TY - JOUR
T1 - Dual-Mode Transduction–Induced Noise Correlation for Enhanced Fused Resolution in A Single Resonant Accelerometer
AU - Li, Chengxin
AU - Wu, Fan
AU - Zhang, Hemin
AU - Zhao, Chun
AU - Madeira, Bernardo Pereira
AU - Wang, Chen
AU - Torunbalci, Mustafa Mert
AU - De Strycker, Lieven
AU - Kraft, Michael
N1 - Publisher Copyright:
© 1982-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - Signal fusion between various sensors has been explored to enhance the robustness and resolution, leveraging their complementary characteristics. In general, a higher correlation between sensors leads to more efficient fusion. This work presents a silicon resonant accelerometer (SRA) that enables tunable noise correlation between capacitive and piezoresistive dual transductions. The accelerometer comprises a double clamped beam resonator with piezoresistive gauges and capacitive electrodes, allowing simultaneous transduction outputs of both signals. Through tuning the thermal bias applied to the piezoresistive gauges, the transduction gain of the piezoresistive signal can be tuned, enabling real-time control of the correlation between the two signals. The real-time frequencies demodulated from the signals with variable correlation are fused by using a general 2nd-order Kalman filter algorithm. Experimental results demonstrate that the fused output achieves a resolution of 0.49 µg/√Hz. This represents an improvement of approximately 10.45 dB compared with capacitive detection alone. Meanwhile, the fused signal preserves the broad bandwidth of ∼1150 Hz provided by piezoresistive detection. This highlights the effectiveness of noise correlation manipulation for enhancing sensor performance by output signal fusion.
AB - Signal fusion between various sensors has been explored to enhance the robustness and resolution, leveraging their complementary characteristics. In general, a higher correlation between sensors leads to more efficient fusion. This work presents a silicon resonant accelerometer (SRA) that enables tunable noise correlation between capacitive and piezoresistive dual transductions. The accelerometer comprises a double clamped beam resonator with piezoresistive gauges and capacitive electrodes, allowing simultaneous transduction outputs of both signals. Through tuning the thermal bias applied to the piezoresistive gauges, the transduction gain of the piezoresistive signal can be tuned, enabling real-time control of the correlation between the two signals. The real-time frequencies demodulated from the signals with variable correlation are fused by using a general 2nd-order Kalman filter algorithm. Experimental results demonstrate that the fused output achieves a resolution of 0.49 µg/√Hz. This represents an improvement of approximately 10.45 dB compared with capacitive detection alone. Meanwhile, the fused signal preserves the broad bandwidth of ∼1150 Hz provided by piezoresistive detection. This highlights the effectiveness of noise correlation manipulation for enhancing sensor performance by output signal fusion.
KW - Kalman filter
KW - piezoresistive gauges
KW - resonant accelerometer
KW - signal fusion
KW - tunable noise correlation
UR - https://www.scopus.com/pages/publications/105041287961
U2 - 10.1109/TIE.2026.3688829
DO - 10.1109/TIE.2026.3688829
M3 - 文章
AN - SCOPUS:105041287961
SN - 0278-0046
JO - IEEE Transactions on Industrial Electronics
JF - IEEE Transactions on Industrial Electronics
ER -