Weber Hans, Haas Martin, Kokorin Denis, Gallichan Daniel, Hennig Jürgen, Zaitsev Maxim
University Medical Center Freiburg, Department of Radiology - Medical Physics, Freiburg, Germany.
Magn Reson Med. 2014 Jul;72(1):112-23. doi: 10.1002/mrm.24906. Epub 2013 Sep 4.
Nonlinear spatial encoding magnetic fields allow excitation and geometrically matched local encoding of curved slices. However, the nonlinearity of the fields results in a varying slice thickness. Within this study, the technique is combined with multidimensional RF excitation for local adaptation of the slice shape.
A framework originally developed for nonlinear receive encoding is applied to multidimensional excitation with nonlinear spatial encoding magnetic fields for determination of dedicated target patterns and combined with a model for assessment of minimum transmit-resolution requirements for the design of efficient transmit k-space trajectories.
Cross-sections of curved slices acquired in a phantom with both locally adapted slice thickness and curvature are evaluated. In addition, resulting voxel shapes are analyzed to investigate the range of applicability of the technique. Finally, slice-thickness adaptation is applied to in vivo curved slice imaging.
Local adaptation of the slice thickness is feasible both in phantom and in vivo. The technique further allows local adaptation of the slice curvature. However, its range of applicability is limited by prolonged pulse duration and voxel shape distortion.
Multidimensional excitation allows imaging of curved slices with constant thickness. It also has the potential for further modification of the slice shape for increased ability to adapt to the anatomy.
非线性空间编码磁场允许对弯曲切片进行激发和几何匹配的局部编码。然而,磁场的非线性会导致切片厚度变化。在本研究中,该技术与多维射频激发相结合,以实现切片形状的局部适配。
最初为非线性接收编码开发的一个框架被应用于具有非线性空间编码磁场的多维激发,以确定专用目标模式,并与一个用于评估高效发射k空间轨迹设计的最小发射分辨率要求的模型相结合。
评估在体模中采集的具有局部适配的切片厚度和曲率的弯曲切片的横截面。此外,分析所得体素形状以研究该技术的适用范围。最后,将切片厚度适配应用于体内弯曲切片成像。
在体模和体内对切片厚度进行局部适配都是可行的。该技术还允许对切片曲率进行局部适配。然而,其适用范围受到脉冲持续时间延长和体素形状失真的限制。
多维激发允许对厚度恒定的弯曲切片进行成像。它还有进一步修改切片形状以增强适应解剖结构能力的潜力。