Additive manufacturing of Al2O3 ceramics with MgO/SiC contents by laser powder bed fusion process

被引:11
作者
Rehman, Asif Ur [1 ,2 ,3 ]
Ullah, Abid [2 ,3 ,4 ]
Liu, Tingting [5 ]
Rehman, Rashid Ur [6 ]
Salamci, Metin U. [2 ,3 ,7 ]
机构
[1] ERMAKSAN, Bursa, Turkiye
[2] Gazi Univ, Fac Engn, Dept Mech Engn, Ankara, Turkiye
[3] Gazi Univ, Addit Mfg Technol Res & Applicat Ctr, EKTAM, Ankara, Turkiye
[4] Univ Sci & Technol China, Dept Modern Mech, CAS Key Lab Mech Behav & Design Mat, Hefei, Anhui, Peoples R China
[5] Nanjing Univ Sci & Technol, Sch Mech Engn, Nanjing, Jiangsu, Peoples R China
[6] Incheon Natl Univ, Incheon, South Korea
[7] Adv Mfg Technol Ctr Excellence, URTEMM, Ankara, Turkiye
基金
中国国家自然科学基金;
关键词
additive manufacturing; sintering; defects; ceramic; oxidation; laser processing; RESIDUAL-STRESS; ALUMINA; DENSITY; PARTS;
D O I
10.3389/fchem.2023.1034473
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Laser powder bed fusion is a laser-based additive manufacturing technique that uses a high-energy laser beam to interact directly with powder feedstock. LPBF of oxide ceramics is highly desirable for aerospace, biomedical and high-tech industries. However, the LPBF of ceramics remains a challenging area to address. In this work, a new slurry-based approach for LPBF of ceramic was studied, which has some significant advantages compared to indirect selective laser sintering of ceramic powders. LPBF of Al2O3 was fabricated at different MgO loads up to 80 wt%. Several specimens on different laser powers (70 W-120 W) were printed. The addition of magnesia influenced the microstructure of the alumina ceramic significantly. The findings show that when the laser power is high and the magnesia load is low, the surface quality of the printing parts improves. It is feasible to produce slurry ceramic parts without binders through LPBF. Furthermore, the effects of SiC and MgO loads on the microstructure and surface morphology of alumina are compared and analysed.
引用
收藏
页数:10
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[1]   Powder Bed Selective Laser Processing of Alumina: Scanning Strategies Investigation [J].
Abdelmoula, Mohamed ;
Kucukturk, Gokhan ;
Juste, Enrique ;
Petit, Fabrice .
APPLIED SCIENCES-BASEL, 2022, 12 (02)
[2]  
Ahmed A, 2021, NANO CONVERG, V8
[3]   Numerical and experimental investigations of built orientation dependent Johnson-Cook model for selective laser melting manufactured AlSi10Mg [J].
Akturk, Murat ;
Boy, Mehmet ;
Gupta, Munish Kumar ;
Waqar, Saad ;
Krolczyk, Grzegorz M. ;
Korkmaz, Mehmet Erdi .
JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2021, 15 :6244-6259
[4]   Selective Laser Melting of 316L Austenitic Stainless Steel: Detailed Process Understanding Using Multiphysics Simulation and Experimentation [J].
Ansari, Peyman ;
Rehman, Asif Ur ;
Pitir, Fatih ;
Veziroglu, Salih ;
Mishra, Yogendra Kumar ;
Aktas, Oral Cenk ;
Salamci, Metin U. .
METALS, 2021, 11 (07)
[5]   HIGH-TEMPERATURE MECHANICAL-BEHAVIOR OF STOICHIOMETRIC MAGNESIUM SPINEL [J].
BAUDIN, C ;
MARTINEZ, R ;
PENA, P .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1995, 78 (07) :1857-1862
[6]  
Callister W.J., 2000, Fundamentals of Materials Science and Engineering, V5th
[7]  
Callister WilliamD., 2011, Materials science and engineering, V8th
[8]   Solidification During Selective Laser Melting of Co-29Cr-6Mo Alloy [J].
Chen, Z. W. ;
Guraya, T. ;
Darvish, K. ;
Phan, M. A. L. ;
Pasang, T. .
JOM, 2019, 71 (02) :691-696
[9]   Direct selective laser sintering/melting of high density alumina powder layers at elevated temperatures [J].
Deckers, J. ;
Meyers, S. ;
Kruth, J. P. ;
Vleugels, J. .
8TH INTERNATIONAL CONFERENCE ON LASER ASSISTED NET SHAPE ENGINEERING (LANE 2014), 2014, 56 :117-124
[10]   Additive Manufacturing of Ceramics: A Review [J].
Deckers, J. ;
Vleugels, J. ;
Kruthl, J. -P. .
JOURNAL OF CERAMIC SCIENCE AND TECHNOLOGY, 2014, 5 (04) :245-260