首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Ideal current patterns yielding optimal signal-to-noise ratio and specific absorption rate in magnetic resonance imaging: Computational methods and physical insights
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Ideal current patterns yielding optimal signal-to-noise ratio and specific absorption rate in magnetic resonance imaging: Computational methods and physical insights

机译:在磁共振成像中产生最佳信噪比和特定吸收率的理想电流模式:计算方法和物理见解

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At high and ultra-high magnetic field strengths, understanding interactions between tissues and the electromagnetic fields generated by radiofrequency coils becomes crucial for safe and effective coil design as well as for insight into limits of performance. In this work, we present a rigorous electrodynamic modeling framework, using dyadic Green's functions, to derive the electromagnetic field in homogeneous spherical and cylindrical samples resulting from arbitrary surface currents in the presence or absence of a surrounding radiofrequency shield. We show how to calculate ideal current patterns that result in the highest possible signal-to-noise ratio (ultimate intrinsic signal-to-noise ratio) or the lowest possible radiofrequency power deposition (ultimate intrinsic specific absorption rate) compatible with electrodynamic principles. We identify familiar coil designs within optimal current patterns at low to moderate field strength, thereby establishing and explaining graphically the near-optimality of traditional surface and volume quadrature designs. We also document the emergence of less familiar patterns, e.g., involving substantial electric- as well as magnetic-dipole contributions, at high field strength. Performance comparisons with particular coil array configurations demonstrate that optimal performance may be approached with finite arrays if ideal current patterns are used as a guide for coil design.
机译:在高和超高磁场强度下,了解组织与射频线圈产生的电磁场之间的相互作用对于安全有效的线圈设计以及了解性能极限至关重要。在这项工作中,我们提出了一个严格的电动力学建模框架,该模型使用了二进格林函数,可以在存在或不存在周围射频屏蔽的情况下,从任意表面电流产生的均匀球形和圆柱形样本中得出电磁场。我们展示了如何计算理想的电流模式,以产生与电动原理兼容的最高可能的信噪比(最终的固有信噪比)或最低的射频功率沉积(最终的固有比吸收率)。我们在中低场强的最佳电流模式下识别熟悉的线圈设计,从而以图形方式建立和解释传统表面和体积正交设计的近乎最优性。我们还记录了在高场强下不熟悉的模式的出现,例如涉及大量的电偶极子和磁偶极子的贡献。与特定线圈阵列配置的性能比较表明,如果将理想电流模式用作线圈设计的指导,则有限阵列可能会达到最佳性能。

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