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Performance evaluation of classical and fuzzy logic control techniques for brushless DC motor drive

机译:无刷直流电动机驱动经典和模糊逻辑控制技术的性能评估

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High efficiency due to reduced losses, low maintenance and low rotor inertia of the brushless dc (BLDC) motor have increased the demand of BLDC motors in high power servo and robotic applications. Since fuzzy logic with human like but systematic property can convert the linguistic control rules based on expert knowledge into automatic control strategy, it can be well applied to control the systems with uncertain or unmodelled dynamics. In view of fuzzy logic merits, this paper proposes three types of fuzzy logic controllers for BLDC motor drive using advanced simulation model and presents a comparative study of performance specifications of classical PI and PID controllers and three fuzzy logic controllers. The three fuzzy logic controllers considered are PI-like fuzzy logic controller (PI-Like FLC), Hybrid fuzzy logic controller (HFLC) and integrated fuzzy logic controller (IFLC). The steady state and dynamic characteristics of speed and torque are effectively monitored and analyzed using the proposed model. The aim of fuzzy logic controllers is to obtain improved performance in terms of disturbance rejection or parameter variation than obtained using classical controllers. In the HFLC, the proportional term of the traditional PID controller is replaced with an incremental fuzzy logic controller. For the PI-Like FLC, the output of the controller is modified by a rule base with the error and change of error of the controlled variable as the inputs. The IFLC is constructed by using Fuzzy logic controller and PID controller. A performance comparison of classical and fuzzy logic controllers has been carried out by several simulations at different speeds and different load conditions.
机译:无刷直流(BLDC)电动机具有降低损耗,低维护和低转子惯性等优点,因此在大功率伺服和机器人应用中对BLDC电动机的需求日益增长。由于具有类似人但具有系统属性的模糊逻辑可以将基于专家知识的语言控制规则转换为自动控制策略,因此可以很好地应用于控制具有不确定性或未建模动力学的系统。鉴于模糊逻辑的优点,本文利用先进的仿真模型提出了三种用于BLDC电机驱动的模糊逻辑控制器,并对经典PI和PID控制器以及三种模糊逻辑控制器的性能指标进行了比较研究。所考虑的三个模糊逻辑控制器是类PI的模糊逻辑控制器(PI-Like FLC),混合模糊逻辑控制器(HFLC)和集成模糊逻辑控制器(IFLC)。使用所提出的模型可以有效地监视和分析速度和转矩的稳态和动态特性。模糊逻辑控制器的目的是在干扰抑制或参数变化方面获得比使用传统控制器更好的性能。在HFLC中,传统PID控制器的比例项被增量模糊逻辑控制器代替。对于PI-Like FLC,控制器的输出通过规则库进行修改,将控制变量的误差和误差变化作为输入。 IFLC由模糊逻辑控制器和PID控制器构成。通过在不同的速度和不同的负载条件下进行的几次仿真,可以对经典和模糊逻辑控制器的性能进行比较。

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