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Integration of Building Inertia Thermal Energy Storage into Smart Grid Control

机译:将建筑惯性热能存储集成到智能电网控制中

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A building’s structural mass does provide inherent thermal storage capabilities. Through the application of sector coupling energy resources, e.g., combined heat and power plants or power-to-heat, the building mass can provide flexibility to the electric power system. Within this work, a mathematical model of a building inertia thermal energy storage is proposed to allow integration into optimized smart grid control for real-world applications. It is shown how necessary model parameters can be obtained using multiple linear regression based on measurable building data. Thereby, the nonlinear characteristics of external conditions influencing the storage operation, such as outside temperature and solar irradiation, are transformed into weighted linear factors. The possibility of the ceiling surface temperature serving as a proxy for measuring the current state of energy is demonstrated. This allows real-world implementation using minimal additional hardware. Within a case study, the potential of using building storage in optimized smart grid control with sector coupling assets of a Virtual Power Plant is analyzed. The utilization of building storage compared to conventionally used hot water tanks is presented, and cost benefits for both Virtual Power Plant and building operator are shown.
机译:建筑物的结构质量确实提供了固有的热存储功能。通过应用扇区耦合能量资源,例如,组合热量和发电厂或电力 - 热量,建筑物质量可以为电力系统提供灵活性。在这项工作中,提出了建筑物惯性热能存储的数学模型,以允许集成到真实应用的优化智能电网控制中。示出了基于可测量的建筑数据使用多个线性回归可以获得型号参数的必要型参数。由此,影响存储操作的外部条件的非线性特性,例如外部温度和太阳照射,转化为加权线性因子。证明了用作测量电流能量状态的顶板表面温度的可能性。这允许使用最小的附加硬件实现现实世界。在一个案例研究中,分析了利用虚拟电厂的扇区耦合资产在优化的智能电网控制中使用建筑物存储的潜力。展示了与常规使用的热水箱相比的建筑储存的利用,并显示了虚拟电厂和建筑操作员的成本效益。

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