基于旋转惯性物理的内旋转和旋转速率的微极固体和流体介质的NCCT:模型问题研究

Karan S. Surana, Jacob K. Kendall
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引用次数: 0

摘要

利用基于内旋转和旋转速率的微极非经典连续介质理论(NCCT)研究了无记忆微极热粘弹性固体和微极热粘性流体的模型问题,其中在推导守恒和平衡定律(CBL)时考虑了旋转惯性物理。耗散机制是由于应变速率和旋转速率。模型问题的设计是为了演示和说明微极NCCT的各个重要方面与旋转惯性物理在本文中考虑。在微极性固体中,平动波和旋转波共存。在没有微组分的情况下(经典连续介质理论,CCT),内部旋转是自由场,因此对CCT没有影响。微极热粘性流体介质中位移梯度和应变梯度的缺失阻止了平动波和旋转波的存在,即使数学模型的外观与固体类似,但在应变率方面。结果表明,对于微极性热粘性流体,BAM的行为更像时间相关扩散方程,即拉格朗日描述中的热传导方程。在模型问题的研究中,利用BLM和BAM论证了旋转惯性物理的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
NCCT for Micropolar Solid and Fluid Media Based on Internal Rotations and Rotation Rates with Rotational Inertial Physics: Model Problem Studies
This paper presents model problem studies for micropolar thermoviscoelastic solids without memory and micropolar thermoviscous fluid using micropolar non-classical continuum theories (NCCT) based on internal rotations and rotation rates in which rotational inertial physics is considered in the derivation of the conservation and balance laws (CBL). The dissipation mechanism is due to strain rates as well as rotation rates. Model problems are designed to demonstrate and illustrate various significant aspects of the micropolar NCCT with rotational inertial physics considered in this paper. In case of micropolar solids, the translational and rotational waves are shown to coexist. In the absence of microconstituents (classical continuum theory, CCT) the internal rotations are a free field, hence have no influence on CCT. Absence of gradients of displacements and strains in micropolar thermoviscous fluid medium prohibits existence of translational waves as well as rotational waves even though the appearance of the mathematical model is analogous to the solids, but in terms of strain rates. It is shown that in case of micropolar thermoviscous fluids the BAM behaves more like time dependent diffusion equation i.e., like heat conduction equation in Lagrangian description. The influence of rotational inertial physics is demonstrated using BLM as well as BAM in the model problem studies.
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