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A modeling framework for optimization-based control of a residential building thermostat for time-of-use pricing

机译:使用模型的框架,用于基于优化的住宅温度调节器的使用时间定价

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摘要

Heating, ventilation and air conditioning for residential and commercial buildings requires a substantial share of electric energy, and ultimately drives summer peak demand in the United States. Variable electric rates are becoming more common in the residential market, as utilities try to encourage users to shift their energy demand. Model predictive controls, one method of reducing energy usage, employ an optimization model to minimize peak demand, energy usage, or electricity costs. This paper details the development of a co-simulation framework to rapidly model and simulate building energy use and optimize cooling setpoint controls. The framework integrates commercially available software to: (i) simulate all energy interactions between the building, internal gains, outdoor environment, and heating and cooling systems via a building energy simulation program (EnergyPlus), (ii) algebraically formulate an optimization problem (with AMPL) using a black-box, reduced-order model for rapid calculations, (iii) employ Simulink as the environment that links calls to EnergyPlus and AMPL, and (iv) solve the optimization model (with CPLEX) to minimize electricity costs and user discomfort. Variable electric time-of-use rates are analyzed in the context of total cooling electricity costs, thermal comfort of users, and peak demand shedding. The framework uses a model predictive control formulation capable of reducing cooling electricity costs by up to 30%; however, cost savings and peak demand shedding are highly dependent on the time-of-use electricity rate schedule.
机译:住宅和商业建筑的供暖,通风和空调需要大量电能,最终导致美国夏季需求高峰。随着公用事业试图鼓励用户改变能源需求,可变电价在住宅市场中变得越来越普遍。预测模型控制是减少能耗的一种方法,它采用优化模型来最大程度地减少峰值需求,能耗或电费。本文详细介绍了一种协同仿真框架的开发,以快速建模和模拟建​​筑能耗并优化制冷设定点控制。该框架集成了可商购的软件,以:(i)通过建筑能源模拟程序(EnergyPlus)模拟建筑物,内部增益,室外环境以及供暖和制冷系统之间的所有能源相互作用,(ii)代数表示优化问题(包括AMPL)使用黑匣子,低阶模型进行快速计算;(iii)使用Simulink作为将呼叫链接到EnergyPlus和AMPL的环境,以及(iv)解决优化模型(使用CPLEX)以最小化电费和用户不适。在总的冷却用电成本,用户的热舒适性和高峰需求减少的背景下,分析了可变的用电时间率。该框架使用模型预测控制公式,能够将冷却用电成本降低多达30%;但是,成本节省和高峰需求减少在很大程度上取决于使用时间的电价表。

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