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2.45吉赫兹双施源器热消融:同步与异步及开关模式馈电的数值比较与实验

Dual applicator thermal ablation at 2.45 GHz: a numerical comparison and experiments on synchronous versus asynchronous and switched-mode feeding.

作者信息

Biffi Gentili Guido, Ignesti Cosimo

机构信息

Department of Information Engineering, University of Florence , Florence , Italy.

出版信息

Int J Hyperthermia. 2015;31(5):528-37. doi: 10.3109/02656736.2015.1032369. Epub 2015 Apr 29.

Abstract

PURPOSE

This paper compares the results obtained with numerical simulations and ex vivo experiments involving a dual applicator microwave thermal ablation system operating at a 2.45 GHz frequency, both in synchronous and asynchronous modes. Our purpose was to demonstrate that at this frequency an asynchronous or switched-mode system performs essentially as well as the synchronous one, in spite of the prevailing belief that coherence would assure better thermal (TH) synergy. Numerical analysis: The calculations of temperature fields were based on the Pennes bioheat equation, taking into account the effects of blood perfusion by means of a full-wave 3D simulator that allows numerical electromagnetic (EM) and TH analyses.

MATERIALS AND METHODS

Experiments were done using a 100 W microwave (MW) power generator and a fast switched-mode sequential 'active' power splitter. By adding a further passive power splitter we arranged a test bed for an accurate experimental comparison of synchronous versus switched-mode TH ablations.

RESULTS

The experimental ablation zones produced by a dual applicator array on ex vivo swine tissue corresponded well with the simulated ones, confirming that the simplifications assumed in the full-wave analysis were compatible with the aim of our work.

CONCLUSIONS

Numerical simulations and experiments show that at a 2.45 GHz industrial, scientific and medical (ISM) frequency, synchronous, asynchronous and switched-mode multi-probe systems are substantially equivalent in terms of ablative performance. Moreover, the switched-mode solution offers simpler operation along with lesser sensitivity to the placement of applicators in the tissue.

摘要

目的

本文比较了在2.45 GHz频率下运行的双探头微波热消融系统在同步和异步模式下的数值模拟结果与离体实验结果。我们的目的是证明,尽管普遍认为相干性能确保更好的热(TH)协同效应,但在该频率下,异步或开关模式系统的性能与同步系统基本相同。数值分析:温度场的计算基于Pennes生物热方程,通过一个全波3D模拟器考虑血液灌注的影响,该模拟器允许进行数值电磁(EM)和TH分析。

材料与方法

实验使用100 W微波(MW)功率发生器和快速开关模式顺序“有源”功率分配器进行。通过添加另一个无源功率分配器,我们搭建了一个测试平台,用于对同步与开关模式TH消融进行准确的实验比较。

结果

双探头阵列在离体猪组织上产生的实验消融区与模拟结果吻合良好,证实了全波分析中所做的简化与我们的工作目标相符。

结论

数值模拟和实验表明,在2.45 GHz工业、科学和医疗(ISM)频率下,同步、异步和开关模式多探头系统在消融性能方面基本等效。此外,开关模式解决方案操作更简单,对探头在组织中的放置敏感性更低。

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