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Effect of mixing on hydrocarbon and carbon monoxide emissions prediction for isooctane HCCI engine combustion using a multi-zone detailed kinetics solver

机译:使用多区详细动力学求解器混合烃和一氧化碳排放预测对异辛烷HCCI发动机燃烧的影响

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This research investigates how the handling of mixing and heat transfer in a multi-zone kinetic solver affects the prediction of carbon monoxide and hydrocarbon emissions for simulations of HCCI engine combustion. A detailed kinetics multi-zone model is now more closely coordinated with the KIVA3V computational fluid dynamics code for simulation of the compression and expansion processes. The fluid mechanics is solved with high spatial and temporal resolution (40,000 cells). The chemistry is simulated with high temporal resolution, but low spatial resolution (20 computational zones). This paper presents comparison of simulation results using this enhanced multi-zone model to experimental data from an isooctane HCCI engine. The chemical kinetics part of the simulation is handled using the multi-zone segregated solver method developed previously, but now KIVA3V is sued to handle the fluid dynamics (convection, mass diffusion and heat transfer) for the entire compression and expansion processes. The results show that carbon monoxide and hydrocarbon emissions may be greatly influenced by the mixing and heat transfer during expansion. The prediction of HC and CO is significantly improved by inclusion of these effects in the simulation.
机译:本研究研究了多区动力学求解器中混合和传热的处理如何影响HCCI发动机燃烧模拟的一氧化碳和烃排放的预测。详细的动力学多区模型现在更紧密地与Kiva3V计算流体动力学代码更紧密地协调,用于模拟压缩和扩展过程。通过高空间和时间分辨率(40,000个细胞)来解决流体力学。用高时间分辨率模拟化学,但空间分辨率低(20个计算区域)。本文介绍了使用该增强的多区域模型与ISOOCTANE HCCI发动机的实验数据的模拟结果的比较。使用先前开发的多区隔离求解器方法处理了模拟的化学动力学部分,但是现在Kiva3V被起诉用于整个压缩和扩展过程的流体动力学(对流,质量扩散和传热)。结果表明,一氧化碳和烃排放可能会受到膨胀期间混合和传热的大大影响。通过在模拟中包含这些效果,通过包含这些效果显着提高HC和CO的预测。

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