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Effects of Control Parameters on Performance and Emissions of HSDI Diesel Engines: Investigation Via Two Zone Modelling

机译:控制参数对HsDI柴油机性能和排放的影响:两区建模研究

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摘要

The paper deals with the development and experimentalvalidation of a two zones combustion model of High Speed Direct Injection (HSDI) Diesel engines. The model is aimed to support the engine control design for common-rail Diesel engines with multiple injections, where the large number of control parameters (i.e. injection timing, injection dwell, railpressure, etc.) makes the recourse to experiments extremely expensive, in terms of time and money. The modelling approach is based on a semi-empirical two-zone combustion model coupled with an intensive identification analysis, in order to implement a predictive tool for simulating the effects of control strategies on combustion and exhaust emissions. Fuel spray and combustion are simulated by dividingthe combustion chamber into two control volumes, accounting for fuel jet and surrounding air. The fuel jet is further divided in two zones to separate liquid and vapour phases, while the surrounding air zone is composed of fresh air and residual gases. Fuel evaporation and combustion models are based on the semi-empirical formulation proposed by Whitehouse and Way, which accounts for the occurrence of premixed and diffusive regimes. The fuel spray model evaluates the spray motion into the cylinder, assuming an empirical formulation for the break time, and predicts the air entrainment by means of the conservation of momentum. NOx and soot exhaust emissions are predicted according to the well knownmechanisms proposed by Zeldovich and Hiroyasu, respectively. Model accuracy has been successfullytested over a wide set of experimental data, composed of nearly 100 engine cycles measured on a commercial common rail multi-injection Diesel engine. Moreover, only 9 measured operating conditions were needed for model identification, thus confirming the limited recourse to experiments. Simulationresults also evidenced that the model can predict the effects of different injection parameters, in case of single and multiple injection, in a short computational time. Therefore its implementation is suitable for the accomplishment of intensive simulations or optimization analyses, aimed to minimize consumption and/or emissions vs. injection strategy (number of injections, injection timing, rail pressure, etc.).
机译:本文研究了高速直喷(HSDI)柴油机两区燃烧模型的开发和实验验证。该模型旨在支持具有多次喷射的共轨柴油发动机的发动机控制设计,因为大量的控制参数(例如喷射正时,喷射停留时间,轨压等)使实验费用极其昂贵。时间和金钱。该建模方法基于半经验的两区燃烧模型并结合了深入的识别分析,以实现一种预测工具,用于模拟控制策略对燃烧和废气排放的影响。通过将燃烧室划分为两个控制体积来模拟燃料喷雾和燃烧,这考虑了燃料喷射和周围空气。燃料喷嘴进一步分为两个区域,以分离液相和气相,而周围的空气区域则由新鲜空气和残留气体组成。燃料蒸发和燃烧模型基于Whitehouse and Way提出的半经验公式,该公式说明了预混合和扩散状态的发生。燃油喷雾模型评估了进入气缸的喷雾运动,并假设了中断时间的经验公式,并通过动量守恒来预测空气夹带。分别根据Zeldovich和Hiroyasu提出的众所周知的机制预测NOx和烟尘排放。模型精度已通过一系列实验数据成功进行了测试,其中包括在商用共轨多喷柴油发动机上测得的近100个发动机循环。此外,仅需9个测量的操作条件即可进行模型识别,从而证实了有限的实验资源。仿真结果还证明,在单次和多次进样的情况下,该模型可以在较短的计算时间内预测不同进样参数的影响。因此,其实施方式适合于完成密集的模拟或优化分析,目的是使消耗和/或排放量相对于喷射策略(喷射次数,喷射时间,轨道压力等)最小化。

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