集成微流体发电和冷却的亮硅mpsoc

M. Sabry, A. Sridhar, David Atienza Alonso, P. Ruch, B. Michel
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引用次数: 11

摘要

在我们的数字信息时代,对计算能力的不断增长的需求产生了一个不良的副作用,即多处理器片上系统(mpsoc)的功耗和热密度激增。由此产生的温度升高导致的操作条件已经排除了所有核心在最大性能水平上运行,以防止系统过热和故障。随着功率需求的增加,由于底层功率传输介质的可靠性限制,mpsoc将面临功率传输墙。因此,最先进的电源和冷却传输解决方案正在达到其性能极限,并且不再可能同时启动所有可用的片上核心(称为暗硅)。在本文中,我们研究了最近提出的一种颠覆性方法,以克服mpsoc中普遍存在的最坏情况功率和冷却供应范例。该方法将MPSoC与片上微流体燃料电池网络集成在一起,用于联合冷却和供电(即本地化发电和输送)。通过提供与冷却集成的电力传输的替代方法,mpsoc有望获得I/O连接。基于这种颠覆性的技术,我们可以设想在MPSoC设计中消除目前的功率传输和散热限制,从而避免暗硅,并在未来的能量比例计算架构设计中实现范式转变。
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Integrated microfluidic power generation and cooling for bright silicon MPSoCs
The soaring demand for computing power in our digital information age has produced, as an undesirable side-effect, a surge in power consumption and heat density for Multiprocessors Systems-on-Chip (MPSoCs). The resulting temperature rise results in operating conditions that already preclude operating all the cores at maximum performance levels, in order to prevent system overheating and failures. With more power demands, MPSoCs will face a power delivery wall due to the reliability limitations of the underlying power delivery medium. Thus, state-of-the-art power and cooling delivery solutions are reaching their performance limits and it will no longer be possible to power up simultaneously all the available on-chip cores (situation known as dark silicon). In this paper we investigate a recently proposed disruptive approach to overcome the prevailing worst-case power and cooling provisioning paradigms for MPSoCs. This proposed approach integrates MPSoC with an on-chip microfluidic fuel cell network for joint cooling and power supply (i.e., localized power generation and delivery). By providing alternative means to power delivery integrated with cooling, MPSoCs are expected to gain in I/O connectivity. Based on this disruptive technology, we can envision the removal of the current limits of power delivery and heat dissipation in MPSoC designs, subsequently avoiding dark silicon and enabling a paradigm shift in future energy-proportional computing architecture designs.
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