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Nanomechanical properties of novel intermetallic coatings developed on austenitic stainless steels by siliconisation in liquid phase

机译:通过液相硅化在奥氏体不锈钢上开发的新型金属间涂层的纳米力学性能

摘要

Advanced nanomechanical testing has been used to evaluate mechanical properties of Ni-free Al12(Fe,Cr)3Si2 intermetallic coatings grown on the 316 LVM steel by hot dipping in a Al-12.6 at.% Si liquid alloy for various immersion times. Despite the ultrafine-grained structure of the coating (∼200 nm), the indentation size effect is more pronounced for the intermetallic coating than for the steel, which is explained by the higher geometrical necessary dislocation (GND) density of the intermetallic coating. To determine the true hardness of the coatings, the model of Nix and Gao was used. It has been shown that the hardness of the coating decreases from 6.2 GPa for the shortest time of immersion (60 s), to 3.36 GPa for the highest immersion time (600 s), which is always much higher than that for the substrate (1.82 GPa). The decrease in both hardness and GND with increasing immersion time is related to the relaxation of residual stresses, which act as a hardening factor. The net effect is an increase of the plasticity index of the coating. Young's modulus for the intermetallic phase (146 GPa) is lower than that for the austenitic steel 316 LVM (220 GPa), which will favour the load transfer at the bone/metal interface, weakening the so-called >stress shielding effect>. Hence, the nanomechanical properties of this novel Ni-free intermetallic coating, tightly adhered to the substrate, offer a window of opportunity for orthopaedic applications. © 2010 Elsevier Ltd. All rights reserved.
机译:先进的纳米力学测试已用于评估在316 LVM钢上生长的无Ni的Al12(Fe,Cr)3Si2金属间镀层的机械性能,方法是将Al-12.6 at。%Si液态合金进行热浸不同时间。尽管涂层具有超细晶粒结构(约200 nm),但金属间涂层的压痕尺寸效应比钢更明显,这可以通过金属间涂层的较高几何必要位错(GND)密度来解释。为了确定涂层的真实硬度,使用了Nix和Gao模型。结果表明,涂​​层的硬度从最短的浸入时间(60 s)降低到6.2 GPa,到最高的浸入时间(600 s)降低到3.36 GPa,这总是远高于基材的硬度(1.82) GPa)。随着浸入时间的增加,硬度和GND的降低都与残余应力的松弛有关,残余应力是硬化因子。最终效果是增加了涂层的可塑性指数。金属间相的杨氏模量(146 GPa)低于奥氏体钢316 LVM(220 GPa)的杨氏模量,这将有利于在骨/金属界面进行载荷转移,从而削弱了所谓的“应力屏蔽效应”。因此,这种牢固地粘附在基材上的新型无镍金属间涂层的纳米机械性能为整形外科应用提供了机会。 ©2010 ElsevierLtd。保留所有权利。

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