Foo Thomas K F, Tan Ek Tsoon, Vermilyea Mark E, Hua Yihe, Fiveland Eric W, Piel Joseph E, Park Keith, Ricci Justin, Thompson Paul S, Graziani Dominic, Conte Gene, Kagan Alex, Bai Ye, Vasil Christina, Tarasek Matthew, Yeo Desmond T B, Snell Franklyn, Lee David, Dean Aaron, DeMarco J Kevin, Shih Robert Y, Hood Maureen N, Chae Heechin, Ho Vincent B
GE Global Research, Niskayuna, New York.
Uniformed Services University of the Health Sciences, Bethesda, Maryland.
Magn Reson Med. 2020 Jun;83(6):2356-2369. doi: 10.1002/mrm.28087. Epub 2019 Nov 25.
To develop a highly efficient magnetic field gradient coil for head imaging that achieves 200 mT/m and 500 T/m/s on each axis using a standard 1 MVA gradient driver in clinical whole-body 3.0T MR magnet.
A 42-cm inner diameter head-gradient used the available 89- to 91-cm warm bore space in a whole-body 3.0T magnet by increasing the radial separation between the primary and the shield coil windings to 18.6 cm. This required the removal of the standard whole-body gradient and radiofrequency coils. To achieve a coil efficiency ~4× that of whole-body gradients, a double-layer primary coil design with asymmetric x-y axes, and symmetric z-axis was used. The use of all-hollow conductor with direct fluid cooling of the gradient coil enabled ≥50 kW of total heat dissipation.
This design achieved a coil efficiency of 0.32 mT/m/A, allowing 200 mT/m and 500 T/m/s for a 620 A/1500 V driver. The gradient coil yielded substantially reduced echo spacing, and minimum repetition time and echo time. In high b = 10,000 s/mm diffusion, echo time (TE) < 50 ms was achieved (>50% reduction compared with whole-body gradients). The gradient coil passed the American College of Radiology tests for gradient linearity and distortion, and met acoustic requirements for nonsignificant risk operation.
Ultra-high gradient coil performance was achieved for head imaging without substantial increases in gradient driver power in a whole-body 3.0T magnet after removing the standard gradient coil. As such, any clinical whole-body 3.0T MR system could be upgraded with 3-4× improvement in gradient performance for brain imaging.
开发一种高效的头部成像磁场梯度线圈,在临床全身3.0T磁共振磁体中使用标准的1MVA梯度驱动器,在每个轴向上实现200mT/m和500T/m/s的性能。
一个内径为42cm的头部梯度线圈利用了全身3.0T磁体中89至91cm的可用温孔空间,方法是将初级线圈和屏蔽线圈绕组之间的径向间距增加到18.6cm。这需要拆除标准的全身梯度线圈和射频线圈。为了实现约为全身梯度线圈4倍的线圈效率,采用了具有不对称x-y轴和对称z轴的双层初级线圈设计。使用全空心导体对梯度线圈进行直接液冷,可实现≥50kW的总散热。
该设计实现了0.32mT/m/A的线圈效率,对于620A/1500V的驱动器,可实现200mT/m和500T/m/s的性能。该梯度线圈显著减小了回波间隔,并缩短了最小重复时间和回波时间。在高b = 10,000s/mm²的扩散成像中,回波时间(TE)< 50ms(与全身梯度线圈相比减少>50%)。该梯度线圈通过了美国放射学会关于梯度线性和畸变的测试,并满足了无显著风险操作的声学要求。
在拆除标准梯度线圈后,在全身3.0T磁体中实现了用于头部成像的超高梯度线圈性能,而无需大幅增加梯度驱动器功率。因此,任何临床全身3.0T磁共振系统都可以升级,使脑成像的梯度性能提高3至4倍。