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Data Center Demand Response: Avoiding the Coincident Peak via Workload Shifting and Local Generation

机译:数据中心需求响应:通过工作量转移和本地生成避免同时发生高峰

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摘要

Demand response is a crucial aspect of the future smart grid. It has the potential to provide significant peak demand reduction and to ease the incorporation of renewable energy into the grid. Data centers' participation in demand response is becoming increasingly important given the high and increasing energy consumption and the flexibility in demand management in data centers compared to conventional industrial facilities. In this extended abstract we briefly describe recent work in [1] on two demand response schemes to reduce a data center's peak loads and energy expenditure: workload shifting and the use of local power generations. In [1], we conduct a detailed characterization study of coincident peak data over two decades from Fort Collins Utilities, Colorado and then develop two algorithms for data centers by combining workload scheduling and local power generation to avoid the coincident peak and reduce the energy expenditure. The first algorithm optimizes the expected cost and the second one provides a good worst-case guarantee for any coincident peak pattern. We evaluate these algorithms via numerical simulations based on real world traces from production systems. The results show that using workload shifting in combination with local generation can provide significant cost savings (up to 40% in the Fort Collins Utilities' case) compared to either alone.
机译:需求响应是未来智能电网的关键方面。它具有显着降低峰值需求和减轻将可再生能源并入电网的潜力。鉴于与传统工业设施相比,数据中心的能耗越来越高,需求管理的灵活性越来越高,因此数据中心参与需求响应变得越来越重要。在这个扩展的摘要中,我们简要介绍了[1]中关于减少数据中心的峰值负荷和能源消耗的两种需求响应方案的最新工作:工作量转移和使用本地发电。在[1]中,我们对科罗拉多州Fort Collins公用事业公司过去二十年来的峰值峰值数据进行了详细的表征研究,然后通过结合工作负荷调度和本地发电来为数据中心开发两种算法,以避免峰值峰值并减少能源消耗。第一种算法优化了预期的成本,第二种算法为任何一致的峰型提供了良好的最坏情况保证。我们通过基于生产系统的真实世界轨迹的数值模拟对这些算法进行评估。结果表明,与单独使用两者相比,结合使用工作负载转移和本地发电可以节省大量成本(在Fort Collins Utilities案例中最多可节省40%)。

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