Non-Assembly Walking Mechanism Utilizing a Hexapod Gait

Journal Article (2022)
Author(s)

George Jackson-Mills

A. Blight (University of Leeds)

Andrew Barber (University of Leeds)

Andrew Pickering (University of Leeds)

J.H. Boyle (TU Delft - Industrial Design Engineering)

Bilal kaddouh (University of Leeds)

Robert C. Richardson (University of Leeds)

Research Group
Materializing Futures
DOI related publication
https://doi.org/10.37965/jait.2022.0112 Final published version
More Info
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Publication Year
2022
Language
English
Research Group
Materializing Futures
Issue number
4
Volume number
2
Pages (from-to)
158-163
Downloads counter
386
Collections
Institutional Repository
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Abstract

Small inspection robots allow for the optimal exploration of environments and the collection of data from challenging areas, particularly where there may be small access points or tight and fragile surroundings. These robots can be custom-built for specific tasks, but the design and assembly process for this can be costly, both in resources and assembly time. The use of 3D printing to create Non-Assembly mechanisms can assist in saving time and resources by reducing the number of different components required and removing the necessity for complex assembly tasks. By iterating on previous work performed in the institute, this paper introduces a novel robot design to push the capabilities of Non-Assembly systems. By building on previous knowledge, this new walking robot improves on the previous iteration by creating a more robust and reliable system, more capable of effectively exploring challenging environments accurately, while still using practices designed to save on cost and production time. Benchmark tests were performed to provide an accurate comparison against the previous design and highlight the robots marked improvements in positional accuracy over its predecessor