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Rack Thermal Model Prediction Accuracy Improvement by Utilizing Rack Power Consumption as Modelling Feature

机译:通过利用机架功耗作为建模功能来提高机架热模型的预测精度

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In this paper, importance of rack power consumption as modelling feature of data center thermal model is studied. Data center thermal model is utilized to predict rack inlet and outlet temperature distribution in order to control air conditioner operational parameters such as supply/return air temperature, air conditioner indoor unit fan speed etc. Experimental data collection has been performed at a data center in Southern India, consisting of 18 racks and 3 air conditioners. Rack temperature (inlet and outlet at top and middle position), rack power consumption and air conditioner return air temperature data was collected over 4 days. Return air temperature of air conditioner was varied at steps of 21°C, 23°C and 25°C on each day and total rack power consumption was found to be varying between 37.6 kW to 42.2 kW. Thermal model utilizing rack power consumption and air conditioner return air temperature as modelling features can predict rack inlet and outlet temperature with 0.64°C RMS error, showing an improvement of 26.4% over thermal model without rack power consumption and air conditioner return air temperature only as modelling feature. Also, error range reduces to 1.8°C, showing an improvement of 33.3%.
机译:本文研究了机架功耗作为数据中心热模型建模特征的重要性。数据中心热模型用于预测机架的入口和出口温度分布,以控制空调的运行参数,例如供/回风温度,空调室内机风扇速度等。实验数据已在美国南部的数据中心进行过印度,包括18个机架和3个空调。在4天内收集了机架温度(顶部和中间位置的入口和出口),机架功耗和空调回风温度数据。空调的回风温度每天以21°C,23°C和25°C的步长变化,总机架功耗在37.6 kW至42.2 kW之间变化。利用机架功耗和空调回风温度作为建模功能的热模型可以预测机架入口和出口温度,误差为0.64°C RMS,与没有机架功耗和空调回风温度的热模型相比,热模型显示出26.4%的改进建模功能。此外,误差范围降低到1.8°C,显示提高了33.3%。

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