Окремий випадок термохімічного аналізу кавітаційного сонолізу води

dc.citation.journalTitleХімія, технологія речовин та їх застосування
dc.contributor.affiliationНаціональний університет "Львівська політехніка"uk_UA
dc.contributor.authorСухацький, Юрій Вікторович
dc.contributor.authorSukhatskyi, Yurii Viktorovych
dc.coverage.countryUAuk_UA
dc.coverage.placenameЛьвівuk_UA
dc.date.accessioned2020-07-23T08:23:55Z
dc.date.available2020-07-23T08:23:55Z
dc.date.issued2020
dc.date.submitted2020
dc.description.abstractРозглянуто механізм сонолізу води з утворенням як інтермедіатів (вільних радикалів), так і основних продуктів (водню та кисню), що мають важливе значення для тепло-енергетики і технологій водоочищення, які ґрунтуються на застосуванні передових процесів окиснення. Проаналізовано ефективність генерування гідроксильних радикалів у середовищі інертних газів та кисню. Розраховано величину хіміко-акустичного коефіцієнта корисної дії для гідродинамічного струменевого кавітатора, яка становить 0,3675 %, що, принаймні, у 2,5 рази перевищує аналогічну величину для ультразвукових генераторів кавітації.uk_UA
dc.description.abstractThe mechanism of water sonolysis with the formation of both intermediates (free radicals) and basic products (hydrogen and oxygen), which are important for thermal power engineering and water purification technologies, based on the use of advanced oxidation processes, wasresearched. The efficiency of hydroxyl radical generation in the environment of inert gases and oxygen was analyzed. The value of the chemical-acoustic efficiency for the hydrodynamic jet cavitator was calculated and itis 0.3675 %, which is at least 2.5 times higher than the similar value for ultrasonic cavitation generators.uk_UA
dc.description.sponsorshipРоботу виконано за підтримки Міністерства освіти і науки України у межах спільного українсько-індійського науково-дослідного проєкту “Гідродинамічна кавітація як основа інтенсивної і дешевої технології очищення промислових стічних вод, які містять токсичні органічні сполуки і тверді частинки”.uk_UA
dc.format.extent39-44
dc.identifier.citationСухацький Ю. В. Окремий випадок термохімічного аналізу кавітаційного сонолізу води / Ю. В. Сухацький // Хімія, технологія речовин та їх застосування. – 2020. – Т. 3, № 1. – С. 39–44. – Бібліографія: 19 назв.uk_UA
dc.identifier.doihttps://doi.org/10.23939/ctas2020.01.039
dc.identifier.urihttps://ena.lpnu.ua/handle/ntb/53019
dc.language.isoukuk_UA
dc.publisherВидавництво Львівської політехнікиuk_UA
dc.relation.references1. Chiha, M., Merouani, S., Hamdaoui, O., Baup, S., Gondrexon, N., Pétrier, C. (2010). Modeling of ultrasonic degradation of non-volatile organic compounds by Langmuir-type kinetics. Ultrasonics Sonochemistry, 17 (5), 773-782.uk_UA
dc.relation.references2. Korn, M., Andrade, M. V. A. S., Borges, S. S., Sousa, C. S., Oliveira, F. S. (2003). Reagent generation assisted by ultrasonic irradiation. Journal of the Brazilian Chemical Society, 14 (2), 254-258.uk_UA
dc.relation.references3. Torres-Palma, R. A., Serna-Galvis, E. A. (2018). Sonolysis. In S. C. Ameta & R. Ameta (Ed.), Advanced Oxidation Processes for Wastewater Treatment (1st Ed.). (pp. 177-213). New York, NY: Academic Press.uk_UA
dc.relation.references4. Merouani, S., Hamdaoui, O., Rezgui, Y., Guemini, M. (2015). Sensitivity of free radicals production in acoustically driven bubble to the ultrasonic frequency and nature of dissolved gases. Ultrasonics Sonochemistry, 22, 41-50.uk_UA
dc.relation.references5. Merouani, S., Hamdaoui, O., Rezgui, Y., Guemini, M. (2016). Computational engineering study of hydrogen production via ultrasonic cavitation in water. International Journal of Hydrogen Energy, 41 (2), 832-844.uk_UA
dc.relation.references6. Merouani, S., Hamdaoui, O. (2018). Correlations between the sonochemical production rate of hydrogen and the maximum temperature and pressure reached in acoustic bubbles. Arabian Journal for Science and Engineering, 43, 6109-6117.uk_UA
dc.relation.references7. Kohno, M., Mokudai, T., Ozawa, T., Niwano, Y. (2011). Free radical formation from sonolysis of water in the presence of different gases. Journal of Clinical Biochemistry and Nutrition, 49 (2), 96-101.uk_UA
dc.relation.references8. Kidak, R., Ince, N.H. (2006). Effects of operating parameters on sonochemical decomposition of phenol. Journal of Hazardous Materials, 137 (3), 1453-1457.uk_UA
dc.relation.references9. Babu, S. G., Ashokkumar, M., Neppolian, B. (2016). The role of ultrasound on advanced oxidation processes. In J.C. Colmenares & G. Chatel (Ed.), Sonochemistry: from basic principles to innovative applications. (pp. 117-148). Cham: Springer.uk_UA
dc.relation.references10. Kvartenko, O. M. (2019). Rozvytok naukovykh zasad udoskonalennya tekhnolohiy ochyshchennya bahato komponentnykh pidzemnykh vod: dys. d-ratekhn. nauk. Natsionalʹnyy tekhnichnyy universytet Ukrayiny "Kyyivsʹkyy politekhnichnyy instytut imeni Ihorya Sikorsʹkoho", Kyyiv.uk_UA
dc.relation.references11. Grieser, F. (Eds.). (2013). Free radical formation and scavenging by solutes in the sonolysis of aqueous solutions, Proceedings of Meetings on Acoustics, ICA 2013. Montreal, Canada: Acoustical Society of America.uk_UA
dc.relation.references12. Merouani, S., Hamdaoui, O., Rezgui, Y., Guemini, M. (2015). Mechanism of the sonochemical production of hydrogen. International Journal of Hydrogen Energy, 40 (11), 4056-4064.uk_UA
dc.relation.references13. Rashwan, S. S., Dincer, I., Mohany, A., Pollet, B. G. (2019). The sono-hydro-gen process (ultrasound induced hydrogen production): challenges and opportunities. International Journal of Hydrogen Energy, 44 (29), 14500-14526.uk_UA
dc.relation.references14. Sathishkumar, P., Mangalaraja, V., Anandan, S. (2016). Review on the recent improvements in sonochemical and combined sonochemical oxidation processes - a powerful tool for destruction of environmental contaminants. Renewable and Sustainable Energy Reviews, 55, 426-454.uk_UA
dc.relation.references15. Shinde, S. S., Bhosale, C. H., Rajpure, K. Y. (2012). Hydroxyl radical's role in the remediation of wastewater. Journal of Photochemistry and Photobiology B: Biology, 116, 66-74.uk_UA
dc.relation.references16. Penconi, M., Rossi, F., Ortica, F., Elisei, F., Gentili, P. L. (2015). Hydrogen production from water by photolysis, sonolysis and sonophotolysis with solid solutions of rare earth, gallium and indium oxides as heterogeneous catalysts. Sustainability, 7, 9310-9325.uk_UA
dc.relation.references17. Von Sonntag, C. (2007). The basics of oxidants in water treatment. Part A: OH radical reactions. Water Science & Technology, 55 (12), 19-23.uk_UA
dc.relation.references18. Znak, Z. O., Sukhatskiy, Yu. V., Mnykh, R. V., Tkach, Z. S. (2018). Thermochemical analysis of energetic in the process of water sonolysis in cavitation fields. Voprosy khimii i khimicheskoi tekhnologii, 3, 64-69.uk_UA
dc.relation.references19. Margulis, M. A. (1986). Zvukokhimicheskiye reaktsii i sonolyuminestsentsiya. Moskva: Khimiya.uk_UA
dc.relation.referencesen1. Chiha, M., Merouani, S., Hamdaoui, O., Baup, S., Gondrexon, N., Pétrier, C. (2010). Modeling of ultrasonic degradation of non-volatile organic compounds by Langmuir-type kinetics. Ultrasonics Sonochemistry, 17 (5), 773-782.uk_UA
dc.relation.referencesen2. Korn, M., Andrade, M. V. A. S., Borges, S. S., Sousa, C. S., Oliveira, F. S. (2003). Reagent generation assisted by ultrasonic irradiation. Journal of the Brazilian Chemical Society, 14 (2), 254-258.uk_UA
dc.relation.referencesen3. Torres-Palma, R. A., Serna-Galvis, E. A. (2018). Sonolysis. In S. C. Ameta & R. Ameta (Ed.), Advanced Oxidation Processes for Wastewater Treatment (1st Ed.). (pp. 177-213). New York, NY: Academic Press.uk_UA
dc.relation.referencesen4. Merouani, S., Hamdaoui, O., Rezgui, Y., Guemini, M. (2015). Sensitivity of free radicals production in acoustically driven bubble to the ultrasonic frequency and nature of dissolved gases. Ultrasonics Sonochemistry, 22, 41-50.uk_UA
dc.relation.referencesen5. Merouani, S., Hamdaoui, O., Rezgui, Y., Guemini, M. (2016). Computational engineering study of hydrogen production via ultrasonic cavitation in water. International Journal of Hydrogen Energy, 41 (2), 832-844.uk_UA
dc.relation.referencesen6. Merouani, S., Hamdaoui, O. (2018). Correlations between the sonochemical production rate of hydrogen and the maximum temperature and pressure reached in acoustic bubbles. Arabian Journal for Science and Engineering, 43, 6109-6117.uk_UA
dc.relation.referencesen7. Kohno, M., Mokudai, T., Ozawa, T., Niwano, Y. (2011). Free radical formation from sonolysis of water in the presence of different gases. Journal of Clinical Biochemistry and Nutrition, 49 (2), 96-101.uk_UA
dc.relation.referencesen8. Kidak, R., Ince, N.H. (2006). Effects of operating parameters on sonochemical decomposition of phenol. Journal of Hazardous Materials, 137 (3), 1453-1457.uk_UA
dc.relation.referencesen9. Babu, S. G., Ashokkumar, M., Neppolian, B. (2016). The role of ultrasound on advanced oxidation processes. In J.C. Colmenares & G. Chatel (Ed.), Sonochemistry: from basic principles to innovative applications. (pp. 117-148). Cham: Springer.uk_UA
dc.relation.referencesen10. Kvartenko, O. M. (2019). Rozvytok naukovykh zasad udoskonalennya tekhnolohiy ochyshchennya bahato komponentnykh pidzemnykh vod: dys. d-ratekhn. nauk. Natsionalʹnyy tekhnichnyy universytet Ukrayiny "Kyyivsʹkyy politekhnichnyy instytut imeni Ihorya Sikorsʹkoho", Kyyiv.uk_UA
dc.relation.referencesen11. Grieser, F. (Eds.). (2013). Free radical formation and scavenging by solutes in the sonolysis of aqueous solutions, Proceedings of Meetings on Acoustics, ICA 2013. Montreal, Canada: Acoustical Society of America.uk_UA
dc.relation.referencesen12. Merouani, S., Hamdaoui, O., Rezgui, Y., Guemini, M. (2015). Mechanism of the sonochemical production of hydrogen. International Journal of Hydrogen Energy, 40 (11), 4056-4064.uk_UA
dc.relation.referencesen13. Rashwan, S. S., Dincer, I., Mohany, A., Pollet, B. G. (2019). The sono-hydro-gen process (ultrasound induced hydrogen production): challenges and opportunities. International Journal of Hydrogen Energy, 44 (29), 14500-14526.uk_UA
dc.relation.referencesen14. Sathishkumar, P., Mangalaraja, V., Anandan, S. (2016). Review on the recent improvements in sonochemical and combined sonochemical oxidation processes - a powerful tool for destruction of environmental contaminants. Renewable and Sustainable Energy Reviews, 55, 426-454.uk_UA
dc.relation.referencesen15. Shinde, S. S., Bhosale, C. H., Rajpure, K. Y. (2012). Hydroxyl radical's role in the remediation of wastewater. Journal of Photochemistry and Photobiology B: Biology, 116, 66-74.uk_UA
dc.relation.referencesen16. Penconi, M., Rossi, F., Ortica, F., Elisei, F., Gentili, P. L. (2015). Hydrogen production from water by photolysis, sonolysis and sonophotolysis with solid solutions of rare earth, gallium and indium oxides as heterogeneous catalysts. Sustainability, 7, 9310-9325.uk_UA
dc.relation.referencesen17. Von Sonntag, C. (2007). The basics of oxidants in water treatment. Part A: OH radical reactions. Water Science & Technology, 55 (12), 19-23.uk_UA
dc.relation.referencesen18. Znak, Z. O., Sukhatskiy, Yu. V., Mnykh, R. V., Tkach, Z. S. (2018). Thermochemical analysis of energetic in the process of water sonolysis in cavitation fields. Voprosy khimii i khimicheskoi tekhnologii, 3, 64-69.uk_UA
dc.relation.referencesen19. Margulis, M. A. (1986). Zvukokhimicheskiye reaktsii i sonolyuminestsentsiya. Moskva: Khimiya.uk_UA
dc.rights.holder© Ю. В. Сухацькийuk_UA
dc.subjectкавітаціяuk_UA
dc.subjectcavitationuk_UA
dc.subjectсонолізuk_UA
dc.subjectsonolysisuk_UA
dc.subjectрадикалиuk_UA
dc.subjectradicalsuk_UA
dc.subjectгідродинамічний струменевий кавітаторuk_UA
dc.subjecthydrodynamic jet cavitatoruk_UA
dc.subjectультразвукuk_UA
dc.subjectultrasounduk_UA
dc.subjectкисеньuk_UA
dc.subjectoxygenuk_UA
dc.subjectводеньuk_UA
dc.subjecthydrogenuk_UA
dc.subjectхіміко-акустичний коефіцієнт корисної діїuk_UA
dc.subjectchemical-acoustic efficiencyuk_UA
dc.titleОкремий випадок термохімічного аналізу кавітаційного сонолізу водиuk_UA
dc.title.alternativeParticular case of thermochemical analysis of cavitation sonolysis of wateruk_UA
dc.typeArticleuk_UA

Files

Original bundle

Now showing 1 - 1 of 1
Thumbnail Image
Name:
Окремий випадок_стаття_Сухацький Ю.В..pdf
Size:
1.01 MB
Format:
Adobe Portable Document Format
Description:
Стаття_Окремий випадок термохімічного аналізу

License bundle

Now showing 1 - 1 of 1
No Thumbnail Available
Name:
license.txt
Size:
2.99 KB
Format:
Item-specific license agreed upon to submission
Description: