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Computational up-scaling of anisotropic swelling and mechanical behavior of hierarchical cellular materials
Authors:Ahmad Rafsanjani  Dominique Derome  Falk K Wittel  Jan Carmeliet
Affiliation:1. Laboratory for Building Science and Technology, Swiss Federal Laboratories for Materials Science and Technology, EMPA, Überlandstrasse 129, CH-8600 Dübendorf, Switzerland;2. Department of Civil, Environmental and Geomatic Engineering, ETH Zurich, CH-8093 Zurich, Switzerland;3. Computational Physics for Engineering Materials, IfB, HIF E12, ETH Zurich, Schafmattstr. 6, CH-8093 Zurich, Switzerland;4. Chair of Building Physics, ETH Zurich, HIL E46.3, Wolfgang-Pauli-strasse 15, CH-8093 Zurich, Switzerland
Abstract:The hygro-mechanical behavior of a hierarchical cellular material, i.e. growth rings of softwood is investigated using a two-scale micro-mechanics model based on a computational homogenization technique. The lower scale considers the individual wood cells of varying geometry and dimensions. Honeycomb unit cells with periodic boundary conditions are utilized to calculate the mechanical properties and swelling coefficients of wood cells. Using the cellular scale results, the anisotropy in mechanical and swelling behavior of a growth ring in transverse directions is investigated. Predicted results are found to be comparable to experimental data. It is found that the orthotropic swelling properties of the cell wall in thin-walled earlywood cells produce anisotropic swelling behavior while, in thick latewood cells, this anisotropy vanishes. The proposed approach provides the ability to consider the complex microstructure when predicting the effective mechanical and swelling properties of softwood.
Keywords:A  Wood  B  Mechanical properties  C  Multiscale modeling  C  Anisotropy  Homogenization
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