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Design and Optimization of a Novel Bored Biplanar Permanent-Magnet Assembly for Hybrid Magnetic Resonance Imaging Systems

机译:用于混合磁共振成像系统的新型镗孔双平面永磁体组件的设计和优化

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摘要

We present a novel design for a biplanar permanent-magnet assembly suitable for use in hybrid magnetic resonance imaging (MRI) systems. The key feature of our design is a large cylindrical hole that is longitudinally bored through the entire magnet assembly. The presence of the bore permits the potential inclusion of additional peripheral devices within or near the magnet structure that may benefit from being placed along, or oriented parallel to, the main magnetic field. In particular, the magnet assembly can be considered for use in an integrated system consisting of a 6 MV medical linear accelerator (linac) coupled to an MRI system for state-of-the-art real-time image-guided adaptive radiotherapy. We use magnetic field calculations based on the finite-element method (FEM) to quantify the detrimental effects of the bore on the field homogeneity in the imaging volume for pole-piece designs found commonly in industry. We then demonstrate that shape optimization of the pole pieces yields novel pole designs that lead to suitable levels of field homogeneity. We examined the resultant magnetic field within the bore for the optimized design and found that it has maximum field homogeneity.
机译:我们提出了一种适用于混合磁共振成像(MRI)系统的双平面永磁体组件的新颖设计。我们设计的关键特征是一个大的圆柱形孔,该孔沿纵向贯穿整个磁体组件。孔的存在允许潜在地在磁体结构内或附近包含其他外围设备,这些外围设备可能受益于沿主磁场放置或平行于主磁场放置。特别地,可以考虑将磁体组件用于由6 MV医用线性加速器(直线加速器)组成的集成系统,该集成系统与MRI系统耦合以进行最新的实时图像引导的自适应放射治疗。对于行业中常见的极靴设计,我们使用基于有限元方法(FEM)的磁场计算来量化孔对成像体积中场均匀性的有害影响。然后,我们证明极靴的形状优化会产生新颖的极靴设计,从而导致合适水平的场均匀性。我们检查了孔内的合成磁场以进行优化设计,发现它具有最大的磁场均匀性。

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