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Athermal strength of pure aluminum is significantly decreased by severe plastic deformation and it is markedly augmented by subsequent annealing

机译:纯铝的滴管强度因严重的塑性变形而显着降低,并且通过随后的退火显着增加

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Over the last two decades, it has been considered that fine crystal grains produced by severe plastic deformation (SPD) lead to an extraordinarily high metal strength. The present study reveals that this understanding is basically incorrect. In our uniaxial tensile tests on industrial pure aluminum at an ultralow strain rate of $$sim 10^{ - 7} /{ext{s}}$$ , we observed that SPD accompanied by grain refining significantly softened the material. The fundamental strength effective for real structures and structural materials should mean an eternal capability to bear stresses caused by external forces, which is independent of time, that is, athermal. We tried to extract quantitatively the athermal (time-independent) strength from the total strength measured in uniaxial tensile tests under the assumption that the total stress can be additively divided into athermal and thermal (time-dependent) components. As a result of systematic experimental investigation, we found that the athermal strength is significantly reduced by SPD and then markedly increased by subsequent low-temperature annealing. In addition, we confirmed that SPD promotes an increase in the time dependence (viscosity) of the material and that subsequent annealing removes most of the viscosity caused by SPD. The material processed by SPD acquires its prominent time-independent strength after low-temperature annealing.
机译:在过去的二十年中,已被认为是由严重塑性变形(SPD)产生的细晶粒导致非常高的金属强度。本研究表明,这种理解基本不正确。在我们的单轴拉伸试验中,以Ull Sim 10 ^ { - 7} / { text {} / { {} / {} $$,观察到谷物精炼的SPD显着软化了材料。真实结构和结构材料有效的基本强度应意味着永恒的能力,这些能力承受由外力引起的应力,这与时间,即滴注。我们试图在假设总应力可以将总胁迫和热(时间依赖性)组分加剧地分成单轴拉伸试验中测量的总强度,从而从单轴拉伸试验中测量的总强度进行定量提取。由于系统的实验研究,我们发现,通过SPD显着降低了接种强度,然后通过随后的低温退火显着增加。此外,我们确认SPD促进了材料的时间依赖性(粘度)的增加,并且随后的退火除去了由SPD引起的大部分粘度。通过SPD处理的材料在低温退火后获得了其突出的时空强度。

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