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Optimization of photovoltaic penetration with DSTATCOM in distribution systems

机译:使用DSTATCOM优化配电系统中的光伏渗透

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摘要

The penetration level of a PV system is often limited due to the violation of voltage variation introduced by the large intermittent power generation. This paper discusses the use of distribution static compensator (DSTATCOM) to compensate reactive power during peak solar irradiation to prevent voltage violation so that the PV penetration level of a distribution feeder can be increased to fully utilize solar energy. The PV power generation is simulated according to the hourly solar irradiation and temperature data provided by the weather bureau. The voltage variation at the point of common coupling (PCC) is also derived by executing the 3-ϕ; load flow analysis to investigate the maximum PV power injection without causing a voltage violation problem. When using the proposed voltage control scheme of the DSTATCOM during high solar irradiation periods, the total power generation and total energy delivered by the PV system over a 1-year period are determined according to the annual duration of solar irradiation. The annual cash flow from sales of PV power, the DSTATCOM installation cost, the O&M cost over the system life cycle, and the capital investment in the PV system are then used to calculate the net present value (NPV) of the PV project. With the proposed voltage control to perform reactive power compensation of the DSTATCOM, the optimal installation capacity of PV systems can be determined by maximizing the net present value of the system so that better cost effectiveness of the PV project and better utilization of solar energy can be obtained.
机译:由于违反了大型间歇性发电所产生的电压变化,PV系统的渗透水平通常受到限制。本文讨论了使用配电静态补偿器(DSTATCOM)来补偿太阳能峰值照射期间的无功功率,以防止电压违规,从而可以提高配电馈线的PV穿透水平,以充分利用太阳能。根据每小时的太阳辐射量和气象局提供的温度数据模拟光伏发电。通过执行3-φ,还可以得出公共耦合点(PCC)的电压变化。潮流分析以调查最大的PV功率注入而不会引起电压违规问题。当在高太阳辐射期间使用DSTATCOM的建议电压控制方案时,将根据太阳辐射的年持续时间来确定1年期间PV系统的总发电量和总能量。光伏发电的年度现金流量,DSTATCOM安装成本,系统生命周期中的运维成本以及光伏系统的资本投资,然后用于计算光伏项目的净现值(NPV)。通过建议的电压控制来执行DSTATCOM的无功功率补偿,可以通过最大化系统的净现值来确定光伏系统的最佳安装容量,从而可以提高光伏项目的成本效益和太阳能的利用率。获得。

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