基于模糊控制器的感应电机驱动电动汽车直接转矩控制改进策略

Q3 Engineering
Sahoo Anjan Ku., Jena Ranjan Ku.
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引用次数: 5

摘要

在不久的将来,预计将实施零排放运输,以减少道路运输造成的主要污染物。在所有的交通工具都实现电气化之前,这一巨大的努力是不可能实现的。感应电机直接转矩控制器以其快速的转矩响应和简单的控制方法在电动汽车中得到了广泛的应用。然而,转矩和磁链的波动以及电流谐波是与直接转矩控制相关的主要问题。用模糊逻辑块代替滞后比较器和开关表,实现模糊直接转矩控制,提高了系统的性能。本文提出了一种用于电动汽车的感应电动机的增强型模糊逻辑控制策略。主要目标是通过减少转矩和磁链波动来提高系统的性能。利用MATLAB/SIMULINK对传统和基于模糊的直接转矩控制进行了仿真,并通过对比评估验证了所提方法在稳态和暂态工况下的有效性。结果表明,转矩脉动、磁链脉动和速度脉动分别改善了69%、10%和85%。由于波纹的减少,定子电流的THD也提高了17%。在瞬态过程中,转矩和转速的积分平方误差平均改善8%和12%。此外,采用EUDC和HWFET驱动循环验证了所提出的方法,证明了电池能量需求的降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved DTC strategy with fuzzy logic controller for induction motor driven electric vehicle
In the near future, zero-emission transportation is anticipated to be implemented in an effort to reduce the major pollutants caused by road transportation. This enormous endeavor will be impossible until all modes of transport are electrified. The induction motor-fed direct torque controller is widely used for EV applications due to its fast torque response and simplicity. However, ripples in torque and flux and current harmonics are the major issues related to DTC. The fuzzy-based DTC replaces the hysteresis comparators and the switching table with fuzzy logic blocks to realize fuzzy DTC control, which improves the system's performance. This paper presents an enhanced fuzzy logic control strategy of induction motor for electric vehicle applications. The main objective is to enhance the system's performance by reducing torque and flux ripples. Both the conventional and fuzzy-based DTC are simulated with MATLAB/SIMULINK, followed by a comparative assessment to validate the effectiveness of the proposed approach for both steady-state and transient operations. The results indicate improvements in torque ripple, flux ripple, and speed ripples by 69%, 10%, and 85%, respectively. Due to the reduction in ripples, there is also an improvement in the THD of the stator current by 17%. During transient, an average improvement of integral square error for torque and speed is 8% and 12%, respectively. Further, the proposed method is validated using EUDC and HWFET drive cycles, demonstrating a reduction in battery energy demand.
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来源期刊
AIMS Electronics and Electrical Engineering
AIMS Electronics and Electrical Engineering Engineering-Control and Systems Engineering
CiteScore
2.40
自引率
0.00%
发文量
19
审稿时长
8 weeks
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