Remote thermometry with thermographic phosphors: Instrumentation and applications

被引:603
作者
Allison, SW
Gillies, GT
机构
[1] UNIV VIRGINIA, HLTH SCI CTR, DEPT BIOMED ENGN, CHARLOTTESVILLE, VA 22908 USA
[2] VIRGINIA COMMONWEALTH UNIV, MED COLL VIRGINIA, DIV NEUROSURG, RICHMOND, VA 23298 USA
[3] OAK RIDGE NATL LAB, ENGN TECHNOL DIV, OAK RIDGE, TN 37831 USA
[4] UNIV VIRGINIA, DEPT MECH AEROSP & NUCL ENGN, CHARLOTTESVILLE, VA 22901 USA
关键词
D O I
10.1063/1.1148174
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The temperature-dependent characteristics of fluorescence of several rare-earth-doped ceramic phosphors has made these materials the focus of a major effort in the field of noncontact thermometry over the past few decades. These ''thermographic phosphors,'' e.g., Y2O3:Eu, have been used for remote measurements of the temperatures of both static and moving surfaces, and have performed many other tasks that standard sensors (thermocouples, thermistors, etc.) cannot. The range of usefulness of this class of materials extends from cryogenic temperatures to those approaching 2000 degrees C. The instrumentation needed for this type of thermometry has followed many different lines of development, and this evolution has produced a wide variety of both field- and laboratory-grade systems that are now described in the literature. In general, the technique offers high sensitivity (approximate to 0.05 degrees C), robustness (e.g., stability of the sensor sample in harsh environments), and NIST traceability. In addition, such systems have been successfully adapted to make remotely sensed measurements of pressure, heat flux, shear stress, and strain. In this review, we summarize the physical mechanisms that form the basis for the technique, and then catalog and discuss the instrumentation-related aspects of several different remote thermometry systems that employ thermographic phosphors as the sensors. (C) 1997 American Institute of Physics.
引用
收藏
页码:2615 / 2650
页数:36
相关论文
共 279 条
[1]   SOME CALCULATIONS OF TEMPERATURE PROFILES IN THIN-FILMS WITH LASER-HEATING [J].
ABRAHAM, E ;
HALLEY, JM .
APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 1987, 42 (04) :279-285
[2]   DEVELOPMENT OF A FIBEROPTIC PROBE FOR THERMOGRAPHIC PHOSPHOR MEASUREMENTS IN TURBINE-ENGINES [J].
ALARURI, S ;
MCFARLAND, D ;
BREWINGTON, A ;
THOMAS, M ;
SALLEE, N .
OPTICS AND LASERS IN ENGINEERING, 1995, 22 (01) :17-31
[3]   HIGH-TEMPERATURE REMOTE THERMOMETRY USING LASER-INDUCED FLUORESCENCE DECAY LIFETIME MEASUREMENTS OF Y2O3-EU AND YAG-TB THERMOGRAPHIC PHOSPHORS [J].
ALARURI, SD ;
BREWINGTON, AJ ;
THOMAS, MA ;
MILLER, JA .
IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 1993, 42 (03) :735-739
[4]   INJECTION EFFICIENCY FROM A SIDE-EXCITED THIN-FILM FLUORESCENT CLADDING OF A CIRCULAR WAVE-GUIDE [J].
ALBIN, S ;
BRYANT, AL ;
EGALON, CO ;
ROGOWSKI, RS .
OPTICAL ENGINEERING, 1994, 33 (04) :1172-1175
[5]   RESOLVABILITY OF FLUORESCENCE LIFETIME DISTRIBUTIONS USING PHASE FLUOROMETRY [J].
ALCALA, JR ;
GRATTON, E ;
PRENDERGAST, FG .
BIOPHYSICAL JOURNAL, 1987, 51 (04) :587-596
[6]  
ALCALA JR, 1985, ANAL INSTRUM, V14, P225
[7]   DIGITAL PARALLEL ACQUISITION IN FREQUENCY-DOMAIN FLUOROMETRY - COMMENT [J].
ALCALA, JR .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1991, 62 (06) :1672-1673
[8]   DIGITAL PHOSPHORIMETER WITH FREQUENCY-DOMAIN SIGNAL-PROCESSING - APPLICATION TO REAL-TIME FIBEROPTIC OXYGEN SENSING [J].
ALCALA, JR ;
YU, C ;
YEH, GJ .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1993, 64 (06) :1554-1560
[9]   REAL-TIME FREQUENCY-DOMAIN FIBEROPTIC TEMPERATURE SENSOR [J].
ALCALA, JR ;
LIAO, SC ;
ZHENG, JL .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1995, 42 (05) :471-476
[10]  
Allison S. W., 1987, Proceedings of the SPIE - The International Society for Optical Engineering, V788, P90, DOI 10.1117/12.940706