Title :
Maximation of starting torque of a 10/8 SRM with short flux path based on numerical analysis and calculation
Author :
Ye, Zhen Zhong ; Martin, Terry W. ; Balda, Juan Carlos
Author_Institution :
Dept. of Electr. Eng., Arkansas Univ., Fayetteville, AR, USA
Abstract :
This paper presents a novel approach for starting torque maximization of a five-phase 10/8 SRM with short flux path. Unlike the conventional method, this approach emphasizes maximizing the average torque of any one phase during one electrical cycle at a given speed regardless of possible instantaneous negative torque during part of the conduction interval. For the purpose of numerical calculation of the optimal turn-on and turn-off angles, a simplified self-inductance nonlinear model is adopted and verified against FEA data. Then, the theoretical analyses of the numerical model for current and torque calculation under two typical operating modes are provided. Dynamic simulations based on MATLABTM Simulink together with a complete set of flux linkages with respect. to rotor position and phase current were carried out to validate this numerical model for off-line auto searching for the optimal turn-on and turn-off angles so as to maximize starting torque. Similar procedure of numerical calculation can be followed to implement energy-efficiency optimization or torque-ripple minimization
Keywords :
machine theory; magnetic flux; reluctance motors; starting; torque; 10/8 SRM; FEA; MATLAB Simulink; average torque maximisation; conduction interval; current calculation; electrical cycle; energy-efficiency optimization; flux linkages; instantaneous negative torque; off-line auto searching; optimal turn-off angles; optimal turn-on angles; phase current; rotor position; self-inductance nonlinear model; short flux path; starting torque maximisation; switched reluctance motor; torque calculation; torque-ripple minimization; MATLAB; Mathematical model; Numerical analysis; Numerical models; Optimal control; Propulsion; Reluctance machines; Reluctance motors; Torque; Vehicle dynamics;
Conference_Titel :
Industrial Electronics Society, 2000. IECON 2000. 26th Annual Confjerence of the IEEE
Conference_Location :
Nagoya
Print_ISBN :
0-7803-6456-2
DOI :
10.1109/IECON.2000.973177