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Radiative Ignition and Extinction Dynamics of Energetic Solids

机译:高能固体的辐射点火和消光动力学

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The role of heat transfer in radiant ignition/extinction behavior of homogeneous energetic solids has been studied computationally. A model has been developed based on simplified chemical kinetics, unsteady heat transfer processes in the solid phase, and quasi-steady heat transfer in the gas phase. The general behavior of ignition and extinction dynamics for a spatially uniform incident radiant flux has been simulated and explained in terms of unsteady heat transfer phenomena. Two critical heat flux levels for the incident radiation are identified. For fluxes between the critical values, there is an ignition corridor with upper and a lower limits on the allowable time for radiation exposure to achieve ignition. Below the lower critical flux there is no-upper limit on the allowable exposure time to achieve ignition. Above the upper critical flux, stable ignition (self-sustained combustion on removal of the radiant flux) is not possible, that is, the ignition corridor becomes vanishingly small. The model explains the ignition corridor in terms of unsteady conductive, advective, and in-depth radiative heat transfer processes in the solid and quasi-steady conductive/advective processes in the gas-phase flame zone. Comparison is made with experimental data for goo-go ignition behavior of cyclotetramethylene-tetranitramine (HMX).
机译:通过计算研究了传热在均匀高能固体的辐射着火/消光行为中的作用。已经基于简化的化学动力学,固相中不稳定的传热过程以及气相中准稳态的传热建立了模型。对于非均匀传热现象,已经模拟并解释了空间均匀入射辐射通量的点火和熄灭动力学的一般行为。确定了入射辐射的两个临界热通量水平。对于介于临界值之间的通量,有一个点火通道,该通道对辐射暴露以达到点火的允许时间有上限和下限。低于下临界通量,达到点火的允许暴露时间没有上限。在高于上临界通量的情况下,不可能进行稳定的点火(除去辐射通量后自行燃烧),也就是说,点火通道逐渐变小。该模型从固态火焰的非稳态传导,对流和深度辐射传热过程以及气相火焰区的准稳态传导/对流过程解释了点火通道。与实验数据比较了环四亚甲基四硝胺(HMX)的通过/不通过点火行为。

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