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Efficiently building receive arrays with electromagnetic simulations and additive manufacturing: A two-layer, 32-channel prototype for 7T brain MRI

delete2023-11-20
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OA
AI
P
Paul‐François Gapais
M
Michel Luong
F
F. Nizery
G
Gabriel Maitre
J
Jules Guillot
A
Alexandre Vignaud
D
Djamel Berrahou
M
Marc Dubois
R
Redha Abdeddaïm
É
Élodie Georget
S
Sajad Hosseinnezhadian
A
Alexis Amadon *
DOI:10.1002/mrm.29931delete
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Abstract

Abstract

En 中文
Purpose We propose a comprehensive workflow to design and build fully customized dense receive arrays for MRI, providing prediction of SNR and g-factor. Combined with additive manufacturing, this method allows an efficient implementation for any arbitrary loop configuration. To demonstrate the methodology, an innovative two-layer, 32-channel receive array is proposed.Methods The design workflow is based on numerical simulations using a commercial 3D electromagnetic software associated with circuit model co-simulations to provide the most accurate results in an efficient time. A model to compute the noise covariance matrix from circuit model scattering parameters is proposed. A 32-channel receive array at 7 T is simulated and fabricated with a two-layer design made of non-geometrically decoupled loops. Decoupling between loops is achieved using home-built direct high-impedance preamplifiers. The loops are 3D-printed with a new additive manufacturing technique to speed up integration while preserving the detailed geometry as simulated. The SNR and parallel-imaging performances of the proposed design are compared with a commercial coil, and in vivo images are acquired.Results The comparison of SNR and g-factors showed a good agreement between simulations and measurements. Experimental values are comparable with the ones measured on the commercial coil. Preliminary in vivo images also ensured the absence of any unexpected artifacts.Conclusion A new design and performance analysis workflow is proposed and tested with a non-conventional 32-channel prototype at 7 T. Additive manufacturing of dense arrays of loops for brain imaging at ultrahigh field is validated for clinical use.
Keywords:
additive manufacturing
coil
electromagnetic
receive array
ultrahigh field

Journal

Magnetic Resonance in Medicine cover
Magnetic Resonance in Medicine
IF:
3
Papers:
1.2W
Citations:
3.1W

Organization

C
centre national de la recherche scientifique (cnrs)
Scholars:
24.4W
Papers: 18.1W
Citations: 279
C
CEA
Scholars:
3.4W
Papers: 2.3W
Citations: 62
U
Universite Paris Saclay
Scholars:
7.2W
Papers: 5.2W
Citations: 540
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