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Enhancing nano-scale computational fluid dynamics with molecular pre-simulations : unsteady problems and design optimisation

机译:通过分子预仿真增强纳米级计算流体动力学:不稳定问题和设计优化

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摘要

We demonstrate that a computational fluid dynamics (CFD) model enhanced with molecular-level information can accurately predict unsteady nano-scale flows in non-trivial geometries, while being efficient enough to be used for design optimisation. We first consider a converging–diverging nano-scale channel driven by a time-varying body force. The time-dependent mass flow rate predicted by our enhanced CFD agrees well with a full molecular dynamics (MD) simulation of the same configuration, and is achieved at a fraction of the computational cost. Conventional CFD predictions of the same case are wholly inadequate. We then demonstrate the application of enhanced CFD as a design optimisation tool on a bifurcating two-dimensional channel, with the target of maximising mass flow rate for a fixed total volume and applied pressure. At macro scales the optimised geometry agrees well with Murray’s Law for optimal branching of vascular networks; however, at nanoscales, the optimum result deviates from Murray’s Law, and a corrected equation is presented.
机译:我们证明,通过分子水平信息增强的计算流体动力学(CFD)模型可以准确地预测非平凡几何形状中的非稳态纳米级流量,同时其效率足以用于设计优化。我们首先考虑由时变体力驱动的会聚-发散纳米级通道。由我们增强的CFD预测的随时间变化的质量流速与相同构型的完整分子动力学(MD)模拟非常吻合,并且只需少量的计算成本即可实现。相同案例的常规CFD预测完全不足。然后,我们演示了增强型CFD作为分叉二维通道上的设计优化工具的应用,其目标是在固定的总体积和所施加的压力下最大化质量流率。在宏观尺度上,优化的几何形状与Murray定律非常吻合,可以使血管网络实现最佳分支。但是,在纳米级,最佳结果偏离了默里定律,并提出了一个校正的方程。

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