从更少的电池到更少的电池:通过超低功率性能适应实现更绿色的世界

M. Alioto
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摘要

本文从整体角度介绍了用于分布式和分散系统(例如物联网,AIoT)的硅系统的最新进展,其数量呈指数级增长趋势。在这种前所未有的规模下,电池在外形因素、系统寿命和正常运行时间、传感器节点成本、系统成本(例如,由于电池/传感器节点的更换)以及处置时对环境的严重影响等方面施加了严重的扩展限制。因此,连网设备数量的持续增长要求电池大幅萎缩,并最终大规模淘汰。除了通过长时间睡眠模式直接降低电池利用率之外,本文还关注了突出的小型化(毫米级)无电池和无电池系统。提出了最新的和正在发展的设计技术,以实现纯采集操作,同时仍然保持传感器节点警觉/可用,长寿命(例如,超出电池保质期),毫米尺寸和低成本。本文及其在ESSCIRC的主题演讲伙伴讨论了如何通过系统峰值功率适应降低到西北水平而不是传统的平均水平来实现这些目标。基本原理在所有主要传感器节点子系统(例如,处理,传感器接口,无线通信)的硅上进行了演示。总体而言,本主题论文中描述的设计技术旨在使下一代无处不在、低成本、小型化但警觉的传感器节点能够持续扩大规模。从技术角度来看,由此产生的进步旨在使规模达到数万亿美元,在经济上和物流上都是可持续的。更重要的是,它们对于实现万亿级系统的环境可持续性至关重要,可以解决未来从生产到处置的数万亿电池带来的巨大威胁。除了芯片上的超大规模集成电路系统的成熟概念之外,超大规模(分布式/去中心化)系统的可持续性真正从设计开始。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From Less Batteries to Battery-Less: Enabling A Greener World through Ultra-Wide Power-Performance Adaptation down to pWs
This paper presents a holistic perspective on recent advances in silicon systems for distributed and decentralized systems (e.g., IoT, AIoT), whose count is trending towards the trillions exponentially. At such unprecedented scale, batteries impose severe scaling limitations in terms of form factor, system lifetime and uptime, sensor node cost, system cost (e.g., due to battery/sensor node replacement), and a heavy environmental impact at disposal time. Accordingly, sustained growth in the number of connected devices mandates drastic battery shrinking and ultimately elimination at scale. Beyond the straightforward reduction in the battery utilization via long sleep modes, this paper focuses on the prominent class of miniaturized (mm-scale) battery-indifferent and battery-less systems. Recent and unfolding design techniques are presented to enable purely-harvested operation, while still maintaining sensor nodes alert/available, long lived (e.g., beyond the battery shelf life), millimeter-sized and low cost. This paper and its keynote speech companion at ESSCIRC discusses how to achieve such goals through system peak power adaptation down to the nW level, rather than conventional average. Fundamental principles are demonstrated on silicon across all major sensor node sub-systems (e.g., processing, sensor interfaces, wireless communications). Overall, the design techniques described in this keynote paper aim to enable next-generation ubiquitous, low-cost, miniaturized yet alert sensor nodes for sustainable scale-up. From a technological viewpoint, the resulting advances aim to make scaling to the trillions economically and logistically sustainable. Even more importantly, they are crucially needed to make trillion-scale systems environmentally sustainable, addressing the gargantuan threat posed by trillions of batteries lying ahead, from production to disposal. Beyond the well-established notion of VLSI systems on a chip, sustainability in very large-scale (distributed/decentralized) systems really starts from design.
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