使用增强型SCA将可再生能源整合到智能电网中

IF 2 4区 计算机科学 Q2 Computer Science
S. Karimulla, K. Ravi
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引用次数: 1

摘要

由于人口的迅速增长,日常生活中能源的使用量日益增加。一种解决办法是增加发电量,使其与人口增长同步,但这通常是不可能的。随着人口的增长,对电力的需求也在增加。因此,智能电网在有效利用太阳能、风能和电池存储系统等现有能源方面发挥着重要作用。通过管理需求,最大限度地减少电力消耗和随之而来的成本。在负荷方面,住宅和商业类型使用了可再生能源产生的大量能源。因此,在这项工作中,我们使用需求侧管理(DSM)来安排各种设备的负荷,以尽量减少能源消耗。智能电网在可再生能源的整合和能源成本(COE)的最小化方面发挥着重要作用。智能电表,如先进的计量基础设施,也用于减少负载需求。因此,本文提出了一种增强正弦余弦算法(ESCA)来解决优化问题。建议的方法包括住宅和商业类型的负荷。该方法考虑了与遗传算法和蚁群算法的比较。利用MATLAB软件进行仿真。结果表明,与遗传算法和蚁群算法相比,增强正弦余弦算法(ESCA)在最小化能量成本方面表现最好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integration of Renewable Energy Sources into the Smart Grid Using Enhanced SCA
The usage of energy in everyday life is growing day by day as a result of the rapid growth in the human population. One solution is to increase electricity generation to the same extent as the human population, but this is usually practically impossible. As the population is increasing, the need for electrical usage is also increasing. Therefore, smart grids play an important role in making efficient use of existing energy sources like solar, wind and battery storage systems. By managing demand, the minimization of power consumption and its consequent costs. On the load side, residential and commercial types use a large amount of the total energy produced by renewable energy sources. As a result, in this work, we use DSM (Demand-side Management) to schedule various appliances on loads to minimize energy consumption. Smart grid plays a major role in the integration of renewable energy sources as well as in the minimization of cost of energy (COE). Smart meters like advanced metering infrastructure are also used to reduce load demand. Therefore, in this work, an Enhanced sine cosine algorithm (ESCA) is proposed to solve the optimization problem. The proposed method consists of loads like residential and commercial types. The proposed method considered the comparison with the Genetic Algorithm (GA) and Ant colony optimization (ACO). Simulation results were carried out by using MATLAB software. The results show the Enhanced sine cosine algorithm (ESCA) is best when compared to other algorithms like GA and ACO in the minimization of the cost of energy.
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来源期刊
Intelligent Automation and Soft Computing
Intelligent Automation and Soft Computing 工程技术-计算机:人工智能
CiteScore
3.50
自引率
10.00%
发文量
429
审稿时长
10.8 months
期刊介绍: An International Journal seeks to provide a common forum for the dissemination of accurate results about the world of intelligent automation, artificial intelligence, computer science, control, intelligent data science, modeling and systems engineering. It is intended that the articles published in the journal will encompass both the short and the long term effects of soft computing and other related fields such as robotics, control, computer, vision, speech recognition, pattern recognition, data mining, big data, data analytics, machine intelligence, cyber security and deep learning. It further hopes it will address the existing and emerging relationships between automation, systems engineering, system of systems engineering and soft computing. The journal will publish original and survey papers on artificial intelligence, intelligent automation and computer engineering with an emphasis on current and potential applications of soft computing. It will have a broad interest in all engineering disciplines, computer science, and related technological fields such as medicine, biology operations research, technology management, agriculture and information technology.
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