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Demand-side Management of Residential Service Area Under Price-based Demand Response Program in Smart Grid

机译:基于价格的智能电网需求响应程序下的居民服务区需求侧管理

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Grid extension and construction of additional power plants based on conventional fuels are becoming a challenge to meet ramping-up load demand. This becomes more pressing especially in cost and time constraints. In order to alleviate these issues and bridge the gap of demand with supply, demand-side management (DSM) in the smart grid (SG) is considered as an effective solution. In this paper, DSM is performed through residential load-scheduling with the help of an energy management controller (EMC). The EMC introduced for residential load-scheduling is based on heuristic algorithms like; binary particle swarm optimization (BPSO), genetic algorithm (GA), and hybrid genetic BPSO (HGBPSO). The proposed heuristic-based EMC performs DSM by scheduling residential load under day-ahead price-based demand response (DR) program. The proposed scheme optimally performs DSM and results in an acceptable reduction of electricity cost, peak to average ratio (PAR), CO2 emission, and user-discomfort all at once. Simulation results validate that HGBPSO-based EMC outperforms BPSO and GA-based EMC in the matter of management. The proposed scheme is highly suitable for real-life management of residential service in SG.
机译:为了满足不断增长的负荷需求,电网扩展和基于传统燃料的其他电厂的建设正成为一项挑战。特别是在成本和时间限制方面,这变得更加紧迫。为了缓解这些问题并缩小需求与供应之间的差距,智能电网(SG)中的需求侧管理(DSM)被认为是一种有效的解决方案。在本文中,DSM是通过在能源管理控制器(EMC)的帮助下通过住宅负荷调度来执行的。引入的用于住宅负荷调度的EMC基于启发式算法,例如;二元粒子群优化(BPSO),遗传算法(GA)和混合遗传BPSO(HGBPSO)。拟议的基于启发式的EMC通过基于日前基于价格的需求响应(DR)计划来调度住宅负载来执行DSM。拟议的方案可以最佳地执行DSM,并导致可接受的电力成本降低,峰均比(PAR),CO 2 发射和用户不适感。仿真结果证明,在管理方面,基于HGBPSO的EMC优于基于BPSO和GA的EMC。所提出的方案非常适合于新加坡的住宅服务的现实生活管理。

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