Aircraft flight pressurization/depressurization cycling causes the skin to inflate and deflate, stressing it around the rivets that fasten it to the airframe. The resulting strain, exacerbated by corrosion, drives the growth of initially microscopic cracks. To avoid catastrophe, aircraft are inspected periodically for cracks and corrosion. The inspection technology employed is ∼90 percent naked‐eye vision. We have developed and demonstrated robotic deployment of both remote enhanced 3D‐stereoscopic video instrumentation for visual inspection and remote eddy current probes for instrumented inspection. This article describes the aircraft skin inspection application, how robotic deployment may alleviate human performance problems and workplace hazards during inspection, practical robotic deployment systems, their instrumentation packages, and our progress toward developing image enhancement and understanding techniques that could help aircraft inspectors to find cracks, corrosion, and other visually detectable damage.
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1 December 1998
Technical Paper|
December 01 1998
Robotic assistants for aircraft inspectors
Mel Siegel;
Mel Siegel
Senior Research Scientist, The Robotics Institute, School of Computer Science, Carnegie Mellon University, Pittsburgh, Pennsylvania, USA
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Priyan Gunatilake;
Priyan Gunatilake
Graduate StudentThe Robotics Institute, School of Computer Science, Carnegie Mellon University, Pittsburgh, Pennsylvania, USA
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Gregg Podnar
Gregg Podnar
Senior Research Engineer, The Robotics Institute, School of Computer Science, Carnegie Mellon University, Pittsburgh, Pennsylvania, USA
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Publisher: Emerald Publishing
Online ISSN: 1758-5791
Print ISSN: 0143-991X
© Company
1998
Industrial Robot (1998) 25 (6): 389–400.
Citation
Siegel M, Gunatilake P, Podnar G (1998), "Robotic assistants for aircraft inspectors". Industrial Robot, Vol. 25 No. 6 pp. 389–400, doi: https://doi.org/10.1108/01439919810240234
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