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Surface Modification to Enhance Fatigue Performance of Steel: Applications of Deep Rolling

机译:增强钢疲劳性能的表面改性:深层轧制的应用

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With the development of new steels and processing techniques, there have been corresponding advances in the fatigue performance of steels. Methods to increase fatigue performance are typically designed to produce gradients in surface properties and are based on heat treating operations, including enhanced carburizing and induction hardening, as well as surface mechanical deformation. In this paper selected examples based on recent work on deep rolling is used to illustrate the importance of the base steel properties on the final performance of surface modified materials. The degree of fatigue improvement by deep rolling, a process to mechanically deform fillet surfaces to improve fatigue resistance in cylindrical components, depends on the deformation response of the substrate to the rolling process. Recent results on the behavior of three medium carbon steel alloys deformed at temperatures up to 360°C, are discussed. Deep rolling increased fatigue resistance, and the degree of improvement was higher when deep rolling was applied in the dynamic strain aging (DSA) temperature range rather than at room temperature. Observed variations in fatigue performance are interpreted based on fundamental deformation mechanisms and are used to present an overall perspective on approaches to increase the fatigue resistance of conventional and newly developed steels.
机译:随着新钢和加工技术的发展,钢的疲劳性能存在相应的进展。提高疲劳性能的方法通常设计成在表面性质中产生梯度,并且基于热处理操作,包括增强的渗碳和感应硬化,以及表面机械变形。在本文中,基于最近的深轧机的选择实施例用于说明基础钢属性对表面改性材料的最终性能的重要性。深层轧制的疲劳改善程度,机械地变形圆角表面以提高圆柱形部件的疲劳电阻的过程取决于基板对轧制工艺的变形响应。探讨了近三种中等碳钢合金在高达360℃的温度下变形的三种碳钢合金的行为。深度轧制增加疲劳抗性,并且当在动态菌株老化(DSA)温度范围而不是室温下施加深轧时,改善程度较高。观察到疲劳性能的变化是基于基本变形机制解释的,并且用于提高旨在提高常规和新开发的钢的疲劳抗性的方法的整体视角。

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