Wu Xiaoping, Schmitter Sebastian, Auerbach Edward J, Uğurbil Kâmil, Van de Moortele Pierre-François
University of Minnesota Medical School, Center for Magnetic Resonance Research, Minneapolis, Minnesota, USA.
Magn Reson Med. 2016 Apr;75(4):1444-56. doi: 10.1002/mrm.25689. Epub 2015 May 20.
We propose a new slab-wise framework to design parallel transmit multiband pulses for volumetric simultaneous multislice imaging with a large field of view along the slice direction (FOVs).
The slab-wise framework divides FOVs into a few contiguous slabs and optimizes pulses for each slab. Effects of relevant design parameters including slab number and transmit B1 (B1+) mapping slice placement were investigated for human brain imaging by designing pulses with global or local SAR control based on electromagnetic simulations of a 7T head RF array. Pulse design using in vivo B1+ maps was demonstrated and evaluated with Bloch simulations.
RF performance with respect to SAR reduction or B1+ homogenization across the entire human brain improved with increasing slabs; however, this improvement was nonlinear and leveled off at ∼12 slabs when the slab thickness reduced to ∼12 mm. The impact of using different slice placements for B1+ mapping was small.
Compared with slice-wise approaches where each of the many imaging slices requires both B1+ mapping and pulse optimization, the proposed slab-wise design framework attained comparable RF performance while drastically reducing the number of required pulses; therefore, it can be used to increase time efficiency for B1+ mapping, pulse calculation, and sequence preparation.
我们提出一种新的逐块框架,用于设计并行发射多波段脉冲,以实现沿切片方向具有大视野(FOV)的容积同时多层成像。
逐块框架将视野划分为几个相邻的块,并为每个块优化脉冲。通过基于7T头部射频阵列的电磁模拟设计具有全局或局部比吸收率(SAR)控制的脉冲,研究了包括块数和发射B1(B1+)映射切片位置在内的相关设计参数对人脑成像的影响。使用体内B1+图谱进行脉冲设计,并通过布洛赫模拟进行评估。
随着块数增加,在整个人脑中,相对于SAR降低或B1+均匀化的射频性能得到改善;然而,这种改善是非线性的,当块厚度减小到约12mm时,在约12个块时趋于平稳。使用不同切片位置进行B1+映射的影响较小。
与逐片方法相比,在逐片方法中许多成像切片中的每一个都需要B1+映射和脉冲优化,所提出的逐块设计框架在大幅减少所需脉冲数量的同时获得了相当的射频性能;因此,它可用于提高B1+映射、脉冲计算和序列准备的时间效率。