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Efficient Voltage Regulation for Microprocessor Cores Stacked in Vertical Voltage Domains

机译:垂直电压域中堆叠的微处理器内核的有效电压调节

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Due to exponential (Moores law) scaling of advanced CMOS technologies, the challenges associated with delivering power to performance and mobile computing systems are outpacing the capabilities of conventional voltage regulator (VR) topologies. To continue to scale throughput at constant power density, the level of parallelism in microprocessor architectures is expected to increase substantially. In this paper, we present a power conversion topology to provide independent multicore regulation in the 0.8–1.4 V range from a 12-V dc bus. The topology uses a multistage ladder converter to manage power delivery to digital circuits stacked in vertical voltage domains. This approach has several advantages with regard to systems efficiency as it allows a more moderate conversion ratio of the main dc–dc converter. Moreover, the parallel converter only needs to process a fraction of the power of each core as the current can be “recycled” by adjacent cores in the stack. We develop a dynamical model for a multiple-input, multiple-output control scheme that uses a simple integral-control law, augmented with fast voltage- and current-mode feedforward. Measurement results of a discrete prototype verify the control scheme and demonstrate the potential advantages in system efficiency but also emphasize the remaining challenges in meeting stringent VR dynamic response requirements.
机译:由于先进CMOS技术的指数(摩尔定律)缩放,与为性能和移动计算系统提供电源相关的挑战已经超过了常规电压调节器(VR)拓扑的功能。为了在恒定功率密度下继续扩展吞吐量,预计微处理器体系结构中的并行度将大大提高。在本文中,我们提出了一种电源转换拓扑,可从12V直流总线在0.8-1.4V范围内提供独立的多核调节。该拓扑使用多级梯形转换器来管理向垂直电压域中堆叠的数字电路的功率传输。这种方法在系统效率方面具有多个优势,因为它允许主DC-DC转换器具有更适中的转换比。此外,并行转换器只需要处理每个内核的一部分功率,因为​​电流可以被堆栈中的相邻内核“回收”。我们为多输入,多输出控制方案开发了一个动力学模型,该方案使用简单的积分控制定律,并增加了快速电压和电流模式前馈。离散原型的测量结果验证了控制方案,并证明了系统效率方面的潜在优势,但同时也强调了满足严格的VR动态响应要求时仍存在的挑战。

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