消散
巴黎法
可靠性(半导体)
材料科学
结构工程
能量(信号处理)
意义(存在)
压力(语言学)
概括性
振动疲劳
断裂力学
实验数据
疲劳试验
机械
疲劳极限
期限(时间)
材料性能
试验数据
损伤容限
价值(数学)
点(几何)
纵横比(航空)
机制(生物学)
作者
Panpan Wu,Chunguo Zhang,Xing Yang,Jianguo Zhong,Jianwen Situ,Zhonghong Dong
摘要
ABSTRACT Paris model is widely adopted as its versatility and simplicity. However, its parameters ( C R and m R ) strongly depend on both material properties and loading conditions (stress ratio R ) and typically require extensive experimental fitting. In this study, an analytical model for predicting fatigue crack growth (FCG) behaviors across various R is proposed by correlating m R with low‐cycle fatigue (LCF) properties through the crack‐tip energy dissipation mechanism and linking C R to material properties via its linear relation with m R and a characteristic point ( E√ b , b ) on the intrinsic FCG curve. Fatigue testing is conducted on Q345qD steel, and the results demonstrate good agreement between predictions and experiments, confirming the reliability of the model. Furthermore, its generality is validated using experimental data from two additional ductile metallic materials. Proposed model links R ‐dependent Paris parameters to material properties, thereby clarifying their physical meaning while providing practical value in reducing testing time and cost.
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