Numerical study and experimental investigation of an electrohydrodynamic device for inertial sensing
Paper
Paper/Presentation Title | Numerical study and experimental investigation of an electrohydrodynamic device for inertial sensing |
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Presentation Type | Paper |
Authors | Nguyen, Thu-Hang (Author), Tran, Ngoc Van (Author), Dinh, Thien Xuan (Author), Tran, Canh-Dung (Author), Dau, Van Thanh (Author), Chu, Trinh Duc (Author), Hoang, Hai Nguyen (Author) and Bui, Tung Thanh (Author) |
Journal or Proceedings Title | IEEE Xplore |
Journal Citation | 2021, pp. 1351-1354 |
Article Number | B5-543j |
Number of Pages | 4 |
Year | 2021 |
Place of Publication | United States |
ISBN | 9780738125626 |
9781665412674 | |
Digital Object Identifier (DOI) | https://doi.org/10.1109/Transducers50396.2021.9495410 |
Web Address (URL) of Paper | https://ieeexplore.ieee.org/abstract/document/9495410 |
Conference/Event | 21st International Conference on Solid-State Sensors, Actuators and Microsystems (Transducers 2021) |
Event Details | 21st International Conference on Solid-State Sensors, Actuators and Microsystems (Transducers 2021) Parent International Conference on Solid-State Sensors, Actuators and Microsystems (Transducers) Delivery Online Event Date 20 to end of 25 Jun 2021 Event Location Orlando, United States |
Abstract | We present a multi-physics simulation associated with experimental investigation for an electrohydrodynamic gyroscope based on ion wind corona discharge. The present device consisting of multiple point-ring electrodes generates a synthetic jet flow of ions for inertial sensing applications. Meanwhile the residual charge of jet is neutralized by an external ring electrode to guarantee the ion wind stable while circulating inside the device's channels. The working principle including the generation and then circulation of jet flow within the present device is firstly demonstrated by a numerical simulation and the feasibility and stability of the device are then successfully investigated by experimental work. Results show owing to the ion wind corona discharge based approach associated with new configuration, the present device is robust and consumes low energy. |
Keywords | multiphysics simulation, ionic wind corona discharge, inertial sensing, gyroscope, electrohydrodynamic |
ANZSRC Field of Research 2020 | 401799. Mechanical engineering not elsewhere classified |
Public Notes | Accepted version deposited in accordance with the copyright policy of the publisher. |
Byline Affiliations | Vietnam National University, Vietnam |
Academy of Military Science and Technology, Vietnam | |
Explosion Research Institute, Japan | |
School of Mechanical and Electrical Engineering | |
Griffith University | |
Institution of Origin | University of Southern Queensland |
https://research.usq.edu.au/item/q6918/numerical-study-and-experimental-investigation-of-an-electrohydrodynamic-device-for-inertial-sensing
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