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Grey-box Modelling of a Household Refrigeration Unit Using Time Series Data in Application to Demand Side Management

机译:基于时间序列数据的家用制冷机组灰箱建模在需求侧管理中的应用

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摘要

This paper describes the application of stochastic grey-box modeling to identify electrical power consumption-to-temperature models of a domestic freezer using experimental measurements. The models are formulated using stochastic differential equations (SDEs), estimated by maximum likelihood estimation (MLE), validated through the model residuals analysis and cross-validated to detect model over-fitting. A nonlinear model based on the reversed Carnot cycle is also presented and included in the modeling performance analysis. As an application of the models, we apply model predictive control (MPC) to shift the electricity consumption of a freezer in demand response experiments, thereby addressing the model selection problem also from the application point of view and showing in an experimental context the ability of MPC to exploit the freezer as a demand side resource (DSR).
机译:本文介绍了随机灰箱建模在通过实验测量来确定家用冰箱的电耗-温度模型中的应用。使用随机微分方程(SDE)制定模型,通过最大似然估计(MLE)进行估计,通过模型残差分析进行验证,并进行交叉验证以检测模型的过度拟合。还提出了基于反向卡诺循环的非线性模型,并将其包括在建模性能分析中。作为模型的应用,我们在需求响应实验中应用模型预测控制(MPC)来改变冰箱的耗电量,从而从应用的角度解决模型选择问题,并在实验环境中展示模型的能力。 MPC将冷冻机用作需求侧资源(DSR)。

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