将模块化多电平变流器(modular multilevel converter,MMC)投入到固态变压器(solid state transformer,SST)系统中时通常采用比例积分微分(proportional integral derivative,PID)控制方法,但这种策略存在参数选取繁杂、动态性能较差的...将模块化多电平变流器(modular multilevel converter,MMC)投入到固态变压器(solid state transformer,SST)系统中时通常采用比例积分微分(proportional integral derivative,PID)控制方法,但这种策略存在参数选取繁杂、动态性能较差的缺点。为了提高系统的动态性能并简化参数选取,提出了MMC-SST反馈线性化滑模控制策略。首先建立了MMC-SST整体仿真模型。然后建立了采用反馈线性化滑模控制的MMC-SST控制模型。最后利用MATLAB/Simulink平台将所提的控制方法与常规PID控制策略作了仿真比较,验证了所提反馈线性化滑模控制策略具备参数选择容易、动态性能优良的优势。展开更多
The objective of this research is to realize a composite nonlinear feedback control approach for a class of linear and nonlinear systems with parallel-distributed compensation along with sliding mode control technique...The objective of this research is to realize a composite nonlinear feedback control approach for a class of linear and nonlinear systems with parallel-distributed compensation along with sliding mode control technique.The proposed composite nonlinear feedback control approach consists of two parts.In a word,the first part provides the stability of the closed-loop system and the fast convergence response,as long as the second one improves transient response.In this research,the genetic algorithm in line with the fuzzy logic is designed to calculate constant controller coefficients and optimize the control effort.The effectiveness of the proposed design is demonstrated by servo position control system and inverted pendulum system with DC motor simulation results.展开更多
文摘将模块化多电平变流器(modular multilevel converter,MMC)投入到固态变压器(solid state transformer,SST)系统中时通常采用比例积分微分(proportional integral derivative,PID)控制方法,但这种策略存在参数选取繁杂、动态性能较差的缺点。为了提高系统的动态性能并简化参数选取,提出了MMC-SST反馈线性化滑模控制策略。首先建立了MMC-SST整体仿真模型。然后建立了采用反馈线性化滑模控制的MMC-SST控制模型。最后利用MATLAB/Simulink平台将所提的控制方法与常规PID控制策略作了仿真比较,验证了所提反馈线性化滑模控制策略具备参数选择容易、动态性能优良的优势。
文摘The objective of this research is to realize a composite nonlinear feedback control approach for a class of linear and nonlinear systems with parallel-distributed compensation along with sliding mode control technique.The proposed composite nonlinear feedback control approach consists of two parts.In a word,the first part provides the stability of the closed-loop system and the fast convergence response,as long as the second one improves transient response.In this research,the genetic algorithm in line with the fuzzy logic is designed to calculate constant controller coefficients and optimize the control effort.The effectiveness of the proposed design is demonstrated by servo position control system and inverted pendulum system with DC motor simulation results.