A CMOS Oscillators-Based Smart Temperature Sensor for Low-Power Low-Cost Systems

被引:2
|
作者
Chen, Chun-Chi [1 ]
Liu, Wei-Jiun [2 ]
Lin, Shih-Hao [1 ]
Lin, Chao-Chieh [1 ]
机构
[1] Natl Kaohsiung First Univ Sci & Technol, Dept Elect Engn, Kaohsiung, Taiwan
[2] Natl Cheng Kung Univ, Dept Elect Engn, Tainan, Taiwan
关键词
Smart temperature sensor; CMOS; Oscillator; Successive Approximation Register (SAR);
D O I
10.1016/j.proeng.2012.09.092
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper proposes a CMOS oscillators-based smart temperature sensor with a SAR (Successive Approximation Register) search algorithm. To reduce the cost and release the number of bits, a temperature-dependent delay circuit (TDDC) composed of a thermal ring oscillator and a fixed-gain time amplifier was used to generate a thermal sensing delay proportional to the test temperature. An adjustable reference delay circuit (ARDC) composed of another thermal compensation ring oscillator and an adjustable-gain time amplifier was used to program a reference set-point delay. For digital output coding, a SAR control logic was adopted for selecting the optimal reference delay of the ARDC to approximate the thermal delay of the TDDC through the help of a time comparator. The chip size of the proposed oscillators-based sensor with 11 output bits was 0.25 mm(2), which is less than the 0.6 mm(2) of its delay-linebased predecessor with a 10 output bits in the same 0.35-mu m TSMC CMOS process [1]. The measurement errors were within +/- 0.6 degrees C in the temperature range of 0 degrees C to 90 degrees C after two-point calibration for eight packaged chips. (C) 2012 Elsevier Ltd....Selection and/or peer-review under responsibility of the Symposium Cracoviense Sp. z.o.o.
引用
收藏
页码:92 / 95
页数:4
相关论文
共 50 条
  • [31] Optimized Face Detection and Alignment for Low-Cost and Low-Power IoT Systems
    Choi, Kyubaik
    Sobelman, Gerald E.
    2020 IEEE INTERNATIONAL CONFERENCE ON INTERNET OF THINGS AND INTELLIGENCE SYSTEM (IOTAIS), 2021, : 129 - 135
  • [32] Small, Low-Power, Low-Cost IMU for Personal Navigation and Stabilization Systems
    Kozlov, V. A.
    Agafonov, V. M.
    Bindler, J.
    Vishnyakov, A. V.
    PROCEEDINGS OF THE 2006 NATIONAL TECHNICAL MEETING OF THE INSTITUTE OF NAVIGATION - NTM 2006, 2006, : 650 - 655
  • [33] A Compact, Low-Cost, and Low-Power Turbidity Sensor for Continuous In Situ Stormwater Monitoring
    Wang, Miao
    Shi, Baiqian
    Catsamas, Stephen
    Kolotelo, Peter
    McCarthy, David
    SENSORS, 2024, 24 (12)
  • [34] A Low-Cost, Low-Power Water Velocity Sensor Utilizing Acoustic Doppler Measurement
    Catsamas, Stephen
    Shi, Baiqian
    Deletic, Boris
    Wang, Miao
    McCarthy, David T.
    SENSORS, 2022, 22 (19)
  • [35] Low-Cost Low-Power Microgrid with Photovoltaic Panels
    Albu, Mihai
    Sticea, Daniel
    Fosalau, Cristian
    Chiriac, Gabriel
    2014 INTERNATIONAL CONFERENCE AND EXPOSITION ON ELECTRICAL AND POWER ENGINEERING (EPE), 2014, : 941 - 947
  • [36] A low-power and low-cost frequency doubling circuit
    Zhou, R
    Liu, J
    PROCEEDINGS OF THE 44TH IEEE 2001 MIDWEST SYMPOSIUM ON CIRCUITS AND SYSTEMS, VOLS 1 AND 2, 2001, : 348 - 351
  • [37] LOW-POWER, LOW-COST HE-NE
    WRIGHT, D
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1976, 66 (04) : 386 - 386
  • [38] Low-power - Low-cost undersea telemetry system
    Holt, M. D.
    OCEANS 2005, VOLS 1-3, 2005, : 2705 - 2710
  • [39] Low-cost, low-power, clockwork syringe pump
    Pooke, Francis
    Payne, Matthew
    Holder-Pearson, Lui
    Heaton, Doug
    Campbell, Jake
    Chase, J. Geoffrey
    HARDWAREX, 2023, 16
  • [40] A low-cost and low-power digital audio processor
    Jiang, ZG
    Chen, N
    Zhou, D
    PROCEEDINGS OF THE TWENTY-EIGHTH SOUTHEASTERN SYMPOSIUM ON SYSTEM THEORY, 1996, : 358 - 361