Research progress on crack formation mechanism and inhibition strategy for ceramic additive manufacturing
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Changbao Ma | Fazhi Li | Zhiwen Liu | Zheng Chang | Ping Yan
[1] Changbao Ma,et al. Formation mechanism and quantitative analysis of pores in Al2O3–ZrO2 ceramic different structures by laser additive manufacturing , 2023, Ceramics International.
[2] K. Kosiba,et al. Effect of powder bed preheating on the crack formation and microstructure in ceramic matrix composites fabricated by laser powder-bed fusion process , 2022, Additive Manufacturing.
[3] H. Tsukamoto. Enhancement of transformation toughening of partially stabilized zirconia by some additives , 2022, Ceramics International.
[4] Y.Z. Zhou,et al. Sample selection for models to represent ceramic cores fabricated by stereolithography three-dimensional printing , 2022, Journal of Materials Science & Technology.
[5] F. Marone,et al. Crack-reduced alumina/aluminum titanate composites additive manufactured by laser powder bed fusion of black TiO2-x doped alumina granules , 2022, Journal of the European Ceramic Society.
[6] J. Schoenung,et al. The Influence of Laser Directed Energy Deposition (DED) Processing Parameters for Al5083 Studied by Central Composite Design , 2022, Journal of Materials Research and Technology.
[7] Yongjian Li,et al. ZrO2 Matrix Toughened Ceramic Material‐Strength and Toughness , 2022, Advanced Engineering Materials.
[8] Guang-yi Ma,et al. Direct additive manufacturing of melt growth Al2O3-ZrO2 functionally graded ceramics by laser directed energy deposition , 2022, Journal of the European Ceramic Society.
[9] L. Marșavina,et al. Mixed modes crack paths in SCB specimens obtained via SLS , 2022, Procedia Structural Integrity.
[10] M. Schwentenwein,et al. Additive manufacturing of aluminum nitride ceramics with high thermal conductivity via digital light processing , 2021, Open Ceramics.
[11] Jia‐Min Wu,et al. Fabrication of high-performance silica-based ceramic cores through selective laser sintering combined with vacuum infiltration , 2021, Additive Manufacturing.
[12] Jing Shi,et al. Microstructure and mechanical properties of melt-grown alumina-mullite/glass composites fabricated by directed laser deposition , 2021, Journal of Advanced Ceramics.
[13] F. Jiang,et al. Graded microstructure and properties of TiCp/Ti6Al4V composites manufactured by laser melting deposition , 2021, Ceramics International.
[14] M. Schmid,et al. Crack-healing, a Novel Approach for a Laser-based Powder Bed Fusion of High-performance Ceramic Oxides , 2021, Additive Manufacturing Letters.
[15] H. Fu,et al. Directly Fabricated Al2O3/GdAlO3 Eutectic Ceramic with Large Smooth Surface by Selective Laser Melting: Rapid Solidification Behavior and Thermal Field Simulation , 2021, Journal of the European Ceramic Society.
[16] Shuning Liu,et al. Near-zero-shrinkage Al2O3 ceramic foams with coral-like and hollow-sphere structures via selective laser sintering and reaction bonding , 2021, Journal of the European Ceramic Society.
[17] Zhiwen Liu,et al. Pore formation model for direct laser deposition of Al2O3–ZrO2 ceramic , 2021, Journal of the European Ceramic Society.
[18] Tim Mueller,et al. Selective laser sintering in reactive atmospheres: Towards in-situ synthesis of net-shaped carbide and nitride ceramics , 2021 .
[19] Z. Dong,et al. Polycrystalline alumina ceramic fabrication using digital stereolithographic light process , 2021, Ceramics International.
[20] M. Meyers,et al. Additive manufacturing of structural ceramics: a historical perspective , 2021 .
[21] Dongjiang Wu,et al. Shaping quality, microstructure, and mechanical properties of melt-grown mullite ceramics by directed laser deposition , 2021 .
[22] J. Schoenung,et al. Directed energy deposition (DED) additive manufacturing: Physical characteristics, defects, challenges and applications , 2021, Materials Today.
[23] K. Wegener,et al. Direct laser additive manufacturing of high performance oxide ceramics: A state-of-the-art review , 2021 .
[24] Rong-zhen Liu,et al. Fabrication by stereolithography of fiber-reinforced fused silica composites with reduced crack and improved mechanical properties , 2021 .
[25] Guang-yi Ma,et al. Investigation of melt-growth alumina/aluminum titanate composite ceramics prepared by directed energy deposition , 2021, International Journal of Extreme Manufacturing.
[26] C. Tuck,et al. Additive manufacturing of advanced ceramic materials , 2021 .
[27] R. Meyer,et al. Textured Mn-doped PIN-PMN-PT Ceramics: Harnessing Intrinsic Piezoelectricity for High-power Transducer Applications , 2021 .
[28] F. Hengzhi,et al. Research Progress on Laser Additive Manufacturing Ultra-high Temperature Oxide Eutectic Ceramics , 2021, Journal of Inorganic Materials.
[29] Liu Yaxiong,et al. Laser Stereolithography for Zirconia Ceramic Fabrication and Debinding and Sintering Process , 2021, Journal of inorganic materials.
[30] Cao Jiwei,et al. Research Progress on Powder-based Laser Additive Manufacturing Technology of Ceramics , 2021, Journal of Inorganic Materials.
[31] Luo Zhongqiang,et al. Influence of Debinding Process on the Properties of Photopolymerization 3D Printed Cordierite Ceramics , 2021, Journal of Inorganic Materials.
[32] P. Evdokimov,et al. DLP 3D printing of scandia-stabilized zirconia ceramics , 2021 .
[33] F. Berto,et al. Effect of selective laser melting process parameters on microstructural and mechanical properties of TiC–NiCr cermet , 2020 .
[34] J. Günster,et al. First time additively manufactured advanced ceramics by using two-photon polymerization for powder processing , 2020 .
[35] C. Paul,et al. Experimental investigation on Laser Directed Energy Deposition based additive manufacturing of Al2O3 bulk structures , 2020 .
[36] Seongwan Jang,et al. Development of ceramic additive manufacturing: process and materials technology , 2020, Biomedical Engineering Letters.
[37] A. Nath,et al. Laser surface polishing of NiCrSiBC – 60WC ceramic-metal matrix composite deposited by laser directed energy deposition process , 2020 .
[38] D. Psaltis,et al. Additive micro-manufacturing of crack-free PDCs by two-photon polymerization of a single, low-shrinkage preceramic resin , 2020, Additive Manufacturing.
[39] Liu Yu,et al. Research progress in photopolymerization-based 3D printing technology of ceramics , 2020 .
[40] Jinlong Yang,et al. Laser cladding of manganese oxide doped aluminum oxide granules on titanium alloy for biomedical applications , 2020 .
[41] Jie Wang,et al. Toughening Mechanism of Mullite Matrix Composites: A Review , 2020, Coatings.
[42] S. Parola,et al. Microfabrication by two-photon lithography, and characterization, of SiO2/TiO2 based hybrid and ceramic microstructures , 2020, Journal of Sol-Gel Science and Technology.
[43] F. Marone,et al. Selective laser melting of thermal pre-treated metal oxide doped aluminum oxide granules , 2020, Open Ceramics.
[44] J. M. Pappas,et al. Effects of zirconia doping on additively manufactured alumina ceramics by laser direct deposition , 2020 .
[45] Haihong Zhu,et al. Al2O3 loss prediction model of selective laser melting Al2O3–Al composite , 2020 .
[46] Yusheng Shi,et al. Balling phenomenon and cracks in alumina ceramics prepared by direct selective laser melting assisted with pressure treatment , 2020, Ceramics International.
[47] Yusheng Shi,et al. Preparation and biological evaluation of ZrO2 all-ceramic teeth by DLP technology , 2020, Ceramics International.
[48] Surjya K. Pal,et al. A study on the influence of substrate pre-heating on mitigation of cracks in direct metal laser deposition of NiCrSiBC-60%WC ceramic coating on Inconel 718 , 2020 .
[49] Guang-yi Ma,et al. Process optimization of melt growth alumina/aluminum titanate composites directed energy deposition: Effects of scanning speed , 2020 .
[50] J. M. Pappas,et al. Laser direct deposited transparent magnesium aluminate spinel ceramics , 2020 .
[51] F. Niu,et al. Directed laser deposition of Al2O3–ZrO2 melt-grown composite ceramics with multiple composition ratios , 2020, Journal of Materials Science.
[52] Jimin Chen,et al. Fabrication of fine and complex lattice structure Al2O3 ceramic by digital light processing 3D printing technology , 2020, Journal of Materials Science.
[53] Shanshan Liu,et al. Preparation of high-porosity Al2O3 ceramic foams via selective laser sintering of Al2O3 poly-hollow microspheres , 2020 .
[54] Deqiao Xie,et al. Study on defect-free debinding green body of ceramic formed by DLP technology , 2020 .
[55] J. M. Pappas,et al. Fabrication and Characterization of High-Purity Alumina Ceramics Doped with Zirconia via Laser Direct Deposition , 2020 .
[56] Hui Wang,et al. Directed Energy Deposition of Zirconia-Toughened Alumina Ceramic: Novel Microstructure Formation and Mechanical Performance , 2020, Journal of Manufacturing Science and Engineering.
[57] Changyong Liu,et al. Mechanical properties and microstructures of 3D printed bulk cordierite parts , 2019, Ceramics International.
[58] A. Gusarov,et al. Possibilities of Manufacturing Products from Cermet Compositions Using Nanoscale Powders by Additive Manufacturing Methods , 2019, Materials.
[59] H. Fu,et al. Effect of scanning speed on the solidification process of Al2O3/GdAlO3/ZrO2 eutectic ceramics in a single track by selective laser melting , 2019, Ceramics International.
[60] J. Ding,et al. Direct additive manufacturing of large-sized crack-free alumina/aluminum titanate composite ceramics by directed laser deposition , 2019, Rapid Prototyping Journal.
[61] Guang-yi Ma,et al. 3D printing of nano-scale Al2O3-ZrO2 eutectic ceramic: Principle analysis and process optimization of pores , 2019, Additive Manufacturing.
[62] S. Campanelli,et al. Printability and Microstructure of Selective Laser Melting of WC/Co/Cr Powder , 2019, Materials.
[63] J. Ding,et al. Effect of doping SiC particles on cracks and pores of Al2O3–ZrO2 eutectic ceramics fabricated by directed laser deposition , 2019, Journal of Materials Science.
[64] J. Ding,et al. Effects of TiO2 doping on microstructure and properties of directed laser deposition alumina/aluminum titanate composites , 2019, Virtual and Physical Prototyping.
[65] Han Huang,et al. Nanostructured Al2O3-YAG-ZrO2 ternary eutectic components prepared by laser engineered net shaping , 2019, Acta Materialia.
[66] Yong Ma,et al. Microstructural characterization of nanostructured Al2O3-ZrO2 eutectic layer by laser rapid solidification method , 2019, Applied Surface Science.
[67] A. Gurlo,et al. Additive manufacturing of ceramics from preceramic polymers: A versatile stereolithographic approach assisted by thiol-ene click chemistry , 2019, Additive Manufacturing.
[68] Yi Zhang,et al. Microstructural characterization of Al2O3-ZrO2 ceramic by laser direct material deposition , 2019, Journal of laser applications.
[69] Li Yang,et al. 3D printing of ceramics: A review , 2019, Journal of the European Ceramic Society.
[70] Han Huang,et al. Yttria stabilized zirconia (YSZ) thin wall structures fabricated using laser engineered net shaping (LENS) , 2019, The International Journal of Advanced Manufacturing Technology.
[71] Dongjiang Wu,et al. C fiber toughening Al2O3-ZrO2 eutectic via ultrasonic-assisted directed laser deposition , 2019, Materials Letters.
[72] Michael R. Hill,et al. Effect of interlayers and scanning strategies on through-thickness residual stress distributions in additive manufactured ferritic-austenitic steel structure , 2019, Materials Science and Engineering: A.
[73] Jianbao Li,et al. Microstructure and mechanical properties of hot-pressed Al2O3–mullite–ZrO2–SiC composites , 2019, Materials Science and Engineering: A.
[74] Guang-yi Ma,et al. Effect and mechanism of ZrO 2 doping on the cracking behavior of melt‐grown Al 2 O 3 ceramics prepared by directed laser deposition , 2019, International Journal of Applied Ceramic Technology.
[75] W. Liao,et al. Cracks of alumina ceramics by selective laser melting , 2019, Ceramics International.
[76] Yingbin Hu,et al. A review on laser deposition-additive manufacturing of ceramics and ceramic reinforced metal matrix composites , 2018, Ceramics International.
[77] D. Bourell,et al. Laser additive manufacturing and homogeneous densification of complicated shape SiC ceramic parts , 2018, Ceramics International.
[78] H. Fu,et al. Direct formation of Al2O3/GdAlO3/ZrO2 ternary eutectic ceramics by selective laser melting: Microstructure evolutions , 2018, Journal of the European Ceramic Society.
[79] Yongnian Yan,et al. Selective laser melting of yttria-stabilized zirconia , 2018, Materials Research Express.
[80] Yi Zhang,et al. Microstructure and mechanical properties of Al2O3-ZrO2 ceramic deposited by laser direct material deposition , 2018, Ceramics International.
[81] Yilun Liu,et al. Effect of geometric parameter on thermal stress generation in fabrication process of double-ceramic-layers thermal barrier coating system , 2018, Journal of the European Ceramic Society.
[82] Zhenyuan Jia,et al. Microstructure and macro properties of Al2O3 ceramics prepared by laser engineered net shaping , 2018, Ceramics International.
[83] Abdalla R. Nassar,et al. Effect of Substrate Thickness and Preheating on the Distortion of Laser Deposited Ti–6Al–4V , 2018 .
[84] G. Bertrand,et al. Dense yttria-stabilized zirconia obtained by direct selective laser sintering , 2018 .
[85] Yanning Zhang,et al. Direct fabrication of compositionally graded Ti-Al2O3 multi-material structures using Laser Engineered Net Shaping , 2018 .
[86] Tingting Liu,et al. Influence of laser parameters on the surface morphology of slurry-based Al2O3 parts produced through selective laser melting , 2018 .
[87] Yusheng Shi,et al. High-performance ceramic parts with complex shape prepared by selective laser sintering: a review , 2018 .
[88] Hui Wang,et al. Ultrasonic vibration-assisted laser engineering net shaping of ZrO2-Al2O3 bulk parts: Effects on crack suppression, microstructure, and mechanical properties , 2018 .
[89] Guang-yi Ma,et al. Effect of ultrasonic power on forming quality of nano-sized Al2O3-ZrO2 eutectic ceramic via laser engineered net shaping (LENS) , 2018 .
[90] Yusheng Shi,et al. Effect of scan line spacing on texture, phase and nanohardness of TiAl/TiB2 metal matrix composites fabricated by selective laser melting , 2017 .
[91] Lei Cao,et al. Effect of HfN, HfC and HfB 2 additives on phase transformation, microstructure and mechanical properties of ZrO 2 -based ceramics , 2017 .
[92] R. Kang,et al. Al2O3-ZrO2 eutectic ceramic via ultrasonic-assisted laser engineered net shaping , 2017 .
[93] R. Kang,et al. Formation mechanism and process optimization of nano Al2O3-ZrO2 eutectic ceramic via laser engineered net shaping (LENS) , 2017 .
[94] W. Cong,et al. Additive manufacturing of alumina using laser engineered net shaping: Effects of deposition variables , 2017 .
[95] Bi Zhang,et al. Defect Formation Mechanisms in Selective Laser Melting: A Review , 2017 .
[96] Bi Zhang,et al. Process Optimization for Suppressing Cracks in Laser Engineered Net Shaping of Al2O3 Ceramics , 2017 .
[97] O. Lyckfeldt,et al. Influence of Resin Composition on the Defect Formation in Alumina Manufactured by Stereolithography , 2017, Materials.
[98] Huajun Sun,et al. Research on selective laser sintering of Kaolin–epoxy resin ceramic powders combined with cold isostatic pressing and sintering , 2016 .
[99] K. Ameyama,et al. Toughening and strengthening of ceramics composite through microstructural refinement , 2016 .
[100] Weidong Huang,et al. Microstructure and Mechanical Properties of Al2O3/ZrO2 Directionally Solidified Eutectic Ceramic Prepared by Laser 3D Printing , 2016 .
[101] Yan-bin Chen,et al. Microstructural study of MMC layers produced by combining wire and coaxial WC powder feeding in laser direct metal deposition , 2016 .
[102] Z. Eckel,et al. Additive manufacturing of polymer-derived ceramics , 2016, Science.
[103] 廖文和 Liao Wenhe,et al. Experiment on Selective Laser Melting Forming of Al2O3 Ceramics , 2016 .
[104] Paolo Colombo,et al. Stereolithography of SiOC Ceramic Microcomponents , 2016, Advanced materials.
[105] Bi Zhang,et al. Additive manufacturing of ceramic structures by laser engineered net shaping , 2015 .
[106] H. Liao,et al. Effect of high-temperature preheating on the selective laser melting of yttria-stabilized zirconia ceramic , 2015 .
[107] J. Halloran,et al. Effect of Cristobalite on the Strength of Sintered Fused Silica Above and Below the Cristobalite Transformation , 2015 .
[108] I. Ovid’ko. Micromechanics of fracturing in nanoceramics , 2015, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[109] Bi Zhang,et al. Effect of second-phase doping on laser deposited Al2O3 ceramics , 2015 .
[110] Bi Zhang,et al. Nanosized microstructure of Al2O3–ZrO2 (Y2O3) eutectics fabricated by laser engineered net shaping , 2015 .
[111] I. Gibson,et al. Directed Energy Deposition Processes , 2015 .
[112] Jean-Pierre Kruth,et al. Additive manufacturing of ceramics: A review , 2014 .
[113] F. Petit,et al. Shaping of ceramic parts by selective laser melting of powder bed , 2014 .
[114] H. Liao,et al. Microstructure study on selective laser melting yttria stabilized zirconia ceramic with near IR fiber laser , 2014 .
[115] L. Hao,et al. Indirect selective laser sintering of epoxy resin-Al2O3 ceramic powders combined with cold isostatic pressing , 2014 .
[116] Jean-Pierre Kruth,et al. Additive manufacturing of zirconia parts by indirect selective laser sintering , 2014 .
[117] J.-P. Kruth,et al. Direct selective laser sintering/melting of high density alumina powder layers at elevated temperatures , 2014 .
[118] T. Boyraz,et al. Microstructural Characterization and Thermal Properties of Aluminium Titanate/YSZ Ceramics , 2014 .
[119] Jean-Pierre Kruth,et al. Additive manufacturing of alumina parts by indirect selective laser sintering and post processing , 2013 .
[120] Konrad Wissenbach,et al. Additive manufacturing of ZrO2-Al2O3 ceramic components by selective laser melting , 2013 .
[121] Guoqing Chen,et al. Effect of cooling rate on the microstructure and mechanical properties of melt-grown Al2O3/YAG/ZrO2 eutectic ceramic , 2012 .
[122] Jean-Pierre Kruth,et al. Isostatic pressing assisted indirect selective laser sintering of alumina components , 2012 .
[123] T. Chartier,et al. Stereolithography process: Influence of the rheology of silica suspensions and of the medium on polymerization kinetics – Cured depth and width , 2012 .
[124] Jean-Pierre Kruth,et al. Preparation and indirect selective laser sintering of alumina/PA microspheres , 2012 .
[125] Jean-Pierre Kruth,et al. Density improvement of alumina parts produced through selective laser sintering of alumina-polyamide composite powder , 2012 .
[126] John W. Halloran,et al. Influence of Residual Monomer on Cracking in Ceramics Fabricated by Stereolithography , 2011 .
[127] I. Yadroitsev,et al. Selective laser sintering/melting of nitinol–hydroxyapatite composite for medical applications , 2011 .
[128] J. Gurauskis,et al. Laser-assisted, crack-free surface melting of large eutectic ceramic bodies , 2011 .
[129] Weidong Huang,et al. Influence of laser deposition patterns on part distortion, interior quality and mechanical properties by laser solid forming (LSF) , 2011 .
[130] Hagedorn Yves-Christian,et al. Net shaped high performance oxide ceramic parts by selective laser melting , 2010 .
[131] W. Tian,et al. In situ alumina/aluminum titanate bulk ceramic composites prepared by SPS from different structured composite powders , 2009 .
[132] A. Bandyopadhyay,et al. Processing of Bulk Alumina Ceramics Using Laser Engineered Net Shaping , 2008 .
[133] Robby Ebert,et al. Laser micro sintering: A new method to generate metal and ceramic parts of high resolution with sub-micrometer powder , 2008 .
[134] E. Liang,et al. Investigation on the microstructure and cracking susceptibility of laser-clad V2O5 /NiCrBSiC alloy coatings , 2008 .
[135] C. Baudín,et al. Fracture behaviour of microcrack-free alumina–aluminium titanate ceramics with second phase nanoparticles at alumina grain boundaries , 2008 .
[136] J. Halloran,et al. Binder Removal from Ceramic‐Filled Thermoplastic Blends , 2006 .
[137] J. Llorca,et al. Directionally solidified eutectic ceramic oxides , 2006 .
[138] Xuejun Jin,et al. Martensitic transformation in zirconia containing ceramics and its applications , 2005 .
[139] Satoshi Kawata,et al. Two-photon photopolymerization and 3D lithographic microfabrication , 2005 .
[140] R. Cook,et al. Toughening of an Alumina—Mullite Composite by Unbroken Bridging Elements , 2004 .
[141] Patrick M. Kelly,et al. Transformation Toughening in Zirconia‐Containing Ceramics , 2004 .
[142] F. Stott,et al. Thermal stresses and their implication on cracking during laser melting of ceramic materials , 2004 .
[143] Han Huang,et al. Machining characteristics and surface integrity of yttria stabilized tetragonal zirconia in high speed deep grinding , 2003 .
[144] M. H. Bocanegra-Bernal,et al. Phase transitions in zirconium dioxide and related materials for high performance engineering ceramics , 2002 .
[145] Angel Larrea,et al. Phase Distribution and Residual Stresses in Melt-Grown Al2O3-ZrO2(Y2O3) Eutectics , 2002 .
[146] J. Llorca,et al. Microstructure and Physical Properties of CaF_2–MgO Eutectics Produced by the Bridgman Method , 2000 .
[147] A. Domínguez-Rodríguez,et al. Microstructural evolution and stability of tetragonal precipitates in Y2O3 partially-stabilized ZrO2 single crystals , 1995 .
[148] M. Rühle. Microcrack and transformation toughening of zirconia-containing alumina , 1988 .
[149] N. Claussen,et al. Mechanical Properties of Sintered, In Situ-Reacted Mullite-Zirconia Composites , 1980 .