Fatigue Characterization Under Effective Strain Damage Model on Various Road Load Conditions

被引:0
作者
L. Abdullah
S. S. K. Singh
S. Abdullah
A. H. Azman
A. K. Ariffin
机构
[1] Universiti Kebangsaan Malaysia,Department of Mechanical and Manufacturing Engineering, Faculty of Engineering and Built Environment
来源
Journal of Failure Analysis and Prevention | 2023年 / 23卷
关键词
Fatigue life; Finite element; Leaf spring; Strain load; Cycle sequence effect;
D O I
暂无
中图分类号
学科分类号
摘要
The aim of this paper is to characterize the fatigue under various random strain loads that consider the effects of cycle sequence conditions. Due to the frequent exposure of fatigue damage to a leaf spring, the fatigue life calculation needs to consider a load cycle sequence effect. A finite element analysis is performed to determine the critical region on the leaf spring. In addition, the strain loads were experimentally captured under three different road load conditions, i.e., rural, campus, and highway, in order to obtain the strain load behavior under random data. The fatigue life predicted using an established strain-life model was 3.63 × 103 to 4.19 × 107 cycles/block, and the effective strain damage model was 1.04 × 105 to 1.75 × 106 cycles/block. The correlation fatigue life data show the data are within the 1:2 and 2:1 boundary condition with a high R2 value in a range of 0.9994–0.9998. It shows fatigue life data are highly correlated because they reflect the effects of cycle sequence. Hence, the effective strain damage model that considers the cycle sequence effect can provide an accurate fatigue life prediction compared to the traditional strain-life model under various road loads.
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页码:529 / 539
页数:10
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