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分段式射频屏蔽设计,可将低场哈尔巴赫MRI系统中的涡流降至最低。

Segmented RF shield design to minimize eddy currents for low-field Halbach MRI systems.

作者信息

de Vos Bart, Remis Rob, Webb Andrew

机构信息

C.J. Gorter MRI center, Radiology, Leiden University Center, Leiden, The Netherlands; Terahertz Sensing, Microelectronics, Delft University of Technology, Delft, The Netherlands.

Terahertz Sensing, Microelectronics, Delft University of Technology, Delft, The Netherlands.

出版信息

J Magn Reson. 2024 May;362:107669. doi: 10.1016/j.jmr.2024.107669. Epub 2024 Apr 9.

Abstract

MRI systems have a thin conducting layer placed between the gradient and RF coils, this acts as a shield at the RF-frequency, minimizing noise coupled into the experiment, and decreasing the coupling between the RF and gradient coils. Ideally, this layer should be transparent to the gradient fields to reduce eddy currents. In this work the design of such a shield, specifically for low-field point-of-care Halbach based MRI devices, is discussed. A segmented double layer shield is designed and constructed based on eddy current simulations. Subsequently, the performance of the improved shield is compared to a reference shield by measuring the eddy current decay times as well as using noise measurements. A maximum reduction factor of 2.9 in the eddy current decay time is observed. The segmented shield couples in an equivalent amount of noise when compared to the unsegmented reference shield. Turbo spin echo images of a phantom and the brain of a healthy volunteer show improvements in terms of blurring using the segmented shield.

摘要

磁共振成像(MRI)系统在梯度线圈和射频(RF)线圈之间有一层薄导电层,这层导电层在射频频率下起到屏蔽作用,将耦合到实验中的噪声降至最低,并减少RF线圈和梯度线圈之间的耦合。理想情况下,这层应该对梯度场透明,以减少涡流。在这项工作中,讨论了这种屏蔽的设计,特别是针对基于哈尔巴赫阵列的低场即时护理MRI设备。基于涡流模拟设计并构建了分段双层屏蔽。随后,通过测量涡流衰减时间以及进行噪声测量,将改进后的屏蔽性能与参考屏蔽进行比较。观察到涡流衰减时间的最大降低系数为2.9。与未分段的参考屏蔽相比,分段屏蔽耦合的噪声量相当。使用分段屏蔽对体模和健康志愿者大脑进行的快速自旋回波成像在模糊度方面有所改善。

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