楚雄师范学院学报 ›› 2026, Vol. 41 ›› Issue (3): 144-152.

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基于反射强化策略的双面光伏组件输出性能优化研究

宋向波, 唐露秋, 高瑾*, 杨宇晨, 张露心, 自兴发, 何永泰   

  1. 楚雄师范学院 物理与电气能源工程学院,云南 楚雄 675000
  • 收稿日期:2025-12-15 出版日期:2026-05-20 发布日期:2026-07-22
  • 通讯作者: *高瑾(1990-),女,讲师,研究方向为太阳能光伏发电技术。
  • 作者简介:宋向波(1990-),男,博士,副教授,研究方向为可再生能源转化与利用技术。
  • 基金资助:
    2025年楚雄师范学院-楚雄州科学技术局联合专项(重点)项目; 云南省基础研究计划项目(No. 202401CF070084); 云南省地方本科高校基础研究联合项目(No. 202101BA070001-190); 2024年大学生创新创业训练计划(国家级)项目(No. 202411391013)

Optimization of Output Performance for Bifacial Photovoltaic Modules Based on Reflection Enhancement Strategy

Song Xiangbo, Tang Luqiu, Gao Jin*, Yang Yuchen, Zhang Luxin, Zi Xingfa, He Yongtai   

  1. School of Physics, Electrical and Energy Engineering, Chuxiong Normal University, Chuxiong, Yunnan Province 675000, China
  • Received:2025-12-15 Online:2026-05-20 Published:2026-07-22

摘要: 随着光伏发电技术的不断发展与进步,对双面光伏组件输出性能的关键影响因素及性能强化策略研究显得尤为重要。本文以单晶硅组件为核心,设计并搭建了一套双面光伏组件发电与测试系统,重点研究了倾角为0°、15°、25°、30°、45°和60°等角度时,不同反光间距(0 cm、5 cm、10 cm、15 cm)对系统输出电压、电流、功率及功率增益的影响,并对比研究了反光强化策略对系统输出性能的优化效果。结果表明:随着倾角的增加,组件输出功率呈现先增大后减小的趋势,当倾角为30°时输出功率最大,为164.1 W;反光装置强化反光和反光间距对系统输出性能均存在显著影响,采用反光装置强化组件背面太阳辐射可有效提高系统整体输出功率,反光装置与组件之间保持适当间距可有效增加组件功率增益。当倾角为30°、反光间距为5 cm时,系统输出功率最佳,为176.9 W,且功率增益达到了7.8%。然而,随着反光间距的进一步增大,系统输出功率呈缓慢下降趋势。本文的研究结果,可为后续双面光伏组件输出性能的优化与改进提供指导和参考。

关键词: 太阳能, 双面光伏组件, 倾角, 反光间距, 输出性能

Abstract: As photovoltaic power generation technology advances, it becomes crucial to investigate the key factors affecting the output performance of bifacial photovoltaic modules and their performance strengthening strategies. Based on monocrystalline silicon module, a bifacial photovoltaic module power generation and testing system was designed and built in this study. The influence of different reflective spacing (e.g. 0 cm, 5 cm, 10 cm, 15 cm) on the output voltage, current, power and power gain of the system was studied at angles of 0°, 15°, 25°, 30°, 45° and 60°. The optimization effect of reflection enhancement strategy on the output performance of the system was comparatively studied. The results showed that with the increase of inclination angle, the output power of module first increased and then decreased. The highest output power of 164.1 W was achieved at an inclination angle of 30°. The use of reflective devices to enhance the solar radiation on the back of bifacial modules can effectively improve the overall system output power and maintaining proper spacing between reflective devices and modules can effectively increase the system power gain. When the inclination angle was maintained at 30° and the reflective spacing at 5 cm, the best system output power of 176.9 W could be obtained with a power gain of 7.8%. However, as reflective spacing increases further, the system output power displayed a slow decline. The results obtained in this study can provide guidance and reference for the optimization and improvement of the output performance of bifacial photovoltaic modules.

Key words: solar energy, bifacial photovoltaic module, inclination angle, reflective spacing, output performance

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