论文标题

HVAC系统对纳米醇的双向定价和需求响应

Bidirectional Pricing and Demand Response for Nanogrids with HVAC Systems

论文作者

Cao, Jiaxin, Yang, Bo, Zhu, Shanying, Ma, Kai, Guan, Xinping

论文摘要

由于可再生能源的产生和功率需求,每种纳米醇的能量盈余或缺陷在随时间的过程中都会不同。为了刺激当地可再生能源消耗并最大程度地减少长期能源成本,仍然有待探索一些问题:考虑到个人舒适的偏好和环境因素,安排了能源需求和双向交易价格何时以及如何计划。为此,研究了对纳米醇和公共监测实体(PME)同时的需求响应和双向定价问题,并利用了加热,通风和空调(HVAC)单元的巨大潜在热弹性能力。与纳米醇不同,在最小化时间平均成本方面,PME的目标是通过与纳米格莱斯进行交易和主要网格双向设定合理的价格并优化利润。特别是,在长期的视野中,这种二聚体能量管理问题被提出为随机形式。由于有不确定的系统参数,时间耦合的队列约束和二重性决策的相互作用,因此解决配方的问题是一项挑战。为此,我们得出了一种基于Lyapunov优化技术的放松形式,以使能量管理问题可处理,而无需预测相关的系统参数。纳米格里德斯和PME之间的交易是由一个单线领导者和多游行者Stackelberg游戏框架捕获的。然后,根据提议的游戏属性开发了对Stackelberg平衡(SE)的存在和独特性的理论分析。在此之后,我们设计了一种优化算法,以更少的信息交换来达到SE。数值实验验证了所提出的方法的有效性。

Owing to the fluctuant renewable generation and power demand, the energy surplus or deficit in each nanogrid is embodied differently across time. To stimulate local renewable energy consumption and minimize the long-term energy cost, some issues still remain to be explored: when and how the energy demand and bidirectional trading prices are scheduled considering personal comfort preferences and environmental factors. For this purpose, the demand response and two-way pricing problems concurrently for nanogrids and a public monitoring entity (PME) are studied with exploiting the large potential thermal elastic ability of heating, ventilation and air-conditioning (HVAC) units. Different from nanogrids, in terms of minimizing time-average costs, PME aims to set reasonable prices and optimize profits by trading with nanogrids and the main grid bi-directionally. In particular, such bilevel energy management problem is formulated as a stochastic form in a long-term horizon. Since there are uncertain system parameters, time-coupled queue constraints and the interplay of bilevel decision-making, it is challenging to solve the formulated problems. To this end, we derive a form of relaxation based on Lyapunov optimization technique to make the energy management problem tractable without forecasting the related system parameters. The transaction between nanogrids and PME is captured by a one-leader and multi-follower Stackelberg game framework. Then, theoretical analysis of the existence and uniqueness of Stackelberg equilibrium (SE) is developed based on the proposed game property. Following that, we devise an optimization algorithm to reach the SE with less information exchange. Numerical experiments validate the effectiveness of the proposed approach.

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