Poole Michael, Bowtell Richard
Sir Peter Mansfield Magnetic Resonance Centre, School of Physics and Astronomy, University Park, Nottingham, NG7 2RD, UK.
MAGMA. 2008 Mar;21(1-2):31-40. doi: 10.1007/s10334-007-0102-2. Epub 2008 Jan 8.
The need for a homogeneous magnetic field in magnetic resonance imaging is well established, especially at high static magnetic field strengths where susceptibility-induced image distortions and signal losses become excessively large. Dynamic shim updating, where the optimal set of shim currents is applied for each slice during a multi-slice acquisition, has been shown to improve magnetic field homogeneity to a greater extent than conventional global shimming.
Here, in an initial feasibility study, we show via simulation that improved efficacy of shimming can be achieved by using the novel parcellated dynamic shimming method.
The results of these simulations indicate that parcellated dynamic shimming based on just linear shim terms can perform approximately as well as slice-based dynamic shimming with up to third-order shim terms.
This work shows that the effective magnetic field inhomogeneity can be further reduced if shimming and image data acquisition are sequentially performed over a series of compact, cuboidal sub-volumes rather than planes. Further work is needed to develop an imaging approach that can be used for the optimal implementation of parcellated dynamic shimming.
磁共振成像中对均匀磁场的需求已得到充分证实,尤其是在高静态磁场强度下,此时由磁化率引起的图像畸变和信号损失会变得过大。动态匀场更新是指在多层采集过程中为每个层面施加最佳的匀场电流集,与传统的全局匀场相比,它已被证明能在更大程度上提高磁场均匀性。
在此,在一项初步可行性研究中,我们通过模拟表明,使用新颖的分区动态匀场方法可以实现更高的匀场效率。
这些模拟结果表明,仅基于线性匀场项的分区动态匀场的性能与基于多达三阶匀场项的层面动态匀场大致相当。
这项工作表明,如果在一系列紧凑的长方体子体积而非平面上依次进行匀场和图像数据采集,则有效磁场不均匀性可进一步降低。需要进一步开展工作来开发一种可用于最佳实施分区动态匀场的成像方法。