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Effect of Thermally Expanded Graphite on Periclase-Carbon Concrete Rheological and Physicochemical Properties

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Refractories and Industrial Ceramics Aims and scope

Information is provided about thermally expanded graphite (TEG) properties and production by oxidation modification, excluding graphite matrix destruction. The possibility of introducing TEG into the structure of periclase concrete as a carbonaceous component is studied. Physicochemical properties of periclase-carbon concrete are determined using TEG, as well as slag resistance of the samples obtained.

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References

  1. V. A. Kononov, N. V. Kononov, S. N. Shkrobov, and O. A. Solomakhin, “Improvement in the steel-pouring ladle lining life in open-hearth production of ZAO metallurgical plant Petrostal’,” Refract. Ind. Ceram., 50(2), 89 – 93 (2009).

    Article  CAS  Google Scholar 

  2. V. S. Starikov, M. V. Temlyantsev, and V. V. Starikov, Refractories and Linings in Ladle Metallurgy: High School Aid [in Russian] MISiS, Moscow (2003).

  3. S. Mitsuo “Improvement of steel ladle refractories at Kashima Steel Works,” SEAISI Quarterly, No. 4, 29 – 36 (2003).

    Google Scholar 

  4. M. Rigaud, S. Palco, and N. Znou, “Alumina and magnesiabased castables containing graphite: comparison,” Iron & Steelmaker, October, 45 – 51 (2002).

  5. Yasumasa Fukushima, Yoko Miyamoto, Tadakimi Kiyoda, et al., “Properties of castables with carbon-containing aggregate,” Dzairyo to purosesu, No. 20, 168 (2007).

    Google Scholar 

  6. T. M. Souza, A. P. Luz, T. Santos, et al., “Phosphate chemical binder as antihydration additive for Al2O3–MgO refractory castables,” Ceram. Int., No. 40, 1503 – 1512 (2014).

  7. I. D. Kashcheev and K. K. Strelov, Testing and Monitoring Refractories [in Russian], Intermet Inzhiniring, Moscow (2003).

    Google Scholar 

  8. H. Peng and B. Myhre, “New insight on developing MgO–SiO2–H2O gel bonded MgO castables,” Refractories Worldforum, No. 6, 83 – 88 (2014).

    Google Scholar 

  9. K. K. Strelov, Structure and Properties of Refractories [in Russian] Metallurgiya, Moscow (1982).

  10. I. D. Kashcheev, K. G. Zemlyanoi, and A. R. Khafizova, “The determination of dynamic modulus of refractory elasticity,” Cite as: AIP Conference Proceedings 2456, 020067 (2022), DOI: https://doi.org/10.1063/5.0074722.

    Article  Google Scholar 

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Correspondence to K. G. Zemlyanoi.

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Translated from Novye Ogneupory, No. 8, pp. 34 – 37, August, 2023

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Khafizova, A.R., Kashcheev, I.D., Zemlyanoi, K.G. et al. Effect of Thermally Expanded Graphite on Periclase-Carbon Concrete Rheological and Physicochemical Properties. Refract Ind Ceram 64, 425–428 (2023). https://doi.org/10.1007/s11148-024-00864-y

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  • DOI: https://doi.org/10.1007/s11148-024-00864-y

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