• Title/Summary/Keyword: Automotive Analog Front-End IC

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A Design of Signal Processing Analog Front-End IC for Automotive Piezo-Resistive Type Pressure Sensor (Automotive Piezo-Resistive Type Pressure Sensor 신호 처리 아날로그 전단부 IC 설계)

  • Cho, Sunghun;Lee, Dongsoo;Choi, Jinwook;Choi, Seungwon;Park, Sanghyun;Lee, Juri;Lee, Kang-Yoon
    • Journal of the Institute of Electronics and Information Engineers
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    • v.51 no.8
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    • pp.38-48
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    • 2014
  • In this paper, a design of Signal Processing Analog Front-End IC for Automotive Piezo-Resistive Type Pressure Sensor is presented. In modern society, as the car turns to go from mechanical to electronic technology, the accuracy and reliability of electronic parts required importantly. In order to improve these points, Programmable Gain Amplifier (PGA) amplifies the received signal in accordance with gain for increasing the accuracy after PRT Sensor is operated to change physical pressure signals to electrical signals. The signal amplified from PGA is processed by Digital blocks like ADC, CMC and DAC. After going through this process, it is possible to determine the electrical signal to physical pressure signal. As processing analog signal to digital signal, reliability and accuracy in Analog Front-End IC is increased. The current consumption of IC is 5.32mA. The die area of the fabricated IC is $1.94mm{\times}1.94mm$.

Analog Front-End IC for Automotive Battery Sensor (차량 배터리 센서용 Analog Front-End IC 설계)

  • Yeo, Jae-Jin;Jeong, Bong-Yong;Roh, Jeong-Jin
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.48 no.10
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    • pp.6-14
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    • 2011
  • This paper presents the design of the battery sensor IC for instrumentation of current, voltage using delta-sigma ADC. The proposed circuit consists of programmable gain instrumentation amplifier (PGIA) and second-order discrete-time delta-sigma modulator with 1-bit quantization were fabricated by a 0.25 ${\mu}m$ CMOS technology. Design circuit show that the modulator achieves 82 dB signal-to-noise ratio (SNR) over a 2 kHz signal bandwidth with an oversampling ratio (OSR) of 256 and differential nonlinearity (DNL) of ${\pm}$ 0.3 LSB, integral nonlinearity (INL) of ${\pm}$ 0.5 LSB. Power consumption is 4.5 mW.