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Radio-frequency energy quantification in magnetic resonance imaging.

机译:磁共振成像中的射频能量定量。

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摘要

Mapping of radio frequency (RF) energy deposition has been challenging for 50+ years, especially, when scanning patients in the magnetic resonance imaging (MRI) environment. As result, electromagnetic simulation software is often used for estimating the specific absorption rate (SAR), the rate of RF energy deposition in tissue. The thesis work presents challenges associated with aligning information provided by electromagnetic simulation and MRI experiments. As result of the limitations of simulations, experimental methods for the quantification of SAR were established. A system for quantification of the total RF energy deposition was developed for parallel transmit MRI (a system that uses multiple antennas to excite and image the body). The system is capable of monitoring and predicting channel-by-channel RF energy deposition, whole body SAR and capable of tracking potential hardware failures that occur in the transmit chain and may cause the deposition of excessive energy into patients. Similarly, we demonstrated that local RF power deposition can be mapped and predicted for parallel transmit systems based on a series of MRI temperature mapping acquisitions. Resulting from the work, we developed tools for optimal reconstruction temperature maps from MRI acquisitions. The tools developed for temperature mapping paved the way for utilizing MRI as a diagnostic tool for evaluation of RF/microwave emitting device safety. Quantification of the RF energy was demonstrated for both MRI compatible and non-MRI-compatible devices (such as cell phones), while having the advantage of being noninvasive, of providing millimeter resolution and high accuracy.
机译:50多年来,射频(RF)能量沉积的映射一直具有挑战性,尤其是在磁共振成像(MRI)环境中扫描患者时。结果,电磁仿真软件通常用于估计比吸收率(SAR),即组织中RF能量沉积的速率。论文工作提出了与电磁仿真和MRI实验提供的对齐信息相关的挑战。由于模拟的局限性,建立了定量SAR的实验方法。开发了一种用于量化总RF能量沉积的系统,用于并行传输MRI(该系统使用多个天线来激发和成像人体)。该系统能够监视和预测逐个通道的RF能量沉积,全身SAR,并能够跟踪在传输链中发生并可能导致过多能量沉积到患者体内的潜在硬件故障。同样,我们证明了基于一系列MRI温度映射采集,可以为并行传输系统映射和预测局部RF功率沉积。通过这项工作,我们开发了用于从MRI采集中获得最佳重建温度图的工具。为温度映射开发的工具为利用MRI作为评估RF /微波发射设备安全性的诊断工具铺平了道路。已经证明了针对MRI兼容和非MRI兼容设备(例如手机)的RF能量量化,同时具有无创,提供毫米分辨率和高精度的优势。

著录项

  • 作者

    Alon, Leeor.;

  • 作者单位

    New York University.;

  • 授予单位 New York University.;
  • 学科 Engineering Electronics and Electrical.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 209 p.
  • 总页数 209
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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