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Minimizing optical measurement time of micro spur gears through point cloud completion techniques

  • Ali Bilen*
  • , Max Decman
  • , Florian Stamer
  • , Gisela Lanza
  • *Korrespondierende/r Autor/-in für diese Arbeit

Publikation: Beiträge in ZeitschriftenZeitschriftenaufsätzeForschungBegutachtung

Abstract

In micro gear manufacturing, quality assessment relies on full-geometry measurements to evaluate functional performance. Due to tolerances down to one micrometer, high-end metrology is essential. Optical systems enable fast, non-contact measurements and can, in principle, be used for full-gear scans. These scans serve as input for single-flank rolling simulations, which assess how geometric deviations affect functional behavior such as transmission accuracy. However, full scans remain time-consuming and often unsuitable for inline inspection due to the trade-off between speed and measurement uncertainty. We address this by proposing a partial-scan workflow, based on the observation that tool-induced deviations propagate periodically across gear teeth. This allows reconstruction of micrometer-accurate point clouds from a subset of teeth. We compare a deep learning-based completion network with an analytical reconstruction, evaluating both geometrically and functionally. While the deep learning approach shows higher geometric fidelity, it falls short in functional accuracy. This reveals a common gap in learning-based methods, where achieving geometric similarity may fail to preserve the underlying functional behavior. Our approach enables faster inspection while maintaining confidence in gear performance.
OriginalspracheEnglisch
Aufsatznummer125202
Zeitschrift Measurement Science and Technology
Jahrgang36
Ausgabenummer12
Seitenumfang10
ISSN0957-0233
DOIs
PublikationsstatusErschienen - 31.12.2025

Bibliographische Notiz

Publisher Copyright:
© 2025 The Author(s). Published by IOP Publishing Ltd.

Fachgebiete und Schlagwörter

  • Ingenieurwissenschaften

ASJC Scopus Sachgebiete

  • Instrumentierung
  • Angewandte Mathematik
  • Ingenieurwesen (sonstige)

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