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Effects of Isothermal Wall Boundary Conditions on Rotating Detonation Engine

机译:等温壁边界条件对旋转爆轰发动机的影响

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Three-dimensional numerical simulations of rotating detonation engines (RDEs) are reported with stoichiometric hydrogen/air mixtures using Navier-Stokes equations with non-slip walls. The effects of isothermal wall boundary conditions at 300 K, 600 K and 900 K are investigated and further compared with the simulation under adiabatic walls. With isothermal walls of 300 K, axial detonation is formed, which further leads to the quenching of detonation. With 600 K isothermal walls, the detonation wave has a similar stably propagating process as adiabatic walls. However, due to the wall heat loss, a lower detonation velocity is obtained in the simulation with isothermal walls. With 900 K isothermal walls, it is found that detonation quenches at first due to the high temperature of the walls, then re-initiates as a result of the collisions of shock waves. In addition, the temperature and heat flux distributions in the outer wall are analyzed. Both the peak temperature and heat flux are found to appear at the detonation wavefront. The averaged heat flux in the detonation region is about three times of the averaged heat flux evaluated in the outer wall. Moreover, the averaged temperature and heat flux remain nearly unchanged in the post-detonation region. Our results are in agreement with experimental studies and provide some insights for RDE thermal management.
机译:旋转爆轰发动机(RDE)的三维数值模拟报告使用具有防水墙的Navier-Stokes方程的化学计量氢/空气混合物。研究了等温壁边界条件在300K,600 k和900 k下的影响,并进一步与绝热壁下的模拟相比。具有300 k的等温壁,形成轴向爆震,这进一步导致爆震的猝灭。爆炸波具有600 k等温壁,具有与绝热墙相似的稳定繁殖的方法。然而,由于壁热损失,在具有等温壁的模拟中获得较低的爆轰速度。含有900 k等温壁,发现由于壁的高温,首先爆炸淬火,然后由于冲击波的碰撞而重新启动。另外,分析了外壁中的温度和热通量分布。发现峰值温度和热通量都被发现出现在爆炸波前。爆炸区域中的平均热通量是在外壁中评估的平均热通量的约三倍。此外,在后爆炸区域中平均温度和热通量几乎不变。我们的结果与实验研究一致,并为RDE热管理提供了一些见解。

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