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Effect of premix ratio on mechanical properties of silicon nitride ceramics prepared by stereolithography |
LIU Yao1, HE Yu1, XIN Feng1, WANG Bin1, ZHAN Lina1, WEN Ruquan1, XIAO Wenfu1, LIU Shaojun2 |
1. College of Mechanical and Electronic Engineering, Pingxiang University, Pingxiang 337000, China; 2. State Key Laboratory of Powder Metallurgy, Central South University, Changsha 410083, China |
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Abstract Using three diluents of 1,6-hexanediol diacrylate (HDDA), 2-hydroxyethyl acrylate (HEA) and trimethylpropane triacrylate (TMPTA), and four kinds of prepolymers of epoxy acrylate (EA), water-based polyurethane acrylate (PUA), modified acrylate (WUV) and aliphatic epoxy acrylate (APU) as raw materials, Si3N4 ceramic powder modified by silane coupling agent KH560 is added to prepare Si3N4 ceramic slurry. Si3N4 ceramics were prepared by light curing, debinding and sintering. The effects of diluent ratio, prepolymer type and solid content (i.e. the volume fraction of Si3N4) on the rheological properties of ceramic slurry were studied. The appropriate sintering temperature was determined and the mechanical properties of Si3N4 ceramics were measured. The results show that when HDDA, HEA and TMPTA are mixed in a mass ratio of 3:1:6 as the diluent, the premixed liquid made with prepolymer EA has the lowest relative molecular mass and viscosity. The light cured green body with 45% solid phase content is compact, and there are no holes and cracks after debinding at 160 ℃. The microhardness and fracture toughness of Si3N4 ceramics sintered at 1 750 ℃ and 5 MPa are 14.57 GPa and 5.78 MPa·m1/2 respectively.
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Received: 30 June 2020
Published: 18 January 2021
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[1] LU H H, HUANG J L.Microstructure in silicon nitride containing B-phase seeding: Grain growth and coalescences[J]. Journal of the American Ceramic Society, 2001, 84(8): 1891-1895. [2] 李勇霞. 高热导氮化硅基复合材料的制备与性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2018. LI Yongxia. Preparation and properties of high thermal conductivity silicon nitride-based composite materials[D]. Harbin: Harbin Institute of Technology, 2018. [3] KRAUSE R F, LUECKE W E, FRENCH J D, et al.Tensile creep and rupture of silicon nitride[J]. The Journal of American Society, 1999, 82(5): 1233-1241. [4] LI X, ZHANG L, PAN T.Microstruture and properties for porous Si3N4 ceramics with dense surface[J]. International Journal of Applied ceramic Technology, 2011, 8(11): 627-636. [5] ZOCCA A, COLOMBO P, GOMES C, et al.Additive manufacturing of ceramics: Issues, potentialities, and opportunities[J]. Journal of the American Ceramic Society, 2015, 98(2): 1983-2001. [6] HALLORAN J.Ceramic stereolithography: Additive manufacturing for ceramics by photopolymerization[J]. Annual Review of Materials Research, 2016, 46(7): 19-40. [7] WEISENSEL H, TRAVITZKY N, HOFENAUER A, et al.Laminated object manufacturing of SiC composites[J]. Annual Review of Materials Research, 2007, 6(13): 899-903. [8] ZHANG S, SHA N, ZHAO Z.Surface modification of α-Al2O3 with dicarboxylic acids for the preparation of UV-curable ceramics suspensions[J]. Journal of the European Ceramic Society, 2017, 37(6): 1697-1716. [9] ZHOU W, LI D, WANG H.A novel aqueous ceramic suspension for ceramic stereolithography[J]. Rapid Prototyping Journal, 2010, 16(9): 29-35. [10] WANG B, LI D, LIAN Q, et al.Fabrication of a bio-inspired beta-tricalcium phosphate/collagen scaffold based on ceramic stereolithography and gel casting for osteochondral tissue engineering[J]. Rapid Prototyping Journal, 2012, 18(16): 68-80. [11] CHARTIER T, CHAPUT C, DOREAU F, et al.Stereolithography of structural complex structural complex ceramic parts[J]. Journal of Materials Science, 2002, 37(9): 3141-3147. [12] HE R, LIU W E, WU Z, et al.Fabrication of complex-shaped zirconia ceramic parts via a DLP-stereolithography-based 3D printing method[J]. Ceramic International, 2018, 44(17): 3412-3416. [13] SCALERA F, CORCIONE C E, MONTAGNA F, et al.Development and characterization of UV curable epoxy/ hydroxyapatite suspensions for applied to bone tissue engineering[J]. Ceramic International, 2014, 40(5): 15455-15462. [14] GENTRY P, HALLORAN J W.Light scattering in absorbing ceramics suspensions: Effect on the width and depth of photopolymerized features[J]. Journal of the European Ceramic Society, 2015, 35(2): 1895-1904. [15] TOMECKOVA V, HALLORAN J W.Critical engery for photopolymerization of ceramic suspensions in acrylate monomers[J]. Journal of the European Ceramic Society, 2010, 30(9): 3273-3283. [16] LEE J, PRUD R, AKSAY I A R. Cure depth in photopolymerization: Experiments and thoety[J]. Journal of Materials Research, 2011, 16(12): 3536-3544. [17] BABA S, HARADA T, SHIMIZU H, et al.Colloidal processing using UV curable resin under magnetic field for textured ceramics[J]. Journal of the European Ceramic Society, 2016, 36(15): 2739-2743. |
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