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Article

Effect of Immediate Thermal Exposure on the Surface Mechanical Performance of Polyurethane-Coated Oak Wood and Visible 3D-Printed Furniture Components

by
Gabriela Slabejová
1,
Jozef Fekiač
1,
Lukáš Adamčík
2 and
Zuzana Vidholdová
3,*
1
Department of Furniture and Wood Products, Faculty of Wood Sciences and Technology, Technical University in Zvolen, T. G. Masaryka 24, 96001 Zvolen, Slovakia
2
Department of Woodworking, Faculty of Wood Sciences and Technology, Technical University in Zvolen, T. G. Masaryka 24, 96001 Zvolen, Slovakia
3
Department of Wood Technology, Faculty of Wood Sciences and Technology, Technical University in Zvolen, T. G. Masaryka 24, 96001 Zvolen, Slovakia
*
Author to whom correspondence should be addressed.
Polymers 2026, 18(17), 2164; https://doi.org/10.3390/polym18172164
Submission received: 5 August 2026 / Revised: 28 August 2026 / Accepted: 2 September 2026 / Published: 4 September 2026
(This article belongs to the Special Issue State-of-the-Art Polyurethane Research and Technology)

Abstract

A polyurethane coating represents the conventional solution for protecting and finishing visible wooden furniture surfaces. However, the increasing use of additive manufacturing has introduced visible 3D-printed polymer components whose surface mechanical performance is relevant to their application in furniture. This study investigated the effect of short-term exposure to 60 °C for 1 h on the surface mechanical properties of a pigmented polyurethane coating applied to oak wood and 3D-printed PLA, ABS-T and PET-G components. Specimens were evaluated under laboratory conditions (20 °C) and immediately after exposure to 60 °C, while their surfaces remained at an elevated temperature. Impact resistance, abrasion resistance, and scratch resistance using a tungsten carbide tip were determined according to the relevant standards, and the surface damage was assessed by visual inspection and digital microscopy. The polyurethane coating exhibited the smallest impact indentation diameter but showed earlier crack initiation and lower abrasion resistance than the 3D-printed polymers. Among the investigated polymers, ABS-T provided the most balanced combination of impact resistance, abrasion resistance and surface hardness, whereas PLA exhibited the greatest dimensional changes after exposure to 60 °C. Microscopic analysis revealed surface defects that were not detectable by visual inspection, demonstrating the value of digital microscopy for detecting subtle surface damage. The results indicate that ABS-T is a promising material for visible furniture components exposed to short-term elevated temperatures, while PET-G should be used with caution in applications exposed to radiant heat or direct sunlight.
Keywords: ABS-T; PET-G; PLA; polyurethane coating; surface mechanical properties; thermal exposure ABS-T; PET-G; PLA; polyurethane coating; surface mechanical properties; thermal exposure

Share and Cite

MDPI and ACS Style

Slabejová, G.; Fekiač, J.; Adamčík, L.; Vidholdová, Z. Effect of Immediate Thermal Exposure on the Surface Mechanical Performance of Polyurethane-Coated Oak Wood and Visible 3D-Printed Furniture Components. Polymers 2026, 18, 2164. https://doi.org/10.3390/polym18172164

AMA Style

Slabejová G, Fekiač J, Adamčík L, Vidholdová Z. Effect of Immediate Thermal Exposure on the Surface Mechanical Performance of Polyurethane-Coated Oak Wood and Visible 3D-Printed Furniture Components. Polymers. 2026; 18(17):2164. https://doi.org/10.3390/polym18172164

Chicago/Turabian Style

Slabejová, Gabriela, Jozef Fekiač, Lukáš Adamčík, and Zuzana Vidholdová. 2026. "Effect of Immediate Thermal Exposure on the Surface Mechanical Performance of Polyurethane-Coated Oak Wood and Visible 3D-Printed Furniture Components" Polymers 18, no. 17: 2164. https://doi.org/10.3390/polym18172164

APA Style

Slabejová, G., Fekiač, J., Adamčík, L., & Vidholdová, Z. (2026). Effect of Immediate Thermal Exposure on the Surface Mechanical Performance of Polyurethane-Coated Oak Wood and Visible 3D-Printed Furniture Components. Polymers, 18(17), 2164. https://doi.org/10.3390/polym18172164

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