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7T 心脏成像中呼吸运动对电磁场和比吸收率的影响。

The impact of respiratory motion on electromagnetic fields and specific absorption rate in cardiac imaging at 7T.

机构信息

Physikalisch-Technische Bundesanstalt (PTB), Braunschweig and Berlin, Germany.

Center for Magnetic Resonance Research, University of Minnesota, Minneapolis, Minnesota, USA.

出版信息

Magn Reson Med. 2022 Dec;88(6):2645-2661. doi: 10.1002/mrm.29402. Epub 2022 Jul 30.

Abstract

PURPOSE

To present electromagnetic simulation setups for detailed analyses of respiration's impact on and E-fields, local specific absorption rate (SAR) and associated safety-limits for 7T cardiac imaging.

METHODS

Finite-difference time-domain electromagnetic field simulations were performed at five respiratory states using a breathing body model and a 16-element 7T body transceiver RF-coil array. and SAR are analyzed for fixed and moving coil configurations. SAR variations are investigated using phase/amplitude shimming considering (i) a local SAR-controlled mode (here SAR calculations consider RF amplitudes and phases) and (ii) a channel-wise power-controlled mode (SAR boundary calculation is independent of the channels' phases, only dependent on the channels' maximum amplitude).

RESULTS

Respiration-induced variations of both amplitude and phase are observed. The flip angle homogeneity depends on the respiratory state used for shimming; best results were achieved for shimming on inhale and exhale simultaneously ( ). The results reflect that respiration impacts position and amplitude of the local SAR maximum. With the local-SAR-control mode, a safety factor of up to 1.4 is needed to accommodate for respiratory variations while the power control mode appears respiration-robust when the coil moves with respiration (SAR peak decrease: 9% exhale→inhale). Instead, a spatially fixed coil setup yields higher SAR variations with respiration.

CONCLUSION

Respiratory motion does not only affect the distribution and hence the image contrast, but also location and magnitude of the peak spatial SAR. Therefore, respiration effects may need to be included in safety analyses of RF coils applied to the human thorax.

摘要

目的

提出用于详细分析呼吸对 和电场、局部比吸收率(SAR)以及 7T 心脏成像相关安全限制的电磁仿真设置。

方法

使用呼吸人体模型和 16 个元件的 7T 体收发射频线圈阵列,对五种呼吸状态进行了有限差分时域电磁场仿真。分析了固定和移动线圈配置的 和 SAR。考虑到(i)局部 SAR 控制模式(此处 SAR 计算考虑射频幅度和相位)和(ii)通道功率控制模式(SAR 边界计算与通道相位无关,仅与通道的最大幅度有关),使用相位/幅度调谐来研究 SAR 变化。

结果

观察到 幅度和相位的呼吸诱导变化。翻转角均匀性取决于用于调谐的呼吸状态;同时在吸气和呼气时进行调谐( )可获得最佳结果。结果表明,呼吸会影响局部 SAR 最大值的位置和幅度。使用局部 SAR 控制模式,需要安全系数高达 1.4 来适应呼吸变化,而在呼吸时线圈移动的情况下,功率控制模式表现出对呼吸的稳健性(SAR 峰值下降:9%呼气→吸气)。相反,具有空间固定线圈设置的线圈在呼吸时会产生更高的 SAR 变化。

结论

呼吸运动不仅会影响 分布,从而影响图像对比度,还会影响峰值空间 SAR 的位置和幅度。因此,在对人体胸部应用射频线圈的安全分析中,可能需要考虑呼吸效应。

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