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Swarm intelligence-based distributed stochastic model predictive control for transactive operation of networked building clusters

机译:基于群体智能的网络建筑集群主动运行的分布式随机模型预测控制

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摘要

To maximize potential energy and cost savings, networked clusters of local buildings are formed for energy transactions. Both centralized and distributed decision approaches were explored in past decades as a way to enable efficient transactive operations. However, online distributed stochastic transactive operation has been overlooked in the literature. To bridge gaps in the research, a bi-level distributed stochastic model predictive control framework was proposed to study the transactive operations of building clusters where a system-level agent is employed to coordinate multiple building agents at the subsystem level. The energy transaction is optimized by a marginal price-based particle swarm optimizer at the system level. Given the energy transaction decisions, each building can independently solve a scenario-based two-stage stochastic model to optimally dispatch the electricity and ancillary services for optimal energy performance. The effectiveness of the proposed framework and coordination algorithm are demonstrated in deterministic, stochastic, and online operations and compared to centralized decisions using several sets of experiments. In addition, the proposed approach can realize autonomous transactive operation and be extended to community-level building clusters in a plug-and-play way. (C) 2019 Elsevier B.V. All rights reserved.
机译:为了最大程度地节省潜在的能源和成本,形成了本地建筑物的网络集群以进行能源交易。在过去的几十年中,集中式和分布式决策方法都得到了探索,以实现高效的交互式操作。但是,在线分布式随机交易操作在文献中已被忽略。为了弥补研究中的空白,提出了一种双层分布式随机模型预测控制框架来研究建筑集群的交互操作,其中系统级代理用于在子系统级别协调多个建筑代理。能源交易由基于边际价格的粒子群优化器在系统级别进行优化。给定能源交易决策,每个建筑物都可以独立求解基于情景的两阶段随机模型,以优化调度电力和辅助服务,以实现最佳能源性能。所提出的框架和协调算法的有效性在确定性,随机和在线操作中得到了证明,并与使用几组实验的集中决策进行了比较。此外,所提出的方法可以实现自主的交互操作,并以即插即用的方式扩展到社区级建筑群。 (C)2019 Elsevier B.V.保留所有权利。

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