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Analysis of Conservative and Magnetically Induced Electric Fields in a Low-Frequency Birdcage Coil

机译:低频鸟笼线圈中的保守磁场和磁场感应电场

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Numerical methods are used to evaluate variations of the electromagnetic fields generated by a head-sized birdcage coil as a function of load (“loading effect”). The loading effect was analyzed for the cases of a coil loaded with a conductive cylindrical sample, a dielectric cylindrical sample, and an anatomically precise head model. Maxwell equations were solved by means of finite difference time domain (FDTD) method conducted at 12.8, 64, and 128 MHz. Simulation results indicate that at 12.8 MHz the conservative electric field (Ec) caused by the scalar electric potentials between the coil and the load or within the load was significantly higher than the magnetically-induced electric field (Ei) and was the major component of the total electric field (Etotal). The amplitudes of Ec and Etotal are seen to be lower within a sample than at a corresponding location in an empty coil, but approximately 65% higher in the space between coil and sample than at a corresponding location in an empty coil. This is due to polarization effects generating an additional scalar potential parallel to the original field. The increased electric field between coil and sample may cause increased power deposition at the surface of the sample and may affect the RF-induced currents in external leads used for physiological recording, i.e. ECG, during MRI scanning.
机译:使用数值方法来评估由头部大小的鸟笼线圈产生的电磁场随负载的变化(“负载效应”)。对于加载有导电圆柱样品,电介质圆柱样品和解剖学精确头部模型的线圈,分析了其加载效果。通过在12.8、64和128 MHz下进行的时域有限差分(FDTD)方法求解麦克斯韦方程。仿真结果表明,在12.8 MHz时,由线圈和负载之间或负载内部的标量电势引起的保守电场(Ec)显着高于磁感应电场(Ei),并且是电场的主要成分。总电场(总)。可以看到,样品中的Ec和Etotal幅度比空线圈中的相应位置要低,但线圈和样品之间的空间要比空线圈中的相应位置高大约65%。这是由于极化效应产生了平行于原始场的额外标量电势。线圈和样品之间增加的电场可能会导致样品表面的功率沉积增加,并且可能会影响MRI扫描期间用于生理记录(即ECG)的外部导线中的RF感应电流。

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