[低频超声热疗的基础研究]。

T Shiina, M Saito
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引用次数: 0

摘要

超声加热热疗方法的发展有几个优点,即易于将应用器转向目标,并且不干扰其他电子设备。它们中的大多数通过聚焦超声波光束,使用声学透镜或许多发射机来制造热点。因此,这些方法基于与射线聚焦类似的思想,并且使用更高的频率,即从500 kHz到5 MHz。然而,也存在一些问题;热点在焦点之前产生,由于超声光束的衰减和散射,难以加热气体和骨骼以外的区域。然后,我们提出了一种新的方法来加热身体的深度和局部区域。在这种方法中,由于低频超声比高频超声具有更大的穿透深度和更小的散射,因此使用低频超声对身体深处进行加热。为了只加热肿瘤,热点是由几个入射波合成的声场产生的。在频率、位置和热源数量等参数取值不同的情况下,利用具有类似组织性质的模型对热源的产热和温度分布进行了分析。结果表明,热点可以在身体深处产生。通过选择最优参数和冷却条件,可以得到理想的温度分布。为了更准确地确定温度分布,需要引入更为复杂的血流散热模型和实验结果。这些问题留给今后的研究。
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[Basic investigation on hyperthermia by low-frequency ultrasonic].

Ultrasonic heating methods for hyperthermia have been developed because of several advantage i.e., its easiness in steering the applicator for the target, and its non-interference with other electronic equipment. Most of them make hot spots by focusing the ultrasonic beam, using acoustic lens or many transmitters. Therefore, these methods are based on analogous idea to the ray focusing, and higher frequency, i.e., from 500 kHz to 5 MHz, is used. However, there are some problems; hot spots are generated before the focus, and it is difficult to heat the region beyond gas and bones owing to the attenuation and scattering of the ultrasonic beam. Then, we propose a new method for heating the depths and local regions of the body. In this method, to heat the depths of the body low-frequency ultrasound is used since it has larger penetration depth and it is less scattered than higher-frequency ultrasound. To heat only tumours, hot spots are generated by synthesizing acoustic fields resulted from several incident waves. The heat generation and temperature distribution was analyzed using the models with properties similar to tissues for different values of parameters such as frequency, position and the number of sources. The results show that hot spots can be generated at the depths of the body. and that desirable temperature distribution can be obtained by selecting optimal parameters and cooling condition. To determine the temperature distribution more accurately it would be required to introduce the more complicated model of heat removal effect by blood flow and the experimental results. These problems are left for the future investigation.

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