Dolomía y dolomita: un abordaje desde las perspectivas geológica, cerámica y refractaria

Autores/as

DOI:

https://doi.org/10.55204/trc.v3i2.e237

Palabras clave:

Dolomía, dolomita, diagénesis, dolomitización, refractarios, siderurgia, catalizadores, depuración de efluentes

Resumen

En el presente trabajo de revisión se propone llevar adelante un análisis de la bibliografía relacionada al mineral dolomítico. El estado del arte de las dolomías indica al presente un uso creciente como material refractario debido a la alternativa más económica que representa en comparación con otros materiales como lo es el óxido de magnesio. La importancia de la dolomía aparte de su aplicación en la industria siderúrgica radica en que se ha expandido a otros campos industriales como lo es la producción de catalizadores, soportes de catalizadores, y materiales de depuración de efluentes industriales. La revisión se ha llevado a cabo extrayendo la síntesis de trabajos de investigación desde 1924 al presente, desde tres perspectivas: geológica, cerámica y refractaria, puesto que las revisiones de dolomía sólo analizan los aspectos refractario o geológico en forma separada. Dado este marco, se hace necesario un documento que agrupe las áreas mencionadas.

Descargas

Los datos de descarga aún no están disponibles.

Referencias

Acosta, I. H., y González, S. D. (2018). Estudio preliminar, tendencia en minerales de magnesita -dolomita, tecnologias para su procesamiento. Centro de investigaciones para la industria minero metalúrgica 10.

Ahmadi, A., Sarpoolaky, H., Mirhabibi, A., y Golestani-Fard, F. (2007). The effect of graphite addition on corrosion behavior of tar bonded dolomite refractories in steelmaking converter. Iranian Journal of Materials Science and Engineering 4, 28-38.

Al-Awadi, M., Clark, W. J., Moore, W. R., Herron, M., Zhang, T., Zhao, W., Hurley, N., Kho, D., Montaron, B., y Sadooni, F. (2009). La dolomía: Aspectos de un mineral desconcertante. Oiffield Review 21, 32-47.

Antonov, G., Dolgina, G., Minkovich, B., y Prokudin, V. Y. (1965). Stabilized dolomite brick in the checkers of an open hearth regenerator. Refractories 6, 447-51.

Antonov, G., Nedosvitii, V., Kulik, A., y Semenenko, O. (2004). Stabilized dolomite refractories. Refractories and Industrial Ceramics 45, 160-4.

Antonov, G., Nedosvitii, V., Kulik, A., Semenenko, O., y Prokudin, V. Y. (1997a). Stabilized dolomite-periclase articles. Refractories and Industrial Ceramics 38, 326-8.

Antonov, G., Nedosvitii, V., Semenenko, O., Kulik, A., Gerashchuk, Y. D., I’chenko, N., y Poltavets, L. (1997b). Use of dolomite dust for manufacturing stabilized dolomite refractories. Refractories and Industrial Ceramics 38, 238-43.

Antonov, G., Nedosvitii, V., Semenenko, O., Kulik, A., y Prokudin, V. Y. (1996). Use of metallurgical slags in the technology of dolomite refractories. Refractories and Industrial Ceramics 37, 431-5.

Antonov, G., Nedosvitii, V., Semenenko, O., Kulik, A., y Prokudin, V. Y. (1997c). Laboratory study of the technology of stabilized dolomite products. Refractories and Industrial Ceramics 38, 154-6.

Arroqui Langer, A. (1998). Estudio Genético y del Potencial de Magnesio de las Dolomías de la Formación Zonda (Cámbrico Superior), en la Sierra de Villicum - San Juan., Universidad Nacional de San Juan, San Juan.

Awais, M. (2021). Dolomite and dolomitization: Implications for reservoir characterization. Wiki Write-Off Entry. University of Naples, University of Swabi.

Badapalli, P. K., Kottala, R. B., Sree, P. P., y Rajasekhar, M. (2022). Occurrence and structures of dolomites in North Eastern part of Anantapur district, and their use in engineering materials. Materials Today: Proceedings 50, 1005-10.

Banerjee, S., y Rankovic, L. (1982). Refractories for basic oxygen and electric furnace steel making in the USA. Transactions of the Indian Ceramic Society 41, 171-5.

Barsi, A. D. S., Marchetti, G., Trezza, M. A., y Irassar, E. F. (2020a). Carbonate rocks as fillers in blended cements: Physical and mechanical properties. Construction and Building Materials 248, 118697.

Barsi, A. D. S., Trezza, M. A., y Irassar, E. F. (2020b). Comparison of dolostone and limestone as filler in blended cements. Bulletin of Engineering Geology and the Environment 79, 243-53.

Baudín, C., y Pena, P. (2021). The main role of the ZrO2–MgO–CaO and ZrO2–MgO–CaO–SiO2 systems in the field of refractories. Boletín de la Sociedad Española de Cerámica y Vidrio.

Behera, R., y Nayak, S. (1996). Effect of Granulometry and Graphite Addition on the Properties and Performance of Pitch Bonded Dolomite Bricks. Transactions of the Indian Ceramic Society 55, 124-9.

Bennett, J. P. (1951). "The Effect of Different Natural Flake Graphite Additions on the High-temperature Properties of a Dolomite-carbon Refractory," US Department of the Interior, Bureau of Mines.

Biswas, S., y Sarkar, D. (2020). "Introduction to Refractories for Iron-and Steelmaking," Springer.

Bogahawatta, V., Abdul-Jaleel, A., y Behbehani, M. (2004). The heat treatment and particle size effects in the thermal decomposition of dolomite for separation of constituents. Mineral Processing and Extractive Metallurgy 113, 111-7.

Bole, G. A. (1924). "The Utilization of Dolomite for Refractories," US Department of the Interior, Bureau of Mines.

Booth, F., Stabile, F. M., Bruni, Y., Gauna, M. R., y Rendtorff, N. (2021). Dolomite-zirconia reaction sintered bonded coarse magnesia ceramics: effect of the bonding proportion. Cerâmica 67, 151-7.

Booth, R. F. N. (2017). Procesamiento y caracterización de materiales cerámicos refractarios del sistema ZrO2-CaO-MgO-SiO2. Tésis de doctorado, Universidad Nacional de la plata. Facultad de ciencias exactas.

Borisov, V., y Nikolaev, A. (1972). Sintering of dolomites. Refractories 13, 516-9.

Britton, H., Gregg, S., y Winsor, G. (1952). The calcination of dolomite. Part II.—The thermal decomposition of dolomite. Transactions of the Faraday Society 48, 70-5.

Bron, V., Kosolapov, E., Medyakova, M., Kozhevnikov, E., y Baranovskii, N. (1972). Dense powder from beneficiated dolomites for producing tar-bonded dolomite refractories. Refractories 13, 701-5.

Caceres, P., y Attiogbe, E. (1997). Thermal decomposition of dolomite and the extraction of its constituents. Minerals Engineering 10, 1165-76.

Cai, W. K., Liu, J. H., Zhou, C. H., Keeling, J., y Glasmacher, U. A. (2021). Structure, genesis and resources efficiency of dolomite: New insights and remaining enigmas. Chemical Geology 573, 120191.

Cardarelli, F. (2008). Ceramics, refractories, and glasses. Materials handbook: a concise desktop reference, 593-689.

Carter, C. B., y Norton, M. G. (2007). Ceramic materials: science and engineering. Vol. 716, pp. 15-29. Springer.

Colby, S. F. (1941). "Occurrences and uses of dolomite in the United States," US Department of the Interior, Bureau of Mines.

Congress, D. R. (1942). Dolomite refractories : open-hearth furnace refractories. Iron and steel Institute and The Society of Engineers and Metallurgists. Sheffield, England, May 19. Nature 150.

Chen, M., Lu, C., y Yu, J. (2007a). Improvement in performance of MgO–CaO refractories by addition of nano-sized ZrO2. Journal of the European Ceramic Society 27, 4633-8.

Chen, M., Wang, N., Yu, J., y Yamaguchi, A. (2007b). Effect of porosity on carbonation and hydration resistance of CaO materials. Journal of the European Ceramic Society 27, 1953-9.

Chen, S., Chen, G., Cheng, J., y Tian, F. (2000). Effect of additives on the hydration resistance of materials synthesized from the magnesia–calcia system. Journal of the American Ceramic Society 83, 1810-2.

Darweesh, H. H. (2001). Building materials from siliceous clay and low grade dolomite rocks. Ceramics international 27, 45-50.

De Aza, A. H., Rodríguez, M. A., Rodríguez, J. L., De Aza, S., Pena, P., Convert, P., Hansen, T., y Turrillas, X. (2002). Decomposition of dolomite monitored by neutron thermodiffractometry. Journal of the American Ceramic Society 85, 881-8.

Dehsheikh, H. G., y Ghasemi-Kahrizsangi, S. (2017). The influence of silica nanoparticles addition on the physical, mechanical, thermo-mechanical as well as microstructure of Mag-Dol refractory composites. Ceramics international 43, 16780-6.

Dehsheikh, H. G., Ghasemi-Kahrizsangi, S., Karamian, E., y Shahmohammadian, F. (2019). Hydration resistance improvement of doloma particles using different nanoparticles. Ceramics international 45, 7390-6.

Dehsheish, H. G., Karamian, E., Owsalou, R. G., Ghasemi-Kahrizsangi, S., Vefgh, N., y Soheily, A. (2018). Improvement in performance of MgO–CaO refractory composites by addition of Iron (III) oxide nanoparticles. Ceramics international 44, 15880-6.

Díaz Tato, L. (2020). Efecto de la adición de la espinela hercinita sobre las propiedades de un refractario magnesia-dolomita, Universidad Autónoma de Nuevo León.

Diwan, V., Sar, S. K., Biswas, S., y Lalwani, R. (2020). Adsorptive extraction of uranium (VI) from aqueous phase by dolomite. Groundwater for Sustainable Development, 100424.

Dolgina, G., y Markevich, E. (1963). Stabilized magnesite-dolomite brick in the lining of converters. Refractories 4, 593-6.

Dollimore, D., Dunn, J., Lee, Y., y Penrod, B. (1994). The decrepitation of dolomite and limestone. Thermochimica acta 237, 125-31.

Engler, P., Santana, M. W., Mittleman, M. L., y Balazs, D. (1989). Non-isothermal, in situ XRD analysis of dolomite decomposition. Thermochimica acta 140, 67-76.

Ewais, E. M. M. (2004). Carbon based refractories. Journal of the Ceramic Society of Japan (日本セラミックス協会学術論文誌) 112, 517-32.

Ewais, E. M. M., Ahmed, A. M., Kasem, A.-A., y El-Skerif, A.-R. (2002). Attack under load of tempered tar/pitch-bonded Egyptian dolomite by BOF slag. Journal of the Ceramic Society of Japan 110, 931-6.

Fahad, M., Iqbal, Y., y Ubic, R. (2011). Characteristics of dolomite from swabi, khyberpakhtunkhwa for its use as a raw material in fertilizer production. In "JPMS Conference Issue Materials".

Fang, H., Smith, J. D., y Peaslee, K. D. (1999). Study of spent refractory waste recycling from metal manufacturers in Missouri. Resources, conservation and recycling 25, 111-24.

Fang, Q. F., Zhang, H. W., y Guo, Y. (2011). Thermal decomposition of dolomite. In "Advanced Materials Research", Vol. 177, pp. 617-9. Trans Tech Publ.

Farshad, B., y Karamian, E. (2017). A comparative study of the influence of trivalent and tetravalent nano-sized oxides on the performance and microstructure of dolomite refractories. Boletín de la Sociedad Española de Cerámica y Vidrio 56, 249-55.

Fazeli, A., y Tareen, J. (1991). Thermal decomposition of rhombohedral double carbonates of dolomite type. Journal of Thermal Analysis and Calorimetry 37, 2605-11.

Fernández Calvo, C. (1981). Sedimentología y diagénesis del Cretácico Superior de La Mancha (Cuenca). Tésis doctoral, Madrid. España.

Fonseca, A., Vieira, J., y Baptista, J. (1986). Dependence of the densification on grain growth and on agglomeration in sintering of dolomite. Le Journal de Physique Colloques 47, C1-435-C1-40.

Friedman, G. M. (1965). Terminology of crystallization textures and fabrics in sedimentary rocks. Journal of Sedimentary Research 35, 643-55.

G Kahrizsangi, S., Nemati, A., Shahraki, A., y Farooghi, M. (2016). Effect of nano-sized Fe2O3 on microstructure and hydration resistance of MgO-CaO refractories. International Journal of Nanoscience and Nanotechnology 12, 19-26.

GeologíaWeb (2020). Dolomita: Propiedades, características y usos. Recuperado de https://geologiaweb.com/minerales/dolomita/.

Gerashchuk, Y. D., Il'chenko, I., Poltavets, L., Antonov, G., Nedosvitii, V., y Grivakova, Z. A. (1996). Production of an experimental batch of stabilized dolomite-periclase refractories. Refractories and Industrial Ceramics 37, 362-6.

Ghaemi, A., Torab-Mostaedi, M., y Ghannadi-Maragheh, M. (2011). Characterizations of strontium (II) and barium (II) adsorption from aqueous solutions using dolomite powder. Journal of Hazardous Materials 190, 916-21.

Ghaemi, A., Torab-Mostaedi, M., Shahhosseini, S., y Asadollahzadeh, M. (2013). Characterization of Ag (I), Co (II) and Cu (II) removal process from aqueous solutions using dolomite powder. Korean Journal of Chemical Engineering 30, 172-80.

Ghasemi-Kahrizsangi, S., Dehsheikh, H. G., y Boroujerdnia, M. (2017a). MgO–CaO–Cr2O3 composition as a novel refractory brick: Use of Cr2O3 nanoparticles. Boletín de la Sociedad Española de Cerámica y Vidrio 56, 83-9.

Ghasemi-Kahrizsangi, S., Dehsheikh, H. G., Karamian, E., Boroujerdnia, M., y Payandeh, K. (2017b). Effect of MgAl2O4 nanoparticles addition on the densification and properties of MgO-CaO refractories. Ceramics international 43, 5014-9.

Ghasemi-Kahrizsangi, S., Karamian, E., y Dehsheikh, H. G. (2017c). The impact of ZrSiO4 nanoparticles addition on the microstructure and properties of dolomite based refractories. Ceramics international 43, 13932-7.

Ghasemi-Kahrizsangi, S., Karamian, E., Ghasemi-Kahrizsangi, A., Desheikh, H. G., y Soheily, A. (2017d). The impact of trivalent oxide nanoparticles on the microstructure and performance of magnesite-dolomite refractory bricks. Materials Chemistry and Physics 193, 413-20.

Ghasemi-Kahrizsangi, S., Karamian, E., Gheisari Dehsheikh, H., y Ghasemi-Kahrizsangi, A. (2017e). A Review on Recent Advances on Magnesia-Doloma Refractories by Nano-Technology. Journal of Water and Environmental Nanotechnology 2, 206-22.

Ghasemi-Kahrizsangi, S., Nemati, A., Shahraki, A., y Farooghi, M. (2016a). Densification and properties of Fe2O3 nanoparticles added CaO refractories. Ceramics international 42, 12270-5.

Ghasemi-Kahrizsangi, S., Sedeh, M. B., Dehsheikh, H. G., Shahraki, A., y Farooghi, M. (2016b). Densification and properties of ZrO2 nanoparticles added magnesia–doloma refractories. Ceramics international 42, 15658-63.

Ghasemi-Kahrizsangi, S., Shahraki, A., y Farooghi, M. (2018). Effect of nano-TiO 2 additions on the densification and properties of magnesite–dolomite ceramic composites. Iranian Journal of Science and Technology, Transactions A: Science 42, 567-75.

Ghoneim, N., Mandour, M., y Serry, M. (1989). Sintering of lime doped with La2O3 and CeO2. Ceramics international 15, 357-62.

Ghoneim, N., Mandour, M., y Serry, M. (1990). Phase composition, microstructure and properties of sintered La203-doped lime and dolomite grains. Ceramics international 16, 215-23.

Ghosh, A., Bhattacharya, T., Maiti, S., Mukherjee, B., Tripathi, H. S., y Das, S. (2004). Densification and properties of lime with V2O5 additions. Ceramics international 30, 2117-20.

Ghosh, A., Bhattacharya, T., Mukherjee, B., y Das, S. (2001). The effect of CuO addition on the sintering of lime. Ceramics international 27, 201-4.

Ghosh, A., y Tripathi, H. S. (2012). Sintering behaviour and hydration resistance of reactive dolomite. Ceramics international 38, 1315-8.

Gunasekaran, S., y Anbalagan, G. (2007a). Spectroscopic study of phase transitions in dolomite mineral. Journal of Raman Spectroscopy: An International Journal for Original Work in all Aspects of Raman Spectroscopy, Including Higher Order Processes, and also Brillouin and Rayleigh Scattering 38, 846-52.

Gunasekaran, S., y Anbalagan, G. (2007b). Thermal decomposition of natural dolomite. Bulletin of Materials Science 30, 339-44.

Gupta, P., y De, A. (2016). The Effect of composition on the decomposition behaviour of dolomite nuggets. Imperial Journal of Interdisciplinary Research 2, 321-4.

Hadian, A., y Nazari, B. (2010). Influence of magnesia addition on hydration of Iranian dolomite. Iranian Journal of Materials Science and Engineering 7, 0-.

Harabi, A., y Achour, S. (1999). A process for sintering of MgO and CaO based ceramics. Journal of materials science letters 18, 955-7.

Hardie, L. A. (1987). Dolomitization; a critical view of some current views. Journal of Sedimentary Research 57, 166-83.

Hatmaker, P. (1931). "Utilization of Dolomite and High-magnesium Limestone," US Department of the Interior, Bureau of Mines.

Haul, R., y Markus, J. (1952). On the thermal decomposition of dolomite. IV. Thermogravimetric investigation of the dolomite decomposition. Journal of Applied Chemistry 2, 298-306.

Hevia, R. (2012). Materias primas: Importancia de su conocimiento para la formulación cerámica. Cerámica y cristal 145, 48-52.

Hossain, F., Dlugogorski, B., Kennedy, E., Belova, I., y Murch, G. (2011). First-principles study of the electronic, optical and bonding properties in dolomite. Computational Materials Science 50, 1037-42.

Huamayalli, J., y Luna, R. O. (1993). Obtención del oxido de magnesio a partir de la dolomita. Revista de Química 7, 179-85.

Humphries, T. D., Møller, K. T., Rickard, W. D., Sofianos, M. V., Liu, S., Buckley, C. E., y Paskevicius, M. (2019). Dolomite: A low cost thermochemical energy storage material. Journal of Materials Chemistry A 7, 1206-15.

Islam, M. W. (2020). A review of dolomite catalyst for biomass gasification tar removal. Fuel 267, 117095.

Ivanets, A., Kitikova, N., Shashkova, I., Oleksiienko, O., Levchuk, I., y Sillanpää, M. (2014). Removal of Zn2+, Fe2+, Cu2+, Pb2+, Cd2+, Ni2+ and Co2+ ions from aqueous solutions using modified phosphate dolomite. Journal of Environmental Chemical Engineering 2, 981-7.

Kahrizsangi, S. G., Nemati, A., Shahraki, A., y Farooghi, M. (2016). The effect of nano-additives on the hydration resistance of materials synthesized from the MgO-CaO system. Int. J. Eng 29.

Karklit, A. (1997). Sintering of dolomites. Refractories and Industrial Ceramics 38, 399-402.

Kasai, E., Sakano, Y., Kawaguchi, T., y Nakamura, T. (2000). Influence of properties of fluxing materials on the flow of melt formed in the sintering process. ISIJ international 40, 857-62.

Kashaninia, F., Sarpoolaky, H., Bagheri, A., Naghizadeh, R., y Zamanipour, M. (2011). IMPROVING HYDRATION RESISTANCE OF MAGNESIA-DOLOMA REFRACTORIES BYIRON OXIDE ADDITION. Iranian Journal of Materials Science and Engineering 8, 34-40.

Kök, M., y Smykatz-Kloss, W. (2008). Characterization, correlation and kinetics of dolomite samples as outlined by thermal methods. Journal of Thermal Analysis and Calorimetry 91, 565-8.

Kristóf-Makó, É., y Juhász, A. (1999). The effect of mechanical treatment on the crystal structure and thermal decomposition of dolomite. Thermochimica acta 342, 105-14.

Kundu, R., y Sarkar, R. (2021). MgO-C Refractories: A Detailed Review of These Irreplaceable Refractories in Steelmaking. Interceram-International Ceramic Review 70, 46-55.

Land, L. S. (1980). The isotopic and trace element geochemistry of dolomite: the state of the art.

Land, L. S. (1985). The origin of massive dolomite. Journal of Geological Education 33, 112-25.

Land, L. S. (1998). Failure to Precipitate Dolomite at 25 C fromDilute Solution Despite 1000-Fold Oversaturation after32 Years. Aquatic Geochemistry 4, 361-8.

Lavat, A., Grasselli, M., y Lovecchio, E. G. CARACTERIZACIÓN DE LAS ETAPAS DE COCCIÓN DE MATERIALES COMPUESTOS MgO-CaZrO3-Ca2SiO4 OBTENIDOS A PARTIR DE DOLOMITAS BONAERENSES.

Lavat, A., Grasselli, M., y Lovecchio, E. G. (2010). Caracterización de las etapas de cocción de materiales compuestos Mgo-CaZrO3-Ca2SiO4 obtenidos a partir de dolomitas bonaerenses.

Lavat, A. E., Grasselli, M. C., y Lovecchio, E. G. (2015). The firing steps and phases formed in Mg–Zr–Al refractory dolomite-based materials. Ceramics international 41, 2107-15.

Le Coq, X., Dupré, B., Gleitzer, C., Adam, R., Scheidt, F., y Tassot, P. (1990). Slag corrosion of dolomite‐carbon refractories. Steel Research 61, 593-7.

Lee, J.-K., Choi, H.-S., y Lee, S.-J. (2012). Effect of fe 2 o 3 additions on the hydration resistance of cao. Journal of ceramic processing research 13, 646-50.

Lee, W. E., y Moore, R. E. (1998). Evolution of in situ refractories in the 20th century. Journal of the American Ceramic Society 81, 1385-410.

Lee, W. E., y Rainforth, M. (1994). Ceramic microstructures: property control by processing. pp. 453-507. Springer Science & Business Media.

Li, Z., Zhang, S., y Lee, W. (2008). Improving the hydration resistance of lime-based refractory materials. International Materials Reviews 53, 1-20.

Lingling, X., y Min, D. (2005). Dolomite used as raw material to produce MgO-based expansive agent. Cement and Concrete Research 35, 1480-5.

Luna, G. C. V. (2019). Estudio del potencial de rocas carbonáticas dolomíticas en el Departamento Jáchal, San Juan : la perspectiva de desarrollo a través del corredor bioceánico. Tésis de Maestría, Universidad Nacional de San Juan, San Juan.

Mahadevan, C. (1945). Dolomite. Transactions of the Indian Ceramic Society 4, 23-39.

Mahant, M. V., Agrawal, M. S., y Lamba, M. A. (2021). Experimental Study on Dolomite Bricks with Positive Permanent Linear Change.

Mamykin, P., y Ivanova, A. (1971). Sintering dolomite and limestone as a function of their industrial processing and calcium fluoride additions. Refractories 12, 653-6.

Mangwandi, C., Albadarin, A. B., Glocheux, Y., y Walker, G. M. (2014). Removal of ortho-phosphate from aqueous solution by adsorption onto dolomite. Journal of Environmental Chemical Engineering 2, 1123-30.

McCauley, R., y Johnson, L. (1991). Decrepitation and thermal decomposition of dolomite. Thermochimica acta 185, 271-82.

McIntosh, R., Sharp, J., y Wilburn, F. (1990). The thermal decomposition of dolomite. Thermochimica acta 165, 281-96.

Mehrabi, B., Abdellatif, M., y Masoudi, F. (2011). Magnesium production from asian ABE-GARM dolomite in pidgeon-type reactor. Iranian Journal of Materials Science and Engineering 8, 18-24.

Mohammadihooyeh, M., Karamian, E., y Emadi, R. (2020). Effect of magnesium-aluminate spinel nano-particles on microstructure and properties behaviors of doloma-containing refractories. Ceramics international 46, 1662-7.

Monsif, M., Zerouale, A., Kandri, N. I., Mozzon, M., Sgarbossa, P., Zorzi, F., Tateo, F., Tamburini, S., Franceschinis, E., y Carturan, S. (2019). Chemical-physical and mineralogical characterization of ceramic raw materials from Moroccan northern regions: Intriguing resources for industrial applications. Applied Clay Science 182, 105274.

Moorkah, H., y Abolarin, M. (2005). Investigation of the properties of locally available dolomite for refractory applications. Nigerian Journal of Technology 24, 79-86.

Morrow, D. (1982). Diagenesis 2. Dolomite-Part 2 Dolomitization models and ancient dolostones. Geoscience Canada.

Mubarok, M. Z., y Adi Kurniawan, C. (2015). Synthesis of magnesia powder from East Java dolomite through leaching, precipitation and calcination. In "Advanced Materials Research", Vol. 1112, pp. 550-4. Trans Tech Publ.

Netinbag (2020). ¿Qué es un horno de hogar abierto? Disponible en https://www.netinbag.com/es/manufacturing/what-is-an-open-hearth-furnace.html, último acceso 10 de octubre de 2021.

Ngamcharussrivichai, C., Wiwatnimit, W., y Wangnoi, S. (2007). Modified dolomites as catalysts for palm kernel oil transesterification. Journal of Molecular Catalysis A: Chemical 276, 24-33.

Niesyt, M., y Psiuk, B. (2017). Fused dolomite-magnesia co-clinker for fired dolomite refractories. Ceramics international 43, 51-9.

Novikov, A., y Kravets, L. (1965). Some features of tar-bonded dolomite refractories. Refractories 6, 205-7.

Olszak-Humienik, M., y Jablonski, M. (2015). Thermal behavior of natural dolomite. Journal of Thermal Analysis and Calorimetry 119, 2239-48.

Othman, A. (2003). Effect of talc and bauxite on sintering, microstructure, and refractory properties of Egyptian dolomitic magnesite. British ceramic transactions 102, 265-71.

Othman, A., Abou El-Maaty, M., y Serry, M. (2001). Hydration-resistant lime refractories from Egyptian limestone and ilmenite raw materials. Ceramics international 27, 801-7.

Otsuka, R. (1986). Recent studies on the decomposition of the dolomite group by thermal analysis. Thermochimica acta 100, 69-80.

Papadopoulos, D., Omar, H., Stergioudi, F., Tsipas, S. A., y Michailidis, N. (2011). The use of dolomite as foaming agent and its effect on the microstructure of aluminium metal foams—Comparison to titanium hydride. Colloids and Surfaces A: Physicochemical and Engineering Aspects 382, 118-23.

Pehlivan, E., Özkan, A. M., Dinç, S., y Parlayici, Ş. (2009). Adsorption of Cu2+ and Pb2+ ion on dolomite powder. Journal of Hazardous Materials 167, 1044-9.

Peng, C., Li, N., y Han, B. (2009). Effect of zircon on sintering, composition and microstructure of magnesia powders. Science of sintering 41, 11-7.

Perrin, E., Firsbach, F., Nispel, M., Beatty, J., y Johnson, W. (2021). Value Creation Investigation of Dolime Compared to MgO Alternatives for EAF Application. https://www.researchgate.net/publication/354634845.

Pettijohn, F. J. (1976). Rocas Sedimentarias. (Eudeba, ed.), Buenos Aires.

Pina, C. M., y Pimentel, C. (2017). Formation of dolomite analogues at ambient conditions. In "Dolomite: Formation, Characteristics and Environmental Impact", pp. 115-40. Nova Science Publishers, Incorporated.

Pina, C. M., Pimentel, C., y Crespo, A. n. (2022). The Dolomite Problem: A Matter of Time. ACS Earth and Space Chemistry.

Pirogov, A., Rakina, V., y Volkov, N. (1963). Unfired dolomite refractories with increased hydration resistance. Refractories 4, 292-8.

Pokrovsky, O. S. (2017). Dolomite as enigmatic sedimentary mineral and important technological material. In "Dolomite: Formation, Characteristics and Environmental Impact

", pp. ix-xiv. Nova Science Publishers, Incorporated.

Pole, G. R., Beinlich Jr, A. W., y Gilbert, N. (1946). Physical Properties of Some High‐Temperature Refractory Compositions. Journal of the American Ceramic Society 29, 208-28.

Ptáček, P., Šoukal, F., y Opravil, T. (2021). Thermal decomposition of ferroan dolomite: A comparative study in nitrogen, carbon dioxide, air and oxygen. Solid State Sciences 122, 106778.

Qiu, G.-b., Peng, B., Li, X., Guo, M., y Zhang, M. (2015). Hydration resistance and mechanism of regenerated MgO–CaO bricks. Journal of the Ceramic Society of Japan 123, 90-5.

Qiu, G.-b., Peng, B., Yue, C.-s., Guo, M., y Zhang, M. (2016). Properties of regenerated MgO–CaO refractory bricks: impurity of iron oxide. Ceramics international 42, 2933-40.

Rabah, M., y Ewais, E. (2009). Multi-impregnating pitch-bonded Egyptian dolomite refractory brick for application in ladle furnaces. Ceramics international 35, 813-9.

Rao, M., Sen, P., y Rao, H. B. (1961). Indian Dolomites: Some Aspects of Complete Stabilisation. Transactions of the Indian Ceramic Society 20, 34-42.

Rashad, M., y Baioumy, H. (2005). Chemical processing of dolomite associated with the phosphorites for production of magnesium sulfate heptahydrate. European Journal of Mineral Processing & Environmental Protection 5.

Ray, K., Sen, P., y Rao, M. (1979). Studies on the Hydration Resistance of Sintered Dolomite. Transactions of the Indian Ceramic Society 38, 211-8.

Reeder, R. J. (1981). Electron optical investigation of sedimentary dolomites. Contributions to Mineralogy and Petrology 76, 148-57.

Ren, X.-m., Ma, B.-y., Li, S.-m., Li, H.-x., Liu, G.-q., Yang, W.-g., Qian, F., Zhao, S.-x., y Yu, J.-k. (2021). Comparison study of slag corrosion resistance of MgO–MgAl 2 O 4, MgO–CaO and MgO–C refractories under electromagnetic field. Journal of Iron and Steel Research International 28, 38-45.

Richmond, C. (2004). in Refractories handbook. pp. 183-9. Marcel Dekker Inc., EUA.

Rodriguez-Navarro, C., Kudlacz, K., y Ruiz-Agudo, E. (2012). The mechanism of thermal decomposition of dolomite: New insights from 2D-XRD and TEM analyses. American Mineralogist 97, 38-51.

Rodríguez, J. L., y Castro, P. P. (2001). Obtención de materiales de magnesia–circonato cálcico–silicato dicálcico por sinterización reactiva de mezclas de dolomita–circón. Estudio del procesamiento. Boletín de la Sociedad Española de Cerámica y Vidrio 40, 463-71.

S. Ghasemi Kahrizsangi, A. N., A. Shahraki, M. Farooghi (2016). The Effect of Nano-Additives on the Hydration Resistance of Materials Synthesized From the MgO-CaO System. International Journal of Engineering 29, 539-45.

Sadik, C., Moudden, O., El Bouari, A., y El Amrani, I.-E. (2016). Review on the elaboration and characterization of ceramics refractories based on magnesite and dolomite. Journal of Asian Ceramic Societies 4, 219-33.

Samtani, M., Dollimore, D., y Alexander, K. (2002). Comparison of dolomite decomposition kinetics with related carbonates and the effect of procedural variables on its kinetic parameters. Thermochimica acta 392, 135-45.

Sánchez Consuegra, C. (2010). Estudio de la influencia de la Dolomita como adición mineral fundente en la producción de materiales cerámicos, Universidad Central" Marta Abreu" de las Villas.

Santani, M., Dollimore, D., Wilburn, F., y Alexander, K. (2001). Isolation and idenfication of the intermediate and final products in the thermal decomposition of dolomite in an atmosphere of carbon dioxide. Thermochim. Acta 367, 285-95.

Savchenko, Y. I., Kukuruzov, A., Perepelitsyn, V., Novoselova, L., y Shubin, V. (1985). Dolomite tar-impregnated refractories with a ceramic bond. Refractories 26, 203-7.

Schallis, A. (1942). "Dolomite-base Refractories," US Bureau of Mines.

Schulze-Bergkamen, H., Eric, L., y Ebner, C. (2021). High Quality Doloma Refractories—Essential for Stainless Steel Production. China's Refractories 30, 22.

Semmeq, A., Foucaud, Y., El Yamami, N., Michailovski, A., Lebègue, S., y Badawi, M. (2021). Hydration of magnesite and dolomite minerals: new insights from ab initio molecular dynamics. Colloids and Surfaces A: Physicochemical and Engineering Aspects 631, 127697.

Sen, P. (1966). Some Empirical Methods of Evaluating the Suitability of Raw Dolomite for Use in Steel Melting Furnaces. Transactions of the Indian Ceramic Society 25, 107-11.

Serry, M., El-Kholi, M., Elmaghraby, M., y Telle, R. (2002). Characterization of Egyptian dolomitic magnesite deposits for the refractories industry. Ceramics international 28, 575-83.

Shahraki, A., Ghasemi-Kahrizsangi, S., y Nemati, A. (2017). Performance improvement of MgO-CaO refractories by the addition of nano-sized Al2O3. Materials Chemistry and Physics 198, 354-9.

Shahraki, B. K., Mehrabi, B., y Dabiri, R. (2009). Thermal behavior of Zefreh dolomite mine (Central Iran). Journal of Mining and Metallurgy B: Metallurgy 45, 35-44.

Shrock, R. R. (1948). A classification of sedimentary rocks. The Journal of Geology 56, 118-29.

Sibley, D. F., y Gregg, J. M. (1987). Classification of dolomite rock textures. Journal of Sedimentary Research 57, 967-75.

Smith, J. W., Johnson, D. R., y Müller-Vonmoos, M. (1974). Dolomite for determining atmosphere control in thermal analysis. Thermochimica acta 8, 45-56.

Soltan, A. M., Wendschuh, M., Willims, H., y Serry, M. (2014). Densification and resistance to hydration and slag attack of ilmenite-doped MgO-dolomite refractories in relation to their thermal equilibrium and microfabric. Journal of the European Ceramic Society 34, 2023-33.

Sopha, G. A., y Sumarni, N. (2013). Effect of dolomite, horse manure and NPK application on plant growth and yield of Cauliflower and its residue effect on Snap bean cultivation. Advances in Agriculture & Botanics 5, 60-5.

Staszczuk, P., y Pekalska, J. (2003). Methods of preparation of magnesium organic compounds from natural dolomite. Physicochem Probl Mineral Proc 37, 149-58.

Subagjo, Wulandari, W., Adinata, P. M., y Fajrin, A. (2017). Thermal decomposition of dolomite under CO2-air atmosphere. In "AIP Conference Proceedings", Vol. 1805, pp. 040006. AIP Publishing LLC.

Sugita, K. (2008). Historical overview of refractory technology in the steel industry. Shinnittetsu Giho 388, 8.

Surendranathan, A. (2014). An introduction to ceramics and refractories. pp. 434-6. CRC Press.

Suvorov, S., Nazmiev, M., Baranov, A., y Dmitrienko, A. (2005). A high-density water-resistant magnesia-lime material based on dolomite. Refractories and Industrial Ceramics 46, 217-9.

Szczerba, J., y Pędzich, Z. (2010). The effect of natural dolomite admixtures on calcium zirconate–periclase materials microstructure evolution. Ceramics international 36, 535-47.

Thethwayo, B., y Steenkamp, J. (2020). A review of carbon-based refractory materials and their applications. Journal of the Southern African Institute of Mining and Metallurgy 120, 641-50.

Urenda, F. (2016). Salinidad y aguas subterráneas. Recuperado de ResearchGate: https://www. researchgate. net/publication ….

Verduch, A. (1965). Expansión por humedad de los productos cerámicos. VII Semana de Estudios.

Vert, T. (2016). "Refractory material selection for steelmaking," John Wiley & Sons.

Warren, J. (2000). Dolomite: occurrence, evolution and economically important associations. Earth-Science Reviews 52, 1-81.

Warthmann, R., van Lith, Y., Vasconcelos, C., McKenzie, J. A., y Karpoff, A. M. (2000). Bacterially induced dolomite precipitation in anoxic culture experiments. Geology 28, 1091-4.

Wiedemann, H.-G., y Bayer, G. (1987). Note on the thermal decomposition of dolomite. Thermochimica acta 121, 479-85.

Xu, T., Wang, X., Xiao, B., y Liu, W. (2021). Single-step production of hydrogen-rich syngas from toluene using multifunctional Ni-dolomite catalysts. Chemical Engineering Journal 425, 131522.

Yamamoto, O., Ohira, T., Alvarez, K., y Fukuda, M. (2010). Antibacterial characteristics of CaCO3–MgO composites. Materials Science and Engineering: B 173, 208-12.

Yener, N., Önal, M., Üstünışık, G., y Sarıkaya, Y. (2007). Thermal behavior of a mineral mixture of sepiolite and dolomite. Journal of Thermal Analysis and Calorimetry 88, 813-7.

Yeprem, H., Türedi, E., y Karagöz, S. (2004). A quantitative-metallographic study of the sintering behaviour of dolomite. Materials characterization 52, 331-40.

Yeprem, H. A. (2007). Effect of iron oxide addition on the hydration resistance and bulk density of doloma. Journal of the European Ceramic Society 27, 1651-5.

Yuan, X., Xia, W., An, J., Yin, J., Zhou, X., y Yang, W. (2015). Kinetic and thermodynamic studies on the phosphate adsorption removal by dolomite mineral. Journal of Chemistry 2015.

Zhang, H., Zhao, H., Chen, J., Li, J., Yu, J., y Nie, J. (2013). Defect study of MgO-CaO material doped with CeO2. Advances in Materials Science and Engineering 2013.

Descargas

Publicado

2023-10-03

Número

Sección

Artículos de Revisión

Cómo citar

Resio, L. (2023). Dolomía y dolomita: un abordaje desde las perspectivas geológica, cerámica y refractaria. Tesla Revista Científica, 3(2), e237. https://doi.org/10.55204/trc.v3i2.e237