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High-Order Thermal Effects in Oscillatory Couette Flow of a Rarefied Gas

机译:在稀土气体的振荡耦合流动中的高阶热效应

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We study the response of a rarefied gas in a slab to the motion of its boundaries in the tangential direction. In difference from previous investigations, we consider boundaries displacements at nonsmall Mach (Mo) numbers, coupling the dynamic and thermodynamic gas states, and deviating the system from its low-velocity isothermal condition. The problem is studied in the entire range of gas rarefaction rates, combining limit case ballistic- and continuum-flow analyses with direct simulation Monte Carlo computations. A nonlinear solution is derived in the ballistic regime for arbitrary velocity profiles and amplitudes. At near-continuum conditions, a slip-flow time-periodic solution is obtained for the case of oscillatory boundary motion, by expanding the flow field in an asymptotic Mach power series. The effect of replacing between isothermal and adiabatic surfaces is examined. The results indicate that, at all Knudsen (Kn) numbers, the thermodynamic fields and normal velocity component are dominated by double-frequency (and descending higher-order even-frequency harmonic) time dependence, in difference from the fundamental-frequency time dependence dominating the tangential gas velocity. At continuum-limit conditions, this stems from the quadratic viscous dissipation term (negligible at low-Mach conditions), coupling the square of the tangential velocity gradient as a forcing term. System nonlinearity also results in an unsteady normal force acting on the boundaries, overcoming the tangential force with increasing Ma. In marked difference from the latter, the normal force either decreases with Kn, or, at sufficiently small actuation frequencies, varies nonmonoton-ically with Kn, reaching a maximum at some intermediate rarefaction conditions.
机译:我们研究稀土气体在平板上的响应,以在切向方向上的边界的运动。与先前的调查不同,我们考虑在非主机Mach(Mo)编号的边界位移,耦合动态和热力学气体状态,并将系统从其低速等温条件偏离。在整个气体稀疏速率范围内研究了该问题,结合了极限情况弹道 - 和连续式分析与直接仿真蒙特卡罗计算。非线性溶液衍生在用于任意速度谱和振幅的弹道制度中。在近连续的条件下,通过在渐近马赫动力系列中的流动场上扩展流场来获得振荡边界运动的情况下获得滑动流时间周期溶液。检查在等温和绝热表面之间取代的效果。结果表明,在所有knudsen(kn)数字中,热力学场和正常速度分量都是由双频率(和下降的偶数频率谐波)时间依赖性的主导,与基本频率时间依赖性主导切向气体速度。在连续局限性条件下,这源于二次粘性耗散项(在低马氏条件下可忽略不计),将切向速度梯度的平方耦合为强制术语。系统非线性还导致非稳定的正常力作用在边界上,克服了随着MA的增加的切向力。在与后者的显着差异中,正常力用kN减小,或者在足够小的致动频率下,用kN变化,在一些中间稀释条件下达到最大值。

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