Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface

While majority of morphing wing compliant surfaces constitutes a mixture of either metals, alloys, smart materials and some additive manufactured components, this project aims at investigating the feasibility of a fully integrated 3D printed VTOL UAV compliant surface, capable of internal actuation....

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Main Author: Tay, Mervyn Kai Yuen
Other Authors: Ng Bing Feng
Format: Final Year Project
Language:English
Published: 2019
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Online Access:http://hdl.handle.net/10356/76429
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-764292023-03-04T19:29:22Z Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface Tay, Mervyn Kai Yuen Ng Bing Feng School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering While majority of morphing wing compliant surfaces constitutes a mixture of either metals, alloys, smart materials and some additive manufactured components, this project aims at investigating the feasibility of a fully integrated 3D printed VTOL UAV compliant surface, capable of internal actuation. This report started by reviewing the applications of various morphing technology onto different conventional wing surfaces. Subsequently, the different trailing edge morphing configurations, consisting of both direct actuation and smart materials shape changes were highlighted and the concept of the FishBAC morphing actuation was progressively selected for integration into the project. The diverse applications of 3D printing techniques for different UAV configurations, along with the topological arrangements designed via Solidworks, and the testing and fabrication of selected 3D printing techniques were being elaborated and discussed in detail. Multi-material 3D printing PolyJet technology was adopted for the fabrication of the compliant surface due to its ability to manufacture intricate details of high resolution, as well as the ability to integrate both rigid and flexible surfaces in a single print. A shore hardness of 50A was ultimately chosen for the flexible trailing edge after material experimentation. Internal electrical components encompassed a Raspberry Pi microcontroller and a pair of TowerPro SG90 servo-motors were selected for initiating the actuation of the compliant surface. The tendons of the compliant surface constitutes a pair of monofilament nylon strings responsible for sustaining the required deflection. Putty, an open sourced terminal emulator tool was used in conjunction with Python script for the programming of the Raspberry Pi and its servo-motors. Optimisation techniques included the Mean Square Error (MSE) approach for the OpenCV image recognition for an automated displacement of the servo-motors. Future works included the implementation of embedded electronics with 3D printing, the integration of Shape Memory Alloy (SMA) and Voronoi Diagrams for structural optimisation for an increase in the actuation capability, reduction in weight and improvement in overall flight efficiency. Bachelor of Engineering (Mechanical Engineering) 2019-01-09T13:14:45Z 2019-01-09T13:14:45Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/76429 en Nanyang Technological University 129 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
spellingShingle DRNTU::Engineering::Mechanical engineering
Tay, Mervyn Kai Yuen
Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface
description While majority of morphing wing compliant surfaces constitutes a mixture of either metals, alloys, smart materials and some additive manufactured components, this project aims at investigating the feasibility of a fully integrated 3D printed VTOL UAV compliant surface, capable of internal actuation. This report started by reviewing the applications of various morphing technology onto different conventional wing surfaces. Subsequently, the different trailing edge morphing configurations, consisting of both direct actuation and smart materials shape changes were highlighted and the concept of the FishBAC morphing actuation was progressively selected for integration into the project. The diverse applications of 3D printing techniques for different UAV configurations, along with the topological arrangements designed via Solidworks, and the testing and fabrication of selected 3D printing techniques were being elaborated and discussed in detail. Multi-material 3D printing PolyJet technology was adopted for the fabrication of the compliant surface due to its ability to manufacture intricate details of high resolution, as well as the ability to integrate both rigid and flexible surfaces in a single print. A shore hardness of 50A was ultimately chosen for the flexible trailing edge after material experimentation. Internal electrical components encompassed a Raspberry Pi microcontroller and a pair of TowerPro SG90 servo-motors were selected for initiating the actuation of the compliant surface. The tendons of the compliant surface constitutes a pair of monofilament nylon strings responsible for sustaining the required deflection. Putty, an open sourced terminal emulator tool was used in conjunction with Python script for the programming of the Raspberry Pi and its servo-motors. Optimisation techniques included the Mean Square Error (MSE) approach for the OpenCV image recognition for an automated displacement of the servo-motors. Future works included the implementation of embedded electronics with 3D printing, the integration of Shape Memory Alloy (SMA) and Voronoi Diagrams for structural optimisation for an increase in the actuation capability, reduction in weight and improvement in overall flight efficiency.
author2 Ng Bing Feng
author_facet Ng Bing Feng
Tay, Mervyn Kai Yuen
format Final Year Project
author Tay, Mervyn Kai Yuen
author_sort Tay, Mervyn Kai Yuen
title Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface
title_short Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface
title_full Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface
title_fullStr Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface
title_full_unstemmed Development of a multi-rotor VTOL UAV : mechanical design of a 3D printed compliant surface
title_sort development of a multi-rotor vtol uav : mechanical design of a 3d printed compliant surface
publishDate 2019
url http://hdl.handle.net/10356/76429
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