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Cycle-by-cycle estimation of cylinder pressure and indicated torque waveform using crankshaft speed fluctuations

机译:利用曲轴速度波动逐周期估算气缸压力和显示的扭矩波形

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In this work, frequency response functions (FRFs) are used for estimation of cycle-by-cycle cylinder pressure and indicated torque waveform, using crankshaft speed fluctuations. The FRFs are mapped as a function of the discrete Fourier transform of engine speed, mean speed and manifold pressure using a multilayer neural network. The accuracy of the model is analysed using some of the parameters derived from the cylinder pressure. These include the indicated mean effective pressure and peak pressure. The load torque on the engine is also estimated using a closed-loop observer. The model is tested on a test rig consisting of single-cylinder engine coupled with an eddy current dynamometer. The results show that the model is suitable for the estimation of cylinder pressure and other variables related to it at the operating points where the cyclic variations are within a driveability limit.
机译:在这项工作中,频率响应函数(FRF)用于使用曲轴速度波动来估算每个周期的气缸压力和指示的转矩波形。使用多层神经网络将FRF映射为发动机速度,平均速度和歧管压力的离散傅立叶变换的函数。使用从气缸压力得出的一些参数来分析模型的准确性。这些包括指示的平均有效压力和峰值压力。还使用闭环观测器估算发动机上的负载扭矩。该模型在由单缸发动机和涡流测功机组成的试验台上进行了测试。结果表明,该模型适用于在周期性变化在可驾驶性极限以内的工作点处估计气缸压力和其他与它有关的变量。

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