Temperature Effects on DC Cable Voltage Drop in Utility Scale Rooftop Solar PV Plant Based on Empirical Model

A. Desai, Vansh Pandya, I. Mukhopadhyay, A. Ray
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Abstract

This paper discusses the effect of losses occurred due to rise in temperature in determining the optimal capacity of DC cable for a Solar Photovoltaic (PV) system application. An optimization is considered to address the existing trade-off between cost of losses due to the voltage drop and its investment cost. The main outcome of the model is the optimal DC cable capacity for a given PV system, as well as the relevant optimal DC cable sizing with respect to voltage drop. An experimental result of 250 kW Solar PV system installed at a latitude of 23.029° N and longitude of 72.577°E is used to determine the effect of temperature rise on voltage drop of dc cable at outdoor conditions. This paper presents an empirical model to determine the effect of voltage drop by temperature through experimental data. In this work a focus is made on th effect of temperature on DC cable and its solution towards performance guarantee as well as improvement in generation forecasting. This study is carried out to find on site dc voltage prediction with minimum error and provides prediction based on empirical formula. The model results reveal that, by installing the dc cable in outdoor conditions of semi-arid places like Gujarat, and other arid regions, where average ambient temperature is about 30°C- 35°C and in summer maximum is above 40°C and there is an increment in voltage drop of about 12 to 18 % with respect to standard test condition. By choosing the proper cable size we can save 2400 kWh to 5400 kWh annually which reduces annually 1200kg to 3000 Kg Co2 and 300Kg to 700 Kg coal could be prevented annually. With optimal design of DC cable we can reduced the cable loss below 1 % which is at par and it generates 1.8 to 2.4 times more revenue.
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基于经验模型的屋顶太阳能光伏电站温度对直流电缆电压降的影响
本文讨论了在确定太阳能光伏(PV)系统中直流电缆的最佳容量时,由于温度升高而产生的损耗的影响。考虑了一种优化方法,以解决电压降损失成本与其投资成本之间存在的权衡。该模型的主要结果是给定光伏系统的最佳直流电缆容量,以及与电压降相关的最佳直流电缆尺寸。以安装在北纬23.029°N、东经72.577°E的250kw太阳能光伏系统为实验对象,研究了室外条件下温升对直流电缆电压降的影响。本文通过实验数据,提出了一个确定温度对电压降影响的经验模型。本文重点研究了温度对直流电缆性能的影响及其解决方案,以保证直流电缆的性能,并改进了直流电缆的发电预测。本研究旨在寻找误差最小的现场直流电压预测,并提供基于经验公式的预测。模型结果表明,在古吉拉特邦等半干旱地区,在平均环境温度约为30 ~ 35℃,夏季最高温度在40℃以上的干旱地区,安装直流电缆的室外条件下,电压降比标准测试条件增加了约12% ~ 18%。通过选择合适的电缆尺寸,我们每年可节省2400至5400千瓦时,每年可减少1200至3000公斤的二氧化碳和300至700公斤的煤炭。通过对直流电缆的优化设计,我们可以将电缆损耗降低到1%以下,这是正常的,它可以产生1.8到2.4倍的收入。
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