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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part I: Journal of Systems and Control Engineering >High-degree-of-freedom engine modelling for control design using a crank-angle-resolved flame propagation simulation and artificial neural network surrogate models
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High-degree-of-freedom engine modelling for control design using a crank-angle-resolved flame propagation simulation and artificial neural network surrogate models

机译:使用曲柄分辨火焰传播模拟和人工神经网络替代模型进行控制设计的高自由度发动机建模

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摘要

Non-linearity of the engine system creates a challenge in building a reliable control-oriented model 愦灭;lpar;COM愦灭;rpar;. The main source of non-linearity is the complex nature of the combustion process. Modern engine system configurations are increasingly complex and predicting their transient response poses additional difficulty. In the present paper, a COM is developed to address the challenges and capture the behaviour of a high-degree-of-freedom engine system. Engine combustion models are created by utilizing the high-fidelity engine cycle simulation to characterize the effects of main parameters, such as turbulence, air愦灭;ndash;fuel ratio, and residual fraction, and subsequently capturing the interrelationships with artificial neural networks. Then, system dynamics are accounted for by adding manifold and actuator dynamics models. The capabilities of the proposed COM are demonstrated using a spark-ignition engine with a dual-independent cam phasing as a test case. The results indicate the model愦灭;apos;s ability to accurately predict engine responses to an arbitrary schedule of engine control inputs over the feasible operating range.
机译:发动机系统的非线性对建立可靠的面向控制的模型提出了挑战。非线性的主要来源是燃烧过程的复杂性。现代发动机系统配置越来越复杂,并且预测其瞬态响应会带来更多困难。在本文中,开发了COM来解决挑战并捕获高自由度引擎系统的行为。发动机燃烧模型是通过利用高保真发动机循环仿真来描述主要参数(例如湍流,空气灭活燃料比和残留分数)的影响,然后利用人工神经网络捕获相互关系而创建的。然后,通过添加歧管和执行器动力学模型来考虑系统动力学。建议的COM的功能通过使用具有双独立凸轮相位的火花点火发动机作为测试案例进行演示。结果表明模型的灭活能力,其准确地预测发动机对可行操作范围内的发动机控制输入的任意时间表的响应。

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