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Fractional relaxation model of materials obtained with selective laser sintering technology

Jerzy Bochnia (Faculty of Mechatronics and Machine Design, Kielce University of Technology, Kielce, Poland)
Slawomir Blasiak (Faculty of Mechatronics and Machine Design, Kielce University of Technology, Kielce, Poland)

Rapid Prototyping Journal

ISSN: 1355-2546

Article publication date: 25 October 2018

Issue publication date: 21 January 2019

135

Abstract

Purpose

The purpose of this paper was to verify the possibility of applying differential calculus of incomplete order to describe relaxation of the material obtained using selective laser sintering (SLS) technology.

Design/methodology/approach

The samples were made using the incremental technology for three print directions. Relaxation tests were conducted. The theoretical curves, which are the solution of the equation describing the five-parameter Maxwell-Wiechert model for derivatives in relation to the total time of complete order and fractional order, were adjusted to the obtained experimental curves.

Findings

The SLS technology creates new possibilities regarding modelling polymeric elements which might be applied as functional models (products). Therefore, it is necessary to conduct an in-depth study of their properties, including relaxation properties, which is associated with the necessity to use proper mathematical tools to describe those properties. The differential calculus of incomplete order was applied herein to describe the anisotropy of relaxation properties because of the print direction in relation to the relaxation curves adjusted with the five-parameter Maxwell-Wiechert model.

Research limitations/implications

As a result of the conducted considerations, the authors obtained the dependencies describing the anisotropy of relaxation properties with the use of coefficients alpha and beta, which stand for the derivative order of the differential equation, whereas coefficient kappa stands for the translation coefficient which is an innovative application of this type of mathematical apparatus.

Practical implications

The developed method might be applied to describe the anisotropy of a broader group of materials manufactured with the use of incremental technologies.

Originality/value

The application of the differential calculus of incomplete order to describe the anisotropy of the materials manufactured from polyamide powder using the SLS technology is a distinctive feature of this paper. A crucial cognitive element of the conducted research is the fact which confirms that the dynamic viscosity coefficients have the greatest impact on the anisotropy of material properties depending on the print directions.

Keywords

Acknowledgements

The paper was prepared with the use of both facilities and equipment purchased using European Union funds within the scope of the Development of Eastern Poland Operational Program for 2007-2013, Project LABIN Apparatus Support for Innovative Scientific Laboratories of the Kielce University of Technology, Priority axis I – Modern Economy, Measure 1.3 – Support for Innovations and research project No. POIG 02.02.00-26-023/08-00.

Citation

Bochnia, J. and Blasiak, S. (2019), "Fractional relaxation model of materials obtained with selective laser sintering technology", Rapid Prototyping Journal, Vol. 25 No. 1, pp. 76-86. https://doi.org/10.1108/RPJ-11-2017-0236

Publisher

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Emerald Publishing Limited

Copyright © 2018, Emerald Publishing Limited

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