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首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Modular transmit/receive arrays using very‐high permittivity dielectric resonator antennas
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Modular transmit/receive arrays using very‐high permittivity dielectric resonator antennas

机译:使用非常高介电常数介质谐振器天线的模块化发射/接收阵列

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Purpose Dielectric resonator antenna (DRAs) are compact structures that exhibit low coupling between adjacent elements and therefore can be used as MRI transmit arrays. In this study, we use very high permittivity materials to construct modular flexible transceive arrays of a variable numbers of elements for operation at 7T. Methods DRAs were constructed using rectangular blocks of ceramic (lead zirconate titanate, ε r ?=?1070) with the transverse electric (TE) 01 mode tuned to 298 MHz. Finite‐difference time‐domain simulations were used to determine the B 1 and specific absorption rate distributions. B 1 + maps were acquired in a phantom to validate the simulations. Performance was compared to an equally sized surface coil. In vivo images were acquired of the wrist (four elements), ankle (seven elements), and calf muscle (16 elements). Results Coupling between DRAs spaced 5?mm apart on a phantom was ?18.2 dB compared to ?9.1 dB for equivalently spaced surface coils. DRAs showed a higher B 1 + intensity close to the antenna but a lower penetration depth compared to the surface coil. Conclusion DRAs show very low coupling compared to equally sized surface coils and can be used in transceive arrays without requiring decoupling networks. The penetration depth of the current DRA geometry means they are ideally suited to imaging of extremities. Magn Reson Med 79:1781–1788, 2018. ? 2017 The Authors Magnetic Resonance in Medicine published by Wiley Periodicals, Inc. on behalf of International Society for Magnetic Resonance in Medicine. This is an open access article under the terms of the Creative Commons Attribution NonCommercial License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
机译:目的介质谐振器天线(DRAS)是在相邻元件之间表现出低耦合的紧凑结构,因此可以用作MRI发射阵列。在这项研究中,我们使用非常高的介电常数材料来构建可变数量元素的模块化柔性收发阵列,以便在7T处运行。方法使用横向电气(TE)01模式使用横向电气(TE)01模式,使用矩形嵌段(铅锆钛酸钛酸盐,εr≤x≤1070)构成DRA。有限差分时间域模拟用于确定B 1和特定吸收率分布。 B 1 + MAPS在幻像中获取以验证模拟。与同等大小的表面线圈进行比较。在体内图像中获取手腕(四个元素),脚踝(七元素)和小腿肌肉(16个元素)。结果在幻影上间隔5Ωmac之间的耦合为5?mm的耦合为18.2dB,与Δ9.1dB相比等效间隔的表面线圈。除了与表面线圈相比,DRA靠近天线的B 1 +强度较高,而是较低的渗透深度。结论与同等尺寸的表面线圈相比,DRAS显示出非常低的耦合,并且可以用于收发器阵列,而无需去耦网络。电流DRA几何形状的穿透深度意味着它们非常适合于肢体的成像。 Magn Reson Med 79:1781-1788,2018。 2017年作者涉及Wiley期刊,Inc。出版的医学磁共振代表国际医学磁共振学会。这是一个开放的访问文章,根据创意公约归属非商业许可证,其许可,即在任何媒体中允许使用,分发和复制,只要原始工作被正确引用并且不用于商业目的。

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