Finite Element Method in L-PBF of Ti-6Al-4V: Influence of Laser Power and Scan Speed on Residual Stress and Part Distortion
Abstract
:1. Introduction
2. Numerical Model
2.1. Governing Equations
2.1.1. Thermal Analysis
2.1.2. Mechanical Analysis
2.2. FEM Model for L-PBF
3. Experimental Details
4. Results
4.1. Accuracy of FEM Model to Predict the Part Distortion
4.2. FEM Simulation Results
5. Conclusions
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- The accuracy of the model is strictly dependent on the mesh used for the numerical analysis. In particular, a finer mesh allows for better activations of the elements according to the utilised voxel mesh.
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- The model accuracy varies when the laser power increases and the scan speed is kept constant. Instead, increasing scan speed does not have a significant influence on the model accuracy. When the laser power increases, while maintaining the scanning-speed constant, the volume of the material affected by remelting increases. In these conditions, the assumption made when not considering the presence of the surrounding powder can have a significant influence.
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- Laser power has a bigger impact on the residual stress and part distortion with respect to the scan speed. This is due to the small variation in the thermal gradients when the scan speed increases, which results in similar residual stress profiles and distortions. Instead, by increasing the laser power a significant variation in the thermal gradients and residual stress profiles is observed.
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- Simulation results, in agreement with the experimental ones, highlighted that the amount of distortions along the z-direction has a maximum when the laser power attains the value of 350 W and decreases for higher laser power values. For low laser power values, both temperature and temperature gradients along the building direction increase, with consequent increase for residual stress gradients and distortions; on the contrary, with higher laser power values, a decrease of the thermal gradient and consequent increase in the remelting zone of the material is found, resulting in decreasing residual stress gradients and distortions.
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- From the experimental analysis, the ID4 sample with laser power equal to 300 W and a scan speed of 1500 mm/s has shown better results in terms of distortion because of the smaller temperature gradients developed during the printing process, which led to a smaller amount of residual stress with respect to the other samples. Moreover, for ID4 the best results in terms of model accuracy were also obtained.
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- Even if it was possible to obtain the same trend between experimental and numerical analysis, the accuracy of the numerical model decreased with the increase of the laser power. This can be explained by a greater amount of the remelting area being involved in the numerical computation. In this case, using more computational layers and increasing the voxel mesh in the z-direction can help improve the model accuracy. This will be a topic of interest for future studies.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Temperature [°C] | Density [kg/m3] | Specific Heat [J/(kg °C)] | Thermal Conductivity [W/(m°C)] | Poisson’s Ratio | Young’s Modulus [GPa] | Thermal Expansion [(µm/m)/°C] | Yield Stress [MPa] |
---|---|---|---|---|---|---|---|
20 | 4420 | 546 | 7 | 0.345 | 110 | 8.78 | 850 |
205 | 4395 | 584 | 8.75 | 0.35 | 100 | 10 | 630 |
500 | 4350 | 651 | 12.6 | 0.37 | 76 | 11.2 | 470 |
995 | 4282 | 753 | 22.7 | 0.43 | 15 | 12.3 | 13 |
1100 | 4267 | 641 | 19.3 | 0.43 | 5 | 12.4 | 5 |
1200 | 4252 | 660 | 21 | 0.43 | 4 | 12.42 | 1 |
1600 | 4198 | 732 | 25.8 | 0.43 | 1 | 12.5 | 0.5 |
1650 | 3886 | 831 | 35 | 0.43 | 0.1 | 12.5 | 0.1 |
2000 | 3818 | 831 | 35 | 0.43 | 0.01 | 12.5 | 0.01 |
P [W] | v [mm/s] | P/v [J/mm] | |
---|---|---|---|
ID1 | 350 | 1400 | 0.250 |
ID2 | 350 | 1500 | 0.233 |
ID3 | 350 | 1600 | 0.219 |
ID4 | 300 | 1500 | 0.200 |
ID5 | 400 | 1500 | 0.267 |
Ti | Al | V | C | O | N | Fe | H |
---|---|---|---|---|---|---|---|
Balance | 5.50–6.50 | 3.50–4.50 | 0.08 | 0.13 | 0.03 | 0.25 | 0.0125 |
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Palmeri, D.; Pollara, G.; Licari, R.; Micari, F. Finite Element Method in L-PBF of Ti-6Al-4V: Influence of Laser Power and Scan Speed on Residual Stress and Part Distortion. Metals 2023, 13, 1907. https://doi.org/10.3390/met13111907
Palmeri D, Pollara G, Licari R, Micari F. Finite Element Method in L-PBF of Ti-6Al-4V: Influence of Laser Power and Scan Speed on Residual Stress and Part Distortion. Metals. 2023; 13(11):1907. https://doi.org/10.3390/met13111907
Chicago/Turabian StylePalmeri, Dina, Gaetano Pollara, Roberto Licari, and Fabrizio Micari. 2023. "Finite Element Method in L-PBF of Ti-6Al-4V: Influence of Laser Power and Scan Speed on Residual Stress and Part Distortion" Metals 13, no. 11: 1907. https://doi.org/10.3390/met13111907
APA StylePalmeri, D., Pollara, G., Licari, R., & Micari, F. (2023). Finite Element Method in L-PBF of Ti-6Al-4V: Influence of Laser Power and Scan Speed on Residual Stress and Part Distortion. Metals, 13(11), 1907. https://doi.org/10.3390/met13111907