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高应变率下的玻璃动力学。

Glass dynamics at high strain rates.

作者信息

Langer J S, Egami Takeshi

机构信息

Department of Physics, University of California, Santa Barbara, California 93106-9530, USA.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2012 Jul;86(1 Pt 1):011502. doi: 10.1103/PhysRevE.86.011502. Epub 2012 Jul 12.

Abstract

We present a shear-transformation-zone (STZ) theoretical analysis of molecular-dynamics simulations of a rapidly sheared metallic glass. These simulations are especially revealing because, although they are limited to high strain rates, they span temperatures ranging from well below to well above the glass transition. With one important discrepancy, the simplified STZ theory used here reproduces the simulation data, including the way in which those data can be made to collapse approximately onto simple curves by a scaling transformation. The STZ analysis implies that the system's behavior at high strain rates is controlled primarily by effective-temperature thermodynamics, as opposed to system-specific details of the molecular interactions. The discrepancy between theory and simulations occurs at the lower strain rates for temperatures near the glass transition. We argue that this discrepancy can be resolved by the same multispecies generalization of STZ theory that has been proposed recently for understanding frequency-dependent viscoelastic responses, Stokes-Einstein violations, and stretched-exponential relaxation in equilibrated glassy materials.

摘要

我们对快速剪切金属玻璃的分子动力学模拟进行了剪切转变区(STZ)理论分析。这些模拟特别具有启发性,因为尽管它们限于高应变速率,但涵盖了从远低于到远高于玻璃化转变的温度范围。除了一个重要差异外,这里使用的简化STZ理论再现了模拟数据,包括通过标度变换使这些数据大致塌缩到简单曲线上的方式。STZ分析表明,系统在高应变速率下的行为主要由有效温度热力学控制,这与分子相互作用的系统特定细节相反。理论与模拟之间的差异出现在玻璃化转变附近温度下的较低应变速率处。我们认为,这种差异可以通过最近提出的用于理解平衡玻璃态材料中频率依赖的粘弹性响应、斯托克斯 - 爱因斯坦违反和拉伸指数弛豫的STZ理论的相同多物种推广来解决。

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