Thermal Operating Window in Selective Laser Melting Processes
08. Dez. 2023
Über diesen Artikel
Artikel-Kategorie: research article
Online veröffentlicht: 08. Dez. 2023
Seitenbereich: 18 - 32
Eingereicht: 08. Feb. 2023
Akzeptiert: 11. Sept. 2023
DOI: https://doi.org/10.2478/tar-2023-0020
Schlüsselwörter
© 2023 Jerzy Kozak et al., published by Sciendo
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Figure 1.
![Additive manufactured GE9X engine components: (A) T25 sensor housing; (B) fuel nozzle tip; and (C) low-pressure turbine blades (adopted from reference [1]).](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6573040e79f7550bc9e9ea22/j_tar-2023-0020_fig_001.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250930%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250930T090200Z&X-Amz-Expires=3600&X-Amz-Signature=456012f3ed72fbafcaee8f208f751d81b41f8fcf0614a091082170f4eea58d9f&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
Figure 2.
![Scheme of the fabrication stages: A – data preparation, B – manufacturing stage, C – the physical part (figures adopted from reference [2]).](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6573040e79f7550bc9e9ea22/j_tar-2023-0020_fig_002.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250930%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250930T090200Z&X-Amz-Expires=3600&X-Amz-Signature=e8fac63c8647c8e32b35d8af012cfeb086f9e883746882f81adb58aa62b8ee3e&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
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Figure 6.
![The cross-sections of the tracks (A) simulation vs experimental sample. Track width at different laser travel speeds of (B) 1,050 mm/s, (C) 1,250 mm/s and (D) 1,450 mm/s (material: Ti-6Al; laser power: 175 W) (adopted from reference [8]).](https://sciendo-parsed.s3.eu-central-1.amazonaws.com/6573040e79f7550bc9e9ea22/j_tar-2023-0020_fig_006.jpg?X-Amz-Algorithm=AWS4-HMAC-SHA256&X-Amz-Content-Sha256=UNSIGNED-PAYLOAD&X-Amz-Credential=AKIA6AP2G7AKOUXAVR44%2F20250930%2Feu-central-1%2Fs3%2Faws4_request&X-Amz-Date=20250930T090200Z&X-Amz-Expires=3600&X-Amz-Signature=ccdf47b61e8dd2d05a0612641e1d367d6ac3761710e97db4545cd1a7e3d08659&X-Amz-SignedHeaders=host&x-amz-checksum-mode=ENABLED&x-id=GetObject)
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Thermophysical properties and other parameters used in simulation_
Physical properties of the powder | ||
---|---|---|
Material density | 8,600 kg/m3 | |
Specific heat capacity solid phase | 390 J/kgoK | |
Specific heat capacity liquid phase | 410 J/kgoK | |
Latent heat of melting | 334 [kJ/kg] | |
Melting temperature | 1,380 °C | |
Boiling temperature | 2,930 °C | |
Upper temperature margin | Δ |
30 °C |
Emissivity | 0.7 | |
Process efficiency coefficient | 0.27 |
j_tar-2023-0020_tab_003
Path cross-section area [m3] | |
Specific heat capacity [J/kg·K] | |
Powder bed thickness [μm] | |
Track height [m] | |
Specific latent heat [J/kg] | |
Thermal effective conductivity of powder [W/mK] | |
Track section profile coefficient [-] | |
Laser beam power [W] | |
Hatch spacing [μm] | |
Effective laser beam radius [μm] | |
Melting temperature [K] | |
Boiling temperature [K] | |
Lower temperature limit [K] | |
Upper temperature limit [K] | |
Laser scanning speed [mm/s] | |
Track width [m] | |
Porosity | |
Density [kg/m3] |
Process parameters_
Parameters | Lower limit | Upper limit | Unit |
---|---|---|---|
Laser beam power | 70 | 170 | W |
Scanning speed | 100 | 1,200 | mm/s |
Powder layer thickness | 25 | 35 | μm |