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Numerical investigation of the thermal-caloric imperfections on entropy enhancement across normal shock waves

机译:正常冲击波中熵增强的热热量缺陷的数值研究

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摘要

Changes in flow properties across a normal shock wave are calculated for a real gas, thus giving us a better affinity to the real behavior of the waves. The purpose of this work is to develop shock-wave theory under the gaseous imperfections. Expressions are developed for analyzing the supersonic flow of such a thermally and calorically imperfect gas. The effects of molecular size and intermolecular attraction forces are used to correct a state equation, focusing on determination of the impact of upstream stagnation parameters on a normal shock wave. Flow through a shock wave in air is investigated to find a general form for normal shock waves. At Mach numbers greater than 2.0, the temperature rise is considerably below, and hence the density rise is well above, that predicted assuming ideal gas behavior. It is shown that caloric imperfections in air have an appreciable effect on the parameters developed in the processes considered. Computation of errors between the present model based on real gas theory and a perfect gas model shows that the influence of the thermal and caloric imperfections associated with a real gas is important and can rise up to 17%.
机译:计算了真实气体在正常冲击波上的流动特性变化,从而使我们对波动的真实行为具有更好的亲和力。这项工作的目的是发展在气体缺陷下的冲击波理论。开发了用于分析这种热和热量不完美气体的超声流的表达式。分子大小和分子间吸引力的影响用于校正状态方程,重点是确定上游停滞参数对正常冲击波的影响。研究了空气中冲击波的流动,以找到正常冲击波的一般形式。当马赫数大于2.0时,温度升高明显低于此值,因此密度升高远高于假定理想气体行为所预测的值。结果表明,空气中的热量缺陷会对所考虑的过程中产生的参数产生明显影响。基于真实气体理论的本模型与理想气体模型之间的误差计算表明,与真实气体相关的热和热缺陷的影响很重要,并且可以上升到17%。

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