一种计算效率高的粘弹粘塑性聚合物固体和结构在大量加载循环下的混合公式

IF 3.4 3区 工程技术 Q1 MECHANICS
Darith Anthony Hun , Mohamed Haddad , Issam Doghri , Georgios Tsilimidos , Michael Lackner , Zoltan Major , Leonhard Doppelbauer , Sara Haouala
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引用次数: 0

摘要

热塑性聚合物固体和结构的高周期响应的数值模拟具有挑战性,因为这些材料表现出复杂的粘弹粘塑性(VEVP)行为,即使在大量的加载循环下,它们仍会继续耗散能量,并具有频率相关的响应。一方面,基于线弹性的经典简化方法不适用,另一方面,基于VEVP材料模型的直接结构分析在计算上令人望而却步,在实践中是不可能的。本文提出了一种计算效率高的混合公式。该结构首先被计算为纯粹的VE,使用最近提出的基于拉普拉斯-卡森变换(LCT)及其数值反演的公式,能够以非常低的成本计算精确的应变和应力场,这也与循环次数无关。接下来,使用时间均匀化公式计算任何兴趣点的VEVP解,该公式使用快速和慢速时间尺度以及渐近时间展开式以极有限的成本计算完全解。采用实验确定的TPU材料和三维晶格进行数值模拟。混合配方的预测与参考VEVP溶液进行了比较,并验证了其准确性。给出了一百万次循环的数值模拟,并说明了混合配方的低计算成本。讨论了将VE结果与VEVP计算联系起来的混合公式的基本假设。为热塑性固体及结构高周疲劳的时空多尺度建模与仿真奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A computationally efficient hybrid formulation for viscoelastic–viscoplastic polymer solids and structures under large numbers of loading cycles
The numerical simulation of the high cycle response of solids and structures made of thermoplastic polymers is challenging because those materials exhibit a complex viscoelastic–viscoplastic (VEVP) behavior and even under large numbers of loading cycles, they continue to dissipate energy and feature a frequency dependent response. On the one hand classical simplified methods based on linear elasticity are not applicable, and on the other hand direct structural analyses with VEVP material models are so computationally prohibitive that they are not possible in practice. In this article, a computationally efficient hybrid formulation is proposed. The structure is first computed as being purely VE, using a recently proposed formulation based on Laplace-Carson transform (LCT) and its numerical inversion, and enabling to compute accurate strain and stress fields at a very reduced cost, which is also independent of the number of cycles. Next, the VEVP solution at any points of interest is computed with a time homogenization formulation which uses fast and slow time scales and asymptotic time expansions to compute complete solutions at extremely limited cost. An experimentally identified TPU material and a 3D lattice are used for the numerical simulations. Predictions of the hybrid formulation are compared against reference VEVP solutions and their accuracy verified. Numerical simulations for one million cycles are presented and the low computational cost of the hybrid formulation illustrated. The underlying assumptions of the hybrid formulation linking the VE results with the VEVP calculations are discussed. The proposal lays the foundation for the time and space multiscale modeling and simulation of the high cycle fatigue of thermoplastic solids and structures.
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来源期刊
CiteScore
6.70
自引率
8.30%
发文量
405
审稿时长
70 days
期刊介绍: The International Journal of Solids and Structures has as its objective the publication and dissemination of original research in Mechanics of Solids and Structures as a field of Applied Science and Engineering. It fosters thus the exchange of ideas among workers in different parts of the world and also among workers who emphasize different aspects of the foundations and applications of the field. Standing as it does at the cross-roads of Materials Science, Life Sciences, Mathematics, Physics and Engineering Design, the Mechanics of Solids and Structures is experiencing considerable growth as a result of recent technological advances. The Journal, by providing an international medium of communication, is encouraging this growth and is encompassing all aspects of the field from the more classical problems of structural analysis to mechanics of solids continually interacting with other media and including fracture, flow, wave propagation, heat transfer, thermal effects in solids, optimum design methods, model analysis, structural topology and numerical techniques. Interest extends to both inorganic and organic solids and structures.
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