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Amorçage des fissures de corrosion sous contrainte dans les aciers inoxydables austénitiques pré-déformés et exposés au milieu primaire des réacteurs à eau sous pression

机译:暴露在压水堆主要环境中的预变形奥氏体不锈钢的应力腐蚀裂纹的引发

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摘要

Austenitic stainless steels are widely used in primary circuits of Pressurized Water Reactors (PWR) plants. However, a limited number of cases of Intergranular Stress Corrosion Cracking (IGSCC) has been detected in cold-worked (CW) areas of non-sensitized austenitic stainless steel components in French PWRs. A previous program launched in the early 2000's identified the required conditions for SCC of cold-worked stainless steels. It was found that a high strain hardening coupled with a cyclic loading favoured SCC. The present study aims at better understanding the role of pre-straining on crack initiation and at developing an engineering model for IGSCC initiation of 304L and 316L stainless steels in primary water. Such model will be based on SCC initiation tests on notched (not pre-cracked) specimens under “trapezoidal” cyclic loading. The effects of pre-straining (tensile versus cold rolling), cold-work level and strain path on the SCC mechanisms are investigated. Experimental results demonstrate the dominating effect of strain path on SCC susceptibility for all pre-straining levels. Initiation can be understood as crack density and crack depth. A global criterion has been proposed to integrate both aspects of initiation. Maps of SCC initiation susceptibility have been proposed. A critical crack depth between 10 and 20 µm has been demonstrated to define transition between slow propagation and fast propagation for rolled materials. For tensile pre-straining, the critical crack depth is in the range 20 - 50 µm. Experimental evidences support the notion of a KISCC threshold, whose value depends on materials, pre-straining ant load applied. The initiation time has been found to depend on the applied loading as a function of (max/YV)11,5. The effect of both strain path and surface hardening is indirectly taken into account via the yield stress. In this study, material differences rely on strain path effect on mechanical properties. As a result, a stress high exponent has been identified which includes all micro-scale mechanisms leading to strain localisation at initiation sites.
机译:奥氏体不锈钢广泛用于压水堆(PWR)工厂的一次回路。但是,在法国压水堆中,在未敏化的奥氏体不锈钢部件的冷加工(CW)区域中发现了有限数量的晶间应力腐蚀开裂(IGSCC)情况。 2000年代初启动的先前计划确定了冷加工不锈钢的SCC所需条件。发现高应变硬化和循环载荷有利于SCC。本研究旨在更好地了解预应变在裂纹萌生中的作用,并开发一种在原水中对304L和316L不锈钢进行IGSCC萌生的工程模型。这种模型将基于在“梯形”循环载荷下对缺口(未预破裂)试样的SCC初始测试。研究了预应变(拉伸与冷轧),冷作水平和应变路径对SCC机理的影响。实验结果表明,在所有预应变水平下,应变路径对SCC敏感性的主导作用。起始可以理解为裂纹密度和裂纹深度。已经提出了一个全局标准来整合启动的两个方面。已经提出了SCC起始敏感性的图。已经证明,临界裂纹深度在10至20 µm之间,可以定义轧制材料在慢速传播和快速传播之间的过渡。对于拉伸预应变,临界裂纹深度在20-50 µm的范围内。实验证据支持KISCC阈值的概念,该阈值取决于材料,所施加的预应变蚂蚁载荷。已经发现起始时间取决于所施加的载荷为(max/ YV)11,5的函数。通过屈服应力间接考虑了应变路径和表面硬化的影响。在这项研究中,材料差异取决于应变路径对机械性能的影响。结果,已经确定了应力高指数,其包括导致应变在起始位点定位的所有微观机制。

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    Huguenin Pauline;

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  • 年度 2012
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