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Numerical investigation of flame splitting phenomenon in upward flame spread over solids with a two-stage pyrolysis model

机译:两级热解模型数值模拟固体向上蔓延的火焰分裂现象

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Upward flame spread over thin solids is numerically studied using an in-house three-dimensional transient numerical model with a two-stage solid pyrolysis. The simulation results reveal fundamentally different flame behaviors in different pressure conditions. At low pressures, conventional continuous flame spread is observed. Upon ignition, the flame grows and spreads upward until it reaches the end of the sample. At high pressures, the flame splits into two flames shortly after ignition. The two flames spread upward separately at different spread rates. In a transitional pressure region, cyclic flame splitting was observed. The flame splits periodically during the upward spreading process. In each splitting cycle, the bottom flame extinguishes shortly after splitting while the top flame continuously spreads upward and starts a new splitting cycle. This flame splitting phenomenon was previously observed experimentally, but to the authors' knowledge is numerically captured for the first time in this study. The splitting process is presented in detail and compared with the continuous flame spread process. The numerical results indicate that the multi-stage pyrolysis is responsible for the flame splitting.
机译:使用内部三阶段瞬态数值模型和两阶段固体热解数值研究了火焰在薄固体上的扩散。仿真结果揭示了在不同压力条件下的根本不同的火焰行为。在低压下,观察到常规连续火焰蔓延。点燃后,火焰生长并向上扩散,直到到达样品末端。在高压下,点燃后不久,火焰分裂成两束火焰。两种火焰分别以不同的扩散速率向上扩散。在过渡压力区域,观察到周期性火焰分裂。火焰在向上扩散过程中定期裂开。在每个分裂循环中,底部火焰在分裂后不久即熄灭,而顶部火焰连续向上扩散并开始新的分裂循环。这种火焰分裂现象以前是通过实验观察到的,但据作者所知,本研究首次在数值上获得了这种火焰分裂现象。详细介绍了分裂过程,并将其与连续火焰蔓延过程进行了比较。数值结果表明,多级热解是造成火焰分裂的原因。

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