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光伏发电技术 储能系统 可靠性分析 ★ 5.0

基于局部温度和湿度感知的单面与双面漂浮式光伏系统老化、寿命及长期发电量预测

Local temperature and humidity aware prediction of degradation, lifetime, and long-term yield of mono- and bifacial floating photovoltaic systems

语言:

中文摘要

摘要 漂浮式光伏(FPV)可在许多地区减轻对宝贵土地资源的压力。此外,它还具有较低的积尘率、抑制水蒸发以及在较冷条件下性能更优的优势。尽管以往的研究主要关注短期性能,本文则重点分析FPV的可靠性及其考虑老化的长期性能。由于水体上方湿度较高,我们以腐蚀作为主要老化模式进行研究。本文提出了一种FPV分析框架,将基于物理机制的温度和湿度依赖性老化模型与光伏输出模拟器相结合。本研究预测了单面和双面FPV系统的老化程度、使用寿命以及25年累计发电量,并分析了这些指标对水体上方温度和相对湿度(RH)的敏感性。我们在新加坡、墨西哥拉斯科罗拉达斯、印度特伦甘纳邦以及澳大利亚昆士兰州等不同气象与地理条件下评估了上述结果。即使水体上方RH高出10%,只要温度降低≥1.6°C,单面/双面FPV系统的使用寿命和长期发电量仍优于陆基光伏(LPV)系统。特别是在拉斯科罗拉达斯和昆士兰这种高温、高湿且光照强烈的地区,若水面温度低5°C,FPV系统相比LPV系统在25年总输出上可实现超过4%的增益。总体而言,本研究强调了对FPV系统进行长期性能评估的必要性,并提供了一个分析框架,为未来在不同气候区域开展深入研究和大规模部署奠定了基础。

English Abstract

Abstract Floating photovoltaics (FPV) can lower the stress on valuable land for many localities. Additionally, it shows lowered soiling, suppressed water evaporation, and better performance under the cooler conditions. While previous studies have examined short-term performance, in this paper, we analyze the reliability and degradation-aware long-term performance of FPVs. We focus on corrosion as the primary degradation mode since humidity is higher over waterbodies. We present an FPV analysis framework of physics-based temperature and humidity dependent degradation coupled with a PV-yield simulator. Our study predicts the degradation, lifetime, and 25-year yield of both mono- and bifacial FPV systems along with their sensitivity to temperature and relative humidity ( R H ) over waterbodies. We assess these results over diverse weather and geographic conditions of Singapore, Las Coloradas (Mexico), Telangana (India), and Queensland (Australia). Even with 10% higher R H over water bodies, mono/bifacial FPVs will have better lifetime and long-term yield compared to land-based photovoltaic (LPV) systems with just ≥ 1 . 6 ° C lowered temperatures. Especially in the hot, humid, and bright conditions of Las Coloradas and Queensland, if conditions are 5 °C cooler over water, the FPVs show > 4 % gain in 25-year output compared to LPVs. Overall, this study reinforces the necessity of long-term performance evaluation of FPVs and provides an analysis framework laying the groundwork for future research and large-scale deployment in diverse climatic regions .
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SunView 深度解读

该研究对阳光电源浮式光伏系统解决方案具有重要价值。研究揭示水面温度降低带来的性能提升,可指导SG系列逆变器在浮式电站的MPPT优化策略,针对高湿环境调整降额曲线。结合iSolarCloud平台,可开发基于温湿度的退化预测模型,实现预测性维护。对于热带高湿地区如东南亚市场,研究验证的25年长期收益数据,为PowerTitan储能系统与浮式光伏耦合方案提供可靠性设计依据,优化防腐蚀等级和散热设计,提升系统全生命周期经济性。