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Simulations of a birdcage coil B1+ field on a human body model for designing a 3T multichannel TMS/MRI head coil array

机译:用于设计3T多通道TMS / MRI头部线圈阵列的人体模型上的鸟笼线圈B 1 +场的仿真

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This article considers a new type of integrated multichannel Transcranial Magnetic Stimulator and Magnetic Resonance Imaging (TMS/MRI) system at 3T that is currently being designed. The system will enable unprecedented spatiotemporal control of the TMS-induced electric fields (E-fields) with simultaneous rapid whole-head MRI acquisition to record the brain activity. A critical design question is how TMS coil elements interact with the transmit field (B1+) of the volume coil integrated in 3T MRI systems. In general, the TMS coils are not designed to have any resonant characteristics at the MRI frequency, they may potentially disturb the RF field due to the eddy currents induced. This is especially a concern with a multichannel TMS setup where the subject's head will be largely covered with the stimulation coils. Therefore, we investigated this problem by computational simulations with realistic TMS coil geometries and a birdcage transmit coil in conjunction with a human body model. We compared the B1+ interaction effects of a commercially available MR-compatible TMS coil with our coil prototype. In both cases, the results show small local changes in the transmit field B1+ of the birdcage coil. Maximal Average Specific Absorption Rate (SAR) values over 1g tissue were found to be slightly lower when the TMS elements were present. We conclude that it should be feasible and safe to use the conventional body transmit coil even when an array of TMS coils is used.
机译:本文考虑了目前正在设计的一种新型的3T集成式多通道经颅磁刺激器和磁共振成像(TMS / MRI)系统。该系统将实现空前的时空控制TMS感应电场(E场),同时快速进行全头MRI采集以记录大脑活动。一个关键的设计问题是TMS线圈元件如何与发射场相互作用(B 1 + )集成在3T MRI系统中的体积线圈。通常,TMS线圈没有设计为在MRI频率下具有任何谐振特性,它们可能会由于感应的涡流而潜在地干扰RF场。对于多通道TMS设置,这尤其令人担忧,在该设置中,受试者的头部将被刺激线圈大面积覆盖。因此,我们通过具有实际TMS线圈几何形状和鸟笼发射线圈以及人体模型的计算仿真来研究此问题。我们比较了B 1 + 市售的MR兼容TMS线圈与我们的线圈原型的相互作用效应。在这两种情况下,结果都表明发射场B中的局部变化很小 1 + 的鸟笼线圈。当存在TMS元素时,发现在1g组织上的最大平均比吸收率(SAR)值略低。我们得出结论,即使使用TMS线圈阵列,使用常规的人体发射线圈也应该是可行且安全的。

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