Establishing the regularities in forming the properties of ceramic wall materials containing waste from gas extraction (drilling sludge)
DOI:
https://doi.org/10.15587/1729-4061.2020.200994Keywords:
drilling sludge, ceramic materials, ceramics, density, water absorption, frost-resistant wall ceramics, loam, mineral additiveAbstract
This paper addresses the prospects of recycling waste from oil and gas extraction in order to manufacture building materials. The principal possibility has been established to apply the examined samples of drilling sludge as the basic raw material and a mineral additive in the compositions of masses to produce wall ceramics with the required consumer properties.
The main technological parameters for obtaining wall ceramics using the samples of gas extraction waste have been investigated. The formulations for ceramic masses have been developed applying fusible medium-sintered loam and drilling sludge in the amount of 20–80 % by weight. The properties of the obtained ceramic samples containing clay and high-carbonate drilling sludges have been analyzed. It has been found that increasing the amount of drilling sludge in the samples by 20 % to 80 % leads to a decrease in the density, strength, and an increase in the water absorption of the samples, which affects the quality of ceramics and the possibility of its practical use. We have established the regularities of change in the properties of the wall materials samples depending on the amount of the examined drilling sludge.
The optimal number of drilling sludge samples for the manufacture of wall ceramics with the norm-compliant properties has been determined. It has been found that it is possible to use clay drilling sludge (20‒80 %) in the composition with fusible loam in order to obtain frost-resistant ceramic materials whose water absorption is at the level of 12 %, of grade M 125‒M 175. Adding high carbonate sludge to fusible loam in the amount of 20 % makes it possible to receive frost-resistant ceramic materials of grade M 75, in the amount of 40 % ‒ of grade M 100References
- Razmgir, S. M., Afsari, M., Amani, M. (2011). Drilling Waste Management: A Case Study of the Drilling Waste Management and Environmental Control in one of the Iranian Offshore Fields. SPE Middle East Unconventional Gas Conference and Exhibition. doi: https://doi.org/10.2118/142487-ms
- Rykusova, N. (2017). Impact of drilling operations and waste of drilling of oil and gas wells upon natural environment. Bulletin of NTU “KhPI”. Series: Mechanical-technological systems and complexes, 20, 98–102. Available at: http://mtsc.khpi.edu.ua/article/view/109628/104610
- Ablieieva, I. Yu. (2016). Ekonomichne obgruntuvannia tekhnolohiyi sumisnoi utylizatsiyi burovoho shlamu ta fosfohipsu. Sovremennye tendentsii v nauke i obrazovanii: Sbornik nauchnyh statey. Warszawa, 71–73. Available at: http://xn--e1aajfpcds8ay4h.com.ua/files/file/scientific_conference_49/zbornik_49_6_Krak%C3%B3w_30.01.2016.pdf
- Oreshkin, D. V., Chebotaev, A. N., Perfilov, V. A. (2015). Disposal of Drilling Sludge in the Production of Building Materials. Procedia Engineering, 111, 607–611. doi: https://doi.org/10.1016/j.proeng.2015.07.053
- Bernardo, G., Marroccoli, M., Nobili, M., Telesca, A., Valenti, G. L. (2007). The use of oil well-derived drilling waste and electric arc furnace slag as alternative raw materials in clinker production. Resources, Conservation and Recycling, 52 (1), 95–102. doi: https://doi.org/10.1016/j.resconrec.2007.02.004
- El-Mahllawy, M. S., Osman, T. A. (2010). Influence of Oil Well Drilling Waste on the Engineering Characteristics of Clay Bricks. Journal of American Science, 6 (7), 48–54. Available at: https://www.researchgate.net/publication/266041235_Influence_of_Oil_Well_Drilling_Waste_on_the_Engineering_Characteristics_of_Clay_Bricks
- Mostavi, E., Asadi, S., Ugochukwu, E. (2015). Feasibility Study of the Potential Use of Drill Cuttings in Concrete. Procedia Engineering, 118, 1015–1023. doi: https://doi.org/10.1016/j.proeng.2015.08.543
- Zhang, A., Li, M., Lv, P., Zhu, X., Zhao, L., Zhang, X. (2016). Disposal and Reuse of Drilling Solid Waste from a Massive Gas Field. Procedia Environmental Sciences, 31, 577–581. doi: https://doi.org/10.1016/j.proenv.2016.02.089
- Tuncan, A., Tuncan, M., Koyuncu, H. (2000). Use of petroleum-contaminated drilling wastes as sub-base material for road construction. Waste Management & Research, 18 (5), 489–505. doi: https://doi.org/10.1177/0734242x0001800511
- Huang, Z., Xu, Z., Quan, Y., Jia, H., Li, J., Li, Q. et. al. (2018). A review of treatment methods for oil-based drill cuttings. IOP Conference Series: Earth and Environmental Science, 170, 022074. doi: https://doi.org/10.1088/1755-1315/170/2/022074
- Paladino, G., Arrigoni, J. P., Satti, P., Morelli, I., Mora, V., Laos, F. (2016). Bioremediation of heavily hydrocarbon-contaminated drilling wastes by composting. International Journal of Environmental Science and Technology, 13 (9), 2227–2238. doi: https://doi.org/10.1007/s13762-016-1057-5
- Jamrozik, A., Ziaja, J., Gonet, A. (2011). Analysis of Applicability of Modified Drilling Waste for Filling out Annular Space in Horizontal Directional Drilling. Polish J. of Environ. Stud., 20 (3), 671–675. Available at: http://www.pjoes.com/Analysis-of-Applicability-of-Modified-Drilling-r-nWaste-for-Filling-out-Annular-Space,88605,0,2.html
- Rykusova, N., Shestopalov, O., Lebedev, V., Tykhomyrova, T., Bakharievа, G. (2019). Identification of properties of recycled highdensity polyethylene composites when filled with waste mud solids. Eastern-European Journal of Enterprise Technologies, 2 (10 (98)), 55–60. doi: https://doi.org/10.15587/1729-4061.2019.163656
- Shestopalov, O., Briankin, O., Lebedev, V., Troshin, O., Muradian, A., Ocheretna, V., Yaremenko, N. (2019). Identifying the properties of epoxy composites filled with the solid phase of wastes from metal enterprises. Eastern-European Journal of Enterprise Technologies, 6 (10 (102)), 25–31. doi: https://doi.org/10.15587/1729-4061.2019.186050
- Robinson, J., Kingman, S., Snape, C. E., Bradley, M., Bradshaw, S., Thomas, D. J. M., Page, P. W. (2009). Microwave Treatment of Oil-Contaminated Drill Cuttings at Pilot Scale. SPE Drilling & Completion, 24 (03), 430–435. doi: https://doi.org/10.2118/111637-pa
- Mohammed, B., Cheeseman, C. R. (2011). Use of Oil Drill Cuttings as an Alternative Raw Material in Sandcrete Blocks. Waste and Biomass Valorization, 2 (4), 373–380. doi: https://doi.org/10.1007/s12649-011-9089-z
- Rykusova, N., Shestopalov, O., Shchukina, L., Briankin, O., Galushka, Y. (2020). Study of the properties of drill cuttings at their use as technogenic raw materials for the production of building ceramics. ScienceRise, 1 (66), 10–22. doi: https://doi.org/10.21303/sr.v0i1.1158
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Copyright (c) 2020 Nadegda Rykusova, Oleksii Shestopalov, Liudmyla Shchukina, Larysa Yashchenko, Iraida Stanovska, Arsen Muradian, Valentyna Ocheretna
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