A comprehensive analysis of fatigue in wood and wood products

IF 6.8 2区 材料科学 Q1 ENGINEERING, MECHANICAL International Journal of Fatigue Pub Date : 2025-05-01 Epub Date: 2025-01-22 DOI:10.1016/j.ijfatigue.2025.108807
Changxi Yang , Mostafa Abdelrahman , Ani Khaloian-Sarnaghi , Jan-Willem van de Kuilen
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Abstract

Fatigue failures pose significant challenges across various engineering disciplines. Wood, due to its low carbon emissions and high strength-to-weight ratio, has been gaining attention in engineering applications. The fatigue behavior of wood is complex due to its heterogeneous, anisotropic, and viscoelastic nature. This research explores essential insights into the fatigue behavior of wood, with a focus on S–N curves, stress–strain behavior, and failure mechanisms. Due to often varying failure criteria and test settings, direct comparison of S–N curves across different studies can be challenging and inconclusive. A closer look shows that wood in fatigue shows both irreversible and recoverable strain components that are delayed. However, there have been conflicting reports about residual stiffness changes under fatigue loading. Theoretical fatigue life models based on S–N curves or duration of load theory have shown limited applicability. Efforts to develop progressive damage model based on stress–strain behaviors have been challenging and largely unsuccessful due to the lack or inconsistency of data. Understanding the microstructural failure mechanism is crucial in order to build a more trustworthy fatigue modeling technique. Further work is suggested to monitor the microstructural deterioration during high-cycle fatigue loading.
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木材及木制品疲劳的综合分析
疲劳失效是各种工程学科面临的重大挑战。木材由于其低碳排放和高强度重量比,在工程应用中受到越来越多的关注。由于木材的非均质性、各向异性和粘弹性,其疲劳行为是复杂的。本研究探讨了木材疲劳行为的基本见解,重点是S-N曲线,应力-应变行为和破坏机制。由于失效标准和测试设置经常变化,直接比较不同研究中的S-N曲线可能具有挑战性和不确定性。仔细观察表明,疲劳状态下的木材显示出不可逆转和可恢复的应变分量,这些应变分量是延迟的。然而,关于疲劳载荷下残余刚度变化的报道相互矛盾。基于S-N曲线或载荷持续时间理论的疲劳寿命理论模型的适用性有限。由于数据的缺乏或不一致,基于应力-应变行为的渐进式损伤模型的开发一直具有挑战性,并且在很大程度上是不成功的。为了建立更可靠的疲劳建模技术,了解微观结构破坏机制至关重要。建议进一步开展高周疲劳加载过程中组织劣化监测工作。
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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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