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Reconfiguration strategy for optimization of solar photovoltaic array under non-uniform illumination conditions

机译:在非均匀光照条件下优化太阳能光伏阵列的重配置策略

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Performance of a solar photovoltaic (SPV) array is affected by variations in temperature, solar insolation and array configuration. At times, the SPV arrays are susceptible to non-uniform illumination due to shading caused by passing cloud, towers, trees etc. The effect of partial shading is critical; it can cause problems such as irregular P-V characteristics (multiple peaks) which makes power optimization difficult by the conventional power extraction techniques and results in significant loss of power. In most SPV systems, a DC-DC converter is connected at the SPV output to compensate for the drop in the PV output voltage. Under shaded conditions, a high gain DC-DC converter is needed to boost the low SPV voltage, which leads to additional power loss. Under such conditions, an appropriate reconfiguration scheme may prove to be beneficial as it ensures a certain minimum voltage for the next stage, obviating the need for high voltage gain, thereby reducing the power losses in the DC-DC converter. Under non-uniform illumination conditions, the P-V characteristics may exhibit multiple peaks. In the absence of reconfiguration, the conventional power optimization technique will get trapped at the local maxima and result in loss of power. While reconfiguration shows advantage in power as well as makes the P-V characteristics less irregular making the convergence to the maximum power point easier. This paper proposes a reconfiguration strategy which ensures a certain minimum deviation from the operating voltage with improvement in power. A reconfigurable 4×4 solar PV cell array is designed. The experimental results for a 4×4 cell array demonstrating the reconfiguration strategy showing improvement in power has been included. And simulation results of reconfiguration of flexible PV modules under non-uniform conditions are also provided.
机译:太阳能光伏(SPV)阵列的性能会受到温度,日照强度和阵列配置的变化的影响。有时,SPV阵列由于云,塔楼,树木等经过的阴影而容易受到不均匀照明的影响。它会引起诸如不规则的P-V特性(多个峰值)之类的问题,这使常规的功率提取技术难以进行功率优化,并导致功率严重损失。在大多数SPV系统中,DC-DC转换器连接在SPV输出处,以补偿PV输出电压的下降。在阴影条件下,需要一个高增益DC-DC转换器来提升低SPV电压,这会导致额外的功率损耗。在这种情况下,适当的重新配置方案可能会被证明是有益的,因为它可以确保下一级的某个最小电压,从而消除了对高电压增益的需求,从而减少了DC-DC转换器中的功率损耗。在不均匀的照明条件下,P-V特性可能会出现多个峰值。在没有重新配置的情况下,传统的功率优化技术将陷入局部最大值,并导致功率损耗。虽然重新配置显示了功率优势,并且使P-V特性不规则性降低,但使收敛到最大功率点变得更加容易。本文提出了一种重新配置策略,该策略可确保随着工作功率的提高,与工作电压的偏差最小。设计了可重构的4×4太阳能光伏电池阵列。 4 x 4单元阵列的实验结果表明了重构策略,显示了功率的提高。并提供了非均匀条件下柔性光伏组件重构的仿真结果。

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