Study on Sliding Mode Variable Structure Control in Nonlinear Coupled Systems of Diesel Engines

Le Cai, Xiaobing Mao, Zhexuan Ma
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引用次数: 2

Abstract

In order to improve the injection quality and the performance of engine common rail system, on the basis of the measured data in bench tests, quadratic polynomial fitting method is adopted to obtain the differential equations of pressure and speed system for high pressure common rail of diesel engine. This mathematical model belongs to multi-input nonlinear systems of mutually coupled pressure and speed of common rail diesel engine. First, the nonlinear state transformation is performed using flow computation, obtaining the standard state space equations of two decoupled single input. Then, sliding mode variable structure (SMVS) control theory is used to design two sliding mode controllers for single input nonlinear systems, in order to realize the control over the common rail pressure and diesel engine speed. MATLAB/Simulink software simulation platform is then utilized to simulate the designed nonlinear high pressure common rail control system. Finally, the real time simulation of common rail pressure is conducted on a computer through prototype code conversion and Digital Signal Processor (DSP) embedding technology. Results show that the sliding mode variable structure control algorithm has satisfactory control performance over nonlinear systems, solving the problems of traditional Proportional Integral Differential (PID) control that the response is slow, the overshoot is large, and the robustness is weak.
柴油机非线性耦合系统滑模变结构控制研究
为了提高柴油机共轨系统的喷油质量和性能,在台架试验实测数据的基础上,采用二次多项式拟合的方法,得到了柴油机高压共轨压力和转速系统的微分方程。该数学模型属于共轨柴油机压力和转速相互耦合的多输入非线性系统。首先,利用流动计算进行非线性状态变换,得到两个解耦单输入的标准状态空间方程;然后,利用滑模变结构控制理论对单输入非线性系统设计了两个滑模控制器,实现了对共轨压力和柴油机转速的控制。然后利用MATLAB/Simulink软件仿真平台对所设计的非线性高压共轨控制系统进行仿真。最后,通过原型代码转换和数字信号处理器(DSP)嵌入技术,在计算机上对共轨压力进行了实时仿真。结果表明,滑模变结构控制算法对非线性系统具有满意的控制性能,解决了传统比例积分微分(PID)控制响应慢、超调量大、鲁棒性弱的问题。
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