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Support for Power Efficient Proactive Cooling Mechanisms

机译:支持高效节能的主动冷却机制

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Increasing scale of data centers and the density of server nodes pose significant challenges in producing power and energy efficient cooling infrastructures. Current fan based air cooling systems have significant inefficiencies in their operation causing oscillations in fan power consumption and temperature variations among cores. In this paper, we identify the cause these problems and propose proactive cooling mechanisms to mitigate the power peaks and temperature variations. An accurate temperature prediction model lies behind the basis of our solutions. We use a neural network-based modeling approach for predicting core temperatures of different workloads, under different core frequencies, fan speed levels, and ambient temperature. The model provides guidance for our proactive cooling mechanisms. We propose a preemptive and decoupled fan control mechanism that can remove the power peaks in fan power consumption and reduce the maximum cooling power by 53.3% on average as well as energy consumption by 22.4%. Moreover, through our decoupled fan control method and thermal-aware load balancing algorithm, we show that temperature variations in large scale platforms can be reduced from 25 C to 2 C, making cooling systems more efficient with negligible performance overhead.
机译:数据中心规模的扩大和服务器节点的密度的提高在生产电力和能源高效的冷却基础设施方面提出了严峻的挑战。当前的基于风扇的空气冷却系统在其运行中具有明显的低效率,从而导致风扇功率消耗和芯之间的温度变化的振荡。在本文中,我们确定了造成这些问题的原因,并提出了主动的冷却机制来减轻功率峰值和温度变化。准确的温度预测模型是我们解决方案的基础。我们使用基于神经网络的建模方法来预测不同工作负载,不同核心频率,风扇速度水平和环境温度下的核心温度。该模型为我们的主动冷却机制提供了指导。我们提出了一种先占式和解耦式风扇控制机制,可以消除风扇功耗中的功率峰值,并将最大冷却功率平均降低53.3%,并将能耗降低22.4%。此外,通过我们的解耦风扇控制方法和热感知负载平衡算法,我们表明,大型平台中的温度变化可以从25 C降低到2 C,从而使冷却系统效率更高,而性能开销却可以忽略不计。

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