Published May 1, 2015 | Version v1
Journal article

Heat transfer in cellulose-based aerogels: Analytical modelling and measurements

  • 1. Laboratoire de Mécanique des Contacts et des Solides (LAMCOS), UMR CNRS/INSA Lyon 5514, 20 rue des Sciences, 69621 Villeurbanne Cedex (France)
  • 2. Société (EC2-MODELISATION), 66, Boulevard Niels Bohr, 69603 Villeurbanne Cedex (France)
  • 3. Mechanical Engineering Department, PUCPR, Pontifícia Universidade Católica do Paraná, 1155, Rua Imaculada Conceição, Curitiba, PR (Brazil)

Description

A simple analytical approach for estimating the total heat transfer inside new cellulose-based aerogels has been investigated. The model accounts for the characteristic solid matrix at the nanometric scale by using a cellular representation of the nanofoam porous structure. The radiation-conduction heat transfer is taken into account. Previous analytical correlation for the fluid phase is used to model the conduction heat transfer in gas. New analytical formulations based on mean free path theory combined with phonon tracking approach are proposed to model the conduction heat transfer in the solid phase at the nanometric scale. The contribution of radiation heat transfer is obtained from Rayleigh scattering approach combined to the Rosseland approximation. These analytical relations validated experimentally are expected to be useful for researchers aiming at developing new insulating organic aerogels since they permit to determine conduction-radiation equivalent conductivity as a function of cell dimensions, phonon and optical properties of cellulose. - Highlights: • Development of an original model for estimating the heat transfer in aerocellulose. • Radiation, fluid conduction and solid conduction contributions are treated separately. • Modelling takes into account the "nanoscopic effects". • Results validated experimentally under different temperature and pressure

Availability note (English)

Available from http://dx.doi.org/10.1016/j.energy.2015.03.039

Additional details

Identifiers

DOI
10.1016/j.energy.2015.03.039;
PII
S0360-5442(15)00333-3;

Publishing Information

Journal Title
Energy (Oxford)
Journal Volume
84
Journal Page Range
p. 732-744
ISSN
0360-5442
CODEN
ENEYDS

Optional Information

Copyright
Copyright (c) 2015 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.