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Exploiting Multi-Verse Optimization and Sine-Cosine Algorithms for Energy Management in Smart Cities

机译:利用多韵的优化和正弦余弦算法在智能城市中的能源管理

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摘要

Due to the rapid increase in human population, the use of energy in daily life is increasing day by day. One solution is to increase the power generation in the same ratio as the human population increase. However, that is usually not possible practically. Thus, in order to use the existing resources of energy efficiently, smart grids play a significant role. They minimize electricity consumption and their resultant cost through demand side management (DSM). Universities and similar organizations consume a significant portion of the total generated energy; therefore, in this work, using DSM, we scheduled different appliances of a university campus to reduce the consumed energy cost and the probable peak to average power ratio. We have proposed two nature-inspired algorithms, namely, the multi-verse optimization (MVO) algorithm and the sine-cosine algorithm (SCA), to solve the energy optimization problem. The proposed schemes are implemented on a university campus load, which is divided into two portions, morning session and evening session. Both sessions contain different shiftable and non-shiftable appliances. After scheduling of shiftable appliances using both MVO and SCA techniques, the simulations showed very useful results in terms of energy cost and peak to average ratio reduction, maintaining the desired threshold level between electricity cost and user waiting time.
机译:由于人口的迅速增加,日常生活中的能量在一天日益增加。一种解决方案是随着人口的增加,将发电量增加相同的比例。但是,通常不可能实际上是不可能的。因此,为了有效地使用现有的能量资源,智能网格发挥着重要作用。它们通过需求侧管理(DSM)最小化电力消耗及其所产生的成本。大学和类似组织消耗总产生能量的重要部分;因此,在这项工作中,使用DSM,我们预定了大学校园的不同设备,以降低消耗的能源成本和可能的峰值到平均功率比。我们提出了两个自然启发算法,即多节能优化(MVO)算法和正弦余弦算法(SCA),以解决能量优化问题。拟议的计划是在大学校园负荷上实施,分为两部分,早上会议和晚间会议。两次会话都包含不同的可移动和不可移动的设备。在使用两个MVO和SCA技术的可移动设备调度之后,模拟在能量成本和峰值降低到平均比率方面非常有用,维持电力成本和用户等待时间之间所需的阈值水平。

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