Performance analysis of optimized differential power processing converter with switched inductor using enhanced fuzzy logic control for solar photovoltaic systems

Annadurai Sadhasivam, Nageswari Sathyamoorthy
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Abstract

In the current landscape of renewable energy systems, optimizing the performance of power electronic converters is crucial for ensuring reliability. Within the realm of direct current (DC)–DC power converter systems, the differential power processing (DPP) converter holds promise. However, realizing its full potential requires meticulous system design, especially in response to varying solar irradiation levels. Poor design can result in performance degradation, leading to system damage and voltage instability due to sudden irradiation fluctuations. To address these challenges, this study investigates the performance optimization of a DPP converter enhanced with a modified switched inductor, tailored for solar photovoltaic applications. To overcome traditional control strategy limitations, we propose an innovative enhanced fuzzy logic controller (E-FLC). This controller’s strength lies in its dynamic adaptability, achieved through variable duty cycle control, input parameters, membership functions, and output responses. This paper emphasizes methodological precision, particularly in applying the E-FLC to the modified switched inductor. The use of this controller significantly improves both steady-state and transient response performance compared to traditional switched inductors. It rigorously analyzes the responses of the DPP converter under steady-state and transient conditions, with and without the modified switched inductor. This analytical approach sheds light on a critical yet often overlooked aspect of photovoltaic systems. The core innovation driving this research is the adoption of the E-FLC, which outperforms the commonly used proportional–integral (PI) controller in steady-state performance and transient response characteristics. This paper goes beyond conventional converter optimization studies by introducing a holistic approach encompassing system dynamics, control strategy innovation, and performance evaluation. The proposed E-FLC represents a methodological breakthrough and a substantial improvement in converter efficiency and reliability. As renewable energy continues to reshape the global energy landscape, this research sets a new standard for harnessing the true capabilities of power electronic converters in solar photovoltaic systems.
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使用增强型模糊逻辑控制的优化差分功率处理转换器(带开关电感器)的性能分析,适用于太阳能光伏系统
在当前的可再生能源系统中,优化电力电子转换器的性能对于确保可靠性至关重要。在直流(DC)-直流电源转换器系统领域,差分功率处理(DPP)转换器大有可为。然而,要充分发挥其潜力,需要精心的系统设计,尤其是在应对不同的太阳辐照水平时。不良的设计会导致性能下降,造成系统损坏,并因突然的辐照波动而导致电压不稳定。为了应对这些挑战,本研究探讨了针对太阳能光伏应用的 DPP 转换器的性能优化问题,该转换器采用了改进型开关电感器。为了克服传统控制策略的局限性,我们提出了一种创新的增强型模糊逻辑控制器(E-FLC)。该控制器的优势在于其动态适应性,通过可变占空比控制、输入参数、成员函数和输出响应来实现。本文强调方法的精确性,尤其是在将 E-FLC 应用于改进型开关电感器时。与传统的开关电感器相比,使用这种控制器能明显改善稳态和瞬态响应性能。它严格分析了 DPP 转换器在稳态和瞬态条件下的响应,包括使用和不使用改进型开关电感器的情况。这种分析方法揭示了光伏系统中一个关键但往往被忽视的方面。推动这项研究的核心创新是采用 E-FLC,它在稳态性能和瞬态响应特性方面优于常用的比例积分(PI)控制器。本文超越了传统的变流器优化研究,引入了一种涵盖系统动力学、控制策略创新和性能评估的整体方法。所提出的 E-FLC 在方法上实现了突破,并大大提高了变流器的效率和可靠性。随着可再生能源不断重塑全球能源格局,这项研究为在太阳能光伏系统中利用电力电子转换器的真正能力设定了新标准。
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