This paper presents an adaptive gain,finite-and fixedtime convergence super-twisting-like algorithm based on a revised barrier function,which is robust to perturbations with unknown bounds.It is shown that this algori...This paper presents an adaptive gain,finite-and fixedtime convergence super-twisting-like algorithm based on a revised barrier function,which is robust to perturbations with unknown bounds.It is shown that this algorithm can ensure a finite-and fixed-time convergence of the sliding variable to the equilibrium,no matter what the initial conditions of the system states are,and maintain it there in a predefined vicinity of the origin without violation.Also,the proposed method avoids the problem of overestimation of the control gain that exists in the current fixed-time adaptive control.Moreover,it shows that the revised barrier function can effectively reduce the computation load by obviating the need of increasing the magnitude of sampling step compared with the conventional barrier function.This feature will be beneficial when the algorithm is implemented in practice.After that,the estimation of the fixed convergence time of the proposed method is derived and the impractical requirement of the preceding fixed-time adaptive control that the adaptive gains must be large enough to engender the sliding mode at time t=0 is discarded.Finally,the outperformance of the proposed method over the existing counterpart method is demonstrated with a numerical simulation.展开更多
针对分层式集成控制系统在不同路面工况下车辆纵向力的控制问题,提出了一种基于模型的实时估计方法.首先选取魔术公式作为参考轮胎模型,并采用有约束混合遗传算法对其关键参数进行实时优化辨识,从而可以计算得到不同路面工况下与目标控...针对分层式集成控制系统在不同路面工况下车辆纵向力的控制问题,提出了一种基于模型的实时估计方法.首先选取魔术公式作为参考轮胎模型,并采用有约束混合遗传算法对其关键参数进行实时优化辨识,从而可以计算得到不同路面工况下与目标控制力对应的目标控制滑移率.采用非奇异快速终端滑摸控制方法(Nonsing ular Fast Terminal Sliding Mode,NFTSM)设计纵向滑移率控制器(Longitudingl Slip ratio Control,LSC)对目标滑移率进行跟踪控制.仿真结果表明:所提出的轮胎-地面力控制策略可以很好地跟踪不同路面工况下的滑移率,满足上层控制所需的目标控制力,从而对车辆进行优化控制.展开更多
文摘This paper presents an adaptive gain,finite-and fixedtime convergence super-twisting-like algorithm based on a revised barrier function,which is robust to perturbations with unknown bounds.It is shown that this algorithm can ensure a finite-and fixed-time convergence of the sliding variable to the equilibrium,no matter what the initial conditions of the system states are,and maintain it there in a predefined vicinity of the origin without violation.Also,the proposed method avoids the problem of overestimation of the control gain that exists in the current fixed-time adaptive control.Moreover,it shows that the revised barrier function can effectively reduce the computation load by obviating the need of increasing the magnitude of sampling step compared with the conventional barrier function.This feature will be beneficial when the algorithm is implemented in practice.After that,the estimation of the fixed convergence time of the proposed method is derived and the impractical requirement of the preceding fixed-time adaptive control that the adaptive gains must be large enough to engender the sliding mode at time t=0 is discarded.Finally,the outperformance of the proposed method over the existing counterpart method is demonstrated with a numerical simulation.
文摘针对分层式集成控制系统在不同路面工况下车辆纵向力的控制问题,提出了一种基于模型的实时估计方法.首先选取魔术公式作为参考轮胎模型,并采用有约束混合遗传算法对其关键参数进行实时优化辨识,从而可以计算得到不同路面工况下与目标控制力对应的目标控制滑移率.采用非奇异快速终端滑摸控制方法(Nonsing ular Fast Terminal Sliding Mode,NFTSM)设计纵向滑移率控制器(Longitudingl Slip ratio Control,LSC)对目标滑移率进行跟踪控制.仿真结果表明:所提出的轮胎-地面力控制策略可以很好地跟踪不同路面工况下的滑移率,满足上层控制所需的目标控制力,从而对车辆进行优化控制.