首页> 外文会议>2012 9th International Conference on Electrical Engineering, Computing Science and Automatic Control. >High-intensity focused ultrasound thermal mapping by using a thermocouple embedded in a tissue-mimicking material
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High-intensity focused ultrasound thermal mapping by using a thermocouple embedded in a tissue-mimicking material

机译:通过使用嵌入组织模拟材料中的热电偶进行高强度聚焦超声热成像

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High-intensity focused ultrasound is a non invasive technique for tumor ablation. Focused ultrasound concentrates energy at a small spot called “focus”. Temperature elevation at the focus can reach over 56°C rapidly. This causes irreversible damages to cells and provokes coagulative necrosis. Common acoustic characterization is performed by scanning with a hydrophone across and along the beam path. The disadvantage of this technique is that it has to be done at low power in order to avoid hydrophone damage. Thermocouple displacement across and along the beam path allows the temperature measurement at high acoustic power or at similar clinical conditions. In this paper, it is presented the temperature measurement as a complementary technique to characterize acoustic fields and to explore the thermal distribution at focus. HIFU thermal mapping is performed by recording the temperature sensed by a hypodermic thermocouple embedded in a tissue mimicking material. The thermal distribution of a HIFU transducer with focal distance of 17 mm is reported. Temperature maps 2 mm ahead and 2 mm behind the focal distance with a 1 mm z-displacement are presented. HIFU transducer was excited with a 1.9 MHz continuous wave at 20 W. Thermal maps showed a different temperature distribution for each transversal plane reconstructed.
机译:高强度聚焦超声是一种用于肿瘤消融的非侵入性技术。聚焦超声将能量聚集在一个称为“聚焦”的小点上。焦点处的温度升高可以迅速达到56°C以上。这会对细胞造成不可逆转的损害,并引发凝血坏死。常见的声学表征是通过水听器在光束路径上并沿光束路径进行扫描来执行的。该技术的缺点是必须在低功率下完成以避免水听器损坏。沿光束路径并沿着光束路径的热电偶位移允许在高声功率或类似临床条件下进行温度测量。在本文中,提出了将温度测量作为一种补充技术来表征声场并探讨焦点处的热分布。通过记录嵌入在组织模拟材料中的皮下热电偶感测到的温度来执行HIFU热映射。报告了焦距为17 mm的HIFU换能器的热分布。给出了焦距前2 mm和后2 mm以及1 mm z位移的温度图。 HIFU换能器在20 W下用1.9 MHz连续波激励。热图显示,每个重建的横向平面的温度分布都不同。

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