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Transient heat transfer in fibrous multi-scale composites: A semi-analytical model and its numerical validation

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Auteur
Dobri A., Wang Y., Papathanasiou T.D.
Date
2020
Language
en
DOI
10.1080/10407782.2020.1746154
Sujet
Atmospheric temperature
Composite materials
Heat conduction
Matrix algebra
Numerical models
Ordinary differential equations
Surface properties
Full numerical solution
Multi-scale composites
Numerical validations
Spatial discretizations
Transient heat conduction
Transient heat transfer
Two dimensional model
Unidirectional composites
Analytical models
Taylor and Francis Ltd.
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Résumé
This article presents the development and validation of a semi-analytical (hybrid) model to describe transient heat conduction in a composite material reinforced with long unidirectional cylindrical inclusions. The development of the model relies on the existing analytical solution at the particle-scale, subject to a locally uniform but time-evolving surface temperature; this solution is used to calculate the local heat exchange with the matrix material. Following this, spatial discretization (using N nodes) at the macroscale leads to a system of (Formula presented.) Ordinary Differential Equations, yielding the matrix temperature and the surface temperature of the inclusions at each node. n0 is the number of the terms in the Bessel expansion computed without recourse to approximation. The intra-fiber thermal response is recovered analytically from the above. A fully numerical two-dimensional model of a unidirectional composite containing 1000 randomly placed fibers is developed on the OpenFOAM platform, using Gmesh for generation of the computational meshes. Comparison of the predictions of the proposed semi-analytical model with the results of several 100s of numerical simulations, spanning a large range of size ratios (macro-scale to fiber diameter) and conductivity ratios, shows excellent agreement between the semi-analytical model and the numerical results. The proposed model is portable and executable on mid-level workstations, requiring minutes of CPU time for cases in which a full numerical solution would require 10s of CPU hours. It therefore provides an attractive and accurate alternative in modeling transient heat transfer in multi-scale fibrous composites. © 2020, © 2020 Taylor & Francis Group, LLC.
URI
http://hdl.handle.net/11615/73393
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  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]
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