Skip to main content
Log in

Highly Concentrated Ceramic Binding Suspensions (HCBS) and Ceramic Castables. Stages in Research and Development

  • Published:
Refractories and Industrial Ceramics Aims and scope

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

REFERENCES

  1. Yu. E. Pivinskii, “Fundamentals of the technology of ceramic castables, ” Ogneupory, No. 2, 34–42 (1978).

    Google Scholar 

  2. P. P. Budnikov and Yu. E. Pivinskii, Dopovidi AN URSR, Ser. B, No. 5, 449–453 (1968).

    Google Scholar 

  3. Yu. E. Pivinskii and F. T. Gorobets, “Specific features in the slip casting of a quartz glass-based ceramic, ” Steklo Keram., No. 5, 19–22 (1968).

    Google Scholar 

  4. Yu. E. Pivinskii, “A way toward increasing the density of placement of powder particles in the shaping of a ceramic perform, ” Steklo Keram., No. 9, 25–29 (1969).

    Google Scholar 

  5. Yu. E. Pivinskii, “New refractory castables and binding systems— guidelines for development, fabrication and application in the 21th century, ” Ogneup. Tekh. Keram., No. 2, 4–13; No. 3, 15 – 24; No. 4, 12 – 18 (1998).

    Google Scholar 

  6. Yu. E. Pivinskii, “Ceramic castables — final stage in the evolution of low-cement refractory castables, Part 1, ” Ogneup. Tekh. Keram., No. 1, 11–15 (2000).

    Google Scholar 

  7. Yu. E. Pivinskii, Unshaped Refractories. Book 1. Basics of the Technology [in Russian], Teploénergetik, Moscow (2003).

    Google Scholar 

  8. S. Banerjee, Monolithic Refractories. A Comprehensive Handbook, World Scientific, Singapore – New Jersy – London – Hong Kong (1998).

  9. Yu. E. Pivinskii and F. T. Gorobets, “High-density ceramics, ” Ogneupory, No. 6, 45–51 (1968).

    Google Scholar 

  10. A. G. Romashin and Yu. E. Pivinskii, “Properties of a quartz glass-based ceramic, ” Ogneupory, No. 9, 58–63 (1968).

    Google Scholar 

  11. Yu. E. Pivinskii and A. G. Romashin, Quartz Ceramics [in Russian], Metallurgiya, Moscow (1974).

    Google Scholar 

  12. P. P. Budnikov and Yu. E. Pivinskii, “Quartz ceramics, ” Usp. Khim., 35(3), 511–542 (1967).

    Google Scholar 

  13. M. Yu. Rusin, “The fairings: a way from requirements specification to export articles, ” Nauka Proizvodstvu, No. 9(22), 14–16 (1999).

    Google Scholar 

  14. M. Yu. Rusin, “How “Tekhnologiya” was teaching stones to fly, ” Zh. Gorod (City of Obninsk), No. 2 (A special issue devoted to the 40th anniversary of the Tekhnologiya Research and Production Association), 20–21 (1999).

    Google Scholar 

  15. Yu. E. Pivinskii, “From quartz ceramics towards ceramic binders and ceramic castables, ” in: Proceedings of a Festive Research Conference Devoted to the 85th Anniversary of A. M. Prokhorov's Birth [in Russian], St. Petersburg State Technological Institute, St. Petersburg (2001), pp. 148–153.

    Google Scholar 

  16. E. I. Suzdal'tsev, “Radio transparent heat-resistant materials for the 21st century, ” Ogneup. Tekh. Keram., No. 3, 42–50 (2002).

    Google Scholar 

  17. I. E. Nishanova, R. Ya. Popil'skii, and I. Ya. Guzman, “Fabrication of components from quartz glass using methods of ceramics technology, ” in: High-Temperature Materials. Collection of Research Papers [in Russian], Metallurgiya, Moscow (1966), pp. 82–91.

    Google Scholar 

  18. Yu. E. Pivinskii, “Problems in the technology of structural ceramics, ” in: Chemistry and Technology of Silicate and High-Melting Nonmetallic Materials [in Russian], Nauka, Leningrad (1989), pp. 109–125.

    Google Scholar 

  19. Yu. E. Pivinskii, Ceramic Binders and Ceramic Castables [in Russian], Metallurgiya, Moscow (1990).

    Google Scholar 

  20. D. Van Garsel, J. O. Laurich, and A. Boor, “Synthetic raw materials — a clue to advanced technologies in the production of refractories: UPI – UGTU research workshops, ” UGTU Journal “Physical Chemistry and Technology of Oxide-Silicate Materials, ” No. 1 [in Russian], UGTU, Ekaterinburg (2000), pp. 13–26.

    Google Scholar 

  21. Yu. E. Pivinskii, N. T. Kotova, and F. S. Kaplan, “Highly concentrated suspensions of opaque quartz glass and materials, ” Ogneupory, No. 6, 14–19 (1986).

    Google Scholar 

  22. Yu. E. Pivinskii, F. S. Kaplan, S. G. Semikova, et al., “Nonfired quartz nozzles for steel ladles, ” Ogneupory, No. 1, 39–43 (1989).

    Google Scholar 

  23. Yu. E. Pivinskii, T. I. Litovskaya, O. N. Samarina, et al., “Development and service of nonfired quartz refractories, ” Ogneupory, No. 9, 40–44 (1989).

    Google Scholar 

  24. E. V. Rozhkov, Yu. E. Pivinskii, V. I. Khabarova, et al., “Development and service of submersible quartz nozzles of high endurance, ” Ogneup. Tekh. Keram., No. 12, 22–25 (1997).

    Google Scholar 

  25. E. M. Grishpun, Yu. E. Pivinskii, and E. V. Rozhkov, “Production technology and service of quartz refractory materials for steel ladles. Part 1. Technological aspects, ” Ogneup. Tekh. Keram., No. 4, 42–45 (1999).

    Google Scholar 

  26. E. M. Grishpun, Yu. E. Pivinskii, and E. V. Rozhkov, “Production technology and service of quartz refractory materials for steel ladles. Part 2. Properties and specific service conditions, ” Ogneup. Tekh. Keram., No. 6, 42–46 (1999).

    Google Scholar 

  27. E. M. Grishpun and Yu. E. Pivinskii, “Highly concentrated ceramic binding suspensions (HCBS) and ceramic castables — a breakthrough in the refractory technology of the 21st century, ” Novye Ogneupory, No. 2, 28–33 (2002).

    Google Scholar 

  28. E. M. Grishpun, Yu. E. Pivinskii, E. V. Rozhkov, and M. Z. Naginskii, “RF Patent No. 2109714, A method for fabrication of quartz nozzles for steel ladles, ” Izobreteniya, No. 12 (1998).

  29. Yu. E. Pivinskii, E. M. Grishpun, E. V. Rozhkov, and M. Z. Naginskii, “RF Patent No. 2109713, A method for fabrication of quartz nozzles for steel ladles, ” Izobreteniya, No. 12 (1998).

  30. Yu. E. Pivinskii, E. M. Grishpun, and E. V. Rozhkov, “RF Patent No. 2153481, A method for fabrication of ceramic castable quartz refractories for ladle nozzles, ” Izobreteniya. Zayavki. Patenty, No. 21 (2000).

  31. N. M. Frolovskii, M. G. Chigrinov, Yu. E. Pivinskii, et al., “Service of graphite-alumina and dense silica insert nonswirl nozzles in the continuous casting technology, ” Ogneupory, No. 10, 19–23 (1971).

    Google Scholar 

  32. K. A. Krasotin, D. B. Min'kov, T. S. Makarova, et al., “Fabrication of quartz nozzles, ” Ogneupory, No. 11, 7–11 (1973).

    Google Scholar 

  33. Yu. E. Pivinskii, V. A. Bevz, and P. L. Mityakin, “Basic methods for preparation of highly concentrated quartz sand suspensions, ” Ogneupory, No. 3, 45–51 (1979).

    Google Scholar 

  34. V. A. Bevz and Yu. E. Pivinskii, “Binding suspensions for dinas-based ceramic castables, ” Ogneupory, No. 9, 46–51 (1981).

    Google Scholar 

  35. Yu. E. Pivinskii and V. A. Bevz, “Preparation, structure, and properties of ceramic materials strengthened by chemically activated contact bonds, ” in: Real Structure of Inorganic Temperature-and Heat-Resistant Materials. Abstracts [in Russian], Sverdlovsk (1979), pp. 69–71.

  36. Yu. E. Pivinskii, V. A. Bevz, and R. Ya. Popil'skii, “Preparation of nonfired ceramic materials strengthened by chemically activated contact bonds, ” Ogneupory, No.4, 50–56 (1981).

    Google Scholar 

  37. Yu. E. Pivinskii, “A specific behavior of nonfired ceramic materials strengthened by chemically activated contact bonds, ” Ogneupory, No. 9, 13–17 (1983).

    Google Scholar 

  38. S. M. Itkin and V. V. Vakulin, “A study into the mechanism of strengthening of a quartz ceramic under hydrothermal conditions, ” Ogneupory, No. 12, 7–11 (1993).

    Google Scholar 

  39. S. M. Itkin and V. V. Vakulin, “Optimizing the hydrothemal strengthening regime for cast quartz glass, ” Ogneupory, No. 12, 7–9 (1994).

    Google Scholar 

  40. Yu. E. Pivinskii, “Stabilization and aging of ceramic suspensions”, Ogneupory, No. 8, 15–22 (1983).

    Google Scholar 

  41. Yu. E. Pivinskii and M. A. Trubitsyn, “Highly concentrated ceramic binding suspensions. Dispersion medium, stabilization, and binding properties, ” Ogneupory, No. 12, 9–14 (1987).

    Google Scholar 

  42. Yu. E. Pivinskii, “Phase relations, fabricability, and classification of ceramic and conventional binding systems, ” Ogneupory, No. 6, 49–60 (1982).

    Google Scholar 

  43. Yu. E. Pivinskii, “Highly concentrated ceramic binding suspensions. Staring materials, properties and classification, ” Ogneupory, No. 4, 8–20 (1987).

    Google Scholar 

  44. Yu. E. Pivinskii and V. A. Bevz, “Preparation of aqueous zircon suspensions: rheological, processing and binding properties, ” Ogneupory, No. 8, 38–43 (1979).

    Google Scholar 

  45. Yu. E. Pivinskii and P. L. Mityakin, “Rheological and binding properties of high-alumina suspensions, ” Ogneupory, No. 5, 48–52 (1981).

    Google Scholar 

  46. Yu. E. Pivinskii and T. F. Baranova, “Preparation of corundum-zircon suspensions: rheological and binding properties, ” Ogneupory, No. 2, 20–25 (1984).

    Google Scholar 

  47. Yu. E. Pivinskii, “Hydration, rheological, and binding properties of aqueous periclase suspensions, ” Ogneupory, No. 12, 12–18 (1984).

    Google Scholar 

  48. A. A. Dabizha and Yu. E. Pivinskii, “Preparation and properties of high-porosity zircon materials, ” Ogneupory, No. 7, 20–25 (1984).

    Google Scholar 

  49. Yu. E. Pivinskii, V. N. Nikitin, and T. M. Khronovskaya, “Vibration-cast granular periclase refractories and their properties, ” Ogneupory, No. 8, 9–15 (1986).

    Google Scholar 

  50. P. L. Mityakin, A. K. Purgin, and V. D. Koksharov, “Fabricability of a silica-based ceramic castable, ” Ogneupory, No. 8, 53–57 (1981).

    Google Scholar 

  51. Yu. E. Pivinskii, V. V. Moiseev, A. A. Dabizha, and L. P. Ivanova, “Corundum castings: techniques for suspension preparation, slip molding, and sintering, ” Ogneupory, No. 2, 12–20 (1986).

    Google Scholar 

  52. I. I. Nemets, M. A. Trubitsyn, and A. I. Karpenko, “Ceramic binders and ceramic castables of quartz-chamotte composition, ” Ogneupory, No. 5, 5–9 (1986).

    Google Scholar 

  53. Yu. E. Pivinskii, V. A. Bevz, B. V. Parkhaev, et al., “USSR Inventor's Certificate No. 688482, A method for preparation of quartz refractories, ” Otk., Izobr., Promyshl. Obraztsy, Tov. Znaki, No. 36 (1979).

  54. V. A. Bevz and Yu. E. Pivinskii, “USSR Inventor's Certificate No. 804607, A method for preparation of a quartz ceramic, ” Otk., Izobr., Promyshl. Obraztsy, Tov. Znaki, No. 6 (1981).

  55. I. B. Volchek, Yu. E. Pivinskii, E. M. Grishpun, and E. V. Rozhkov, “USSR Inventor's Certificate No. 1628460, A method for molding ladle nozzles, ” Otk., Izobr., No. 22 (1990).

  56. I. B. Volchek, Yu. E. Pivinskii, and E. V. Rozhkov, “USSR Inventor's Certificate No. 1654289, A method for molding ceramic components, ” Otk., Izobr., No. 21 (1991).

  57. Yu. E. Pivinskii, “Preparation and properties of structural silica-based ceramic castables, ” Stroit. Mater., No. 4, 14–18 (1993).

    Google Scholar 

  58. M. A. Trubitsyn, I. I. Nemets, Yu. I. Aleshin, et al., “Production of nonfired building materials based on silica suspensions, ” Stroit. Mater., No. 1, 5–7 (1993).

    Google Scholar 

  59. Yu. E. Pivinskii, D. A. Dobrodon, I. V. Galenko, et al., “Materials based on highly concentrated ceramic binding suspensions (HCBS). Refractories molded using bauxite-based HCBS, ” Ogneup. Tekh. Keram., No. 3, 19–23 (1997).

    Google Scholar 

  60. Yu. E. Pivinskii, D. A. Dobrodon, E. V. Rozhkov, et al., “Materials based on highly concentrated ceramic binding suspensions (HCBS). Techniques for molding bauxite ceramic castables, ” Ogneup. Tekh. Keram., No. 5, 11–14 (1997).

    Google Scholar 

  61. Yu. E. Pivinskii, D. A. Dobrodon, I. V. Galenko, et al., “Materials based on highly concentrated ceramic binding suspensions (HCBS). A comparison of properties and service endurance of the nested nozzles for intermediate steel ladles, ” Ogneup. Tekh. Keram., No. 9, 33–36 (1997).

    Google Scholar 

  62. D. A. Dobrodon and Yu. E. Pivinskii, “Preparation and properties of binding high-alumina suspensions. 1. Bauxite-based HCBS, ” Ogneup. Tekh. Keram., No. 6, 21–26 (2000).

    Google Scholar 

  63. Yu. E. Pivinskii and V. Yu. Belousova, “Materials based on highly concentrated ceramic binding suspensions (HCBS). Corundum and corundum-mullite ceramic castables based on plasticized bauxite HCBS, ” Ogneup. Tekh. Keram., No. 9, 13–18 (1999).

    Google Scholar 

  64. E. M. Grishpun, Yu. E. Pivinskii, E. V. Rozhkov, et al., “Production and service of high-alumina ceramic castables. 1. Ramming mixtures based on modified bauxite HCBS, ” Ogneup. Tekh. Keram., No. 3, 37–41 (2000).

    Google Scholar 

  65. E. V. Rozhkov, Yu. E. Pivinskii, D. A. Dobrodon, et al., “Production and service of high-alumina ceramic castables. 2. Properties and service of vibration-placed mixtures based on bauxite HCBS for use in the runners of blast furnaces, ” Ogneup. Tekh. Keram., No. 5, 37–44 (2001).

    Google Scholar 

  66. M. Z. Naginskii, L. A. Karpets, D. A. Dobrodon, et al., “Production and service of refractory mixtures used for the lining of tap-holes and runners in blast furnaces, ” Novye Ogneupory, No. 1, 80–86 (2002).

    Google Scholar 

  67. Yu. E. Pivinskii and A. V. Cherevatova, “Materials based on highly concentrated ceramic binding suspensions (HCBS). 3. Properties of composite binders in the system quartz sand-based HCBS + refractory clay, ” Ogneup. Tekh. Keram., No. 8, 22–26 (1997).

    Google Scholar 

  68. Yu. E. Pivinskii, V. A. Doroganov, and E. A. Doroganov, “Refractory plastic mixtures based on highly concentrated ceramic binding suspensions, ” Ogneup. Tekh. Keram., No. 2, 14–19 (2000); No. 3, 17 – 21 (2001); No. 4, 18 – 23 (2001).

    Google Scholar 

  69. Yu. E. Pivinskii, D. A. Dobrodon, E. A. Doroganov, and E. V. Rozhkov, RF Patent No. 2141459, A high-alumina binding suspension, ” Izobreteniya, No. 32 (1999).

  70. Yu. E. Pivinskii and D. A. Dobrodon, “Preparation and properties of binding high-alumina suspensions in the bauxite – quartz glass system, ” Novye Ogneupory, No. 5, 19–26 (2002).

    Google Scholar 

  71. I. D. Kashcheev, E. V. Rozhkov, and Yu. E. Pivinskii, “Structure formation in unshaped refractories, ” Novye Ogneupory, No. 6, 19–24 (2002).

    Google Scholar 

  72. Yu. E. Pivinskii, “Ceramic castables—final stage in the evolution of low-cement refractory castables, Part 1, ” Ogneup. Tekh. Keram., No. 1, 11–15 (2000).

    Google Scholar 

  73. Yu. E. Pivinskii, “Ceramic castables—final stage in the evolution of low-cement refractory castables, Part 2, ” Novye Ogneupory, No. 1, 96–101 (2002).

    Google Scholar 

  74. N. Prasanta, T. Zakhsman, and M. Sankar, “Microsized α-Al2O3 in zero-cement castables, ” Am. Ceram. Soc. Bull., 75(11), 71–75 (1996).

    Google Scholar 

  75. T. Schraven, “High wear resistant spinel ceramics for slide and purging systems, ” Prospectus. Pahage feuerfeste Erzeugnisse, FRG (1998).

  76. A. R. Studart, W. Zhong, R. G. Pileggi, et al., “Processing of zero-cement self-flow alumina castables, ” Am. Ceram. Soc. Bull., 77(12), 60–66 (1999).

    Google Scholar 

  77. A. R. Studart, W. Zhong, and V. C. Pandolfelli, “Rheological design of zero-cement self-flow alumina castables, ” Am. Ceram. Soc. Bull., 78(5), 65–72 (1999).

    Google Scholar 

  78. A. V. Cherevatova, Silica Mixtures Based on Plasticized Highly Concentrated Binding Suspensions (HCBS), Author's Abstract of Candidate's Thesis [in Russian], Belgorod (1999).

  79. V. Yu. Beloysova, Refractory Castables Based on Corundum-Mullite and Spinel-Periclase Matrices, Author's Abstract of Candidate's Thesis [in Russian], Moscow (2000).

  80. K. V. Timoshenko, A Melt-Resistant Quartz Ceramic Castable Based on a Mixed Quartz-Corundum Binder, Author's Abstract of Candidate's Thesis [in Russian], Belgorod (2000).

  81. D. A. Dobrodon, High-Alumina Refractory Materials Based on a Bauxite Binder, Author's Abstract of Candidate's Thesis [in Russian], Ekaterinburg (2000).

  82. E. A. Doroganov, Rheological and Technological Properties of Mixed HCBS, Author's Abstract of Candidate's Thesis [in Russian], Belgorod (2001).

  83. E. V. Rozhkov, High-Alumina Ceramic Castables for Thermal Power Units in Ferrous Metallurgy, Author's Abstract of Candidate's Thesis [in Russian], Ekaterinburg (2002).

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Pivinskii, Y.E. Highly Concentrated Ceramic Binding Suspensions (HCBS) and Ceramic Castables. Stages in Research and Development. Refractories and Industrial Ceramics 44, 152–160 (2003). https://doi.org/10.1023/A:1026300217117

Download citation

  • Issue Date:

  • DOI: https://doi.org/10.1023/A:1026300217117

Keywords

Navigation