International Journal of Advanced Technology and Engineering Exploration ISSN (Print): 2394-5443    ISSN (Online): 2394-7454 Volume-13 Issue-141 August-2026
  1. 4923
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  2. 2.8
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Taguchi-based optimization of mechanical properties and dimensional accuracy of selective laser-sintered polyamide-12

Mohammad Rafi Omar1, 2, Muhammad Ilman Hakimi Chua Abdullah1, 2, Mohd Rizal Alkahari1, 2, Izhar Aziz3, Rohana Abdullah4, Poppy Puspitasari5, Siti Norbaya Sahadan1, 2, Effendi Mohamad4 and Mohd Zakaria Mohammad Nasir1, 2

Fakulti Teknologi Dan Kejuruteraan Mekanikal,Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100 Durian Tunggal,Melaka,Malaysia1
Center for Advanced Research on Energy,Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100 Durian Tunggal,Melaka,Malaysia2
3D Gens Sdn Bhd, No 18, Jalan Kerawang U8/108,Bukit Jelutong, 40150 Shah Alam,Selangor Darul Ehsan,Malaysia3
Fakulti Teknologi Dan Kejuruteraan Industri Dan Pembuatan,Universiti Teknikal Malaysia Melaka, Hang Tuah Jaya, 76100 Durian Tunggal,Melaka,Malaysia4
Faculty of Engineering,Universitas Negeri Malang, Jl. Semarang No.5 Malang,East Java,Indonesia5
Corresponding Author : Muhammad Ilman Hakimi Chua Abdullah

Received : 10-March-2026; Revised : 23-August-2026; Accepted : 25-August-2026

Abstract

Studies found that parts produced using selective laser sintering (SLS) exhibit non-uniform surface morphology and lower physical properties. These characteristics are associated with decreased tensile strength and overall performance of polyamide-12 (PA-12) manufactured through conventional SLS. This study aims to extend existing knowledge by applying the Taguchi optimization method to investigate the effects of SLS process parameters on the mechanical properties and dimensional accuracy of PA-12. The study focuses on PA-12 material composition comprising virgin, reheated, and recycled powders. Laser power and layer thickness were also investigated, with layer thickness identified as the dominant processing parameter. The test specimens were produced using conventional SLS and tested for tensile strength, impact resistance, hardness, surface roughness, compression, torsion, surface morphology, and dimensional accuracy. Dimensional accuracy was evaluated using a coordinate measuring machine (CMM), and material bonding was checked using a scanning electron microscope (SEM). The optimum performance was obtained with 100% virgin PA-12, applying a laser power of 60 W and a layer thickness of 0.06 mm. The combination of parameters led to better mechanical and surface quality, as well as dimensional accuracy. Material Composition A1, mainly composed of virgin material, showed the best overall performance in the mechanical tests conducted. It was found that the most important parameters governing part performance were laser power and layer thickness. The recorded dimensional variations of 0.14 mm and 0.11 mm along the X and Y axes, respectively, were within the permissible tolerance range, demonstrating adherence and marginal improvement beyond the manufacturer's defined limits. The results show that the correct selection of material formulations and the optimization of processing parameters can significantly improve the accuracy, structural integrity and overall performance of SLS-fabricated PA-12 products.

Keywords

Selective laser sintering, Polyamide-12, Taguchi optimization, Mechanical properties, Dimensional accuracy, Process parameter optimization.

Cite this article

Omar MR, Abdullah MIHC, Alkahari MR, Aziz I, Abdullah R, Puspitasari P, Sahadan SN, Mohamad E, Nasir MZM. Taguchi-based optimization of mechanical properties and dimensional accuracy of selective laser-sintered polyamide-12. International Journal of Advanced Technology and Engineering Exploration. 2026;13(141):303-325. DOI : 10.19101/IJATEE.2026.131340257

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