thermo-hydraulic modeling of cryogenic heat exchangers
title_full Multiscale thermo-hydraulic modeling of cryogenic heat exchangers
title_fullStr Multiscale thermo-hydraulic modeling of cryogenic heat exchangers
title_full_unstemmed Multiscale thermo-hydraulic modeling of cryogenic heat exchangers
title_sort multiscale thermo-hydraulic modeling of cryogenic heat exchangers
publisher Norges teknisk-naturvitenskapelige universitet, Institutt for energi- og prosessteknikk
publishDate 2012
url http://urn.kb.se/resolve?urn=urn:nbn:no:ntnu:diva-16090
http://nbn-resolving.de/urn:isbn:978-82-471-3233-3
work_keys_str_mv AT paciojuliocesar multiscalethermohydraulicmodelingofcryogenicheatexchangers
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