Near-infrared measurement of water temperature near micro-magnetic particle layer in a fluidic channel under induction heating

被引:7
作者
Van-Cuong Han [1 ]
Kakuta, Naoto [1 ]
机构
[1] Tokyo Metropolitan Univ, Grad Sch Sci & Engn, Dept Mech Engn, Hachioji, Tokyo 1920397, Japan
关键词
Temperature imaging; Near-infrared absorption; Water; Magnetic particle; Fluidic chip; Induction heating; HYPERTHERMIA; NANOPARTICLES; SPECTROSCOPY; FERROFLUIDS; CONVECTION; NANOFLUID;
D O I
10.1016/j.expthermflusci.2020.110087
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents an experimental method for measuring the water temperature near micro-magnetic particle (MMP) layers in a fluidic channel under induction heating. This method is based on the temperature dependence of the spectrum of the nu(1) + nu(3) absorption band of water in the near-infrared (NIR) region. The absorbance images at the wavelength of 1412 nm, which is the most temperature-sensitive wavelength in the band, were obtained through a U-shaped channel with an optical path length of 1 mm using a narrow-bandpass filter and an NIR camera. An MMP layer was formed on the inner surface of the channel by an external strong permanent magnet and then heated inductively by applying a 760-kHz magnetic field. The temperature distribution of water was found to depend on the heating time, heating power level, and MMP layer thickness (0.5, 0.6, and 1.0 mm). The maximum increase in temperature near the MMP layer was approximately 5 degrees C, and the temperature resolution was 0.2 degrees C. A numerical simulation was used to verify the measured temperature profiles then apply the residual fitting method to determine the heat generation rates (HGRs) of the MMPs. The HGRs were independent of the heating time, and varied consistently with the heating power level. This method is useful for the quantitative understanding and control of temperature fields in applications that use MMPs for chemical reactions and cell/tissue therapy.
引用
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页数:10
相关论文
共 57 条
[1]   Effects of temperature and nanoparticles concentration on rheological behavior of Fe3O4-Ag/EG hybrid nanofluid: An experimental study [J].
Afrand, Masoud ;
Toghraie, Davood ;
Ruhani, Behrooz .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2016, 77 :38-44
[2]   Droplet on oil impregnated surface: Temperature and velocity fields [J].
Al-Sharafi, Abdullah ;
Yilbas, Bekir Sami ;
Hassan, Ghassan .
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2019, 146
[3]   Preparation and evaluation of stable nanofluids for heat transfer application: A review [J].
Babita ;
Sharma, S. K. ;
Gupta, Shipra Mital .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2016, 79 :202-212
[4]  
Binns C, 2014, FRONT NANOSCI, V6, P217, DOI 10.1016/B978-0-08-098353-0.00006-3
[5]   Review of temperature measurement [J].
Childs, PRN ;
Greenwood, JR ;
Long, CA .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2000, 71 (08) :2959-2978
[6]   Non-invasive tissue temperature measurements based on quantitative diffuse optical spectroscopy (DOS) of water [J].
Chung, S. H. ;
Cerussi, A. E. ;
Merritt, S. I. ;
Ruth, J. ;
Tromberg, B. J. .
PHYSICS IN MEDICINE AND BIOLOGY, 2010, 55 (13) :3753-3765
[7]   Heating efficiency in magnetic nanoparticle hyperthermia [J].
Deatsch, Alison E. ;
Evans, Benjamin A. .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2014, 354 :163-172
[8]  
Dokos S, 2017, LECT N BIOENG, P1, DOI 10.1007/978-3-642-54801-7
[9]  
Dorband B., 2005, HDB OPTICAL SYSTEMS, DOI [10.1002/9783527699223., DOI 10.1002/9783527699223]
[10]   Magnetic nanoparticles for cancer therapy [J].
Duerr, Stephan ;
Janko, Christina ;
Lyer, Stefan ;
Tripal, Philipp ;
Schwarz, Marc ;
Zaloga, Jan ;
Tietze, Rainer ;
Alexiou, Christoph .
NANOTECHNOLOGY REVIEWS, 2013, 2 (04) :395-409