Literature DB >> 34272898

Displacement current distribution on a high dielectric constant helmet and its effect on RF field at 10.5 T (447 MHz).

Navid P Gandji1, Christopher T Sica1, Michael T Lanagan2, Myung-Kyun Woo3, Lance DelaBarre3, Jerahmie Radder3, Bei Zhang4, Riccardo Lattanzi5, Gregor Adriany3, Kamil Ugurbil3, Qing X Yang1.   

Abstract

PURPOSE: Investigating the designs and effects of high dielectric constant (HDC) materials in the shape of a conformal helmet on the enhancement of RF field and reduction of specific absorption rate at 10.5 T for human brain studies.
METHODS: A continuous and a segmented four-piece HDC helmet fit to a human head inside an eight-channel fractionated-dipole array were constructed and studied with a phantom and a human head model using computer electromagnetic simulations. The simulated transmit efficiency and receive sensitivity were experimentally validated using a phantom with identical electric properties and helmet-coil configurations of the computer model. The temporal and spatial distributions of displacement currents on the HDC helmets were analyzed.
RESULTS: Using the continuous HDC helmet, simulation results in the human head model demonstrated an average transmit efficiency enhancement of 66%. A propagating displacement current was induced on the continuous helmet, leading to an inhomogeneous RF field enhancement in the brain. Using the segmented four-piece helmet design to reduce this effect, an average 55% and 57% enhancement in the transmit efficiency and SNR was achieved in human head, respectively, along with 8% and 28% reductions in average and maximum local specific absorption rate.
CONCLUSION: The HDC helmets enhanced the transmit efficiency and SNR of the dipole array coil in the human head at 10.5 T. The segmentation of the helmet to disrupt the continuity of circumscribing displacement currents in the helmet produced a more uniform distribution of the transmit field and lower specific absorption rate in the human head compared with the continuous helmet design.
© 2021 International Society for Magnetic Resonance in Medicine.

Entities:  

Keywords:  SAR reduction; SNR enhancement; high dielectric constant material; ultrahigh-field MRI

Mesh:

Year:  2021        PMID: 34272898      PMCID: PMC9366929          DOI: 10.1002/mrm.28923

Source DB:  PubMed          Journal:  Magn Reson Med        ISSN: 0740-3194            Impact factor:   3.737


  43 in total

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9.  In vivo human head MRI at 10.5T: A radiofrequency safety study and preliminary imaging results.

Authors:  Alireza Sadeghi-Tarakameh; Lance DelaBarre; Russell L Lagore; Angel Torrado-Carvajal; Xiaoping Wu; Andrea Grant; Gregor Adriany; Gregory J Metzger; Pierre-Francois Van de Moortele; Kamil Ugurbil; Ergin Atalar; Yigitcan Eryaman
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10.  The effect of high-permittivity pads on specific absorption rate in radiofrequency-shimmed dual-transmit cardiovascular magnetic resonance at 3T.

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2.  A Preliminary Study for Reference RF Coil at 11.7 T MRI: Based on Electromagnetic Field Simulation of Hybrid-BC RF Coil According to Diameter and Length at 3.0, 7.0 and 11.7 T.

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