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MEMS vibrometer : Dynamic modeling of multimodal inertial transducers

ORCID
0000-0003-2702-4152
Affiliation/Institute
Institut für Mikrotechnik
Haus, Jan Niklas;
Affiliation/Institute
Institut für Mikrotechnik
Zhu, Zhengchun;
ORCID
0000-0002-8834-710X
Affiliation/Institute
Institut für Mechanik und Adaptronik
Roloff, Thomas;
ORCID
0000-0002-8651-5042
Affiliation/Institute
Institut für Mechanik und Adaptronik
Rittmeier, Liv; Bornemann, Sarah;
ORCID
0000-0002-1873-9140
Affiliation/Institute
Institut für Mechanik und Adaptronik
Sinapius, Michael;
ORCID
0000-0003-2090-6259
Affiliation/Institute
Institut für Mikrotechnik
Dietzel, Andreas

Guided ultrasonic wave-based structural health monitoring utilizes propagating elastic waves to identify, locate, and characterize damage within aviation structures. Fiber metal laminates, which are composite materials made by layering metal sheets with fiber-reinforced polymers, combine the high strength of composites with the ductility and impact resistance of metals. However, structural health monitoring methods suitable for these materials have to be developed, allowing to monitor also the inner laminate layers. Therefore, laminate-embedded MEMS vibrometers have been introduced recently. Due to the quasi-free operation of these inertial sensors, they are directly sensitive to the displacement induced by propagating guided ultrasonic waves. However, the multimodal excitation of the sensor's core resonator, when exposed to ultrasound bursts, leads to a pseudo-nonlinear sensor response, which is attributed to the spectrum of guided ultrasonic waves and their interference with higher harmonics of the continuum resonator. The transfer behavior of the sensor can be improved by implementing electrical mode suppression. This research involves analytically modeling the continuous resonator with multiple aggregated resonators, numerically simulating sensor responses to 100 kHz ultrasound bursts, and using a laser scanning micro vibrometer setup for experimental validation, providing a deeper understanding of MEMS vibrometer dynamics for ultrasonic monitoring and demonstrating their applicability.

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