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Correcting for Strong Eddy Current Induced B0 Modulation Enables Two-Spoke RF Pulse Design with Parallel Transmission: Demonstration at 9.4T in the Human Brain

机译:校正强涡流感应的B0调制可实现具有并行传输的两辐RF脉冲设计:在人脑中以9.4T进行演示

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摘要

Successful implementation of homogeneous slice-selective RF excitation in the human brain at 9.4T using 16-channel parallel transmission (pTX) is demonstrated. A novel three-step pulse design method incorporating fast real-time measurement of eddy current induced B0 variations as well as correction of resulting phase errors during excitation is described. To demonstrate the utility of the proposed method, phantom and in-vivo experiments targeting a uniform excitation in an axial slice were conducted using two-spoke pTX pulses. Even with the pre-emphasis activated, eddy current induced B0 variations with peak-to-peak values greater than 4 kHz were observed on our system during the rapid switches of slice selective gradients. This large B0 variation, when not corrected, resulted in drastically degraded excitation fidelity with the coefficient of variation (CV) of the flip angle calculated for the region of interest being large (∼12% in the phantom and ∼35% in the brain). By comparison, excitation fidelity was effectively restored, and satisfactory flip angle uniformity was achieved when using the proposed method, with the CV value reduced to ∼3% in the phantom and ∼8% in the brain. Additionally, experimental results were in good agreement with the numerical predictions obtained from Bloch simulations. Slice-selective flip angle homogenization in the human brain at 9.4T using 16-channel 3D spoke pTX pulses is achievable despite of large eddy current induced excitation phase errors; correcting for the latter was critical in this success.
机译:演示了使用16通道并行传输(pTX)在9.4T的人脑中成功实现同质切片选择性RF激励的方法。描述了一种新颖的三步脉冲设计方法,该方法结合了涡流感应的B0变化的快速实时测量以及励磁过程中产生的相位误差的校正。为了证明该方法的实用性,使用两次辐照的pTX脉冲进行了针对轴向切片中均匀激发的幻像和体内实验。即使激活了预加重,在切片选择性梯度的快速切换过程中,在我们的系统上仍观察到涡流感应的B0变化,其峰峰值大于4 kHz。这种较大的B0变化未经纠正会导致激励保真度急剧下降,针对感兴趣区域计算的翻转角变化系数(CV)较大(幻像中约为12%,大脑中约为35%) 。相比之下,使用所提出的方法可以有效地恢复激励保真度,并获得令人满意的翻转角均匀性,幻像的CV值降低至约3%,大脑的CV值降低至约8%。此外,实验结果与从Bloch模拟获得的数值预测非常吻合。尽管存在大的涡流引起的励磁相位误差,但仍可实现在9.4T时使用16通道3D辐条pTX脉冲在人脑中进行切片选择的翻转角均匀化。纠正后者对于这一成功至关重要。

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