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Microstructures and Mechanical Properties of Pure V and Mo Processed by High-Pressure Torsion

机译:高压扭转作用下纯钒和钼的组织和力学性能

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摘要

Two body centered cubic (bcc) metals, V and Mo, were processed by high pressure torsion (HPT) at ambient temperature. Hardness variation as well as microstructural evolution was examined with strain under a pressure of 2 to 6 GPa. It was shown that the hardness increases with straining and saturates to a constant level with the grain size of 330-400 nm in V irrespective of the applied pressures. Although the hardness variation with strain is the same for Mo with the grain size of ~350 run at the saturation level when the applied pressure is 6 GPa, the hardness level lowers below the saturation level and the grain size becomes coarser as the pressure is lowered. Tensile tests show that the strength significantly increases with some ductility for V after processing under any pressure and for Mo under lower pressures, but brittle fracture occurs in the Mo specimen processed at 6 GPa. The slower evolution of microstructure as well as the lower hardness levels observed in Mo is due to the applied pressure which is lower than the yield stress and thus due to the insufficient generation of dislocations for grain refinement.
机译:在环境温度下通过高压扭转(HPT)处理了两种体心立方(bcc)金属V和Mo。在2至6 GPa的压力下,通过应变检查硬度变化和微观结构演变。结果表明,硬度随应变的增加而增加,并且在V的晶粒尺寸为330-400 nm时达到饱和,而与施加的压力无关。尽管当施加压力为6 GPa时,Mo的硬度随应变的变化而变化,〜350的晶粒尺寸在饱和水平,但硬度水平降低到低于饱和水平,并且随着压力的降低晶粒尺寸变得更大。拉伸试验表明,在任何压力下加工后的V和在较低压力下加工Mo时,强度都随着延展性的增加而显着增加,但是在6 GPa加工的Mo试样中会发生脆性断裂。在Mo中观察到的微观结构变慢以及较低的硬度水平是由于所施加的压力低于屈服应力,因此是由于晶粒细化产生的位错不足。

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