Design of a bipedal robot for rapid acceleration and braking manoeuvres

Animals in nature are capable of performing rapid acceleration and braking manoeuvres with ease. However, they have been avoided by researchers due to the complexities of this motion. To investigate and test novel control schemes for such motions, a highly agile mechanical robot is required. The aim...

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Main Author: Blom, Alexander Francois
Other Authors: Patel, Amir
Format: Dissertation
Language:English
Published: Faculty of Engineering and the Built Environment 2020
Subjects:
Online Access:http://hdl.handle.net/11427/31116
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spelling ndltd-netd.ac.za-oai-union.ndltd.org-uct-oai-localhost-11427-311162020-12-10T05:11:11Z Design of a bipedal robot for rapid acceleration and braking manoeuvres Blom, Alexander Francois Patel, Amir Engineering Animals in nature are capable of performing rapid acceleration and braking manoeuvres with ease. However, they have been avoided by researchers due to the complexities of this motion. To investigate and test novel control schemes for such motions, a highly agile mechanical robot is required. The aim of this dissertation was to build a bipedal robot to perform optimal rapid acceleration manoeuvres. This focused on investigating existing robots and using the information therein to design, build and test a new bipedal robot with high agility. The author performed a vigorous investigation into existing actuator schemes and leg topologies that promote agility, balancing the numerous trade-off’s such as mass-specific force and proprioception. This led to the selection of a Quasi-Direct Drive transmission with a scissor linkage leg. Legged robots were generally designed around some known motion [1]. However, selecting suitable mechanical parameters for agile motions with a lack of relevant research was challenging. Trajectory optimisation methods were used to generate unique acceleration motions for bipedal models, aiding in the selection of several physical parameters. With this, a detailed design of Baleka was created, prioritising desirable characteristic for rapid motions. Through several design iterations, the outcome was a fully assembled light weight bipedal robot. All the supporting systems required to operate Baleka were designed and set up, including the Real-time control system, relevant sensors and a boom support to keep it planar. A known metric, vertical agility [2], was used to compare Baleka’s agility to existing robots. Furthermore, a Raibert Controller [3] was also tested on the platform to investigate the robustness of the design. Baleka was found to be the most agile bipedal robot, exceeding the agility of humans. It was able to hop higher than all other robots, verifying it’s suitability for rapid acceleration manoeuvres. However, from the repetitive hopping experiments and high impact forces, slight plastic deformation was witnessed in the gearbox drive shafts. 2020-02-14T08:37:33Z 2020-02-14T08:37:33Z 2019 2020-02-14T07:49:21Z Master Thesis Masters MSc http://hdl.handle.net/11427/31116 eng application/pdf Faculty of Engineering and the Built Environment Department of Electrical Engineering
collection NDLTD
language English
format Dissertation
sources NDLTD
topic Engineering
spellingShingle Engineering
Blom, Alexander Francois
Design of a bipedal robot for rapid acceleration and braking manoeuvres
description Animals in nature are capable of performing rapid acceleration and braking manoeuvres with ease. However, they have been avoided by researchers due to the complexities of this motion. To investigate and test novel control schemes for such motions, a highly agile mechanical robot is required. The aim of this dissertation was to build a bipedal robot to perform optimal rapid acceleration manoeuvres. This focused on investigating existing robots and using the information therein to design, build and test a new bipedal robot with high agility. The author performed a vigorous investigation into existing actuator schemes and leg topologies that promote agility, balancing the numerous trade-off’s such as mass-specific force and proprioception. This led to the selection of a Quasi-Direct Drive transmission with a scissor linkage leg. Legged robots were generally designed around some known motion [1]. However, selecting suitable mechanical parameters for agile motions with a lack of relevant research was challenging. Trajectory optimisation methods were used to generate unique acceleration motions for bipedal models, aiding in the selection of several physical parameters. With this, a detailed design of Baleka was created, prioritising desirable characteristic for rapid motions. Through several design iterations, the outcome was a fully assembled light weight bipedal robot. All the supporting systems required to operate Baleka were designed and set up, including the Real-time control system, relevant sensors and a boom support to keep it planar. A known metric, vertical agility [2], was used to compare Baleka’s agility to existing robots. Furthermore, a Raibert Controller [3] was also tested on the platform to investigate the robustness of the design. Baleka was found to be the most agile bipedal robot, exceeding the agility of humans. It was able to hop higher than all other robots, verifying it’s suitability for rapid acceleration manoeuvres. However, from the repetitive hopping experiments and high impact forces, slight plastic deformation was witnessed in the gearbox drive shafts.
author2 Patel, Amir
author_facet Patel, Amir
Blom, Alexander Francois
author Blom, Alexander Francois
author_sort Blom, Alexander Francois
title Design of a bipedal robot for rapid acceleration and braking manoeuvres
title_short Design of a bipedal robot for rapid acceleration and braking manoeuvres
title_full Design of a bipedal robot for rapid acceleration and braking manoeuvres
title_fullStr Design of a bipedal robot for rapid acceleration and braking manoeuvres
title_full_unstemmed Design of a bipedal robot for rapid acceleration and braking manoeuvres
title_sort design of a bipedal robot for rapid acceleration and braking manoeuvres
publisher Faculty of Engineering and the Built Environment
publishDate 2020
url http://hdl.handle.net/11427/31116
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