birdcage coil
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Author(s):  
Jérémie Clément ◽  
Raphaël Tomi-Tricot ◽  
Shaihan J. Malik ◽  
Andrew Webb ◽  
Joseph V. Hajnal ◽  
...  

Abstract Objective Neonatal brain and cardiac imaging would benefit from the increased signal-to-noise ratio levels at 7 T compared to lower field. Optimal performance might be achieved using purpose designed RF coil arrays. In this study, we introduce an 8-channel dipole array and investigate, using simulations, its RF performances for neonatal applications at 7 T. Methods The 8-channel dipole array was designed and evaluated for neonatal brain/cardiac configurations in terms of SAR efficiency (ratio between transmit-field and maximum specific-absorption-rate level) using adjusted dielectric properties for neonate. A birdcage coil operating in circularly polarized mode was simulated for comparison. Validation of the simulation model was performed on phantom for the coil array. Results The 8-channel dipole array demonstrated up to 46% higher SAR efficiency levels compared to the birdcage coil in neonatal configurations, as the specific-absorption-rate levels were alleviated. An averaged normalized root-mean-square-error of 6.7% was found between measured and simulated transmit field maps on phantom. Conclusion The 8-channel dipole array design integrated for neonatal brain and cardiac MR was successfully demonstrated, in simulation with coverage of the baby and increased SAR efficiency levels compared to the birdcage. We conclude that the 8Tx-dipole array promises safe operating procedures for MR imaging of neonatal brain and heart at 7 T.


2021 ◽  
Vol 2015 (1) ◽  
pp. 012116
Author(s):  
Viktor Puchnin ◽  
Anton Nikulin ◽  
Anna Hurshkainen ◽  
Georgiy Solomakha ◽  
Anna Andreychenko ◽  
...  

Abstract In this work, we compare three types of transceive wireless coils: Helmholtz-type coil, metamaterial-inspired coil and their combination. Each transceive coil is electromagnetically coupled to a body coil “birdcage” type of a 1.5 T MR scanner and improves bilateral breast imaging performance. While Helmholtz-type coil and metamaterial-inspired coil based on coupled split loop resonators are linearly polarized, their combination allows to couple with both linear components of the radiofrequency magnetic field, providing a more significant effect of a local boosting of the body coil’s transmit efficiency and radiofrequency safety in comparison with birdcage coil only.


2021 ◽  
Vol 9 ◽  
Author(s):  
C.C. van Leeuwen ◽  
B.R. Steensma ◽  
S.B. Glybovski ◽  
M.F.J. Lunenburg ◽  
C. Simovski ◽  
...  

The birdcage body coil, the standard transmit coil in clinical MRI systems, is typically a shielded coil. The shield avoids interaction with other system components, but Eddy Currents induced in the shield have an opposite direction with respect to the currents in the birdcage coil. Therefore, the fields are partly counteracted by the Eddy currents, and large coil currents are required to reach the desired B1+ level in the subject. These large currents can create SAR hotspots in body regions close to the coil. Complex periodic structures known as metamaterials enable the realization of a magnetic shield with magnetic rather than electric conductivity. A magnetic shield will have Eddy currents in the same direction as the coil currents. It will allow generating the same B1+ with lower current amplitude, which is expected to reduce SAR hotspots and improve homogeneity. This work explores the feasibility of a birdcage body coil at 3 T with a magnetic shield. Initially, we investigate the feasibility by designing a scale model of a birdcage coil with an anisotropic implementation of a magnetic shield at 7 T using flattened split ring resonators. It is shown that the magnetic shield destroys the desired resonance mode because of increased coil loading. To enforce the right mode, a design is investigated where each birdcage rung is driven individually. This design is implemented in a custom built birdcage at 7 T, successfully demonstrating the feasibility of the proposed concept. Finally, we investigate the potential improvements of a 3 T birdcage body coil through simulations using an idealized magnetic shield consisting of a perfect magnetic conductor (PMC). The PMC shield is shown to eliminate the peripheral regions of high local SAR, increasing the B1+ per unit maximum local SAR by 27% in a scenario where tissue is present close to the coil. However, the magnetic shield increases the longitudinal field of view, which reduces the transmit efficiency by 25%.


Author(s):  
Anton V. Nikulin ◽  
Alexandre Vignaud ◽  
Nikolai I. Avdievich ◽  
Djamel Berrahou ◽  
Julien Rosny ◽  
...  
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2021 ◽  
Vol 79 ◽  
pp. 45-51
Author(s):  
Ming Lu ◽  
Zhangyan Yang ◽  
Feng Wang ◽  
Gary Drake ◽  
Li Min Chen ◽  
...  

2021 ◽  
pp. 107023
Author(s):  
M. Vít ◽  
M. Burian ◽  
Z. Berková ◽  
J. Láčík ◽  
O.Sedlacek ◽  
...  
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Author(s):  
Joshua D. Kaggie ◽  
Titus Lanz ◽  
Mary A. McLean ◽  
Frank Riemer ◽  
Rolf F. Schulte ◽  
...  
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