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Investigation of multichannel phased array performance for fetal MR imaging on 1.5T clinical MR system

机译:在1.5T临床MR系统上进行胎儿MR成像的多通道相控阵性能研究

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Fetal MRI on 1.5T clinical scanner has been increasingly becoming a powerful imaging tool for studying fetal brain abnormalities in vivo. Due to limited availability of dedicated fetal phased arrays, commercial torso or cardiac phased arrays are routinely used for fetal scans, which are unable to provide optimized SNR and parallel imaging performance with a small number coil elements, and insufficient coverage and filling factor. This poses a demand for the investigation and development of dedicated and efficient radiofrequency (RF) hardware to improve fetal imaging. In this work, an investigational approach to simulate the performance of multichannel flexible phased arrays is proposed to find a better solution to fetal MR imaging. A 32 channel fetal array is presented to increase coil sensitivity, coverage and parallel imaging performance. The electromagnetic field distribution of each element of the fetal array is numerically simulated by using finite-difference timedomain (FDTD) method. The array performance, including B1 coverage, parallel reconstructed images and artifact power, is then theoretically calculated and compared with the torso array. Study results show that the proposed array is capable of increasing B1 field strength as well as sensitivity homogeneity in the entire area of uterus. This would ensure high quality imaging regardless of the location of the fetus in the uterus. In addition, the paralleling imaging performance of the proposed fetal array is validated by using artifact power comparison with torso array. These results demonstrate the feasibility of the 32 channel flexible array for fetal MR imaging at 1.5T.
机译:1.5T临床扫描仪上的胎儿MRI越来越成为一种用于研究体内胎儿脑异常的强大成像工具。由于专用胎儿相控阵列的可用性有限,常规地将商业躯干或心脏相控阵列用于胎儿扫描,这些扫描无法通过少量线圈元件以及不足的覆盖率和填充因子来提供优化的SNR和并行成像性能。这就要求研究和开发专用且有效的射频(RF)硬件以改善胎儿成像。在这项工作中,提出了一种研究方法来模拟多通道柔性相控阵的性能,以找到更好的胎儿MR成像解决方案。提出了32通道胎儿阵列,以提高线圈灵敏度,覆盖范围和并行成像性能。使用有限差分时域(FDTD)方法对胎儿阵列中每个元素的电磁场分布进行数值模拟。然后,从理论上计算阵列性能,包括B1覆盖率,并行重建的图像和伪像功率,并将其与躯干阵列进行比较。研究结果表明,所提出的阵列能够在整个子宫区域增加B1场强度以及灵敏度均匀性。不管胎儿在子宫中的位置如何,这将确保高质量的成像。此外,通过与躯干阵列进行伪像功率比较,验证了提出的胎儿阵列的平行成像性能。这些结果证明了32通道柔性阵列在1.5T时进行胎儿MR成像的可行性。

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