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Customizable Energy Management in Smart Buildings Using Evolutionary Algorithms

机译:使用进化算法的智能建筑中的可定制能源管理

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Various changes in energy production and consumption lead to new challenges for design and control mechanisms of the energy system. In particular, the intermittent nature of power generation from renewables asks for significantly increased load flexibility to support local balancing of energy demand and supply. This paper focuses on a flexible, generic energy management system for Smart Buildings in real-world applications, which is already in use in households and office buildings. The major contribution is the design of a "plug-and-play"-type Evolutionary Algorithm for optimizing distributed generation, storage and consumption using a sub-problem based approach. Relevant power consuming or producing components identify themselves as sub-problems by providing an specification of their genotype, an evaluation function and a back transformation from an optimized genotype to specific control commands. The generic optimization respects technical constraints as well as external signals like variable energy tariffs. The relevance of this approach to energy optimization is evaluated in different scenarios. Results show significant improvements of self-consumption rates and reductions of energy costs.
机译:能源生产和消费的各种变化给能源系统的设计和控制机制带来了新的挑战。特别是,可再生能源发电的间歇性要求显着提高负荷灵活性,以支持能源需求和供应的本地平衡。本文着重于面向现实应用中的智能建筑的灵活,通用的能源管理系统,该系统已在家庭和办公楼中使用。主要的贡献是“即插即用”类型的进化算法的设计,该算法使用基于子问题的方法来优化分布式生成,存储和消耗。相关的功耗或生产组件通过提供其基因型规范,评估功能以及从优化的基因型到特定控制命令的反向转换,将自身标识为子问题。通用优化遵循技术约束以及诸如可变能源费率之类的外部信号。在不同的场景中评估了这种方法与能源优化的相关性。结果显示自耗率显着提高,能源成本降低。

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