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Grain Refinement of Vanadium by Low Temperature Severe Plastic Deformation

机译:低温严重塑性变形谷粒细化钒

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Recent advances in the severe plastic deformation technique have shown that effective refinement of the microstructure can be achieved in pure metals as well as in alloys. Among the various methods of severe plastic deformation, equal channel angular pressing has been the subject of numerous research works. Since the grain refining effect of this technique appears to reach a peak at a level of approximately 200 nm further microstructural changes are sought-deformation at a cryogenic temperature being one of the candidate routes. In the present study, we opted to combine equal channel angular pressing and low temperature plastic deformation to refine the microstructure of commercially pure V. The starting microstructure consisted of equiaxed grains with an average size of 100 micrometers. This microstructure was refined to a 200 nm thick lamellar microstructure by 8 passes of equal channel angular pressing at 350°C. The lamellar thickness was further reduced to 140 nm upon subsequent cryogenic rolling, which resulted in room temperature yield strength of 768 MPa. In the specimens, recrystallization annealed at 850°C, the grain size reached 1000 nm or larger, and the yield strength obeyed the Hall-Petch relationship with that grain size. The tensile elongation value, which was low and insensitive to the grain size in the as-deformed state, increased significantly up to 43% with the recrystallization annealing.
机译:最近的严重塑性变形技术的进步表明,在纯金属以及合金中可以实现微观结构的有效细化。在严重塑性变形的各种方法中,相等的沟道角压已成为众多研究工作的主题。由于该技术的晶粒精炼效果似乎在大约200nm的水平下达到峰值,因此在低温温度下,在低温温度下被寻求变形的微观结构变化是候选路线之一。在本研究中,我们选择结合等沟道角压和低温塑性变形以优化商业纯V的微观结构。起始微观结构由平均尺寸为100微米的等轴组成。通过在350℃下将该微观结构精制到200nm厚的层状微观结构8℃的等于沟道角度压制的一定程度。在随后的低温轧制后,层状厚度进一步降低至140nm,导致室温屈服强度为768MPa。在标本中,在850℃下重结晶退火,晶粒尺寸达到1000nm或更大,屈服强度遵循与该晶粒尺寸的霍尔 - 竖起关系。在重结晶退火中,在变形状态下对晶粒尺寸低和不敏感的拉伸伸长率值与晶粒尺寸显着高达43%。

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