Institute for Biomedical Engineering, ETH Zurich and University of Zurich, Zurich, Switzerland.
Philips GmbH Innovative Technologies, Hamburg, Germany.
Magn Reson Med. 2018 Jun;79(6):3256-3266. doi: 10.1002/mrm.26954. Epub 2017 Oct 5.
The goal of this study was to devise a gradient system for MRI in humans that reconciles cutting-edge gradient strength with rapid switching and brings up the duty cycle to 100% at full continuous amplitude. Aiming to advance neuroimaging and short-T techniques, the hardware design focused on the head and the extremities as target anatomies.
A boundary element method with minimization of power dissipation and stored magnetic energy was used to design anatomy-targeted gradient coils with maximally relaxed geometry constraints. The design relies on hollow conductors for high-performance cooling and split coils to enable dual-mode gradient amplifier operation. With this approach, strength and slew rate specifications of either 100 mT/m with 1200 mT/m/ms or 200 mT/m with 600 mT/m/ms were reached at 100% duty cycle, assuming a standard gradient amplifier and cooling unit.
After manufacturing, the specified values for maximum gradient strength, maximum switching rate, and field geometry were verified experimentally. In temperature measurements, maximum local values of 63°C were observed, confirming that the device can be operated continuously at full amplitude. Testing for peripheral nerve stimulation showed nearly unrestricted applicability in humans at full gradient performance. In measurements of acoustic noise, a maximum average sound pressure level of 132 dB(A) was determined. In vivo capability was demonstrated by head and knee imaging. Full gradient performance was employed with echo planar and zero echo time readouts.
Combining extreme gradient strength and switching speed without duty cycle limitations, the described system offers unprecedented options for rapid and short-T imaging. Magn Reson Med 79:3256-3266, 2018. © 2017 International Society for Magnetic Resonance in Medicine.
本研究旨在设计一种适用于人体 MRI 的梯度系统,该系统将尖端梯度强度与快速切换相结合,并将占空比提高到全连续幅度的 100%。该硬件设计旨在推进神经影像学和短 T 技术,其目标解剖结构为头部和四肢。
采用最小化功率耗散和存储磁能的边界元法,设计具有最大弛豫几何约束的针对解剖结构的梯度线圈。该设计依赖于空心导体来实现高性能冷却,并采用分裂线圈来实现双模式梯度放大器操作。通过这种方法,在假设标准梯度放大器和冷却单元的情况下,达到了 100%占空比的 100mT/m 与 1200mT/m/ms 或 200mT/m 与 600mT/m/ms 的强度和上升速率规格。
在制造之后,通过实验验证了最大梯度强度、最大切换速率和场几何形状的指定值。在温度测量中,观察到最大局部值为 63°C,这证实了该设备可以在全振幅下连续运行。在对周围神经刺激的测试中,在全梯度性能下,在人体中几乎可以无限制地应用。在声噪声测量中,确定了最大平均声压级为 132dB(A)。通过头部和膝关节成像证明了体内的能力。使用回波平面和零回波时间读取进行全梯度性能成像。
该系统结合了极端梯度强度和切换速度,而无占空比限制,为快速和短 T 成像提供了前所未有的选择。磁共振医学 79:3256-3266, 2018。© 2017 国际磁共振学会。