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Multi-physical modeling and numerical simulation of the thermo-hygro-mechanical treatment of wood

机译:木材热湿力学处理的多物理场建模与数值模拟

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摘要

The contribution at hand introduces computational modeling and realistic simulation concepts for a comprehensive description of the manufacturing and application of densified wood and wooden structures made from molded densified wood. Wood, as a natural material, is characterized by e.g. a very good mechanical load-bearing capacity related to its density. Nevertheless, the ratio between its mechanical properties and its density can be optimized by densification technology for an expanded use of wood in structural engineering. The wood densification process is not only a mechanical process with large and irreversible deformations, it is also denoted by temperature- and moisture-dependent treatments of the wooden specimens. Thus, the introduced approaches to predict the material and structural characteristics of compressed and molded wood consist of an inelastic and multi-physical constitutive modeling of wood at finite deformations as well as the computation of effective structural properties of wood after the thermo-hygro-mechanical densification process. A successful implementation of the modeling concepts into the finite element method (FEM) is presented, which is verified by numerical investigations. A validation of the numerical results is carried out by use of experimental data at beech wood (Fagus Sylvatica, L.), taken from literature.
机译:本文介绍了计算建模和逼真的模拟概念,以全面描述致密木材和由模制致密木材制成的木结构的制造和应用。木材作为一种天然材料,其特点是具有与其密度相关的非常好的机械承载能力。然而,其机械性能和密度之间的比率可以通过致密化技术进行优化,以扩大木材在结构工程中的使用。木材致密化过程不仅是一个具有巨大且不可逆变形的机械过程,而且还表现为对木材试样进行温度和湿度依赖性处理。因此,所引入的预测压缩和模压木材材料和结构特征的方法包括有限变形下木材的非弹性和多物理本构建模,以及热-湿-力学致密化过程后木材有效结构特性的计算。本文提出了将建模概念成功应用于有限元法(FEM)的方法,并通过数值研究进行了验证。通过使用来自文献的山毛榉木(Fagus Sylvatica,L.)的实验数据对数值结果进行了验证。

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