The Investigation of a Miniaturized Acoustic Gas Thermometer
LI Mingda1,2,XING Li2,SI Minghao2,3,FENG Xiaojuan2,ZHANG Jintao2,WANG Xiaojie1
1. College of Quality and Technical Supervision, Hebei University, Baoding, Hebei 071002, China
2. Division of Thermophysics, National Institute of Metrology, Beijing 100029, China
3. Institute of Nuclear and New Energy Technology, Tsinghua University, Beijing 100084, China
Abstract:To promote the practical development of acoustic gas primary thermometry, a miniaturized acoustic gas thermometer with an inner diameter of 10mm, an outer diameter of 12mm and an inner length of 40mm was developed based on the principle of measuring thermodynamic temperature by cylindrical acoustic gas resonant method. An optimized acoustic generator was used to improve the sound pressure intensity. The experiment was carried out from room temperature to 782K at atmospheric pressure. The results showed that the random deviation of the acoustic resonance frequency in atmospheric pressure air at 782K is less than 0.2% using acoustic waveguides. After correcting the boundary layer and duct perturbations, the thermodynamic temperature of 407K to 782K with room temperature as the reference was obtained with an uncertainty of 0.76K to 2.93K (k=1). The investigation provided the possibility for application of the primary acoustic gas thermometer in harsh or special environment.
GILLIS K A, MOLDOVER M R, GOODWIN A. Accurate acoustic measurements in gases under difficult conditions [J]. Review of Scientific Instruments, 1991, 62(9): 2213-2217.
LEMMON E W, HUBER M L, MCLINDEN M O. NIST Standard Reference Database 23: Reference Fluid Thermodynamic and Transport Properties REFPROP. 9.0 [R]. NIST NSRDS, 2010.
MOLDOVER M R, BOYES S J, GOODWIN A. Thermodynamic Temperatures of the Triple Points of Mercury and Gallium and in the Interval 217 K to 303 K [J]. Journal of Research of the National Institute of Standards & Technology, 1999, 104(1): 11-46.
[3]
RIPPLE D C, STROUSE G F, MOLDOVER M R. Acoustic Thermometry Results from 271 to 552 K [J]. International Journal of Thermophysics, 2007, 28(6): 1789-1799.
[4]
UNDERWOOD R, DE PODESTA M, SUTTON G, et al. Further Estimates of (T-T90) Close to the Triple Point of Water [J]. International Journal of Thermophysics, 2017, 38(44): 1-13.
[11]
MOLDOVER M R, GAVIOSO R M, MEHL J B, et al. Acoustic gas thermometry [J]. Metrologia, 2014, 51(1): 1-19.
[13]
杜功焕, 朱哲民, 龚秀芳. 声学基础 [M]. 南京: 南京大学出版社, 2001.
[5]
BENEDETTO G, GAVIOSO R M, SPAGNOLO R, et al. Acoustic measurements of the thermodynamic temperature between the triple point of mercury and 380 K [J]. Metrologia, 2004, 41(1): 74-98.
GU X M, LIN H, FENG X J, et al. Preliminary study on the fixed-path-length cylinder primary acoustic thermometer [J]. Journal of Scientific Instrument, 2013, 34(3): 502-508.
[8]
ZHANG K, FENG X J, ZHANG J, et al. Determination of T-T90 from 234 K to 303 K by acoustic thermometry with a cylindrical resonator [J]. Metrologia, 2020, 57(2): 1-42.
[9]
DE PODESTA M, SUTTON G, EDWARDS G, et al. Practical acoustic thermometry with twin-tube and single-tube sensors [C]// International Conference on Advancements in Nuclear Instrumentation Measurement Methods & Their Applications. 2016.
YANG S L, FENG X J, LIN H, et al. Preliminary Study on Practical Helium Acoustic Thermometer [J]. Acta Metrologia sinica, 2020, 41(6): 634-639.
YIN Z W, FENG X J, LIN H, et al. The discontinuous boundary layer effects on acoustic resonance frequency in cylindrical cavity[J]. Acta Metrologica Sinica, 2014, 35(1): 1-4.
ZHANG J T, LIN H, FENG X J, et al. Progress Toward Redetermining the Boltzmann Constant with a Fixed-Path- Length Cylindrical Resonator [J]. International Journal of Thermophysics, 2011, 32(7-8): 1297-1329.
CHEN H H, FENG X J, LIN H, et al. Optimization Design of Acoustic Duct in Gas Acoustic Thermometer [J]. Acta Metrologia sinica, 2019,40(1): 1-7.
[17]
BROWN K M, DENNIS J E. Derivative free analogues of the Levenberg-Marquardt and Gauss algorithms for nonlinear least squares approximation[J]. Numerische Mathematik, 1971, 18(4): 289-297.
MENG Z B, WANG Y Q, YIN F J, et al. GH747 Superalloy for Aeroengine Flame Detector [J]. Journal of Iron and Steel Research, 2003,15(7): 610-613.
[19]
ZHANG K, FENG X J, et al. Acoustic and microwave tests in a cylindrical cavity for acoustic gas thermometry at high temperature [J]. Philosophical transactions. Series A,Mathematical, physical, and engineering sciences, 2016,374(2064):20150049.
[6]
PITRE L, MOLDOVER M R, TEW W L. Acoustic thermometry: new results from 273 K to 77 K and progress towards 4 K [J]. Metrologia, 2006, 43(1): 142-162.