Measuring local RF heating in MRI: Simulating perfusion in a perfusionless phantom

被引:8
作者
Akca, Imran B.
Ferhanoglu, Onur
Yeung, Christopher J.
Guney, Sevin
Tasci, T. Onur
Atalar, Ergin [1 ]
机构
[1] Bilkent Univ, Dept Elect & Elect Engn, TR-06800 Ankara, Turkey
[2] NHLBI, Div Intramural Res, Natl Inst Hlth, Bethesda, MD 20892 USA
[3] Gazi Univ, Dept Physiol, Inst Hlth Sci, Ankara, Turkey
[4] Johns Hopkins Univ, Sch Med, Dept Radiol, Baltimore, MD 21205 USA
关键词
RF heating; MRI safety; interventional MRI; metallic implants; perfusion; bioheat equation;
D O I
10.1002/jmri.21161
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: To overcome conflicting methods of local RF heating measurements by proposing a simple technique for predicting in vivo temperature rise by using a gel phantom experiment. Materials and Methods: In vivo temperature measurements are difficult to conduct reproducibly; fluid phantoms introduce convection, and gel phantom lacks perfusion. In the proposed method the local temperature rise is measured in a gel phantom at a timepoint that the phantom temperature would be equal to the per-fused body steady-state temperature value. The idea comes from the fact that the steady-state temperature rise in a perfused body is smaller than the steady-state temperature increase in a perfusionless phantom. Therefore, when measuring the temperature on a phantom there will be the timepoint that corresponds to the perfusion time constant of the body part. Results: The proposed method was tested with several phantom and in vivo experiments. Instead, an overall average of 30.8% error can be given as the amount of underestimation with the proposed method. This error is within the variability of in vivo experiments (45%). Conclusion: With the aid of this reliable temperature rise prediction the amount of power delivered by the scanner can be controlled, enabling safe MRI examinations of patients with implants.
引用
收藏
页码:1228 / 1235
页数:8
相关论文
共 38 条
[1]   Effects of magnetic resonance Imaging on cardiac pacemakers and electrodes [J].
Achenbach, S ;
Moshage, W ;
Diem, B ;
Bieberle, T ;
Schibgilla, V ;
Bachmann, K .
AMERICAN HEART JOURNAL, 1997, 134 (03) :467-473
[2]   Validity of fluorescent microspheres method for bone blood flow measurement during intentional arterial hypotension [J].
Anetzberger, H ;
Thein, E ;
Becker, M ;
Walli, AK ;
Messmer, K .
JOURNAL OF APPLIED PHYSIOLOGY, 2003, 95 (03) :1153-1158
[3]   Finite volume analysis of temperature effects induced by active MRI implants with cylindrical symmetry: 1. Properly working devices [J].
Busch, Martin H. J. ;
Vollmann, Wolfgang ;
Schnorr, Joerg ;
Groenemeyer, Dietrich H. W. .
BIOMEDICAL ENGINEERING ONLINE, 2005, 4 (1)
[4]   HEMODYNAMIC-ALTERATIONS IN HYPERTENSIVE OBESE RABBITS [J].
CARROLL, JF ;
HUANG, M ;
HESTER, RL ;
COCKRELL, K ;
MIZELLE, HL .
HYPERTENSION, 1995, 26 (03) :465-470
[5]  
COOPER TE, 1971, AEROSPACE MED, V42, P24
[6]   A COMPARISON OF MEASUREMENTS OF CEREBRAL BLOOD-FLOW IN THE RABBIT USING LASER DOPPLER SPECTROSCOPY AND RADIONUCLIDE LABELED MICROSPHERES [J].
EYRE, JA ;
ESSEX, TJH ;
FLECKNELL, PA ;
BARTHOLOMEW, PH ;
SINCLAIR, JI .
CLINICAL PHYSICS AND PHYSIOLOGICAL MEASUREMENT, 1988, 9 (01) :65-74
[7]   THERAPEUTIC APPLICATIONS OF ELECTROMAGNETIC POWER [J].
GUY, AW ;
LEHMANN, JF ;
STONEBRIDGE, JB .
PROCEEDINGS OF THE IEEE, 1974, 62 (01) :55-75
[8]   Computational verification of anesthesia effect on temperature variations in rabbit eyes exposed to 2.45 GHz microwave energy [J].
Hirata, Akimasa ;
Watanabe, Soichi ;
Kojima, Masami ;
Hata, Ikuho ;
Wake, Kanako ;
Taki, Masao ;
Sasaki, Kazuyuki ;
Fujiwara, Osamu ;
Shiozawa, Toshlyuki .
BIOELECTROMAGNETICS, 2006, 27 (08) :602-612
[9]  
*INT EL COMM, 1995, 60601233 INT EL COMM
[10]  
JONES SC, 1980, J COMP PHYSL, V138, P31