Title :
Advantages of Electrostatic Spring Hardening in Biomimetic Hair Flow Sensors
Author :
Droogendijk, Harmen ; de Boer, Meint J. ; Sanders, Remco G. P. ; Krijnen, Gijs J. M.
Author_Institution :
MESA+ Inst. for Nanotechnol., Univ. of Twente, Enschede, Netherlands
Abstract :
We report on a fully adaptable flow sensor with adjustable detection limit, responsivity, range, and bandwidth by addition of electrostatic spring hardening (ESH) to our previously developed microelectromechanical systems hair flow sensors. The sensor´s mechanical transfer shows large voltage-controlled electromechanically affected responsivity for frequencies below the sensor´s resonance. Using capacitive readout, a bias voltage-controlled sensory threshold is obtained, giving a threefold tunable ac-airflow detection threshold (down to 0.3 mms-1). The mechanism of spring control also extends to dc-flows, as shown for the first time; electrostatic spring hardening allows to increase the dc-flow measurement range by almost a factor 2, up to about 5 ms-1. Furthermore, the application of ESH is demonstrated both theoretically and experimentally for nonresonant parametric amplification (NRPA) by achieving suppression of residual frequency components at the cost of overall gain. In addition, we show that ESH allows to extend selective gain and tunable filtering by NRPA to a larger range of flow frequencies.
Keywords :
biomimetics; capacitance measurement; capacitive sensors; electric sensing devices; electrostatic devices; flow measurement; flow sensors; hardening; DC-flow measurement; ESH; NRPA; adjustable detection limit; bias voltagecontrolled sensory threshold; biomimetic hair flow sensor; capacitive readout; electrostatic spring hardening; microelectromechanical systems hair flow sensor; nonresonant parametric amplification; residual frequency component; spring control mechanism; threefold tunable ac-airflow detection threshold; Capacitance; Electrostatics; Hair; Sensor systems; Softening; Springs; Hair flow sensor; biomimetics; electrostatics; electrostatics.; spring hardening;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2015.2409134