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用于实现紧密聚焦的双聚焦超声换能器的设计与制造

Design and Fabrication of Double-Focused Ultrasound Transducers to Achieve Tight Focusing.

作者信息

Jang Jihun, Chang Jin Ho

机构信息

Department of Electronic Engineering, Sogang University, Seoul 04107, Korea.

Department of Biomedical Engineering, Sogang University, Seoul 04107, Korea.

出版信息

Sensors (Basel). 2016 Aug 6;16(8):1248. doi: 10.3390/s16081248.

Abstract

Beauty treatment for skin requires a high-intensity focused ultrasound (HIFU) transducer to generate coagulative necrosis in a small focal volume (e.g., 1 mm³) placed at a shallow depth (3-4.5 mm from the skin surface). For this, it is desirable to make the F-number as small as possible under the largest possible aperture in order to generate ultrasound energy high enough to induce tissue coagulation in such a small focal volume. However, satisfying both conditions at the same time is demanding. To meet the requirements, this paper, therefore, proposes a double-focusing technique, in which the aperture of an ultrasound transducer is spherically shaped for initial focusing and an acoustic lens is used to finally focus ultrasound on a target depth of treatment; it is possible to achieve the F-number of unity or less while keeping the aperture of a transducer as large as possible. In accordance with the proposed method, we designed and fabricated a 7-MHz double-focused ultrasound transducer. The experimental results demonstrated that the fabricated double-focused transducer had a focal length of 10.2 mm reduced from an initial focal length of 15.2 mm and, thus, the F-number changed from 1.52 to 1.02. Based on the results, we concluded that the proposed double-focusing method is suitable to decrease F-number while maintaining a large aperture size.

摘要

皮肤美容治疗需要高强度聚焦超声(HIFU)换能器在置于浅深度(距皮肤表面3 - 4.5毫米)的小焦体积(例如1立方毫米)内产生凝固性坏死。为此,希望在尽可能大的孔径下使F数尽可能小,以便产生足够高的超声能量,在如此小的焦体积内诱导组织凝固。然而,同时满足这两个条件具有挑战性。因此,为满足这些要求,本文提出一种双聚焦技术,其中超声换能器的孔径为球形用于初始聚焦,并且使用声透镜将超声最终聚焦在目标治疗深度;在保持换能器孔径尽可能大的同时,可以实现F数为1或更小。按照所提出的方法,我们设计并制造了一个7兆赫兹的双聚焦超声换能器。实验结果表明,制造的双聚焦换能器的焦距从初始焦距15.2毫米减小到10.2毫米,因此,F数从1.52变为1.02。基于这些结果,我们得出结论,所提出的双聚焦方法适合在保持大孔径尺寸的同时减小F数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6051/5017413/9a74e855e815/sensors-16-01248-g001.jpg

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