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Development of advanced materials for spallation neutron sources and radiation damage simulation based on multi-scale models

机译:基于多尺度模型的剥落中子源先进材料开发和辐射损伤模拟

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This report describes the status review of the JSPS Grant Team to develop advanced materials for the spallation neutron sources and modeling of radiation damage. One of the advanced materials is a toughness enhanced, fine-grained tungsten material (W-TiC) having four-times larger fracture toughness than ordinary tungsten and appreciable RT ductility in the recrystallized state. The other is an intergranular crack (IGC)-resistant austenitic stainless steel which was processed by the grain-boundary engineering (GBE). The experimental results are devoted to corrosion in a lead-bismuth eutectic, arrest of corrosion of weld-decay, radiation damage and creep rupture as well as new technique of GBE using a laser and annealing procedure. New technique seems to be applicable to large or complicated-shaped components. A series of the multi-scale models is built up from nuclear reaction between incident particles and medium nuclei to material property change due to radiation damage. Sample calculation is made on 3 mm-thick nickel bombarded by 3 GeV protons.
机译:该报告描述了JSPS资助团队的状态审查,以开发用于散裂中子源和辐射损伤建模的高级材料。一种先进的材料是韧性增强的细晶粒钨材料(W-TiC),其断裂韧性是普通钨的四倍,并且在重结晶状态下具有显着的RT延展性。另一种是耐晶间裂纹(IGC)的奥氏体不锈钢,由晶界工程(GBE)处理。实验结果致力于铅-铋共晶中的腐蚀,焊接衰减腐蚀的阻止,辐射损伤和蠕变断裂以及GBE使用激光和退火工艺的新技术。新技术似乎适用于大型或复杂形状的部件。从入射粒子与介质核之间的核反应到辐射损伤导致的材料性能变化,建立了一系列多尺度模型。样品计算是在3 GeV质子轰击的3毫米厚镍上进行的。

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