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Improving data center energy efficiency using a cyber-physical systems approach: integration of building information modeling and wireless sensor networks

机译:使用网络物理系统方法提高数据中心能效:建筑信息建模和无线传感器网络的集成

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The increase in data center operating costs is driving innovation to improve their energy efficiency. Previous research has investigated computational and physical control intervention strategies to alleviate the competition between energy consumption and thermal performance in data center operation. This study contributes to the body of knowledge by proposing a cyber-physical systems (CPS) approach to innovatively integrate building information modeling (BIM) and wireless sensor networks (WSN). In the proposed framework, wireless sensors are deployed strategically to monitor thermal performance parameters in response to runtime server load distribution. Sensor data are collected and contextualized in reference to the building information model that captures the geometric and functional characteristics of the data center, which will be used as inputs of continuous simulations aiming to predict real-time thermal performance of server working environment. Comparing the simulation results against historical performance data via machine learning and data mining facility managers can quickly pinpoint thermal hot zones and actuate intervention procedures to improve energy efficiency. This BIM-WSN integration also facilitates smarter power management by capping runtime power demand within peak power capacity of data centers and alerting power outage emergencies. This paper lays out the BIM-WSN integration framework, explains the working mechanism, and discusses the feasibility of implementation in future work.
机译:数据中心运营成本的增加推动了提高能源效率的创新。以前的研究已经调查了计算和物理控制干预策略,以缓解数据中心操作中的能耗和热性能之间的竞争。本研究通过提出创新的建筑物信息建模(BIM)和无线传感器网络(WSN)来促进网络物理系统(CPS)方法对知识体系提供有助于知识体系。在所提出的框架中,无线传感器战略性地部署,以响应运行时服务器负载分布来监控热性能参数。参考捕获数据中心的几何和功能特性的建筑信息模型收集和上下文化传感器数据,该模型将被用作旨在预测服务器工作环境的实时热性能的连续模拟的输入。通过机器学习和数据挖掘设施管理器比较仿真结果对历史绩效数据,可以快速定位热热带并启动干预程序以提高能源效率。这种BIM-WSN集成还通过在数据中心的峰值电力容量内覆盖运行时功率需求,并提醒停电紧急情况来促进更智能的电源管理。本文奠定了BIM-WSN集成框架,解释了工作机制,并讨论了未来工作中实施的可行性。

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