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RF Pulse Design for Parallel Excitation in Magnetic Resonance Imaging

机译:磁共振成像中并行激励的射频脉冲设计

摘要

Parallel excitation is an emerging technique to improve or accelerate multi-dimensional spatially selective excitations in magnetic resonance imaging (MRI) using multi-channel transmit arrays. The technique has potential in many applications, such as accelerating imaging speed, mitigating field inhomogeneity in high-field MRI, and alleviating the susceptibility artifact in functional MRI (fMRI). In these applications, controlling radiofrequency (RF) power deposition (quantified by Specific Absorption Rate, or SAR) under safe limit is a critical issue, particularly in high-field MRI. This dissertation will start with a review of multidimensional spatially selective excitation in MRI and current parallel excitation techniques. Then it will present two new RF pulse design methods to achieve reduced local/global SAR for parallel excitation while preserving the time duration and excitation pattern quality. Simulations incorporating human-model based tissue density and dielectric property were performed. Results have show that the proposed methods can achieve significant SAR reductions without enlonging the pulse duration at high-fields.
机译:并行激励是一种新兴技术,可使用多通道发射阵列改善或加速磁共振成像(MRI)中的多维空间选择性激励。该技术在许多应用中具有潜力,例如加快成像速度,减轻高场MRI中的场不均匀性以及减轻功能MRI(fMRI)中的磁化伪影。在这些应用中,控制射频(RF)功率沉积(通过比吸收率或SAR量化)在安全限制内是一个关键问题,尤其是在高场MRI中。本文将从对MRI中多维空间选择性激励和当前并行激励技术的回顾开始。然后,它将提出两种新的RF脉冲设计方法,以实现并行激励的减小的局部/全局SAR,同时保留持续时间和激励模式质量。进行了基于人体模型的组织密度和介电特性的模拟。结果表明,所提出的方法可以在不延长高场脉冲持续时间的情况下,显着降低SAR。

著录项

  • 作者

    Liu Yinan;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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