Comparison of 12 Quadrature Birdcage Coils with Different Leg Shapes at 9.4 T
- Authors: Xu Y.1,2, Wen Q.1,3
- 
							Affiliations: 
							- High Magnetic Field Laboratory, Chinese Academy of Sciences
- University of Science and Technology of China
- University of Chinese Academy of Sciences
 
- Issue: Vol 48, No 9 (2017)
- Pages: 901-909
- Section: Original Paper
- URL: https://journals.rcsi.science/0937-9347/article/view/247859
- DOI: https://doi.org/10.1007/s00723-017-0920-y
- ID: 247859
Cite item
Abstract
The purpose of this study was to analyse the relationship between the radio frequency (RF) coil performance and conductor surface shape for ultra-high field (UHF) magnetic resonance imaging. Twelve different leg-shaped quadrature birdcage coils were modeled and built, e.g., 4 mm-width-leg conventional birdcage coil, 7 mm-width-leg conventional birdcage, 10 mm-width-leg conventional birdcage coil, 13 mm-width-leg conventional birdcage coil, inside arc-shape-leg birdcage coil, outward arc-shape-leg birdcage coil, inside right angle-shape-leg birdcage coil, outward right angle-shape-leg birdcage coil, vertical 4 mm-width-leg vertical birdcage, 6 mm-width-leg vertical birdcage, 8 mm-width-leg vertical birdcage and 10 mm-width-leg vertical birdcage. Studies were carried out in both electromagnetic simulations with finite element method as well as in vitro saline phantom experiments at 9.4 T. Both the results of simulation and experiment showed that conventional birdcage coil produces the highest signal-to-noise ratio (SNR) while the vertical birdcage coil produces the most homogeneous RF magnetic (B1) field at UHF. For conventional birdcage coils, as well as the vertical birdcage coils, only the proper width of legs results in the best performance (e.g., B1 homogeneous and SNR). For vertical birdcage coils, the wider the leg size, the higher RF magnetic (B1) field intensity distribution.
About the authors
Yongfeng Xu
High Magnetic Field Laboratory, Chinese Academy of Sciences; University of Science and Technology of China
							Author for correspondence.
							Email: xu_yongfeng@163.com
				                					                																			                												                	China, 							Hefei, 230031; Hefei, 230026						
Qingqing Wen
High Magnetic Field Laboratory, Chinese Academy of Sciences; University of Chinese Academy of Sciences
														Email: xu_yongfeng@163.com
				                					                																			                												                	China, 							Hefei, 230031; Beijing, 10010						
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