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Kinetic theory derivation of transport equations for gases with internal energy

机译:内能气体的输运方程的动力学理论推导

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Multitemperature models are widely used in the aerospace community to model atmospheric entry flows. In this paper, we propose a general description of the internal energy excitation of a molecular gas in thermal nonequilibrium by distinguishing between slow and fast collisions. A multiscale Chapman-Enskog method is used to study thermalization and derive Euler equations of conservation of mass, momentum, translational energy and internal energy. As opposed to conventional perturbation methods, the fast collision operator is expanded in the small parameter used to define the threshold for the net energy for fast collisions. We show that the role of the fast collisions is to thermalize the translational and internal energy modes, whereas the role of the slow collisions is to contribute to the thermal relaxation of the translational and internal energy modes.
机译:多温度模型在航空航天界被广泛使用,以对大气进入流进行建模。在本文中,我们通过区分慢速碰撞和快速碰撞来对分子气体在热非平衡态中的内部能量激发进行一般性描述。使用多尺度Chapman-Enskog方法来研究热化并推导质量,动量,平移能和内能守恒的Euler方程。与传统的扰动方法相反,快速碰撞算子在用于定义快速碰撞净能量阈值的小参数中扩展。我们表明,快速碰撞的作用是使平移和内部能量模式热化,而缓慢碰撞的作用是使平移和内部能量模式的热弛豫做出贡献。

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