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涡电流、麦克斯韦和梯度场校正对三维电影相位对比磁共振成像(3D CINE PC-MRI)数据三维血流可视化的影响。

Influence of eddy current, Maxwell and gradient field corrections on 3D flow visualization of 3D CINE PC-MRI data.

作者信息

Lorenz Ramona, Bock Jelena, Snyder Jeff, Korvink Jan G, Jung Bernd A, Markl Michael

机构信息

Department of Radiology, Medical Physics, University Medical Center Freiburg, Freiburg, Germany.

出版信息

Magn Reson Med. 2014 Jul;72(1):33-40. doi: 10.1002/mrm.24885. Epub 2013 Sep 4.

Abstract

PURPOSE

The measurement of velocities based on phase contrast MRI can be subject to different phase offset errors which can affect the accuracy of velocity data. The purpose of this study was to determine the impact of these inaccuracies and to evaluate different correction strategies on three-dimensional visualization.

METHODS

Phase contrast MRI was performed on a 3 T system (Siemens Trio) for in vitro (curved/straight tube models; venc: 0.3 m/s) and in vivo (aorta/intracranial vasculature; venc: 1.5/0.4 m/s) data. For comparison of the impact of different magnetic field gradient designs, in vitro data was additionally acquired on a wide bore 1.5 T system (Siemens Espree). Different correction methods were applied to correct for eddy currents, Maxwell terms, and gradient field inhomogeneities.

RESULTS

The application of phase offset correction methods lead to an improvement of three-dimensional particle trace visualization and count. The most pronounced differences were found for in vivo/in vitro data (68%/82% more particle traces) acquired with a low venc (0.3 m/s/0.4 m/s, respectively). In vivo data acquired with high venc (1.5 m/s) showed noticeable but only minor improvement.

CONCLUSION

This study suggests that the correction of phase offset errors can be important for a more reliable visualization of particle traces but is strongly dependent on the velocity sensitivity, object geometry, and gradient coil design.

摘要

目的

基于相位对比磁共振成像(MRI)测量速度可能会受到不同的相位偏移误差影响,这会影响速度数据的准确性。本研究的目的是确定这些误差的影响,并评估不同校正策略对三维可视化的作用。

方法

在3T系统(西门子Trio)上进行相位对比MRI,获取体外(弯曲/直管模型;流速编码[venc]:0.3m/s)和体内(主动脉/颅内血管系统;venc:1.5/0.4m/s)数据。为比较不同磁场梯度设计的影响,还在宽孔径1.5T系统(西门子Espree)上获取了体外数据。应用不同的校正方法来校正涡流、麦克斯韦项和梯度场不均匀性。

结果

应用相位偏移校正方法可改善三维粒子轨迹可视化及计数。在低venc(分别为0.3m/s/0.4m/s)获取的体内/体外数据中发现最显著差异(粒子轨迹分别增加68%/82%)。高venc(1.5m/s)获取的体内数据显示有明显但较小的改善。

结论

本研究表明,校正相位偏移误差对于更可靠地可视化粒子轨迹可能很重要,但强烈依赖于速度敏感性、物体几何形状和梯度线圈设计。

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