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Direct numerical simulations of exhaust gas recirculation effect on multistage autoignition in the negative temperature combustion regime for stratified HCCI flow conditions by using H_2O_2 addition

机译:分层HCCI流动条件下H_2O_2添加对负压燃烧时废气再循环对多级自燃影响的直接数值模拟。

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Direct numerical simulations (DNSs) of a stratified flow in a homogeneous compression charge ignition (HCCI) engine are performed to investigate the exhaust gas recirculation (EGR) and temperature/mixture stratification effects on the autoignition of synthetic dimethyl ether (DME) in the negative temperature combustion region. Detailed chemistry for a DME/air mixture is employed and solved by a hybrid multi-time scale (HMTS) algorithm to reduce the computational cost. The effect of to mimic the EGR effect on autoignition are studied. The results show that adding enhances autoignition by rapid OH radical pool formation (34-46% reduction in ignition delay time) and changes the ignition heat release rates at different ignition stages. Sensitivity analysis is performed and the important reactions pathways affecting the autoignition are specified. The DNS results show that the scales introduced by thermal and mixture stratifications have a strong effect after the low temperature chemistry (LTC) ignition especially at the locations of high scalar dissipation rates. Compared to homogenous ignition, stratified ignitions show similar first autoignition delay times, but 18% reduction in the second and third ignition delay times. The results also show that molecular transport plays an important role in stratified low temperature ignition, and that the scalar mixing time scale is strongly affected by local ignition in the stratified flow. Two ignition-kernel propagation modes are observed: a wave-like, low-speed, deflagrative mode and a spontaneous, high-speed, ignition mode. Three criteria are introduced to distinguish these modes by different characteristic time scales and Damkh?ler numbers using a progress variable conditioned by an ignition kernel indicator. The low scalar dissipation rate flame front is characterized by high displacement speeds and high mixing Damkh?ler number. The proposed criteria are applied successfully at the different ignition stages and approximate characteristic values are identified to delineate between the different ignition propagation modes.
机译:对均质压燃式点火(HCCI)发动机中的分层流进行直接数值模拟(DNS),以研究废气再循环(EGR)和温度/混合物分层对合成二甲醚(DME)负燃自燃的影响温度燃烧区域。采用了DME /空气混合物的详细化学方法,并通过混合多时标(HMTS)算法进行了求解,以降低计算成本。研究了模仿EGR效应对自燃的影响。结果表明,添加可通过迅速形成OH自由基而增强自燃(减少点火延迟时间34-46%),并改变不同点火阶段的点火放热率。进行敏感性分析,并指定影响自燃的重要反应途径。 DNS结果表明,在低温化学(LTC)点火后,尤其是在高标量耗散率的位置,由热分层和混合物分层引入的氧化皮具有很强的作用。与均匀点火相比,分层点火显示出相似的第一次自燃延迟时间,但第二次和第三次点火延迟时间减少了18%。结果还表明,分子运输在分层低温点火中起着重要作用,并且标量混合时间尺度受分层流中局部点火的强烈影响。观察到两种点火核传播模式:波状,低速,爆燃模式和自发,高速,点火模式。引入了三个标准,以使用由点火核心指示器调节的进度变量,通过不同的特征时间标度和达姆赫勒数来区分这些模式。低标量耗散率的火焰锋特征在于高位移速度和高混合达姆勒数。所提出的标准已成功地应用于不同的点火阶段,并确定了近似的特征值以在不同的点火传播模式之间进行描绘。

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