外文翻译---具有积分滑模控制的内埋式永磁同步电动机基于线性矩阵不等式的模糊控制
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1、PDF外文:http:/ Linear Matrix Inequality-Based Fuzzy Control for Interior Permanent Magnet Synchronous Motor with integral sliding mode control FaGuang Wang, SeungKyuPark, Ho Kyun Ahn Department of Electrical Engineering, Changwon National University, Korea Abstract-Recently, interior permanent m
2、agnet synchronous motor (IPMSM) is widely used in various applications, such as electric vehicles and compressors. It has a high requirement in wide load variations, high speed condition, stability, providing a fast response and most important thing is that it can be applied easily and efficiently.
3、However, the control of IPMSM is more difficult than surface permanent magnet synchronous motor (SPMSM) because its nonlinearity due to the non-zero daxis current which can be zero in SPSM but not IPMSM. In this paper, the IPMSM is controlled very efficient algorithm by using the combination of line
4、ar control and fuzzy control with linear models depending on certain operating points. The H linear matrix inequality (LMI) based integral sliding mode control is also used to ensure the robustness. The membership functions of this paper are easy to be determined and implemented easily. Index Terms-
5、Fuzzy control, H control, integral sliding mode control, interior permanent magnet synchronous motor (IPMSM), linear matrix inequality. I. INTRODUCTION From 1980s , with the development of semiconductor, IPMSM supplied by converter source has been widely studied 1 2. The development of microco
6、mputer made the vector control system of IPMSM well controlled by single chip. IPMSM possesses special features for adjustable-speed drives which distinguish it from other classes of ac machines, especially surface permanent magnet synchronous motor. The main criteria of high performance drives are
7、fast and accurate speed response, quick recovery of speed from any disturbances and insensitivity to parameter variations 3. In order to achieve high performances, the vector control of IPMSM drive is employed 4-6. Control techniques become complicated due to the nonlinearities of the developed torq
8、ue for non-zero value of d-axis current. Many researchers have focused their attention on forcing the daxis current equals to zero in the vector control of IPMSM drive, which essentially makes the motor model linear 4,7. However, in real-time the electromagnetic torque is non-linear in nature. In or
9、der to incorporate the nonlinearity in a practical IPMSM drive, a control technique known as maximum torque per ampere (MTPA) is devised which provides maximum torque with minimum stator current 3. This MTPA strategy is very important from the limitation of IPMSM and inverter rating points of
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