Bieri O, Scheffler K
MR Physics, Department of Medical Radiology, University of Basel, Switzerland.
Magn Reson Med. 2005 Oct;54(4):901-7. doi: 10.1002/mrm.20619.
In balanced steady-state free precession (b-SSFP) sequences, uncompensated first-order moments of encoding gradients induce a nonconstant phase evolution for moving spins within the excitation train, resulting in signal loss and image artifacts. To restore these flow-related phase perturbations, "pairing" of consecutive phase-encoding (PE) steps is compared with a fully flow-compensated sequence using compensating gradient waveforms along all three encoding directions. In volunteer studies, the quality of images acquired with the "pairing" technique was comparable to that of images obtained with the fully flow-compensated technique, regardless of the selected view-ordering scheme used for data acquisition. Nevertheless, the results of phantom experiments indicate that the pairing technique becomes ineffective at flow velocities exceeding roughly 0.5-1 m/s. Consequently, the additional scan time required to null the first gradient moments in a flow-compensated b-SSFP sequence makes the "pairing" technique preferable for applications in which slow to moderate flow velocities can be expected.
在平衡稳态自由进动(b-SSFP)序列中,编码梯度的未补偿一阶矩会导致激发脉冲串内移动自旋的相位演变不恒定,从而造成信号损失和图像伪影。为了恢复这些与流动相关的相位扰动,将连续相位编码(PE)步骤的“配对”与使用沿所有三个编码方向的补偿梯度波形的完全流动补偿序列进行比较。在志愿者研究中,无论用于数据采集的所选视图排序方案如何,用“配对”技术采集的图像质量与用完全流动补偿技术获得的图像质量相当。然而,体模实验结果表明,配对技术在流速超过约0.5-1米/秒时变得无效。因此,在流动补偿b-SSFP序列中消除第一梯度矩所需的额外扫描时间使得“配对”技术更适合于预期流速较慢至中等的应用。