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State-Resolved Dissociation Rates for Extremely Nonequilibrium Atmospheric Entries

机译:极不平衡大气进入的状态分解解离速率

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This paper presents the application of the forced harmonic oscillator method to the simulation of state-resolved dissociation processes behind high-temperature shock waves typical of atmospheric reentries. Improvements have been brought to the model, considering a more precise method for the calculation of the different vibrational level energies, therefore increasing the accuracy of the predicted transition probabilities between higher vibrational levels close and above the dissociation limit. The model has been validated against data issued from recent experiments, as well as data issued from semiclassical trajectory calculations for collisions between different species. A good overall agreement is achieved against such other data. A database of reaction rates has been constructed with the purpose of simulating shock-heated nitrogen flows. Dissociation processes behind a shock wave have been simulated for different postshock translational temperatures. At lower temperatures, the well-known ladder-climbing phenomenon is the main dissociation channel behind a shock wave, with dissociation occurring for transitions from the vibrational levels close to the dissociation limit. At higher temperatures, transitions between the different vibrational levels of nitrogen become roughly equiprobable, and the overall range of bound vibrational levels contributes to the dissociation.
机译:本文介绍了强迫谐波振荡器方法在模拟大气折返的高温冲击波后的状态分解离解过程中的应用。考虑到一种更精确的方法来计算不同的振动能级,对模型进行了改进,因此提高了接近和高于解离极限的较高振动能级之间的预测过渡概率的准确性。该模型已针对近期实验发布的数据以及半物种轨迹计算中针对不同物种之间发生碰撞的数据进行了验证。针对此类其他数据达成了良好的总体协议。为了模拟冲击加热的氮气流,已经建立了反应速率数据库。冲击波后的解离过程已针对不同的震后平移温度进行了模拟。在较低的温度下,众所周知的爬梯现象是冲击波后面的主要解离通道,在从接近解离极限的振动水平过渡时发生解离。在较高的温度下,氮的不同振动水平之间的转变变得大致相等,结合振动水平的整体范围有助于离解。

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