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Simple combustion model for a diesel engine with multiple fuel injections

机译:具有多种燃料喷射的柴油发动机的简单燃烧模型

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Engine systems must continuously increase their thermal efficiencies and lower their emissions in real operation. To meet these demands, engine systems are increasingly improving their transient performance through control technology. Conventional engine control systems depend on control maps obtained from huge numbers of experiments, which is necessarily limited by the available number of man-hours. These time-consuming control maps are now being replaced by control inputs derived from on-board models. By calculating optimized control inputs in real time using various information, model-based control increases the robustness of advanced combustion technologies such as premixed charge compression ignition and homogeneous charge compression ignition, which use auto-ignition and combustion of air-fuel mixtures. Models also incur relatively low computational loads because the specifications of the engine control unit are lower than those of current smartphones. This article develops a simple diesel combustion model with model-based control of the multiple fuel injections. The model employs the discretized cycle concept based on fundamental thermodynamic equations and comprises simple fuel injection and chemical reaction models. Our control concept aims mainly to decrease the fuel consumption by increasing the thermal efficiency and reduce the combustion noise in real-world operation. The model predicts the peak in-cylinder gas pressure and its timing that minimize the combustion noise and maximize the thermal efficiency, respectively. In an experimental validation of the model, the computed and measured in-cylinder pressures were well matched at each phase under various parameter settings. In addition, the calculation time of the model is sufficiently short for on-board applications. In future, the proposed model will be extended to the design and installation of controllers for engine systems. The control concept and associated problems of this task are also described in this article.
机译:发动机系统必须不断增加其热效,并降低实际操作中的排放。为了满足这些要求,发动机系统越来越多地通过控制技术提高其瞬态性能。传统的发动机控制系统依赖于从大量实验中获得的控制图,这必然受到可用数量的人间。现在,这些耗时的控制映射现在被从车载模型衍生的控制输入替换。通过使用各种信息实时计算优化的控制输入,基于模型的控制增加了先进的电荷压缩点火和均匀电荷压缩点火等先进燃烧技术的鲁棒性,其使用自动点火和空气燃料混合物的燃烧。模型也会产生相对较低的计算负载,因为发动机控制单元的规格低于当前智能手​​机的规格。本文开发了一种简单的柴油燃烧模型,具有基于模型的多燃料喷射的控制。该模型采用基于基础热力学方程的离散循环概念,包括简单的燃料喷射和化学反应模型。我们的控制概念主要旨在通过提高热效率降低燃料消耗,并降低真实运行中的燃烧噪声。该模型预测峰值气体压力及其定时,可分别最大限度地减少燃烧噪声并最大化热效率。在模型的实验验证中,在各种参数设置下,计算和测量的缸内压力在每个阶段匹配。此外,模型的计算时间对于车载应用程序足够短。将来,拟议的模型将扩展到发动机系统控制器的设计和安装。本文还描述了该任务的控制概念和相关问题。

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