Sensor data fusion for responsive high resolution ultrasonic temperature measurement using piezoelectric transducers

被引:10
作者
Hashmi, Anas [1 ]
Kalashnikov, Alexander N. [2 ]
机构
[1] Univ Jeddah, Dept Elect & Elect Engn, Univ Jeddah Rd, Jeddah, Saudi Arabia
[2] Sheffield Hallam Univ, Dept Engn & Maths, Howard Str, Sheffield S1 1WB, S Yorkshire, England
关键词
Ultrasonic instrumentation; Ultrasonic non-destructive evaluation; Ultrasonic oscillating temperature sensor; Data fusion; Temperature sensing; High resolution temperature measurement;
D O I
10.1016/j.ultras.2019.105969
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Ultrasonic temperature measurement allows for responsive measurements across an entire ultrasonic pathway, unlike most conventional temperature sensors that respond to the temperature at the point of their placement only after a notable response time. The high cost of required ultrasonic instrumentation can be reduced substantially by using ultrasonic oscillating temperature sensors (UOTS) consisting of inexpensive narrowband piezo transducers and driving electronics. An UOTS produces sustained oscillations at a frequency that relates to the temperature of the medium between the transducers. The existence of thermal hysteresis in UOTS readings, observed experimentally and apparently related to the fundamental properties of piezoelectric materials, makes conversion of the output frequency readings to the temperature values ambiguous. This makes it complicated to calibrate and use UOTS on their own. In the reported experiment (heating, then naturally cooling of a water vessel equipped with both UOTS and conventional sensors), this hysteresis was solved by fusing UOTS data with conventional temperature sensor readings. As the result, the combination of one UOTS plus one conventional reference sensor allowed improving both the temperature resolution and responsiveness of the latter and ambiguity of the readings of the former. Data fusion effectively led to calibrating the UOTS at every change of the conventional sensor's reading, removing any concerns related to the thermal expansion/contraction of the ultrasonic pathway itself and/or hysteresis of piezoelectric transducers.
引用
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页数:8
相关论文
共 25 条
[11]   Ultrasound measurements of segmental temperature distribution in solids: Method and its high-temperature validation [J].
Jia, Yunlu ;
Chernyshev, Vasiliy ;
Skliar, Mikhail .
ULTRASONICS, 2016, 66 :91-102
[12]  
Kalashnikov AN, 2005, ULTRASON, P1151
[13]  
Kleppe J. A., 1989, ENG APPL ACOUSTICS
[14]   HYSTERESIS IN QUARTZ RESONATORS - A REVIEW [J].
KUSTERS, JA ;
VIG, JR .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1991, 38 (03) :281-290
[15]   Non-Intrusive Measurement of Inner Bore Temperature of Small Arms Using Integrated Ultrasonic Transducers [J].
Levesque, D. ;
Pimentel, R. ;
Lord, M. ;
Beauchesne, A. ;
Kruger, S. E. ;
Stowe, R. ;
Wong, F. ;
Monchalin, J. -P. .
42ND ANNUAL REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION: INCORPORATING THE 6TH EUROPEAN-AMERICAN WORKSHOP ON RELIABILITY OF NDE, 2016, 1706
[16]   A new ultrasonic temperature measurement system for air conditioners in automobiles [J].
Liao, TL ;
Tsai, WY ;
Huang, CF .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2004, 15 (02) :413-419
[17]  
Lynnworth L.C., 1972, U.S. Patent, Patent No. [3,636,754, 3636754]
[18]   INDUSTRIAL APPLICATIONS OF ULTRASOUND - REVIEW .2. MEASUREMENTS, TESTS, AND PROCESS-CONTROL USING LOW-INTENSITY ULTRASOUND [J].
LYNNWORTH, LC .
IEEE TRANSACTIONS ON SONICS AND ULTRASONICS, 1975, SU22 (02) :71-101
[19]   High-resolution ultrasonic thermometer for radiation dosimetry [J].
Malyarenko, Eugene V. ;
Heyman, Joseph S. ;
Chen-Mayer, H. Heather ;
Tosh, Ronald E. .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2008, 124 (06) :3481-3490
[20]  
Mayer AlfredM., 1873, Philosophical Magazine Series 4, V45, P18