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Estimation of Intake Manifold Absolute Pressure Using Kalman Filter

机译:使用Kalman滤波器估计进气歧管绝对压力的估计

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For vehicles with intake manifold absolute pressure (MAP) sensor, the intake air mass is obtained using speed-density method. Since the analog MAP signal will contain high frequency noise with uncertain amplitude, the MAP value obtained in the engine management system using angle based sampling will result in MAP value variation even for engine steady-state operation. In order to properly obtain a MAP value under nonlinear time-varying characteristics, a MAP estimation method based on a closed-loop model is proposed. First, an adaptive two-input single-output intake manifold model is constructed. The Recursive Least Square technique is utilized to on-line identify the intake manifold model with throttle opening angle and engine speed as inputs. The identified intake manifold model is then employed to estimate the MAP using the Kalman Filter. Simulation results show that the proposed method can bring smaller standard deviation of air fuel ratio than that of using conventional methods for noise rejection under open-loop fuel control and system parameters drift. When a high frequency noise with higher amplitude is caught while sampling a MAP value, the proposed method can also reduce the noise effect and preserve the open-loop control performance on air fuel ratio. The proposed method is also investigated if the engine output torque is fluctuated.
机译:对于具有进气歧管绝对压力(MAP)传感器的车辆,使用速度密度法获得进气质量。由于模拟地图信号将包含具有不确定幅度的高频噪声,因此使用基于角度的采样在发动机管理系统中获得的地图值将导致Map值变化,即使对于发动机稳态操作也是如此。为了在非线性时变特性下正确获得地图值,提出了一种基于闭环模型的地图估计方法。首先,构造自适应两输入单输出进气歧管模型。递归最小二乘技术用于在线识别具有节气门开口角度和发动机速度作为输入的进气歧管模型。然后采用所识别的进气歧管模型来使用卡尔曼滤波器来估计地图。仿真结果表明,该方法可以在开环燃料控制和系统参数漂移下使用常规方法带来较小的空燃比标准偏差。当在采样地图值时捕获具有更高幅度的高频噪声时,所提出的方法还可以降低噪声效果并保持空燃比上的开环控制性能。如果发动机输出扭矩波动,还研究了所提出的方法。

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