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Evaluation of active and passive shimming in magnetic resonance imaging

机译:磁共振成像中主动和被动匀场的评估

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摘要

Abstract: With higher magnet strengths for magnetic resonance imaging (MRI) units becoming more commonplace, both for animal imaging systems as well as whole-body in vivo systems, magnetic field distortions due to inhomogeneous distributions of magnetic susceptibility and air–tissue interfaces will become more intense. Further, the popularization of MRI-hybrid devices, such as positron emission tomography/MR or MR/radiotherapy hybrids, which rely on the assumption of geometric accuracy for their diagnostic or therapeutic effectiveness, will lead to greater restrictions on permissible geometric error. As a result, shimming procedures (methods by which the distortions induced on the main magnetic field, B0, are remedied) are requiring greater flexibility and corrective range. Shimming methods can be broadly classified into passive (using materials with magnetic properties to remedy field distortions through their passive response to B0) and active techniques (utilizing strategically placed and energized electric coils to produce corrective magnetic fields). Both these techniques have promise to address the additional challenges brought about by the changing MRI landscape. This work reviews traditional shimming methods and principles, and gives an overview of new and novel approaches to this ever-important issue in MRI.
机译:摘要:随着更高强度的磁共振成像(MRI)单元变得越来越普遍,无论对于动物成像系统还是全身体内系统,由于磁化率和空气-组织界面的不均匀分布而导致的磁场畸变将变得越来越普遍。更激烈。此外,依赖于几何精确度的假设来进行诊断或治疗的正电子发射断层扫描/ MR或MR /放射治疗混合体等MRI混合设备的普及,将导致对允许的几何误差的更大限制。结果,匀场程序(用于校正在主磁场B0上引起的畸变的方法)需要更大的灵活性和校正范围。匀场方法可大致分为无源(使用具有磁性的材料通过对B0的无源响应来纠正磁场畸变)和有源技术(利用有策略地放置并通电的电线圈产生校正磁场)。这两种技术都有望解决MRI格局变化带来的其他挑战。这项工作回顾了传统的匀场方法和原理,并对MRI中这一重要问题的新方法进行了概述。

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