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A real-time cyber-physical energy management system for smart houses

机译:用于智能房屋的实时网络物理能源管理系统

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The substitution of non-renewable energy by renewable energy as electricity supply is an emerging trend for development of smart houses nowadays. For example, solar photovoltaic (PV) panels, rechargeable batteries, external power supply, and power-consuming houses have formed a distributed micro-smart-grid. The traditional energy management system (EMS) for such a micro-smart-grid is, however, based on static demand model. As such, the resource (solar energy) cannot be optimally allocated to each house with real-time adjustment when the battery profile is different. In order to achieve high utilization rate of solar-energy, we propose a cyber-physical controller for real-time EMS of smart houses in this paper. Based on physically sensed battery profile, one cyber-physical controller enables the resource to be shared between different houses. The micro-smart-grid is modeled by decentralized multi-supplier and multi-customer system. The proposed real-time EMS is formulated based on the modified minority-game (MG) algorithm such that the task (or EU load) can be allocated with balanced distribution and hence improved utilization rate. The experiment results show that the proposed EMS can increase the solar energy utilization rate by 12.78% on average (up to 20%) when compared to the traditional design under the static demand model. Moreover, the load balancing of tasks (or customers) on each battery (or supplier) is significantly improved. For example, the average standard deviation of the load of tasks on batteries in each month is reduced from 45.36 KWh (static demand model) to 5.19 KWh (proposed model). The improved load balancing can further prolong lifetime of batteries.
机译:用可再生能源代替不可再生能源作为电力供应,是当今智能住宅发展的新兴趋势。例如,太阳能光伏(PV)面板,可充电电池,外部电源和耗电房屋已经形成了分布式微型智能电网。但是,用于这种微型智能电网的传统能源管理系统(EMS)是基于静态需求模型的。因此,当电池配置文件不同时,无法通过实时调整将资源(太阳能)最佳地分配给每个房屋。为了实现太阳能的高利用率,本文提出了一种用于智能住宅实时EMS的网络物理控制器。基于物理感应的电池配置文件,一个网络物理控制器使资源可以在不同房屋之间共享。微型智能电网由分散的多供应商和多客户系统建模。提出的实时EMS是基于改进的少数博弈(MG)算法制定的,从而可以平衡分配任务(或EU负载),从而提高利用率。实验结果表明,与静态需求模型下的传统设计相比,拟建的EMS可以平均提高太阳能利用率12.7%(最高20%)。而且,显着改善了每个电池(或供应商)上任务(或客户)的负载平衡。例如,每个月电池任务负荷的平均标准偏差从45.36 KWh(静态需求模型)降低到5.19 KWh(建议模型)。改进的负载平衡可以进一步延长电池寿命。

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