Fracture load prediction of components weakened by symmetrical and asymmetrical rounded-tip V-notches using the phase field method

IF 4.7 2区 工程技术 Q1 MECHANICS
Alireza Ashkpour , Jamal Bidadi , Hamed Saeidi Googarchin , Hsiao Wei Lee , Li Meng , Ahmad R. Najafi
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Abstract

This paper presents an investigation into the fracture behavior of the engineering components weakened by V-notches, using the phase field method. The study employs a combined experimental-numerical approach to evaluate the effectiveness of the phase field model to predict the fracture load of samples with different materials under mode I loading. In the first step, symmetrical rounded-tip V-notched (RV) Compact Tension (CT) samples made of epoxy resin were fabricated and experimentally tested to determine their corresponding fracture load and fracture path under mode I loading in different notch geometrical configurations (e.g., opening angle and notch-tip radius). Experimental results of CT samples were then compared with phase field simulations. The phase field simulation results were further validated against the experimental data from the literature on three-point bending (TPB) specimens made of graphite. There was a close agreement between the numerical and experimental fracture loads across all tested materials. Notably, the phase field simulations showed higher accuracy for RV notches with larger radii when compared to experimental results. Furthermore, the study evaluated the effect of asymmetry in notch geometrical configurations on the strength variation of the components containing notches. Mode mixity parameter (MV) was computed for each one of the assessed samples by utilizing the magnitude of stress ahead of the notch tip. The effect of opening angle and notch-tip radius were evaluated for RV-notches to determine the contribution of each parameter to the variation of the fracture load due to the existence of asymmetry. The study showed that the highest amount of strength reduction due to asymmetry happened in RV-notches with smaller notch radius. Besides, it was found that the fracture load decreased by increasing asymmetry angle. However, the results showed no significant further reduction in strength after reaching a certain threshold of asymmetry.
用相场法预测对称和非对称圆头v型缺口削弱构件的断裂载荷
本文采用相场法研究了经v型缺口削弱的工程构件的断裂行为。采用实验与数值相结合的方法,对相场模型在I型加载下预测不同材料试样断裂载荷的有效性进行了评价。首先,制作对称圆尖v形缺口(RV)致密拉伸(CT)环氧树脂样品,并进行实验测试,确定其在I型载荷下不同缺口几何构型(如开口角度和缺口尖端半径)对应的断裂载荷和断裂路径。将CT样品的实验结果与相场模拟结果进行对比。通过对石墨三点弯曲(TPB)试样的实验数据进行对比,进一步验证了相场模拟结果。在所有测试材料中,数值断裂载荷和实验断裂载荷之间存在密切的一致性。值得注意的是,与实验结果相比,对于半径较大的凹口,相场模拟的精度更高。此外,研究还评估了缺口几何构型的不对称性对含缺口构件强度变化的影响。利用缺口尖端前的应力大小计算每个评估样品的模态混合参数(MV)。评估了rv缺口的开口角度和缺口尖端半径对断裂载荷变化的影响,以确定由于不对称的存在,每个参数对断裂载荷变化的贡献。研究表明,不对称导致的强度降低幅度最大的是缺口半径较小的rv缺口。此外,不对称角的增大使断裂载荷减小。然而,结果显示,在达到一定的不对称阈值后,强度没有显著的进一步降低。
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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来源期刊
CiteScore
8.70
自引率
13.00%
发文量
606
审稿时长
74 days
期刊介绍: EFM covers a broad range of topics in fracture mechanics to be of interest and use to both researchers and practitioners. Contributions are welcome which address the fracture behavior of conventional engineering material systems as well as newly emerging material systems. Contributions on developments in the areas of mechanics and materials science strongly related to fracture mechanics are also welcome. Papers on fatigue are welcome if they treat the fatigue process using the methods of fracture mechanics.
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