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Magnetic wall decoupling method for monopole coil array in ultrahigh field MRI: a feasibility test

机译:超高场MRI中单极线圈阵列的磁壁解耦方法:可行性测试

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Ultrahigh field (UHF) MR imaging of deeply located target in high dielectric biological samples faces challenges due to the reduced penetration depth at the corresponding high frequencies. Radiative coils, e.g., dipole and monopole coils, have recently been applied for UHF MRI applications to obtain better signal-noise-ratio (SNR) in the area deep inside the human head and body. However, due to the unique structure of radiative coil elements, electromagnetic (EM) coupling between elements in radiative coil arrays cannot be readily addressed by using traditional decoupling methods such as element overlapping and L/C decoupling network. A new decoupling method based on induced current elimination (ICE) or magnetic wall technique has recently been proposed and has demonstrated feasibility in designing microstrip transmission line (MTL) arrays and L/C loop arrays. In this study, an array of two monopole elements decoupled using magnetic wall decoupling technique was designed, constructed and analyzed numerically and experimentally to investigate the feasibility of the decoupling technique in radiative coil array designs for MR imaging at 7 T. An L-shaped capacitive network was employed as the matching circuit and the reflection coefficients (S11) of the monopole element achieved –30 dB or better. Isolation between the two monopole elements was improved from about –10 dB (without decoupling treatment) to better than –30 dB with the ICE/magnetic wall decoupling method. B1 maps and MR images of the phantom were acquired and SNR maps were measured and calculated to evaluate the performance of the ICE/magnetic wall decoupling method. Compared with the monopole elements without decoupling methods, the ICE-decoupled array demonstrated more independent image profiles from each element and had a higher SNR in the peripheral area of the imaging subject. The experimental and simulation results indicate that the ICE/magnetic wall decoupling technique might be a promising solution to reducing the EM coupling of monopole arrays for UHF MRI.
机译:由于在相应的高频下穿透深度的减小,高介电生物样品中深处目标的超高场(UHF)MR成像面临挑战。辐射线圈,例如偶极线圈和单极线圈,最近已用于UHF MRI应用,以在人体头部和身体深处的区域获得更好的信噪比(SNR)。但是,由于辐射线圈元件的独特结构,辐射线圈阵列中元件之间的电磁(EM)耦合无法通过使用传统的去耦方法(例如元素重叠和L / C去耦网络)来解决。最近提出了一种新的基于感应电流消除(ICE)或磁壁技术的去耦方法,并已证明在设计微带传输线(MTL)阵列和L / C回路阵列中的可行性。在这项研究中,设计,构造和分析了两个使用磁壁解耦技术解耦的单极元件的阵列,并进行了数值和实验分析,以研究该解耦技术在用于7 T MR成像的辐射线圈阵列设计中的可行性。L型电容网络用作匹配电路,单极元件的反射系数(S 11 )达到–30 dB或更好。使用ICE /磁性壁去耦方法,两个单极元件之间的隔离度从大约–10 dB(不进行去耦处理)提高到优于–30 dB。采集了B 1 图和人体模型的MR图像,并测量并计算了SNR图,以评估ICE /磁性壁去耦方法的性能。与没有解耦方法的单极元件相比,ICE解耦阵列显示出来自每个元件的更独立的图像轮廓,并且在成像对象的外围区域具有更高的SNR。实验和仿真结果表明,ICE /磁性壁去耦技术可能是减少UHF MRI单极阵列EM耦合的有前途的解决方案。

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