激光激波加载下Zr-1Nb合金粗晶态和超细晶态的行为

Dmitry Ledon, Aleksandr Balakhnin, Sergey Uvarov, Irina Bannikova, Yuriy Bayandin, Oleg Naimark
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摘要

研究了Zr-1Nb合金在激光激波载荷作用下的粗晶态和超细晶态。由于应用于制造核反应堆燃料元件的壳体,这种材料引起了人们的兴趣。该合金在超细晶状态下的性能为提高燃料棒在大负荷强度范围内的可靠性所吸引。冲击波加载使用Beamtech SGR-Extra-10高能纳秒激光器进行。用VISAR系统记录了自由表面速度分布。利用速度曲线获得机械特性。结果表明,粗晶态的细观强度和动态弹性极限均高于超细晶态。总的来说,处于超细晶状态的Zr-1Nb合金更容易发生碎裂,包括激光冲击强化。采用基于统计的含缺陷固体非线性模型和有限元方法对研究过程进行了数值模拟,以描述材料在冲击波载荷作用下的变形行为和断裂。模拟结果与实验结果在预测小颗粒破坏条件方面基本一致。
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Behavior of Zr–1Nb alloy in coarse- and ultrafine-grain states under laser-induced shock wave loading
The work is devoted to the study of the Zr-1Nb alloy in coarse-grained and ultrafine-grained states under laser-induced shock-wave loading. This material is of interest due to the application for the manufacture of shells for fuel elements of nuclear reactors. The properties of this alloy in the ultrafine-grained state is attracted for the reliability improvement of fuel rods in wide range of load intensity. Shock wave loading was carried out using a Beamtech SGR-Extra-10 high-energy nanosecond laser. The free surface velocity profiles were registered by the VISAR system. Mechanical characteristics are obtained using velocity profiles. It is shown that the spall strength and dynamic elastic limit for the coarse-grained state are higher than for the ultrafine-grained state. In general, the Zr-1Nb alloy in the ultrafine-grained state is more susceptible to spall fracture, including laser shock peening. Numerical simulation of the process under study has been carried out using statistically based nonlinear model of solid with defects and finite element method to describe the deformation behavior and fracture of the material under shock-wave loading. Simulation results are qualitatively consistent with experiments in the prediction of the conditions of spall failure.
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