Measuring the curvature and radiation distribution of spherically focused ultrasound transducers using the electric continuity and the emitted pressure

M. Gutiérrez, A. Vera, A. Ramos, J. Gutierrez, L. Leija
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Abstract

Focused ultrasound has been used in clinic for the treatment of different diseases, but predominantly in oncology. The main characteristic of this technique is the production of a strongly focused acoustic field composed by a near-field and far-field zones, separated by a well-defined focus. Usually, due to the complexity of the vibration of real transducers, this acoustic field is assumed to be produced by a uniform vibrating curved radiator, with a characteristic but unreal acoustic field. If the radiation of the transducer is not uniform, the acoustic field changes importantly. In this paper, we are proposing a technique to characterize the shape of the focused transducers and to measure the radiation distribution very close to the transducer radiating curved surface. The technique uses the electric continuity to detect the position of the transducer surface at each point using a 3D automated positioner (6.4 μm of step resolution). The position is saved, and another measurement is carried out using a hydrophone to measure the pressure at each same point, and obtain the radiating profile. The technique has shown to be appropriate for determining the transducer's shape, with a resolution limited by the positioning system. The pressure radiating profile shown a ring-type behaviors as expected.
利用电连续性和发射压力测量球聚焦超声换能器的曲率和辐射分布
聚焦超声已在临床上用于治疗各种疾病,但主要用于肿瘤。这种技术的主要特点是产生由近场和远场区域组成的强聚焦声场,由一个明确的焦点分开。通常,由于实际换能器振动的复杂性,假设该声场是由均匀振动的弯曲散热器产生的,具有特征但不真实的声场。如果换能器的辐射不均匀,则声场变化较大。在本文中,我们提出了一种技术来表征聚焦换能器的形状,并测量非常接近换能器辐射曲面的辐射分布。该技术利用电连续性来检测换能器表面在每个点上的位置,使用3D自动定位器(6.4 μm的步进分辨率)。保存位置后,利用水听器对同一点的压力进行测量,得到辐射剖面。该技术已被证明适合于确定换能器的形状,其分辨率受定位系统的限制。压力辐射曲线表现出预期的环状行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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