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Long-Range Distributed Solar Irradiance Sensing Using Optical Fibers

DOI:10.3390/s20030908 期刊:Sensors 出版年份:2020 更新时间:2025-09-19 17:13:59
摘要: Until recently, the amount of solar irradiance reaching the Earth surface was considered to be a steady value over the years. However, there is increasing observational evidence showing that this quantity undergoes substantial variations over time, which need to be addressed in different scenarios ranging from climate change to solar energy applications. With the growing interest in developing solar energy technology with enhanced efficiency and optimized management, the monitoring of solar irradiance at the ground level is now considered to be a fundamental input in the pursuit of that goal. Here, we propose the first fiber-based distributed sensor able of monitoring ground solar irradiance in real time, with meter scale spatial resolutions over distances of several tens of kilometers (up to 100 km). The technique is based on an optical fiber reflectometry technique (CP-φOTDR), which enables real time and long-range high-sensitivity bolometric measurements of solar radiance with a single optical fiber cable and a single interrogator unit. The method is explained and analyzed theoretically. A validation of the method is proposed using a solar simulator irradiating standard optical fibers, where we demonstrate the ability to detect and quantify solar irradiance with less than a 0.1 W/m2 resolution.
作者: Regina Magalh?es,Luis Costa,Sonia Martin-Lopez,Miguel Gonzalez-Herraez,Alejandro F. Bra?a,Hugo F. Martins
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To propose and implement the first fiber-based distributed sensor capable of monitoring ground solar irradiance in real time with high sensitivity and spatial resolution over long distances.

The study successfully demonstrates a fiber-based distributed sensor for monitoring solar irradiance with high sensitivity and spatial resolution. The technique shows potential for real-time, long-range monitoring applications in solar energy fields, despite some limitations in response time and environmental sensitivity.

The thermal equilibrium state is not fully reached in all experiments, leading to uncertainties in calibration. The response time of thicker fiber cables is slower, affecting the ability to quickly reach equilibrium. Environmental factors like dust or shadows could affect the accuracy of irradiance measurements.

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