基于人工智能在永磁无刷直流电机驱动中的应用毕业论文外文翻译.doc
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1、附录B:Artificial intelligence applications in Permanent Magnet Brushless DC motor drivesR. A. Gupta Rajesh Kumar Ajay Kumar BansalPublished online: 25 December 209 Springer Science Business Media B .V. 2009Abstract Permanent Magnet Brushless DC (PMBLDC) machines are more popular due its simple structu
2、re and low cost. Improvements in permanent magnetic materials and power electronic devices have resulted in reliable, cost effective PMBLDC drives, for many applications. Advances in artificial intelligent applications like neural network, fuzzy logic, Genetic algorithm etc. have made tremendous imp
3、act on electric motor drives. The brushless DC motor is a multivariable and non-linear system. In conventional PMBLDC drives speed and position sensing of brushless DC motors require high degree of accuracy. Unfortunately, traditional methods of control require detailed modelling of all the motor pa
4、rameters to achieve this. The Intelligent control techniques like, fuzzy logic control/Neural network control etc. uses heuristic inputoutput relations to deal with vague and complex situations. This paper presents a literature survey on the intelligent control techniques for PMBLDC motor drives. Va
5、rious AI techniques for PMBLDC motor drive sare described. Attempt is made to provide a guideline and quick reference for the researchers and practicing engineers those are working in the area of PMBLDC motor drives.Keywords PMBLDC Artificial intelligent Intelligent control Fuzzy Neural network1 Int
6、roductionThe permanent magnet (PM) brushless DC (BLDC) machine is increasingly being used for various applications and its market is rapidly growing. This is mainly due to its high torque, compactness, and high efficiency. Permanent magnet brushless motors have found wider applications due to their
7、high power density and ease of control. Advances in high-energy Permanent Magnet materials and power electronics have widely enhanced the applications of PMBLDC in variable speed drives similar to ac machines (Singh and Kumar 2002; Bose 1992). Recently, the PMBLDC motor has evolved as a replacement
8、of the standard brush type dc machine in many servo applications due to its high efficiency, low maintenance and good controllability (Mohan et al. 1995). Several models of this drive have been presented and discussed (Putta Swamy e t a l. 1995).Moreover, PMBLDC motors are a type of synchronous moto
9、rs means that the magnetic fields generated by both the stator and the rotor have the same frequency therefore, PMBLDC motors do not experience the “ slip” that is normally seen in induction motors (Hendershot and Miller 1994 ). The research is going on to identification of a suitable speed controll
10、er for the PMBLDC motor. Many control strategies have been proposed (Kaynak 2001; Miller 1989) in classical linear theory. As the PMBLDC machine h as nonlinear model, the linear PID may no longer be suitable. This has resulted in the increased demand for modern nonlinear control structures like self
11、-tuning controllers, state-feedback controllers, model reference adaptive systems and use of multi-variable control structure. Most of these controllers use mathematical models and are sensitive to parametric variations. Very few adaptive controllers have been practically employed in the control of
12、electric drives due to their complexity and inferior performance.The design of current and speed controllers for permanent magnet brushless DC(PMBLDC) motor drive remains to large extent a mystery in the motor drives field. A precise speed control of PMBLDC motor is complex due to nonlinear coupling
13、 between winding currents and rotor speed as well as nonlinearity present in the developed torque due to magnetic saturation of the rotor.The PMBLDC machines can be categorized based on the permanent magnets mounting and shape of the back-EMF. The permanent magnets can be surface mounted on the roto
14、r or installed inside of the rotor (interior permanent magnet), and the back-EMF shape can either be sinusoidal or trapezoidal. The surface mounted PM (SMPM) machine is easy to build. Also, from the machine design point of view, skewed poles can be easily magnetized on this round rotor to minimize c
15、ogging torque. Typically, for this type of motor, the inductance variation by rotor position is negligibly small since there is no magnetic saliency. The interior permanent magnet (IPM) machine is a good candidate for high-speed and traction applications. It is noted that there is an inductance vari
16、ation by rotor position for this type of motor because of the magnetic saliency.This paper will give bigger focus on the artificial intelligent applications to PMBLDC motor drives. In this paper, conventional and recent advancement of AI operation methods for P M BLDC drives are presented.2 Modellin
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