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Piston effect induced by cross-boundary mass diffusion in a binary fluid mixture near its liquid-vapor critical point

机译:跨边界质量扩散在其液汽临界点附近的二元流体混合物中引起的活塞效应

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In this paper, we study the thermalization process of an enclosed fluid mixture near its liquid-vapor critical point subjected to cross-boundary mass diffusion. We reveal that the mass piston effect, a fast and efficient thermalization phenomenon can take place, as a result of three cooperative or competing mechanisms: the boundary velocity, the Dufour effect, and the concentration variation. We propose a theory to formulate the mass piston effect on the acoustic timescale, including the amplitudes of the acoustic wave, the wave's propagation, and the energy and temperature efficiencies measuring the performance of the mass piston effect in terms of energy transfer and thermalization. We apply our theory to the representative C2H6 - CO2 mixture, and present the behavior of various thermodynamic indicators in the critical region over the whole concentration range. We identify that the boundary velocity is the main factor that restricts the efficiency of the thermalization. By comparing with numerical simulations of different initial states and boundary conditions, the theoretical predictions are quite satisfactory. The current work adds a new member to the family of piston effect and gives new insights into the thermalization process in the critical region. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在本文中,我们研究了一种封闭的流体混合物在其液体-蒸汽临界点附近经历跨边界质量扩散的热化过程。我们发现质量活塞效应是一种快速有效的热化现象,这是由于三种协同或竞争机制引起的:边界速度,杜福效应和浓度变化。我们提出了一种理论,以在声时标上公式化质量活塞效应,包括声波的振幅,波的传播以及在能量传递和热化方面测量质量活塞效应性能的能量和温度效率。我们将我们的理论应用于代表性的C2H6-CO2混合物,并给出了整个浓度范围内关键区域内各种热力学指标的行为。我们发现边界速度是限制热效率的主要因素。通过与不同初始状态和边界条件的数值模拟进行比较,理论预测是令人满意的。当前的工作为活塞效应家族增加了一个新成员,并对关键区域的热化过程提供了新的见解。 (C)2019 Elsevier Ltd.保留所有权利。

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