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Global optimum economic designing of grid-connected photovoltaic systems with multiple inverters using binary linear programming

机译:使用二进制线性规划具有多个逆变器网格连接光伏系统的全局最佳经济设计

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Nowadays, grid-connected photovoltaic (GCPV) system is known as a top leading technology among all resources. However, it still suffers from drastic investment costs. Detailed economic studies should be conducted in this regard to make this technology as gainful as possible. A practical approach is the "optimum economic design", trying to find an electrically possible layout, i.e. number of series modules and parallel strings as well as the inverter number with the highest profit. This problem is inherently an quadratic integer programming owing to the multiplication of two integer variables in its objective function and some technical constraints. This nonlinear problem should be solved by exhaustive search methods, including comparative and evolutionary algorithms (EAs) such as particle swarm optimization (PSO) and genetic algorithm (GA). In this paper, a new formulation based on the definition of new binary variables has been proposed to convert this problem to the binary linear programming (BLP). The provided method finds the global optimum solution in a scale of seconds while EAs have to be run numerous times in a scale of hours to reach a sufficiently good answer. Moreover, although current methodologies are rarely covered GCPV systems with multiple inverter types, this formulation can be easily developed for systems with several inverter types. The simulations of a 1.1 MW power plant system endorse that the output design provided by the proposed method assures 95,000 $ (1.94%) higher profit compared with those presented by GA. The sensitivity analysis, provided for the prototype system by the efficient new algorithm, also unveils it is economically viable for even 52% of the current feed-in tariff, 40% energy generation lower than the estimated value and 1.1 $/W price rise for the initial investment.
机译:如今,网格连接的光伏(GCPV)系统被称为所有资源中的主要领先技术。但是,它仍然存在剧烈的投资成本。应在这方面进行详细的经济研究,使这项技术尽可能有利。一种实用的方法是“最佳经济设计”,试图找到电气可能的布局,即系列模块和并联字符串的数量以及具有最高利润的逆变器号。由于两个整数变量在其目标函数和一些技术限制中,此问题本质上是一种二次整数编程。该非线性问题应通过详尽的搜索方法来解决,包括比较和进化算法(EAS),例如粒子群优化(PSO)和遗传算法(GA)。本文已经提出了一种基于新二元变量定义的新配方,以将该问题转换为二进制线性编程(BLP)。提供的方法以秒为单位找到全局最佳解决方案,而EAS必须在小时的规模中运行多次以达到足够好的答案。此外,虽然目前的方法很少覆盖具有多种逆变器类型的GCPV系统,但这种配方可以很容易地开发用于具有多种逆变类型的系统。 1.1 MW发电厂系统的模拟认可,该方法提供的输出设计通过GA呈现的那些确保了95,000美元(1.94%)的利润。通过高效的新算法为原型系统提供的灵敏度分析,也推出了甚至52%的当前饲料关税的经济上可行,低于估计值的40%,而且价格上涨1.1美元初始投资。

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