PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Powiadomienia systemowe
  • Sesja wygasła!
Tytuł artykułu

Issues of the Impact of Granulated Sulfur Transportation on the Environmental Components

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Nowadays, sulfur is considered one of the primary resources of the chemical industry, most of which is produced as a refinery by-product during the processing of oil and natural gas. Sulfur production volumes are increasing every year, while the demand for it does not always match the growing supply, which leads to a serious problem of sulfur surplus in the world market. Granulated sulfur – the main commercial type of elemental sulfur – is transported in large quantities both by land and sea and can have a negative impact on the environment. At the moment, the issue of the negative impact of granulated sulfur on the environment has not been fully studied, which determines the relevance of this research. This review article presents the global market of granulated sulfur, paying attention to its safe transport – from the producer to the consumer. The potentially harmful factors of the impact of sulfur handling on elements of the natural environment, such as atmospheric air, water reservoirs, soil and vegetation, were also taken into account.
Rocznik
Strony
86--97
Opis fizyczny
Bibliogr. 73 poz., rys., tab.
Twórcy
  • Saint Petersburg Mining University, 21st Line of Vasilyevsky Island, 2, Saint-Petersburg, 199106, Russia
  • Saint Petersburg Mining University, 21st Line of Vasilyevsky Island, 2, Saint-Petersburg, 199106, Russia
  • Saint Petersburg Mining University, 21st Line of Vasilyevsky Island, 2, Saint-Petersburg, 199106, Russia
  • Faculty of Environmental Engineering, Lublin University of Technology, ul. Nadbystrzycka 40B, 20-618 Lublin, Poland
Bibliografia
  • 1. Sadieva H.R., Ybraimzhanova L., Dzhakeyeva Zh., Baltabaeva D. 2017. Obtaining colloidal dispersed nanoscale sulfur from petroleum granulated sulfur of the Tengiz field. Mechanics and Technologies, 2, 95-101.
  • 2. Dvoynikov M.V., Nutskova M.V., Blinov P.A. 2020. Developments made in the field of drilling fluids by Saint Petersburg Mining University. International Journal of Engineering, 33(4), 702-711. DOI: 10.5829/IJE.2020.33.04A.22.
  • 3. Semenov I.G., Yakovleva I.V. 2021. Sulfur: areas of application and significance for humans. In: Scientific and educational space in the face of modern challenges: collection of materials of the International Scientific and Practical Conference, p. 12-14. DOI 10.21661/r-553382.
  • 4. Kondrasheva N.K., Eremeeva A.M. 2023. Obtaining biodiesel fuel from vegetable raw materials. Journal of Mining Institute, 1-9. DOI: 10.31897/PMI.2022.15.
  • 5. Eloeva D.V. 2014. The biological role of sulfur and the use of its compounds in medicine. Successes of Modern Natural Science, 8, 166-166.
  • 6. Sabirov R.V., Makhotkin A.V. 2016. Analysis of known methods of processing sulfur into sulfur concrete, sulfur asphalt and other products. Bulletin of the Technological University, 20, 69-72.
  • 7. Khuzhakulov A.Kh. 2021. The use of sulfur in agriculture in Uzbekistan and training in safety requirements. Problems of Science, 96-102. DOI: 10.24411/2413-2101-2021-10601.
  • 8. Lapidus A.L., Golubeva I.A. 2011. Gas sulfur in Russia: problems and prospects. Gas Chemistry, 61-73.
  • 9. Ivanik S.A., Ilyukhin D.A. 2020. Flotation extraction of elemental sulfur from gold-bearing cakes. Journal of Mining Institute, 242, 202. DOI: 10.31897/pmi.2020.2.202.
  • 10. Shmal G., Zamriy A., Viktorova N., Alieva L. 2020. Oil without sulfur is a reality. Oil and Gas Vertical, 3-4. 102-108.
  • 11. Kovalenko V.V. 2020. Sulfur in the oil of the Ichedinskoye field of the Irkutsk region. Modern science: research and development: a collection of materials of the International competition of coursework, research and final qualification works, 35-37.
  • 12. Zorina S. 2016. Side effect. Results of modernization of the sulfur production unit at the Moscow Oil Refinery. Sibirskaya Neft: Online Journal, 132.
  • 13. Sorokin V.Yu., Anufrienko O.S. 2020. Innovative technologies in the disposal of oil refining wastes. Bulletin of the Osh State University, 1-1, 37-44.
  • 14. Shmulevich M.I. 2021. New technologies of oil refining and their impact on the railway transport of enterprises. Fedor Petrovich Kochnev – an outstanding organizer of transport education and science in Russia. Proceedings of an international scientific and practical conference, 194-201.
  • 15. Shakhparonova T., Sobianina D., Karapetyan K. 2021. Development of a dissolution model of a vitreous phosphorus-containing fertilizer concerning interdiffusion applied for calculation of fertilizer doses. Research on Crops, 22(2), 279-284. DOI: 10.31830/2348-7542.2021.069.
  • 16. Kameshkov A.V., Kondrasheva N.K., Gabdulkhako R.R., Rudko V.A. 2020. Comparison of coking additives obtained from different types of oil stock. Tsvetnye Metally, 10, 35-42. DOI: 10.17580/tsm.2020.10.05.
  • 17. Zavadskaya A.G. 2017. Analysis of the heater of the granular sulfur production plant as a control object. Actual Science, 3, 149.
  • 18. Kurochkina O.S., Zhukova N.V., Lyapina O.A. 2019. Implementation of the ecological aspect of education in the study of sulfur and its compounds. Modern Problems of Science and Education, 62-69.
  • 19. Massalimov I.A., Akhmetshin B.S., Mustafin A.G., Burkitbaev M.M., Urakaev F.Kh. 2022. Antifungal properties of sulfur nanoparticles and its significance in modern crop production. Principles of Ecology, 12(1), 3-11.
  • 20. Wagenfeld J.G., Al-Ali K., Almheiri S., Slavens A.F., Calvet N. 2019. Sustainable applications utilizing sulfur, a by-product from oil and gas industry: A state-of-the-art review. Waste Management, 95, 78-89. DOI: 10.1016/j.wasman.2019.06.002.
  • 21. Voloshina O.A. 2011. Sulfur production and market in the CIS countries. Mineral Resources in Russia. Economics and Management, 4, 68-73.
  • 22. Fernández L. 2021. Global sulfur production by country. https://www.statista.com/statistics/1031181/ sulfur-production-globally-by-country/.
  • 23. Kadijani J.A., Sirani S., Zolfaghari A. 2018. Sulphur: nature, technology, application, world production and consumption, and its outlook. Petroleum & Coal, 60(3), 509-520.
  • 24. Dvoynikov, M.V., Leusheva, E.L. 2022. Modern trends in hydrocarbon resources development. Journal of Mining Institute, 258, 879-880.
  • 25. Khairutdinova A.R., Lyzhina N.V. 2019. Prospects for the production and consumption of sulfur. Economic development in the XXI century: trends,challenges, prospects: a collection of scientific papers of the VII International scientific and practical conference of students, graduate students and young scientists “Horizons of Russia”. Kazan: publishing house of KNRTU, 155-158.
  • 26. Sannikova V.A. 2016. Modern problems of the sulfuric acid market. Collection of materials of the VIII All-Russian scientific and practical conference of young scientists with international participation “Young Russia”, 594-596.
  • 27. Zaitsev P. 2011. The status of Russian sulfur in the world market. Sulfur and sulfuric acid (CREON), 14.
  • 28. Harrisson P. 2015. Global Sulphur Market Outlook. https://infoindustria.com.ua/tak-li-neizbezhen-izbyitok-seryi-na-mirovom-ryinke/.
  • 29. Kostyukevich P.A., Siparo K.A., Novikova T.N. 2015. Export transportation of sulfur through sea ports: trends and prospects. Young Scientist, 23(103), 576-580. https://moluch.ru/archive/103/24083/.
  • 30. Galieva D.D., Khodchenko S.M. 2012. Designing a resource-and-energy-efficient sulfur supply network for the Astrakhan and Orenburg gas processing plants. Advances in Chemistry and Chemical Technology, 11(140), 88-92.
  • 31. Golubeva I.A., Rodina E.V. 2015. Gas processing enterprises of Russia. Astrakhan gas processing plant (Gazprom dobycha Astrakhan LLC). Oil Refining and Petrochemistry, 3, 29-36.
  • 32. Golubeva I.A., Khairullina G.R., Starynin A.Yu. 2017. Analysis of sulfur production by the Claus method at Russian oil and gas enterprises, unresolved problems. Neftegazokhimiya, 3, 5-12.
  • 33. Lukyanova L.I., Michurov Yu.I., Makhoshvili Yu.I., Krupina S.N., Shpeit S.G., Belevtseva A.Yu. 2005. Reducing sulfur losses from sulfur recovery units at the Astrakhan GPP. Vestnik ASTU, 6(29), 108-115.
  • 34. Kannan P., Raj A., Ibrahim S., Abumounshar N. 2022. Process integration of sulfur combustion with claus SRU for enhanced hydrogen production from acid gas. International Journal of Hydrogen Energy, 47, 12456-12468. DOI: 10.1016/j.ijhydene.2022.01.252.
  • 35. Ivanov A.V., Strizhenok A.V., Vorobey R.Y. 2021. Reduction of gas and aerosol pollution of atmospheric air at a condensate stabilization units. IOP Conference Series: Earth and Environmental Science, 839(4). DOI: 10.1088/1755-1315/839/4/042036.
  • 36. Lebedev A.B., Utkov V.A., Khalifa A.A. 2019. Sintered Sorbent Utilization for H2S Removal from Industrial Flue Gas in the Process of Smelter Slag Granulation. Journal of Mining Institute, 237, 292. DOI: 10.31897/pmi.2019.3.292.
  • 37. Kantyukov R.R., Zapevalov D.N., Vagapov R.K. 2021. Analysis of the application and impact of carbon dioxide media on the corrosion state of oil and gas facilities. Journal of Mining Institute, 250, 578-856. DOI: 10.31897/PMI.2021.4.11.
  • 38. Smirnyakov V.V., Rodionov V.A., Smirnyakova V.V., Orlov F.A. 2022. The influence of the shape and size of dust fractions on their distribution and accumulation in mine workings when changing the structure of air flow. Journal of Mining Institute, 253(1), 71-81. DOI:10.31897/PMI.2022.12.
  • 39. Tarakanov G.V. 2013. Technology of natural gas and gas condensate processing at the Astrakhan gas processing plant. Astrakhan state technical university. Astrakhan: Publishing House of ASTU, 148.
  • 40. Kiselev K. 2015. Operatively and at a high level: An interview during the exercises. Pulse of Aksaraysk: Weekly of Gazprom Dobycha Astrakhan LLC, 26(1147), 5.
  • 41. Nurgaliev E.R. 2015. Promising technological solutions for the transportation of granulated sulfur in soft containers by road. Actual directions of scientific research of the XXI century: Theory and Practice, 3(4-1(15-1)), 366-370.
  • 42. Akhundov E.A., Batishchev I.A., Shishenin E.A., Wagengeim S.G. 2018. Flexible container VKZ - a new page in the international rules for the transportation of dangerous goods. Proceedings of the Krylov State Research Center, 2, 151-159. DOI: 10.24937/2542-2324-2018-2-S-I-151-159.
  • 43. Lykov E.A., Minaeva A.A. 2013. Organization of transportation of sulfur on the ways of non-public use. Science and Education for Transport, 84-85.
  • 44. Kirichenko A.V., Kuznetsov A.L. Pogodin V.A. 2017. Dust prevention in bulk material transportation and handling. IOP Conference Series: Earth and Environmental Science, 87, 7. DOI: 10.1088/1755-1315/87/6/062008.
  • 45. Bardyshev O.A. 2019. Ensuring safety during bulk cargo transshipment in new marine terminals in Russia. Bulletin of MANEB, 24(1), 5-11.
  • 46. Goncharova N.V. 2018. Review of the current state of the technical equipment of river terminals in Russia. Problems of the use and innovative development of inland waterways in the basins of the great rivers: Tr. 19th Intern. scientific-industrial Forum “Great Rivers 2018”, 7, 6.
  • 47. Terent’eva T.G., Minina S.G. 2017. Development of transport and logistics infrastructure in Russia. Actual problems and prospects for the socio-economic development of modern Russia: A collection of articles of the All-Russian Scientific and Practical Conference, 126-131.
  • 48. Novikova T.K., Zhmyrko T.G. 2016. Ways to reduce the negative impact on the environment when handling bulk cargo. Natural resource potential, ecology and sustainable development of Russian regions: Collection of articles of the XIV International Scientific and Practical Conference, 65-68.
  • 49. Dotsenko Yu.I. 2005. Environmental aspects associated with the reconstruction of the Astrakhan gas processing plant. Modern Science-Intensive Technologies, 11, 14-15.
  • 50. Bazhin V., Masko O. 2022. Monitoring of the Behaviour and state of nanoscale particles in a gas cleaning system of an ore‐thermal furnace. Symmetry, 14. DOI: 10.3390/sym14050923.
  • 51. Izotova V.A., Kudryavtsev A.V. 2019. Formation of acidic waters of rain runoff on the territory of the sulfur transshipment terminal. Engineering systems and municipal economy: Materials of the 1st Regional scientific and practical conference, 16-19.
  • 52. Iovenko N.V., Rogov A.A. 2017. Analysis of the activities of railway freight operators in large multimodal transport complexes. Current state, problems and prospects for the development of industry science: Materials of the All-Russian Conference with international participation, 331-336.
  • 53. Poplevina E.A. 2017. Evaluation of the impact of the MTP Ust-Luga on the pollution of the Luga Bay of the Gulf of Finland using Arcgis. Metrological Bulletin, 9(4), 48-57.
  • 54. Edimichev D.A., Minkin A.N., Masaev S.N., Mezheumova A.A. 2020. On the issue of using electrostatic precipitators in the ventilation system of a sulfur production shop to capture sulfuric dust. Siberian Fire and Rescue Bulletin, 2(17), 12-19. DOI: 10.34987/vestnik.sibpsa.2020.17.2.010.
  • 55. Tishkova I.M. Andreeva E.S. 2018. Ensuring fire safety in warehouses of JSC “Ust-Donetsk port” of the Rostov region. Actual problems of science and technology: Materials of the national scientific and practical conference, 661-663.
  • 56. Sergeeva G.A. 2019. Fire safety analysis of the situation in ports with sulfur storages and accident modeling using tree diagrams. Scientific and Practical Electronic Journal Alley of Science, 5(32), 5.
  • 57. Ivanovskaya A.V., Senich A.V. 2021. Analysis of Existing Methods for Protecting the Marine Environment from Dust Formation during Cargo Operations in Roads. II Nat. Scientific-Practical. Conf. with international participation “Actual problems of engineering, technology and education”: Sat. abstracts of reports of participants Scientific-Pract. Conf., 349-352.
  • 58. Zyryanova O. V., Kireeva E. V., Abramova A. E. 2022. Development of dust-suppressing compositions to ensure environmental safety in open-pit mining. Ecology and Industry of Russia, 26(10), 22-28. DOI:10.18412/1816-0395-2022-10-22-28.
  • 59. Haoyuan D., Jianchun F., Shengnan W., Yanqiu Y., Di L., Zhibin H. 2018. Experimental study on ignition mechanisms of wet granulation sulfur caused by friction. Journal of Hazardous Materials, 344, 480-489. DOI: 10.1016/j.jhazmat.2017.10.056.
  • 60. Vishnivetsky I.Ya., Kaminsky Yu.S., Petrovsky E.A., Soynov A.I., Tomm P.V. 2012. Testing of flexible shelters for dangerous goods on a full-size model of a railway gondola car in a wind tunnel. The Russian Railway Science Journal, 5, 44-48.
  • 61. Panfilov P.Yu., Katulsky Yu.N. 2021. Possible sources and scenarios for the occurrence and development of accidents at the sulfur production unit. Collection of scientific papers of the Angarsk State Technical University, 1(18), 202-207.
  • 62. Nigmetov R.I., Parshin N.N., Popadin N.V., Nurakhmedova A.F., Sukhorev I.G. 2015. On preventing the accumulation of static electricity by granular sulfur. Bulletin of ASTU, 1(59), 41-46.
  • 63. Borowski G., Smirnov Y., Ivanov A., Danilov A. 2020. Effectiveness of carboxymethyl cellulose solutions for dust suppression in the mining industry. International Journal of Coal Preparation and Utilization. DOI: 10.1080/19392699.2020.1841177.
  • 64. Frolov I.A., Zvereva U.G., Dudareva T.V., Krasotkina I.A., Nikolsky V.G., Lyusova L.R., Naumova Yu.A. 2018. The use of large-tonnage industrial waste to create bitumen composites with improved durability. Thin chemical technologies, 13(2), 64-71. DOI: 10.32362/2410-6593-2018-13-2-64-71.
  • 65. Matveeva V.A., Smirnov Y.D., Suchkov D.V. 2022. Industrial processing of phosphogypsum into organomineral fertilizer. Environmental Geochemistry and Health, 44(5), 1605–1618. DOI: 10.1007/s10653-021-00988-x.
  • 66. Kozhukhova N.V., Bazhanov R.E. 2017. Utilization of drilling waste and sulfur of oil and gas complexes. Bulletin of Scientific Conferences, 4-5(20), 89-91.
  • 67. Amanova N.D., Turaev Kh.Kh., Beknazarov Kh.S. 2020. Synthesis and study of new polymeric sulfur concrete. Universum: technical sciences, 6(75), 5-8.
  • 68. Andrianov V.A., Plakitin V.A. 2013. Hydrochemical indicators of the Volga delta water in the area of the sulfur loading terminal. Ecology of Russia: on the way to innovations, interuniversity collection of scientific papers, 7, 4-7.
  • 69. Dierova M., Isagaliev M.T. 2018. Migration of sulfur in desert-sandy soils under the influence of sulfur waste. Agrarian science – agriculture: Proc. of XIII Internat. Scientific and Practical Conference, 28-29.
  • 70. Shabanov M.V. 2021. Sulfur in geochemically conjugated landscapes of the Soymonovskaya Valley (Chelyabinsk region). Proc. of the Ural State Mining University, 1(61), 118-126. DOI: 10.21440/ 2307-2091-2021-1-118-126.
  • 71. Zhuikov D.V. 2020. Sulfur and microelements in agrocenoses (review). Achievements of Science and Technology of APK, 34(11), 32-42. DOI: 10.24411/0235-2451-2020-11105.
  • 72. Konstantinova A.A. 2019. Sources of pollution of the Talazhsky Air town and their impact on the soil. International Student Scientific Bulletin, 5(1), 19.
  • 73. Pustovaya L.E., Chebysheva V.A. 2021. Analysis and assessment of the level of safety of port facilities on the example of a sulfur storage warehouse. Safety of Technogenic and Natural Systems, 2, 43−49. DOI: 10.23947/2541-9129-2021-2-43-49.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-88dc34ff-7aa0-49de-a59e-8fb36deb95a6
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.