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Process characterization of vibrostrengthening and application to fatigue enhancement of aluminum aerospace components—part I. Experimental study of process parameters

机译:纤维增强的工艺表征及其在航空航天部件疲劳增强中的应用-第一部分。工艺参数的实验研究

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Vibrostrengthening is a fatigue-enhancement process, originally developed by the Russian aviation industry (Rumyantsev et al. 2004). A potential alternative to shot peening, currently a standard industrial surface treatment for fatigue enhancement, vibrostrengthening offers the potential for shorter processing times and uniform treatment of the surface, especially when dealing with fragile parts and complex part geometries. Vibrostrengthening is a modification of a vibratory finishing process in which the parts or workpieces and a medium of hard granular particles are vibrated together in a processing tub causing the particles to mechanically work the surface of the workpiece. In vibrostrengthening, the workpiece is fixed inside a vibratory tub, increasing the relative velocities between the particles in the medium and the workpiece. This gives rise to more aggressive mechanical working of the workpiece surface. The resulting plastic deformation at the surface produces a sub-surface compressive residual stress, which together with a better surface finish, is conjectured to improve the fatigue strength of workpiece. This paper is an experimental study of vibrostrengthening of aluminum components for fatigue life enhancement. The effects of various process parameters on the fatigue strength of a specimen are studied to experimentally characterize the process. These experiments also demonstrate that the vibrostrengthening process produces significant fatigue enhancement on experimental samples produced by machining. Further, these experiments verify that, in fact, fatigue enhancement in the vibrostrengthening process is a result of the combined effect of inducing a compressive residual stress field within the material and improving the material’s surface finish. Fatigue tests indicate that the fatigue enhancement of this process is comparable to, if not better than, shot peening. One important reason for such a favorable comparison, given the lower levels of residual stress that result from this process, is the superior surface finish it produces. A companion paper (Sangid et al. 2010) presents a study involving process visualization to understand and explain the process mechanics; further, a computational model is produced to characterize the fatigue enhancement of the process through the compressive residual stress field and surface topography.
机译:振动加强是一种疲劳增强过程,最初是由俄罗斯航空工业开发的(Rumyantsev等人,2004年)。潜在的替代喷丸处理是目前用于提高疲劳强度的标准工业表面处理,而纤维增强技术则有可能缩短处理时间和对表面进行均匀处理,特别是在处理易碎零件和复杂零件几何形状时。振动强化是对振动精加工过程的一种改进,其中零件或工件以及硬颗粒颗粒介质在处理桶中一起振动,从而使这些颗粒机械加工工件表面。在振动强化中,将工件固定在振动桶内,从而增加了介质中的颗粒与工件之间的相对速度。这引起了工件表面的更积极的机械加工。表面产生的塑性变形会产生次表面压缩残余应力,并与更好的表面光洁度相结合,以改善工件的疲劳强度。本文是玻璃纤维增​​强铝部件疲劳寿命的实验研究。研究了各种工艺参数对试样疲劳强度的影响,以实验表征该工艺。这些实验还表明,在通过机械加工生产的实验样品上,玻璃纤维增​​强工艺可显着增强疲劳强度。此外,这些实验证明,事实上,在加强玻璃纤维过程中的疲劳增强是在材料内产生压缩残余应力场并改善材料表面光洁度的综合作用的结果。疲劳测试表明,此过程的疲劳增强效果与喷丸效果相当,甚至更好。鉴于此过程产生的残余应力水平较低,进行这种有利比较的一个重要原因是其产生的优异表面光洁度。伴随论文(Sangid等,2010)提出了一项涉及过程可视化的研究,以了解和解释过程机理。进一步地,产生了计算模型以通过压缩残余应力场和表面形貌表征该过程的疲劳增强。

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