TY - JOUR
T1 - Regulation of Three Different Nonlinear States in Micromechanical Resonators
AU - Xiao, Zunhao
AU - Shi, Zhan
AU - Wang, Xuefeng
AU - Lv, Qiangfeng
AU - Wei, Xueyong
AU - Huan, Ronghua
N1 - Publisher Copyright:
© 1992-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - The introduction of nonlinearity has broadened the performance and application range of micro-mechanical resonators, making the design and regulation of tailored nonlinear properties crucial—necessitating the identification of distinct nonlinear states. While traditional models account for either hardening or softening nonlinearities, they often overlook mixed nonlinearity, which manifests as dual jumps—right-sided (hardening) and left-sided (softening)—in the amplitude-frequency response. To clarify the transitions among hardening, softening, and mixed states, we performed experiments on a single micro-mechanical straight beam, where all three regimes were induced by modulating the excitation and electrothermal current. Based on the observed backbone curves, we developed an analytical model to characterize the boundaries of these nonlinear states. The model shows good agreement with experimental observations, supporting its effectiveness in capturing the underlying trends. Rather than providing exact predictions, the model offers insights into how the quadratic and cubic nonlinear coefficients, along with excitation intensity, influence state transitions. These findings contribute to a better understanding of nonlinear behavior and offer guidance for the design and regulation of nonlinear states in micro-mechanical systems.[2025-0044].
AB - The introduction of nonlinearity has broadened the performance and application range of micro-mechanical resonators, making the design and regulation of tailored nonlinear properties crucial—necessitating the identification of distinct nonlinear states. While traditional models account for either hardening or softening nonlinearities, they often overlook mixed nonlinearity, which manifests as dual jumps—right-sided (hardening) and left-sided (softening)—in the amplitude-frequency response. To clarify the transitions among hardening, softening, and mixed states, we performed experiments on a single micro-mechanical straight beam, where all three regimes were induced by modulating the excitation and electrothermal current. Based on the observed backbone curves, we developed an analytical model to characterize the boundaries of these nonlinear states. The model shows good agreement with experimental observations, supporting its effectiveness in capturing the underlying trends. Rather than providing exact predictions, the model offers insights into how the quadratic and cubic nonlinear coefficients, along with excitation intensity, influence state transitions. These findings contribute to a better understanding of nonlinear behavior and offer guidance for the design and regulation of nonlinear states in micro-mechanical systems.[2025-0044].
KW - electrothermal
KW - MEMS
KW - nonlinear
UR - https://www.scopus.com/pages/publications/105015155719
U2 - 10.1109/JMEMS.2025.3600653
DO - 10.1109/JMEMS.2025.3600653
M3 - 文章
AN - SCOPUS:105015155719
SN - 1057-7157
VL - 34
SP - 768
EP - 776
JO - Journal of Microelectromechanical Systems
JF - Journal of Microelectromechanical Systems
IS - 6
ER -