Delta-Sigma调制在无级可变气门升程发动机中的应用

Y. Yasui, Kanako Shimojo, K. Higashitani
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引用次数: 0

摘要

连续可变气门正时和升程系统(CVTL)可以通过减少泵送损失来提高汽油发动机的燃油消耗,并根据发动机负载和速度条件优化进气气门升程、气门开启和关闭,从而提供高扭矩和动力。在一般的汽油发动机中,发动机负荷是通过节流来控制的。另一方面,在所有发动机负载和转速条件下,CVTL可以通过改变进气门升程和气门开度来控制发动机负载。因此,CVTL需要高精度控制进气门升程,以实现发动机怠速等低转速工况下的小负荷变化。然而,由于CVTL通常由一些齿轮和多连杆机构组成,因此CVTL的动力学表现出非线性特征,例如机械摩擦、间隙和滞后。因此,很难实现气门升程的平稳小微步。这一困难加剧了怠速控制的稳定性和驾驶的平稳性。因此,开发了一种采用δ - σ调制的滑模控制器,取代了以前的非线性开关输入,并将其引入到CVTL的阀升程控制中。滑模控制器能显著提高气门升程控制的精度和平稳性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Application of Delta-Sigma Modulation to A Continuously Variable Valve Lift Engine
A continuously variable valve timing and lift system (CVTL) can improve the fuel consumption of gasoline engines by reducing of pumping losses, and provide high torque and power by optimizing intake valve lift, valve opening and valve closing according to engine load and speed conditions. In general gasoline engines, engine load is controlled by throttling. On the other hand, CVTL can control engine load by altering intake valve lift and valve opening period under all engine load and speed conditions. Hence, CVTL requires high-precision control of intake valve lift in order to realize small engine load change at low engine speed condition such as idle condition. However, the dynamics of CVTL indicates non-linear characteristics, for example mechanical friction, backlash and hysteresis, because CVTL is generally composed of some gears and multi-link mechanisms. Therefore, it is difficult to realize smooth and small micro step of valve lift. This difficulty worsens the stability of idle speed control and smoothness of drivability. Consequently, a sliding-mode controller using delta-sigma modulation instead of previous non-linear switching input was developed and introduced to the valve lift control of CVTL. The sliding-mode controller could significantly improve the precision and smoothness of valve lift control.
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