Title :
Control of high-performance permanent-magnet synchronous motors for underwater vehicles
Author :
Lyshevski, Sergey Edward ; Egan, Christopher J. ; Raposa, John R. ; Menozzi, Alberico ; Thivierge, D. ; Goddu, Gregory ; Smith, Lyle
Author_Institution :
Dept. of Electr. Eng., Purdue Univ., West Lafayette, IN, USA
Abstract :
The major goal of the paper is to perform advanced studies in nonlinear analysis, design, control, and deployment of advanced propulsion systems for underwater vehicles. Propulsion systems integrate permanent-magnet synchronous motors, power converters, microprocessors, and sensors. There is a critical need to perform advanced nonlinear analysis and design of electric motors. The use of advanced microprocessors and DSPs allow the designer to perform intelligent decision making and learning control. Due to extremely complex nonlinear electromagnetics phenomena, research in electric machinery has not kept the pace of the benchmarking advantages in power electronics and DSPs. In the paper, advanced analysis and design are performed to provide the means for developing high-performance propulsion systems for underwater vehicles in order to reduce the current drawbacks and satisfy requirements and specifications imposed. In particular, we approach and solve extremely challenging nonlinear analysis and control problems for high-performance propulsion systems without placing the problem into the frame of assumptions and simplifications which lead to unsatisfactory performance. Using a set of nonlinear differential equations, which describe permanent-magnet synchronous motor dynamics, an innovative design method is proposed, and nonlinear control algorithms are synthesized. It must be emphasized that the reported results have been implemented, verified, and deployed
Keywords :
angular velocity control; control system synthesis; machine control; nonlinear control systems; nonlinear differential equations; permanent magnet motors; propulsion; robust control; synchronous motors; underwater vehicles; advanced propulsion systems; high-performance permanent-magnet synchronous motors; high-performance propulsion systems; intelligent decision making; learning control; nonlinear analysis; nonlinear design; nonlinear electromagnetics phenomena; Control system analysis; Control systems; Digital signal processing; Intelligent sensors; Microprocessors; Nonlinear control systems; Performance analysis; Propulsion; Synchronous motors; Underwater vehicles;
Conference_Titel :
American Control Conference, 2000. Proceedings of the 2000
Conference_Location :
Chicago, IL
Print_ISBN :
0-7803-5519-9
DOI :
10.1109/ACC.2000.878778