Power absorption of milliscaled implants in alternating magnetic field for magnetically induced hyperthermia

Jianan Wu, Heng Wang, Xianwen Zhang, Liyan Zhang, Jintian Tang
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引用次数: 1

Abstract

The magnetically induced hyperthermia (MIH) system, based on the principle that milliscaled ferromagnetic alloy thermoseeds produce heat in a radio frequency (RF) alternating magnetic field due to eddy current and hysteresis, has been used in tumor clinical trials for decades. To provide guidance for implant distribution in tumors and temperature field simulation of MIH planning system, the theoretical formula for power absorption of an implant is deduced investigating geometry and orientation using the electromagnetic field constraint equation, including cylindrical and spherical implants. Then, the electromagnetic parameters that affect the power absorption have been analyzed using Matlab to simplify the formula. This simplified formula serves as a calculation model that can be easily programmed for temperature field simulation in a MIH system. Finally, the performance of several implants used for MIH is compared by power absorption per unit volume. The results show that the power absorption of the cylindrical implant per unit volume is maximized when the axis is parallel to the external magnetic field. The absorbed power of the spherical implant is slightly less than that of the cylindrical implant, and the formula is independent of the magnetic field direction. As a result, the use of a spherical implant will lead to a simplified calculation of the temperature field in a MIH system.
磁致热疗在交变磁场中毫微秒植入物的能量吸收
磁致热疗(MIH)系统,基于毫秒级铁磁合金热籽在射频(RF)交变磁场中产生热量的原理,由于涡流和滞后,已经在肿瘤临床试验中使用了几十年。为了指导植入体在肿瘤中的分布和MIH规划系统的温度场仿真,利用电磁场约束方程,研究了圆柱形植入体和球形植入体的几何和方向,推导了植入体功率吸收的理论公式。然后,利用Matlab分析了影响功率吸收的电磁参数,简化了公式。该简化公式可作为一个易于编程的计算模型,用于MIH系统的温度场模拟。最后,通过单位体积的功率吸收来比较几种用于MIH的植入物的性能。结果表明:当圆柱形植入体的轴方向与外磁场平行时,其单位体积的吸收功率最大;球形植入体的吸收功率略小于圆柱形植入体,且公式与磁场方向无关。因此,使用球形植入体可以简化MIH系统中温度场的计算。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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