并网光伏热电混合发电系统能量收集最大化:一种自适应全局功率跟踪技术

IF 2.3 4区 环境科学与生态学 Q3 ENGINEERING, CHEMICAL
Nedaa Al-Tawalbeh, Muhammad Hamza Zafar, Ibrahim Abuishmais, Muhammad Ammirrul Atiqi Mohd Zainuri, Mohd Amran Mohd Radzi
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引用次数: 0

摘要

本文提出了一种优化热电发电机(TEG)和光伏(PV)技术集成到与三相电网连接的混合系统中的创新策略,旨在增强可再生能源收集并提高整体系统效率。针对混合PV-TEG系统并网应用的要求,结合传统摄动和观测技术的优点,提出了一种基于改进梯形规则的自适应超越跟踪算法。验证是在大范围的天气波动下进行的,包括不同的辐照度、温度梯度、复杂的部分遮阳水平和动态太阳照射。仿真结果表明,该方法比一些最广泛使用的元启发式方法性能更好,在响应时间小于10 ms的情况下,显着提高了99.7%以上的能量产出效率,将稳态误差(SSE)降低到0.2%以下。实验中,该技术已被投入实践,并在各种额外的天气场景中进行了评估,使用太阳模拟器和微控制器(TMS320F28335)作为实现设置的主要部分。在进行的所有试验中,响应可靠稳定,效率超过99%。研究结果表明,自适应MPPT技术可以显著提高太阳能系统的稳定性和效率,为更强大、高性能的可再生能源解决方案铺平道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Maximizing energy harvesting in grid-connected hybrid photovoltaic and thermoelectric generator systems: An adaptive global power tracking technique

Maximizing energy harvesting in grid-connected hybrid photovoltaic and thermoelectric generator systems: An adaptive global power tracking technique

Maximizing energy harvesting in grid-connected hybrid photovoltaic and thermoelectric generator systems: An adaptive global power tracking technique

Maximizing energy harvesting in grid-connected hybrid photovoltaic and thermoelectric generator systems: An adaptive global power tracking technique

This paper proposes an innovative strategy to optimize the integration of thermoelectric generator (TEG) and photovoltaic (PV) technologies into a hybrid system linked to a three-phase grid, aiming to enhance renewable energy harvesting and raise overall system efficiency. An adaptive overstepping tracking algorithm is presented to meet the requirements of hybrid PV-TEG systems for grid-connected applications, combining the advantages of conventional perturb and observe techniques with a modified trapezoidal rule based technique. The validations were conducted under a wide range of weather fluctuations, including varying irradiance, temperature gradients, complex partial shading levels, and dynamic sun irradiation. The results of the simulation show that the proposed method performs better than some of the most widely used metaheuristic approaches, exhibiting notable gains in energy yield of over 99.7% efficiency with a response time of less than 10 ms, reducing steady-state error (SSE) to less than 0.2%. Experimentally, the proposed technique has been put into practice and evaluated in a variety of additional weather scenarios using a solar simulator and a microcontroller (TMS320F28335) as the main part of the implemented setup. In all tests that were carried out, the reliable and stable response with an efficiency of over 99% was approved. The findings demonstrate that the adaptive MPPT technique can significantly enhance the stability and efficiency of solar systems, paving the way for more robust and high-performing renewable energy solutions.

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来源期刊
Environmental Progress & Sustainable Energy
Environmental Progress & Sustainable Energy 环境科学-工程:化工
CiteScore
5.00
自引率
3.60%
发文量
231
审稿时长
4.3 months
期刊介绍: Environmental Progress , a quarterly publication of the American Institute of Chemical Engineers, reports on critical issues like remediation and treatment of solid or aqueous wastes, air pollution, sustainability, and sustainable energy. Each issue helps chemical engineers (and those in related fields) stay on top of technological advances in all areas associated with the environment through feature articles, updates, book and software reviews, and editorials.
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