伊朗阿拉克100千瓦双面光伏电站综合设计

Mohammad Parhamfar , Alireza Zabihi
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引用次数: 0

摘要

使用PVsyst软件对光伏电站进行建模,需要在选择和调整双面因子时仔细注意,因为它会对建模系统或电站的性能产生重大影响。在设计太阳能发电厂时,我们必须考虑重要的细节。本文探讨了一个100千瓦屋顶太阳能发电厂的设计,解决了挑战并选择了最佳设计,特别关注了双面系数的影响。其中一个挑战是准确评估从面板后方接收的辐射量,并优化行间距以防止阴影。另一个挑战是确定有效的安装角度和面板离地面的高度,以提高双面效率。忽略正确配置这一因素可能导致不正确的发电量估算,并对设计项目的经济分析产生负面影响。主要目标是通过考虑几个障碍,在PV系统中创建一个合适的双面光伏系统设计。这些挑战包括现场分段遮阳、不同月份的太阳能可用性、附近遮阳、屋顶配置和布线、电缆设计、接地系统、保护系统计算、风险评估、照明以及用于阴影测量的避雷针的安装。本研究使用了AutoCAD、PVsyst、ETAP、PVLPC、Helioscope、Volta等软件。此外,本研究中的经济分析是使用RETScreen进行的,RETScreen是一个广泛认可的软件工具,用于评估可再生能源和能源效率项目的财务可行性和绩效。本文基于在伊朗阿拉克实施的一个实际项目。此外,本文还探讨了将气候和环境影响纳入PVsyst软件以实现电厂性能的准确预测,并为100千瓦电厂的设计提供了实际实例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive design of a 100-kilowatt solar power plant with bifacial technology in PVsyst for Arak, Iran
Modeling a PV power plant using PVsyst software requires careful attention in selecting and adjusting the bi-facial factor as it can significantly impact the performance of the modeled system or power plant. In designing solar power plants, we must consider important details. This article explores the design of a 100-kW rooftop solar power plant, addressing challenges and selecting the best design, particularly focusing on the impact of bi-facial coefficients. One of the challenges is accurately assessing the amount of radiation received from the rear of the panels and optimizing the row spacing to prevent shading. Another challenge is determining the effective installation angles and the height of the panels above the ground to enhance bi-facial efficiency. Neglecting to properly configure this factor can lead to incorrect energy yield estimates and negatively affect the economic analysis of the designed project. The main objective is to create an appropriate design for bi-facial PV systems in PVsyst by considering several obstacles. These challenges include field segment shading, solar energy availability in different months, nearby shading, roof configuration and wiring, cable design, grounding system, protection system calculation, risk assessment, lighting, and installation of lightning rods for shadow measurement. Various software, such as AutoCAD, PVsyst, ETAP, PVLPC, Helioscope and Volta, were utilized in this study. Moreover, the economic analysis in this study is conducted using RETScreen, a widely recognized software tool designed for evaluating the financial viability and performance of renewable energy and energy efficiency projects. This paper is based on a real project implemented in Arak, Iran. Furthermore, this paper explores incorporating climatic and environmental impacts into PVsyst software for accurate power plant performance prediction, providing a practical example for designing a 100-kilowatt plant.
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