Johnson noise thermometry near the zinc freezing point using resistance-based scaling

被引:14
|
作者
Tew, W. L.
Labenski, J. R.
Nam, S. W.
Benz, S. P.
Dresselhaus, P. D.
Burroughs, C. J.
机构
[1] NIST, Proc Measurement Div, Gaithersburg, MD 20899 USA
[2] Natl Inst Stand & Technol, Div Optoelect, Boulder, CO 80303 USA
[3] Natl Inst Stand & Technol, Quantum Elect Metrol Div, Boulder, CO 80303 USA
关键词
ITS-90; Johnson noise; noise thermometry; temperature;
D O I
10.1007/s10765-007-0196-9
中图分类号
O414.1 [热力学];
学科分类号
摘要
Johnson noise thermometry (JNT) is a primary method of measuring temperature which can be applied over wide ranges. The National Institute of Standards and Technology (NIST) is currently using JNT to determine the deviations of the International Temperature Scale of 1990 (ITS-90) from the thermodynamic temperature in the range of 505-933 K, overlapping the ranges of both acoustic gas-based and radiation-based thermometry. Advances in digital electronics have now made viable the computationally intensive and data-volume-intensive processing required for JNT using noise-voltage correlation in the frequency domain. The spectral noise power, and consequently the thermodynamic temperature T, of a high-temperature JNT probe is determined relative to a known reference spectrum using a switched-input digital noise-voltage correlator and simple resistance-scaling relationships. Comparison of the JNT results with standard platinum resistance thermometers calibrated on the ITS-90 gives the deviation of the thermodynamic temperature from the temperature on the ITS-90, T - T-90. Statistical uncertainties under 50 mu K center dot K-1 are achievable in less than 1 day of integration by fitting the effects of transmission-line time constants over bandwidths of 450 kHz. The methods and results in a 3 K interval near the zinc freezing point (T (90-ZnFP) equivalent to 692.677 K) are described. Preliminary results show agreement between the JNT-derived temperatures and the ITS-90.
引用
收藏
页码:629 / 645
页数:17
相关论文
共 50 条
  • [31] Robust Stabilization of Inverter-Based Resources Using Virtual Resistance-Based Control
    Anubi, Olugbenga Moses
    Ameli, Sina
    IEEE CONTROL SYSTEMS LETTERS, 2022, 6 : 3295 - 3300
  • [32] Automated Micropipette Aspiration of Cell Using Resistance-based Voltage Feedback Control
    Dong, Elongkui
    Wang, Wenxue
    Wang, Zhibo
    Zhou, Lei
    Liu, Lianqing
    2013 IEEE 7TH INTERNATIONAL CONFERENCE ON NANO/MOLECULAR MEDICINE AND ENGINEERING (NANOMED), 2013, : 142 - 146
  • [33] Measurement of Melting Point of Gallium by Johnson Noise Thermometer using Integrated Quantum Voltage Noise Source
    Urano, Chiharu
    Yamazawa, Kazuaki
    Kaneko, Nobu-Hisa
    2018 CONFERENCE ON PRECISION ELECTROMAGNETIC MEASUREMENTS (CPEM 2018), 2018,
  • [34] Noise in the wire: The real impact of wire resistance for the Johnson(-like) noise based secure communicator
    Kish, Laszlo B.
    Scheuer, Jacob
    PHYSICS LETTERS A, 2010, 374 (21) : 2140 - 2142
  • [35] Evaluation of a resistance-based model for the quantification of pulmonary arterial hypertension using MR flow measurements
    Abolmaali, Nasreddin
    Seitz, Uwe
    Esmaeili, Anoosh
    Kock, Martin
    Radeloff, Daniel
    Ackermann, Hanns
    Vogl, Thomas J.
    JOURNAL OF MAGNETIC RESONANCE IMAGING, 2007, 26 (03) : 646 - 653
  • [36] Measurement of the surface-temperature field in a fog lamp using resistance-based temperature detectors
    Wagner, A
    Bajsic, I
    Fajdiga, M
    STROJNISKI VESTNIK-JOURNAL OF MECHANICAL ENGINEERING, 2004, 50 (02): : 72 - 79
  • [37] An Adversarial Attacks Resistance-based Approach to Emotion Recognition from Images using Facial Landmarks
    Shehu, Harisu Abdullahi
    Browne, Will
    Eisenbarth, Hedwig
    2020 29TH IEEE INTERNATIONAL CONFERENCE ON ROBOT AND HUMAN INTERACTIVE COMMUNICATION (RO-MAN), 2020, : 1307 - 1314
  • [38] Probing the charge and heat transfer channels in optically excited graphene - transition metal dichalcogenide hybrids using Johnson noise thermometry
    Majumdar, Aniket
    Kakkar, Saloni
    Anil, Nivedith Kuttikunnummal
    Paul, Tathagata
    Phanindra Sai, T.
    Watanabe, Kenji
    Taniguchi, Takashi
    Ghosh, Arindam
    APPLIED PHYSICS LETTERS, 2022, 121 (04)
  • [39] A ±0.3 ppm Oven-Controlled MEMS Oscillator Using Structural Resistance-Based Temperature Sensing
    Liu, Chang-Shun
    Tabrizian, Roozbeh
    Ayazi, Farrokh
    IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2018, 65 (08) : 1492 - 1499
  • [40] Local recording of biological magnetic fields using Giant Magneto Resistance-based micro-probes
    Barbieri, Francesca
    Trauchessec, Vincent
    Caruso, Laure
    Trejo-Rosillo, Josue
    Telenczuk, Bartosz
    Paul, Elodie
    Bal, Thierry
    Destexhe, Alain
    Fermon, Claude
    Pannetier-Lecoeur, Myriam
    Ouanounou, Gilles
    SCIENTIFIC REPORTS, 2016, 6