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基于弹道搜索算法的元启发式方法增强光伏系统在局部遮阴条件下的最大功率点跟踪
Enhanced MPP Tracking in Partial Shading Conditions for Solar PV Systems: A Metaheuristic Approach Utilizing Projectile Search Algorithm
| 作者 | Md Tahmid Hussain · Mohammed Shahabuddin · Liang-Yin Huang · Adil Sarwar · Mohammed Asim · Shafiq Ahmad |
| 期刊 | IEEE Access |
| 出版日期 | 2025年1月 |
| 技术分类 | 光伏发电技术 |
| 技术标签 | 储能系统 SiC器件 MPPT |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 太阳能光伏系统 最大功率点跟踪 部分阴影条件 元启发式技术 弹丸搜索算法 |
语言:
中文摘要
为提升光伏系统在局部遮阴条件下的最大功率点跟踪性能,本文提出一种基于弹道搜索算法(PSA)的新型元启发式MPPT方法。PSA模拟物体抛射运动机制,在复杂多峰P-V特性曲线下快速准确寻优。通过与Jaya、 cuckoo搜索、粒子群优化及扰动观察法对比,并结合MATLAB/Simulink仿真与Typhoon HIL-402硬件在环实时验证,结果表明该方法在跟踪速度、效率及稳定性方面均优于传统算法,有效提升了部分阴影下光伏系统的发电效率。
English Abstract
For solar Photovoltaic (PV) systems to function effectively amid dynamic conditions, it is imperative to achieve efficient power harvesting. Given the escalating demand for energy, the application of solar PV technology for electricity generation must be optimized to ensure optimal performance and cost-effectiveness. Maintaining an ample supply of power at the lowest cost is crucial in this regard. Partial Shading Conditions (PSCs) significantly reduce power transfer efficiency in solar PV systems, potentially leading to the formation of hotspots within the solar array. While the insertion of bypass diodes can address this issue, it often results in multiple power peaks on the Power vs Voltage (P-V) curve characteristics, complicating the process of maximum power tracking. To overcome this challenge and alleviate the computational load on the microcontroller, the application of metaheuristic techniques for Maximum Power Point Tracking (MPPT) proves beneficial. However, due to the distinctive operational characteristics of metaheuristic algorithms, continuous research in this domain is essential. Addressing the need for effective Maximum Power Point (MPP) capture in diverse partial shading scenarios, this study introduces a novel MPPT technique based on the Projectile Search Algorithm (PSA). The PSA, inspired by the projectile motion of physical objects, is a metaheuristic optimization algorithm tailored for solving optimization problems by simulating projectile motion within a search space to identify optimal solutions. To assess the performance of the proposed PSA-based approach, comparisons are made with Jaya, Cuckoo Search, Particle Swarm Optimization (PSO) and Perturb and Observe (P&O) algorithms. Real-time validation using the Typhoon Hardware in the Loop (HIL)-402 emulator is employed to verify the suggested approach, and MATLAB/Simulink software is utilized for evaluation. A comprehensive analysis of the results, considering tracking time, power tracking efficiency, and power fluctuations, demonstrates the superior performance of the proposed algorithm compared to existing methodologies.
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SunView 深度解读
该弹道搜索算法MPPT技术对阳光电源SG系列光伏逆变器产品线具有直接应用价值。针对复杂遮阴场景下的多峰功率曲线,PSA算法的快速寻优特性可显著提升现有MPPT算法性能,特别适用于山地、屋顶等易遮挡场景。该技术可集成至阳光电源1500V高压系统的组串式逆变器中,结合iSolarCloud云平台实现智能遮阴识别与算法自适应切换。对于ST系列储能变流器的光储融合场景,该算法可优化直流侧光伏输入效率,提升系统整体发电量2-5%。建议将PSA算法与现有扰动观察法形成混合策略,在保证响应速度的同时降低计算资源消耗,增强产品市场竞争力。