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Mendeleev Communications, 2015, Volume 25, Issue 5, Pages 386–388
DOI: https://doi.org/10.1016/j.mencom.2015.09.025
(Mi mendc2419)
 

This article is cited in 22 scientific papers (total in 22 papers)

Communications

Effect of deferrization on continuous basalt fiber properties

M. S. Manylov, S. I. Gutnikov, Ya. V. Lipatov, A. P. Malakho, B. I. Lazoryak

Department of Chemistry, M.V. Lomonosov Moscow State University, Moscow, Russian Federation
Abstract: Deferrized glass was produced by the reduction smelting of basalt batch in a graphite crucible at a high temperature. The deferrized continuous fiber has higher glass transition and drawing temperatures, lower crystallization ability and enhanced thermal stability in comparison with those of the original basalt fiber.
Document Type: Article
Language: English


Citation: M. S. Manylov, S. I. Gutnikov, Ya. V. Lipatov, A. P. Malakho, B. I. Lazoryak, “Effect of deferrization on continuous basalt fiber properties”, Mendeleev Commun., 25:5 (2015), 386–388
Linking options:
  • https://www.mathnet.ru/eng/mendc2419
  • https://www.mathnet.ru/eng/mendc/v25/i5/p386
  • This publication is cited in the following 22 articles:
    1. Ling Zhang, Ning Lin, Lu Yang, “Machine Learning Approaches for Predicting the Elastic Modulus of Basalt Fibers Combined with SHapley Additive exPlanations Analysis”, Minerals, 15:4 (2025), 387  crossref
    2. Yixuan Ma, Zeshi Guo, Jimin Fu, Xiongyu Xi, Pengcheng Ma, Xungai Wang, “From Rock to Fiber: The Mechanical Properties of Continuous Rock Fibers”, Nat Resour Res, 2025  crossref
    3. Xiaomeng Wang, Qianhua Kan, Michal Petru, Guozheng Kang, “Study on the composition-property relationships of basalt fibers based on symbolic regression and physics-informed neural network”, Composites Part A: Applied Science and Manufacturing, 185 (2024), 108324  crossref
    4. Ying Wei, Ziwei Chen, Yongqi Sun, Chi Sun Poon, “Unraveling the atomic-scale mechanism of interfacial alkali ion close packing in nano glassy fibers driven by CO2-mediated attraction”, Nanoscale, 16:37 (2024), 17338  crossref
    5. Chen Zisheng, “EFFECT OF THE IRON OXIDE CONTENT ON THE STRUCTURE AND ALKALI RESISTANCE OF GLASS FIBRES PREPARED FROM RED MUD”, Ceramics - Silikaty, 2023, 198  crossref
    6. Ling Zhang, Lu Yang, Chuan Lai, Dong Fu, Jun Lin, Haochun Hou, Yan Zhao, Zeliang Zhang, Caiyun Bu, Xinran Zheng, “Prediction of tensile strength of basalt continuous fiber from chemical composition using machine learning models”, Polymer Composites, 44:10 (2023), 6634  crossref
    7. Adrian Nowak, Malgorzata Lubas, Jaroslaw Jan Jasinski, Magdalena Szumera, Renata Caban, Jozef Iwaszko, Kamila Koza, “Effect of Dolomite Addition on the Structure and Properties of Multicomponent Amphibolite Glasses”, Materials, 15:14 (2022), 4870  crossref
    8. Meirong Chen, Jianxun Liu, Zhishen Wu, “Effect of Fe2O3 Concentration on the Properties of Basalt Glasses”, Journal of Natural Fibers, 19:2 (2022), 575  crossref
    9. Jincai Zhang, Xing Xu, Fangqin Cheng, Seeram Ramakrishna, “Study Progress on Inorganic Fibers from Industry Solid Wastes and the Key Factors Determining Their Characteristics”, Materials, 15:20 (2022), 7256  crossref
    10. Jianxun Liu, Meirong Chen, Jianping Yang, Zhishen Wu, “Study on Mechanical Properties of Basalt Fibers Superior to E-glass Fibers”, Journal of Natural Fibers, 19:3 (2022), 882  crossref
    11. S. I. Gutnikov, S. S. Popov, V. A. Efremov, Peng-Cheng Ma, B. I. Lazoryak, “Correlation of Phase Composition, Structure, and Mechanical Properties of Natural Basalt Continuous Fibers”, Nat Resour Res, 30:2 (2021), 1105  crossref
    12. Birgir Johannesson, Thorsteinn I. Sigfusson, Hjalti Franzson, “Suitability of Icelandic basalt for production of continuous fibres”, Applied Earth Science, 128:3 (2019), 73  crossref
    13. Martin Cerny, “POTENTIAL OF GLASS, BASALT OR CARBON FIBRES FOR REINFORCEMENT OF PARTIALLY PYROLYSED COMPOSITES WITH IMPROVED TEMPERATURE AND FIRE RESISTANCE”, Ceramics - Silikaty, 2019, 115  crossref
    14. Dan Xing, Xiong-Yu Xi, Peng-Cheng Ma, “Factors governing the tensile strength of basalt fibre”, Composites Part A: Applied Science and Manufacturing, 119 (2019), 127  crossref
    15. Martina Halasová, Ivo Kuběna, Pavla Roupcová, Martin Černý, Adam Strachota, Zdeněk Chlup, “Iron precipitation in basalt fibres embedded in partially pyrolysed methylsiloxane matrix”, Composites Part A: Applied Science and Manufacturing, 123 (2019), 286  crossref
    16. Garima Mittal, Katarina Nešović, Kyong Yop Rhee, Vesna Mišković-Stanković, “Investigation of corrosion behaviour of carbon nanotubes coated basalt fabric as a reinforcement material”, Composites Part B: Engineering, 178 (2019), 107493  crossref
    17. Garima Mittal, Kyong Y. Rhee, “Chemical vapor deposition-based grafting of CNTs onto basalt fabric and their reinforcement in epoxy-based composites”, Composites Science and Technology, 165 (2018), 84  crossref
    18. Felix Bauer, Manuel Kempf, Frank Weiland, Peter Middendorf, “Structure-property relationships of basalt fibers for high performance applications”, Composites Part B: Engineering, 145 (2018), 121  crossref
    19. Zhibin Ma, Xiuqing Tian, Hongqiang Liao, Yanxia Guo, Fangqin Cheng, “Improvement of fly ash fusion characteristics by adding metallurgical slag at high temperature for production of continuous fiber”, Journal of Cleaner Production, 171 (2018), 464  crossref
    20. Garima Mittal, Kyong Y. Rhee, “Hierarchical structures of CNT@basalt fabric for tribological and electrical applications: Impact of growth temperature and time during synthesis”, Composites Part A: Applied Science and Manufacturing, 115 (2018), 8  crossref
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
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