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General Characterization Method and a Fast Load-Charge-Preserving Switching Procedure for the Stepwise Adiabatic Circuits

机译:逐步绝热电路的一般表征方法和快速保持电荷的切换程序

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An analytical method is presented to characterize stepwise adiabatic circuits (SACs). In this method, the SACs are modeled as a discrete time system. Unlike previous methods, the stability is verified for arbitrary load capacitor ratios. Moreover, this method presents analytical derivations to offer an area/energy efficient design methodology. MATLAB simulations, post-layout simulations in the CMOS 0.18 technology, silicon measurements, and measurements based on discrete components confirm the precision of the analytical derivations. Using the proposed design methodology, a capacitive tank has been designed which reduces the energy consumption by 20% while the total size of the tank capacitors is smaller than . Additionally, a new switching procedure for the SACs is presented. This procedure stabilizes the voltage levels without reverse switching, unlike previously reported methods. Thus preserving the energy efficiency, it improves the speed by a factor of up to two, since the tank recycles its charge inherently. Moreover, the capacitive load can retain its charge after the charging process and let the tank charges another load capacitor. As a result, the proposed switching procedure can be used in multi-cycle circuits such as the capacitive DAC of a SAR ADC in which the load capacitor must hold its charge after charging process is finished.
机译:提出了一种分析方法来表征逐步绝热电路(SAC)。在这种方法中,SAC被建模为离散时间系统。与以前的方法不同,可以针对任意负载电容器比率验证稳定性。此外,此方法提供了分析推导,以提供面积/节能设计方法。 MATLAB仿真,CMOS 0.18技术中的布局后仿真,硅测量以及基于分立组件的测量均证实了分析推导的精度。使用建议的设计方法,设计了一种电容式储能罐,可将能耗降低20%,而储能电容器的总尺寸小于。此外,提出了SAC的新切换过程。与以前报道的方法不同,此过程可稳定电压电平而无需反向切换。这样就可以保持能量效率,因为油箱会固有地循环充电,因此速度提高了两倍。此外,电容性负载可以在充电过程后保留其电荷,并让储能罐为另一个负载电容器充电。结果,所提出的开关过程可用于多周期电路中,例如SAR ADC的电容DAC,其中负载电容器在充电过程完成后必须保持其电荷。

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