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On-Chip Single-Inductor Multiple-Output Power Converter Design with Adaptive Cross Regulation and Supply Variation Control for Power-Efficient VLSI Systems

机译:节能型VLSI系统的片上单电感多输出功率转换器设计,具有自适应交叉调节和电源变化控制

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Dynamic voltage and frequency scaling (DVFS) algorithms are widely used power management techniques which enable the optimization of system-level power dissipation, energy consumption and operation performance. One cost-effective hardware-enabling platform to implement the DVFS is through single-inductor multiple-output (SIMO) DC-DC converters. However, the major drawback with such converters is cross regulation, which leads to undesired supply voltage variations. These variations have significant impact on modern VLSI applications, from the circuit to the system level. Based on these challenges, this paper presents a cross-layered design of two SIMO DC-DC converters with an adaptive freewheel switching technique. The proposed converters are able to minimize cross regulation by adaptively adjusting the freewheel switching durations and currents. This also increases the efficiency of the SIMO converters, by reducing the conduction losses due to the lossy freewheel switch. To verify the cross regulation performance of the SIMO converters, its influence on clock frequencies generated by a ring oscillator is investigated. By simulating various load transient conditions, it is shown that the SIMO converters are able to significantly minimize frequency variations. The operation of the converters is verified through transistor-based HSPICE simulation results, with a 130-nm CMOS process. The SIMO converter with the digital-based adaptive freewheel switching controller achieves a maximum efficiency of 93.2%, while the analog counterpart achieves a maximum efficiency of 93.4%. For a load change from 200 mA to 40 mA, the proposed technique reduces the conduction losses during the freewheel switching duration by 99.96%, compared with traditional methods.
机译:动态电压和频率缩放(DVFS)算法是广泛使用的电源管理技术,可优化系统级功耗,能耗和运行性能。一种实现DVFS的经济高效的硬件支持平台是通过单电感多输出(SIMO)DC-DC转换器。然而,这种转换器的主要缺点是交叉调节,这导致不希望的电源电压变化。这些变化对现代VLSI应用(从电路到系统级)都有重大影响。基于这些挑战,本文提出了两个采用自适应飞轮开关技术的SIMO DC-DC转换器的跨层设计。所提出的转换器能够通过自适应地调整续流开关持续时间和电流来最小化交叉调节。通过减少由于有损耗的续流开关引起的传导损耗,这也提高了SIMO转换器的效率。为了验证SIMO转换器的交叉调节性能,研究了其对环形振荡器产生的时钟频率的影响。通过模拟各种负载瞬态条件,表明SIMO转换器能够显着减小频率变化。转换器的操作通过基于晶体管的HSPICE仿真结果以及130 nm CMOS工艺进行了验证。带有基于数字的自适应飞轮开关控制器的SIMO转换器可实现93.2%的最大效率,而模拟对等转换器可实现93.4%的最大效率。对于从200 mA到40 mA的负载变化,与传统方法相比,所提出的技术可将飞轮切换持续时间内的传导损耗降低99.96%。

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