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首页> 外文期刊>International Journal of Fatigue >A finite element study on residual stress stability and fatigue damage in high-frequency mechanical impact (HFMI)-treated welded joint
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A finite element study on residual stress stability and fatigue damage in high-frequency mechanical impact (HFMI)-treated welded joint

机译:高频机械冲击(HFMI)处理的焊接接头中残余应力稳定性和疲劳损伤的有限元研究

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摘要

Fatigue improvement from high-frequency mechanical impact (HFMI) is considered to rely on compres-sive residual stresses, improved weld toe geometry and localized strain hardening at the weld toe. Of these, the existence of compressive residual stresses is generally assumed critical for the effectiveness of the method. In this study, the influence of stress ratio and peak loads on residual stress relaxation and fatigue damage in as-welded and HFMI-treated S700 transverse attachments was investigated. Elastic-plastic stress-strain response for as:welded and HFMI-treated conditions was simulated considering the effects of initial residual stress distribution, local geometry and local material properties. Relative fatigue damage was estimated using the Smith-Watson-Topper parameter. Full residual stress relaxation was observed for a stress ratio of 0.5 and a compressive overload of 0.6 times the nominal yield strength. The fatigue damage assessment showed benefit from HFMI with respect to the as-welded state for all simulated load conditions. The results are consistent with experimentally observed behaviour. The step-wise analysis indicated that the remaining benefit after residual stress relaxation was due to geometry improvement and strain hardening.
机译:高频机械冲击(HFMI)产生的疲劳改善被认为依赖于强制性残余应力,改善的焊趾几何形状和焊趾处的局部应变硬化。其中,压缩残余应力的存在通常被认为对该方法的有效性至关重要。在这项研究中,研究了应力比和峰值载荷对焊接和HFMI处理的S700横向附件残余应力松弛和疲劳损伤的影响。考虑了初始残余应力分布,局部几何形状和局部材料特性的影响,模拟了在焊接和HFMI处理条件下的弹塑性应力-应变响应。使用Smith-Watson-Topper参数估算相对疲劳损伤。在0.5的应力比和0.6倍额定屈服强度的压缩过载下,观察到完全残余应力松弛。疲劳损伤评估表明,在所有模拟负载条件下,HFMI的焊接状态均有益。结果与实验观察的行为一致。逐步分析表明,残余应力松弛后的剩余益处是由于几何形状的改善和应变硬化。

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