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Demand side management in mixed residential/commercial buildings with PV on site generation

机译:利用现场光伏发电的住宅/商业混合建筑的需求侧管理

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Buildings with mixed residential and commercial units show relevant power peak that re further enhanced by shifting to electric source of nowadays gas-driven systems. The proposed solution is to organize a microgrid for such kind of buildings, aggregating different users with a common electric distribution system with a unique connection to the grid, a local common generation and a common heating/cooling system (electric-driven). This approach upgrades a group of independent several small users with rigid loads and chaotic behavior, to a large user with a flexible and controlled profile. A central building automation control system (BACS) managing all built-in technical systems and smart appliances may control load minute by minute, shifting in time plannable and controllable ones merging different kinds of load, obtaining a flatter diagram. The authors consider the suggested approach convenient to realize demand side management (DSM) for residential/commercial buildings. DSM exploits the flexibility of smart appliances and the thermal inertia of the structure, by imposing local and central set-points of heating and cooling systems according to the actual global net load and generation at a given moment. In the present paper, main aspects of the proposed control system are presented and simulations for a given case study with local PV generation are provided. Results show that this approach may lead to power peak reduction up to 20% even in the unfavorable case of combining commercial and residential units. Moreover, full self-consumption of locally generated energy from RES may be achieved.
机译:住宅和商业单位混合的建筑物显示出相关的功率峰值,通过转换为当今的气体驱动系统的电源,功率峰值得以进一步增强。提出的解决方案是为此类建筑物组织一个微电网,将具有独特连接电网的公用配电系统,本地公用发电系统和公用供暖/制冷系统(电力驱动)的用户聚集在一起。这种方法将具有刚性负载和混乱行为的一组独立的几个小型用户升级为具有灵活且受控的配置文件的大型用户。管理所有内置技术系统和智能设备的中央楼宇自动化控制系统(BACS)可以一分钟一分钟地控制负载,将合并各种负载的可计划和可控制的时间转移,以获得更扁平的图表。作者认为,建议的方法可方便地实现住宅/商业建筑的需求侧管理(DSM)。 DSM通过根据给定时刻的实际全局净负荷和发电量施加加热和冷却系统的局部和中央设定点,来利用智能设备的灵活性和结构的热惯性。在本文中,提出了所提出的控制系统的主要方面,并提供了针对具有局部光伏发电的给定案例研究的仿真。结果表明,即使在组合商用和住宅单元的不利情况下,这种方法也可能导致功率峰值降低高达20%。而且,可以实现来自RES的本地产生的能量的完全自消耗。

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