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Adjustable acoustic pattern controlled by 'Acoustic mirrors'

机译:由“声镜”控制的可调声图案

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The controlled coupling of acoustic field is widely used in medical treatment, neuromodulation, particle manipulation, and biological imaging. Nowadays, phased arrays and acoustic lenses of design structures are two ways of controlling the ultrasound field. However, the disadvantages of the two methods are that phased arrays are complex in structure by adjusting parameters of each array element and acoustic lenses have limited flexibility when the design is complete. We designed report a new way for acoustic pattern control by using adjustable "Acoustic mirror". The principle is that two symmetric mirrors change the propagation of the sound generated by piezoelectric material and achieve interference enhancement in the target area. The 2D "Acoustic mirror" model is implemented in COMSOL and actual model build by 3D printed technology verify the simulation result. The acoustic intensity generated by piezoelectric material at various lateral and longitudinal locations along the focus can be precisely controlled by two adjustable mirrors. The focal depth varies from 39mm to 140mm while the angel of the mirror changes from 30° to 40°. Moreover, the focal position can be adjusted in a fan area with a center angle of 60°. The "Acoustic mirror" shows good control of sound field of ultrasonic transducer, which is simple and flexible. It suggests a new method for ultrasonic field control which may have broad application in the future.
机译:声场的控制联轴器被广泛用于医疗,神经调节,颗粒处理,和生物成像。如今,相控阵和设计结构的声学透镜控制超声领域的两种方式。然而,这两种方法的缺点是,相控阵结构是复杂的,通过调整每个阵列元件和声学透镜的参数具有有限的灵活性设计完成时。我们设计报告通过使用可调节的“声镜”声频模式控制的新途径。其原理是,两个对称的反射镜改变由压电材料产生的声音的传播,实现在目标区域的干扰的增强。的2D“声学镜”模型是在COMSOL和实际模型的构建通过三维印刷技术来实现验证的模拟结果。在沿聚焦各种横向和纵向位置由压电材料产生的声学强度可以通过两个可调反射镜来精确地控制。而反射镜的天使从30°到40°变化的焦点深度从39毫米变化至140mm。另外,焦点位置可以具有60°的中心角的扇形区域进行调整。的“声学镜”显示出良好的控制超声换能器的声场,这是简单和灵活的。它表明对于其可具有在未来广阔的应用超声场控制的新方法。

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