• Title/Summary/Keyword: MDAC

Search Result 39, Processing Time 0.024 seconds

Design of the Charge-Shared Switching MDAC for a Pipelined A/D Converter (Pipelined A/D 변환기 용 Charge-Shared Switching MDAC의 설계)

  • 박만규;이종훈;김상호;김상민;손영철;김대정;김동명
    • Proceedings of the IEEK Conference
    • /
    • 2002.06b
    • /
    • pp.69-72
    • /
    • 2002
  • This paper proposed a new charge-shared switching MDAC for a pipelined A/D converter The proposed architecture accomplishes the same function of a conventional multiplying-digital-to-analog converter (MDAC). By adopting the proposed scheme, about 40% of the total capacitances could be reduced and the speed of the MDAC increases. The performance of the charge-shared switching MDAC has been Proved by HSPICE simulations.

  • PDF

Digital Calibration Technique for Cyclic ADC based on Digital-Domain Averaging of A/D Transfer Functions (아날로그-디지털 전달함수 평균화기법 기반의 Cyclic ADC의 디지털 보정 기법)

  • Um, Ji-Yong
    • Journal of the Institute of Electronics and Information Engineers
    • /
    • v.54 no.6
    • /
    • pp.30-39
    • /
    • 2017
  • A digital calibration technique based on digital-domain averaging for cyclic ADC is proposed. The proposed calibration compensates for nonlinearity of ADC due to capacitance mismatch of capacitors in 1.5-bit/stage MDAC. A 1.5-bit/stage MDAC with non-matched capacitors has symmetric residue plots with respect to the ideal residue plot. This intrinsic characteristic of residue plot of MDAC is reflected as symmetric A/D transfer functions. A corrected A/D transfer function can be acquired by averaging two transfer functions with non-linearity, which are symmetric with respect to the ideal analog-digital transfer function. In order to implement the aforementioned averaging operation of analog-digital transfer functions, a 12-bit cyclic ADC of this work defines two operational modes of 1.5-bit/stage MDAC. By operating MDAC as the first operational mode, the cyclic ADC acquires 12.5-bits output code with nonlinearity. For the same sampled input analog voltage, the cyclic ADC acquires another 12.5-bits output code with nonlinearity by operating MDAC as the second operational mode. Since analog-digital transfer functions from each of operational mode of 1.5-bits/stage MDAC are symmetric with respect to the ideal analog-digital transfer function, a corrected 12-bits output code can be acquired by averaging two non-ideal 12.5-bits codes. The proposed digital calibration and 12-bit cyclic ADC are implemented by using a $0.18-{\mu}m$ CMOS process in the form of full custom. The measured SNDR(ENOB) and SFDR are 65.3dB (10.6bits) and 71.7dB, respectively. INL and DNL are measured to be -0.30/-0.33LSB and -0.63/+0.56LSB, respectively.

A low-power multiplying D/A converter design for 10-bit CMOS algorithmic A/D converters (10비트 CMOS algorithmic A/D 변환기를 위한 저전력 MDAC 회로설계)

  • 이제엽;이승훈
    • Journal of the Korean Institute of Telematics and Electronics C
    • /
    • v.34C no.12
    • /
    • pp.20-27
    • /
    • 1997
  • In this paper, a multiplying digital-to-analog converter (MDAC) circuit for low-power high-resolution CMOS algorithmic A/D converters (ADC's) is proposed. The proposed MDAC is designed to operte properly at a supply at a supply voltge between 3 V and 5 V and employs an analog0domain power reduction technique based on a bias switching circuit so that the total power consumption can be optimized. As metal-to-metal capacitors are implemented as frequency compensation capacitors, opamps' performance can be varied by imperfect process control. The MDAC minimizes the effects by the circuit performance variations with on-chip tuning circuits. The proposed low-power MDAC is implementd as a sub-block of a 10-bit 200kHz algorithmic ADC using a 0.6 um single-poly double-metal n-well CMOS technology. With the power-reduction technique enabled, the power consumption of the experimental ADC is reduced from 11mW to 7mW at a 3.3V supply voltage and the power reduction ratio of 36% is achieved.

  • PDF

A 1V 10b 30MS/s CMOS ADC Using a Switched-RC Technique (스위치-RC 기법을 이용한 1V 10비트 30MS/s CMOS ADC)

  • Ahn, Gil-Cho
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.46 no.8
    • /
    • pp.61-70
    • /
    • 2009
  • A 10b 30MS/s pipelined ADC operating under 1V power supply is presented. It utilizes a switched-RC based input sampling circuit and a resistive loop to reset the feedback capacitor in the multiplying digital-to-analog converter (MDAC) for the low-voltage operation. Cascaded switched-RC branches are used to achieve accurate grain of the MDAC for the first stage and separate switched-RC circuits are used in the sub-ADC to suppress the switching noise coupling to the MDAC input The measured differential and integral non-linearities of the prototype ADC fabricated in a 0.13${\mu}m$, CMOS process are less than 0.54LSB and 1.75LSB, respectively. The prototype ADC achieves 54.1dB SNDR and 70.4dB SFDR with 1V supply and 30MHz sampling frequency while consuming 17mW power.

A 12b 10MS/s CMOS Pipelined ADC Using a Reference Scaling Technique (기준 전압 스케일링을 이용한 12비트 10MS/s CMOS 파이프라인 ADC)

  • Ahn, Gil-Cho
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.46 no.11
    • /
    • pp.16-23
    • /
    • 2009
  • A 12b 10MS/s pipelined ADC with low DC gain amplifiers is presented. The pipelined ADC using a reference scaling technique is proposed to compensate the gain error in MDACs due to a low DC gain amplifier. To minimize the performance degradation of the ADC due to amplifier offset, the proposed offset trimming circuit is employed m the first-stage MDAC amplifier. Additional reset switches are used in all MDACs to reduce the memory effect caused by the low DC gain amplifier. The measured differential and integral non-linearities of the prototype ADC with 45dB DC gain amplifiers are less than 0.7LSB and 3.1LSB, respectively. The prototype ADC is fabricated in a $0.35{\mu}m$ CMOS process and achieves 62dB SNDR and 72dB SFDR with 2.4V supply and 10MHz sampling frequency while consuming 19mW power.

Design of 10-bit 10MS/s Time-Interleaved Flash-SAR ADC Using Sharable MDAC

  • Do, Sung-Han;Oh, Seong-Jin;Seo, Dong-Hyeon;Lee, Juri;Lee, Kang-Yoon
    • IEIE Transactions on Smart Processing and Computing
    • /
    • v.4 no.1
    • /
    • pp.59-63
    • /
    • 2015
  • This paper presents a 10-bit 10 MS/s Time-Interleaved Flash-SAR ADC with a shared Multiplying DAC. Using shared MDAC, the total capacitance in the SAR ADC decreased by 93.75%. The proposed ADC consumed 2.28mW under a 1.2V supply and achieved 9.679 bit ENOB performance. The ADC was implemented in $0.13{\mu}m$ CMOS technology. The chip area was $760{\times}280{\mu}m^2$.

Modeling of Pipeline A/D converter with Verilog-A (Verilog-A를 이용한 파이프라인 A/D변환기의 모델링)

  • Park, Sang-Wook;Lee, Jae-Yong;Yoon, Kwang-Sub
    • The Journal of Korean Institute of Communications and Information Sciences
    • /
    • v.32 no.10C
    • /
    • pp.1019-1024
    • /
    • 2007
  • In this paper, the 10bit 20MHz pipelined analog-to-digital converter that is able to apply to WLAN system was modeled for ADC design. Each blocks in converter such as sample and hold amplifier(SHA), comparator, multiplyng DAC(MDAC), and digital correction logic(DCL) was modeled. The pipelined ADC with these modeled blocks takes 1/50 less time than the one of simulation using HSPICE.

Research on User-Centric Inter-Organizational Collaboration (UCICOIn) framework (사용자 제어 기반 다중 도메인 접근 제어에 대한 연구)

  • Sunghyuck Hong
    • Journal of Industrial Convergence
    • /
    • v.21 no.12
    • /
    • pp.37-43
    • /
    • 2023
  • In today's business landscape, collaboration and interoperability are crucial for organizational success and profitability. However, integrating operations across multiple organizations is challenging due to differing roles and policies in Identity and Access Management (IAM). User-centric identity (UCI) adopts a personalized approach to digital identity management, centering on the end-user for authentication and access control. It provides a decentralized system that ensures secure and customized access for each user. UCI aims to address complex security challenges by aligning access privileges with individual user requirements. This research delves into UCI's ability to streamline resource access amidst conflicting IAM roles and protocols across various organizations. The study presents a UCI-based multi-domain access control (MDAC) framework, which encompasses an ontology, a unified method for articulating access roles and policies across domains, and software services melding with UCI infrastructure. The goal is to enhance organizational resource management and decision-making by offering clear guidelines on access roles and policy management across diverse domains, ultimately boosting companies' return on investment.

A Re-configurable 0.8V 10b 60MS/s 19.2mW 0.13um CMOS ADC Operating down to 0.5V (0.5V까지 재구성 가능한 0.8V 10비트 60MS/s 19.2mW 0.13um CMOS A/D 변환기)

  • Lee, Se-Won;Yoo, Si-Wook;Lee, Seung-Hoon
    • Journal of the Institute of Electronics Engineers of Korea SD
    • /
    • v.45 no.3
    • /
    • pp.60-68
    • /
    • 2008
  • This work describes a re-configurable 10MS/s to 100MS/s, low-power 10b two-step pipeline ADC operating at a power supply from 0.5V to 1.2V. MOS transistors with a low-threshold voltage are employed partially in the input sampling switches and differential pair of the SHA and MDAC for a proper signal swing margin at a 0.5V supply. The integrated adjustable current reference optimizes the static and dynamic performance of amplifiers at 10b accuracy with a wide range of supply voltages. A signal-isolated layout improves the capacitor mismatch of the MDAC while a switched-bias power-reduction technique reduces the power dissipation of comparators in the flash ADCs. The prototype ADC in a 0.13um CMOS process demonstrates the measured DNL and INL within 0.35LSB and 0.49LSB. The ADC with an active die area of $0.98mm^2$ shows a maximum SNDR and SFDR of 56.0dB and 69.6dB, respectively, and a power consumption of 19.2mW at a nominal condition of 0.8V and 60MS/s.

A 2.5 V 10b 120 MSample/s CMOS Pipelined ADC with High SFDR (높은 SFDR을 갖는 2.5 V 10b 120 MSample/s CMOS 파이프라인 A/D 변환기)

  • Park, Jong-Bum;Yoo, Sang-Min;Yang, Hee-Suk;Jee, Yong;Lee, Seung-Hoon
    • Journal of the Institute of Electronics Engineers of Korea SC
    • /
    • v.39 no.4
    • /
    • pp.16-24
    • /
    • 2002
  • This work describes a 10b 120 MSample/s CMOS pipelined A/D converter(ADC) based on a merged-capacitor switching(MCS) technique for high signal processing speed and high resolution. The proposed ADC adopts a typical multi-step pipelined architecture to optimize sampling rate, resolution, and chip area, and employs a MCS technique which improves sampling rate and resolution reducing the number of unit capacitor used in the multiplying digital-to-analog converter (MDAC). The proposed ADC is designed and implemented in a 0.25 um double-poly five-metal n-well CMOS technology. The measured differential and integral nonlinearities are within ${\pm}$0.40 LSB and ${\pm}$0.48 LSB, respectively. The prototype silicon exhibits the signal-to-noise-and-distortion ratio(SNDR) of 58 dB and 53 dB at 100 MSample/s and 120 MSample/s, respectively. The ADC maintains SNDR over 54 dB and the spurious-free dynamic range(SFDR) over 68 dB for input frequencies up to the Nyquist frequency at 100 MSample/s. The active chip area is 3.6 $mm^2$(= 1.8 mm ${\times}$ 2.0 mm) and the chip consumes 208 mW at 120 MSample/s.