Robotic automotive paint curing using thermal signature feedback

Author:

Zeng Fan,Ayalew Beshah,Omar Mohammed

Abstract

PurposeThe purpose of this paper is to present a new closed‐loop radiative robotic paint curing process that could replace less efficient and bulky convection‐based paint curing processes in automotive manufacturing.Design/methodology/approachThe proposed robotic paint curing processes uses an Ultraviolet LED panel for a heat source, an infra‐red camera for non‐contact thermal signature feedback of cure level, and a robot control strategy that incorporates the cure‐level information in an inverse dynamics control of the robotic manipulator. To demonstrate the advantage of the closed‐loop process in improving cure uniformity, detailed models and discussions of the irradiation process, the robotics and the control strategy are presented.FindingsA simulation‐based comparison of the closed‐loop robotic curing with the open‐loop robotic curing clearly shows the benefits of using thermal signature feedback in improving cure level uniformity.Originality/valueThis is a new approach proposed to exploit immerging technology and improve the efficiency of energy use in an automotive manufacturing process without sacrificing product quality.

Publisher

Emerald

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Control and Systems Engineering

Reference13 articles.

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3. Infrared Systems (2008), “Infrared cameras”, available at: www.infraredsys.com/index.html.

4. Mills, P. (2005), “Robotic UV curing for automotive exterior applications: a cost‐effective and technically viable alternative for UV curing”, North American Automotive UV Consortium Report, Strongsville, OH.

5. Modest, M.F. (1993), Radiative Heat Transfer, McGraw Hill, New York, NY.

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