Irradiance Monitoring for Bifacial PV Systems’ Performance and Capacity Testing

IF 2.5 3区 工程技术 Q3 ENERGY & FUELS
Chris Deline;Silvana Ovaitt;Michael Gostein;Jennifer Braid;Jeff Newmiller;Itai Suez
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Abstract

Three standards for photovoltaic (PV) performance and capacity testing are evaluated for bifacial PV system reporting: performance ratio, ASTM E2848, and a new draft of IEC 61724-2. In this context, challenges and recommendations for rear irradiance instrumentation are described for three types of bifacial irradiance sensors—horizontal albedometer, backward-facing reference cells (or pyranometer), and bifacial reference module. A year of operating field data for single-axis tracked bifacial and monofacial systems was collected, including periods of high surface albedo due to snow ground cover. If snowy conditions are included, we found that all three methods performed comparably to the monofacial baseline case, but only if rear-measured irradiance is incorporated into the expected energy calculation. The lowest RMS error was obtained by following the draft IEC 61724-2 standard and using a calibrated bifacial reference module for bifacial irradiance resource. If measured rear irradiance is unavailable, field conditions either need to be filtered to avoid variable (snowy) albedo or an albedometer measurement can be used in conjunction with modeled rear irradiance along with the draft IEC procedure. Additional practical factors are described, including the proper placement of rear irradiance sensors and the proper interpretation of IEC 61724-1 bifacial performance ratio calculations.
用于双面光伏系统性能和容量测试的辐照度监测
针对双面光伏系统报告评估了三种光伏 (PV) 性能和容量测试标准:性能比、ASTM E2848 和 IEC 61724-2 的新草案。在此背景下,针对三种类型的双面辐照度传感器--水平反照计、后向参考电池(或高温计)和双面参考模块,介绍了后向辐照度仪器所面临的挑战和建议。我们收集了单轴跟踪双面和单面系统一年的现场运行数据,包括因积雪地面覆盖而导致的高表面反照率时期。我们发现,如果将积雪条件包括在内,所有三种方法的性能都可与单面基线情况相媲美,但前提是必须将后方测量的辐照度纳入预期能量计算。按照 IEC 61724-2 标准草案并使用校准过的双面参考模块来计算双面辐照度资源,可获得最小均方根误差。如果无法获得测量的后方辐照度,则需要对现场条件进行过滤,以避免可变的(雪地)反照率,或者在使用 IEC 程序草案的同时使用反照计测量建模的后方辐照度。此外,还介绍了其他实用因素,包括后方辐照度传感器的正确放置以及 IEC 61724-1 双面性能比计算的正确解释。
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来源期刊
IEEE Journal of Photovoltaics
IEEE Journal of Photovoltaics ENERGY & FUELS-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
7.00
自引率
10.00%
发文量
206
期刊介绍: The IEEE Journal of Photovoltaics is a peer-reviewed, archival publication reporting original and significant research results that advance the field of photovoltaics (PV). The PV field is diverse in its science base ranging from semiconductor and PV device physics to optics and the materials sciences. The journal publishes articles that connect this science base to PV science and technology. The intent is to publish original research results that are of primary interest to the photovoltaic specialist. The scope of the IEEE J. Photovoltaics incorporates: fundamentals and new concepts of PV conversion, including those based on nanostructured materials, low-dimensional physics, multiple charge generation, up/down converters, thermophotovoltaics, hot-carrier effects, plasmonics, metamorphic materials, luminescent concentrators, and rectennas; Si-based PV, including new cell designs, crystalline and non-crystalline Si, passivation, characterization and Si crystal growth; polycrystalline, amorphous and crystalline thin-film solar cell materials, including PV structures and solar cells based on II-VI, chalcopyrite, Si and other thin film absorbers; III-V PV materials, heterostructures, multijunction devices and concentrator PV; optics for light trapping, reflection control and concentration; organic PV including polymer, hybrid and dye sensitized solar cells; space PV including cell materials and PV devices, defects and reliability, environmental effects and protective materials; PV modeling and characterization methods; and other aspects of PV, including modules, power conditioning, inverters, balance-of-systems components, monitoring, analyses and simulations, and supporting PV module standards and measurements. Tutorial and review papers on these subjects are also published and occasionally special issues are published to treat particular areas in more depth and breadth.
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