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A new approach to evaluate irradiation hardening of ion-irradiated ferritic alloys by nano-indentation techniques

机译:纳米压痕技术评估离子辐照铁素体合金辐照硬化的新方法

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The present work investigates the irradiation hardening of Fe-based model ferritic alloys after Fe-ion irradiation experiments in order to deduce mechanistically based nominal hardness from the nano-indentation tests on the ion-irradiated surface. Ion-irradiation experiments were carried out at 290℃ with 6.4 MeV Fe~(3+) ions. The constant stiffness measurement (CSM) was used to obtain the depth-profile of hardness. The results has been analyzed and discussed based on the Nix-Gao model and an extended film/substrate system hardness model. The depth-sensing nano-indentation techniques with CSM revealed that the hardness gradient of the unirradiated Fe-based model alloy can be explained through the indentation size effect (ISE). On the other hand, the gradient of ion-irradiated surface of these samples includes not only the ISE but also softer substrate effect (SSE). We propose a new approach to evaluate a nominal hardness, which may connect to the bulk hardness, from experimentally obtained nano-hardness depth profile data.
机译:本工作研究了铁离子辐照实验后的铁基模型铁素体合金的辐照硬化,以便从对离子辐照表面的纳米压痕测试中得出基于机械的标称硬度。在290℃下用6.4 MeV Fe〜(3+)离子进行了离子辐照实验。恒定刚度测量(CSM)用于获得硬度的深度曲线。基于Nix-Gao模型和扩展的膜/基材系统硬度模型对结果进行了分析和讨论。 CSM的深度感应纳米压痕技术表明,未辐照的铁基模型合金的硬度梯度可以通过压痕尺寸效应(ISE)来解释。另一方面,这些样品的离子辐照表面的梯度不仅包括ISE,而且还包括较软的衬底效应(SSE)。我们提出了一种新的方法,可以通过实验获得的纳米硬度深度分布数据评估名义硬度,该名义硬度可能与整体硬度有关。

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