Fretting Fatigue – An Integral Simulation Approach to Strengthening by Shot Peening

P. Gerken, C. Richter
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Abstract

Fretting fatigue is a limiting factor in blade attachment design for turbomachinery. Shot peening is known to be a strength increasing measure against fatigue. It is applied not only to free surfaces of components under fatigue but also to contacting surfaces subject to fretting fatigue. The present work examines the effect of shot peening on fretting fatigue resistance in fixtures of rotor blades. The chosen integral approach allows the consideration of shot peening and subsequent fretting loading in one simulation. Thus, the residual stresses and material strengthening as well as the surface waviness due to the shot peening process are included in the fretting fatigue simulation. To achieve reasonable computation times a 2D model, calibrated to a 3D unit cell model, is employed. A comparative study on fatigue endurance limits is presented for the cases with and without shot peening. With view to the different failure mechanisms met in these two cases, an initiation evaluation is carried out with the Sines criterion for the un-peened condition; a fracture mechanics approach is shown to be necessary for the evaluation of the shot peened condition.
微动疲劳——喷丸强化的整体模拟方法
微动疲劳是叶轮机械叶片附件设计中的一个限制因素。喷丸强化是一种抗疲劳的增强强度措施。它不仅适用于疲劳作用下构件的自由表面,也适用于受微动疲劳作用的接触面。本文研究了喷丸强化对动叶夹具抗微动疲劳性能的影响。所选择的积分方法允许在一次模拟中考虑喷丸强化和随后的微动加载。因此,微动疲劳模拟包括了残余应力和材料强化以及由于喷丸强化过程引起的表面波纹。为了获得合理的计算时间,采用了二维模型,并校准为三维单元胞模型。对喷丸强化和不喷丸强化两种情况的疲劳极限进行了对比研究。针对这两种情况下所遇到的不同破坏机制,采用未开启条件下的正弦准则进行了启动评估;断裂力学方法是评价喷丸状态的必要手段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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