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Investigation of the Effect of Injection and Control Strategies on Combustion Instability in Reactivity-Controlled Compression Ignition Engines

机译:反应控制压燃式发动机的喷射和控制策略对燃烧不稳定性影响的研究

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This paper uses detailed computational fluid dynamics (CFD) modeling with the kiva-chemkin code to investigate the influence of injection timing, combustion phasing, and operating conditions on combustion instability. Using detailed CFD simulations, a large design of experiments (DOE) is performed with small perturbations in the intake and fueling conditions. A response surface model (RSM) is then fit to the DOE results to predict cycle-to-cycle combustion instability. Injection timing had significant tradeoffs between engine efficiency, emissions, and combustion instability. Near top dead center (TDC) injection timing can significantly reduce combustion instability, but the emissions and efficiency drop close to conventional diesel combustion levels. The fuel split between the two direct injection (Dl) injections has very little effect on combustion instability. Increasing exhaust gas recirculation (EGR) rate, while making adjustments to maintain combustion phasing, can significantly reduce peak pressure rise rate (PPRR) variation until the engine is on the verge of misfiring. Combustion phasing has a very large impact on combustion instability. More advanced phasing is much more stable, but produces high PPRRs, higher NO_x levels, and can be less efficient due to increased heat transfer losses. The results of this study identify operating parameters that can significantly improve the combustion stability of dual-fuel reactivity-controlled compression ignition (RCCI) engines.
机译:本文使用带有kiva-chemkin代码的详细计算流体动力学(CFD)建模来研究喷射正时,燃烧定相和运行条件对燃烧不稳定性的影响。使用详细的CFD模拟,可以在进气和加油条件下进行较小扰动的大型实验(DOE)设计。然后将响应面模型(RSM)拟合到DOE结果,以预测各个循环之间的燃烧不稳定性。喷射正时在发动机效率,排放和燃烧不稳定性之间进行了重大权衡。接近上止点(TDC)的喷射正时可以显着降低燃烧的不稳定性,但是排放和效率却下降到接近常规柴油燃烧水平。在两次直接喷射(D1)喷射之间分配的燃料对燃烧不稳定性影响很小。在进行调整以维持燃烧相位的同时,增加排气再循环(EGR)的速度可以显着降低峰值压力上升率(PPRR)的变化,直到发动机接近失火的边缘。燃烧定相对燃烧不稳定性有很大的影响。更高级的定相更加稳定,但是会产生较高的PPRR,较高的NO_x水平,并且由于传热损失增加而导致效率降低。这项研究的结果确定了可以显着提高双燃料反应性控制的压缩点火(RCCI)发动机的燃烧稳定性的运行参数。

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