Performance Assessment and Design Recommendations of Nonisolated DC/DC Converters and Maximum Power Point Tracking Techniques for Standalone Photovoltaic Systems

IF 4.3 3区 工程技术 Q2 ENERGY & FUELS
Majd Ghazi Batarseh, Muhy Eddin Za’ter, Ameer B. Batarseh, Sandy Yacoub Miguel
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引用次数: 0

Abstract

A maximum power point tracking (MPPT) algorithm is mandatory to operate the system at its maximum power point (MPP) under different irradiance and temperature for improved efficiency. This requires an impedance-matching mechanism in the form of a DC/DC converter between the photovoltaic (PV) modules and the load. Each MPPT algorithm and DC/DC converter governs the overall PV system performance differently. Published work in that regard is mainly analytical and narrative in comparing different DC/DC converters, in addition to being independent of MPPT methods. Unlike previous studies that treated MPPT techniques and DC/DC converter topologies in isolation or with limited integration, this paper offers a holistic cross-comparative analysis that systematically combines multiple MPPT algorithms with various converter architectures under a unified evaluation framework. This paper presents a comparative study of various nonisolated DC/DC converter topologies, including the step-down buck (linear but limited in tracking the MPP to low resistive loads), the step-up boost (continuous-energy-flow but limited to high resistive load MPP tracking), and the inverting step-up or step-down MPP load nonrestrictive buck–boost converters. These converters are explored with different MPPT techniques, primarily the perturb and observe (P&O) (simple, fast, and accurate but oscillatory), constant voltage (fast and relatively accurate), and power increment (capable of tracking global MPP [GMPP] but slow). Key findings of this study are verified in simulation and hardware experimentation and are summarized as follows: there is no universal optimal solution for PV systems with MPPT techniques and DC/DC converters. The MPPT choice depends on factors such as location, cost, implementation complexity, accuracy, and tracking speed. Ultimately, its the designer’s decision based on considerations of efficiency, complexity, loading limits, and capture zones for the chosen DC/DC converter. With quantified performance indices (PIs), verified results, and design recommendations, this work fills a critical gap in integrated MPPT-converter analysis and provides practical guidance in off-grid PV applications.

Abstract Image

独立光伏系统非隔离DC/DC变换器性能评估与设计建议及最大功率点跟踪技术
采用最大功率点跟踪(MPPT)算法使系统在不同辐照度和温度下的最大功率点运行,以提高效率。这需要在光伏(PV)模块和负载之间采用DC/DC变换器形式的阻抗匹配机制。每种MPPT算法和DC/DC变换器对整个光伏系统性能的控制是不同的。在这方面发表的作品主要是分析和叙述比较不同的DC/DC转换器,除了独立于MPPT方法。与以往的研究将MPPT技术和DC/DC转换器拓扑隔离或有限集成处理不同,本文提供了一个整体的交叉比较分析,在统一的评估框架下系统地将多种MPPT算法与各种转换器架构结合起来。本文对各种非隔离DC/DC变换器拓扑结构进行了比较研究,包括降压降压(线性但限于跟踪MPP到低阻负载),升压升压(连续能量流但限于跟踪高阻负载MPP),以及反相升压或降压MPP负载非限制性降压-升压变换器。这些转换器使用不同的MPPT技术进行了探索,主要是摄动和观察(P&;O)(简单,快速,准确但振荡),恒压(快速且相对准确)和功率增量(能够跟踪全局MPP [GMPP]但缓慢)。本研究的主要发现在仿真和硬件实验中得到了验证,总结如下:对于采用MPPT技术和DC/DC转换器的光伏系统,不存在通用的最优解决方案。MPPT的选择取决于位置、成本、实现复杂性、准确性和跟踪速度等因素。最终,设计师的决定是基于对所选DC/DC转换器的效率、复杂性、负载限制和捕获区域的考虑。通过量化性能指标(pi)、验证结果和设计建议,本研究填补了集成mppt -变流器分析的关键空白,并为离网光伏应用提供了实践指导。
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来源期刊
International Journal of Energy Research
International Journal of Energy Research 工程技术-核科学技术
CiteScore
9.80
自引率
8.70%
发文量
1170
审稿时长
3.1 months
期刊介绍: The International Journal of Energy Research (IJER) is dedicated to providing a multidisciplinary, unique platform for researchers, scientists, engineers, technology developers, planners, and policy makers to present their research results and findings in a compelling manner on novel energy systems and applications. IJER covers the entire spectrum of energy from production to conversion, conservation, management, systems, technologies, etc. We encourage papers submissions aiming at better efficiency, cost improvements, more effective resource use, improved design and analysis, reduced environmental impact, and hence leading to better sustainability. IJER is concerned with the development and exploitation of both advanced traditional and new energy sources, systems, technologies and applications. Interdisciplinary subjects in the area of novel energy systems and applications are also encouraged. High-quality research papers are solicited in, but are not limited to, the following areas with innovative and novel contents: -Biofuels and alternatives -Carbon capturing and storage technologies -Clean coal technologies -Energy conversion, conservation and management -Energy storage -Energy systems -Hybrid/combined/integrated energy systems for multi-generation -Hydrogen energy and fuel cells -Hydrogen production technologies -Micro- and nano-energy systems and technologies -Nuclear energy -Renewable energies (e.g. geothermal, solar, wind, hydro, tidal, wave, biomass) -Smart energy system
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