Application of Finite Element Method for Mechanical Characterization of Wood and Reconstituted Lignocellulosic-Based Composites – A Review

A. Alade, A. Ibrahim
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Abstract

Performance evaluations of wood and other lignocellulosic-based composites involve complex scenarios of several factors such as material heterogeneity and geometry that often leads to complicated, expensive, and time-consuming experimental procedures. Hence, the application of computational modeling and simulation is desirable to mitigate these biocomposites’ performance testing challenges. This review paper, therefore, presents an outlook on the finite element method (FEM) application in probing performance characteristics of wood and solid wood-based composites as well as reconstituted wood and other lignocellulosic-based composites. Notwithstanding the complex nature of wood and other lignocellulosic biomass, the feasibility of FEM application in characterizing their performances has been favorably demonstrated. Going forward, broader applications of FEM combined with the design of experiments would further establish developing protocols. More exploration of FEM-based parametric and optimization studies would facilitate comprehensive, cost-efficient, and swift biocomposites design and performance optimization processes thereby enhancing their acceptance and implementation in target applications.
有限元法在木材和重构木质纤维素基复合材料力学表征中的应用——综述
木材和其他木质纤维素基复合材料的性能评估涉及多种因素的复杂场景,如材料的不均匀性和几何形状,这往往导致复杂、昂贵和耗时的实验程序。因此,需要应用计算建模和模拟来减轻这些生物复合材料的性能测试挑战。因此,本文对有限元法(FEM)在探测木材和实木基复合材料以及重构木材和其他木质纤维素基复合材料性能特征方面的应用进行了展望。尽管木材和其他木质纤维素生物质具有复杂的性质,但FEM应用于表征其性能的可行性已得到充分证明。展望未来,FEM的更广泛应用与实验设计相结合,将进一步建立开发协议。更多地探索基于FEM的参数和优化研究将有助于全面、经济、快速的生物复合材料设计和性能优化过程,从而提高其在目标应用中的接受度和实施性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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