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Effects of Cerium Removal from Glass on Photovoltaic Module Performance and Stability

机译:从玻璃中去除铈对光伏组件性能和稳定性的影响

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Photovoltaic modules are exposed to extremely harsh conditions of heat, humidity, high voltage, mechanical stress, thermal cycling and ultraviolet (UV) radiation. The current qualification tests (e.g. IEC 61215) do not require sufficient UV exposure to evaluate lifespans of 30 years. Recently, photovoltaic panel manufacturers have been using glass that does not contain Cerium. This has the advantage of providing about 1.3% to 1.8% more photon transmission but potentially at the expense of long term stability. The additional transmission of light in the 300 nm to 340 nm range can cause delamination to occur about 3.8 times faster. Similarly, UV radiation will cause polymeric encapsulants, such as ethylene vinyl-acetate (EVA), to turn yellow faster losing photon transmission. Silicones do not suffer from light induced degradation as hydrocarbon based polymers do, therefore if silicone encapsulants are used, a 1.6% to 1.9% increase in photon transmission can be obtained from removal of Ce from glass, with no tradeoff in long term stability. Additionally antimony can be added to non-Ce containing glass to further improve photon transmission (principally in the IR range) by an additional 0.4% to 0.7%; however, this does not significantly affect UV transmission so the same UV induced reliability concerns will still exist with common hydrocarbon-based encapsulants.
机译:光伏模块暴露于高温,潮湿,高压,机械应力,热循环和紫外线(UV)辐射的极端恶劣条件下。当前的资格测试(例如IEC 61215)不需要足够的紫外线照射来评估30年的使用寿命。最近,光伏面板制造商一直在使用不含铈的玻璃。这具有提供多约1.3%至1.8%的光子透射的优势,但有可能以长期稳定性为代价。 300 nm至340 nm范围内的光的额外透射可导致分层发生速度快约3.8倍。同样,UV辐射将导致聚合密封剂(例如乙烯乙酸乙烯酯(EVA))变黄更快,从而失去光子传输。硅酮不会像烃基聚合物那样遭受光诱导的降解,因此,如果使用硅酮密封剂,则从玻璃中去除Ce可以使光子透射率提高1.6%至1.9%,而长期稳定性不会受到影响。另外,还可以将锑添加到不含Ce的玻璃中,以进一步提高光子透射率(主要在IR范围内)0.4%至0.7%。但是,这不会显着影响紫外线的透射,因此常见的基于烃的密封剂仍会存在相同的紫外线引起的可靠性问题。

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