微电网热电联产系统可靠性与不确定度的确定

M. Mohseni
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引用次数: 0

摘要

今天,由于能源消耗的增加和微电网中越来越多地使用分布式发电机组(DG),如热电联产和燃料电池(FC)机组,有必要在最佳条件下使用它们。使用分布式发电机组,其主要安装在小尺寸和配电网的负荷侧,可以提供其他好处,包括减少电力传输损失,提高生产效率,提高可靠性带来的同时,使用电和热同时生产的机组,这是最广泛使用的分布式生产机组之一。通过同时发电和供热,在很大程度上提高了能源生产的效率,从而降低了能源故障的成本。因此,本文的目标是降低生产成本和能源供应不足的成本,提高系统的可靠性。本文对样本微电网的工作模式进行了评估,最后对一个多目标函数进行了优化,该函数的目标包括每个分布式生产源的经济生产、微电网提供电能和热能的成本最小化、电能和热能损失最小化、负荷响应方案和储能方案。通过对不同工况和状态下的电热电联产机组容量和数量的优化规划结果表明,采用电热电联产机组对减少供能不足、提高系统可靠性具有重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reliability and Uncertainty Determination of a Combined Heat and Power in Microgrid Systems
Today, due to the increase in energy consumption and the increasing use of distributed generation units (DG) such as CHP and fuel cell (FC) units in microgrids, it is necessary to use them in the best possible conditions. The use of distributed generation units, which are mainly installed in small dimensions and on the load side of the distribution network, can provide other benefits, including reducing power transmission losses, increasing production efficiency, and increasing reliability to bring the meantime, the use of electricity and heat simultaneous production units, which are among the most widely used distributed production units, has improved the efficiency of energy production to a great extent by producing electricity and heat simultaneously, thus reducing the costs of energy failure. Therefore, in this paper, the goal is to reduce the cost of production and the cost of lack of energy supply and increase the reliability of the system. In this paper, the working modes of the sample microgrid are evaluated, and finally, the optimization of a multi-objective function, which has goals such as the economical production of each of the distributed production sources, the minimization of the cost of providing the electric and thermal energy of the microgrid, the minimization losses of electrical and thermal energy, load response program and energy storage program. The results of optimal planning of the capacity and number of co-generation units of electricity and heat under different conditions and states show the great effect of using co-generation units of electricity and heat in reducing unsupplied energy and increasing the reliability of the system.
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