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首页> 外文期刊>Journal of Materials Science >Insight into indentation-induced plastic flow in austenitic stainless steel
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Insight into indentation-induced plastic flow in austenitic stainless steel

机译:静音诱导奥氏体不锈钢塑性流动的洞察

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The indentation-induced plasticity and roughness have been investigated intensively by experiments and simulations during the last decades. However, the precise mechanisms of how dislocation flow leads to pile-up formation are still not completely understood, although this is one of the initial steps causing surface roughening in tribological contacts at low loads. In this work, f001g-, f101g- and f111g-grain orientations in an austenite stainless steel [(face-centered cubic (FCC) phase]) are indented with varying load forces. By using scanning electron-based methods and slip plane analysis, we reveal: (1) how slip-steps show the change of pile-up formation, (2) how the slip-plane inclination determines the dislocation flow and (3) how slip-plane interactions result in the final pile-up shape during indentation. We find that the flow direction transforms from the forward flow to the sideway at a transition angle of 55-58 between the slip-plane and the surface. We use large displacement finite element method simulations to validate an inversion of the resolved shear stress at this transition angle. We provide insights into the evolution of plasticity in dislocation-mediated FCC metal indentations, with the potential application of this information for indentation simulations and for understanding the initial stage of scratching during tribology in the future.
机译:在过去几十年中,通过实验和模拟进行了集中研究了缩进诱导的可塑性和粗糙度。然而,脱位流动如何导致堆积形成的精确机制仍然没有完全理解,尽管这是在低负荷下导致摩擦触点中表面粗糙化的初始步骤之一。在这项工作中,奥氏体不锈钢中的F001g-,F101g-和F111G晶粒取向[(面为中心的立方(FCC)相])缩进具有不同的负载力。通过使用扫描电子的方法和滑移平面分析,我们揭示了:(1)滑动步骤如何显示堆积形成的变化,(2)滑移平面倾斜度如何确定位错流和(3)如何滑动-plane相互作用导致压痕期间的最终堆积形状。我们发现流动方向从在滑动平面和表面之间的55-58的过渡角处从向前流转换到侧向。我们使用大型位移有限元方法模拟来验证该转变角度的分辨剪切应力的反转。我们在脱位介导的FCC金属缩进中提供了洞察可塑性的演变,潜在地应用了这种信息的缩进模拟,并在未来理解摩擦学期间划伤的初始阶段。

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