Manufacturing and control of autonomous underwater vehicle

A hover style autonomous underwater vehicle (AUV) was designed in this thesis. 8 thrusters were employed in this design to allow for control over all 6 degrees of freedom. A streamlined outer shell was designed to encapsulate the AUV such that the outer profile of the vehicle is streamlined, reducin...

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Main Author: Ang, Elijah Hao Wei
Other Authors: Basman Elhadidi
Format: Final Year Project
Language:English
Published: 2019
Subjects:
Online Access:http://hdl.handle.net/10356/78587
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-785872023-03-04T19:12:17Z Manufacturing and control of autonomous underwater vehicle Ang, Elijah Hao Wei Basman Elhadidi School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering::Control engineering DRNTU::Engineering::Aeronautical engineering A hover style autonomous underwater vehicle (AUV) was designed in this thesis. 8 thrusters were employed in this design to allow for control over all 6 degrees of freedom. A streamlined outer shell was designed to encapsulate the AUV such that the outer profile of the vehicle is streamlined, reducing the pressure drag on the AUV. Fossen's model was used for the mathematical modelling of the AUV. Since the AUV designed has 3 planes of symmetry, off-diagonal terms of the hydrodynamic matrices can be neglected. This makes calculating the hydrodynamic coefficients easier. These coefficients were calculated using computational fluid dynamics simulations, and were used in the mathematical modelling of the AUV. The open loop response of the AUV was examined by giving it a step input for each of the 6 degrees of freedom. Surge, sway, heave and yaw exhibits first order responses, while roll and pitch exhibits second order responses. A PID controller was implemented, and the close loop response was examined, and all the degrees of freedoms' responses behaved well. A trajectory analysis was done to determine a more efficient method to move from a point to another. Results showed that coupling pitching with surging motion is 50% more efficient in time, and 22% more efficient in energy when compared to discrete translational motions. An inertial navigation system (INS) and inertial measurement unit (IMU) were compared for their performance. The INS outperform the IMU with cleaner and more stable data. However, both were not suitable for measuring displacements, and thus, additional sensors are required. The AUV was not able to undergo water experiments as some hardware were damaged due to the poor implementation of the start-stop switch, which caused a short circuit in the system. Bachelor of Engineering (Aerospace Engineering) 2019-06-24T04:15:41Z 2019-06-24T04:15:41Z 2019 Final Year Project (FYP) http://hdl.handle.net/10356/78587 en Nanyang Technological University 82 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::Mechanical engineering::Control engineering
DRNTU::Engineering::Aeronautical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering::Control engineering
DRNTU::Engineering::Aeronautical engineering
Ang, Elijah Hao Wei
Manufacturing and control of autonomous underwater vehicle
description A hover style autonomous underwater vehicle (AUV) was designed in this thesis. 8 thrusters were employed in this design to allow for control over all 6 degrees of freedom. A streamlined outer shell was designed to encapsulate the AUV such that the outer profile of the vehicle is streamlined, reducing the pressure drag on the AUV. Fossen's model was used for the mathematical modelling of the AUV. Since the AUV designed has 3 planes of symmetry, off-diagonal terms of the hydrodynamic matrices can be neglected. This makes calculating the hydrodynamic coefficients easier. These coefficients were calculated using computational fluid dynamics simulations, and were used in the mathematical modelling of the AUV. The open loop response of the AUV was examined by giving it a step input for each of the 6 degrees of freedom. Surge, sway, heave and yaw exhibits first order responses, while roll and pitch exhibits second order responses. A PID controller was implemented, and the close loop response was examined, and all the degrees of freedoms' responses behaved well. A trajectory analysis was done to determine a more efficient method to move from a point to another. Results showed that coupling pitching with surging motion is 50% more efficient in time, and 22% more efficient in energy when compared to discrete translational motions. An inertial navigation system (INS) and inertial measurement unit (IMU) were compared for their performance. The INS outperform the IMU with cleaner and more stable data. However, both were not suitable for measuring displacements, and thus, additional sensors are required. The AUV was not able to undergo water experiments as some hardware were damaged due to the poor implementation of the start-stop switch, which caused a short circuit in the system.
author2 Basman Elhadidi
author_facet Basman Elhadidi
Ang, Elijah Hao Wei
format Final Year Project
author Ang, Elijah Hao Wei
author_sort Ang, Elijah Hao Wei
title Manufacturing and control of autonomous underwater vehicle
title_short Manufacturing and control of autonomous underwater vehicle
title_full Manufacturing and control of autonomous underwater vehicle
title_fullStr Manufacturing and control of autonomous underwater vehicle
title_full_unstemmed Manufacturing and control of autonomous underwater vehicle
title_sort manufacturing and control of autonomous underwater vehicle
publishDate 2019
url http://hdl.handle.net/10356/78587
_version_ 1759855779049897984