RCCI燃烧优化的放热实验分析

V. Ravaglioli, F. Ponti, Filippo Carra, M. D. Cesare
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引用次数: 3

摘要

近年来,日益严格的内燃机排放法规催生了大量燃烧控制优化领域的研究。如今,最优燃烧控制变得至关重要,尤其是对创新的低温燃烧(LTC)策略的正确管理。低温燃烧通常具有高度不稳定性、循环间可变性以及对喷射参数和热条件的微小变化的敏感性。许多研究表明,通过改变标准喷射参数(在基础校准活动期间映射)的闭环控制策略,可以保证LTC策略的稳定性和最高效率,以保持发动机扭矩和燃烧中心(CA50)大致等于其目标值。然而,标准基准校准与闭环控制相结合通常不足以精确控制瞬态低温燃烧。事实上,为了在瞬态条件下正确管理LTC策略,通常需要研究感兴趣的燃烧方法并实现为闭环控制器提供准确前馈贡献的特定函数。本文介绍了在双燃料RCCI模式下运行轻型压缩点燃发动机的实验分析,目的是突出喷射参数和装药温度对燃烧稳定性和点火延迟的影响。最后,本文描述了如何利用获得的结果来定义在分析的工作点上的最优喷射策略,即将喷射参数组合用作闭环燃烧控制策略的前馈。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heat Release Experimental Analysis for RCCI Combustion Optimization
Over the past years, the increasingly stringent emission regulations for Internal Combustion Engines (ICE) spawned a great amount of research in the field of combustion control optimization. Nowadays, optimal combustion control has become crucial, especially to properly manage innovative Low Temperature Combustion (LTC) strategies, usually characterized by high instability, cycle-to-cycle variability and sensitivity to slight variations of injection parameters and thermal conditions. Many works demonstrate that stability and maximum efficiency of LTC strategies can be guaranteed using closed-loop control strategies that vary the standard injection parameters (mapped during the base calibration activity) to keep engine torque and center of combustion (CA50) approximately equal to their target values. However, the combination of standard base calibration and closed-loop control is usually not sufficient to accurately control Low Temperature Combustions in transient conditions. As a matter of fact, to properly manage LTC strategies in transient conditions it is usually necessary to investigate the combustion methodology of interest and implement specific functions that provide an accurate feed-forward contribution to the closed-loop controller. This work presents the experimental analysis performed running a light-duty compression ignited engine in dual-fuel RCCI mode, the goal being to highlight the way injection parameters and charge temperature affect combustion stability and ignition delay. Finally, the paper describes how the obtained results can be used to define the optimal injections strategy in the analyzed operating points, i.e. the combination of injection parameters to be used as a feed-forward for a closed-loop combustion control strategy.
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