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The Role of Grain Size on Neutron Irradiation Response of Nanocrystalline Copper

机译:晶粒尺寸对纳米晶铜中子辐照响应的影响

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摘要

The role of grain size on the developed microstructure and mechanical properties of neutron irradiated nanocrystalline copper was investigated by comparing the radiation response of material to the conventional micrograined counterpart. Nanocrystalline (nc) and micrograined (MG) copper samples were subjected to a range of neutron exposure levels from 0.0034 to 2 dpa. At all damage levels, the response of MG-copper was governed by radiation hardening manifested by an increase in strength with accompanying ductility loss. Conversely, the response of nc-copper to neutron irradiation exhibited a dependence on the damage level. At low damage levels, grain growth was the primary response, with radiation hardening and embrittlement becoming the dominant responses with increasing damage levels. Annealing experiments revealed that grain growth in nc-copper is composed of both thermally-activated and irradiation-induced components. Tensile tests revealed minimal change in the source hardening component of the yield stress in MG-copper, while the source hardening component was found to decrease with increasing radiation exposure in nc-copper.
机译:通过比较材料与常规微晶对应物的辐射响应,研究了晶粒尺寸对中子辐照纳米晶铜发达的组织和力学性能的作用。纳米晶(nc)和微晶(MG)铜样品的中子暴露水平范围为0.0034至2 dpa。在所有损伤水平下,MG-铜的反应都受到辐射硬化的控制,辐射硬化表现为强度增加,伴随着延展性降低。相反,nc-铜对中子辐照的响应表现出对损伤水平的依赖性。在低损伤水平下,晶粒长大是主要的反应,而辐射硬化和脆化则随损伤水平的增加而成为主要反应。退火实验表明,nc-铜的晶粒长大是由热活化和辐照诱导的成分组成。拉伸试验表明,在MG-铜中屈服应力的源硬化成分变化很小,而在nc-铜中,随着辐射暴露的增加,源硬化成分减少。

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