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Molecular Dynamics Modeling and Simulation of Diamond Cutting of Cerium

机译:铈金刚石切削的分子动力学建模与仿真

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摘要

The coupling between structural phase transformations and dislocations induces challenges in understanding the deformation behavior of metallic cerium at the nanoscale. In the present work, we elucidate the underlying mechanism of cerium under ultra-precision diamond cutting by means of molecular dynamics modeling and simulations. The molecular dynamics model of diamond cutting of cerium is established by assigning empirical potentials to describe atomic interactions and evaluating properties of two face-centered cubic cerium phases. Subsequent molecular dynamics simulations reveal that dislocation slip dominates the plastic deformation of cerium under the cutting process. In addition, the analysis based on atomic radial distribution functions demonstrates that there are trivial phase transformations from the γ-Ce to the δ-Ce occurred in both machined surface and formed chip. Following investigations on machining parameter dependence reveal the optimal machining conditions for achieving high quality of machined surface of cerium.
机译:结构相变和位错之间的耦合在理解金属铈在纳米级的变形行为方面引发了挑战。在目前的工作中,我们通过分子动力学建模和模拟阐明了铈在超精密金刚石切割下的潜在机理。通过分配经验势来描述原子相互作用并评估两个以面心为中心的立方铈相的性质,建立了铈金刚石切割的分子动力学模型。随后的分子动力学模拟表明,位错滑移在切割过程中主导着铈的塑性变形。此外,基于原子径向分布函数的分析表明,在机加工表面和成型切屑中都发生了从γ-Ce到δ-Ce的微不足道的相变。以下对加工参数依赖性的研究揭示了实现高质量的铈加工表面的最佳加工条件。

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