Park Sung-Min, Kamondetdacha Rungkiet, Nyenhuis John A
School of Electrical and Computer Engineering, Purdue University, West Lafayette, Indiana 47907, USA.
J Magn Reson Imaging. 2007 Nov;26(5):1278-85. doi: 10.1002/jmri.21159.
To develop and demonstrate a method to calculate the temperature rise that is induced by the radio frequency (RF) field in MRI at the electrode of an implanted medical lead.
The electric field near the electrode is calculated by integrating the product of the tangential electric field and a transfer function along the length of the lead. The transfer function is numerically calculated with the method of moments. Transfer functions were calculated at 64 MHz for different lengths of model implants in the form of bare wires and insulated wires with 1 cm of wire exposed at one or both ends.
Heating at the electrode depends on the magnitude and the phase distribution of the transfer function and the incident electric field along the length of the lead. For a uniform electric field, the electrode heating is maximized for a lead length of approximately one-half a wavelength when the lead is terminated open. The heating can be greater for a worst-case phase distribution of the incident field.
The transfer function is proposed as an efficient method to calculate MRI-induced heating at an electrode of a medical lead. Measured temperature rises of a model implant in a phantom were in good agreement with the rises predicted by the transfer function. The transfer function could be numerically or experimentally determined.
开发并演示一种计算植入式医用导线电极处磁共振成像(MRI)中射频(RF)场引起的温度升高的方法。
通过沿导线长度对切向电场与传递函数的乘积进行积分来计算电极附近的电场。传递函数采用矩量法进行数值计算。针对不同长度的裸线和绝缘线形式的模型植入物,在一端或两端露出1厘米导线的情况下,于64兆赫计算传递函数。
电极处的发热取决于传递函数的大小和相位分布以及沿导线长度的入射电场。对于均匀电场,当导线开路端接时,导线长度约为半波长时电极发热最大。对于入射场的最坏情况相位分布,发热可能更大。
提出传递函数作为计算医用导线电极处MRI诱导发热的有效方法。模型植入物在体模中的实测温度升高与传递函数预测的升高高度吻合。传递函数可通过数值或实验确定。