预制型无机石材的研究进展与应用现状
Research Progress and Application of Prefabricated Inorganic Stone
DOI: 10.12677/MS.2023.1312119, PDF,    科研立项经费支持
作者: 雷 翅, 黄 晓, 徐海军, 胡贺松:广州市建筑科学研究院集团有限公司,广东 广州;广东原创新材料科技有限公司,广东 广州;唐孟雄:广州建筑股份有限公司,广东 广州;广州市建筑集团有限公司,广东 广州
关键词: 无机板材矿物掺合料性能微观结构 Inorganic Plates Mineral Admixtures Performance Microstructure
摘要: 预制型无机石材是一种新型无机人造石,它综合利用废弃资源制成,具有高效资源利用率、节能低碳环保的特点。本文从预制型无机石材的研究现状、形成机理、改性技术及存在问题等方面进行综述。
Abstract: Prefabricated inorganic stone is a new type of inorganic artificial stone, which is made by the comprehensive use of waste resources, with high-efficiency resource utilisation, energy saving and low-carbon environmental protection. This paper reviews the research status, formation mechanism, modification technology and problems of prefabricated inorganic stone.
文章引用:雷翅, 黄晓, 徐海军, 胡贺松, 唐孟雄. 预制型无机石材的研究进展与应用现状[J]. 材料科学, 2023, 13(12): 1065-1072. https://doi.org/10.12677/MS.2023.1312119

参考文献

[1] Khedr, M.S.A., Ali, M.F., et al. (2020) Archaeometric Study of the Historic Terrazzo Pavement of Prince Mohamed Ali Museum, Cairo, Egypt. Pollack Periodica, 15, 221-232. [Google Scholar] [CrossRef
[2] 赵宝军, 吴琛, 曾正祥, 等. 新型无机人造石的制备及常见问题解决措施[J]. 新型建筑材料, 2021, 48(9): 146-148+155.
[3] Ogirigbo, O.R. and Black, L. (2016) Influence of Slag Composition and Temperature on the Hydra-tion and Microstructure of Slag Blended Cement. Construction and Building Materials, 126, 496-507. [Google Scholar] [CrossRef
[4] Duraman, S.B. and Richardson, I.G. (2020) Microstructure & Properties of Steel-Reinforced Concrete Incorporating Portland Cement and Ground Granulated Blast Furnace Slag Hydrated at 20˚C. Cement and Concrete Research, 137, Article ID: 106193. [Google Scholar] [CrossRef
[5] Detwiler, R.J., Fapohunda, C.A. and Natale, J. (1994) Use of Supplementary Cementing Materials to Increase the Resistance to Chloride ion Penetration of Concrete Cured at Ele-vated Temperatures. ACI Materials Journal, 91, 63-66. [Google Scholar] [CrossRef
[6] 陈拴发, 周维科. 掺矿粉水泥的水化机理[J]. 西安建筑科技大学学报, 2000, 32(6): 166-169.
[7] 杨荣俊, 隗功辉, 张春林, 等. 掺矿粉混凝土耐久性研究[J]. 混凝土, 2004(11): 38-41.
[8] 曹巍. 矿粉的胶凝活性及其对混凝土氯离子渗透性的影响[D]: [硕士学位论文]. 合肥: 安徽建筑大学, 2016.
[9] 锡振东. 掺矿渣微粉的高性能混凝土耐久性试验及其力学性能的研究[D]: [硕士学位论文]. 青岛: 青岛理工大学, 2016.
[10] 郭丽萍, 雷东移, 陈波, 吴樾. 硅粉表面改性及其分散效果评价[J]. 表面技术, 2018, 47(7): 146-151.
[11] Adil, G., Kevern, J.T. and Mann, D. (2020) Influence of Silica Fume on Mechanical and Durabil-ity of Pervious Concrete. Construction & Building Materials, 247, Article ID: 148853. [Google Scholar] [CrossRef
[12] Das, S.K. (2020) Fresh, Strength and Microstructure Properties of Geopolymer Concrete Incorporating Lime and Silica Fume as Replacement of Fly Ash. Journal of Building Engineering, 32, Article ID: 101780. [Google Scholar] [CrossRef
[13] Caliskan, S. (2003) Aggregate/Mortar Interface: Influence of Silica Fume at the Micro- and Macro-Level. Cement and Concrete Composites, 25, 557-564. [Google Scholar] [CrossRef
[14] 陈超, 夏扬, 石莹, 连亚明. 微硅粉的微观结构分析[J]. 商品混凝土, 2016(7): 39-42.
[15] 李瑶, 刘润清, 齐雯涵, 等. 硅灰粒径分布对混凝土微观结构及其低温抗压强度的影响[J]. 中国粉体技术, 2019, 25(6): 75-80.
[16] 谢祥雄, 王英, 陈健祺. 偏高岭土-粉煤灰基地聚物轻质混凝土试验及性能研究[J]. 新型建筑材料, 2023, 50(10): 27-29, 35.
[17] Tazawa, E. and Miyazawa, S. (1995) Influ-ence of Cement and Admixture on Autogeneous Shrinkage of Cement Paste. Cement and Concrete Research, 25, 281-287. [Google Scholar] [CrossRef
[18] Abdelmelek, N., Alimrani, N.S. and Krelias, N. (2021) Effect of Elevated Temperatures on Microstructure of High Strength Concrete Based-Metakaolin. Journal of King Saud University—Engineering Sciences, 8, 3639. [Google Scholar] [CrossRef
[19] 刘红彬, 鞠杨, 彭瑞东, 等. 低水胶比偏高岭土混凝土的强度和细观结构的分形特征[J]. 煤炭学报, 2015, 40(8): 1820-1826.
[20] 李闯, 范颖芳, 李秋超. 基于电化学阻抗谱的偏高岭土水泥性能研究[J]. 建筑材料学报, 2020, 23(8): 755-762.
[21] Mohammadi, M., Moghtadaei, R.M. and Samani, N.A. (2014) Influence of Silica Fume and Metakaolin with Two Different Types of Interfacial Adhesives on the Bond Strength of Repaired Concrete. Construction and Building Materials. 51, 141-150. [Google Scholar] [CrossRef
[22] Lemonis, N., Tsakiridis, P.E., Katsiotis, N.S., et al. (2015) Hydration Study of Ternary Blended Cements Containing Ferronickel Slag and Natural Pozzolan. Construction and Building Materials, 81, 130-139. [Google Scholar] [CrossRef
[23] 贾艳涛. 矿渣和粉煤灰水泥基材料的水化机理研究[D]: [硕士学位论文]. 南京: 东南大学, 2005.
[24] 郑玉飞. 低水胶比复合胶凝材料的水化程度及孔结构研究[D]: [硕士学位论文]. 北京: 北京交通大学, 2018.
[25] 王秀娟, 陆文雄, 邵霞, 等. 高炉矿渣用作高性能混凝土掺合料的研究进展[J]. 上海大学学报, 2004, 10(2): 170-175.
[26] Skalny, I. (1991) Relationships between Microstructure and CRCP and Shrinkage of Cement Paste. In: Materials Science of Concrete II, The American Ceramic Society, Co-lumbus, 111-147.
[27] 喻乐华, 欧辉. 量化分析珍珠岩粉在水泥基材料中的火山灰效应[J]. 哈尔滨工业大学学报, 2003, 35(6): 739-742.
[28] 熊春杨, 何鑫, 范晓玲, 等. 无机人造石材的制备研究[J]. 江西建材, 2022(9): 56-58.
[29] Szostak, B. and Golewski, G.L. (2021) Rheology of Cement Pastes with Siliceous Fly Ash and the CSH Nano-Admixture. Materials, 14, Article No. 3640. [Google Scholar] [CrossRef] [PubMed]
[30] Papayianni, I., Stefanidou, M. and Pachta, V. (2015) Survey of Repaired and Artificial Stones of the Archaeological Site of Pella Five Years after Application. Springer International Publishing, Berlin. [Google Scholar] [CrossRef
[31] 范晓玲, 熊春杨, 何鑫, 等. 高性能水泥基人造石板材的性能优化研究[J]. 石材, 2022(12): 9-11.
[32] 伍政华, 贺拾, 叶明, 等. 高性能无机人造石真空挤出成型工艺[J]. 石材, 2021(2): 7-11.
[33] 张国明, 李犇, 郑致远. 改性无机人造石材的力学性能研究[J]. 佛山陶瓷, 2021, 31(6): 16-20.
[34] 王振波, 张君, 罗孙一鸣. 喷水法成型纤维网增强水泥基板材抗弯性能[J]. 清华大学学报(自然科学版), 2014, 54(5): 551-555.