聚碳酸酯的拉伸行为:精确结构建模和模拟的关键方面

IF 2.2 Q2 ENGINEERING, MULTIDISCIPLINARY
Raffaele Barbagallo , Giuseppe Mirone , Luca Landi , Giuseppe Bua
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引用次数: 0

摘要

聚碳酸酯(PC)是一种热塑性聚合物,广泛应用于安全装置和航空航天部件等工程领域。然而,文献中往往忽略了 PC 在拉伸载荷下的独特行为及其对构成曲线估算的影响,忽略了表征过程中的关键环节。本研究对 PC 的力学行为进行了全面分析,以了解对其静态拉伸性能(包括其非常规变形机制)进行精确构效建模和模拟的关键点。这项工作从精确分析矩形截面 PC 试样的代表性静态拉伸实验开始,并评估其真实的应力-应变曲线。该分析采用了经典的基于长度的方法和更精确的基于面积的方法,从而可以详细评估这种材料的特殊拉伸行为。随后,对 PC 真实应力应变曲线的数学形式进行了论证,并证明了基于长度和基于面积的估计值的一致性。然后,在深入了解 PC 机械行为的动力学基础上,利用有限元模拟,确定了获得其构成曲线的关键点。结果表明,构成曲线能够完全确定 PC 的行为,包括其特殊的变形机制。此外,还强调了构成曲线的哪些具体特征对影响材料行为的各个方面至关重要。然后,通过反演方法获得 PC 的最终构成曲线,该曲线能够准确模拟 PC 拉伸行为的各个方面。随后,提出的建模要点的有效性得到了证实,从而有效解释了控制 PC 拉伸行为的基本现象,并大大降低了从基于面积的真实曲线开始估算其构成曲线时的不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Tensile behavior of polycarbonate: Key aspects for accurate constitutive modelling and simulation

Tensile behavior of polycarbonate: Key aspects for accurate constitutive modelling and simulation

Polycarbonate (PC) is a thermoplastic polymer used in many engineering applications such as safety devices and aerospace components. However, the unique behavior of PC under tensile load and its effects on the estimation of its constitutive curve are often overlooked in the literature, neglecting to consider crucial aspects of the characterization process. This work carries out a comprehensive analysis of the mechanical behavior of PC to understand the key points for accurate constitutive modeling and simulation of its static tensile performance, including its unconventional deformation mechanisms. The work starts from the accurate analysis of a representative experimental static tensile test on a rectangular section PC specimen and the evaluation of its true stress-strain curve. This analysis, carried out considering the classic length-based approach and the more accurate area-based approach, makes it possible to evaluate in detail the peculiar tensile behavior of this material. The mathematical form of the PC true stress-strain curve is then justified and the coincidence of the obtained length-based and area-based estimates of the same is demonstrated. Then, based on the in-depth understanding of the dynamics underlying the mechanical behavior of PC and making use of FEM simulations, the key points for obtaining its constitutive curve are defined. It is demonstrated that the constitutive curve is able to completely determine the behavior of PC, including its peculiar deformation mechanism. It is also highlighted which specific characteristics of the constitutive curve are critical in affecting various aspects of the material's behavior. The final constitutive curve of PC at hand is then obtained with an inverse approach, capable of accurately simulating all aspects of its tensile behavior. The validity of the proposed modelling key points is then confirmed, effectively explaining the underlying phenomena controlling the tensile behavior of PC and massively reducing uncertainty in the estimation of its constitutive curve starting from its area-based true curve.

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来源期刊
Applications in engineering science
Applications in engineering science Mechanical Engineering
CiteScore
3.60
自引率
0.00%
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审稿时长
68 days
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