Model-based Control Development of a Tier 4 Locomotive Engine with Exhaust Gas Re-circulation

Sanketh Bhat, Manthram Sivasubramaniam, R. Mischler, Manish Gupta, Satadru Dey
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Abstract

The Tier 4 emission standards for heavy duty diesel engines have a reduction of $> 70\%$ in nitrous oxide (NOx) & particulate matter (PM) as compared to the Tier 3. Technology changes need to be introduced to meet these stringent norms. The paper discusses the model-based control development for a Tier 4 locomotive engine using Exhaust gas recirculation (EGR) wherein part of the exhaust gas is re-circulated into the cylinder to reduce NOx formation. Since emissions are predominantly functions of how good combustion takes place inside the cylinder and how the engine breathes i.e. the conditions of the air and fuel entering and exiting the cylinder, control of oxygen-based indicators like the oxygen fraction in the intake manifold will be critical to identify the emission. The oxygen-based metrics can in turn be mapped to the flows & pressures in the air handling path. To accurately control these parameters advanced control techniques, need to be developed. The aforementioned controls problem is a complex and intellectually challenging one for the following reasons: (i) multi-input multi-output system dynamics with coupled control loops, (ii) non-minimum phase behavior, and (iii) limited sensor measurements etc. This paper describes the details of the controls development process. Specifically, we discuss (i) single input single output control scheme keeping in mind simplicity for real-time implementation, (ii) decoupling technique to minimize the coupling between the interacting loops, (iii) virtual actuator coupling to aid in control design, and (iv) scheduling the control gains for optimal performance throughout the operating range.
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带废气再循环的四级机车发动机模型控制研究
重型柴油发动机的Tier 4排放标准与Tier 3相比,一氧化二氮(NOx)和颗粒物(PM)的排放减少了70 %。需要引入技术变革来满足这些严格的规范。本文讨论了采用废气再循环(EGR)的Tier 4机车发动机的基于模型的控制开发,其中部分废气被再循环到气缸中以减少NOx的形成。由于排放主要取决于气缸内燃烧的好坏以及发动机的呼吸情况,即空气和燃料进出气缸的状况,因此控制进气歧管中的氧含量等基于氧的指标对于识别排放至关重要。基于氧的指标可以反过来映射到空气处理路径中的流量和压力。为了精确控制这些参数,需要开发先进的控制技术。上述控制问题是一个复杂且具有智力挑战性的问题,原因如下:(i)具有耦合控制回路的多输入多输出系统动力学,(ii)非最小相位行为,以及(iii)有限的传感器测量等。本文详细介绍了控件的开发过程。具体来说,我们讨论(i)单输入单输出控制方案,牢记实时实现的简单性,(ii)解耦技术,以最大限度地减少相互作用回路之间的耦合,(iii)虚拟执行器耦合,以帮助控制设计,以及(iv)调度控制增益,以在整个操作范围内获得最佳性能。
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