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Self-driven lattice-model Monte Carlo simulations of alloy thermodynamic properties and phase diagrams

机译:自驱动晶格模型的合金热力学性质和相图的蒙特卡洛模拟

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Monte Carlo (MC) simulations of lattice models are a widely used way to compute thermodynamic properties of substitutional alloys. A limitation to their more widespread use is the difficulty of driving a MC simulation in order to obtain the desired quantities. To address this problem, we have devised a variety of high-level algorithms that serve as an interface between the user and a traditional MC code. The user specifies the goals sought in a high-level form that our algorithms convert into elementary tasks to be performed by a standard MC code. For instance, our algorithms permit the determination of the free energy of an alloy phase over its entire region of stability within a specified accuracy, without requiring any user intervention during the calculations. Our algorithms also enable the direct determination of composition-temperature phase boundaries without requiring the calculation of the whole free energy surface of the alloy system. [References: 33]
机译:晶格模型的蒙特卡洛(MC)仿真是计算替代合金热力学性质的一种广泛使用的方法。它们更广泛使用的限制是难以驱动MC仿真以获得所需数量。为了解决这个问题,我们设计了各种高级算法,用作用户和传统MC代码之间的接口。用户以高级形式指定要寻求的目标,我们的算法会将其转换为要由标准MC代码执行的基本任务。例如,我们的算法允许在规定的精度范围内确定合金相整个稳定区域内的自由能,而在计算过程中无需任何用户干预。我们的算法还可以直接确定组成温度相界,而无需计算合金系统的整个自由能表面。 [参考:33]

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