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Radio-frequency coil design for high-field magnetic resonance imaging.

机译:用于高场磁共振成像的射频线圈设计。

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Magnetic resonance imaging (MRI) is a valuable medical diagnostic tool that uses the interaction of strong magnetic fields and atomic nuclei in biological tissues to obtain high-resolution tomographic images of patients. It is also a fast growing research field dominated by functional MRI (fMRI), which allows real-time monitoring of neuronal activity in the brain. The demanding nature of this new research necessitates the move towards higher and higher magnetic field strength to improve image signal-to-noise ratio (SNR).; The MRI radio-frequency (RF) coil is a critical component of an MRI system that excites the nuclei in the sample and receives the signal that is reconstructed into the image. RF coil quality is as important to the image SNR as the primary magnetic field strength. However, designing RF coils for high-field MRI is a difficult challenge, since the older designs do not scale well to higher frequency (which increases linearly with magnetic field strength), and good high-frequency coil modeling tools are not available.; In this project, unconventional RF coil designs and simulation tools are developed with a goal of overcoming the limitations of existing coil technology and modeling methodology. The new modeling tools are based on the multi-conductor transmission (MTL) line theory and the method of lines (MoL). These methods enable high-frequency coil design and optimization without requiring excessive computational resources typical of traditional three-dimensional numerical approaches.; The modeling methods are applied to practical coil design, resulting in the development of the microstrip TEM resonator volume coil concept and the construction of prototype coils. A dual-coil system designed for brain imaging in small rodents at 4.7 T (200 MHz) produced excellent images of the entire brain. A larger volume coil designed for imaging rhesus monkeys at 4.7 T also demonstrated good results.
机译:磁共振成像(MRI)是一种有价值的医学诊断工具,它利用强磁场和生物组织中的原子核相互作用来获得患者的高分辨率断层图像。它也是功能性MRI(fMRI)主导的快速发展的研究领域,可以实时监控大脑中的神经元活动。这项新研究的苛刻性质要求朝着越来越高的磁场强度方向发展,以改善图像信噪比(SNR)。 MRI射频(RF)线圈是MRI系统的重要组成部分,它可以激发样品中的原子核并接收重建为图像的信号。 RF线圈质量对图像SNR的影响与主磁场强度一样重要。然而,设计用于高场MRI的RF线圈是一个艰巨的挑战,因为较早的设计无法很好地扩展到更高的频率(随磁场强度线性增加),并且没有好的高频线圈建模工具。在该项目中,开发了非常规的RF线圈设计和仿真工具,其目标是克服现有线圈技术和建模方法的局限性。新的建模工具基于多导体传输(MTL)线理论和线方法(MoL)。这些方法可以实现高频线圈的设计和优化,而无需传统的三维数值方法通常需要的过多计算资源。该建模方法被应用于实际的线圈设计,从而导致了微带TEM谐振腔体线圈概念的发展和原型线圈的构建。为在4.7 T(200 MHz)的小型啮齿动物上进行大脑成像而设计的双线圈系统产生了整个大脑的出色图像。设计用于4.7 T恒河猴成像的较大体积线圈也显示出良好的效果。

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