TY - GEN
T1 - Battery-Less Soft Sensor of Spacecraft Vibration with Advanced Piezoelectric Energy Harvester
AU - Hara, Yushin
AU - Li, An
AU - Zhou, Meng
AU - Otsuka, Keisuke
AU - Makihara, Kanjuro
N1 - Funding Information:
This work was supported by Grant-in-Aid for JSPS Fellows (KAKENHI) (Grant No. 20J11339), Grant-in-Aid for Scientific Research (B) (KAKENHI) (grant number 18H01619), Grant-in-Aid for Scientific Research (C) (KAKENHI) (grant number 19K04069), JSPS Core-to-Core Program, A. Advanced Research Networks (JSCCA20200005), and Grant-in-Aid for Challenging Exploratory Research (grant number 20K21041) from the Japan Society for the Promotion of Science.
Publisher Copyright:
© 2021 International Astronautical Federation, IAF. All rights reserved.
PY - 2021
Y1 - 2021
N2 - Suppression of structural vibration in a spacecraft is crucial because the vibration hinders the proper operation of the spacecraft and scientific investigations. An active vibration control method has a more effective damping performance than a passive control method. An active method requires an actuator, a power source, and a sensor to realize the vibration suppression. However, the active method has not been adapted for suppression of structural vibration on a spacecraft because the three components required for the active method lead to structural weight gain and a more complex spacecraft design. Recently, smart structurization has been received considerable attention as an effective method to realize a low-weight advanced control system. A piezoelectric transducer attached to a vibrating structure can function as an actuator, an energy source, and a sensor and thereby meets the three requirements for an active vibration control method. This paper reports on the integration of the three functions into a single piezoelectric transducer. The proposed system achieves vibration suppression with a minimal number of components and a simple design. Experimental validation of the estimation and vibration suppression performance are presented. The proposed system achieves the vibration suppression using a single transducer. Evaluation of the robustness of the vibration suppression performance against observation noise is also detailed. The proposed system can maintain effective performance while operating under noise-contaminated conditions.
AB - Suppression of structural vibration in a spacecraft is crucial because the vibration hinders the proper operation of the spacecraft and scientific investigations. An active vibration control method has a more effective damping performance than a passive control method. An active method requires an actuator, a power source, and a sensor to realize the vibration suppression. However, the active method has not been adapted for suppression of structural vibration on a spacecraft because the three components required for the active method lead to structural weight gain and a more complex spacecraft design. Recently, smart structurization has been received considerable attention as an effective method to realize a low-weight advanced control system. A piezoelectric transducer attached to a vibrating structure can function as an actuator, an energy source, and a sensor and thereby meets the three requirements for an active vibration control method. This paper reports on the integration of the three functions into a single piezoelectric transducer. The proposed system achieves vibration suppression with a minimal number of components and a simple design. Experimental validation of the estimation and vibration suppression performance are presented. The proposed system achieves the vibration suppression using a single transducer. Evaluation of the robustness of the vibration suppression performance against observation noise is also detailed. The proposed system can maintain effective performance while operating under noise-contaminated conditions.
KW - Energy harvesting
KW - Piezoelectricity
KW - Self-powered
KW - Self-sensing
KW - Smart Structure
KW - Vibration damping
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M3 - Conference contribution
AN - SCOPUS:85127427552
T3 - Proceedings of the International Astronautical Congress, IAC
BT - IAF Materials and Structures Symposium 2021 - Held at the 72nd International Astronautical Congress, IAC 2021
PB - International Astronautical Federation, IAF
T2 - IAF Materials and Structures Symposium 2021 at the 72nd International Astronautical Congress, IAC 2021
Y2 - 25 October 2021 through 29 October 2021
ER -