Using crack face displacement to measure stress intensity: A practical approach

IF 5 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Anis Allahdiniyan, David Taylor
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Abstract

This study presents a novel method for estimating the stress intensity factor (K) using direct measurements of crack face displacements. Starting from Westergaard’s analytical solutions, modifications were derived from adapting these equations for finite-width bodies in five different geometries, including centre crack plates, edge crack plates (with both single and double cracks), plates containing angled cracks, and cracks in three-point bend specimens. Finite Element Analysis (FEA) was used to determine the profile of crack face displacement at different points along each crack. It was found that for centre-cracked plates, Westergaard’s equation worked well with only slight correction needed, whilst for edge-cracked geometries, a different equation was needed to describe the displacement profile. Unlike conventional methods that require applied load or local stress–strain data, this approach provides a simple and practical means of estimating K using optical measurements of crack face displacement. The proposed equations correctly predicted K with errors less than 10% for all geometries considered. To demonstrate the practical use of this method, an experimental study was conducted to estimate the fracture toughness (KIC) of leaf specimens using crack face displacement measurements. The results were within 3% of those obtained from conventional laboratory tests, confirming the feasibility of this approach for real-world applications. Other potential applications to different materials and structures were also proposed. These findings establish crack face displacement as a reliable parameter for fracture analysis, offering potential applications in material testing, non-destructive evaluation, and structural health monitoring.

Abstract Image

利用裂纹面位移测量应力强度实用方法
本研究提出了一种利用裂缝面位移的直接测量来估计应力强度因子(K)的新方法。从Westergaard的解析解开始,修改了这些方程,使其适用于五种不同几何形状的有限宽度体,包括中心裂纹板、边缘裂纹板(有单裂纹和双裂纹)、含角裂纹板和三点弯曲试件中的裂纹。采用有限元分析(FEA)确定了每条裂纹不同点处的裂纹面位移分布图。研究发现,对于中心裂纹板,韦斯特加德方程只需要稍加修正就能很好地工作,而对于边缘裂纹几何形状,则需要一个不同的方程来描述位移剖面。不像传统的方法需要施加载荷或局部应力应变数据,这种方法提供了一种简单实用的方法,通过光学测量裂缝面位移来估计K。对于所有考虑的几何形状,所提出的方程正确地预测了K,误差小于10%。为了证明该方法的实际应用,进行了一项实验研究,利用裂纹面位移测量来估计叶片试件的断裂韧性(KIC)。结果与常规实验室测试结果相差不到3%,证实了该方法在实际应用中的可行性。此外,还提出了在不同材料和结构上的其他潜在应用。这些发现确立了裂缝面位移作为断裂分析的可靠参数,在材料测试、无损评估和结构健康监测方面具有潜在的应用前景。
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来源期刊
Theoretical and Applied Fracture Mechanics
Theoretical and Applied Fracture Mechanics 工程技术-工程:机械
CiteScore
8.40
自引率
18.90%
发文量
435
审稿时长
37 days
期刊介绍: Theoretical and Applied Fracture Mechanics'' aims & scopes have been re-designed to cover both the theoretical, applied, and numerical aspects associated with those cracking related phenomena taking place, at a micro-, meso-, and macroscopic level, in materials/components/structures of any kind. The journal aims to cover the cracking/mechanical behaviour of materials/components/structures in those situations involving both time-independent and time-dependent system of external forces/moments (such as, for instance, quasi-static, impulsive, impact, blasting, creep, contact, and fatigue loading). Since, under the above circumstances, the mechanical behaviour of cracked materials/components/structures is also affected by the environmental conditions, the journal would consider also those theoretical/experimental research works investigating the effect of external variables such as, for instance, the effect of corrosive environments as well as of high/low-temperature.
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