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The Performance Impact of Integrating Water Storage Into a Chiller-Less Data Center Design

机译:将蓄水池集成到更少的冷却器数据中心设计中的性能影响

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Data centers consume an extraordinary amount of electricity, and the rate of consumption is increasing at a rapid pace. Thus, energy efficiency in data center design is of substantial interest since it can have a significant impact on operating costs. The server cooling infrastructure is one area which is ripe for design innovation. Various designs have been considered for air-cooled data centers, and there is growing interest in liquid-cooled server designs. One potential liquid-cooled solution, which reduces the cost of cooling to less than 5% of the information technology (IT) energy use, is a chiller-less or warm water-cooled system, which removes the chiller from the design and lets the cooling water supply vary with changes in the outdoor ambient conditions. While this design has been proven to work effectively in some locations, environmental extremes prevent its more widespread implementation. In this paper, the design and analysis of a cold water storage system are shown to extend the applicability of chiller-less designs to a wider variety of environmental conditions. This can lead to both energy and economic savings f or a wide variety of data center installations. A numerical model of a water storage system is developed, validated, and used to analyze the impact of a water storage tank system in a chiller-less data center design featuring outdoor wet cooling. The results show that during times of high wet bulb operating conditions, a water storage tank can be an effective method to significantly reduce chip operating temperatures for warm water-cooled systems by reducing operating temperatures 5-7 degrees C during the hottest part of the day. The overall system performance was evaluated using both an exergy analysis and a modified power usage effectiveness (PUE) metric defined for the water storage system. This unique situation also necessitates the development of a new exergy definition in order to properly capture the physics of the situation. The impacts of tank size, tank aspect ratio, fill percentage, and charging/discharging time on both the chip temperature and modified PUE are evaluated. It is determined that tank charging time must be carefully matched to environmental conditions in order to optimize impact. Interestingly, the water being stored is initially above ambient, but the overall system performance improves with lower water temperatures. Therefore, heat losses to ambient are found to beneficial to the overall system performance. The results of this analysis demonstrate that in application, data center operators will see a clear performance benefit if water storage systems are used in conjunction with warm water cooling. This application can be extended to data center failure scenarios and could also lead to downsizing of equipment and a clear economic benefit.
机译:数据中心消耗了非凡的电力,消费率以快速的速度增加。因此,数据中心设计中的能效具有很大的兴趣,因为它可能对运营成本产生重大影响。服务器冷却基础设施是设计创新成熟的一个区域。对于空气冷却的数据中心,已经考虑了各种设计,并且对液体冷却服务器设计具有日益增长的兴趣。一种潜在的液体冷却溶液,减少了冷却成本,低于信息技术(IT)能量使用的费用,是一种不含冷水器或温暖的水冷系统,可从设计中取出冷却器并让人释放冷却供水随着室外环境条件的变化而变化。虽然这种设计已被证明在某些地方有效地工作,但环境极端防止其更广泛的实施。在本文中,显示了冷水储存系统的设计和分析,将冷冻机的设计延长到更广泛的环境条件的适用性。这可能导致能量和经济储蓄F或各种数据中心安装。开发,验证了储水系统的数值模型,并用于分析储水罐系统在室外湿冷冷却的冷却器数据中心设计中的影响。结果表明,在高湿灯泡操作条件的时间内,储水箱可以是通过在当天最热的部分期间减少5-7摄氏度的操作温度5-7摄氏度来显着减少温水冷却系统的芯片工作温度的有效方法。使用Deervent分析和为储水系统定义的修改功率使用效果(PUE)度量来评估整体系统性能。这种独特的情况也需要开发新的Deergy定义,以便正确捕捉情况的物理。评估罐尺寸,坦克纵横比,填充百分比和充电/放电时间对芯片温度和改性型灌注的影响。确定坦克充电时间必须仔细匹配环境条件,以优化影响。有趣的是,存放的水最初是高于环境的,但整体系统性能随着较低的水温而改善。因此,发现对环境的热损失有利于整体系统性能。该分析的结果表明,如果储水系统与温水冷却结合使用,则数据中心运营商将看到明确的性能优势。该应用程序可以扩展到数据中心故障情景,也可能导致设备的缩小规模和明确的经济效益。

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