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Modeling of combustion phasing of a reactivity-controlled compression ignition engine for control applications

机译:用于控制应用的反应性受控的压燃式发动机的燃烧阶段建模

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Reactivity-controlled compression ignition (RCCI) is a promising combustion strategy to achieve near-zero NOx and soot emissions and diesel-like efficiencies. Model-based control of RCCI combustion phasing requires a computationally efficient combustion model that encompasses factors such as injection timings, fuel blend composition, and reactivity. In this work, physics-based models are developed to predict the onset of auto-ignition in RCCI and to estimate the burn duration based on an approximation of the spontaneous ignition front speed. A mean value control-oriented model of RCCI is then developed by combining the auto-ignition model, the burn duration model, and a Wiebe function to predict combustion phasing. The control-oriented model is parameterized and validated using simulation data from an experimentally validated, detailed computational fluid dynamics combustion model developed using the KIVA-3V code. The validation results show that the control-oriented model can predict the start of combustion, burn duration, and crank angle of 50% burnt fuel with an average error of less than 2 crank angle degrees. Thus, the control-oriented model demonstrates sufficient accuracy in predicting RCCI combustion phasing for control applications. The control-oriented model is an integral part of designing a model-based controller, which in the case of RCCI is of paramount importance due to various attributes concerning combustion, particularly for transient engine operation.
机译:反应性控制的压缩点火(RCCI)是一种有前途的燃烧策略,可实现接近零的NOx和烟灰排放以及类似柴油的效率。基于模型的RCCI燃烧定相控制需要一个计算有效的燃烧模型,该模型应包含喷射正时,燃料混合物组成和反应性等因素。在这项工作中,开发了基于物理学的模型来预测RCCI中自动点火的发生,并基于自发点火前沿速度的近似值估计燃烧持续时间。然后,通过组合自动点火模型,燃烧持续时间模型和Wiebe函数来预测燃烧定相,从而开发出以RCCI为平均值控制的模型。使用来自KIVA-3V代码开发的经过实验验证的详细计算流体动力学燃烧模型的仿真数据,对面向控制的模型进行参数化和验证。验证结果表明,面向控制的模型可以预测燃烧开始,燃烧持续时间和50%燃烧燃料的曲柄角,平均误差小于2个曲柄角度。因此,面向控制的模型在预测用于控制应用的RCCI燃烧定相方面显示出足够的准确性。面向控制的模型是设计基于模型的控制器的组成部分,在RCCI的情况下,由于涉及燃烧的各种属性(特别是对于瞬态发动机运行),该模型至关重要。

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