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RR-MR transition of a Type V shock interaction in inviscid double-wedge flow with high-temperature gas effects

机译:RR-MR转换型V型冲击相互作用,具有高温气体效应

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摘要

The transition between regular reflection (RR) and Mach reflection (MR) of a Type V shock-shock interaction on a double-wedge geometry with non-equilibrium high-temperature gas effects is investigated theoretically and numerically. A modified shock polar method that involves thermochemical non-equilibrium processes is applied to calculate the theoretical critical angles of transition based on the detachment criterion and the von Neumann criterion. Two-dimensional inviscid numerical simulations are performed correspondingly to reveal the interactive wave patterns, the transition processes, and the critical transition angles. The theoretical and numerical results of the critical transition angles are compared, which shows evident disagreement, indicating that the transition mechanism between RR and MR of a Type V shock interaction is beyond the admissible scope of the classical theory. Numerical results show that the collisions of triple points of the Type V interaction cause the transition instead. Compared with the frozen counterpart, it is found that the high-temperature gas effects lead to a larger critical transition angle and a larger hysteresis interval.
机译:在理论上和数值上,在具有非平衡高温气体效果的双楔形几何形状上的V型v次抗冲击相互作用的常规反射(RR)和MRS)的转变进行了实际上和数值。涉及热化学非平衡过程的改进的冲击极性方法应用于基于分离标准和von Neumann标准来计算转换的理论临界角度。相应地执行二维函数数值模拟,以揭示交互式波形图案,过渡过程和临界转变角度。比较临界转变角的理论和数值结果,其显示了明显的分歧,表明RR和v型冲击相互作用的转变机制超出了经典理论的可允许范围。数值结果表明,V型交互三重点的碰撞导致转换。与冷冻对应物相比,发现高温气体效应导致较大的临界过渡角和较大的滞后间隔。

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