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一种优化用于 9.4T 人脑匀场的 32 通道多线圈设置。

A 32-channel multi-coil setup optimized for human brain shimming at 9.4T.

机构信息

High-Field Magnetic Resonance Center, Max Planck Institute for Biological Cybernetics, Tuebingen, Germany.

IMPRS for Cognitive and Systems Neuroscience, University of Tuebingen, Tuebingen, Germany.

出版信息

Magn Reson Med. 2020 Feb;83(2):749-764. doi: 10.1002/mrm.27929. Epub 2019 Sep 4.

Abstract

PURPOSE

A multi-coil shim setup is designed and optimized for human brain shimming. Here, the size and position of a set of square coils are optimized to improve the shim performance without increasing the number of local coils. Utilizing such a setup is especially beneficial at ultrahigh fields where B inhomogeneity in the human brain is more severe.

METHODS

The optimization started with a symmetric arrangement of 32 independent coils. Three parameters per coil were optimized in parallel, including angular and axial positions on a cylinder surface and size of the coil, which were constrained by cylinder size, construction consideration, and amplifiers specifications. B maps were acquired at 9.4T in 8 healthy volunteers for use as training data. The global and dynamic shimming performance of the optimized multi-coil were compared in simulations and measurements to a symmetric design and to the scanner's second-order shim setup, respectively.

RESULTS

The optimized multi-coil performs better by 14.7% based on standard deviation (SD) improvement with constrained global shimming in comparison to the symmetric positioning of the coils. Global shimming performance was comparable with a symmetric 65-channel multi-coil and full fifth-order spherical harmonic shim coils. On average, an SD of 48.4 and 31.9 Hz was achieved for in vivo measurements after global and dynamic slice-wise shimming, respectively.

CONCLUSIONS

An optimized multi-coil shim setup was designed and constructed for human whole-brain shimming. Similar performance of the multi-coils with many channels can be achieved with a fewer number of channels when the coils are optimally arranged around the target.

摘要

目的

设计并优化了一种用于人脑匀场的多线圈匀场套件。在此,通过优化一组方型线圈的尺寸和位置,在不增加局部线圈数量的情况下,提高了匀场性能。在超高场强下(此时人脑中的 B 不均匀性更为严重),这种套件的使用尤其有益。

方法

优化从 32 个独立线圈的对称布置开始。每个线圈的三个参数(线圈在圆柱表面上的角度和轴向位置以及线圈尺寸)被并行优化,这些参数受到圆柱尺寸、结构考虑因素和放大器规格的限制。在 9.4T 下对 8 名健康志愿者进行 B 映射采集,作为训练数据。在仿真和测量中,将优化后的多线圈的全局和动态匀场性能与对称设计和扫描仪的二阶匀场套件进行了比较。

结果

与线圈的对称定位相比,基于标准偏差(SD)改善的约束全局匀场,优化后的多线圈性能提高了 14.7%。全局匀场性能与对称的 65 通道多线圈和全五阶球谐匀场线圈相当。在体内测量中,分别进行全局和动态切片匀场后,平均可实现 48.4Hz 和 31.9Hz 的 SD。

结论

为人体全脑匀场设计并构建了一种优化的多线圈匀场套件。当线圈在目标周围最佳排列时,可以用较少的线圈数量实现具有更多通道的多线圈的相似性能。

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