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Design and Evaluation of a Hybrid Radiofrequency Applicator for Magnetic Resonance Imaging and RF Induced Hyperthermia: Electromagnetic Field Simulations up to 14.0 Tesla and Proof-of-Concept at 7.0 Tesla

机译:用于磁共振成像和RF感应热疗的混合射频辐射器的设计和评估:高达14.0 Tesla的电磁场仿真和7.0 Tesla的概念验证

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摘要

This work demonstrates the feasibility of a hybrid radiofrequency (RF) applicator that supports magnetic resonance (MR) imaging and MR controlled targeted RF heating at ultrahigh magnetic fields (B0≥7.0T). For this purpose a virtual and an experimental configuration of an 8-channel transmit/receive (TX/RX) hybrid RF applicator was designed. For TX/RX bow tie antenna electric dipoles were employed. Electromagnetic field simulations (EMF) were performed to study RF heating versus RF wavelength (frequency range: 64 MHz (1.5T) to 600 MHz (14.0T)). The experimental version of the applicator was implemented at B0 = 7.0T. The applicators feasibility for targeted RF heating was evaluated in EMF simulations and in phantom studies. Temperature co-simulations were conducted in phantoms and in a human voxel model. Our results demonstrate that higher frequencies afford a reduction in the size of specific absorption rate (SAR) hotspots. At 7T (298 MHz) the hybrid applicator yielded a 50% iso-contour SAR (iso-SAR-50%) hotspot with a diameter of 43 mm. At 600 MHz an iso-SAR-50% hotspot of 26 mm in diameter was observed. RF power deposition per RF input power was found to increase with B0 which makes targeted RF heating more efficient at higher frequencies. The applicator was capable of generating deep-seated temperature hotspots in phantoms. The feasibility of 2D steering of a SAR/temperature hotspot to a target location was demonstrated by the induction of a focal temperature increase (ΔT = 8.1 K) in an off-center region of the phantom. Temperature simulations in the human brain performed at 298 MHz showed a maximum temperature increase to 48.6C for a deep-seated hotspot in the brain with a size of (19×23×32)mm3 iso-temperature-90%. The hybrid applicator provided imaging capabilities that facilitate high spatial resolution brain MRI. To conclude, this study outlines the technical underpinnings and demonstrates the basic feasibility of an 8-channel hybrid TX/RX applicator that supports MR imaging, MR thermometry and targeted RF heating in one device.
机译:这项工作证明了在超高磁场(B0≥7.0T)下支持磁共振(MR)成像和MR控制的目标RF加热的混合射频(RF)施加器的可行性。为此,设计了一个虚拟的和实验性的8通道发射/接收(TX / RX)混合RF辐射器配置。对于TX / RX领结天线,使用电偶极子。进行了电磁场仿真(EMF),以研究RF加热与RF波长(频率范围:64 MHz(1.5T)至600 MHz(14.0T))之间的关系。涂药器的实验版本是在B0 = 7.0T下实现的。在EMF模拟和幻像研究中评估了有针对性的RF加热施加器的可行性。在幻像和人体素模型中进行了温度共同仿真。我们的结果表明,较高的频率可以减小比吸收率(SAR)热点的大小。在7T(298 MHz)时,混合喷头产生了直径为43 mm的50%等高轮廓SAR(iso-SAR-50%)热点。在600 MHz下,观察到直径为26 mm的iso-SAR-50%热点。发现每射频输入功率的射频功率沉积随B0的增加而增加,这使得目标射频加热在更高的频率下更加有效。施加器能够在幻像中产生深层的温度热点。将SAR /温度热点二维控制到目标位置的可行性已通过在体模偏心区域中引起的焦点温度升高(ΔT= 8.1 K)得到证明。在298 MHz处进行的人脑温度模拟显示,对于等深度为(19×23×32)mm 3 等温的大脑深处热点,最高温度升高到48.6C。 -90%。混合式涂抹器提供了可促进高空间分辨率脑部MRI的成像功能。总而言之,本研究概述了技术基础,并演示了在一个设备中支持MR成像,MR测温和定向RF加热的8通道混合TX / RX施加器的基本可行性。

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