微机械自聚焦压电复合超声换能器

X. Jian, Zhile Han, Yongjia Xiang, Zhangjian Li, Yaoyao Cui
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引用次数: 0

摘要

聚焦换能器通常具有声透镜或大凹面,以产生聚焦的高强度超声光束。因此,这些传统的聚焦换能器通常尺寸大,焦距长,不适合介入超声成像或治疗。为了解决这一问题,本文设计了一种微机械自聚焦压电复合超声换能器,并对其性能进行了评价。基于压电复合材料的机电响应特性和菲涅耳半波段干涉理论,推导了压电复合材料的理论分析。该自聚焦换能器具有体积小、焦距短、声阻抗小、机电耦合系数高等优点。此外,由于它是基于微机电系统的,所以加工精度高、可靠。这些结果在介入超声治疗或影像学应用方面具有良好的潜力。
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Micromachined self-focusing piezoelectric composite ultrasonic transducer
Usually focused transducers have acoustical lens or large concave surface in order to generate focused high intensity ultrasound beam. Therefore these traditional focusing transducers are commonly large in size and long in focal length, which are not suitable for interventional ultrasound imaging or therapy. For solving this problem, in this paper, a micromachined self-focusing piezoelectric composite ultrasonic transducer was designed and evaluated. The theoretical analysis was deduced based on the electromechanical response of piezoelectric composites and theory of Fresnel half-wave band interference. This self-focusing transducer has many advantages, including micro size, short focal length, low acoustic impedance, high electromechanical coupling coefficient. Besides these, because it was based on micro-electromechanical systems, the fabrication process precision is high and reliable. These results hold good potential for interventional ultrasound therapy or imaging applications.
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