Anderson Adam W
Department of Biomedical Engineering, Vanderbilt University, Station B 351631, Nashville, TN 37235, USA; Department of Radiology and Radiological Sciences, Vanderbilt University Medical Center, 1161 21st Avenue South, Nashville, TN 37232, USA.
Magn Reson Imaging. 2017 Feb;36:187-209. doi: 10.1016/j.mri.2016.10.017. Epub 2016 Oct 29.
A new target-field approach to generating uniform radio frequency (RF) fields within the human body for high field MRI is described. The method involves producing a set of external fields which, after interaction with a dielectric object, superimpose to produce a traveling plane wave, exposing all spins to the same RF amplitude (B1) over a cycle of the harmonic field. Conceptually this is similar to conventional RF shimming, but uses a different RF source design, input data, and objective function. The method requires a detailed knowledge of the coupling between exterior field modes, produced by an array of RF sources, and field modes within the body. Given an estimate of the coupling matrix, the linear superposition of external modes that produces a desired internal target field can be determined. The new method is termed Traveling Internal Plane-wave Synthesis (TIPS). A simple design of a coil array is described that can, in principle, generate the required field modes. Simulations demonstrate that radio frequency magnetic fields of nearly uniform (<1% variation) magnitude can be produced within dielectric objects larger than a wavelength in size. If the dielectric medium has non-zero conductivity, traveling waves are attenuated as they traverse the object, but field uniformity within planar slices is preserved. For general 3D imaging, a superposition of plane waves can provide field focusing to balance conductive losses, thereby achieving nearly uniform-magnitude B1+ magnetic fields over a volume of interest.
描述了一种用于高场磁共振成像(MRI)在人体内部生成均匀射频(RF)场的新目标场方法。该方法包括产生一组外部场,这些外部场在与介电物体相互作用后叠加产生一个行波平面波,使所有自旋在谐波场的一个周期内暴露于相同的射频幅度(B1)。从概念上讲,这类似于传统的射频匀场,但使用了不同的射频源设计、输入数据和目标函数。该方法需要详细了解由射频源阵列产生的外部场模式与体内场模式之间的耦合。给定耦合矩阵的估计值,就可以确定产生所需内部目标场的外部模式的线性叠加。这种新方法被称为行波内部平面波合成(TIPS)。描述了一种线圈阵列的简单设计,原则上它可以产生所需的场模式。模拟表明,在尺寸大于波长的介电物体内部可以产生幅度几乎均匀(变化<1%)的射频磁场。如果介电介质具有非零电导率,行波在穿过物体时会衰减,但平面切片内的场均匀性得以保留。对于一般的三维成像,平面波的叠加可以提供场聚焦以平衡传导损耗,从而在感兴趣的体积内实现幅度几乎均匀的B1+磁场。