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Article Dans Une Revue International Journal of Heat and Mass Transfer Année : 2019

Coupled heat and mass transfer in biosourced porous media without local equilibrium: A macroscopic formulation tailored to computational simulation

Résumé

This paper proposes a macroscopic formulation of coupled heat and mass transfer that can consider nonlocalequilibrium often encountered in biosourced building materials (wood- and plant-fiber based materials).Transferring dual-scale effects and molecular relaxation at the macroscopic level involves a kernelfunction acting in a convolution product. To ease the computational solution of the set of equations, thememory function is decomposed as a series of exponential functions. Each function yields an internalvariable that obeys a simple ordinary differential equation (ODE). This paper first describes the macroscopicand dual-scale formulations used as reference solutions. Subsequently, the modified macroscopicformulation of coupled transfer and its computational solution are presented in detail. The major outcomesof the present study, validated against reference solutions obtained with a comprehensive dualscalemodel, are as follows:- Dual-scale diffusion can be approached accurately by two exponential functions,- Even though the dual-scale phenomenon and molecular relaxation do not occur at the same scale,both can be considered in the modified macroscopic formulation of coupled transfer additively,- The new macroscopic formulation, together with the computational procedure proposed in this study,can be applied to various configurations, namely coupled heat and mass transfer in packed beds.
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Dates et versions

hal-02294269 , version 1 (25-10-2021)

Licence

Paternité - Pas d'utilisation commerciale

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Patrick Perre. Coupled heat and mass transfer in biosourced porous media without local equilibrium: A macroscopic formulation tailored to computational simulation. International Journal of Heat and Mass Transfer, 2019, 140, pp.717-730. ⟨10.1016/j.ijheatmasstransfer.2019.06.043⟩. ⟨hal-02294269⟩
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