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Crack-reduced laser powder bed fused oxide ceramic parts by in-situ synthesis of negative thermal expansion phases
Pfeiffer, S., Florio, K., Makowska, M., Aneziris, C. G., Van Swygenhoven, H., Wegener, K., & Graule, T. (2024). Crack-reduced laser powder bed fused oxide ceramic parts by in-situ synthesis of negative thermal expansion phases. Journal of the European Ceramic Society, 44(2), 1012-1026. https://doi.org/10.1016/j.jeurceramsoc.2023.09.040
A quantitative study of thermal cycling along the build direction of Ti-6Al-4V produced by laser powder bed fusion
Chen, M., Simonelli, M., Van Petegem, S., Tse, Y. Y., Chang, C. S. T., Makowska, M. G., … Moens-Van Swygenhoven, H. (2023). A quantitative study of thermal cycling along the build direction of Ti-6Al-4V produced by laser powder bed fusion. Materials and Design, 225, 111458 (11 pp.). https://doi.org/10.1016/j.matdes.2022.111458
<em>In-situ</em> selective laser heat treatment for microstructural control of additively manufactured Ti-6Al-4V
Esmaeilzadeh, R., Hamidi-Nasab, M., de Formanoir, C., Schlenger, L., Van Petegem, S., Navarre, C., … Logé, R. E. (2023). In-situ selective laser heat treatment for microstructural control of additively manufactured Ti-6Al-4V. Additive Manufacturing, 78, 103882 (14 pp.). https://doi.org/10.1016/j.addma.2023.103882
Additive manufacturing of alloys with programmable microstructure and properties
Gao, S., Li, Z., Van Petegem, S., Ge, J., Goel, S., Vas, J. V., … Seita, M. (2023). Additive manufacturing of alloys with programmable microstructure and properties. Nature Communications, 14(1), 6752 (11 pp.). https://doi.org/10.1038/s41467-023-42326-y
A close look at temperature profiles during laser powder bed fusion using operando X-ray diffraction and finite element simulations
Gh Ghanbari, P., Markovic, P., Van Petegem, S., Makowska, M. G., Wrobel, R., Mayer, T., … Hosseini, E. (2023). A close look at temperature profiles during laser powder bed fusion using operando X-ray diffraction and finite element simulations. Additive Manufacturing Letters, 6, 100150 (9 pp.). https://doi.org/10.1016/j.addlet.2023.100150
Solidification modes during additive manufacturing of steel revealed by high-speed X-ray diffraction
König, H. H., Holländer Pettersson, N., Durga, A., Van Petegem, S., Grolimund, D., Chuang, A. C., … Lindwall, G. (2023). Solidification modes during additive manufacturing of steel revealed by high-speed X-ray diffraction. Acta Materialia, 246, 118713 (11 pp.). https://doi.org/10.1016/j.actamat.2023.118713
Operando tomographic microscopy during laser-based powder bed fusion of alumina
Makowska, M. G., Verga, F., Pfeiffer, S., Marone, F., Chang, C. S. T., Florio, K., … Van Petegem, S. (2023). Operando tomographic microscopy during laser-based powder bed fusion of alumina. Communications Materials, 4, 73 (15 pp.). https://doi.org/10.1038/s43246-023-00401-3
Microstructural engineering of a dual-phase Ti-Al-V-Fe alloy via in situ alloying during laser powder bed fusion
Chen, M., Van Petegem, S., Zou, Z., Simonelli, M., Tse, Y. Y., Chang, C. S. T., … Moens-Van Swygenhoven, H. (2022). Microstructural engineering of a dual-phase Ti-Al-V-Fe alloy via in situ alloying during laser powder bed fusion. Additive Manufacturing, 59, 103173 (10 pp.). https://doi.org/10.1016/j.addma.2022.103173
Direct observation of crack formation mechanisms with <em>operando</em> laser powder bed fusion X-ray imaging
Ghasemi-Tabasi, H., de Formanoir, C., Van Petegem, S., Jhabvala, J., Hocine, S., Boillat, E., … Logé, R. E. (2022). Direct observation of crack formation mechanisms with operando laser powder bed fusion X-ray imaging. Additive Manufacturing, 51, 102619 (11 pp.). https://doi.org/10.1016/j.addma.2022.102619
Operando X-ray diffraction study of thermal and phase evolution during laser powder bed fusion of Al-Sc-Zr elemental powder blends
Glerum, J. A., Hocine, S., Chang, C. S. T., Kenel, C., Van Petegem, S., Casati, N., … Dunand, D. C. (2022). Operando X-ray diffraction study of thermal and phase evolution during laser powder bed fusion of Al-Sc-Zr elemental powder blends. Additive Manufacturing, 55, 102806 (12 pp.). https://doi.org/10.1016/j.addma.2022.102806
Effect of helium as process gas on laser powder bed fusion of Ti-6Al-4V studied with operando diffraction and radiography
Pauzon, C., Van Petegem, S., Hryha, E., Chang, C. S. T., Hocine, S., Van Swygenhoven, H., … Dubiez-Le Goff, S. (2022). Effect of helium as process gas on laser powder bed fusion of Ti-6Al-4V studied with operando diffraction and radiography. European Journal of Materials, 2(1), 422-435. https://doi.org/10.1080/26889277.2022.2081622
Crack-reduced alumina/aluminum titanate composites additive manufactured by laser powder bed fusion of black TiO<sub>2-x</sub> doped alumina granules
Pfeiffer, S., Florio, K., Makowska, M., Marone, F., Yüzbasi, S., Aneziris, C. G., … Graule, T. (2022). Crack-reduced alumina/aluminum titanate composites additive manufactured by laser powder bed fusion of black TiO2-x doped alumina granules. Journal of the European Ceramic Society, 42(8), 3515-3529. https://doi.org/10.1016/j.jeurceramsoc.2022.02.046
Verification of selective laser melting heat source models with &lt;em&gt;operando&lt;/em&gt; X-ray diffraction data
Hocine, S., Van Swygenhoven, H., & Van Petegem, S. (2021). Verification of selective laser melting heat source models with operando X-ray diffraction data. Additive Manufacturing, 37, 101747 (16 pp.). https://doi.org/10.1016/j.addma.2020.101747
A miniaturized selective laser melting device for &lt;em&gt;operando&lt;/em&gt; X-ray diffraction studies
Hocine, S., Van Petegem, S., Frommherz, U., Tinti, G., Casati, N., Grolimund, D., & Van Swygenhoven, H. (2020). A miniaturized selective laser melting device for operando X-ray diffraction studies. Additive Manufacturing, 34, 101194 (9 pp.). https://doi.org/10.1016/j.addma.2020.101194
Operando X-ray diffraction during laser 3D printing
Hocine, S., Van Swygenhoven, H., Van Petegem, S., Chang, C. S. T., Maimaitiyili, T., Tinti, G., … Casati, N. (2020). Operando X-ray diffraction during laser 3D printing. Materials Today, 34, 30-40. https://doi.org/10.1016/j.mattod.2019.10.001
Cracks, porosity and microstructure of Ti modified polymer-derived SiOC revealed by absorption-, XRD- and XRF-contrast 2D and 3D imaging
Makowska, M., Sasikumar, P. V. W., Hagelüken, L., Ferreira Sanchez, D., Casati, N., Marone, F., … Van Swygenhoven, H. (2020). Cracks, porosity and microstructure of Ti modified polymer-derived SiOC revealed by absorption-, XRD- and XRF-contrast 2D and 3D imaging. Acta Materialia, 198, 134-144. https://doi.org/10.1016/j.actamat.2020.07.067
Selective laser melting of thermal pre-treated METAL oxide doped aluminum oxide granules
Pfeiffer, S., Makowska, M., Kevin Florio, Ferreira Sanchez, D., Marone, F., Zhang, X., … Graule, T. (2020). Selective laser melting of thermal pre-treated METAL oxide doped aluminum oxide granules. Open Ceramics, 2, 100007 (14 pp.). https://doi.org/10.1016/j.oceram.2020.100007
X-ray forward diffraction wave-front propagation in Si and C single crystals: simulations and experiments
Rodriguez-Fernandez, A., Carbone, G., Matej, Z., Grolimund, D., Sanchez, D. F., & Pedrini, B. (2020). X-ray forward diffraction wave-front propagation in Si and C single crystals: simulations and experiments. In O. Chubar & K. Sawhney (Eds.), Proceedings of SPIE: Vol. 11493. Advances in computational methods for X-Ray optics V (p. 114930W (10 pp.). https://doi.org/10.1117/12.2568495
Laue microdiffraction characterisation of as-cast and tensile deformed Al microwires
Deillon, L., Verheyden, S., Ferreira Sanchez, D., Van Petegem, S., Van Swygenhoven, H., & Mortensen, A. (2019). Laue microdiffraction characterisation of as-cast and tensile deformed Al microwires. Philosophical Magazine, 99(15), 1866-1880. https://doi.org/10.1080/14786435.2019.1605220
Kinetics of a phonon-mediated laser-driven structural phase transition in SN<sub>2</sub>P<sub>2</sub>Se<sub>6</sub>
Kubli, M., Savoini, M., Abreu, E., Burganov, B., Lantz, G., Huber, L., … Johnson, S. L. (2019). Kinetics of a phonon-mediated laser-driven structural phase transition in SN2P2Se6. Applied Sciences, 9(3), 525 (11 pp.). https://doi.org/10.3390/app9030525
 

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