Control-Oriented Model of Molar Scavenge Oxygen Fraction for Exhaust Recirculation in Large Diesel Engines

Author:

Nielsen Kræn Vodder12,Blanke Mogens34,Eriksson Lars5,Vejlgaard-Laursen Morten6

Affiliation:

1. MAN Diesel & Turbo, Copenhagen 2450, Denmark;

2. Automation and Control Group, Department of Electrical Engineering, Technical University of Denmark, Kongens Lyngby 2800, Denmark e-mail:

3. Automation and Control Group, Department of Electrical Engineering, Technical University of Denmark, Kongens Lyngby 2800, Denmark;

4. AMOS CoE, Institute of Technical Cybernetics, Norwegian University of Science and Technology, Trondheim 7491, Norway e-mail:

5. Vehicular Systems, Department of Electrical Engineering, Linköping University, Linköping 58183, Sweden e-mail:

6. MAN Diesel & Turbo, Copenhagen 2450, Denmark

Abstract

Exhaust gas recirculation (EGR) systems have been introduced to large marine engines in order to reduce NOx formation. Adequate modeling for control design is one of the bottlenecks to design EGR control that also meets emission requirements during transient loading conditions. This paper therefore focuses on deriving and validating a mean-value model of a large two-stroke crosshead diesel engine with EGR. The model introduces a number of amendments and extensions to previous, complex models and shows in theory and practice that a simplified nonlinear model captures all essential dynamics that is needed for EGR control. Our approach is to isolate and reduce the gas composition part of the more complex models using nonlinear model reduction techniques. The result is a control-oriented model (COM) of the oxygen fraction in the scavenge manifold with three molar flows being inputs to the COM, and it is shown how these flows are estimated from signals that are commonly available. The COM is validated by first comparing the output to a simulation of the full model, then by comparing with measurement series from two engines. The control-oriented nonlinear model is shown to be able to replicate the behavior of the scavenge oxygen fraction well over the entire envelope of load and blower speed range that are relevant for EGR. The simplicity of the new model makes it suitable for observer and control design, which are essential steps to meet the emission requirements for marine diesel engines that take effect from 2016.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference34 articles.

1. Marpol ANNEX VI and NTC 2008, 2013: With Guidelines for Implementation;International Maritime Organization,2013

2. Workshop in Russia Advances NECA for Ships in Baltic and North Seas;HELCOM,2016

3. Exhaust Gas Recirculation Control for Large Diesel Engines—Achievable Performance With SISO Design;IFAC-PapersOnLine,2013

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