可再生能源用变速永磁同步发电机的性能改进

Rasha Mohamed, Mahmoud A. Mossa, A. El-Gaafary
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引用次数: 0

摘要

本文旨在开发一种改进的控制系统,以增强永磁同步发电机(PMSG)在变转速下运行的动力学。基于低电流、功率和转矩波动对发电机动力学进行了评估,以验证所提出控制系统的有效性。采用的控制器包括模型预测功率控制(MPPC)、模型预测转矩控制(MPTC)和设计的预测电压控制(PVC)。MPPC旨在调节有功和无功功率,而MPTC则调节转矩和磁通。MPPC和MPTC有几个缺点,如高纹波,高负载换相,以及在其成本函数中使用加权因子。设计预测电压的方法通过利用无差拍和有限控制集FCS原理来管理直接电压,从而消除了这些缺点,该原理使用简单的成本函数,而不需要任何加权因子来处理平衡误差问题。结果表明,与MPPC和MPTC方法相比,所提出的PVC技术具有动态响应更快、控制结构简化、波纹减小、电流谐波降低、计算量减少等优点。此外,该研究还考虑了叶片俯角和最大功率点跟踪(MPPT)控制的集成,在发电机转速超过额定转速时限制风能的利用,在风力稀缺时最大化风能的提取。总之,与其他方法相比,所提出的PVC增强控制系统在动态响应、控制简单性、电流质量和计算效率方面表现出优越的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Enhancement of a Variable Speed Permanent Magnet Synchronous Generator Used for Renewable Energy Application
The paper aims to develop an improved control system to enhance the dynamics of a permanent magnet synchronous generator (PMSG) operating at varying speeds. The generator dynamics are evaluated based on lowing current, power, and torque ripples to validate the effectiveness of the proposed control system. The adopted controllers include the model predictive power control (MPPC), model predictive torque control (MPTC), and the designed predictive voltage control (PVC). MPPC seeks to regulate the active and reactive power, while MPTC regulates the torque and flux. MPPC and MPTC have several drawbacks, like high ripple, high load commutation, and using a weighting factor in their cost functions. The methodology of designed predictive voltage comes to eliminate these drawbacks by managing the direct voltage by utilizing the deadbeat and finite control set FCS principle, which uses a simple cost function without needing any weighting factor for equilibrium error issues. The results demonstrate several advantages of the proposed PVC technique, including faster dynamic response, simplified control structure, reduced ripples, lower current harmonics, and decreased computational requirements when compared to the MPPC and MPTC methods. Additionally, the study considers the integration of blade pitch angle and maximum power point tracking (MPPT) controls, which limit wind energy utilization when the generator speed exceeds its rated speed and maximize wind energy extraction during wind scarcity. In summary, the proposed PVC enhanced control system exhibits superior performance in terms of dynamic response, control simplicity, current quality, and computational efficiency when compared to alternative methods.
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