Vanderbilt University Institute of Imaging Science, Vanderbilt University, Nashville, TN 37235, USA.
Magn Reson Imaging. 2011 May;29(4):483-96. doi: 10.1016/j.mri.2011.01.002. Epub 2011 Mar 12.
Dynamic slice-wise shimming improves B0 field homogeneity by updating shim coil currents for every slice in a multislice acquisition, producing better field homogeneity over a volume than can be obtained by a single static global shim. The first aim of this work was to evaluate the performance of slice-wise field-map-based second-order dynamic shimming in a human high-field 7 T clinical scanner vis-à-vis image based second order static global shimming. Another goal was to characterize eddy currents induced by second and third order shim switching. A final aim was to compare global and dynamic shimming through shim orders to elucidate the relative benefits of going to higher orders and to dynamic shim updating from a static shimming regime. An external hardware module was used to store and dynamically update slice-optimized shim values during multislice data acquisition. High-bandwidth multislice gradient echo scans with B0 field mapping and low-bandwidth single-shot echo planar scans were performed on phantoms and humans using second-order dynamic and static global shims. For the measurement of second and third order shim induced eddy currents, step response temporal phase changes of individual shims were measured and fit to shim harmonics spatially and to multiexponential decay functions temporally. Finally, an order-wise field-map-based comparison was performed with first, second and third order global static shimming, first and second order dynamic shimming, as well as combined second or third order global and first order dynamic shim. Dynamic shimming considerably improved B0 homogeneity compared to static global shimming both in phantoms and in human subjects, reducing image distortion and signal dropout. The unshielded second and third order shims generated strong B0 and self and cross-term eddy fields, with multiple time constants ranging from milliseconds to seconds. Field homogeneity improved with increasing order of shim, with dynamic shimming performing better than global shimming. Hybrid global and dynamic shimming approach yielded field homogeneity better than global static shims but worse than dynamic shims.
动态切片式匀场通过为多切片采集中的每个切片更新匀场线圈电流来改善 B0 场的均匀性,从而比单个静态全局匀场在体积内产生更好的场均匀性。这项工作的首要目标是评估基于切片的场图的二阶动态匀场在人高场 7T 临床扫描仪中的性能,与基于图像的二阶静态全局匀场相比。另一个目标是表征二阶和三阶匀场切换引起的涡流。最终目标是通过匀场阶数比较全局匀场和动态匀场,阐明提高阶数和从静态匀场模式切换到动态匀场更新的相对益处。外部硬件模块用于在多切片数据采集期间存储和动态更新切片优化的匀场值。使用二阶动态和静态全局匀场在体模和人体上进行了具有 B0 场映射的高通量多切片梯度回波扫描和低带宽单次回波平面扫描。为了测量二阶和三阶匀场引起的涡流,测量了各个匀场的阶跃响应时相变化,并将其拟合到匀场谐波的空间和多指数衰减函数的时间。最后,基于阶数进行了场图比较,比较了一阶、二阶和三阶全局静态匀场、一阶和二阶动态匀场以及二阶或三阶全局和一阶动态匀场的组合。与静态全局匀场相比,动态匀场在体模和人体中都大大改善了 B0 均匀性,减少了图像失真和信号丢失。未屏蔽的二阶和三阶匀场产生了很强的 B0 和自和交叉项涡流,具有从毫秒到秒的多个时间常数。随着匀场阶数的增加,磁场均匀性得到改善,动态匀场的性能优于全局匀场。混合全局和动态匀场方法产生的场均匀性优于全局静态匀场,但不如动态匀场。