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Feasibility of the microwave and ultrasound ablation as alternatives to treat bone tumors

机译:微波和超声消融的可行性作为治疗骨肿瘤的替代方案

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This study was made in order to prove the feasibility of two of the most promising thermal therapies to treat bone tumors. Microwave (MW) and ultrasound (US) ablation were analyzed. For MW ablation, a single slot antenna was designed. The best characteristics of the antenna, to generate an electromagnetic field and its absorption by the bone, were obtained by a parametric modeling. Length and location of the slot and work frequency were analysed. On the other hand, for US ablation, the acoustic propagation of a 4 MHz spherical transducer was done. Then, two models were proposed: in water and in a 2 layer media (water and bone). Four antennas with the best characteristics to heat up bone were chosen (best cases scenarios). The optimal length position was 6.9 mm (slot length 1 mm & 2 mm) and 4.9 (slot length: 3 mm & 4 mm). These antennas work properly from 2.45 GHz- 2.60 GHz. The SWR was around 1.22±0.07 (m±sd). Finally, these antennas show a covered area of 10.23±0.05 cm (m±sd) of bone tissue. Acoustic and thermal distributions depict that US can enter 5 mm in the bone. This results show that both techniques are suitable to treat bone tumors.
机译:制作了这项研究,以证明两种最有前途的热疗法治疗骨肿瘤的可行性。分析微波(MW)和超声(US)消融。对于MW消融,设计了单个槽天线。通过参数化建模获得天线的最佳特性,产生电磁场及其通过骨骼的吸收。分析了插槽和工作频率的长度和位置。另一方面,对于美国消融,完成了4MHz球形传感器的声学传播。然后,提出了两种模型:在水和2层介质(水和骨)中。选择了四个天线,具有加热骨骼的最佳特性(最佳情况场景)。最佳长度位置为6.9毫米(槽长1 mm&2 mm)和4.9(槽长:3 mm&4 mm)。这些天线从2.45GHz-2.60 GHz正常工作。 SWR约为1.22±0.07(m±SD)。最后,这些天线显示出覆盖面积为10.23±0.05cm(m±Sd)的骨组织。声学和热分布描绘了美国可以在骨骼中进入5毫米。结果表明,两种技术都适合治疗骨肿瘤。

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