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Thermal distribution of microwave antenna for atrial fibrillation catheter ablation

机译:房颤导管消融用微波天线的热分布

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Purpose: The aim of this study is to investigate the effects of ablation parameters on thermal distribution during microwave atrial fibrillation catheter ablation, such as ablation time, ablation power, blood condition and antenna placement, and give proper ablative parameters to realise transmural ablation. Materials and methods: In this paper, simplified 3D antenna-myocardium-blood finite element method models were built to simulate the endocardial ablation operation. Thermal distribution was obtained based on the coupled electromagnetic-thermal analysis. Under different antenna placement conditions and different microwave power inputs within 60?s, the lesion dimensions (maximum depth, maximum width) of the ablation zones were analysed. Results: The ablation width and depth increased with the ablation time. The increase rate significantly slowed down after 10?s. The maximum temperature was located in 1?mm under the antenna tip when perpendicular to the endocardium, while 1.5?mm away from the antenna axis and 26?mm along the antenna (with antenna length about 30?mm) in the myocardium when parallel to the endocardium. The maximum temperature in the ablated area decreased and the effective ablation area (with the temperature raised to 50°C) shifted deeper into the myocardium due to the blood cooling. Conclusion: The research validated that the microwave antenna can provide continuous long and linear lesions for the treatment of atrial fibrillation. The dimensions of the created lesion widths were all larger than those of the depths. It is easy for the microwave antenna to produce transmural lesions for an atrial wall thickness of 2–6?mm by adjusting the applied power and ablation time.
机译:目的:本研究的目的是研究消融参数对微波房颤导管消融过程中热分布的影响,例如消融时间,消融功率,血液状况和天线位置,并提供适当的消融参数以实现经壁消融。材料和方法:本文建立了简化的3D天线-心肌-血液有限元方法模型来模拟心内膜消融手术。基于电磁-热耦合分析获得热分布。在60?s内不同的天线放置条件和不同的微波功率输入下,对消融区域的病变尺寸(最大深度,最大宽度)进行了分析。结果:消融宽度和深度随消融时间而增加。 10 s后,增长率明显下降。垂直于心内膜时,最高温度位于天线尖端下方1?mm处,而平行于心轴时,其最高温度则位于距天线轴1.5?mm处和沿天线的26?mm(天线长度约30?mm)处。心内膜。由于血液冷却,消融区域的最高温度降低,有效消融区域(温度升高至50°C)更深地移入心肌。结论:该研究证实微波天线可提供连续的长而线性的病灶,用于治疗房颤。创建的病变宽度的尺寸均大于深度的尺寸。通过调节施加的功率和消融时间,微波天线很容易在2-6?mm的心房壁上产生透壁损伤。

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