Mode-{I, III} multiaxial fatigue testing of high-quality welds in steel maritime structures using a hexapod

IF 6.8 2区 材料科学 Q1 ENGINEERING, MECHANICAL International Journal of Fatigue Pub Date : 2025-02-18 DOI:10.1016/j.ijfatigue.2025.108870
Gabriele Bufalari, Niels Troost, Henk den Besten, Miroslaw Lech Kaminski
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Abstract

Facing multiaxial fatigue testing challenges with respect to non-proportional loading conditions, a custom-built hexapod has been used to establish the mode-{I, III} resistance characteristics of high-quality welds in steel maritime structures. Assessment of the hexapod test data using the effective notch stress and total stress, respectively the best performing multiaxial intact and cracked geometry parameters, shows a fit in the reference quality literature data scatter band and provides conservative lifetime estimates. In order to improve the lifetime estimate accuracy, strength, geometry, material and mechanism aspects are investigated. Welding induced residual stress, a strength aspect, predominantly affects the mode-I fatigue resistance including a mean (residual) stress contribution. The weld notch radius, a geometry parameter, primarily influences the mode-III fatigue resistance. Similar material microstructure compositions of the high-quality welds and reference quality ones are observed, implying comparable mode specific mechanism parameters for the effective notch stress and total stress, respectively the material characteristic length and elastoplasticity coefficient. The material microstructure properties and classification criteria for high-quality welds support the residual stress estimates and suggest a smaller welding induced defect size. In general, the high quality is mainly reflected in the larger resistance curve intercept and slope, another strength and mechanism parameter, implying a larger initiation contribution to the total lifetime. For a high-quality resistance curve involving the representative strength, geometry, material and mechanism contributions, more accurate lifetime estimates are obtained, even though the parameter confidence is reduced because of the relatively small data size in comparison to the reference quality one.
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海洋钢结构高质量焊缝六足架模态-{I, III}多轴疲劳试验
针对非比例加载条件下的多轴疲劳试验挑战,采用定制的六足架建立了海洋钢结构高质量焊缝的模态-{I, III}阻力特性。使用有效缺口应力和总应力(分别是表现最佳的多轴完整和裂纹几何参数)对六足测试数据进行评估,结果显示与参考质量文献数据散射带相吻合,并提供保守的寿命估计。为了提高寿命估算的精度,从强度、几何、材料和机构等方面进行了研究。焊接引起的残余应力是一个强度方面,主要影响i型疲劳抗力,包括平均残余应力贡献。焊缝缺口半径是影响焊缝抗iii型疲劳性能的主要几何参数。观察到高质量焊缝与参考焊缝的材料微观结构组成相似,表明有效缺口应力和总应力的模态比机制参数,即材料特征长度和弹塑性系数具有可比性。高质量焊缝的材料微观结构特性和分类标准支持残余应力估计,并建议较小的焊接诱导缺陷尺寸。一般来说,高质量主要体现在阻力曲线截距和斜率较大,这是另一个强度和机理参数,意味着对总寿命的起爆贡献较大。对于涉及代表性强度、几何形状、材料和机制贡献的高质量阻力曲线,可以获得更准确的寿命估计,尽管与参考质量曲线相比,由于数据规模相对较小,参数置信度降低。
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来源期刊
International Journal of Fatigue
International Journal of Fatigue 工程技术-材料科学:综合
CiteScore
10.70
自引率
21.70%
发文量
619
审稿时长
58 days
期刊介绍: Typical subjects discussed in International Journal of Fatigue address: Novel fatigue testing and characterization methods (new kinds of fatigue tests, critical evaluation of existing methods, in situ measurement of fatigue degradation, non-contact field measurements) Multiaxial fatigue and complex loading effects of materials and structures, exploring state-of-the-art concepts in degradation under cyclic loading Fatigue in the very high cycle regime, including failure mode transitions from surface to subsurface, effects of surface treatment, processing, and loading conditions Modeling (including degradation processes and related driving forces, multiscale/multi-resolution methods, computational hierarchical and concurrent methods for coupled component and material responses, novel methods for notch root analysis, fracture mechanics, damage mechanics, crack growth kinetics, life prediction and durability, and prediction of stochastic fatigue behavior reflecting microstructure and service conditions) Models for early stages of fatigue crack formation and growth that explicitly consider microstructure and relevant materials science aspects Understanding the influence or manufacturing and processing route on fatigue degradation, and embedding this understanding in more predictive schemes for mitigation and design against fatigue Prognosis and damage state awareness (including sensors, monitoring, methodology, interactive control, accelerated methods, data interpretation) Applications of technologies associated with fatigue and their implications for structural integrity and reliability. This includes issues related to design, operation and maintenance, i.e., life cycle engineering Smart materials and structures that can sense and mitigate fatigue degradation Fatigue of devices and structures at small scales, including effects of process route and surfaces/interfaces.
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