Vanderbilt University Institute of Imaging Science, Vanderbilt University, Nashville, TN 37235, USA.
J Magn Reson. 2011 Jun;210(2):218-27. doi: 10.1016/j.jmr.2011.03.007. Epub 2011 Mar 8.
Dynamic B(0) shimming (DS) can produce better field homogeneity than static global shimming by dynamically updating slicewise shim values in a multislice acquisition. The performance of DS however is limited by eddy current fields produced by the switching of 2nd and 3rd order unshielded shims. In this work, we present a novel method of eddy field compensation (EFC) applied to higher order shim induced eddy current fields in multislice DS. This method does not require shim shielding, extra hardware for eddy current compensation or subject specific prescanning. The interactions between shim harmonics are modeled assuming steady state of the medium and long time constant, cross and self term eddy fields in a DS experiment and 'correction factors' characterizing the entire set of shim interactions are derived. The correction factors for a given time between shim switches are shown to be invariable with object scanned, shim switching pattern and actual shim values, allowing for their generalized prospective use. Phantom and human head, 2nd and 3rd order DS experiments performed without any hardware eddy current compensation using the technique show large reductions in field gradients and offsets leading to significant improvements in image quality. This method holds promise as an alternative to expensive hardware based eddy current compensation required in 2nd and 3rd order DS.
动态 B0 匀场(DS)可以通过在多切片采集时动态更新切片的匀场值来产生比静态全局匀场更好的磁场均匀性。然而,DS 的性能受到由未屏蔽的二阶和三阶匀场切换产生的涡流场的限制。在这项工作中,我们提出了一种新的涡流场补偿(EFC)方法,应用于多切片 DS 中的高阶匀场诱导涡流场。该方法不需要匀场屏蔽、用于涡流补偿的额外硬件或特定于主体的预扫描。假设介质处于稳态和长时间常数,在 DS 实验中交叉和自项涡流场,对匀场谐波之间的相互作用进行建模,并推导出描述整个匀场相互作用的“校正因子”。对于给定的匀场开关之间的时间,校正因子与被扫描的物体、匀场开关模式和实际的匀场值无关,允许对其进行广义的前瞻性使用。使用该技术进行的无任何硬件涡流补偿的 Phantom 和人头、二阶和三阶 DS 实验显示出磁场梯度和偏移的大幅降低,从而显著提高了图像质量。该方法有望成为二阶和三阶 DS 中所需的昂贵硬件涡流补偿的替代方法。