Submitted:
27 October 2025
Posted:
28 October 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Material Specification for 3D Printing
2.2. Preparation and Printing of Tensile Test Specimens
2.3. Tensile Testing for 3D-Printed Specimens
2.4. Macroscopic and Microstructural Examination
3. Results
3.1. Mechanical Parameters and Microstructural Response of 3D-Printed PLA Specimens
3.1.1. Influence of Infill Structure Geometry on the Mechanical and Microstructural Behavior of 3D-Printed PLA Specimens
3.1.2. Influence of Infill Density on the Mechanical and Microstructural Behavior of 3D-Printed PLA Specimens
3.1.3. Influence of Exposure to Mineral Engine Oil on the Mechanical and Microstructural Behavior of 3D-Printed PLA Specimens
3.2. Mechanical Parameters and Microstructural Response of 3D-Printed PLA+CF Specimens
3.2.1. Influence of Infill Geometry on the Mechanical and Microstructural Behavior of 3D-Printed PLA+CF Specimens
3.2.2. Influence of Infill Density on the Mechanical and Microstructural Behavior of 3D-Printed PLA+CF Specimens
3.2.3. Influence of Exposure to Mineral Engine Oil on the Mechanical and Microstructural Behavior of 3D-Printed PLA+CF Specimens
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Parameter/Material | PLA | PLA+CF |
| Diameter (mm) | 1.75 | 1.75 |
| Net filament weight (g) | 1000 | 1000 |
| Water absorption (equilibrium in water, 23 °C) | <0.3 | 0.5 |
| Printing speed (mm/s) | 40–60 | 60–90 |
| Layer height (mm) | 0.1–0.2 | 0.1–0.2 |
| Extrusion temperature (°C) | 190–220 | 200–230 |
| Bed platform temperature (°C) | 50–55 | 40–50 |
| Parameter/Material | PLA | PLA+CF |
| Density (g/cm3) | 1.25 | ~1.29 |
| Tensile Strength (MPa) | 45–49 | 40–45 |
| Young’s modulus (MPa) | 1000–1100 | 1100–1300 |
| Elongation at Break (%) | 13.5–15.5 | 11.5–13.5 |
| Heat Deflection Temperature (°C) | 53 | 60 |
| Specimen Code |
Tensile Strength [MPa] |
Young’s Modulus [MPa] |
Nominal Strain at Break [%] |
Maximum Displacement [mm] |
| V1A (hexagonal, 30 %) | 17.102 | 473.714 | 4.890 | 5.620 |
| V2A (triangular, 30 %) | 16.994 | 412.694 | 3.210 | 3.692 |
| V3A (linear, 30 %) | 31.530 | 458.760 | 4.780 | 5.501 |
| Specimen Code |
Total Specimen Area [µm2] |
Number of Porous Particles [/] |
Pore Area [µm2] |
Average Pore Size [µm2] |
| V1B (hexagonal, 30 %) | 41 466 253 | 9 841 | 19 359 581 | 1 967.24 |
| V2B (triangular, 30 %) | 41 924 682 | 39 923 | 23 326 566 | 5 578.05 |
| V3B (linear, 30 %) | 41 331 666 | 19 377 | 20 736 644 | 1 070.17 |
| Specimen Code |
Tensile Strength [MPa] |
Young’s Modulus [Mpa] |
Nominal Strain at Break [%] |
Maximum Displacement [mm] |
| V3A (linear, 30 %) | 31.530 | 458.760 | 4.780 | 5.501 |
| V4A (linear, 60 %) | 14.276 | 347.472 | 3.460 | 3.985 |
| V5A (linear, 100 %) | 20.198 | 451.463 | 4.160 | 4.789 |
| Specimen Code |
Total Specimen Area [µm2] |
Number of Porous Particles [/] |
Pore Area [µm2] |
Average Pore Size [µm2] |
| V3B (linear, 30 %) | 41 331 666 | 19 377 | 20 736 644 | 1 070.17 |
| V4B (linear, 60 %) | 40 973 970 | 6 028 | 13 558 508 | 2 249.26 |
| V5B (linear, 100 %) | 39 860 980 | 3 395 | 3 806 213 | 1 589.23 |
| Specimen Code |
Tensile Strength [MPa] |
Young’s Modulus [Mpa] |
Nominal Strain at Break [%] |
Maximum Displacement [mm] |
| V1A (unexposed) | 17.102 | 473.714 | 4.890 | 5.620 |
| V6A (7 days exposed) | 16.904 | 454.128 | 8.600 | 8.958 |
| Specimen Code |
Total Specimen Area [µm2] |
Number of Porous Particles [/] |
Pore Area [µm2] |
Average Pore Size [µm2] |
| V1B (unexposed) | 41 466 253 | 9 841 | 19 359 581 | 1 967.24 |
| V6B (7 days exposed) | 41 500 877 | 25 338 | 15 272 284 | 602.74 |
| Specimen Code |
Tensile Strength [Mpa] |
Young’s Modulus [Mpa] |
Nominal Strain at Break [%] |
Maximum Displacement [mm] |
| V7A (hexagonal, 30 %) | 18.299 | 417.481 | 4.180 | 4.815 |
| V8A (triangular, 30 %) | 19.579 | 381.023 | 3.550 | 4.089 |
| V9A (linear, 30 %) | 15.718 | 227.840 | 3.700 | 4.256 |
| Specimen Code |
Total Specimen Area [µm2] |
Number of Porous Particles [/] |
Pore Area [µm2] |
Average pore size [µm2] |
| V7B (hexagonal, 30 %) | 42 140 091 | 39 922 | 18 972 664 | 475.24 |
| V8B (triangular, 30 %) | 41 097 286 | 25 623 | 14 841 076 | 579.21 |
| V9B (linear, 30 %) | 41 866 158 | 19 955 | 23 658 650 | 1 185.60 |
| Specimen Code |
Tensile Strength [MPa] |
Young’s Modulus [Mpa] |
Nominal Strain at Break [%] |
Maximum Displacement [mm] |
| V9A (linear, 30 %) | 15.718 | 227.840 | 3.700 | 4.256 |
| V10A (linear, 60 %) | 16.511 | 228.125 | 3.650 | 4.195 |
| V11A (linear, 100 %) | 33.410 | 499.886 | 3.800 | 4.381 |
| Specimen Code |
Total Specimen Area [µm2] |
Number of Porous Particles [/] |
Pore Area [µm2] |
Average Pore Size [µm2] |
| V9B (linear, 30 %) | 41 866 158 | 19 955 | 23 658 650 | 1 185.60 |
| V10B (linear, 60 %) | 42 195 455 | 30 242 | 14 423 157 | 476.93 |
| V11B (linear, 100 %) | 42 523 276 | 22 235 | 5 714 268 | 256.99 |
| Specimen Code |
Tensile Strength [MPa] |
Young’s Modulus [MPa] |
Nominal Strain at Break [%] |
Maximum Displacement [mm] |
| V7A (unexposed) | 18.299 | 417.481 | 4.180 | 4.815 |
| V12A (7-day exposed) | 19.557 | 406.954 | 4.810 | 5.532 |
| Specimen Code |
Total Specimen Area [µm2] |
Number of Porous Particles [/] |
Pore Area [µm2] |
Average Pore Size [µm2] |
| V7B (unexposed) | 42 140 091 | 39 922 | 18 972 664 | 475.24 |
| V12B (7-day exposed) | 42 416 921 | 54 461 | 7 952 110 | 146.02 |
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