Magnetic induction tomography: hardware for multi-frequency measurements in biological tissues

被引:97
作者
Scharfetter, H
Lackner, HK
Rosell, J
机构
[1] Graz Tech Univ, Inst Biomed Engn, A-8010 Graz, Austria
[2] Univ Politecn Catalunya, Dept Engn Elect, ES-08034 Barcelona, Spain
关键词
magnetic induction tomography; tissue conductivity; planar gradiometer; multi-frequency; brain oedema;
D O I
10.1088/0967-3334/22/1/317
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Magnetic induction tomography (MIT) is a contactless method for mapping the electrical conductivity of tissue. MIT is based on the perturbation of an alternating magnetic field by a conducting object. The perturbation is detected by a voltage change in a receiver coil. At physiologically interesting frequencies (10 kHz-10 MHz) and conductivities (< 2 S m(-1)) the lower limit for the relative voltage change (signal/carrier ratio = SCR) to be resolved is 10(-7)-10(-10) A new MIT hardware has been developed consisting of a coil system with planar gradiometers and a high-resolution phase detector (PD). The gradiometer together with the PD resolves an SCR of 2.5 x 10(-5) (SNR = 20 dB at 150 kHz, acquisition speed: 100 ms). The system operates between 20 and 370 kHz with the possibility of extending the range up to 1 MHz. The feasibility of measuring conductivity spectra in the <beta>-dispersion range of biological tissues is experimentally demonstrated. An improvement of the resolution towards SCR = 10(-7) with an SNR of greater than or equal to 20 dB at frequencies >100 kHz is possible. On-line spectroscopy of tissue conductivity with low spatial resolution appears feasible, thus enabling applications such as non-invasive monitoring of brain oedema.
引用
收藏
页码:131 / 146
页数:16
相关论文
共 15 条
[1]   A FEASIBILITY STUDY OF INVIVO ELECTROMAGNETIC IMAGING [J].
ALZEIBAK, S ;
SAUNDERS, NH .
PHYSICS IN MEDICINE AND BIOLOGY, 1993, 38 (01) :151-160
[2]  
BRAGOS R, 1996, ACT 14 C AN SOC ESP, P97
[3]   The dielectric properties of biological tissues .3. Parametric models for the dielectric spectrum of tissues [J].
Gabriel, S ;
Lau, RW ;
Gabriel, C .
PHYSICS IN MEDICINE AND BIOLOGY, 1996, 41 (11) :2271-2293
[4]   SPECIFIC RESISTANCE OF BIOLOGICAL MATERIAL-A COMPENDUM OF DATA FOR BIOMEDICAL ENGINEER AND PHYSIOLOGIST [J].
GEDDES, LA ;
BAKER, LE .
MEDICAL & BIOLOGICAL ENGINEERING, 1967, 5 (03) :271-&
[5]   Magnetic induction tomography - A measuring system for biological tissues [J].
Griffiths, H ;
Stewart, WR ;
Gough, W .
ELECTRICAL BIOIMPEDANCE METHODS: APPLICATIONS TO MEDICINE AND BIOTECHNOLOGY, 1999, 873 :335-345
[6]   A NONINVASIVE ELECTROMAGNETIC CONDUCTIVITY SENSOR FOR BIOMEDICAL APPLICATIONS [J].
HART, LW ;
KO, HW ;
MEYER, JH ;
VASHOLZ, DP ;
JOSEPH, RI .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1988, 35 (12) :1011-1022
[7]  
Kaden H., 1959, WIRBELSTROEME SCHIRM, P290
[8]   Progress in realization of magnetic induction tomography [J].
Korjenevsky, AV ;
Cherepenin, VA .
ELECTRICAL BIOIMPEDANCE METHODS: APPLICATIONS TO MEDICINE AND BIOTECHNOLOGY, 1999, 873 :346-352
[9]   CONTACTLESS IMPEDANCE MEASUREMENT BY MAGNETIC INDUCTION - A POSSIBLE METHOD FOR INVESTIGATION OF BRAIN IMPEDANCE [J].
NETZ, J ;
FORNER, E ;
HAAGEMANN, S .
PHYSIOLOGICAL MEASUREMENT, 1993, 14 (04) :463-471
[10]   TISSUE IMPEDANCE SPECTRA AND THE APPROPRIATE FREQUENCIES FOR EIT [J].
OSYPKA, M ;
GERSING, E .
PHYSIOLOGICAL MEASUREMENT, 1995, 16 :A49-A55