Two-wheel self-balancing robot

Two-wheeled balancing robots are an area of research that may well provide the future locomotion for everyday robots. The unique stability control that is required to keep the robot upright differentiates it from traditional forms of robotics. In this project, the inverted pendulum principle is used...

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Main Author: Soh, Hui Peng
Other Authors: Vun Chan Hua, Nicholas
Format: Final Year Project
Language:English
Published: 2017
Subjects:
Online Access:http://hdl.handle.net/10356/72789
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-727892023-03-03T20:48:40Z Two-wheel self-balancing robot Soh, Hui Peng Vun Chan Hua, Nicholas School of Computer Science and Engineering DRNTU::Engineering::Computer science and engineering Two-wheeled balancing robots are an area of research that may well provide the future locomotion for everyday robots. The unique stability control that is required to keep the robot upright differentiates it from traditional forms of robotics. In this project, the inverted pendulum principle is used to provide the mathematical modelling of the naturally unstable system. This is then utilised to develop and implement a suitable stability control system that is responsive, timely and successful to control and balance a two-wheeled robot developed in this project. Completing the design and development phase of the robot requires careful consideration of all aspects of the system, which include operating conditions, materials, hardware, sensors and software. This process provides the ongoing opportunity of implementing continued improvements to its perceived operation whilst also ensuring that obvious problems and potential faults are removed before construction. The construction phase entails the manufacture and assembly of the robot circuits, hardware and chassis, together with the coding of the software. The final stage concludes the robot production in which the final maintenance considerations can be determined. These are essential for ensuring the robot continued serviceability. The analysis and evaluation of the completed robot provides the ability to assess the robot effectiveness and efficiency in maintaining stability. The opportunity to calibrate and perform additional fine tuning of the design is also explored. The project is concluded with comments on each aspect of the project with recommendations for further improvement, additional capabilities and future areas of Bachelor of Engineering (Computer Engineering) 2017-11-17T09:33:18Z 2017-11-17T09:33:18Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/72789 en Nanyang Technological University 67 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::Computer science and engineering
spellingShingle DRNTU::Engineering::Computer science and engineering
Soh, Hui Peng
Two-wheel self-balancing robot
description Two-wheeled balancing robots are an area of research that may well provide the future locomotion for everyday robots. The unique stability control that is required to keep the robot upright differentiates it from traditional forms of robotics. In this project, the inverted pendulum principle is used to provide the mathematical modelling of the naturally unstable system. This is then utilised to develop and implement a suitable stability control system that is responsive, timely and successful to control and balance a two-wheeled robot developed in this project. Completing the design and development phase of the robot requires careful consideration of all aspects of the system, which include operating conditions, materials, hardware, sensors and software. This process provides the ongoing opportunity of implementing continued improvements to its perceived operation whilst also ensuring that obvious problems and potential faults are removed before construction. The construction phase entails the manufacture and assembly of the robot circuits, hardware and chassis, together with the coding of the software. The final stage concludes the robot production in which the final maintenance considerations can be determined. These are essential for ensuring the robot continued serviceability. The analysis and evaluation of the completed robot provides the ability to assess the robot effectiveness and efficiency in maintaining stability. The opportunity to calibrate and perform additional fine tuning of the design is also explored. The project is concluded with comments on each aspect of the project with recommendations for further improvement, additional capabilities and future areas of
author2 Vun Chan Hua, Nicholas
author_facet Vun Chan Hua, Nicholas
Soh, Hui Peng
format Final Year Project
author Soh, Hui Peng
author_sort Soh, Hui Peng
title Two-wheel self-balancing robot
title_short Two-wheel self-balancing robot
title_full Two-wheel self-balancing robot
title_fullStr Two-wheel self-balancing robot
title_full_unstemmed Two-wheel self-balancing robot
title_sort two-wheel self-balancing robot
publishDate 2017
url http://hdl.handle.net/10356/72789
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