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Electronic Control Unit (ECU) developmentof a fuel injection system

机译:电子控制单元(ECU)开发燃油喷射系统

摘要

In order to meet the limits imposed on automotive emissions, engine control systems are required to constrain air/fuel ratio (AFR) in a narrow band around the stoichiometric value, due to the strong decay of catalyst efficiency in case of rich or lean mixture. This project focuses on the design and development of a control system to reduce the waste of automotive exhaust emission. A model of a sample sparks ignition engine and Simulink’s capabilities to model an internal combustion engine from the throttle to the crankshaft output are demonstrated based on analytical engine models that clearly describe engine’s air and fuel dynamic with no loss of engine system performance. Various mathematical models for the air to fuel ratio and control for spark ignition (SI) engines have been proposed to satisfy technical specifications. On this paper the mean value model and a simple effective linear engine model is used to get the value of air to fuel ratio. The controller is designed by using PID tuning method and FLC to develop for the engine dynamics model in order to target the desired output response. Simulation results demonstrate that better performance can be achieved with PID controller than FLC. The actual response specification with PID controller and FLC matched the desired response specifications.
机译:为了满足对汽车排放物施加的限制,由于在浓混合气或稀混合气的情况下催化剂效率的强烈衰减,因此要求发动机控制系统将空燃比(AFR)限制在化学计量值附近的窄带内。该项目专注于控制系统的设计和开发,以减少汽车尾气排放的浪费。基于分析型发动机模型,证明了示例火花点火发动机模型和Simulink建模从节气门到曲轴输出的内燃机的能力,该模型清楚地描述了发动机的空气和燃料动态特性,而不会损失发动机系统性能。为了满足技术规范,已经提出了各种空燃比的数学模型和火花点火(SI)发动机的控制。本文采用均值模型和简单有效的线性发动机模型来获得空燃比值。通过使用PID整定方法和FLC设计控制器,以针对发动机动力学模型进行开发,以便以所需的输出响应为目标。仿真结果表明,与FLC相比,使用PID控制器可以实现更好的性能。 PID控制器和FLC的实际响应规格符合所需的响应规格。

著录项

  • 作者

    Aziz Azeera;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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