论文标题

辐照的无限不锈钢的晶间应力腐蚀破裂的微力学分析

A micromechanical analysis of intergranular stress corrosion cracking of an irradiated austenitic stainless steel

论文作者

Liang, D., Hure, J., Courcelle, A., Shawish, S. El, Tanguy, B.

论文摘要

辐照辅助应力腐蚀破裂(IASCC)是一种材料降解现象,影响了用于核压水反应堆(PWR)的奥氏体不锈钢(PWR),导致晶间裂纹的启动和传播。这种现象属于更广泛的晶间应力腐蚀破裂(IGSCC)。在这项研究中,对辐照的奥氏体不锈钢进行的IGSCC进行了微机械分析,以评估局部开裂条件。研究了在PWR环境中测试并显示晶间开裂的304L质子辐照样品。执行了串行切片,电子反向散射衍射(EBSD)和两步错位程序,以在扩展体积上重建3D微结构,以评估统计上的破裂标准。还开发了一种方法来根据EBSD测量来计算晶界(GB)正常方向。统计分析表明,对于与机械加载轴对齐的GB正态,开裂优先发生,但也针对光泽 - 莫里斯滑移传输参数的低值。最终执行了基于重建的3D微观结构,基于FFT的求解器和晶体可塑性方程的微机械模拟,最终进行了修改以说明晶界处的滑动传输。这些模拟合理地将实验中获得的相关性合理化为基于应力的标准。讨论了这种微机械方法的实际优势和劣势。

Irradiation Assisted Stress Corrosion Cracking (IASCC) is a material degradation phenomenon affecting austenitic stainless steels used in nuclear Pressurized Water Reactors (PWR), leading to the initiation and propagation of intergranular cracks. Such phenomenon belongs to the broader class of InterGranular Stress Corrosion Cracking (IGSCC). A micromechanical analysis of IGSCC of an irradiated austenitic stainless steel is performed in this study to assess local cracking conditions. A 304L proton irradiated sample tested in PWR environment and showing intergranular cracking is investigated. Serial sectioning, Electron BackScatter Diffraction (EBSD) and a two-step misalignment procedure are performed to reconstruct the 3D microstructure over an extended volume, to assess statistically cracking criteria. A methodology is also developed to compute Grain Boundary (GB) normal orientations based on the EBSD measurements. The statistical analysis shows that cracking occurs preferentially for GB normals aligned with the mechanical loading axis, but also for low values of the Luster-Morris slip transmission parameter. Micromechanical simulations based on the reconstructed 3D microstructure, FFT-based solver and crystal plasticity constitutive equations modified to account for slip transmission at grain boundaries are finally performed. These simulations rationalize the correlation obtained experimentally into a single stress-based criterion. The actual strengths and weaknesses of such micromechanical approach are discussed.

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