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首页> 外文期刊>Computational Methods in Science and Technologygy >Minimal Energy Dissipation Rate and Director Orientation Relative to External Dissipative Fields such as Temperature and Velocity Gradients in Nematic and Cholestric Liquid Crystals
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Minimal Energy Dissipation Rate and Director Orientation Relative to External Dissipative Fields such as Temperature and Velocity Gradients in Nematic and Cholestric Liquid Crystals

机译:相对于外部耗散场的最小能量耗散速率和导演方向,如甲型和胆气液晶中的温度和速度梯度

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摘要

The purpose of this review article is to summarize observations accumulated over the years on director alignment phenomena in nematic and cholesteric liquid crystals by molecular dynamics simulation of molecular model systems and by experiment on real systems. The main focus is on the alignment angle between the director and external dissipative fields such as velocity gradients in various flow geometries and temperature gradients doing irreversible work on the system. A general observation is that the director attains an orientation relative to the field where the energy dissipation rate is minimal in the steady state. In the case of planar elongational flow, it can be proven by using symmetry arguments that the energy dissipation rate must be either maximal or minimal and simulations have shown that is minimal. In planar Couette flow both simulations and experiments imply that the energy dissipation rate is minimal in the steady state. Finally, in the case of heat conduction, symmetry arguments imply that the energy dissipation rate must be either minimal or maximal and simulations and experiments indicate that it is minimal. All these observations can be explained by applying a recently proven theorem according to which the energy dissipation rate is minimal in the steady state in the linear regime at low fields.
机译:本综述文章的目的是总结通过分子模型系统的分子动力学模拟并通过实际系统试验来概述向列法和胆甾醇液晶中的导演对准现象积累的观察结果。主要重点是导演和外部耗散场之间的对准角,例如各种流动几何形状的速度梯度和在系统上进行不可逆工作的温度梯度。一般观察是导演相对于稳定状态下的能量耗散率最小的领域的方向。在平面伸长流量的情况下,可以通过使用对称性争论来证明,即能量耗散率必须是最大的或最小的并且模拟已经显示出最小的。在平面耦合流中,模拟和实验都意味着在稳态中的能量耗散速率最小。最后,在热传导的情况下,对称性争论意味着能量耗散率必须是最小的或最大的,并且模拟和实验表明它是最小的。通过应用最近经过验证的定理可以解释所有这些观察,其中节能率在低场的线性制度中的稳态最小。

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