TY - GEN
T1 - The Equivalent Circuit Modeling and Optimization of Square PMUTs Arrays for Improving Acoustic Performance
AU - Li, Zixuan
AU - Tan, Hongqiang
AU - Zhao, Zilong
AU - Yuan, Jiawei
AU - Qin, Shaohui
AU - Zhao, Yihe
AU - Li, Min
AU - Wang, Xiaozhang
AU - Li, Zhikang
AU - Zhao, Libo
N1 - Publisher Copyright:
© Huazhong University of Science and Technology 2026.
PY - 2026
Y1 - 2026
N2 - With advancements in MEMS technology, piezoelectric micromachined ultrasonic transducers (PMUTs) have gained prominence due to their miniature size, favorable acoustic impedance matching with human tissue, ease of 2D array fabrication, and seamless IC integration. However, efficient simulation tools for large-scale arrays remain limited, with most studies focusing only on single-element. In this work, we propose a comprehensive analytical model that couples mechanical, electrical, and acoustic domains by incorporating mutual radiation impedance among elements. The model is validated via finite element simulations, with resonant frequency, output power, and vibration velocity errors all below 3%. A 784-element square PMUTs array (radius: 70 μm, spacing: 40 μm) was fabricated, achieving a measured resonant frequency of 2.85 MHz in air and 2.1 MHz in water, closely matching the theoretical prediction of 2.2 MHz. Based on the equivalent model, we analyzed the effects of element spacing and array size on key performance about sound field, transmission power, and focal length. Results show that reducing spacing intensifies acoustic crosstalk, which, while broadening the bandwidth, suppresses output power. Additionally, increasing array size from 1 mm to 3 mm improves transmitted power from 2 mW to 18 mW, extends focal length from 1 mm to 8 mm, and narrows beamwidth from 82° to 36°. This study offers a validated theoretical method for designing and optimizing PMUTs arrays, facilitating their application in advanced ultrasonic systems.
AB - With advancements in MEMS technology, piezoelectric micromachined ultrasonic transducers (PMUTs) have gained prominence due to their miniature size, favorable acoustic impedance matching with human tissue, ease of 2D array fabrication, and seamless IC integration. However, efficient simulation tools for large-scale arrays remain limited, with most studies focusing only on single-element. In this work, we propose a comprehensive analytical model that couples mechanical, electrical, and acoustic domains by incorporating mutual radiation impedance among elements. The model is validated via finite element simulations, with resonant frequency, output power, and vibration velocity errors all below 3%. A 784-element square PMUTs array (radius: 70 μm, spacing: 40 μm) was fabricated, achieving a measured resonant frequency of 2.85 MHz in air and 2.1 MHz in water, closely matching the theoretical prediction of 2.2 MHz. Based on the equivalent model, we analyzed the effects of element spacing and array size on key performance about sound field, transmission power, and focal length. Results show that reducing spacing intensifies acoustic crosstalk, which, while broadening the bandwidth, suppresses output power. Additionally, increasing array size from 1 mm to 3 mm improves transmitted power from 2 mW to 18 mW, extends focal length from 1 mm to 8 mm, and narrows beamwidth from 82° to 36°. This study offers a validated theoretical method for designing and optimizing PMUTs arrays, facilitating their application in advanced ultrasonic systems.
KW - array design
KW - equivalent circuit model
KW - performance optimization
KW - Piezoelectric micromachined ultrasonic transducers (PMUTs)
UR - https://www.scopus.com/pages/publications/105042975934
U2 - 10.1007/978-981-95-8146-7_23
DO - 10.1007/978-981-95-8146-7_23
M3 - 会议稿件
AN - SCOPUS:105042975934
SN - 9789819581450
T3 - Lecture Notes in Electrical Engineering
SP - 240
EP - 250
BT - Advanced Measurement, Imaging, and Instruments - Selected Papers from ISMTII - ICOIM 2025
A2 - Liu, Shiyuan
A2 - Zhu, Jinlong
A2 - Yang, Shuming
PB - Springer Science and Business Media Deutschland GmbH
T2 - 16th International Symposium on Measurement Technology and Intelligent Instruments, ISMTII 2025 and 3rd International Conference of Optical Imaging and Measurement, ICOIM 2025
Y2 - 25 May 2025 through 28 May 2025
ER -