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使用发射线圈阵列进行并行激励。

Parallel excitation with an array of transmit coils.

作者信息

Zhu Yudong

机构信息

GE Corporate R&D Center, Niskayuna, New York 12309, USA.

出版信息

Magn Reson Med. 2004 Apr;51(4):775-84. doi: 10.1002/mrm.20011.

Abstract

Theoretical and experimental results are presented that establish the value of parallel excitation with a transmit coil array in accelerating excitation and managing RF power deposition. While a 2D or 3D excitation pulse can be used to induce a multidimensional transverse magnetization pattern for a variety of applications (e.g., a 2D localized pattern for accelerating spatial encoding during signal acquisition), it often involves the use of prolonged RF and gradient pulses. Given a parallel system that is composed of multiple transmit coils with corresponding RF pulse synthesizers and amplifiers, the results suggest that by exploiting the localization characteristics of the coils, an orchestrated play of shorter RF pulses can achieve desired excitation profiles faster without adding strains to gradients. A closed-form design for accelerated multidimensional excitations is described for the small-tip-angle regime, and its suppression of interfering aliasing lobes from coarse excitation k-space sampling is interpreted based on an analogy to sensitivity encoding (SENSE). With or without acceleration, the results also suggest that by taking advantage of the extra degrees of freedom inherent in a parallel system, parallel excitation provides better management of RF power deposition while facilitating the faithful production of desired excitation profiles. Sample accelerated and specific absorption rate (SAR)-reduced excitation pulses were designed in this study, and evaluated in experiments.

摘要

本文展示了理论和实验结果,证实了使用发射线圈阵列进行并行激励在加速激励和管理射频功率沉积方面的价值。虽然二维或三维激励脉冲可用于为各种应用诱导多维横向磁化模式(例如,在信号采集期间用于加速空间编码的二维局部模式),但这通常涉及使用延长的射频和梯度脉冲。对于由多个发射线圈以及相应的射频脉冲合成器和放大器组成的并行系统,结果表明,通过利用线圈的定位特性,精心编排较短射频脉冲的组合,可以更快地实现所需的激励分布,而不会给梯度增加负担。本文描述了小翻转角情况下加速多维激励的闭式设计,并基于与灵敏度编码(SENSE)的类比,解释了其对粗激励k空间采样产生的干扰混叠波瓣的抑制作用。无论是否进行加速,结果还表明,通过利用并行系统固有的额外自由度,并行激励在促进忠实生成所需激励分布的同时,能更好地管理射频功率沉积。本研究设计了样本加速且比吸收率(SAR)降低的激励脉冲,并进行了实验评估。

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