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基于加速积分方程法的MRI发射射频线圈快速电磁分析

Fast Electromagnetic Analysis of MRI Transmit RF Coils Based on Accelerated Integral Equation Methods.

作者信息

Villena Jorge Fernandez, Polimeridis Athanasios G, Eryaman Yigitcan, Adalsteinsson Elfar, Wald Lawrence L, White Jacob K, Daniel Luca

出版信息

IEEE Trans Biomed Eng. 2016 Nov;63(11):2250-2261. doi: 10.1109/TBME.2016.2521166. Epub 2016 Jan 22.

Abstract

A fast frequency domain full-wave electromagnetic simulation method is introduced for the analysis of MRI coils loaded with the realistic human body models. The approach is based on integral equation methods decomposed into two domains: 1) the RF coil array and shield, and 2) the human body region where the load is placed. The analysis of multiple coil designs is accelerated by introducing the precomputed magnetic resonance Green functions (MRGFs), which describe how the particular body model used responds to the incident fields from external sources. These MRGFs, which are precomputed once for a given body model, can be combined with any integral equation solver and reused for the analysis of many coil designs. This approach provides a fast, yet comprehensive, analysis of coil designs, including the port S-parameters and the electromagnetic field distribution within the inhomogeneous body. The method solves the full-wave electromagnetic problem for a head array in few minutes, achieving a speed up of over 150 folds with root mean square errors in the electromagnetic field maps smaller than 0.4% when compared to the unaccelerated integral equation-based solver. This enables the characterization of a large number of RF coil designs in a reasonable time, which is a first step toward an automatic optimization of multiple parameters in the design of transmit arrays, as illustrated in this paper, but also receive arrays.

摘要

本文介绍了一种快速频域全波电磁仿真方法,用于分析加载真实人体模型的磁共振成像(MRI)线圈。该方法基于积分方程法,分为两个域:1)射频线圈阵列和屏蔽层;2)放置负载的人体区域。通过引入预先计算的磁共振格林函数(MRGFs)来加速对多种线圈设计的分析,这些函数描述了所使用的特定人体模型对外部源入射场的响应。这些MRGFs针对给定人体模型只需预先计算一次,可与任何积分方程求解器结合,并可重复用于分析多种线圈设计。这种方法能够快速且全面地分析线圈设计,包括端口S参数和非均匀体内的电磁场分布。该方法在几分钟内就能解决头部阵列的全波电磁问题,与未加速的基于积分方程的求解器相比,速度提高了150倍以上,电磁场图中的均方根误差小于0.4%。这使得能够在合理的时间内对大量射频线圈设计进行表征,这是朝着自动优化发射阵列(如本文所示)以及接收阵列设计中的多个参数迈出的第一步。

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