Submitted:
09 January 2026
Posted:
13 January 2026
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Abstract
Ti alloys are widely used in several fields, such as aerospace and biomedical, due to their high mechanical properties under severe loading conditions. Recently, the interest in these materials produced by additive manufacturing process has increased, but intensive research should be done to better characterise their properties. This work aims to study and compare the effect of surface properties, internal defects, microstructure, hardness and Hot Isostatic Pressing (HIP) treatment or in-Vacuum Heat Treatment (VHT) on fatigue properties of a Ti6Al4V produced by Selective Laser Melting (SLM) and Electron Beam Melting (EBM) additive manufacturing technologies. The samples were fully characterised using a wide range of techniques, in terms of microstructure (optical microscopy and SEM), mechanical properties (hardness mapping) and surface texture (confocal microscopy). The internal defects were evaluated using an image-based analysis approach. The uniaxial fatigue endurance limit properties were determined by a Dixon-Mood staircase approach and the failed samples near the fatigue limit were characterised by fracture surface and defect area analysis. A study of the applied load on the flaw areas was carried out to unveil the root causes of fatigue failure. The results showed that the fatigue properties of the as-printed samples were mainly determined by the surface roughness, whereas in the machined samples the internal defect dimension ruled the fatigue resistance of the material. The HIP used as a post-printing treatment is effective in substantially reducing the presence of internal pores, although local microstructural changes can take place only in the case of smooth surface. In conclusion, when properly developed in their melted parameters, both EBM and SLM technologies produce similar mechanical performance on comparable roughness levels, thus finding shared fields of application and fully eligible for the production of structural components.
Keywords:
1. Introduction
2. Materials and Methods
2.1. Sample Design and Preparation
2.2. Microstructural Characterization
- acquisition of a EDF (motorized focus) image via a Zeiss Axio Zoom V16 optical stereoscope at a 50x magnification, with a PlanNeoFluar Z 1x/0.25 FWD 56 mm lens and slice thickness equal to 1 µm;
- post-processing of the raw image with the surface analysis workbench of the software ConfoMap 8.0, using the Minidoc for the profile extraction and select the right λs (25 um) and λc (8 mm) filters as for ISO 21920-3 2021 Geometrical product specifications (GPS) — Surface texture: Profile - Part 3: Specification operators [48];
- extrapolation of the surface characteristics via colour maps and quantitative data combined with a table where are listed all the surface and linear metrics (Ra, Rt, Rz).
2.3. Static Tensile Tests
2.4. Fatigue Tests
3. Results and Discussion
3.1. Microstructural Characterization
3.2. Roughness Characterization
3.3. Microhardness Characterization
3.4. Tensile Tests
3.5. Fatigue Tests
4. Conclusions
- the internal defects, limited by a correct choice of printing parameters, are usually coarser for the EBM samples respect to the SLM ones. HIP greatly reduced the content and dimension of these defects;
- the microstructure of the samples is similar, although the EBM samples usually show coarser metallurgical features and a slightly higher beta phase content. This is also observed in the HIP samples. The causes are related to the initial microstructure prior to heat treatment (no heat treatment for EBM samples) or the HIP process. This is also reflected in the microhardness distribution, although the HIP process made the microstructure more homogeneous;
- the surface texture in the as-printed condition is strongly influenced by the printing technique and also by the process parameters. The fatigue resistance of the samples is strongly influenced by the surface condition and texture, which is also the origin of the fatigue failures. In this case, the EBM samples exhibited the worst fatigue behaviour in the as-printed condition. When the as-printed texture is removed, the fatigue life is strongly influenced by internal defects. The HIP treatment of rough surfaces, as the as-printed ones, is not effective on increase the fatigue life of material. The difference in fatigue resistance between EBM and SLM is strongly reduced for machined and HIP samples;
- the applied load plays a role in fatigue crack nucleation. In particular, for the same defect size, the defect induces an anticipated failure at higher applied loads.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| HIP | Hot Isostatic Pressing |
| VHT | Vacuum Heat Treatment |
| SLM | Selective Laser Melting |
| EBM | Electron Beam Melting |
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| Thermal condition | Surface finishing | Printing technique |
|---|---|---|
| NO-HIP | as-printed | EBM |
| HIP | as-printed | EBM |
| NO-HIP | machined | EBM |
| HIP | machined | EBM |
| NO-HIP (stress relieved, VHT) | as-printed | SLM |
| HIP | as-printed | SLM |
| NO-HIP (stress relieved, VHT) | machined | SLM |
| HIP | machined | SLM |
| Instrument | Q10plus Version 2.1 with EBM Control 6.1 GE Additive (Arcam) (LaB6 crystal) |
| Powders size | 45-105 µm |
| Atmosphere | Vacuum 4.0 x10-4 mbar |
| Scan strategy | Snake with optimized layer orientation |
| Layer thickness | 50 µm |
| Instrument | M 290- EOS with EOSystem (HCS) 2.11.552.0 control (Yb fibre laser with a wavelength of 1060 - 1100 nm) |
| Powders size | 15-45 µm |
| Atmosphere | inert argon atmosphere with 0.17% of max residual oxygen |
| Scan strategy | Stripes with 5 mm of width adjacent one to each other without overlap and optimized layer rotation. |
| Layer thickness | 60 µm |
| Material condition | YS (Rp0.2) [MPa] | UTS (Rm) [MPa] | Elongation [%] |
|---|---|---|---|
| NO-HIP EBM | 961 (12) | 1051 (13) | 18 (1) |
| HIP EBM | 877 (19) | 1002 (6) | 20 (1) |
| NO-HIP SLM | 959 (6) | 1039 (6) | 17 (0,3) |
| HIP SLM | 839 (3) | 938 (3) | 19 (0,1) |
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