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Generation and Propagation of Thermally Induced Acoustic Waves in Supercritical Fluids: Numerical and Experimental Results

机译:超临界流体中热诱导声波的产生和传播:数值和实验结果

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The behavior of thermally induced acoustic waves generated by the rapid heating of a bounding solid wall in a closed cylindrical chamber filled with supercritical carbon dioxide is investigated numerically and experimentally. A time-dependent one-dimensional problem is considered for the numerical simulations where the supercritical fluid is contained between two parallel plates. The NIST Reference Database 12 is used to obtain the property relations for supercritical carbon dioxide. The thermally induced pressure (acoustic) waves undergo repeated reflections at the two confining walls and gradually dissipate. The numerically predicted temperature of the bulk supercritical fluid isfound to increase homogeneously (the so called piston effect) within the domain. The details of generation, propagation and dissipation of thermally induced acoustic waves in supercritical fluids are presented under different heating rates. In the experiments, a resistance-capacitance circuit is used to generate a rapid temperature increase in a thin metal foil located at one end of a closed cylindrical chamber. The time-dependent pressure variation in the chamber and the temperature history at the foil are recorded by a fast response measurement system. Both the experimental and numerical studies predict similar pressure wave shapes and profiles due to rapid heating of a wall.
机译:通过数值和实验研究了在充满超临界二氧化碳的密闭圆柱室内快速加热边界固体壁所产生的热感应声波的行为。对于数值模拟,考虑了时变一维问题,其中超临界流体包含在两个平行板之间。 NIST参考数据库12用于获得超临界二氧化碳的性质关系。热感应压力(声波)在两个限制壁处反复反射并逐渐消散。超临界流体的数字预测温度为 发现在域内均匀增加(所谓的活塞效应)。介绍了在不同加热速率下超临界流体中热感应声波的产生,传播和耗散的细节。在实验中,使用电阻-电容电路在位于封闭的圆柱形腔室一端的薄金属箔中产生快速的温度升高。腔室中随时间变化的压力变化和箔片上的温度历史记录由快速响应测量系统记录。实验和数值研究均预测由于壁的快速加热而产生的相似压力波形和轮廓。

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