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Multi-scale finite element model for a new material inspired by the mechanics and structure of wood cell-walls

机译:一种新材料的多尺度有限元模型,其灵感来自木单元墙的力学和结构

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This paper proposes a fully coupled multi-scale finite element model for the constitutive description of an alumina/magnesium alloy/epoxy composite inspired in the mechanics and structure of the wall of wood cells. The mechanical response of the composite (the large scale continuum) is described by means of a representative volume element (RVE, corresponding to the intermediate scale) in which the fibre is represented as a periodic alternation of alumina and magnesium alloy fractions. Furthermore, at a lower scale the overall constitutive behavior of the alumina/ magnesium alloy fibre is modelled as a single material defined by a large number of RVEs (the smallest material scale) at the Gauss point (intermediate) level. Numerical material tests show that this new composite maximises its toughness when the hierarchical design of wood cellulose fibres is replicated. The above results provide for the first time new clues into the understanding of how trees and plants optimise their microstructures at the cellulose level in order to absorb a large amount of strain energy before failure. These findings are likely to shed more light into natural materials and bio-inspired design strategies, which are still not well-understood at present.
机译:本文提出了一种完全耦合的多尺度有限元模型,用于对铝/镁合金/环氧树脂复合材料的本构描述进行启发,以启发木质细胞壁的力学和结构。复合材料(大型连续体)的机械响应通过代表性的体积元素(RVE,对应于中间尺度)进行描述,其中纤维表示为氧化铝和镁合金组分的周期性交替。此外,在较低的比例下,将氧化铝/镁合金纤维的整体本构行为建模为由高斯点(中间)水平的大量RVE(最小的材料比例)定义的单一材料。数值材料测试表明,当复制木质纤维素纤维的分层设计时,这种新的复合材料可最大程度地提高其韧性。以上结果首次为理解树木和植物如何在纤维素水平上优化其微结构,以便在破坏之前吸收大量应变能提供了新的线索。这些发现很可能会为天然材料和受生物启发的设计策略提供更多的启示,而目前仍未被很好地理解。

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