A Fast B1+‐Driven RF Co‐Simulation Optimization Method for RF Coil Arrays

ABSTRACT Purpose To generate accurate EM simulation models of RF coil arrays, improve coil safety validation procedures, and improve RF power management without sacrificing patient safety. Methods A fast, customized RF co‐simulation formulation was developed for pTx RF coils, enabling the use of experimentally measured maps to optimize the values of lumped elements, phase shifters, and attenuators in the EM simulation model, and demonstrate in a phantom. The proposed method was tested on an 8‐channel pTx knee coil at 7T and a 16‐channel pTx head coil at 10.5T. An RF co‐simulation optimization method that relies solely on matching the simulated and experimental ‐matrices was also implemented as a baseline. 50,000 random RF shims were used to evaluate the error for both co‐simulation optimization methods. Results The proposed ‐driven co‐simulation optimization method generated accurate maps when compared to experimentally measured maps. The proposed method reduced the average NRMSE of the EM modeling against the measurements from 48.0% to 30.8% for the 7T 8‐channel coil, and from 91.1% to 50.9% for the 10.5T 16‐channel coil when compared to conventional methods using 50,000 random RF shims. Conclusion The developed ‐driven RF co‐simulation optimization method in this work can be used to generate a more accurate EM simulation model of custom‐built arrays and potentially reduce the need for large safety margins, with improved RF power management.

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Publication Details

Journal
Magnetic Resonance in Medicine
Published
2026-09-29
DOI
https://doi.org/10.1002/mrm.70603
Primary Topic
Advanced MRI Techniques and Applications
Type
article
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article

A Fast B1+‐Driven RF Co‐Simulation Optimization Method for RF Coil Arrays

Matt Waks, Yiğitcan Eryaman, Alexander Bratch, Gregory J. Metzger et al.
Magnetic Resonance in Medicine
Advanced MRI Techniques and Applications
article

A Fast B1+‐Driven RF Co‐Simulation Optimization Method for RF Coil Arrays

Matt Waks, Yiğitcan Eryaman, Alexander Bratch, Gregory J. Metzger, Mazin M. Mustafa, Xiufeng Li, Ethan Polcyn
article en

Abstract

ABSTRACT Purpose To generate accurate EM simulation models of RF coil arrays, improve coil safety validation procedures, and improve RF power management without sacrificing patient safety. Methods A fast, customized RF co‐simulation formulation was developed for pTx RF coils, enabling the use of experimentally measured maps to optimize the values of lumped elements, phase shifters, and attenuators in the EM simulation model, and demonstrate in a phantom. The proposed method was tested on an 8‐channel pTx knee coil at 7T and a 16‐channel pTx head coil at 10.5T. An RF co‐simulation optimization method that relies solely on matching the simulated and experimental ‐matrices was also implemented as a baseline. 50,000 random RF shims were used to evaluate the error for both co‐simulation optimization methods. Results The proposed ‐driven co‐simulation optimization method generated accurate maps when compared to experimentally measured maps. The proposed method reduced the average NRMSE of the EM modeling against the measurements from 48.0% to 30.8% for the 7T 8‐channel coil, and from 91.1% to 50.9% for the 10.5T 16‐channel coil when compared to conventional methods using 50,000 random RF shims. Conclusion The developed ‐driven RF co‐simulation optimization method in this work can be used to generate a more accurate EM simulation model of custom‐built arrays and potentially reduce the need for large safety margins, with improved RF power management.

Magnetic Resonance in Medicine
University of Minnesota (US)
Affordable and clean energy
Openalex Percentile: Top 12%
Advanced MRI Techniques and Applications
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A Fast B1+‐Driven RF Co‐Simulation Optimization Method for RF Coil Arrays — Matt Waks, Yiğitcan Eryaman, et al. · Magnetic Resonance in Medicine (2026) | TGRS Research Map | TGRS