用于高性能数据中心的人工智能驱动冷却技术:最新的回顾和未来的方向

IF 7 2区 工程技术 Q1 ENERGY & FUELS
Dlzar Al Kez , Aoife M Foley , Fadhli Wong B.M. Hasan Wong , Andrea Dolfi , Geetha Srinivasan
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引用次数: 0

摘要

人工智能(AI)、高性能计算(HPC)和超大规模云平台不断增长的计算需求给数据中心基础设施带来了巨大的热能和能源压力。传统的空气冷却系统越来越不足以管理这些负荷,促使人们向更高效、可扩展和可持续的替代方案过渡。本研究对下一代冷却技术进行了全面的系统综述,包括直接液体冷却、浸入式冷却、两相系统、喷雾和射流冲击冷却以及基于热管的解决方案。不像以前的评论集中在组件级或单一技术评估上,本研究集成了技术性能、商业准备和不同部署条件下的环境影响。详细的比较框架综合了空气、液体和混合系统的热效率、可扩展性和水的使用。特别关注商业上成熟的解决方案,如RDHx和冷板DLC,同时评估了人工智能驱动冷却、相变材料和热电技术等新兴方法的可行性。该综述进一步探讨了热再利用潜力和符合esg的设计策略,这些策略对数字基础设施脱碳至关重要。通过在性能、成本和可持续性方面进行权衡,本研究为数据中心运营商、设计人员和政策利益相关者提供了可行的见解,帮助他们实现高效、人工智能的冷却。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
AI-driven cooling technologies for high-performance data centres: state-of-the-art review and future directions
The increasing computational demands of artificial intelligence (AI), high-performance computing (HPC), and hyperscale cloud platforms are placing significant thermal and energy pressures on data centre infrastructure. Traditional air-based cooling systems are increasingly inadequate for managing these loads, prompting a transition toward more efficient, scalable, and sustainable alternatives. This study presents a comprehensive, system-wide review of next-generation cooling technologies, including direct liquid cooling, immersion cooling, two-phase systems, spray and jet impingement cooling, and heat pipe-based solutions. Unlike previous reviews focused on component-level or single-technology evaluations, this study integrates technical performance, commercial readiness, and environmental impact across diverse deployment conditions. A detailed comparative framework synthesises thermal efficiency, scalability, and water usage across air, liquid, and hybrid systems. Special attention is given to commercially mature solutions such as RDHx and cold plate DLC, while the feasibility of emerging methods like AI-driven cooling, phase-change materials, and thermoelectric technologies is evaluated. The review further explores heat reuse potential and ESG-aligned design strategies critical to decarbonising digital infrastructure. By mapping trade-offs across performance, cost, and sustainability, this study offers actionable insights for data centre operators, designers, and policy stakeholders navigating the path to high-efficiency, AI-ready cooling.
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来源期刊
Sustainable Energy Technologies and Assessments
Sustainable Energy Technologies and Assessments Energy-Renewable Energy, Sustainability and the Environment
CiteScore
12.70
自引率
12.50%
发文量
1091
期刊介绍: Encouraging a transition to a sustainable energy future is imperative for our world. Technologies that enable this shift in various sectors like transportation, heating, and power systems are of utmost importance. Sustainable Energy Technologies and Assessments welcomes papers focusing on a range of aspects and levels of technological advancements in energy generation and utilization. The aim is to reduce the negative environmental impact associated with energy production and consumption, spanning from laboratory experiments to real-world applications in the commercial sector.
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