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Optimizing Linearity of the Throttle Position Sensor Based on RBF-CMGA

机译:基于RBF-CMGA的节气门位置传感器的线性优化

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In order to discuss linearity of throttle position sensor. Based on the synergetic theory of the radial basal function neural network (RBFNN) and the contractive mapping genetic arithmetic (CMGA), the throttle position sensor structural parameters, such as, the length and radius of the primary coil, prejudicial distance and radius of prejudicial disc, primary exciting current were optimally forecasted by RBF-CMGA. Several analogue test of diesel engine are made on the basis of throttle position sensor control system of adding loads and decreasing loads. The optimal parameter has been calculated on the well-balanced state of throttle position sensor, and it was very good in the aspect of both dynamic state that is 0.25×10-3 sounds and linearity is 0.4% in the throttle position sensor control system of diesel engine, which can meet the needs of well-balanced state of diesel engine, It is feasible that the throttle position sensor linearity and structural parameters are optimized by RBF-CMGA.
机译:为了讨论节气门位置传感器的线性。基于径向基函数神经网络(RBFNN)和压缩映射遗传算法(CMGA)的协同理论,节气门位置传感器的结构参数,如初级线圈的长度和半径,偏见距离和偏见半径通过RBF-CMGA可以对圆盘,一次励磁电流进行最佳预测。在节气门位置传感器控制系统增加负荷和减少负荷的基础上,进行了几种柴油机的模拟试验。在节气门位置传感器的平衡状态下计算出了最佳参数,在汽油机的节气门位置传感器控制系统的动态状态为0.25×10-3声音和线性度为0.4%方面都很好。能够满足柴油机平衡状态的需求的柴油机,通过RBF-CMGA对节气门位置传感器的线性度和结构参数进行优化是可行的。

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