Study of miniaturized electronic safe and arm device

Miniaturization of the safe and arm (S&A) device in fuzes is increasing important as smaller and smarter fuzes are demanded in the modern warfare. Microelectromechanical System (MEMS) fabrication techniques provides great prospects of miniaturization with advantages including decreased size, mas...

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Main Author: Yeo, Titus Li Jie
Other Authors: Li King Ho Holden
Format: Final Year Project
Language:English
Published: Nanyang Technological University 2020
Subjects:
Online Access:https://hdl.handle.net/10356/141588
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1415882023-03-04T18:48:56Z Study of miniaturized electronic safe and arm device Yeo, Titus Li Jie Li King Ho Holden School of Mechanical and Aerospace Engineering Tse Man Siu HoldenLi@ntu.edu.sg Engineering::Mechanical engineering Miniaturization of the safe and arm (S&A) device in fuzes is increasing important as smaller and smarter fuzes are demanded in the modern warfare. Microelectromechanical System (MEMS) fabrication techniques provides great prospects of miniaturization with advantages including decreased size, mass and batch fabrication as opposed to other conventional manufacturing methods. The intention of this report was to investigate and propose a MEMS based S&A device design. Compared to previous research, the present work strives for simpler design that has minimal single points of failure. The working principle of the proposed mechanism uses the setback acceleration and centrifugal force to unlock the safety locks and actuate the mechanism while the delay is controlled by the verge escapement design. The proposed ESAD was designed theoretically with mathematical models and verified with simulation results. The prototype was 3D printed and the experimental results demonstrated the proof of concept of the proposed design. Bachelor of Engineering (Mechanical Engineering) 2020-06-09T06:23:49Z 2020-06-09T06:23:49Z 2020 Final Year Project (FYP) https://hdl.handle.net/10356/141588 en application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
spellingShingle Engineering::Mechanical engineering
Yeo, Titus Li Jie
Study of miniaturized electronic safe and arm device
description Miniaturization of the safe and arm (S&A) device in fuzes is increasing important as smaller and smarter fuzes are demanded in the modern warfare. Microelectromechanical System (MEMS) fabrication techniques provides great prospects of miniaturization with advantages including decreased size, mass and batch fabrication as opposed to other conventional manufacturing methods. The intention of this report was to investigate and propose a MEMS based S&A device design. Compared to previous research, the present work strives for simpler design that has minimal single points of failure. The working principle of the proposed mechanism uses the setback acceleration and centrifugal force to unlock the safety locks and actuate the mechanism while the delay is controlled by the verge escapement design. The proposed ESAD was designed theoretically with mathematical models and verified with simulation results. The prototype was 3D printed and the experimental results demonstrated the proof of concept of the proposed design.
author2 Li King Ho Holden
author_facet Li King Ho Holden
Yeo, Titus Li Jie
format Final Year Project
author Yeo, Titus Li Jie
author_sort Yeo, Titus Li Jie
title Study of miniaturized electronic safe and arm device
title_short Study of miniaturized electronic safe and arm device
title_full Study of miniaturized electronic safe and arm device
title_fullStr Study of miniaturized electronic safe and arm device
title_full_unstemmed Study of miniaturized electronic safe and arm device
title_sort study of miniaturized electronic safe and arm device
publisher Nanyang Technological University
publishDate 2020
url https://hdl.handle.net/10356/141588
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