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Design and modelling of a measuring device for a TIR-R concentrator

机译:TIR-R集中器测量设备的设计和建模

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One of the most usual procedures to measure a concentrator optical efficiency is by direct comparison between the photocurrent generated by the compound concentrator/solar cell and photocurrent that single cell would generate under identical radiation conditions. Unfortunately, such procedure can give a good idea of the generator final performance, but can not indicate the real amount of radiation that will impinge over the cell. This apparent contradiction is based on the fact that once the cell is coupled with the concentrator, rays incidence is not perpendicular, but highly oblique, with an angle that can reach 70° or even greater for high concentration devices. The antireflective coating of the cell does not perform well enough for the whole incidence angle and frequency ranges because low cost is other important requirement for the solar cells. In consequence, the generated photocurrent drops for large incidence angles. In our case, a 70% incidence angle could, in the worst case, mean a 34% loss on generated photocurrent. With the aim of correcting such problem a special device has been designed in the framework of a EU funded project called HAMLET. The concept of the device is to substitute the concentrator receptor by a system formed by an optical collimator that would reduce concentration and incidence angle, and a characterized solar cell. The paper gives the results of this measuring procedure.
机译:测量聚光器光学效率的最常用方法之一是直接比较复合聚光器/太阳能电池产生的光电流与单个电池在相同辐射条件下会产生的光电流。不幸的是,这样的过程可以很好地了解发生器的最终性能,但不能指示将撞击在电池上的实际辐射量。这种明显的矛盾是基于这样的事实,即一旦电池与聚光器耦合,光线入射就不会垂直,而是高度倾斜,对于高浓度设备,其入射角可以达到70°甚至更大。电池的抗反射涂层在整个入射角和整个频率范围内的性能都不够好,因为低成本是太阳能电池的另一个重要要求。结果,对于大入射角,产生的光电流下降。在我们的情况下,在最坏的情况下,入射角为70%可能意味着产生的光电流损失34%。为了纠正此类问题,在欧盟资助的项目HAMLET中设计了一种特殊的设备。该设备的概念是通过光学准直仪和可表征的太阳能电池的光学准直仪形成的系统代替集中器接收器。本文给出了该测量程序的结果。

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