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Calibrating models for MPC of energy systems in buildings using an adjoint-based sensitivity method

机译:使用基于伴随的灵敏度方法对建筑物能源系统的MPC进行校准的模型

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For several years, Model Predictive Control (MPC) is depicted in the literature as a promising way to increase buildings' energy efficiency during operation. This model-based control technique uses the optimal control theory to provide a constraint compliant, anticipative control, maximizing performance criteria. However, building and calibrating a reliable model for a real application is difficult, costly and time-consuming. Indeed, it requires hard expert work to retrieve all the building's data and tune the corresponding model. This prevents MPC to be widespread in Building Management Systems.In this paper, we propose a MPC formulation where all the optimization problems included in a MPC strategy (calibration, estimation, optimal control) are performed efficiently using gradient-based techniques and adjoint-based gradient computations. This formulation relies on an automated "white-box" modeling technique (with partial-differential equations) using Building Information Model (BIM - using gbXML standard here) files parsing. We also show that making extensive use of adjoint models in MPC opens opportunities for fast sensitivity analysis, which can, for instance, help to choose which parameters to calibrate. (C) 2019 Elsevier B.V. All rights reserved.
机译:多年来,文献中将模型预测控制(MPC)描述为提高建筑物运行过程中能效的一种有前途的方法。这种基于模型的控制技术使用最佳控制理论来提供符合约束的预期控制,从而最大化性能标准。然而,为实际应用建立和校准可靠模型是困难,昂贵和费时的。确实,需要艰苦的专家工作来检索建筑物的所有数据并调整相应的模型。这阻止了MPC在建筑物管理系统中的广泛传播。在本文中,我们提出了一种MPC公式,其中使用基于梯度的技术和基于伴随的方法有效地执行了MPC策略中包括的所有优化问题(校准,估计,最优控制)。梯度计算。此公式依赖于使用建筑物信息模型(BIM-在这里使用gbXML标准)文件解析的自动“白盒”建模技术(具有偏微分方程)。我们还表明,在MPC中大量使用伴随模型为快速灵敏度分析提供了机会,例如,它可以帮助选择要校准的参数。 (C)2019 Elsevier B.V.保留所有权利。

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