永磁磁共振成像系统中极板对梯度线圈设计的影响

IF 0.9 4区 医学 Q4 CHEMISTRY, PHYSICAL
Yajie Xu, Hector Sanchez Lopez, Qiaoyan Chen, Xiaodong Yang
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引用次数: 1

摘要

永磁MRI系统中的极板由于其纯铁材料的感应电流,对梯度线圈的强度、线性度和电感产生严重影响。为了提高梯度线圈的性能,建立了一种基于z型梯度线圈的改进极板镜像电流模型。将Levenberg-Marquardt (LM)算法应用于有和没有电流密度系数约束的梯度线圈优化,电流密度系数决定了线圈的复杂度和结构。在最优约束半径为4.466和4.942时,纵向梯度线圈和横向梯度线圈的梯度场误差的最小平方分别为和。结合线性度、电感和场误差的优化结果与原MC模型相比,这三个参数都有显著改善,证明了改进的MC模型和LM优化算法在梯度线圈结构中补偿极板效应的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pole plate effected gradient coils design in permanent magnet MRI system

Pole plate in permanent magnet MRI system leads to serious impact on the strength, linearity, and inductance of gradient coils due to the induced current of its pure iron material. In this article, a modified mirror current (MC) model of pole plate based on z gradient coil is established, aiming at improving gradient coil performance. Levenberg-Marquardt (LM) algorithm is applied for the gradient coil optimization with and without constraint of the current density coefficient that determines the coil complexity and structure. With the optimal constraint radius 4.466 and 4.942, the minimum square of gradient field errors are obtained as and for longitudinal and transverse gradient coils, respectively. Optimization results combining linearity, inductance and field error ameliorate all three parameters prominently comparing with the original MC model, which proves the efficiency of the modified MC model and LM optimization algorithm in gradient coil construction to compensate the pole plate effect.

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来源期刊
CiteScore
2.60
自引率
0.00%
发文量
3
审稿时长
>12 weeks
期刊介绍: Concepts in Magnetic Resonance Part B brings together engineers and physicists involved in the design and development of hardware and software employed in magnetic resonance techniques. The journal welcomes contributions predominantly from the fields of magnetic resonance imaging (MRI), nuclear magnetic resonance (NMR), and electron paramagnetic resonance (EPR), but also encourages submissions relating to less common magnetic resonance imaging and analytical methods. Contributors come from both academia and industry, to report the latest advancements in the development of instrumentation and computer programming to underpin medical, non-medical, and analytical magnetic resonance techniques.
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