首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Advanced performance testing of anti-soiling coatings - Part I: Sequential laboratory test methodology covering the physics of natural soiling processes
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Advanced performance testing of anti-soiling coatings - Part I: Sequential laboratory test methodology covering the physics of natural soiling processes

机译:防污染涂层的先进性能测试 - 第一部分:覆盖天然污染过程物理学的顺序实验室测试方法

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The accumulation of dust and dirt on PV modules can cause significant energy yield losses, especially in dusty environments. The application of anti-soiling coatings (ASC) is seen as a promising mitigation approach to reduce cleaning frequency and thus cleaning costs. In order to examine the effectiveness of coatings, outdoor tests are usually necessary, but these are subject to varying and complex weather conditions. Therefore, an advanced laboratory soiling test setup and corresponding sequential testing procedures representing the underlying physics of soiling and self-cleaning processes were developed, aiming at fast, reliable and standardized evaluation of the anti-soiling performance of glass coatings. The methods include the control of important environmental parameters during dust deposition and a controlled dust removal by utilization of wind blow or centrifugal forces. Besides method evaluation experiments, comparative soiling experiments were performed for uncoated solar-grade float glass, an anti-reflective coating (ARC) and an ASC. The dusts used for the tests were collected from PV modules located in Dunhuang (cold desert climate, China) and Doha (hot desert climate, Qatar). For sample characterization and soiling loss determination, optical transmittance and light microscopy measurements were performed. Both wind blow and rotational force test (RFT) procedures reveal a reduced dust accumulation for the ARC and a further increased anti-soiling behavior for the ASC. The presented test results are consistent with other outdoor and laboratory soiling studies. Compared to wind blow testing, the rotational force test setup significantly improves the controllability of test parameters and provides a better selectivity of coating performance.
机译:PV模块上的灰尘和污垢的累积会导致显着的能量产量损失,特别是在尘土飞扬的环境中。抗污染涂层(ASC)的应用被视为有望的缓解方法,以减少清洁频率,从而进行清洁成本。为了检查涂层的有效性,通常需要室外测试,但这些户外测试是有不同且复杂的天气条件。因此,开发了一种先进的实验室污染测试设置和代表污染和自清洁过程的潜在物理学的相应顺序测试程序,旨在快速,可靠,可靠地标准化的玻璃涂层防污性能的评价。该方法包括通过利用风吹或离心力来控制粉尘沉积期间的重要环境参数。除了方法评估实验之外,对未涂层的太阳级浮法玻璃,抗反射涂层(ARC)和ASC进行比较染色实验。从位于敦煌(寒冷的沙漠气候,中国)和多哈(热沙漠气候,卡塔尔)的光伏模块收集了用于测试的粉尘。对于样品表征和污染损耗测定,进行光学透射率和光学显微镜测量。风吹和旋转力试验(RFT)程序揭示了弧的减少的粉尘积累,进一步提高了ASC的抗污染行为。所呈现的测试结果与其他户外和实验室污染研究一致。与风吹检测相比,旋转力试验设置显着提高了试验参数的可控性,并提供了更好的涂层性能选择性。

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