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Design and Implementation of a Novel Flash ADC for Ultra Wide Band Applications

机译:用于超宽带应用的新型闪存ADC的设计与实现

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摘要

This dissertation presents a design and implementation of a novel flash ADC architecture for ultra wide band applications. The advancement in wireless technology takes us in to a world without wires. Most of the wireless communication systems use digital signal processing to transmit as well as receive the information. The real world signals are analog. Due to the processing complexity of the analog signal, it is converted to digital form so that processing becomes easier. The development in the digital signal processor field is rapid due to the advancement in the integrated circuit technology over the last decade. Therefore, analog-to -digital converter acts as an interface in between analog signal and digital signal processing systems. The continuous speed enhancement of the wireless communication systems brings out huge demands in speed and power specifications of high-speed low-resolution analog-to -digital converters. Even though wired technology is a primary mode of communication, the quality and efficiency of the wireless technology allows us to apply to biomedical applications, in home services and even to radar applications. These applications are highly relying on wireless technology to send and receive information at high speed with great accuracy. Ultra Wideband (UWB) technology is the best method to these applications. A UWB signal has a bandwidth of minimum 500MHz or a fractional bandwidth of 25 percentage of its centre frequency. The two different technology standards that are used in UWB are multiband orthogonal frequency division multiplexing ultra wideband technology (MB-OFDM) and carrier free direct sequence ultra wideband technology (DS-UWB). ADC is the core of any UWB receiver. Generally a high speed flash ADC is used in DS-UWB receiver. Two different flash ADC architectures are proposed in this thesis for DS-UWB applications. The first design is a high speed five bit flash ADC architecture with a sampling rate of 5 GS/s. The design is verified using CADENCE tool with CMOS 90 nm technology. The total power dissipation of the ADC is 8.381 mW from power supply of 1.2 V. The die area of the proposed flash ADC is 186 μm × 210 μm (0.039 mm2). The proposed flash ADC is analysed and compared with other papers in the literature having same resolution and it is concluded that it has the highest speed of operation with medium power dissipation. iii The second design is a reconfigurable five bit flash ADC architecture with a sampling rate of 1.25 GS/s. The design is verified using CADENCE tool with UMC 180 nm technology. The total power dissipation of the ADC is 11.71 mW from power supply of 1.8 V. The die area of the implementation is 432 μm × 720 μm (0.31104 mm2). The chip tape out of the proposed reconfigurable flash ADC is made for fabrication.
机译:本文提出了一种用于超宽带应用的新型闪存ADC架构的设计与实现。无线技术的进步将我们带入了一个无电线的世界。大多数无线通信系统使用数字信号处理来发送和接收信息。现实世界中的信号是模拟的。由于模拟信号的处理复杂性,它会转换为数字形式,因此处理变得更加容易。由于过去十年中集成电路技术的进步,数字信号处理器领域的发展迅速。因此,模数转换器充当模拟信号和数字信号处理系统之间的接口。无线通信系统的不断提高速度对高速低分辨率模数转换器的速度和功率规格提出了巨大的要求。即使有线技术是主要的通信方式,无线技术的质量和效率仍使我们能够应用于生物医学应用,家庭服务甚至雷达应用。这些应用高度依赖无线技术,以极高的准确性高速发送和接收信息。超宽带(UWB)技术是这些应用程序的最佳方法。 UWB信号的带宽至少为500MHz,或者是其中心频率的25%的分数带宽。 UWB中使用的两种不同的技术标准是多频带正交频分复用超宽带技术(MB-OFDM)和无载波直接序列超宽带技术(DS-UWB)。 ADC是任何UWB接收器的核心。通常,DS-UWB接收器使用高速Flash ADC。本文针对DS-UWB应用提出了两种不同的Flash ADC架构。第一种设计是具有5 GS / s采样速率的高速五位闪存ADC架构。使用具有CMOS 90 nm技术的CADENCE工具对设计进行了验证。从1.2 V电源供电时,ADC的总功耗为8.381 mW。拟议的Flash ADC的芯片面积为186μm×210μm(0.039 mm2)。对所提出的闪存ADC进行了分析,并与文献中具有相同分辨率的其他论文进行了比较,得出的结论是,它具有最高的工作速度和中等的功耗。 iii第二种设计是可重配置的五位闪存ADC架构,采样速率为1.25 GS / s。使用具有UMC 180 nm技术的CADENCE工具验证了该设计。 ADC的总功耗为1.8 V电源,总功耗为11.71 mW。该器件的裸片面积为432μm×720μm(0.31104 mm2)。所提出的可重构闪存ADC中的芯片带用于制造。

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    Varghese George Tom;

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  • 年度 2015
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