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Influence of morphology on the effective hygro-elastic properties of softwood (spruce) and hardwood (balsa)

机译:形态对软木(云杉)和硬木(Balsa)有效速度弹性性能的影响

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Wood materials are characterized by complex, hierarchical material structures spanning across various length scales. The present work aims at establishing a relation between the hygro-elastic properties at the mesoscopic cellular level and the effective material response at the macroscopic level, both for softwood (spruce) and hardwood (balsa). The particular aim is to explore the influence on the effective hygro-elastic properties under variations in the meso-scale morphology. The multi-scale framework applied for this purpose uses the method of asymptotic homogenization, which allows to accurately and efficiently obtain the effective response of heterogeneous materials characterized by complex meso-structural geometries. The meso-structural model considered for softwood is based on a periodic, two-dimensional statistically representative volume element that is generated by a spatial repetition of tracheid cells. The tracheid cells are modeled as hexagonal elements characterized by a certain geometrical irregularity. The hardwood meso-structure consists of a region composed of hexagonal cellular fibers with large vessels embedded, which is connected to a ray region that is constructed of ray cells. The hardwood fibers are modeled as hexagonal cellular elements, similar to softwood tracheids. The rays are represented by quadrilateral cells oriented along the radial direction, whereby different arrangements are considered, i.e., the ray cells are either regularly stacked or organized as a staggered configuration. The interface between the fiber and ray regions may also be characterized by a regular or a staggered arrangement. The meso-structural models for softwood and hardwood are discretized by means of plane-strain, finite element models, which describe the hygro-elastic response of the wood material in the radial-tangential plane. For softwood, the sensitivity of the effective elastic and hygro-expansive properties is explored as a function of the geometrical irregularity of the tracheids. For hardwood, the effective properties are studied under a variation of the ray cell arrangement, the type of interface between ray and fiber regions, and the vessel volume fraction. The modeling results agree well with results obtained from other numerical homogenization studies and show to be in reasonable agreement with experimental data taken from the literature.
机译:木材材料的特点是跨越各种长度尺度的复杂的分层材料结构。本作者旨在建立在脑镜细胞水平和宏观水平的有效材料响应的Hygro-Elastic属性之间的关系,用于软木(云杉)和硬木(Balsa)。特定目的是探讨在中间级形态的变化下对有效效果性质的影响。施加的多尺度框架使用渐近均质化方法,其允许准确和有效地获得具有复杂的中间结构几何形状的异质材料的有效响应。考虑用于软木的中间结构模型基于周期性的二维统计学上代表性的体积元素,其由TrouseId细胞的空间重复产生。颅内细胞被建模为特征的六边形元素,其特征在于某种几何不规则性。硬木Meso结构由由嵌入的大容器的六角形细胞纤维组成的区域组成,该区域连接到由射线细胞构成的射线区域。硬木纤维被建模为六边形细胞元素,类似于软木管状蛋白。射线由沿径向定向的四边形单元表示,由此考虑不同的布置,即,射线电池定期堆叠或被组织为交错的配置。光纤和光线区域之间的界面也可以通过规则或交错的布置来表征。通过平面 - 应变,有限元模型,模型的软木和硬木的中间结构模型,其描述了径向切向平面中的木材的Hygro-Elique响应。对于软木,探讨了有效弹性和Hygro-膨胀性能的敏感性作为行李内的几何不规则性的函数。对于硬木,在光线细胞布置的变化下研究有效性,射线和纤维区之间的界面类型,以及血管体积分数。建模结果与从其他数值均质化研究中获得的结果完全吻合,并展示与从文献中取出的实验数据合理的协议。

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