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Fracture mechanics based estimation of fatigue lives of laser welded joints

机译:基于裂缝力学的激光焊接接头疲劳寿命估算

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摘要

The conventional joining methods like resistance spot welding and arc welding have several challenges during joining of thin sheets of high strength steel materials. One of the main challenges is that application of these joining methods may result in a severe distortion of welded structure. Therefore, laser welding process has emerged as an alternative joining process which can help mitigate some of these challenges. Lower heat input from laser during the welding process results in a smaller size weld heat affected zone and also in lower overall distortion of the structure. The laser welding process presents an exciting opportunity in designing lighter weight structures. However, the major roadblock to application of laser welding method for large structural parts is that fatigue behavior of laser welded joints is not yet well understood. In order to study the fatigue performance of laser welded joints, detailed experimental and numerical investigations have been carried out and the results are presented in this work. The scope of experimental studies included a large set of coupons with different thicknesses and material combinations. Experimental fatigue test data has been generated for the laser welded joints produced using thin sheets of three grades of high strength steel materials (HSLA and UHSS grades) of several thicknesses (1?mm, 1.6?mm, 2?mm and 3?mm). The fatigue test data sets were obtained at R-ratios ofR?=?0.1,R?=?0.2 andR?=?0.3. Another variable introduced into experimental studies was an orientation of laser weld joint with respect to applied loading direction. After fatigue tests were completed, detailed metallurgical investigations have been carried out to understand the failure mechanism and the crack growth behavior in laser welded joints. Based on the observed experimental and numerical studies it was concluded that the strain life based fatigue analysis method which has been successfully applied to study weld toe failures for the arc weld joints is not sufficient for the evaluation of laser welded joints. This is due to the reason that laser welded joints have unique challenges due to weld root crack failures and extremely high stress concentration at the location of crack initiation in the root of laser welded joints between the plates. The fracture mechanics based method has been developed for the fatigue life assessment of laser welded joints. In order to apply this method comprehensive three-dimensional finite element studies were performed. Numerical studies show good correlation of the estimated fatigue lives obtained using proposed fracture mechanics method with the experimental data.
机译:常规连接方法,如电阻点焊和电弧焊接在高强度钢材的薄板的连接过程中具有几个挑战。主要挑战之一是,这些连接方法的应用可能导致焊接结构的严重变形。因此,激光焊接过程作为替代连接过程,可以帮助减轻一些这些挑战。在焊接过程中从激光较低的热量导致较小的焊接热影响区域,并且也较低的结构较低。激光焊接工艺在设计较轻的重量结构方面具有令人兴奋的机会。然而,对于大型结构部件的激光焊接方法应用的主要障碍是激光焊接接头的疲劳行为尚不清楚。为了研究激光焊接接头的疲劳性能,已经进行了详细的实验和数值研究,并在这项工作中提出了结果。实验研究的范围包括具有不同厚度和材料组合的大量优惠券。已经为使用多个厚度(1Ωmm,1.6Ωmm,2≤mm和3Ωmm)的三种等级的高强度钢材(HSLA和UHSS等级)产生的薄片产生的激光焊接接头产生了实验疲劳试验数据。 。在r比率下获得疲劳试验数据集?=Δ0.1,r?= 0.2和r?0.3。引入实验研究的另一个变量是激光焊接接头相对于施加的装载方向的取向。完成疲劳试验后,已经进行了详细的冶金研究以了解激光焊接接头中的失效机制和裂纹生长行为。基于观察到的实验和数值研究,得出结论是,已成功应用于研究电弧焊接接头的焊接脚趾故障的应变寿命疲劳分析方法是不足以评估激光焊接接头的评估。这是由于激光焊接接头具有由于焊接根裂纹故障而具有独特挑战的原因,并且在板之间的激光焊接接头根部的裂缝启动位置处的极高应力浓度。基于裂缝力学的方法是为激光焊接接头的疲劳寿命评估而开发的。为了应用该方法,进行全面的三维有限元研究。数值研究表明使用具有实验数据的提出的骨折力学方法获得的估计疲劳寿命的良好相关性。

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