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Game-Theory based dynamic pricing strategies for demand side management in smart grids

机译:基于博弈论的智能电网需求侧管理动态定价策略

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摘要

With the increasing demand for electricity and the advent of smart grids, developed countries are establishing demand side management (DSM) techniques to influence consumption patterns. The use of dynamic pricing strategies has emerged as a powerful DSM tool to optimize the energy consumption pattern of consumers and simultaneously improve the overall efficacy of the energy market. The main objective of the dynamic pricing strategy is to encourage consumers to participate in peak load reduction and obtain respective incentives in return. In this work, a game theory based dynamic pricing strategy is evaluated for Singapore electricity market, with focus on the residential and commercial sector. The proposed pricing model is tested with five load and price datasets to spread across all possible scenarios including weekdays, weekends, public holidays and the highest/lowest demand in the year. Three pricing strategies are evaluated and compared, namely, the half-hourly Real-Time Pricing (RTP), Time-of-Use (TOU) Pricing and Day-Night (DN) Pricing. The results demonstrate that RTP maximizes peak load reduction for the residential sector and commercial sector by 10% and 5%, respectively. Moreover, the profits are increased by 15.5% and 18.7%, respectively, while total load reduction is minimized to ensure a realistic scenario. (C) 2016 Elsevier Ltd. All rights reserved.
机译:随着电力需求的增长和智能电网的出现,发达国家正在建立需求侧管理(DSM)技术来影响消费模式。动态定价策略的使用已成为一种强大的DSM工具,可以优化消费者的能源消耗模式并同时提高能源市场的整体效率。动态定价策略的主要目标是鼓励消费者参与减少高峰负荷并获得相应的奖励作为回报。在这项工作中,针对新加坡电力市场评估了基于博弈论的动态定价策略,重点是住宅和商业领域。提议的定价模型已通过五个负载和价格数据集进行了测试,以分布在所有可能的情况下,包括工作日,周末,公共假期以及一年中最高/最低需求。评估并比较了三种定价策略,即半小时实时定价(RTP),使用时间(TOU)定价和昼夜(DN)定价。结果表明,RTP可使住宅部门和商业部门的最大峰值负荷降低分别达到10%和5%。此外,利润分别增加了15.5%和18.7%,同时最大程度地减少了总负荷减少量,以确保实际可行。 (C)2016 Elsevier Ltd.保留所有权利。

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