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PROCESSING AND COMPLEX USAGE OF MINERAL RAW MATERIALS
Название Behavior of the components of carbon-containing ash from the combustion of power coals under the conditions of chlorination roasting
DOI 10.17580/em.2022.02.10
Автор Dosmukhamedov N. K., Zholdasbay E. E., Egizekov M. G., Argyn A. A.
Информация об авторе

Satbayev University, Almaty, Kazakhstan:

Dosmukhamedov N. K., Professor, Candidate of Engineering Sciences, nurdos@bk.ru
Zholdasbay E. E., Leading Researcher, Doctor of Philosophical Sciences
Egizekov M. G., Chief Researcher, Candidate of Engineering Sciences
Argyn A. A., Candidate for a Doctor’s Degree

Реферат

On the basis of thermodynamic calculations of interaction reactions between mullite, oxides of titanium, iron, and Cl2 (gas) in the presence of carbon, the values of the Gibbs free energy are determined in the current work. It has been established that the probability of reactions occurring in the temperature range 1073–1473 K is very high. The most negative value ΔG°Т = –1029.9 kJ/mol is typical for the titanium oxide reduction reaction at the roasting tem- perature (1100 °С). The value of the Gibbs free energy of the destruction reaction of mullite (Al2SiO5), which is important for practice, is ΔG°Т = –269.2 kJ/mol. This makes it possible to predict the complete decomposition of mullite from ash to easily soluble aluminum chloride under the conditions of chlorination roasting. The study of the behavior of carbon under the conditions of chlorination roasting of ash with CaClin an oxidizing atmosphere is also important. The results of the differential thermal analysis of the non-magnetic fraction of ash, previously separated from the TPP ash by magnetic separation, showed clearly defined manifestations on the DTA, DTG and TG curves, caused by the presence of various types of reactions in the system. Low-temperature (20–115 °C) sample dehydration and ash dehydration were determined in the temperature range of 115–375 °C. In the range of further heating of the sample (375–685 °C), an exothermic projection was found on the DTA curve, which is characteristic of the oxidation of thermally active carbon present in the powder. The amount of carbon removed from the ash established as 6.75% by weight of the sample.

The research was carried out within the framework of grant funding from the Committee of Science of the Ministry of Education and Science of the Republic of Kazakhstan for 2021–2023 in the priority area “Geology, mining and processing of mineral and hydrocarbon raw materials, new materials, technologies, safe products and structures” of project No. АР09259637 “Development of a highly efficient wastefree technologies for the utilization of ash from coal combustion with the production of marketable products.

Ключевые слова Ash, carbon, roasting, thermodynamics, Gibbs free energy, chlorine, calcium chloride, differential thermal analysis
Библиографический список

1. Borbat V. F., Adeeva L. N., Kolosov P. E., Mihaylo Yu. L. Coal waste – a promising raw material for various industries. Proceedings of the international scientific seminar “Innovative technologies-2011”. Krasnoyarsk, 2011.

2. Yao Z. T., Ji X. S., Sarker P. K. et al. and other. A comprehensive review on the applications of coal fly ash. Earth-Science Reviews. 2015. Vol. 141. pp. 105–121.
3. Zacco A., Borgese L., Gianoncelli A. et al. Review of fly ash inertisation treatments and recycling. Environmental Chemistry Letters. 2014. Vol. 12. pp. 153–175.
4. Ward C. R., French D. Relation between Coal and Fly Ash Mineralogy. Based on Quantitative X-Ray Diffraction Methods, in World of Coal Ash. Lexington, Kentucky, USA. 2005.
5. Roth E., Macala M. K., Lin R. et al. Distributions and Extraction of Rare Earth Elements from Coal and Coal By-Products. 2017 World of Coal Ash Conference in Lexington. 2017.
6. Dwivedi А., Jain М. К. Fly ash – waste management and overview: A Review. Recent Research in Science and Technology. 2014. Vol. 6(1). pp. 30–35.
7. Patil S. V., Suryakant C. Nawle, Sunil J. Kulkarni. Industrial Applications of Fly ash: A Review. International Journal of Science, Engineering and Technology Research. 2013. Vol. 2, Iss. 9. pp. 1659–1663.
8. Cherkasova T. G., Cherkasova Y. V., Tikhomirova A. V., Bobrovnikova A. A., Nevedrov A. V. et al. Coal waste as raw material for production of rare and trace elements. Bulletin of the Kuzbass State Technical University. 2016. No. 6(118). pp. 185–190.
9. Pashkov G. L., Saikova S. V., Kuzmin V. I., Panteleeva M. V., Kokorina A. N. et al. Natural coal ash – unconventional source of rare elements. Journal of Siberian Federal University. Engineering and Technologies. 2012. Vol. 5, No. 5. pp. 520–530.
10. Akhmedyanov A. U., Kirgizbaeva K. Zh., Turekhanova G. I. Recycling of waste (ash and slag) of industrial enterprises. Techical Science. Mining engineering. 2018. Vol. 10. pp. 1–3.
11. Kaplan V., Dosmukhamedov N., Zholdasbay E., Daruesh G., Argyn A. Alumina and Silica Produced by Chlorination of Power Plant Fly Ash Treatment. Journal of the Minerals Metals & Materials Society. 2020. Vol. 72, No. 10. pp. 3348–3357.
12. Buldakov Yu. M., Egizekov M. G., Kulenova N. A., Reimer Yu. A., Skorikov S. P. Commodity coal and its combustion products: Prospects for the development of new industries. Novosti Nauki Khazahstana. 2018. No. 1(135). pp. 99–116.
13. Turkdogan E. T. Physical chemistry of high temperature technology. New York : Academic Press, 1980. 462 р.
14. Dosmukhamedov N. K., Kaplan V. A., Zholdasbay E. E., Daruesh G. S., Argyn A. A. Isolation of iron in iron-containing product from ash from burning of Ecibastuz coal. Ugol. 2021. No. 1.(138). pp. 56–61.

Полный текст статьи Behavior of the components of carbon-containing ash from the combustion of power coals under the conditions of chlorination roasting
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