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Integrated Simulation of Engine Performance and AFR Control of a Stoichiometric Compression Ignition (SCI) Engine

机译:化学计量压缩点火(SCI)发动机的发动机性能和AFR控制的集成仿真

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This paper describes the advantage of the integrated simulation platform and presents the results of performance simulations and the feed-forward air-fuel ratio (AFR) controller design of a new concept stoichiometric compression ignition (SCI) engine based on this platform. In this integrated simulation environment, the SCI engine was modeled in GT-Power and a simplified production engine control module (ECM) is implemented in Simulink/Matlab for the performance simulation and AFR control. The integrated engine and controller model was used to investigate constant-speed load-acceptance (CSLA) performance. During performance simulation, searching for operating conditions is difficult but critical for performance analysis. Trial and error method would require a long time to do. Based on the integrated simulation, a proportional-integral (PI) controller was designed to find the accurate operating conditions. At the same time, this method makes it easy to conduct batch simulation under various conditions. Several simulation cases will be discussed in this paper to show the improvements in efficiency and accuracy of the simulations. The results show that performance simulation and control design will benefit each other. Feedback control design can help in finding operating conditions quickly and control the engine to perform at required steady state and transient conditions. Furthermore, engine performance simulation results can be utilized in control design and the control performance can be tested by the detail engine model. More benefits could be found in engine onboard diagnostics (OBD) design and verification because no simplified engine model could be comparable to the detailed engine model in GT-Power.
机译:本文介绍了集成仿真平台的优势,并提供了基于该平台的新型概念化学计量压缩点火(SCI)发动机的性能仿真结果和前馈空燃比(AFR)控制器设计。在这个集成的仿真环境中,SCI引擎在GT-Power中建模,而Simulink / Matlab中实现了简化的生产引擎控制模块(ECM),用于性能仿真和AFR控制。集成的引擎和控制器模型用于研究恒速负载接受(CSLA)性能。在性能仿真期间,搜索操作条件很困难,但对于性能分析至关重要。反复试验的方法需要很长时间才能完成。基于集成仿真,设计了比例积分(PI)控制器以找到准确的工作条件。同时,这种方法使在各种条件下进行批量仿真变得容易。本文将讨论几种仿真案例,以显示仿真效率和准确性的提高。结果表明,性能仿真和控制设计将彼此受益。反馈控制设计可以帮助快速找到工况,并控制发动机在所需的稳态和瞬态条件下运行。此外,发动机性能仿真结果可以用于控制设计中,并且可以通过详细的发动机模型来测试控制性能。由于没有简化的发动机模型可以与GT-Power中的详细发动机模型相提并论,因此在发动机车载诊断(OBD)设计和验证中可以发现更多的好处。

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