富氢/空气火焰近极限传播中的脉动不稳定性

E.W. Christiansen, C.J. Sung, C.K. Law
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引用次数: 35

摘要

本文对近极限浓度富氢/空气火焰在双无限域中的绝热和受辐射影响的非定常平面传播进行了详细的化学和输运计算模拟。绝热传播的结果表明,随着燃料丰富度的逐渐增加,绝热传播模式从稳态到单周期振荡,到双周期振荡,再到被越来越长的化学反应休眠周期所分离的振荡。在存在辐射损耗的情况下,前三种模式的传播受到的影响最小,而在最后一种模式的休眠期间,随着火焰温度的急剧下降,熄灭很容易发生。由于末阶模态的起始状态比非绝热稳态传播极限的浓度更低,因此稳态结果的使用为丰富的基本可燃性极限提供了一个保守的估计。研究还表明,通过适当提取表征稳定绝热火焰传播的Lewis数和Zeldovich数,Sivashinsky基于一步化学导出的判据可以充分描述从稳定到脉动传播的过渡边界。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pulsating instability in near-limit propagation of rich hydrogen/air flames

The adiabatic and radiation-affected unsteady planar propagation of rich hydrogen/air flames of nearlimit concentrations in the doubly infinite domain is computationally simulated with detailed chemistry and transport. Results for the adiabatic propagation show that, with progressive increase in the fuel richness, the mode of propagation changes from steady state to oscillatory with a single period, to oscillatory with double periods, and to oscillation separated by increasingly long periods of dormant chemical reactivity. In the presence of radiative loss, propagation with the first three modes are minimally affected, whereas extinction readily occurs, with precipitous drop in the flame temperature, during the dormant period of the last mode. Because the state for the onset of the last mode is at a leaner concentration than that of the nonadiabatic steady-state propagation limit the use of the steady-state result provides a conservative estimate for the rich fundamentall flammability limit. The study also shows that, by using appropriately extracted Lewis and Zeldovich numbers characterizing the steady, adiabatic flame propagation, the transition boundary from steady to pulsating propagation can be adequately described by the criterion derived by Sivashinsky based on one-step chemistry.

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