纸张和纸板材料非均质特性的表征和连续建模方法:综述

C. W. Sanjon, Yuchen Leng, M. Hauptmann, P. Groche, J. Majschak
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引用次数: 0

摘要

纸和纸板作为纤维基材料,能够取代传统的聚合物基材料,其潜力已被广泛研究和评估。由于纸张的有限延伸性和固有异质性,局部结构变化会导致不可预测的局部机械行为和加工过程中的不稳定性,例如机械成型。为了更深入地了解机械行为和异质性对纸张成形过程的影响,我们正在探索将有限元法(FEM)与连续建模相结合的潜在方法,以提高理解能力。为了实现这一目标,利用实验得出的材料参数和随机有限元方法,可以更精确地模拟材料行为,同时考虑局部材料特性。这项工作首先介绍了在连续模型(如随机有限元法 (SFEM))中建立异质性或局部材料结构模型的方法。精确测量这些局部材料特性是一项基本挑战。目前正在进行实验研究,以便对机械行为进行数值模拟。本文概述了文献中有关材料表征的实验方法,特别侧重于测量局部机械材料结构。通过这种方法,可以对纸和纸板的整体材料结构和机械行为进行表征。
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Methods for characterization and continuum modeling of inhomogeneous properties of paper and paperboard materials: A review
The potential of paper and paperboard as fiber-based materials capable of replacing conventional polymer-based materials has been widely investigated and evaluated. Due to paper’s limited extensibility and inherent heterogeneity, local structural variations lead to unpredictable local mechanical behavior and instability during processing, such as mechanical forming. To gain a deeper understanding of the impact of mechanical behavior and heterogeneity on the paper forming process, the Finite Element Method (FEM) coupled with continuum modeling is being explored as a potential approach to enhance comprehension. To achieve this goal, utilizing experimentally derived material parameters alongside stochastic finite element methods allows for more precise modeling of material behavior, considering the local material properties. This work first introduces the approach of modeling heterogeneity or local material structure within continuum models, such as the Stochastic Finite Element Method (SFEM). A fundamental challenge lies in accurately measuring these local material properties. Experimental investigations are being conducted to numerically simulate mechanical behavior. An overview is provided of experimental methods for material characterization, as found in literature, with a specific focus on measuring local mechanical material structure. By doing so, it enables the characterization of the global material structure and mechanical behavior of paper and paperboard.
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