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Exhaust Gas Recirculation Effects on Hydrogen-Air Combustion

机译:废气再循环对氢气-空气燃烧的影响

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The effects of residence and micro mixing time scales on NO_x formation in hydrogen combustion are modeled, using idealized Partially Stirred Reactors (PaSR), with stochastic Monte-Carlo simulations. The explicit dependence on residence and mixing time scales, of the mean and variance of mixture fraction, is derived and verified via the simulations. Transient responses of temperature and species mass fractions are studied as functions of the mean reactor mixture fraction, with varying residence and mixing times. Results of the transient studies are contrasted with steady-state values occurring in continuous combustion in a PaSR under identical conditions. Steady-state temperatures are only marginally higher than their peak values in the unsteady case. The effect of Exhaust Gas Recirculation (EGR) on emissions, particularly NO_x, is studied by premixing the oxidizer inlet with exhaust gas. Adding EGR is seen to have an effect similar to that of increasing the mixing time scale. It is reasoned that this is due to faster chemistry occurring at higher levels of EGR, in effect weakening mixing relative to chemistry. A decrease from 3000 ppm to 900 ppm of NO_x is predicted as the EGR level is increased from 0 to 40% by volume. This reduction is independent of thermal effects, commonly quoted as the reason for reduction in NO_x. The effects of pressure are also studied by varying the pressure from 1 atm to 20 atm. It is found that at pressures higher than atmospheric, an equivalent amount of EGR brings about double the reduction in NO_x achieved at atmospheric pressure, being caused by enhanced consumption rates.
机译:使用理想的部分搅拌反应器(PaSR),通过随机蒙特卡罗模拟,模拟了停留时间和微混合时间尺度对氢气燃烧中NO_x形成的影响。通过模拟得出并验证了混合物分数的均值和方差对停留时间和混合时间尺度的明确依赖性。研究温度和物质质量分数的瞬态响应作为平均反应器混合物分数的函数,并改变停留时间和混合时间。瞬态研究的结果与PaSR在相同条件下连续燃烧中产生的稳态值形成对比。在不稳定情况下,稳态温度仅略高于其峰值。通过将氧化剂入口与废气预混合,研究了废气再循环(EGR)对排放物(特别是NO_x)的影响。可以看出,添加EGR的效果类似于增加混合时间的比例。可以认为,这是由于在较高的EGR含量下发生了更快的化学反应,实际上削弱了相对于化学反应的混合。随着EGR水平从0体积%增加到40体积%,预计NO_x将从3000ppm降低到900ppm。这种减少与热效应无关,通常被称为减少NO_x的原因。还通过将压力从1个大气压更改为20个大气压来研究压力的影响。发现在高于大气的压力下,当量的EGR通过增加的消耗率而导致在大气压力下实现的NO_x降低两倍。

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