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Fostering insights and improvements from IIoT systems at the shop floor: a case of industry 4.0 and lean complementarity enabled by action learning

Henrik Saabye (Department of Materials and Production, Faculty of Engineering and Science, Aalborg University, Aalborg, Denmark and VELUX, Østbirk, Denmark)
Daryl John Powell (SINTEF Manufacturing AS, Horten, Norway and Department of Industrial Economics and Technology Management, Norwegian University of Science and Technology, Trondheim, Norway)

International Journal of Lean Six Sigma

ISSN: 2040-4166

Article publication date: 21 July 2022

161

Abstract

Purpose

This paper aims to investigate how manufacturers can foster insights and improvements from real-time data among shop-floor workers by developing organisational “learning-to-learn” capabilities based on both the lean- and action learning principle of learning through problem-solving. Second, the purpose is to extrapolate findings on how action learning can enable the complementarity between lean and industry 4.0.

Design/methodology/approach

An insider action research approach is adopted to investigate how manufacturers can enable their shop-floor workers to foster insights and improvements from real-time data at VELUX.

Findings

The findings report that enabling shop-floor workers to use real-time data consist of developing three consecutive organisational building blocks of learning-to-learn, learning-to-learn using real-time data and learning-to-learn generating real-time data − and helping others to learn (to learn).

Originality/value

First, the study contributes to theory and practice by demonstrating that a learning-to-learn capability is a core construct for manufacturers seeking to enable shop-floor workers to use real-time data-capturing systems to drive improvement. Second, the study outlines how lean and industry 4.0 complementarity can be enabled by action learning. Moreover, the study allows us to deduce six necessary conditions for enabling shop-floor workers to foster insights and improvements from real-time data.

Keywords

Acknowledgements

Funding: The research was funded by Innovation Fund Denmark (No: 9065-00123B).

Citation

Saabye, H. and Powell, D.J. (2022), "Fostering insights and improvements from IIoT systems at the shop floor: a case of industry 4.0 and lean complementarity enabled by action learning", International Journal of Lean Six Sigma, Vol. ahead-of-print No. ahead-of-print. https://doi.org/10.1108/IJLSS-01-2022-0017

Publisher

:

Emerald Publishing Limited

Copyright © 2022, Emerald Publishing Limited

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