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2021, 05, v.49 867-877
陶瓷光固化成型技术的应用与展望
基金项目(Foundation): 国家重点研发项目(2018YFB1106600); 国家自然科学基金(51802319,52005479); 中国科学院空间应用工程与技术中心所长基金(NO.CSU-QZKT-2019-04)
邮箱(Email): ;;
DOI: 10.14062/j.issn.0454-5648.20200722
投稿时间: 2020-09-21
投稿日期(年): 2020
终审时间: 2021-01-19
终审日期(年): 2021
审稿周期(年): 1
发布时间: 2021-04-13
出版时间: 2021-04-13
网络发布时间: 2021-04-13
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摘要:

陶瓷材料具有强度高、抗压强度大、耐磨性、耐酸碱性等优异性能,是现代技术发展不可或缺的材料,但传统的陶瓷加工方法难以满足个性化、轻量化、复杂化的需求。增材制造技术作为一种新型成型方法,具有广泛的应用前景。光固化三维打印技术是增材制造技术的一种,具有精度高、成型速度快等优点。本文讨论了几种常用的光固化打印方法以及其在陶瓷型芯、吸波材料、透波材料和其它方面的应用,并对今后陶瓷光固化三维打印技术的前景与应用进行了展望。

Abstract:

Ceramic materials have excellent properties such as high strength, high compressive strength, wear resistance, acid and alkali resistance, etc.. They are indispensable materials for the development of modern technology. However, it is difficult for the conventional ceramic processing methods to meet the requirements of individualization, light mass and complexity. Additive manufacture technology as a forming method has a wide range of application prospects. Among them, photopolymerization three-dimensional printing technology has some advantages of high precision and fast speed. This paper represented several commonly stereolithography printing technologies and their main applications. In addition, the prospect and application of ceramic photopolymerization three-dimensional printing technologies were also discussed.

参考文献

[1] CHEN Z, LI Z, LI J, et al. 3D printing of ceramics:A review[J]. J Eur Ceram Soc, 2019, 39(4):661–687.

[2] BENGISU M. Engineering Ceramics[M]. Berlin:Springer Science&Business Media, 2013:115–126.

[3] MARCUS H L, BEAMAN J J, BARLOW J W, et al. Solid freeform fabrication-powder processing[J]. Am Ceram Soc Bull, 1990, 69(6):1030–1031.

[4] SACHS E, CIMA M, WILLIAMS P, et al. Three dimensional printing:rapid tooling and prototypes directly from a CAD model[J]. J Manuf Sci Eng, 1992, 39(1):201–204.

[5]梁栋,何汝杰,方岱宁.陶瓷材料与结构增材制造技术研究现状[J].现代技术陶瓷, 2017, 38(4):231–247.LIANG Dong, HE Rujie, FANG Daining. J Adv Ceram(in Chinese),2017, 38(4):231–247.

[6] HWA L C, RAJOO S, NOOR A M, et al. Recent advances in 3D printing of porous ceramics:A review[J]. Curr Opin Solid State Mater Sci, 2017, 21(6):323–347.

[7] HULL C W, LEWIS C W. Methods and apparatus for production of three-dimensional objects by stereolithography[P]. U.S.Patent No.5059 359, 1991.

[8] VARADAN V K, JIANG X, VARADAN V V J J W, et al.Microstereolithography and Other Fabrication Techniques for 3D Mems[M]. New Jersey:John Wiley&Sons Inc, 2001.

[9] NAKAMOTO T, YAMAGUCHI K. Consideration on the producing of high aspect ratio micro parts using UV sensitive photopolymer[C]//MHS'96 Proceedings of the Seventh International Symposium on Micro Machine and Human Science, 1996:53–58.

[10] SUN H B, KAWATA S. Two-photon photopolymerization and 3D lithographic microfabrication[M]//NMR·3D Analysis·Photopolymerization. Springer, Berlin, Heidelberg, 2004:169–273.

[11] DECKARD C R. Method and Apparatus for Producing Parts by Selective Sintering[M]. Austin:University of Texas. 1989.

[12] CRUMP S S. Apparatus and method for creating three-dimensional objects[P]. U.S.Patent No.5, 121, 329, 1992.

[13] CHUA C K, LEONG K F, LIM C S. Rapid Prototyping:Principles and Applications(with Companion CD-ROM)[M]. Singapore:World Scientific Publishing Company, 2010.

[14]刘雨,陈张伟.陶瓷光固化3D打印技术研究进展[J].材料工程,2020(9):1–12.LIU Yu, CHEN Zhangwei. J Mater Eng(in Chinese), 2020(9):1–12.

[15] CHARTIER T, CHAPUT C, DOREAU F, et al. Stereolithography of structural complex ceramic parts[J]. J Mater Sci,2002, 37(15):3141–3147.

[16] BAE C J, HALLORAN J W. Integrally cored ceramic mold fabricated by ceramic stereolithography[J]. Int J Appl Ceram Tech, 2011, 8(6):1255–1262.

[17] ZHANG K, XIE C, WANG G, et al. High solid loading, low viscosity photosensitive Al2O3 slurry for stereolithography based additive manufacturing[J]. Ceram Int, 2019, 45(1):203–208.

[18] HU K, WEI Y, LU Z, et al. Design of a shaping system for stereolithography with high solid loading ceramic suspensions[J]. 3D Print Add Manuf, 2018, 5(4):311–318.

[19] HUANG R J, JIANG Q G, WU H D, et al. Fabrication of complex shaped ceramic parts with surface-oxidized Si3N4 powder via digital light processing based stereolithography method[J]. Ceram Int, 2019,45(4):5158–5162.

[20] SCHWENTENWEIN M, HOMA J. Additive manufacturing of dense alumina ceramics[J]. Int J Appl Ceram Tech, 2015, 12(1):1–7.

[21] SHUAI X, ZENG Y, LI P, et al. Fabrication of fine and complex lattice structure Al2O3 ceramic by digital light processing 3D printing technology[J]. J Mater Sci, 2020, 55(3):1–12.

[22] JACOBS P F. Fundamentals of stereolithography[C]//1992International Solid Freeform Fabrication Symposium, Austin, US,1992:196–211.

[23] GRIFFITH M L, HALLORAN J W. Freeform fabrication of ceramics via stereolithography[J]. J Am Ceram Soc, 1996, 79:2601–2608.

[24] HALLORAN J W. Ceramic stereolithography:Additive manufacturing for ceramics by photopolymerization[J]. Annu Rev Mater Sci, 2016,46(1):19–40.

[25] HALLORAN J W, TOMECKOVA V, GENTRY S, et al.Photopolymerization of powder suspensions for shaping ceramics[J]. J Eur Ceram Soc, 2011, 31(14):2613–2619.

[26] BADEV A, ABOULIATIM Y, CHARTIER T, et al.Photopolymerization kinetics of a polyether acrylate in the presence of ceramic fillers used in stereolithography[J]. J Photoch Photobiol A,2011, 222(1):117–122.

[27] ECKEL Z C, ZHOU C, MARTIN J H, et al. Additive manufacturing of polymer-derived ceramics[J]. Science, 2016, 351(6268):58–62.

[28] BERTSCH A, ZISSI S, JEZEQUEL J Y, et al.Microstereophotolithography using a liquid crystal display as dynamic mask-generator[J]. Microsyst Technol, 1997, 3(2):42–47.

[29] ZHANG A P, QU X, SOMAN P, et al. Rapid fabrication of complex3D extracellular microenvironments by dynamic optical projection stereolithography[J]. Adv Mater, 2012, 24(31):4266–4270.

[30] SCHWENTENWEIN M, HOMA J. Additive manufacturing of dense alumina ceramics[J]. Int J Appl Ceram Tech, 2015, 12(1):1–7.

[31] LI S, DUAN W Y, ZHAO T, et al. The fabrication of SiBCN ceramic components from preceramic polymers by digital light processing(DLP)3D printing technology[J]. J Eur Ceram Soc, 2018, 38(14),4597–4603.

[32] WU E-S, STRICKLER J H, HARRELL W R, et al. Two-photon lithography for microelectronic application; proceedings of the Optical/Laser Microlithography V, F, 1992[C]//International Society for Optics and Photonics.

[33] SEET K K, MIZEIKIS V, MATSUO S, et al. Three-dimensional spiral-architecture photonic crystals obtained by direct laser writing[J].Adv Mater, 2010, 17(5):541–545.

[34] WU H, LI D, TANG Y, et al. Rapid fabrication of alumina-based ceramic cores for gas turbine blades by stereolithography and gelcasting[J]. J Mater Process Technol, 2009, 209(18-19):5886–5891.

[35] GROMADA M,?WIECA A, KOSTECKI M, et al. Ceramic cores for turbine blades via injection moulding[J]. J Mater Process Technol,2015, 220:107–112.

[36]梁启如,吴玉胜,刘孝福,等.航空发动机涡轮叶片铸造用陶瓷型芯研究进展[J].铸造, 2018(9):790–793.LIANG Qiru, WU Yusheng, LIU Xiaofu, et al. J Foundry(in Chinese),2018(9):790–793.

[37] BAE C-J. Integrally cored ceramic investment casting mold fabricated by ceramic stereolithography[D]. Detroit:University of Michigan,2008.

[38] BAE C-J, KIM D, HALLORAN J W. Mechanical and kinetic studies on the refractory fused silica of integrally cored ceramic mold fabricated by additive manufacturing[J]. J Eur Ceram Soc, 2019,39(2/3):618–623.

[39] BAE C-J, HALLORAN J W. Concentrated suspension-based additive manufacturing-viscosity, packing density, and segregation[J]. J Eur Ceram Soc, 2019, 39(14):4299–4306.

[40] AN G S, CHOI S W, KIM T G, et al. Amino-functionalization of colloidal alumina particles for enhancement of the infiltration behavior in a silica-based ceramic core[J]. Ceram Int, 2017, 43(1):157–161.

[41] LI H, LIU Y S, LIU Y S, et al. Evolution of the microstructure and mechanical properties of stereolithography formed alumina cores sintered in vacuum[J]. J Eur Ceram Soc, 2019, 40(14):4825–4836.

[42] LI H, LIU Y S, LIU Y S, et al. Effect of sintering temperature in argon atmosphere on microstructure and properties of 3D printed alumina ceramic cores[J]. J Adv Ceram, 2020(9):220–231.

[43] LI H, LIU Y S, LIU Y S, et al. Microstructure and properties of3D-printed alumina ceramics with different heating rates in vacuum debinding[J]. Rare Met, 2020, 39:577–588.

[44]闫法强.夹层结构天线罩材料的设计,制备及其宽频透波性能[D];武汉理工大学, 2007.YAN Faqiang. Design,fabrication and broadband characteristics of ceramic radome materials with sandwich structure(in Chinese dissertation).Wuhan:Wuhan University of Technology, 2007.

[45] HATZENBICHLER M, GEPPERT M, GRUBER S, et al. DLP-based light engines for additive manufacturing of ceramic parts; proceedings of the Emerging Digital Micromirror Device Based Systems and Applications IV, F, 2012[C]//International Society for Optics and Photonics.

[46] WANG M, XIE C, HE R, et al. Polymer-derived silicon nitride ceramics by digital light processing based additive manufacturing[J]. J Eur Ceram Soc, 2019, 102(9):5117–5126.

[47]张考.飞行器对雷达隐身性能计算与分析[M].北京:国防工业出版社, 1997.

[48] QIN F, BROSSEAU C. A review and analysis of microwave absorption in polymer composites filled with carbonaceous particles[J]. J Appl Phys, 2012, 111(6):4–227.

[49] YIN X, KONG L, ZHANG L, et al. Electromagnetic properties of Si–C–N based ceramics and composites[J]. Int Mater Rev, 2014, 59(6):326–355.

[50] FANG Z, LI C, SUN J, et al. The electromagnetic characteristics of carbon foams[J]. Carbon, 2007, 45(15):2873–2879.

[51]肖鹏,周伟.耐高温结构吸波碳纤维复合材料制备及性能研究[M].长沙:中南大学出版社, 2016.

[52] XIAO S S, MEI H, HAN D, CHENG L. 3D printed SiC nanowire reinforced composites for broadband electromagnetic absorption[J].Ceram Int, 2019, 45(9):11475–11483.

[53] MEI H, ZHAO X, ZHOU S, et al. 3D-printed oblique honeycomb Al2O3/SiCw structure for electromagnetic wave absorption[J]. Chem Eng J, 2019, 372:940–945.

[54] SANDERS G B, LARSON W E. Integration of in-situ resource utilization into lunar/mars exploration through field analogs[J]. Adv Space Res, 2011, 47(1):20–29.

[55] LIU M, TANG W Z, DUAN W Y, et al. Digital light processing of lunar regolith structures with high mechanical properties[J]. Ceram Int,2019, 45(5):5829–5836.

[56] DOU R, TANG W Z, WANG L, et al. Sintering of lunar regolith structures fabricated via digital light processing[J]. Ceram Int, 2019,45(14):17210–17215.

[57] DUAN W Y, LI S, WANG G, et al. Thermal conductivities and mechanical properties of AlN ceramics fabricated by three dimensional printing[J]. J Eur Ceram Soc, 2020, 40(10):3535–3540.

[58] PANG Y, CAO Y, CHU Y, et al. Additive manufacturing of batteries[J].Adv Funct Mater, 2020, 30(1):1906244.

[59] COHEN E, MENKIN S, LIFSHITS M, et al. Novel rechargeable3D-Microbatteries on 3D-printed-polymer substrates:Feasibility study[J]. Electrochim Acta, 2018, 265:690–701.

[60] LIU G, ZHAO Y, WU G, et al. Origami and 4D printing of elastomer-derived ceramic structures[J]. Sci Adv, 2018, 4(8):eaat0641.

基本信息:

DOI:10.14062/j.issn.0454-5648.20200722

中图分类号:TQ174.1

引用信息:

[1]顾玥,王功,段文艳,等.陶瓷光固化成型技术的应用与展望[J].硅酸盐学报,2021,49(05):867-877.DOI:10.14062/j.issn.0454-5648.20200722.

基金信息:

国家重点研发项目(2018YFB1106600); 国家自然科学基金(51802319,52005479); 中国科学院空间应用工程与技术中心所长基金(NO.CSU-QZKT-2019-04)

投稿时间:

2020-09-21

投稿日期(年):

2020

终审时间:

2021-01-19

终审日期(年):

2021

审稿周期(年):

1

发布时间:

2021-04-13

出版时间:

2021-04-13

网络发布时间:

2021-04-13

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