基于解耦器的混合微电网互连变换器反馈控制策略

Q2 Engineering
Designs Pub Date : 2023-07-06 DOI:10.3390/designs7040091
Rekha P. Nair, K. Ponnusamy
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引用次数: 0

摘要

在具有交直流子电网的混合微电网中,互联变流器(IC)是连接交直流子电网的关键元件。内控制回路之间的d轴和q轴阻抗相互作用会对互连变换器的性能产生不利影响。这种相互作用是非常不受欢迎的,因为它对集成电路的动态和稳态性能都有不利影响。基于此,开发了一种新的基于反馈的解耦策略来克服互连变换器数学模型中的交叉耦合效应。这是一个新颖的概念,因为前馈补偿技术用于解决先前相关工作中的交叉耦合效应,而交叉耦合效应由于补偿项的添加而具有额外干扰的固有缺点。采用系统块化代数和直接综合方法,实现了d轴和q轴的完全解耦,得到了控制回路的一阶传递函数。该模型降低了计算复杂度,并且内部控制回路不受阻抗相互作用的影响,从而提高了暂态稳定性。采用矩阵对角化方法实现了电压矢量的完美解耦。此外,该控制的新颖之处在于将解耦模型与基于归一化的坐标控制策略相结合,通过互连转换器实现有效的双向功率传输。并在MATLAB Simulink平台上对所提控制器在不同瞬态下的性能进行了有效性测试。仿真结果验证了该控制策略的有效性,表明该控制策略具有较快的响应速度。由于实现了有效的解耦,产生了高质量的参考信号。通过比较解耦模型的参考功率信号与没有解耦策略的参考功率信号的T.H.D.水平,也验证了这一观察结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Decoupler-Based Feedback Control Strategy for Interlinking Converter in a Hybrid Microgrid
In a hybrid microgrid with AC and DC subgrids, the interlinking converter (IC) is the key element connecting the two subgrids. The performance of the interlinking converter is adversely affected by the d- and q-axis impedance interaction between the inner control loops. This interaction is highly undesirable since it adversely affects both the dynamic and the steady-state performance of the IC. Based on this, a novel feedback-based decoupling strategy is developed to overcome the cross-coupling effect in the mathematical model of the interlinking converter. This is a novel concept since the feed-forward compensation techniques are utilized to address the cross-coupling effect in prior related works, which has an inherent disadvantage of additional disturbance due to the addition of the compensating terms. In this study, a complete decoupling of the d and q axes was achieved, and the first-order transfer functions were obtained for the control loops using systematic block-reduction algebra and direct synthesis approaches. With this model, computational complexities are reduced and the inner control loops are free from impedance interaction effects, thereby achieving enhanced transient stability. Perfect decoupling of the voltage vectors is achieved by the matrix diagonalization method. Furthermore, the novelty of the proposed control is that the decoupled model is integrated with a normalization-based coordinate control strategy for effective bidirectional power transfer via the interlinking converter. Additionally, the proposed controller’s validity was tested for its performance under different transients in the MATLAB Simulink platform. The simulation results validated the proposed control strategy by showing that a faster response is ensured. A high-quality reference signal is generated due to the effective decoupling achieved. This observation was also validated by comparing the T.H.D. levels of a decoupled model’s reference power signal to one without a decoupling strategy.
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来源期刊
Designs
Designs Engineering-Engineering (miscellaneous)
CiteScore
3.90
自引率
0.00%
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0
审稿时长
11 weeks
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