首页> 外文期刊>Medical Physics >Thermal modeling for pulsed radiofrequency ablation: analytical study based on hyperbolic heat conduction.
【24h】

Thermal modeling for pulsed radiofrequency ablation: analytical study based on hyperbolic heat conduction.

机译:脉冲射频消融的热模型:基于双曲线热传导的分析研究。

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

The objectives of this study were to model the temperature progress of a pulsed radiofrequency (RF) power during RF heating of biological tissue, and to employ the hyperbolic heat transfer equation (HHTE), which takes the thermal wave behavior into account, and compare the results to those obtained using the heat transfer equation based on Fourier theory (FHTE). A theoretical model was built based on an active spherical electrode completely embedded in the biological tissue, after which HHTE and FHTE were analytically solved. We found three typical waveforms for the temperature progress depending on the relations between the dimensionless duration of the RF pulse delta(a) and the expression square root of lambda(rho-1), with lambda as the dimensionless thermal relaxation time of the tissue and rho as the dimensionless position. In the case of a unique RF pulse, the temperature at any location was the result of the overlapping of two different heat sources delayed for a duration delta(a) (each heat source being produced by a RF pulse of limitless duration). The most remarkable feature in the HHTE analytical solution was the presence of temperature peaks traveling through the medium at a finite speed. These peaks not only occurred during the RF power switch-on period but also during switch off. Finally, a physical explanation for these temperature peaks is proposed based on the interaction of forward and reverse thermal waves. All-purpose analytical solutions for FHTE and HHTE were obtained during pulsed RF heating of biological tissues, which could be used for any value of pulsing frequency and duty cycle.
机译:这项研究的目的是模拟生物组织射频加热过程中脉冲射频(RF)功率的温度变化,并采用考虑了热波行为的双曲线传热方程(HHTE),并比较结果与使用基于傅立叶理论(FHTE)的传热方程获得的结果相同。基于完全嵌入生物组织中的有源球形电极建立了理论模型,然后对HHTE和FHTE进行了解析求解。根据RF脉冲delta(a)的无量纲持续时间与lambda(rho-1)的表达式平方根之间的关系,我们发现了三种温度变化的典型波形,其中lambda是组织的无量纲的热弛豫时间, rho是无量纲的位置。在使用唯一的RF脉冲的情况下,任何位置的温度都是两个不同热源重叠的结果,延迟时间为delta(a)(每个热源由无限长的RF脉冲产生)。 HHTE分析解决方案中最显着的特征是存在以有限速度在介质中传播的温度峰。这些峰值不仅发生在RF电源开启期间,而且还发生在关闭期间。最后,基于正向和反向热波的相互作用,提出了这些温度峰值的物理解释。 FHTE和HHTE的通用分析解决方案是在生物组织的脉冲RF加热过程中获得的,可用于任何脉冲频率和占空比值。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号