随机应变载荷作用下车辆螺旋弹簧疲劳寿命有限元分析

IF 3.5 Q1 ENGINEERING, MULTIDISCIPLINARY
N. M. Hamzi, S. Singh, S. Abdullah, M. Rasani
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引用次数: 0

摘要

目的对汽车螺旋弹簧在随机应变载荷作用下的疲劳寿命特性进行时域评估。循环随机道路荷载导致汽车部件在运行条件下出现疲劳失效。设计/方法/途径螺旋弹簧模型是通过有限元分析软件开发的。通过有限元分析,对螺旋弹簧的临界区和疲劳寿命进行了评估。实验是为了捕捉农村、公路和校园道路的随机应变信号。捕获的随机应变信号数据的采样率在150秒内为500Hz。然后,通过Goodman、Brown Miller、Fatemi Socie、Wang Brown疲劳寿命模型对疲劳寿命进行评估。通过有限元分析对古德曼模型进行了评价,以便与疲劳试验结果进行比较。结果:Brown-Miller模型的疲劳寿命估计值最高(农村、公路和校园分别为4.32E4、4.10E4和3.73E4个循环/块),其次是Goodman模型、Brown-Meller模型、Fatemi-Socie模型和Wang-Brown模型。为了确定数据的可接受性,提出了保守的疲劳寿命1:2和2:1数据散射方法。原创性/价值因此,所提出的疲劳寿命模型可用于评估汽车螺旋弹簧在随机应变信号下的多轴疲劳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fatigue life assessment of vehicle coil spring using finite element analysis under random strain loads in time domain
PurposeThis paper aims to assess the fatigue life characteristics of vehicle coil spring under random strain load in the time domain. Cyclic random road loads caused fatigue failure for automotive components during their operating condition. .Design/methodology/approachThe coil spring model is developed through finite element analysis software. The critical region and fatigue life cycle of coil spring is evaluated through finite element analysis. The experimental is set up to capture the random strain signal of the rural, highway and campus road. The sampling rate of the random strain signals data captured were 500 Hz in 150 s. Then, fatigue life is assessed through Goodman, Brown-Miller, Fatemi-Socie, Wang-Brown fatigue life models. Goodman model is evaluated through finite element analysis in order to compare with fatigue experimental results.FindingsThe fatigue life was estimated for Brown-Miller model is the highest (4.32E4, 4.10E4, and 3.73E4 cycles/block for rural, highway and campus respectively) followed by Goodman model, Brown-Miller, Fatemi-Socie and Wang-Brown models respectively. The conservative fatigue life 1:2 and 2:1 data scattering approach is proposed in order to determine the acceptability of the data.Originality/valueHence, the proposed fatigue life models can be used to assess multiaxial fatigue under random strain signals for the automobile coil spring.
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来源期刊
International Journal of Structural Integrity
International Journal of Structural Integrity ENGINEERING, MULTIDISCIPLINARY-
CiteScore
5.40
自引率
14.80%
发文量
42
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