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凝固金属中的胀流剪切带。

Dilatant shear bands in solidifying metals.

作者信息

Gourlay C M, Dahle A K

机构信息

The CAST CRC, Materials Engineering, The University of Queensland, Brisbane, Queensland 4072, Australia.

出版信息

Nature. 2007 Jan 4;445(7123):70-3. doi: 10.1038/nature05426.

Abstract

Compacted granular materials expand in response to shear, and can exhibit different behaviour from that of the solids, liquids and gases of which they are composed. Application of the physics of granular materials has increased the understanding of avalanches, geological faults, flow in hoppers and silos, and soil mechanics. During the equiaxed solidification of metallic alloys, there exists a range of solid fractions where the microstructure consists of a geometrically crowded disordered assembly of crystals saturated with liquid. It is therefore natural to ask if such a microstructure deforms as a granular material and what relevance this might have to solidification processing. Here we show that partially solidified alloys can exhibit the characteristics of a cohesionless granular material, including Reynolds' dilatancy and strain localization in dilatant shear bands 7-18 mean crystals wide. We show that this behaviour is important in defect formation during high pressure die casting of Al and Mg alloys, a global industry that contributes over $7.3 billion to the USA's economy alone and is used in the manufacture of products that include mobile-phone covers and steering wheels. More broadly, these findings highlight the potential to apply the principles and modelling approaches developed in granular mechanics to the field of solidification processing, and also indicate the possible benefits that might be gained from exploring and exploiting further synergies between these fields.

摘要

压实的粒状材料会因剪切作用而膨胀,并且可能表现出与其所组成的固体、液体和气体不同的行为。粒状材料物理学的应用增进了人们对雪崩、地质断层、料斗和筒仓中的流动以及土壤力学的理解。在金属合金的等轴凝固过程中,存在一系列固相分数范围,在此范围内微观结构由充满液体的晶体的几何拥挤无序集合体组成。因此自然而然会问,这样的微观结构是否会像粒状材料一样变形,以及这可能与凝固过程有什么关联。在此我们表明,部分凝固的合金可以表现出无粘性粒状材料的特性,包括雷诺剪胀性以及在宽度为7 - 18个平均晶体的剪胀剪切带中的应变局部化。我们表明,这种行为在铝和镁合金的高压压铸过程中的缺陷形成中很重要,高压压铸是一个全球性产业,仅对美国经济的贡献就超过73亿美元,并且用于制造包括手机外壳和方向盘在内的产品。更广泛地说,这些发现凸显了将粒状力学中发展的原理和建模方法应用于凝固加工领域的潜力,也表明了从探索和利用这些领域之间进一步的协同效应中可能获得的益处。

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