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A technoeconomic feasibility of inverter selection for MegaWatt(MW) scale grid connected solar photovoltaic power plant

机译:MegaWatt(MW)规模并网太阳能光伏电站逆变器选择的技术经济可行性

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Renewable energy systems have become a need for today's time. But their techno-economic feasibility is one major concern if they are to compete with other conventional energy systems. For this reason, various selection techniques have been prepared for their design, operation, and control. The yield of a solar photovoltaic(PV) plant depends on various atmospheric parameters like solar radiation falling on the site, cloud cover, ambient temperature and duration of sunshine hours. Along with all these parameters, the quality and efficiency of equipment's used and the sizing of this equipment for a reference capacity of the plant also affect the solar plant yield. The appropriate sizing of the equipment for an optimum yield is dependent on the atmospheric parameters mentioned above. So, it becomes very much necessary to take these factors into consideration while designing a solar photovoltaic power plant. One such equipment, whose sizing depends on these factors, is the inverter which decides the AC output of the plant. The inverter sizing affects the net solar PV plant yield over a period of time. Higher inverter sizing equaling the DC capacity that is at an AC to DC ratio of 1:1 may improve the yield of the plant but may not be financially viable for the long run. Lower inverter sizing, on the other hand, will reduce the energy yield of the plant due to energy capping but will reduce the initial investment cost of the plant. This paper presents a methodology to select the size of the inverter for maximum financial return using an energy estimation software and financial model. The Internal Rate of Return (IRR) is used as a financial model for checking the feasibility of the inverter sizing being selected. The methodology is tested for various district locations in the state of Maharashtra in India to get the optimum sizing of the inverter and applied to a case study plant of 634 kW-DC capacity in Latur district of Maharashtra state.
机译:可再生能源系统已成为当今时代的需求。但是,如果要与其他常规能源系统竞争,它们的技术经济可行性是一大关注点。为此,已经为它们的设计,操作和控制准备了各种选择技术。太阳能光伏(PV)工厂的产量取决于各种大气参数,例如落在现场的太阳辐射,云量,环境温度和日照时间。连同所有这些参数一起,所使用设备的质量和效率以及该设备在工厂参考容量方面的尺寸也会影响太阳能设备的产量。为了获得最佳产量,设备的适当尺寸取决于上述大气参数。因此,在设计太阳能光伏电站时非常有必要考虑这些因素。尺寸决定于这些因素的此类设备之一就是逆变器,它决定了工厂的交流输出。逆变器的尺寸会在一段时间内影响太阳能光伏电站的净产量。更高的逆变器选型等于AC与DC比率为1:1的DC容量可能会提高工厂的产量,但从长远来看可能在财务上不可行。另一方面,较低的逆变器尺寸会由于能量上限而降低电厂的能源产量,但会降低电厂的初始投资成本。本文介绍了一种使用能源估算软件和财务模型来选择逆变器尺寸以获得最大财务收益的方法。内部收益率(IRR)用作财务模型,用于检查选择逆变器选型的可行性。该方法已在印度马哈拉施特拉邦的各个地区进行了测试,以获取最佳的逆变器尺寸,并应用于马哈拉施特拉邦拉图尔地区634 kW-DC容量的案例研究工厂。

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