Design and test of synthetic jet actuator for propulsion

Compact zero-mass pulsatile jet actuators are proposed for low speed maneuvering and station keeping of small, autonomous underwater vehicles. Hence, the optimization of synthetic jets for maximal thrust generation is being investigated. Flow field of such jets are initially dominated by vortex ring...

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Main Author: Teo, Nathaniel Desheng
Other Authors: Tang Chuyang
Format: Final Year Project
Language:English
Published: 2014
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Online Access:http://hdl.handle.net/10356/60934
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-609342023-03-04T19:09:50Z Design and test of synthetic jet actuator for propulsion Teo, Nathaniel Desheng Tang Chuyang School of Mechanical and Aerospace Engineering Tang Hui DRNTU::Engineering Compact zero-mass pulsatile jet actuators are proposed for low speed maneuvering and station keeping of small, autonomous underwater vehicles. Hence, the optimization of synthetic jets for maximal thrust generation is being investigated. Flow field of such jets are initially dominated by vortex ring formation. Pinched-off vortices characterize the extremum impulse accumulated by the leading vortex ring in a vortex ring formation process. Relevant parameters in this process are identified to design simple and low cost zero-mass pulsatile jet actuators. Prototypes of the aforementioned actuators are built for propulsion and underwater maneuvering. The actuators could be utilized in two ways. Firstly, it can be used to improve the low speed maneuvering and station keeping capabilities of traditional propeller driven underwater vehicles. Secondly, it can also be used as a synthetic jet for flow control and drag reduction at higher cruising speeds. Also, pulsatile jets can be actuated through a variety of techniques. The two methods of such actuators include a mechanical plunger system, and a solenoid actuator. The actuators consist of a small cavity with an orifice on one side, whereas the other side has a moving diaphragm. The mechanical actuator is designed such that the orifice diameter and actuation frequency can be easily varied in order to find the optimal operation point of the actuator. Conversely, solenoid actuation shows an almost linear stroke dependency on the actuation frequency. Bachelor of Engineering (Aerospace Engineering) 2014-06-03T05:47:19Z 2014-06-03T05:47:19Z 2014 2014 Final Year Project (FYP) http://hdl.handle.net/10356/60934 en Nanyang Technological University 46 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering
spellingShingle DRNTU::Engineering
Teo, Nathaniel Desheng
Design and test of synthetic jet actuator for propulsion
description Compact zero-mass pulsatile jet actuators are proposed for low speed maneuvering and station keeping of small, autonomous underwater vehicles. Hence, the optimization of synthetic jets for maximal thrust generation is being investigated. Flow field of such jets are initially dominated by vortex ring formation. Pinched-off vortices characterize the extremum impulse accumulated by the leading vortex ring in a vortex ring formation process. Relevant parameters in this process are identified to design simple and low cost zero-mass pulsatile jet actuators. Prototypes of the aforementioned actuators are built for propulsion and underwater maneuvering. The actuators could be utilized in two ways. Firstly, it can be used to improve the low speed maneuvering and station keeping capabilities of traditional propeller driven underwater vehicles. Secondly, it can also be used as a synthetic jet for flow control and drag reduction at higher cruising speeds. Also, pulsatile jets can be actuated through a variety of techniques. The two methods of such actuators include a mechanical plunger system, and a solenoid actuator. The actuators consist of a small cavity with an orifice on one side, whereas the other side has a moving diaphragm. The mechanical actuator is designed such that the orifice diameter and actuation frequency can be easily varied in order to find the optimal operation point of the actuator. Conversely, solenoid actuation shows an almost linear stroke dependency on the actuation frequency.
author2 Tang Chuyang
author_facet Tang Chuyang
Teo, Nathaniel Desheng
format Final Year Project
author Teo, Nathaniel Desheng
author_sort Teo, Nathaniel Desheng
title Design and test of synthetic jet actuator for propulsion
title_short Design and test of synthetic jet actuator for propulsion
title_full Design and test of synthetic jet actuator for propulsion
title_fullStr Design and test of synthetic jet actuator for propulsion
title_full_unstemmed Design and test of synthetic jet actuator for propulsion
title_sort design and test of synthetic jet actuator for propulsion
publishDate 2014
url http://hdl.handle.net/10356/60934
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