INORGANIC MATERIALS AND CERAMIC MATRIX COMPOSITES |
|
|
|
|
|
Research Progress of 3D Printing Thermal Insulation Materials |
GUI Yan, ZHAO Shuang, YANG Zichun*
|
College of Power Engineering, Naval University of Engineering, Wuhan 430032, China |
|
|
Abstract 3D printing technology enables the performance-oriented design and fabrication of unusual structures. Its use in thermal insulation can result in materials with a finer, more controllable, and customized structure and function. At the moment, 3D printing insulation material technology is still in its early stages, with technical bottlenecks such as printing materials, structural design, and manufacturing processes still to be overcome. This paper reviews the current state of 3D printing thermal insulation materials and provides a brief overview of the promising 3D printing process for the production of thermal insulation materials. The advantages and disadvantages of these printing processes, as well as the material requirements, are compared. Furthermore, the progress of research on 3D printing ceramics, foamed concrete, foamed plastics, and aerogel materials in the field of thermal insulation is thoroughly discussed. This paper concludes with the current technical challenges and the main future development directions.
|
Published: 25 April 2024
Online: 2024-04-28
|
|
Fund:National Natural Science Foundation of China (51802347) and the Natural Science Foundation of Hubei (2022CFB939). |
|
|
1 Tychanicz-Kwiecień M, Wilk J, Gil P. Journal of Thermophysics and Heat Transfer, 2019, 33(1), 271. 2 Tang G H, Bi C, Zhao Y, et al. Energy, 2015, 90, 701. 3 Shahrubudin N, Lee T C, Ramlan R. Procedia Manufacturing, 2019, 35, 1286. 4 Brinckmann S A, Patra N, Yao J, et al. Advanced Engineering Mate-rials, 2018, 20(11), 1800593. 5 Masuda H, Ohta Y, Kitayama M. Journal of Materials Science and Chemical Engineering, 2019, 7(2), 1. 6 Chen Z, Li J, Liu C, et al. Ceramics International, 2019, 45(9), 11549. 7 Quan H, Zhang T, Xu H, et al. Bioactive Materials, 2020, 5(1), 110. 8 Huang Z, Tsui G C P, Deng Y, et al. Nanotechnology Reviews, 2020, 9(1), 1118. 9 Rasaki S A, Xiong D, Xiong S, et al. Journal of Advanced Ceramics, 2021, 10(3), 442. 10 Feng J, Su B L, Xia H, et al. Chemical Society Reviews, 2021, 50(6), 3842. 11 Ma F, Zhang H, Hon K K B, et al. Journal of Cleaner Production, 2018, 199, 529. 12 Yang M C, Luo H, Song J J, et al. Journal of Chongqing University of Technology( Natural Science), 2022, 36(3), 112(in Chinese). 杨美晨, 罗豪, 宋晶晶, 等. 重庆理工大学学报(自然科学), 2022, 36(3), 112. 13 Zhu W, Yan C, Shi Y, et al. Materials & Design, 2015, 82, 37. 14 Liu S S, Li M, Wu J M, et al. Ceramics International, 2020, 46(4), 4240. 15 Sun X, Zeng T, Zhou Y, et al. Ceramics International, 2020, 46(14), 22797. 16 Stansbury J W, Idacavage M J. Dental Materials, 2016, 32(1), 54. 17 Gorny B, Niendorf T, Lackmann J, et al. Materials Science and Engineering: A, 2011, 528(27), 7962. 18 Lee S T, Park C B. Foam extrusion: principles and practice, CRC Press, UK, 2014, pp. 39. 19 Rafiee M, Farahani R D, Therriault D. Advanced Science, 2020, 7(12), 1902307. 20 Chatté G, Comtet J, Niguès A, et al. Soft Matter, 2018, 14(6), 879. 21 Wang L, Chen S, Shu T, et al. ChemSusChem, 2020, 13(6), 1330. 22 Tian Z, Yang Y, Wang Y, et al. Materials Letters, 2019, 236, 144. 23 Chen H, Wang X, Xue F, et al. Journal of the European Ceramic Society, 2018, 38(16), 5294. 24 Komissarenko D A, Sokolov P S, Evstigneeva A D, et al. Journal of the European Ceramic Society, 2021, 41(1), 684. 25 Shuai X, Zeng Y, Li P, et al. Journal of Materials Science, 2020, 55(16), 6771. 26 Schlacher J, Hofer A K, Geier S, et al. Open Ceramics, 2021, 5, 100082. 27 Chen A N, Gao F, Li M, et al. Ceramics International, 2019, 45(12), 15538. 28 He C, Ma C, Li X, et al. Additive Manufacturing, 2021, 46, 102111. 29 Ohji T, Fukushima M. International Materials Reviews, 2012, 57(2), 115. 30 Yang G, Guan R, Zhen H, et al. ACS Applied Materials & Interfaces, 2022, 14(8), 10998. 31 Raj A, Sathyan D, Mini K M. Construction and Building Materials, 2019, 221, 787. 32 Cho S, Kruger J, Rooyen A, et al. Rheology and Processing of Construction Materials, 2019, 23, 373. 33 Falliano D, Sciarrone A, Domenico D D, et al. In: 7th International Conference on Euro Asia Civil Engineering Forum. Stuttgart, 2019, pp. 012018. 34 Markin V, Krause M, Otto J, et al. Journal of Building Engineering, 2021, 43, 102870. 35 Zhang Y, Zhang Y, She W, et al. Construction and Building Materials, 2019, 201, 278. 36 Salet T A M, Ahmed Z Y, Bos F P, et al. Virtual and Physical Prototyping, 2018, 13(3), 222. 37 Naboni R, Breseghello L, Kunic A. Additive Manufacturing, 2019, 27, 305. 38 Suh K W. Kirk-othmer encyclopedia of chemical technology, John Wiley & Sons Inc, USA, 2000, pp.1. 39 Furet B, Poullain P, Garnier S. Additive Manufacturing, 2019, 28, 58. 40 Molodin V V, Vasenkov E V, Timin P L. Materials Science Forum, 2020, 992, 194. 41 Bahar A, Belhabib S, Guessasma S, et al. Energies, 2022, 15(10), 3686. 42 Bedarf P, Dutto A, Zanini M, et al. Automation in Construction, 2021, 130, 103861. 43 Shi C X, Zhang S C, Jiang Y G, et al. Rale Metal Materials and Engineering, 2016, 45(S1), 210(in Chinese). 师春晓, 张寿春, 姜勇刚, 等. 稀有金属材料与工程, 2016, 45(S1), 210. 44 Zhao S, Siqueira G, Drdova S, et al. Nature, 2020, 584(7821), 387. 45 Wang L, Feng J, Luo Y, et al. ACS Applied Materials & Interfaces, 2021, 13(34), 40964. 46 Maleki H, Montes S, Hayati-Roodbari N, et al. ACS Applied Materials & Interfaces, 2018, 10(26), 22718. 47 Farrell E S, Ganonyan N, Cooperstein I, et al. Applied Materials Today, 2021, 24, 101083. 48 Shah M A, Lee D G, Lee B Y, et al. IEEE Access, 2021, 9, 140079. 49 Koo J, Kim J W, Kim M, et al. International Journal of Precision Engineering and Manufacturing-Green Technology, 2021, 8(2), 445. 50 Hanzawa Y, Hatori H, Yoshizawa N, et al. Carbon, 2002, 40(4), 575. 51 Zhang Q, Zhang F, Medarametla S P, et al. Small, 2016, 12(13), 1702. 52 Jiang Y, Xu Z, Huang T, et al. Advanced Functional Materials, 2018, 28(16), 1707024. 53 Hensleigh R M, Cui H, Oakdale J S, et al. Materials Horizons, 2018, 5(6), 1035. 54 Hu X, Xu W, Zhou L, et al. Advanced Materials, 2017, 29(5), 1604031. 55 Jian H, Wang Y, Li W, et al. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2021, 629, 127440. 56 Masud A, Zhou C, Aich N. Environmental Science: Nano, 2021, 8(2), 399. 57 Guo B, Liang G, Yu S, et al. Energy Storage Materials, 2021, 39, 146. 58 Guo H, Hua T, Qin J, et al. Advanced Materials Technologies, 2022, 7(9), 2101699. 59 Wang F, Yang Z, Hu X, et al. Smart Materials and Structures, 2022, 31(4), 045002. 60 Guo P, Su L, Peng K, et al. ACS nano, 2022, 16(4), 6625. 61 Tong Z, Yan B, Zhang B, et al. Ceramics International, 2022, 48(4), 5468. 62 Ren S, Liu K, Wang K, et al. Journal of the European Ceramic Society, 2021, 41(9), 4710. 63 Niu T, Zhou B, Zhang Z, et al. Nanomaterials, 2020, 10(12), 2527. 64 Wang W, Zhao Y, Yan W, et al. Journal of Porous Materials, 2021, 28(3), 703. 65 Sroog C E. Progress in Polymer Science, 1991, 16(4), 561. 66 Krall E A, Mettry M, Fears T M. Formulation of PI aerogels with 3-D printing applications. Lawrence Livermore National Lab, US, 2022. 67 Feng C, Yu S S. Polymers, 2021, 13(21), 3614. 68 Yang J, Wang H, Zhou B, et al. Langmuir, 2021, 37(6), 2129. 69 Ma G, Salman N M, Wang L, et al. Construction and Building Mate-rials, 2020, 244, 118305. 70 Shahzad Q, Wang X, Wang W, et al. Construction and Building Mate-rials, 2020, 259, 119854. 71 Ma G, Ruhan A, Xie P, et al. Construction and Building Materials, 2022, 323, 126551. 72 Kwalramani M A, Syed Z I. International Journal of Integrated Enginee-ring, 2018, 10(2), 98. 73 Novak J, Kohoutkova A. Fire Safety Journal, 2018, 95, 66. 74 Joo P, Yao Y, Teo N, et al. Additive Manufacturing, 2021, 46, 102059. |
|
|
|