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7T 下用于水选择性成像的交错二项式 k 点。

Interleaved binomial k -points for water-selective imaging at 7T.

机构信息

German Center for Neurodegenerative Diseases (DZNE), Bonn, Germany.

Siemens Healthcare GmbH, Erlangen, Germany.

出版信息

Magn Reson Med. 2022 Dec;88(6):2564-2572. doi: 10.1002/mrm.29376. Epub 2022 Aug 9.

Abstract

PURPOSE

We present a time-efficient water-selective, parallel transmit RF excitation pulse design for ultra-high field applications.

METHODS

The proposed pulse design method achieves flip angle homogenization at ultra-high fields by employing spatially nonselective -points pulses. In order to introduce water-selection, the concept of binomial pulses is applied. Due to the composite nature of -points, the pulse can be split into multiple binomial subpulse blocks shorter than half the precession period of fat, that are played out successively. Additional fat precession turns, that would otherwise impair the spectral response, can thus be avoided. Bloch simulations of the proposed interleaved binomial -points pulses were carried out and compared in terms of duration, homogeneity, fat suppression and pulse energy. For validation, in vivo MP-RAGE and 3D-EPI data were acquired.

RESULTS

Simulation results show that interleaved binomial -points pulses achieve shorter total pulse durations, improved flip angle homogeneity and more robust fat suppression compared to available methods. Interleaved binomial -points can be customized by changing the number of -points, the subpulse duration and the order of the binomial pulse. Using shorter subpulses, the number of -points can be increased and hence better homogeneity is achieved, while still maintaining short total pulse durations. Flip angle homogenization and fat suppression of interleaved binomial -points pulses is demonstrated in vivo at 7T, confirming Bloch simulation results.

CONCLUSION

In this work, we present a time efficient and robust parallel transmission technique for nonselective water excitation with simultaneous flip angle homogenization at ultra-high field.

摘要

目的

我们提出了一种适用于超高场应用的高效水选、并行发射 RF 激发脉冲设计方法。

方法

所提出的脉冲设计方法通过采用空间非选择性的 - 点脉冲实现了超高场的翻转角均匀化。为了引入水选择,应用了二项式脉冲的概念。由于 - 点的复合性质,脉冲可以被分成多个比脂肪进动周期短的二项式子脉冲块,这些子脉冲块依次播放。否则,会损害光谱响应的额外脂肪进动转弯可以避免。对所提出的交错二项式 - 点脉冲进行了布洛赫模拟,并在持续时间、均匀性、脂肪抑制和脉冲能量方面进行了比较。为了验证,采集了体内 MP-RAGE 和 3D-EPI 数据。

结果

模拟结果表明,交错二项式 - 点脉冲与现有方法相比,实现了更短的总脉冲持续时间、改善的翻转角均匀性和更稳健的脂肪抑制。交错二项式 - 点可以通过改变 - 点的数量、子脉冲的持续时间和二项式脉冲的顺序来定制。使用较短的子脉冲,可以增加 - 点的数量,从而实现更好的均匀性,同时仍然保持较短的总脉冲持续时间。在 7T 下进行了体内交错二项式 - 点脉冲的翻转角均匀化和脂肪抑制的实验,证实了布洛赫模拟结果。

结论

在这项工作中,我们提出了一种高效、稳健的非选择性水激发并行传输技术,可在超高场实现同时翻转角均匀化。

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