改进型螺线管线圈,可高效产生具有更高均匀性的高振幅交流磁场,用于生物医学应用。
Modified Solenoid Coil That Efficiently Produces High Amplitude AC Magnetic Fields With Enhanced Uniformity for Biomedical Applications.
作者信息
Bordelon David E, Goldstein Robert C, Nemkov Valentin S, Kumar Ananda, Jackowski John K, DeWeese Theodore L, Ivkov Robert
机构信息
Department of Radiation Oncology and Molecular Radiation Sciences, Johns Hopkins University School of Medicine, Baltimore, MD 21287 USA.
AMF Life Systems, LLC., Auburn Hills, MI 48326 USA.
出版信息
IEEE Trans Magn. 2012 Oct;48(1):47-52. doi: 10.1109/TMAG.2011.2162527.
In this paper, we describe a modified solenoid coil that efficiently generates high amplitude alternating magnetic fields (AMF) having field uniformity (≤10%) within a 125-cm volume of interest. Two-dimensional finite element analysis (2D-FEA) was used to design a coil generating a targeted peak AMF amplitude along the coil axis of ~100 kA/m (peak-to-peak) at a frequency of 150 kHz while maintaining field uniformity to >90% of peak for a specified volume. This field uniformity was realized by forming the turns from cylindrical sections of copper plate and by adding flux concentrating rings to both ends of the coil. Following construction, the field profile along the axes of the coil was measured. An axial peak field value of 95.8 ± 0.4 kA/m was measured with 650 V applied to the coil and was consistent with the calculated results. The region of axial field uniformity, defined as the distance over which field ≥90% of peak, was also consistent with the simulated results. We describe the utility of such a device for calorimetric measurement of nanoparticle heating for cancer therapy and for magnetic fluid hyperthermia in small animal models of human cancer.
在本文中,我们描述了一种改进的螺线管线圈,它能在125厘米的感兴趣体积内高效产生具有场均匀性(≤10%)的高振幅交变磁场(AMF)。二维有限元分析(2D-FEA)用于设计一个线圈,该线圈在150千赫兹频率下沿线圈轴产生目标峰值AMF振幅约为100千安/米(峰-峰值),同时在指定体积内保持场均匀性大于峰值的90%。通过用铜板的圆柱形部分形成线圈匝数并在线圈两端添加磁通集中环来实现这种场均匀性。在构建之后,测量了沿线圈轴的场分布。在线圈施加650伏电压时,测得轴向峰值场值为95.8±0.4千安/米,与计算结果一致。轴向场均匀性区域(定义为场≥峰值9g%的距离)也与模拟结果一致。我们描述了这种装置在癌症治疗的纳米颗粒加热量热测量以及人类癌症小动物模型中的磁流体热疗方面的应用。