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基于 MRI 的甲状腺癌射频消融的有限元模拟。

MRI-based finite element simulation on radiofrequency ablation of thyroid cancer.

机构信息

Department of Biomedical Engineering, School of Medicine, Tsinghua University, Beijing 100084, PR China.

Beijing Key Laboratory of Cryo-Biomedical Engineering, and Key Laboratory of Cryogenics, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, Beijing 100190, PR China.

出版信息

Comput Methods Programs Biomed. 2014 Feb;113(2):529-38. doi: 10.1016/j.cmpb.2013.12.007. Epub 2013 Dec 25.

Abstract

In order to provide a quantitative disclosure on the RFA (radiofrequency ablation)-induced thermal ablation effects within thyroid tissues, this paper has developed a three-dimensional finite element simulation strategy based on a MRI (magnetic resonance imaging)-reconstructed model. The thermal lesion's growth was predicted and interpreted under two treatment conditions, i.e. single-cooled-electrode modality and two-cooled-electrode system. The results show that the thermal lesion's growth is significantly affected by two factors including the position of RF electrode and thermal-physiological behavior of the breathing airflow. Additional parametric studies revealed several valuable phenomena, e.g. with the electrode's movement, thermal injury with varying severity would happen to the trachea wall. Besides, the changes in airflow mass produced evident effects on the total heat flux of thyroid surface, while the changes in breathing frequency only generated minor effects that can be ignored. The present study provided a better understanding on the thermal lesions of RFA within thyroid domain, which will help guide future treatment of the thyroid cancer.

摘要

为了对射频消融(radiofrequency ablation,RFA)在甲状腺组织中引起的热消融效应进行定量披露,本文基于 MRI(磁共振成像)重建模型开发了一种三维有限元模拟策略。预测和解释了两种治疗条件下的热损伤生长情况,即单冷电极模式和双冷电极系统。结果表明,热损伤的生长受到两个因素的显著影响,包括 RF 电极的位置和呼吸气流的热生理行为。此外的参数研究揭示了一些有价值的现象,例如随着电极的移动,气管壁会受到不同严重程度的热损伤。此外,空气质量的变化对甲状腺表面总热通量产生明显影响,而呼吸频率的变化仅产生可忽略不计的微小影响。本研究对甲状腺区域内 RFA 的热损伤有了更好的理解,这将有助于指导未来对甲状腺癌的治疗。

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