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Finite Element Modeling of Capacitive Micromachined Ultrasonic Transducers

机译:电容式微机械超声换能器的有限元模拟

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Transducers based on piezoelectric crystals dominate the biomedical ultrasonic imaging field. However, fabrication difficulties for piezoelectric transducers limit their usage for complex imaging modalities such as 2D imaging, high frequency imaging, and forward looking intravascular imaging. Capacitive micromachined ultrasonic transducers (CMUTs) have been proposed to overcome these limitations and they offer competitive advantages in terms of bandwidth and dynamic range. Further, the ease of fabrication enables manufacturing of complex array geometries. A CMUT transducer is composed of many electrostatically actuated membranes. Earlier analysis of these devices concentrated on an equivalent circuit approach, which assumed the motion of the membrane was approximated by a parallel plate capacitor. Finite element analysis is required for more accurate results. In this paper, we present the finite element model developed to evaluate the performance of the CMUTs. The model is composed of a membrane radiating into immersion medium. Electrostatic actuation is added on using electromechanical elements. Symmetry boundary conditions are imposed around the sidewalls of the finite element mesh, so that the model reflects the properties of a cell driven with the same phase as its neighboring membranes in an infinitely large array. Absorbing boundaries are implemented one wavelength away from the membrane to avoid reflections from the end of the finite element mesh. Using the model, we optimized the membrane radius, membrane thickness and gap height. Our optimized designed yielded a center frequency of 13 MHz with hundred percent bandwidth. A maximum output pressure of 20 kPascal per volt was obtained.
机译:基于压电晶体的换能器主导了生物医学超声成像场。然而,压电换能器的制造困难限制了它们对复杂的成像模态的用法,例如2D成像,高频成像和前进的血管内成像。已经提出了电容式微机械超声换能器(CMUT)以克服这些限制,并且在带宽和动态范围方面提供竞争优势。此外,制造的易于制造能够制造复杂的阵列几何形状。 CMUT换能器由许多静电致动膜组成。对这些集中在等效电路方法集中的这些装置的早期分析,这假设膜的运动由平行板电容器近似。更准确的结果需要有限元分析。在本文中,我们提出了开发的有限元模型来评估CMUT的性能。该模型由辐射到浸渍介质的膜组成。使用机电元件在静电致动。对称边界条件围绕有限元啮合的侧壁施加,使得模型反射在无限大的阵列中以与其相邻的膜驱动的电池的性质。吸收边界被实现一个远离膜的波长,以避免来自有限元啮合的末端的反射。使用模型,我们优化了膜半径,膜厚度和间隙高度。我们的优化设计率为13 MHz的中心频率,百分之百带宽。获得每伏20 kpascal的最大输出压力。

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