RF heating due to conductive wires during MRI depends on the phase distribution of the transmit field
Open Access
- 3 December 2002
- journal article
- research article
- Published by Wiley in Magnetic Resonance in Medicine
- Vol. 48 (6) , 1096-1098
- https://doi.org/10.1002/mrm.10310
Abstract
In many studies concerning wire heating during MR imaging, a “resonant wire length” that maximizes RF heating is determined. This may lead to the nonintuitive conclusion that adding more wire, so as to avoid this resonant length, will actually improve heating safety. Through a theoretical analysis using the method of moments, we show that this behavior depends on the phase distribution of the RF transmit field. If the RF transmit field has linear phase, with slope equal to the real part of the wavenumber in the tissue, long wires always heat more than short wires. In order to characterize the intrinsic safety of a device without reference to a specific body coil design, this maximum-tip heating phase distribution must be considered. Finally, adjusting the phase distribution of the electric field generated by an RF transmit coil may lead to an “implant-friendly” coil design. Magn Reson Med 48:1096–1098, 2002.Keywords
This publication has 7 references indexed in Scilit:
- RF safety of wires in interventional MRI: Using a safety indexMagnetic Resonance in Medicine, 2001
- A Green's function approach to local rf heating in interventional MRIMedical Physics, 2001
- On the heating of linear conductive structures as guide wires and catheters in interventional MRIJournal of Magnetic Resonance Imaging, 2001
- MR-guided percutaneous angioplasty: Assessment of tracking safety, catheter handling and functionalityCardioVascular and Interventional Radiology, 1998
- A Galerkin moment method for the analysis of an insulated antenna in a dissipative dielectric mediumIEEE Transactions on Microwave Theory and Techniques, 1998
- Active MR visualization of a vascular guidewire in vivoJournal of Magnetic Resonance Imaging, 1998
- Therapeutic applications of electromagnetic powerProceedings of the IEEE, 1974