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Error estimation in POD-based dynamic reduced-order thermal modeling of data centers

机译:基于POD的数据中心动态降阶热建模中的误差估计

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摘要

A proper orthogonal decomposition (POD)-based reduced-order modeling framework that predicts transient air temperatures in an air-cooled data center is developed. The framework is applied on an initial temperature data set acquired by measurements at discrete time instants. The subsequent data analysis predicts air temperatures for times both inside and outside of the discrete time domain. The predicted temperature data are compared with corresponding experimental observations, and the prediction error is analyzed. An alternative analytical approach is developed for determining the error, and an iteration-based optimization procedure is developed to calibrate the analytical error against the POD-based modeling error. The calibrated analytical error is added to the corresponding POD-predicted temperature data to obtain reliable new temperature data.
机译:建立了一个适当的基于正交分解(POD)的降阶建模框架,该框架可预测空冷数据中心的瞬态空气温度。该框架应用于通过离散时间测量获得的初始温度数据集。随后的数据分析将预测离散时域内部和外部时间的气温。将预测的温度数据与相应的实验观测值进行比较,并分析预测误差。开发了用于确定误差的替代分析方法,并且开发了基于迭代的优化过程以针对基于POD的建模误差校准分析误差。将校准后的分析误差添加到相应的POD预测温度数据中,以获得可靠的新温度数据。

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