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contributor authorUrquiza, Eugenio
contributor authorLee, Kenneth
contributor authorPeterson, Per F.
contributor authorGreif, Ralph
date accessioned2017-05-09T01:02:55Z
date available2017-05-09T01:02:55Z
date issued2013
identifier issn1948-5085
identifier othertsea_005_04_041011.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/153262
description abstractPrinted circuit heat exchangers (PCHE) and the similar formed plate heat exchangers (FPHE) offer highly attractive economics due to their higher power densities when compared to more conventional shellandtube designs. However, their complex geometry makes them more vulnerable to damage from thermal stresses during transient thermal hydraulic conditions. Transient stresses far exceed those predicted from steady state analyses. Therefore, a transient, hydraulic, thermal, and structural analysis is needed to accurately simulate and design high performing PCHE. The overall length of the heat exchanger can be thousands of times larger than the characteristic length for the heat transfer and fluid flow. Furthermore, simulating the thermal hydraulics of the entire heat exchanger plate is very time consuming and computationally expensive. The proposed methodology mitigates this by using a multiscale analysis with local volume averaged (LVA) properties and a novel effective porous media (EPM) approach. This method is implemented in a new computer code named the compact heat exchanger explicit thermal and hydraulics (CHEETAH) code which solves the timedependent, mass, momentum, and energy equations for the entire PCHE plate as well as hot and cold fluid streams using finite volume analysis (FVA). The potential of the method and code is illustrated with an example problem for a Heatrictype helium gastoliquid salt PCHE with offset strip fins (OSF). Given initial and boundary conditions, CHEETAH computes and plots transient temperature and flow data. A specially developed grid mapping code transfers temperature arrays onto adapted structural meshes generated with commercial FEA software. For the conditions studied, a multiscale stress analysis reveals mechanical vulnerabilities in the HX design. This integrated methodology using an EPM approach enables multiscale PCHE simulation. The results provide the basis for design improvements which can minimize flow losses while enhancing flow uniformity, thermal effectiveness, and mechanical strength.
publisherThe American Society of Mechanical Engineers (ASME)
titleMultiscale Transient Thermal, Hydraulic, and Mechanical Analysis Methodology of a Printed Circuit Heat Exchanger Using an Effective Porous Media Approach
typeJournal Paper
journal volume5
journal issue4
journal titleJournal of Thermal Science and Engineering Applications
identifier doi10.1115/1.4024712
journal fristpage41011
journal lastpage41011
identifier eissn1948-5093
treeJournal of Thermal Science and Engineering Applications:;2013:;volume( 005 ):;issue: 004
contenttypeFulltext


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