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Optimal Demand Response in a building by Battery and HVAC scheduling using Model Predictive Control

机译:使用模型预测控制通过电池和HVAC调度实现建筑物的最佳需求响应

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The objective of this project is to develop a load forecasting technique and demand management algorithm for a building to schedule battery and Heating Ventilation Air Conditioning system (HVAC) using the Model Predictive Control (MPC). Behind-the-meter energy storage is used for modifying the load shape and minimizing the demand charge of a building. Thermal mass of the building can also be utilized to store the heat/cool energy and HVAC is scheduled to minimize power consumption during peak times. This paper optimizes the battery schedule to minimize the monthly electricity bill. The load profile has to be forecasted and this algorithm uses a two-part forecaster where a deterministic part uses exponentially weighted moving average (EWMA) model accounting for longer term trends and a second order regression model (AR2) accounting for the short term variations. A novel mathematical model has been proposed for calculating HVAC power consumption with a given thermostat schedule. Greater savings can be realized by augmenting this algorithm with HVAC scheduling and authors are working on it minimize HVAC power consumption during peak hours without causing thermal discomfort to the residents of the building.
机译:该项目的目的是为建筑物开发负荷预测技术和需求管理算法,以使用模型预测控制(MPC)调度电池和供暖通风空调系统(HVAC)。仪表背后的储能器用于修改负载形状并最小化建筑物的需求费用。建筑物的热质量也可以用来存储热/冷能,HVAC的计划是在高峰时段最大程度地减少能耗。本文优化了电池计划,以最大限度地减少每月电费。必须预测负载曲线,此算法使用两部分式预测器,其中确定性部分使用考虑长期趋势的指数加权移动平均(EWMA)模型,并考虑短期变化的二次回归模型(AR2)。已经提出了一种新颖的数学模型,用于在给定的恒温器时间表下计算HVAC功耗。通过将这种算法与HVAC调度配合使用,可以实现更大的节省,并且作者正在努力在高峰时段将HVAC功耗降至最低,而不会引起建筑物居民的热不适。

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