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Automatic Combustion Phase Calibration With Extremum Seeking Approach

机译:采用极值搜索方法的自动燃烧阶段校准

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摘要

One of the most effective factors influencing performance, efficiency, and pollutant emissions of internal combustion engines is the combustion phasing: in gasoline engines electronic control units (ECUs) manage the spark advance (SA) in order to set the optimal combustion phase. Combustion control is assuming a crucial role in reducing engine tailpipe emissions and maximizing performance. The number of actuations influencing the combustion is increasing, and as a consequence, the calibration of control parameters is becoming challenging. One of the most effective factors influencing performance and efficiency is the combustion phasing: for gasoline engines, control variables such as SA, air-to-fuel ratio (AFR), variable valve timing (VVT), and exhaust gas recirculation (EGR) are mostly used to set the combustion phasing. The optimal control setting can be chosen according to a target function (cost or merit function), taking into account performance indicators, such as indicated mean effective pressure (IMEP), brake-specific fuel consumption (BSFC), pollutant emissions, or other indexes inherent to reliability issues, such as exhaust gas temperature or knock intensity. Many different approaches can be used to reach the best calibration settings: design of experiment (DOE) is a common option when many parameters influence the results, but other methodologies are in use: some of them are based on the knowledge of the controlled system behavior by means of models that are identified during the calibration process. The paper proposes the use of a different concept, based on the extremum seeking approach. The main idea consists in changing the values of each control parameter at the same time, identifying its effect on the monitored target function, and allowing to shift automatically the control setting towards the optimum solution throughout the calibration procedure. An original technique for the recognition of control parameters variations effect on the target function is introduced, based on spectral analysis. The methodology has been applied to data referring to different engines and operating conditions, using IMEP, exhaust temperature, and knock intensity for the definition of the target function and using SA and AFR as control variables. The approach proved to be efficient in reaching the optimum control setting, showing that the optimal setting can be achieved rapidly and consistently.
机译:燃烧阶段是影响内燃机性能,效率和污染物排放的最有效因素之一:在汽油发动机中,电子控制单元(ECU)管理火花提前(SA)以设置最佳燃烧阶段。燃烧控制在减少发动机尾气排放和最大化性能方面起着至关重要的作用。影响燃烧的促动次数正在增加,结果,控制参数的校准变得越来越具有挑战性。影响性能和效率的最有效因素之一是燃烧阶段:对于汽油发动机,控制变量(例如SA,空燃比(AFR),可变气门正时(VVT)和排气再循环(EGR))是主要用于设置燃烧定相。可以根据目标函数(成本或绩效函数)选择最佳控制设置,同时考虑性能指标,例如指示的平均有效压力(IMEP),特定制动器的燃油消耗(BSFC),污染物排放或其他指标可靠性问题所固有的,例如废气温度或爆震强度。可以使用许多不同的方法来达到最佳的校准设置:当许多参数影响结果时,通常会选择实验设计(DOE),但是使用了其他方法:其中一些是基于受控系统行为的知识通过在校准过程中确定的模型。本文提出了基于极值搜索方法的不同概念的使用。主要思想在于,同时更改每个控制参数的值,确定其对受监视目标功能的影响,并允许在整个校准过程中将控制设置自动移向最佳解决方案。基于频谱分析,介绍了一种识别控制参数变化对目标函数影响的原始技术。该方法已应用IMEP,排气温度和爆震强度定义了目标功能,并使用SA和AFR作为控制变量,从而引用了不同发动机和工况的数据。实践证明,该方法可以有效地达到最佳控制设置,表明可以快速,一致地实现最佳设置。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2014年第9期|091402.1-091402.8|共8页
  • 作者单位

    Department of Industrial Engineering (DIN), University of Bologna, Viale Risorgimento, 2, Bologna 40136, Italy;

    Department of Industrial Engineering (DIN), University of Bologna, Viale Risorgimento, 2, Bologna 40136, Italy;

    Department of Industrial Engineering (DIN), University of Bologna, Viale Risorgimento, 2, Bologna 40136, Italy;

    Department of Industrial Engineering (DIN), University of Bologna, Viale Risorgimento, 2, Bologna 40136, Italy;

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  • 入库时间 2022-08-18 00:21:04

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