基于离线模型的内部永磁电机全转速和全转矩性能优化MTPA方法

V. Chandrasekaran, Bernard Jose, Ashwin Karthik Muralidharan, N. Mohan, K. Basu
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引用次数: 0

摘要

在所有领域的电机应用中,变频驱动器(VFD)的适应程度越来越高。最大转矩每安培(MTPA)算法是常见的解决方案,旨在实现高效运行的驱动器。提出了一种新的内部永磁电机离线MTPA轨迹生成方案。该方法考虑了IPM电机的非线性饱和和交叉耦合特性,通过求解转矩表达式的多项式根来计算每个负载工作点可能的最小电流。离线计算和状态逻辑使用基于模型的设计方法实现,并且在最小化计算资源需求的同时,考虑了高效执行的关键因素,从而扩大了包括成本敏感应用在内的各种电机驱动器的部署范围。在3HP IPM电机上获得的实验结果表明,所提出的方案在实现MTPA控制目标的同时保持了所有操作区域的控制稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Offline Model Based MTPA Methodology for Optimum Performance of Interior Permanent Magnet Machines over Full Range of Speed and Torque
There has been a growing adaptation of Variable Frequency Drives (VFD) for motor applications in all areas. Maximum Torque Per Ampere (MTPA) algorithms are common solutions that aim at achieving efficient operation of drives. This paper presents a novel offline MTPA trajectory generation scheme for an interior permanent magnet (IPM) motor drive. The proposed approach is based on calculating the minimum current possible for every load operating point by solving for polynomial roots of the torque expression in a closed form solution and considers non-linear saturation and cross-coupling properties of the IPM machine. The offline calculation and state logic have been implemented using a model-based design approach and key considerations have been made for efficient execution while minimizing computational resource requirements, thus expanding the deployment scope on a wide range of motor drives including cost sensitive applications. Experimental results obtained on a 3HP IPM motor demonstrate the effectiveness of the proposed scheme in achieving the MTPA control objective while maintaining control stability across all operating regions.
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