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Stand-alone single- and multi-zone modeling of direct injection homogeneous charge compression ignition (DI-HCCI) combustion engines

机译:直喷均匀电荷压缩点火(Di-HCCI)燃烧发动机的独立单型和多区造型

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摘要

Applying the homogeneous charge compression ignition (HCCI) combustion concept leads to advantages regarding fuel economy and particular emissions. One strategy to prepare an in-cylinder homogeneous charge is the very early direct fuel injection referred to as direct-injection (DI) HCCI combustion. In this study, single- and multi-zone models for DI-HCCI engines are developed; a single-zone approach and a novel hybrid approach sequentially applying single- and multi-zone models. Experimental results are compared with model predictions to validate the main assumption of the modeling approach which considers charge homogeneity after fuel entrainment. Results indicate that for DI-HCCI cases, the assumption of neglecting injection-induced stratification is valid. Both approaches show acceptable results which reveals their capability to adequately well capture DI-HCCI combustion engine performance. However, the single-zone approach, as expected, leads to over-prediction of maximum pressure and delivered power. Furthermore, maximum pressure rise rate as an indicator of smooth engine operation is highly over-estimated and combustion phasing is predicted earlier than the experimental measure. Combustion phasing is estimated by single- and multi-zone approaches with average errors of 0.4 and 0.1 crank angle degrees, respectively. Whereas, the power is estimated with average errors of 10 and 1% for single- and multi-zone approaches, respectively. (C) 2017 Elsevier Ltd. All rights reserved.
机译:应用均匀电荷压缩点火(HCCI)燃烧概念导致燃料经济性和特定排放的优点。一种制备缸内均匀电荷的一种策略是非常早期的直接燃料喷射作为直喷(DI)HCCI燃烧。在本研究中,开发了用于Di-HCCI发动机的单个和多区域模型;单区域方法和新型混合方法顺序应用单区域和多区域模型。将实验结果与模型预测进行了比较,以验证在燃料夹带后考虑充电均匀​​性的建模方法的主要假设。结果表明,对于脱离疏忽的注射诱导的分层的假设是有效的。两种方法都显示出可接受的结果,该结果揭示了它们的能力,以充分捕获Di-HCCI燃烧发动机性能。然而,如预期的那样,单区域方法导致过度预测最大压力和输送功率。此外,作为光滑发动机操作指示器的最大压力上升速率高度估计,并且比实验措施更早预测燃烧相位。通过单个和多区域接近估计燃烧相位,分别具有0.4和0.1曲柄角度的平均误差。鉴于单个和多区方法的平均误差分别估计电力10%和1%。 (c)2017 Elsevier Ltd.保留所有权利。

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