Journal of Inorganic Materials ›› 2022, Vol. 37 ›› Issue (3): 255-266.DOI: 10.15541/jim20210608
Special Issue: 【制备方法】3D打印(202409); 【结构材料】超高温结构陶瓷(202409)
• REVIEW • Previous Articles Next Articles
LIU Haifang1,2(), SU Haijun1,2(
), SHEN Zhonglin1, JIANG Hao1, ZHAO Di1, LIU Yuan1, ZHANG Jun1, LIU Lin1, FU Hengzhi1
Received:
2021-10-02
Revised:
2021-11-05
Published:
2022-03-20
Online:
2021-12-24
Contact:
SU Haijun, professor. E-mail: shjnpu@nwpu.edu.cn
About author:
LIU Haifang (1987-), male, PhD candidate. E-mail: liuhaifang@mail.nwpu.edu.cn
Supported by:
CLC Number:
LIU Haifang, SU Haijun, SHEN Zhonglin, JIANG Hao, ZHAO Di, LIU Yuan, ZHANG Jun, LIU Lin, FU Hengzhi. Research Progress on Ultrahigh Temperature Oxide Eutectic Ceramics by Laser Additive Manufacturing[J]. Journal of Inorganic Materials, 2022, 37(3): 255-266.
Technology | Scanning control | Molten pool size/mm | Energy density /(W·cm-2) | Building rate /(cm3·min-1) | Manufacturing precision | Preferred applications |
---|---|---|---|---|---|---|
SLM | Scanner | <0.2 | 106-107 | ~1.3 | High | Net-shaping small- and medium-sized components |
LDED | Laser nozzle | >3 | ~105 | 11.5 | Low | Preparing large-scale components |
Table 1 Comparison of the SLM and LDED technologies[28]
Technology | Scanning control | Molten pool size/mm | Energy density /(W·cm-2) | Building rate /(cm3·min-1) | Manufacturing precision | Preferred applications |
---|---|---|---|---|---|---|
SLM | Scanner | <0.2 | 106-107 | ~1.3 | High | Net-shaping small- and medium-sized components |
LDED | Laser nozzle | >3 | ~105 | 11.5 | Low | Preparing large-scale components |
Fig. 3 Preparation technology and characteristics of spherical ceramic powders[68] (a) Schematic diagram of centrifugal spray drying method; (b) Morphology of the initial ceramic powders; (c) Morphology of the modified ceramic powders; (d) Particle size distribution of the modified ceramic powders; (e) Powder feeding test
Fig. 6 Al2O3/GAP/ZrO2 eutectic ceramics prepared at different environments (a) Atmospheric atmosphere; (b) Ar atmosphere with oxygen content >200 μg/L; (c) Ar atmosphere with oxygen content <50 μg/L
Fig. 7 Oxide eutectic ceramics prepared by laser additive manufacturing (a) SLM-processed Al2O3/ZrO2 eutectic ceramic with shape of framework for a dental restoration[30]; (b) LDED-processed Al2O3/ZrO2 eutectic ceramics with various shapes[43]; (c) LDED-processed Al2O3/GAP/ZrO2 eutectic ceramic rod[70]
Fig. 8 Microstructure characteristics of the LAM-processed oxide eutectic ceramic along the building direction[68] (a) Periodic banded structure; (b) Magnified image of the banded structure
Fig. 9 Microstructure characteristics in vicinity of the banded structure of the LDED-processed Al2O3/GAP/ZrO2 eutectic ceramic[68] (a) Banded structure; (b) Microstructure characteristic of the banded structure; (c) Microstructure at the lower boundary of the banded structure; (d) Microstructure at the upper boundary of the banded structure
Fig. 10 Microstructure characteristics of the LDED-processed Al2O3/YAG/ZrO2 eutectic ceramic in a deposited layer[47] (a) Eutectic colony structure; (b) Microstructure inside the colony; (c-e) TKD (Transmission kikuchi diffraction) orientation maps of the phases of Al2O3, YAG and ZrO2, respectively; (f) Pole figures of Al2O3, YAG and ZrO2, corresponding to (c-e), respectively
Fig. 11 Orientation variations of eutectic phases of the LDED-processed Al2O3/YAG eutectic ceramic during solidification process[46] (a) EBSD orientation maps of Al2O3 and YAG in bottom zone of the molten pool; (b) Orientation variations of Al2O3 and YAG along the height direction of the molten pool
Eutectic system | Hardness /GPa | Fracture toughness /(MPa·m1/2) | Preparation method |
---|---|---|---|
Al2O3/YAG | 21.50 | 5.86 | LDED[ |
Al2O3/ZrO2 | 16.22 | 7.67 | LDED[ |
Al2O3/YAG/ZrO2 | 18.90 | 3.84 | LDED[ |
Al2O3/GAP/ZrO2 | 15.30 | 7.80 | SLM[ |
Al2O3/YAG | 17.50 | 3.60 | DS[ |
Al2O3/ZrO2 | 16.53 | 6.50 | DS[ |
Al2O3/YAG/ZrO2 | 16.70 | 8.00 | DS[ |
Al2O3/GAP/ZrO2 | 17.90 | 8.50 | DS[ |
Table 2 Mechanical property comparison of the oxide eutectic ceramics prepared by laser additive manufacturing and directional solidification (DS)
Eutectic system | Hardness /GPa | Fracture toughness /(MPa·m1/2) | Preparation method |
---|---|---|---|
Al2O3/YAG | 21.50 | 5.86 | LDED[ |
Al2O3/ZrO2 | 16.22 | 7.67 | LDED[ |
Al2O3/YAG/ZrO2 | 18.90 | 3.84 | LDED[ |
Al2O3/GAP/ZrO2 | 15.30 | 7.80 | SLM[ |
Al2O3/YAG | 17.50 | 3.60 | DS[ |
Al2O3/ZrO2 | 16.53 | 6.50 | DS[ |
Al2O3/YAG/ZrO2 | 16.70 | 8.00 | DS[ |
Al2O3/GAP/ZrO2 | 17.90 | 8.50 | DS[ |
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