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dc.contributor.authorПетрик, Михайло Романович-
dc.contributor.authorХіміч, Олександр Миколайович-
dc.contributor.authorМихалик, Дмитро Михайлович-
dc.contributor.authorБойко, Ігор Володимирович-
dc.contributor.authorКовбашин, Василь Іванович-
dc.date.accessioned2020-01-30T11:01:38Z-
dc.date.available2020-01-30T11:01:38Z-
dc.date.issued2020-
dc.date.submitted2019-11-10-
dc.identifier.citationHigh-performance computing technologies of modeling and identification of adsorption in nanoporous systems with feedbacks for gas purification / Mykhaylo Petryk; Oleksandr Khimich; Dmytro Mykhalyk; Igor Boyko; Vasil Kovbashyn // Scientific Journal of TNTU. — Tern. : TNTU, 2019. — Vol 95. — No 3. — P. 139–145.uk_UA
dc.identifier.issn2522-4433-
dc.identifier.urihttp://elartu.tntu.edu.ua/handle/lib/30747-
dc.description.abstractThe paper deals with high-performance computing technologies of modeling and identification of adsorption in nanoporous systems with feedbacks for gas purification. Analytical solutions to the problem of non-isothermal adsorption and desorption are based on Heaviside’s operational method and Laplace integral transform, but the development of calculations is quite original. Experimental and modeling distributions of moisture and temperatures of gas at the inlet and outlet of the silica beds for each adsorption – desorption phase at different times are presented. The distribution of moisture within the beds for the full dehydration – regeneration cycle is determined.uk_UA
dc.format.extent139-145-
dc.language.isoenuk_UA
dc.publisherТернопільський національний технічний університет імені Івана Пулюяuk_UA
dc.relation.urihttps://doi.org/10.33108/visnyk_tntu2019.03uk_UA
dc.relation.urihttp://visnyk.tntu.edu.ua/?art=515uk_UA
dc.subjecthigh-performance computing technologies, nanoporous systems with feedbacks, adsorption and desorption of gases modelling; Heaviside’s operational method; Laplace integral transformuk_UA
dc.titleHigh-performance computing tehcnologies of modeling and identification of adsorbtion in nanoporous systems with feedbacks for gas purificationuk_UA
dc.title.alternativeВисокопродуктивні комп'ютерні технології моделювання та ідентифікації дасорбції в нанопористих системах зі зворотними за'язками для оцищення газів.uk_UA
dc.typeArticleuk_UA
dc.rights.holder© Петрик М.Р., Хіміч О.М., Михалик Д.М., Бойко І.В, Ковбашин В.І., 2019uk_UA
dc.coverage.placenameТернопільський національний технічний університет імені Івана Пулюяuk_UA
dc.subject.udc519.7uk_UA
dc.relation.referencesUnger N., Bond T. C., Wang J. S., Koch D. M., Menon S., Shindell D. T., Bauer S. Attribution of climate forcing to economic sectors. Proc. Natl. Acad. Sci., 2010. 107 (8). Р. 3382–7.uk_UA
dc.relation.referencesEuro 5 and Euro 6 standards: reduction of pollutant emissions from light vehicles. URL: europa.eu/legislation_summaries/environment/air_pollution/l28186_es.htm (accessed 5.06.2010).uk_UA
dc.relation.referencesGandhidasan P., Al-Farayedhi AA, Al-Mubarak AA. Dehydration of natural gas using solid desiccants. Energy 2001, 26. P. 855–868.uk_UA
dc.relation.referencesKarimi A., Abdi MA. Selective dehydration of high-pressure natural gas using supersonic nozzles. Chemical Engineering and Processing. 2009. 48. P. 560–568.uk_UA
dc.relation.referencesNetusil M., Pavel D. Comparison of three methods for natural gas dehydration. Journal of Natural Gas Chemistry. 2011. 20 (5). P. 471–476.uk_UA
dc.relation.referencesPuertolas B., Navarro M. V., Lopez J. M., Murillo R., Mastral A. M., Garcia T. Modelling the heat and mass transfers of propane onto a ZSM-5 zeolite. Separation and Purification Technology. 2012. 86. P. 127–136.uk_UA
dc.relation.referencesPetryk M., Khimitch A., Petryk M. M., Fraissard J. Experimental and computer simulation studies of dehydration on microporous adsorbent of natural gas used as motor fuel. Fuel. 2019. Vol. 239. P. 1324–1330.uk_UA
dc.relation.referencesSergienko I., Petryk M., Khimith O. N., Mykhalyk D., Leclerc S., Fraissard J. Mathematical Modelling of Diffusion Process in Microporous Media (Numerical analysis and application). National Academy of Sciences of Ukraine. Kyiv, 2014. 196 p. [In Ukrainian].uk_UA
dc.relation.referencesLavrentiev M. A., Shabat B. V. Methods of theory of functions of a complex variable. M.: Nauka, 1973. 736 p. [In Russian].uk_UA
dc.relation.referencesenUnger N., Bond T. C., Wang J. S., Koch D. M., Menon S., Shindell D. T., Bauer S. Attribution of climate forcing to economic sectors. Proc. Natl. Acad. Sci., 2010. 107 (8). Р. 3382–7.uk_UA
dc.relation.referencesenEuro 5 and Euro 6 standards: reduction of pollutant emissions from light vehicles. URL: europa.eu/legislation_summaries/environment/air_pollution/l28186_es.htm (accessed 5.06.2010).uk_UA
dc.relation.referencesenGandhidasan P., Al-Farayedhi AA, Al-Mubarak AA. Dehydration of natural gas using solid desiccants. Energy 2001, 26. P. 855–868.uk_UA
dc.relation.referencesenKarimi A., Abdi MA. Selective dehydration of high-pressure natural gas using supersonic nozzles. Chemical Engineering and Processing. 2009. 48. P. 560–568.uk_UA
dc.relation.referencesenNetusil M., Pavel D. Comparison of three methods for natural gas dehydration. Journal of Natural Gas Chemistry. 2011. 20 (5). P. 471–476.uk_UA
dc.relation.referencesenPuertolas B., Navarro M. V., Lopez J. M., Murillo R., Mastral A. M., Garcia T. Modelling the heat and mass transfers of propane onto a ZSM-5 zeolite. Separation and Purification Technology. 2012. 86. P. 127–136.uk_UA
dc.relation.referencesenPetryk M., Khimitch A., Petryk M. M., Fraissard J. Experimental and computer simulation studies of dehydration on microporous adsorbent of natural gas used as motor fuel. Fuel. 2019. Vol. 239. P. 1324–1330.uk_UA
dc.relation.referencesenSergienko I., Petryk M., Khimith O. N., Mykhalyk D., Leclerc S., Fraissard J. Mathematical Modelling of Diffusion Process in Microporous Media (Numerical analysis and application). National Academy of Sciences of Ukraine. Kyiv, 2014. 196 p. [In Ukrainian].uk_UA
dc.relation.referencesenLavrentiev M. A., Shabat B. V. Methods of theory of functions of a complex variable. M.: Nauka, 1973. 736 p. [In Russian].uk_UA
dc.contributor.affiliationTernopil Ivan Puluj National Technical University, Ternopil, Ukraineuk_UA
dc.contributor.affiliationGlushkov Institute of Cybernetics of NAS of Ukraine, Kyiv, Ukraineuk_UA
dc.citation.journalTitleScientific journal of TNTU-
dc.citation.issue3 (95)-
dc.citation.spage139-
dc.citation.epage145-
dc.coverage.countryUAuk_UA
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