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K. Fakhreev, F. M. Gumerov, F. R. Gabitov, R. A. Usmanov, D. G. Amirkhanov, and R. S. Yarullin, SKF-TP 3(2), 7 (2008).\nMary Den Idz, Vitamines and Mineral Substances (Komplekt, St.-Petersburg, 1995) [in Russian].\nR. G. Zhbankov, Infrared Spectra of Cellulose and its Derivatives (Nauka Tekhnika, Minsk, 1964) [in Russian].\nGOST 30178-96, “Raw Materials and Food-Stuffs. Atomic Absorption Method for the Determination of Toxic Elements.”\nGOST 30692-2000, “Feed, Feed Milling Raw Materials. Atomic Absorption Method for the Determination of Content of Copper, Lead, Zinc, and Cadmium.”\nGOST 26929-94, “Raw Materials and Food-Stuffs. Preparation of Samples. Mineralization for the Determination of Toxic Element Content.”\nT. R. Bilalov, I. R. Sharafutdinov, F. R. Gabitov, and F. M. Gumerov, in Proceedings of the 4th International Conference on Supercritical Fluids: Fundamentals, Technologies, Innovations, Kazan, 2007, p. 103.\nA. V. Iogansen, Spectrochim. Acta A 55, 1582 (1999).",{"EN":178},"The influence of the pretreatment procedures with supercritical CO2 (SC-CO2) on the elemental composition of tealeaf is studied. Fourier-transform infrared absorption spectroscopy is used to examine the effect of SC-CO2 on the structure of Chinese green tea and cellulose.",{"EN":180},"Effect of treatment in supercritical CO2 on the composition and structure of tealeaf and cellulose",{"VOID":182},"10.1134\u002FS1990793111070141","PUBLICATION","VERIFIED","Auto Verify","http:\u002F\u002Flink.springer.com\u002F10.1134\u002FS1990793111070141",[188,205,221,234,247,260,273,285,300,312],{"id":189,"sortIndex":190,"researcher":20,"roles":191,"affiliations":193,"properties":202},"3367b5f4-4edd-43c6-9df9-0d7bcb8427fa",1,[192],"AUTHOR",[194],{"id":20,"sortIndex":21,"affiliation":195,"properties":20},{"id":196,"createTime":197,"updateTime":197,"relativeEntities":198,"slug":20,"properties":199,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"150ea510-dcdc-4cfc-9640-9a5bbebdffee","2024-02-02T05:59:35.969+00:00",[],{"title":200},{"VI":201},"Kazan State Technical University, Kazan, Russia",{"title":203},{"VI":204},"L. 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V. Andreev, V. N. Trushin, and M. A. Faddeev, X‑Ray Phase Analysis of Polycrystalline Materials (Nizhegor. Gos. Univ., Nizhny Novgorod, 2012) [in Russian].\nD. R. Anfimov, Ig. S. Golyak, O. A. Nebritova, and I. L. Fufurin, Russ. J. Phys. Chem. B 41 (10), 10 (2022).https:\u002F\u002Fdoi.org\u002F10.31857\u002FS0207401X22100028\nI. A. Matveeva, V. T. Shashkova, A. V. Lyubimov, et al., Russ. J. Phys. Chem. B 38 (9), 30 (2019).https:\u002F\u002Fdoi.org\u002F10.1134\u002FS0207401X19090048\nJ. P. Glusker and K. N. Trueblood, Crystal Structure Analysis (Oxford Univ. Press, New York, 1972).\nP. Chizhov, E. Levin, A. Mityaev, and A. Timofeev, Instruments and Methods of X-Ray and Electron Diffraction (Mosk. Fiz. Tekh. Inst., Moscow, 2011).\nD. O. Sinitsyn, V. Yu. Lunin, A. N. Grum-Grzhimailo, et al., Russ. J. Phys. Chem. B 33 (7), 21 (2014).\nV. A. Zhorin, M. R. Kiselev, L. L. Mukhina, T. P. Puryaeva, I. V. Razumovskaya, Russ. J. Phys. Chem. B 27 (2), 39 (2008).\nhttps:\u002F\u002Fvk.com\u002Fluconpro-vse-o-metode-rentgenofluorescentnogo-analiza-rfa-kak-eto-rab.\nN. G. Chernorukov and O. V. Nipruk, Theory and Practice of X-Ray Fluorescence Analysis. Electronic Teaching Aid (Nizhegor. Gos. Univ., Nizhny Novgorod, 2012) [in Russian].\nA. A. Belov, N. A. Korovin, A. I. Rodionov, et al., Automat. Remote Control 75 (8), 1479 (2014).https:\u002F\u002Fdoi.org\u002F10.1134\u002FS0005117914080116\nI. D. Rodionov, A. I. Rodionov, I. P. Rodionova, et al., Russ. J. Phys. Chem. B 13 (4), 667 (2019).https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793119040134\nA. I. Rodionov, I. D. Rodionov, I. P. Rodionova, et al., Russ. J. Phys. Chem. B 15 (5), 904 (2021).",{"EN":373},"The structure of a device designed to detect X-ray and optical photons ascending from a sample irradiated with synchrotron radiation or X-ray tube radiation and the principles of its operation are described. The operation of the device consists of determining the delay time of the specified optical photons relative to the X-ray photons. Block diagrams of the main components of the device, outlining the principles of their operation, are given: a monophoton X-ray sensor, a monophoton optical sensor, and a unit for determining the time delay. 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Rodionov",{"id":440,"sortIndex":236,"researcher":20,"roles":441,"affiliations":442,"properties":448},"49de1777-1740-47f8-8b9f-3f8daa4bed1a",[192],[443],{"id":20,"sortIndex":21,"affiliation":444,"properties":20},{"id":418,"createTime":419,"updateTime":419,"relativeEntities":445,"slug":20,"properties":446,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":447},{"VI":423},{"title":449},{"VI":450},"A. I. 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Lett. 42, 3707 (2015).\nS. J. Katzberg, O. Torres, M. S. Grant, et al., Remote Sens. Environ. 100, 17 (2005).\nZ. Xunxie and Y. Songhua, GNSS World China 3, 1 (2009).\nK. M. Larson, J. J. Braun, E. E. Small, et al., IEEE JSTAR 3, 100 (2010).\nW. Wei, L. Huang, C. Xiuwan, et al., Acta Meteorol. Sinica 27, 221 (2013).",{"EN":495},"The main problems in the remote passive location of positions on the Earth’s surface are reviewed in detail. The first is related to the source of incoherent microwave radiation represented by a layer of two-temperature nonequilibrium ionospheric plasma at an altitude of ca. 80–110 km, which is located below a low Earth-orbiting satellite and formed under the influence of solar activity. As a result, the satellite receives direct radiation from this layer as well as reflected radiation from the Earth’s surface. The next problem is the attenuation of the intensity of the incident radiation as a result of the scattering of radio waves by charged aerosol layers located below the luminous layer. Aerosol particles are affected by solar and cosmic radiation and electronic and ionic attacks, due to which they become charged. Aerosol particles directly take part in the formation of a complete balance of charges in the atmosphere and are an effective catalyst for many physicochemical processes in neutral gaseous media. The processes related to the formation of aerosol particles, the kinetics of formation of their charge, and the processes of their interaction with incoherent microwave radiation are considered. This gives rise to the need to develop a fundamentally new scheme of passive location. Three possible versions of the arrangement of measurements are analyzed. In the first version, a complete set of measurements is implemented when the receiving equipment is simultaneously installed on the Earth, an aircraft, and a low Earth-orbiting satellite; in the second version, the receiving equipment is simultaneously installed on an aircraft and a satellite; in the third version, only on one satellite. The separation of the contributions of direct and reflected incoherent radiation received by the satellite can be achieved only using a special mathematical approach to the information processing (wavelet analysis), which has been under actively development in recent years. We fully show its broad possibilities for solving geophysical problems and discuss the problems of the calibration of the measuring equipment, which are associated with taking into account the superposition of two types of radiation coming to a satellite and with variation of the main parameters (concentration, flux density, and temperature of electrons) of the nonequilibrium two-temperature plasma in time.",{"EN":497},"Effects of the Interaction of Microwave Radiation with the Atmosphere on the Passive Remote Sensing of the Earth’s Surface: Problems and Solutions (Review)",{"VOID":499},"10.1134\u002FS1990793118040061","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1990793118040061",[502,529,544,556,571],{"id":503,"sortIndex":21,"researcher":20,"roles":504,"affiliations":505,"properties":526},"433fa548-b77c-479f-aee4-6bf61c3086a3",[192],[506,514],{"id":20,"sortIndex":21,"affiliation":507,"properties":20},{"id":508,"createTime":509,"updateTime":509,"relativeEntities":510,"slug":20,"properties":511,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"186f62fe-3563-473a-86ff-210fa466b53b","2024-01-03T19:45:33.236+00:00",[],{"title":512},{"VI":513},"Semenov Institute of Chemical Physics, Russian Academy of Sciences, Moscow, Russia",{"id":515,"sortIndex":190,"affiliation":516,"properties":525},"c8aae7fd-224b-4aab-bb2e-2d9ddee037f4",{"id":517,"createTime":518,"updateTime":519,"relativeEntities":520,"slug":521,"properties":522,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"0b0ee483-3852-48bc-b3d4-ecfa4390b033","2024-01-15T08:05:37.192+00:00","2025-06-11T23:56:56.540+00:00",[],"National-Research-Center-Kurchatov-Institute-Moscow-Russia",{"title":523},{"VI":524},"National Research Center Kurchatov Institute, Moscow, Russia",{},{"title":527},{"VI":528},"G. V. Golubkov",{"id":530,"sortIndex":190,"researcher":20,"roles":531,"affiliations":532,"properties":541},"e1ea755d-9931-4118-8a70-1a225a37b3e8",[192],[533],{"id":20,"sortIndex":21,"affiliation":534,"properties":20},{"id":535,"createTime":536,"updateTime":536,"relativeEntities":537,"slug":20,"properties":538,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"efc32159-23df-4157-b6b9-e498b37c472c","2024-01-11T23:55:52.694+00:00",[],{"title":539},{"VI":540},"Center for Chemical Physics of Atmosphere, Moscow, Russia",{"title":542},{"VI":543},"M. I. Manzhelii",{"id":545,"sortIndex":236,"researcher":20,"roles":546,"affiliations":547,"properties":553},"1276ff07-fa92-49c7-b219-ec0ca6b4cd6f",[192],[548],{"id":20,"sortIndex":21,"affiliation":549,"properties":20},{"id":508,"createTime":509,"updateTime":509,"relativeEntities":550,"slug":20,"properties":551,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":552},{"VI":513},{"title":554},{"VI":555},"A. A. Berlin",{"id":557,"sortIndex":314,"researcher":20,"roles":558,"affiliations":559,"properties":568},"d05a8119-2633-4423-ba4e-317d18689fd8",[192],[560],{"id":20,"sortIndex":21,"affiliation":561,"properties":20},{"id":562,"createTime":563,"updateTime":563,"relativeEntities":564,"slug":20,"properties":565,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"da9553ed-872c-4ad6-a6a4-01e5a388d7c4","2024-01-11T06:56:07.273+00:00",[],{"title":566},{"VI":567},"Department of Geophysics, Tel Aviv University, Tel Aviv, Israel",{"title":569},{"VI":570},"L. V. Eppelbaum",{"id":572,"sortIndex":223,"researcher":20,"roles":573,"affiliations":574,"properties":595},"61a912fc-25bf-4267-a2e9-2df65074990b",[192],[575,585],{"id":576,"sortIndex":190,"affiliation":577,"properties":584},"22ef48ac-804d-4059-90a9-e8958fff19c5",{"id":578,"createTime":579,"updateTime":579,"relativeEntities":580,"slug":20,"properties":581,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"5a883c66-294b-4136-82bb-ff6f6d72b4b7","2023-12-23T21:32:38.570+00:00",[],{"title":582},{"VI":583},"Moscow Institute of Engineering Physics, Moscow, Russia",{},{"id":20,"sortIndex":21,"affiliation":586,"properties":20},{"id":587,"createTime":588,"updateTime":589,"relativeEntities":590,"slug":591,"properties":592,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"4b514129-d430-480f-9a45-cf97d6873d68","2024-02-20T07:55:00.579+00:00","2024-09-19T08:06:08.070+00:00",[],"Geophysical-Center-Russian-Academy-of-Sciences-Moscow-Russia",{"title":593},{"VI":594},"Geophysical Center, Russian Academy of Sciences, Moscow, Russia",{"title":596},{"VI":597},"A. A. Lushnikov",{"url":500,"publisher":599,"properties":627},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":600,"slug":10,"properties":601,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":605,"manageAffiliations":606,"indexDatabases":607,"url":95,"thumbnailPath":20,"statistic":622,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":602,"eissn":603,"title":604},{"VOID":13},{"VOID":15},{"EN":17},[],[],[608,615],{"id":77,"indexDatabase":609,"url":90,"indexYears":91,"academicFieldIds":614,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":610,"label":611,"description":612,"key":87,"publicationTags":613,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":616,"url":72,"indexYears":20,"academicFieldIds":621,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":617,"label":618,"description":619,"key":68,"publicationTags":620,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":623,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":624,"totalCitation":128,"totalCitationByYear":625,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":626,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},{"volume":628,"pages":630},{"VOID":629},"12",{"VOID":631},"725-748","2018-09-28",2018,{"id":635,"createTime":636,"updateTime":637,"relativeEntities":638,"slug":639,"properties":640,"entityType":183,"verifyStatus":184,"verifyTime":649,"verifyNote":185,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":650,"fullTextUrl":20,"authors":651,"publicationType":325,"publisherRelationship":679,"citationCount":20,"citationInfo":20,"publishDate":713,"publishYear":714,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"e3781323-9e09-402a-896a-a9823a18a4f6","2023-12-03T15:09:52.510+00:00","2024-12-15T23:54:51.769+00:00",[],"Effectiveness-of-the-third-body-in-the-direct-recombination-of-ions",{"references":641,"abstract":643,"title":645,"doi":647},{"VOID":642},"V. N. Kondrat’ev, Rate Constants of Gas-Phase Reactions (Nauka, Moscow, 1970) [in Russian].\nD. L. Baulch, D. D. Drysdale, D. G. Horne, and A. C. Lloyd, Evaluated Kinetic Data for High-Temperature Reactions (Butterworths, London, 1972–1973), Vols. 1, 2.\nV. M. Azriel, D. B. Kabanov, L. I. Kolesnikova, and L. Yu. Rusin, Izv. R. Akad. Nauk, Ser. Energet., No. 5, 50 (2007).\nV. M. Azriel and L. Yu. Rusin, Russ. J. Phys. Chem. B 2, 499 (2008).\nV. M. Azriel, E. V. Kolesnikova, L. Yu. Rusin, and M. B. Sevryuk, J. Phys. Chem. A 115, 7055 (2011).\nD. B. Kabanov and L. Yu. Rusin, Chem. Phys. 392, 149 (2012).\nE. V. Kolesnikova and L. Yu. Rusin, Russ. J. Phys. Chem. B 6, 583 (2012).\nV. M. Azriel, L. Yu. Rusin, and M. B. Sevryuk, Chem. Phys. 411, 26 (2013).\nF. Smith, in Kinetic Processes in Gases and Plasma, Ed. by A. R. Hochstim (Academic Press, New York, London, 1969).\nA. V. Eletskii, Usp. Fiz. Nauk. 125, 279 (1978).\nA. M. Boichenko, V. F. Tarasenko, and S. I. Yakovlenko, Laser Phys. 10, 1159 (2000).\nA. M. Boichenko and M. S. Klenovskii, Tech. Phys. 58, 744 (2013).\nA. S. Rykov, Search Optimization. Deformed Configurations Methods (Nauka, Moscow, 1993) [in Russian].\nE. V. Kolesnikova, L. I. Kolesnikova, and L. Yu. Rusin, Fiz. Khim. Kinet. Gaz. Dinam. 10 (2010). http:\u002F\u002Fchemphys.edu.ru\u002Farticle\u002F215\u002F.\nA. S. Rykov, System Analysis: Models and Methods of Decision Making and Search Optimization (MISiS, Moscow, 2009) [in Russian].\nJ. A. Nelder and R. Mead, Computer J. 7, 308 (1965).\nD. B. Kabanov, E. V. Kolesnikova, and L. Yu. Rusin, Fiz. Khim. Kinet. Gaz. Dinam. 10 (2010). http:\u002F\u002Fchemphys.edu.ru\u002Farticle\u002F153\u002F.\nE. S. Rittner, J. Chem. Phys. 19, 1030 (1951).\nP. Brumer and M. Karplus, J. Chem. Phys. 58, 3903 (1973).\nV. M. Azriel and L. Yu. Rusin, Fiz. Khim. Kinet. Gaz. Dinam. 4 (2006). http:\u002F\u002Fchemphys.edu.ru\u002Farticle\u002F36\u002F.\nL. V. Lenin and L. Yu. Rusin, Chem. Phys. Lett. 175, 608 (1990).\nM. Kumar, A. J. Kaur, and J. Shanker, J. Chem. Phys. 84, 5735 (1986).\nS. H. Patil, J. Chem. Phys. 86, 313 (1987).\nS. H. Patil, J. Chem. Phys. 89, 6357 (1988).\nT. L. Gilbert, O. C. Simpson, and M. A. Williamson, J. Chem. Phys. 63, 4061 (1975).\nP. Brumer, Phys. Rev. A 10, 1 (1974).\nA. Dalgarno, Adv. Phys. 11, 281 (1962).\nI. R. Gatland, M. G. Thackston, W. M. Pope, F. L. Sisele, and E. M. McDaniel, J. Chem. Phys. 68, 2775 (1978).\nT. Grycuk and M. Findeisen, J. Phys. B: At. Mol. Opt. Phys. 16, 975 (1983).\nC. Bousquet, N. Bras, and Y. Majdi, J. Phys. B: At.Mol. Opt. Phys. 17, 1831 (1984).\nA. A. Radtsig and B. M. Smirnov, Handbook of Atomic and Molecular Physics (Atomizdat, Moscow, 1980) [in Russian].",{"EN":644},"The dynamics of the three-body recombination of the Cs+ and Br− ions with the formation of products with the lowest internal energy in the presence of the neutral atoms R = Hg, Xe, and Kr as third bodies is studied. The efficiency of the process is characterized by the effectivity function, which represents the dependence of the internal energy of the nascent molecule on the ion encounter energy and the third body energy. The Hg and Xe atoms are demonstrated to exhibit similar efficiencies in stabilizing the CsBr molecules, significantly superior to that of the Kr atom. The effectivity of each third body as an acceptor of excess energy of the molecules formed in recombination is determined by the structure of the potential energy surface of the individual R-Cs+-Br− system, the masses of the third bodies, and the dynamics of three-body collisions leading to recombination.",{"EN":646},"Effectiveness of the third body in the direct recombination of ions",{"VOID":648},"10.1134\u002FS199079311403004X","2024-12-15T23:54:51.768+00:00","http:\u002F\u002Flink.springer.com\u002F10.1134\u002FS199079311403004X",[652,667],{"id":653,"sortIndex":190,"researcher":20,"roles":654,"affiliations":655,"properties":664},"34ad62e0-55f6-4599-b9d7-02fa387e7ce0",[192],[656],{"id":20,"sortIndex":21,"affiliation":657,"properties":20},{"id":658,"createTime":659,"updateTime":659,"relativeEntities":660,"slug":20,"properties":661,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"7b2f7e39-96d5-4634-a21c-ce8793cb57e4","2024-02-14T04:50:16.733+00:00",[],{"title":662},{"VI":663},"Talroze Institute of Energy Problems of Chemical Physics, Russian Academy of Sciences, Moscow, Russia",{"title":665},{"VI":666},"L. Yu. Rusin",{"id":668,"sortIndex":21,"researcher":20,"roles":669,"affiliations":670,"properties":676},"e71b3c9f-40ea-4ab9-b7ba-7e81e427bb9d",[192],[671],{"id":20,"sortIndex":21,"affiliation":672,"properties":20},{"id":658,"createTime":659,"updateTime":659,"relativeEntities":673,"slug":20,"properties":674,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":675},{"VI":663},{"title":677},{"VI":678},"E. V. Ermolova",{"url":650,"publisher":680,"properties":708},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":681,"slug":10,"properties":682,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":686,"manageAffiliations":687,"indexDatabases":688,"url":95,"thumbnailPath":20,"statistic":703,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":683,"eissn":684,"title":685},{"VOID":13},{"VOID":15},{"EN":17},[],[],[689,696],{"id":77,"indexDatabase":690,"url":90,"indexYears":91,"academicFieldIds":695,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":691,"label":692,"description":693,"key":87,"publicationTags":694,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":697,"url":72,"indexYears":20,"academicFieldIds":702,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":698,"label":699,"description":700,"key":68,"publicationTags":701,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":704,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":705,"totalCitation":128,"totalCitationByYear":706,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":707,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},{"volume":709,"pages":711},{"VOID":710},"8",{"VOID":712},"261-271","2014-07-06",2014,{"id":716,"createTime":717,"updateTime":718,"relativeEntities":719,"slug":720,"properties":721,"entityType":183,"verifyStatus":184,"verifyTime":718,"verifyNote":185,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":730,"fullTextUrl":20,"authors":731,"publicationType":325,"publisherRelationship":788,"citationCount":20,"citationInfo":20,"publishDate":822,"publishYear":823,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"759c160d-8c9e-4c0b-ab13-0d1ca0a51a8b","2023-12-23T23:57:15.751+00:00","2025-02-09T23:54:50.492+00:00",[],"Effect-of-the-humidity-on-the-uptake-of-NO3-on-coatings-composed-of-MgCl2-6H2O-and-MgBr2-6H2O-and-mixtures-thereof-with-NaCl",{"references":722,"abstract":724,"title":726,"doi":728},{"VOID":723},"M. Vrekoussis, N. Mihalopoulos, E. Gerasopoulos, et al., Atm. Chem. Phys. 7, 315 (2007).\nS. S. Brown, W. P. Dube, H. D. Osthoff, et al., Atm. Chem. Phys. 7, 139 (2007).\nB.-J. Finlayson-Pitts and J. N. Pitts, Jr., Atmospheric Chemistry. Fundamentals and Experimental Technique (Wiley, New York, 1986).\nM. J. Rossi, Chem. Rev. 103, 4605 (2003).\nB.-J. Finlayson-Pitts, Chem. Rev. 103, 4801 (2003).\nS. Seisel, F. Caloz, F. F. Fenter, et al., Geophys. Rev. Lett. 24, 2757 (1997).\nS. Seisel, B. Fluckiger, F. Caloz, and M. J. Rossi, Phys. Chem. Chem. Phys. 1, 2257 (1999).\nF. Gratpanche and J.-P. Sawerysyn, J. Chim. Phys. 96, 213 (1999).\nM. Yu. Gershenzon, S. D. Il’in, N. G. Fedotov, et al., J. Atmos. Chem. 34, 119 (1999).\nV. V. Zelenov, E. V. Aparina, M. Yu. Gershenzon, et al., Khim. Fiz. 21(3), 41 (2002).\nV. V. Zelenov, E. V. Aparina, M. Yu. Gershenzon, et al., Khim. Fiz. 22(6), 59 (2003).\nV. V. Zelenov, E. V. Aparina, M. Yu. Gershenzon, et al., Khim. Fiz. 22(11), 37 (2003).\nV. V. Zelenov, E. V. Aparina, D. V. Shestakov, and Yu.M. Gershenzon, Khim. Fiz. 23(1), 18 (2004).\nA. P. Dement’ev, V. V. Zelenov, E. V. Aparina, et al., Khim. Fiz. 23(11), 54 (2004).\nV. V. Zelenov, E. V. Aparina, S. V. Ivashin, and Yu. M. Gershenzon, Khim. Fiz. 27(5), 87 (2008) [Russ. J. Phys. Chem. B 2, 408 (2008)].\nS. Metzer and J. Lelieveld, Atm. Chem. Phys. Discuss 7, 849 (2007).\nG. Deiber, Ch. George, S. Le Calve, et al., Atm. Chem. Phys. 4, 1291 (2004).\nV. V. Zelenov, A. V. Loboda, E. V. Aparina, and A. F. Dodonov, Izv. Ross. Akad. Nauk, Energ., No. 1, 70 (1997).\nD. A. Frank-Kamenetskii, Diffusion and Heat Transfer in Chemical Kinetics (Nauka, Moscow, 1967; Plenum, New York, 1969).\nD. J. Dai and G. E. Ewing, J. Phys. Chem. 98, 5050 (1993).\nS. J. Peters and G. E. Ewing, Langmuir 13, 6345 (1997).\nA. Adamson, Physical Chemistry of Surfaces (Wiley, New York, 1997; Mir, Moscow, 1997).\nN. M. Donahue and R. G. Prinn, J. Geophys. Res. D 95, 18387 (1990).\nY. Rudich, R. K. Talukdar, T. Imamura, et al., Chem. Phys. Lett. 216, 467 (1996).",{"EN":725},"The reactive uptake of NO3 radicals on the surface of wetted individual X salts and of wetted X-NaCl salts (X = MgCl2 · 6H2O and MgBr2 · 6H2O) at [H2O] = 2 × 1012−2 × 1015 cm−3 and NO3 (4.8 × 1012 cm−3) was studied using a reactor with a movable insert covered with a salt coating in combination with a mass spectrometer for monitoring the initial reactant and products. The probabilities of NO3 uptake γ on X-NaCl binary salts as functions of the content of doping salt were determined. A parametric approximation of the experimental data was proposed, which makes it possible to quantitatively predict the extent of surface enrichment of a wetted binary salt coating in doping salt and its dependence on the humidity and the content of this salt in the binary mixture. It was established that the relative surface density σX of X doping salt depends on its mole fraction μX in the X-NaCl binary salt as σX = aμX (a = 2.2 for MgBr2 and 13.1 for MgCl2) over the entire humidity range covered. The contributions of the X salts to the overall uptake of NO3 at NO3 concentration typical of the tropospheric conditions ([NO3] ∼ 107 cm−3 and relative humidities of RH ≤ 20%) were estimated.",{"EN":727},"Effect of the humidity on the uptake of NO3 on coatings composed of MgCl2 · 6H2O and MgBr2 · 6H2O and mixtures thereof with NaCl",{"VOID":729},"10.1134\u002FS1990793110030061","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1990793110030061",[732,749,764,776],{"id":733,"sortIndex":223,"researcher":20,"roles":734,"affiliations":735,"properties":746},"078cd994-c89b-4e7b-a6e0-3755748b03ff",[192],[736],{"id":20,"sortIndex":21,"affiliation":737,"properties":20},{"id":738,"createTime":739,"updateTime":740,"relativeEntities":741,"slug":742,"properties":743,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"16a70c5c-481b-48a4-a3de-7ba6264229bd","2024-01-01T14:30:16.241+00:00","2024-10-15T14:51:48.270+00:00",[],"Institute-of-Problems-of-Chemical-Physics-Russian-Academy-of-Sciences-Chernogolovka-Moscow-oblast-Russia",{"title":744},{"VI":745},"Institute of Problems of Chemical Physics, Russian Academy of Sciences, Chernogolovka, Moscow oblast, Russia",{"title":747},{"VI":748},"S. A. Kashtanov",{"id":750,"sortIndex":190,"researcher":20,"roles":751,"affiliations":752,"properties":761},"ee2188f2-ab1d-4856-b2f4-7cf7acc2c18c",[192],[753],{"id":20,"sortIndex":21,"affiliation":754,"properties":20},{"id":755,"createTime":756,"updateTime":756,"relativeEntities":757,"slug":20,"properties":758,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"ca3d3ace-8c7b-4b45-92cd-0ded0f35d157","2023-12-13T13:20:46.781+00:00",[],{"title":759},{"VI":760},"Institute of Energy Problems of Chemical Physics, Chernogolovka Branch, Russian Academy of Sciences, Chernogolovka, Moscow oblast, Russia",{"title":762},{"VI":763},"E. V. Aparina",{"id":765,"sortIndex":21,"researcher":20,"roles":766,"affiliations":767,"properties":773},"e2e643d8-8f4f-4c39-883b-c166d13c4db8",[192],[768],{"id":20,"sortIndex":21,"affiliation":769,"properties":20},{"id":755,"createTime":756,"updateTime":756,"relativeEntities":770,"slug":20,"properties":771,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":772},{"VI":760},{"title":774},{"VI":775},"V. V. Zelenov",{"id":777,"sortIndex":236,"researcher":20,"roles":778,"affiliations":779,"properties":785},"860079e0-116c-4c7c-83a0-a5d15da2af76",[192],[780],{"id":20,"sortIndex":21,"affiliation":781,"properties":20},{"id":755,"createTime":756,"updateTime":756,"relativeEntities":782,"slug":20,"properties":783,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":784},{"VI":760},{"title":786},{"VI":787},"A. V. Chudinov",{"url":730,"publisher":789,"properties":817},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":790,"slug":10,"properties":791,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":795,"manageAffiliations":796,"indexDatabases":797,"url":95,"thumbnailPath":20,"statistic":812,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":792,"eissn":793,"title":794},{"VOID":13},{"VOID":15},{"EN":17},[],[],[798,805],{"id":77,"indexDatabase":799,"url":90,"indexYears":91,"academicFieldIds":804,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":800,"label":801,"description":802,"key":87,"publicationTags":803,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":806,"url":72,"indexYears":20,"academicFieldIds":811,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":807,"label":808,"description":809,"key":68,"publicationTags":810,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":813,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":814,"totalCitation":128,"totalCitationByYear":815,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":816,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},{"volume":818,"pages":820},{"VOID":819},"4",{"VOID":821},"399-407","2010-10-23",2010,{"id":825,"createTime":826,"updateTime":827,"relativeEntities":828,"slug":829,"properties":830,"entityType":183,"verifyStatus":184,"verifyTime":827,"verifyNote":185,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":839,"fullTextUrl":20,"authors":840,"publicationType":325,"publisherRelationship":856,"citationCount":20,"citationInfo":20,"publishDate":890,"publishYear":891,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"9c42f787-ca4f-477c-814c-117698bbc55e","2024-01-13T18:43:31.032+00:00","2024-06-25T23:52:07.907+00:00",[],"Nonlinear-Kinetic-Conservation-Laws-in-Nonlinear-Chemical-Reactions",{"references":831,"abstract":833,"title":835,"doi":837},{"VOID":832},"M. D. Korzukhin, Zh. Fiz. Khim. 46, 1845 (1972).\nA. N. Gorban’, V. I. Bykov, and G. S. Yablonskii, Essays on Chemical Relaxation (Nauka, Novosibirsk, 1986) [in Russian].\nB. V. Alekseev, N. I. Kol’tsov, and V. Kh. Fedotov, Zh. Fiz. Khim. 66, 3219 (1992).\nA. I. Vol’pert and S. I. Khudyaev, Analysis in Classes of Discontinuous Functions and Equations of Mathematical Physics (Nauka, Moscow, 1975) [in Russian].\nM. J. Prelle and M. F. Singer, in Proceedings of the 1981 ASM Symposium of Symbolic and Algebraic Computation, Snowbird, Utah, USA, 1981, p. 30.\nB. V. Alekseev, N. I. Kol’tsov, and V. Kh. Fedotov, Zh. Fiz. Khim. 62, 3069 (1988).\nN. I. Kol’tsov, Mathematical Modeling of Catalytic Reactions (Chuvash. Univ., Cheboksary, 2007) [in Russian].\nG. S. Yablonsky, Theor. Found. Chem. Eng. 48, 608 (2014).\nP. D. Branco, G. S. Yablonsky, G. B. Marin, and D. Constales, Chem. Eng. Sci. 158, 370 (2017).\nB. Peng, G. S. Yablonsky, D. Constales, and G. B. Marin, Chem. Eng. Sci. 191, 262 (2018).\nP. D. Branco, G. S. Yablonsky, G. B. Marin, and D. Constales, Chem. Eng. Sci. 184, 25 (2018).\nG. S. Yablonsky, P. D. Branco, G. B. Marin, and D. Constales, Chem. Eng. Sci. 196, 384 (2019).\nV. Kh. Fedotov and N. I. Kol’tsov, Russ. J. Phys. Chem. B 13, 262 (2019).\nV. Kh. Fedotov and N. I. Kol’tsov, Kinet. Catal. 60, 776 (2019).\nV. Kh. Fedotov, N. I. Kol’tsov, and P. M. Kosianov, Russ. J. Phys. Chem. B 14, 284 (2020). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793120020049\nN. I. Kol’tsov, Kinet. Catal. 61, 530 (2020).\nN. I. Kol’tsov, Theor. Found. Chem. Eng. 54, 863 (2020).\nN. I. Kol’tsov, Russ. J. Phys. Chem. B 14, 765 (2020). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793120050061\nN. I. Kol’tsov, Kinet. Catal. 61, 833 (2020).\nV. V. Stepanov, Differential Equations Course (URSS, Moscow, 2016) [in Russian].",{"EN":834},"A method is developed for establishing new nonlinear kinetic conservation laws in chemical reactions proceeding in an open isothermal gradientless reactor according to nonlinear mechanisms that include the stages of the transformation of the initial substances, while disregarding the stages of their formation. These laws are a kind of multiexperimental autonomous kinetic invariants that can be obtained from the data of one nonstationary experiment and used to solve the inverse problem for specific nonlinear reactions.",{"EN":836},"Nonlinear Kinetic Conservation Laws in Nonlinear Chemical Reactions",{"VOID":838},"10.1134\u002FS199079312106004X","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS199079312106004X",[841],{"id":842,"sortIndex":21,"researcher":20,"roles":843,"affiliations":844,"properties":853},"5794ff76-38b7-4dde-bb56-8d3b9746ba9c",[192],[845],{"id":20,"sortIndex":21,"affiliation":846,"properties":20},{"id":847,"createTime":848,"updateTime":848,"relativeEntities":849,"slug":20,"properties":850,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"8dfa369e-b75b-4a02-80e5-10d5186746a4","2024-01-13T15:23:54.829+00:00",[],{"title":851},{"VI":852},"Ulyanov Chuvash State University, Cheboksary, Russia",{"title":854},{"VI":855},"N. I. Kol’tsov",{"url":839,"publisher":857,"properties":885},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":858,"slug":10,"properties":859,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":863,"manageAffiliations":864,"indexDatabases":865,"url":95,"thumbnailPath":20,"statistic":880,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":860,"eissn":861,"title":862},{"VOID":13},{"VOID":15},{"EN":17},[],[],[866,873],{"id":77,"indexDatabase":867,"url":90,"indexYears":91,"academicFieldIds":872,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":868,"label":869,"description":870,"key":87,"publicationTags":871,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":874,"url":72,"indexYears":20,"academicFieldIds":879,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":875,"label":876,"description":877,"key":68,"publicationTags":878,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":881,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":882,"totalCitation":128,"totalCitationByYear":883,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":884,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},{"volume":886,"pages":888},{"VOID":887},"15",{"VOID":889},"954-959","2022-01-27",2022,{"id":893,"createTime":894,"updateTime":895,"relativeEntities":896,"slug":897,"properties":898,"entityType":183,"verifyStatus":184,"verifyTime":895,"verifyNote":185,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":909,"fullTextUrl":20,"authors":910,"publicationType":325,"publisherRelationship":928,"citationCount":20,"citationInfo":20,"publishDate":957,"publishYear":958,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"d99473ff-5535-44e3-9c1a-f7fd0b96668e","2024-04-06T02:44:58.540+00:00","2025-01-15T23:51:47.586+00:00",[],"Anomalous-diffusion-in-the-dynamics-of-complex-processes",{"references":899,"keywords":901,"abstract":903,"title":905,"doi":907},{"VOID":900},"A. I. Olemskii and D. O. Kharchenko, Self-Organization of Self-Similar Stochastic Systems (R&C Dynamics, Izhevsk, Moscow, 2007) [in Russian].\nV. V. Uchaikin, Usp. Fiz. Nauk 173, 847 (2003) [Phys. Usp. 46, 821 (2003)].\nM. Gitterman, Phys. Rev. E: Stat. Phys., Plasmas, Fluids, Relat. Interdiscip. Top. 62, 6065 (2000).\nG. M. Zaslavsky, Physics of Chaos in Hamiltonian System (Imperial College Press, London, 1998).\nJ. Klafter, A. Blumen, and M. F. Shlesinger, Phys. Rev. A 35, 3081 (1987).\nS. F. Timashev, Flicker-Noise Spectroscopy and Its Application: Information Hidden in Chaotic Signals (Fizmatlit, Moscow, 2007) [in Russian].\nS. F. Timashev and Yu. S. Polyakov, Fluct. Noise Lett. 7, R15 (2007).\nS. F. Timashev, Elektrokhimiya 42(5), 480 (2006) [Russ. J. Elektrochem. 42, 424 (2006)].\nA. N. Tikhonov and A. A. Samarskii, Equations of Mathematical Physics (Gostekhteorlitizdat, Moscow, 1953; Dover, New York, 1990).\nI. S. Gradshtein and I. M. Ryzhik, Table of Integrals, Series and Products (Academic, New York, 1980; Gosfizmatlitizdat, Moscow, 1962).\nA. Zoia, A. Rosso, and M. Kardar, Phys. Rev. E: Stat. Phys., Plasmas, Fluids, Relat. Interdiscip. Top. 76, 021116 (2007).\nJ. Bhattacharya, K. Watanabe, and S. Shimojo, Int. J. Bifurcation Chaos 14, 2701 (2004).\nK. Watanabe, T. Imada, K. Nihei, and S. Shimojo, Neurophys. Basic Clin. Neuro Rep. 13(16), 1 (2002).\nR. M. Yulmetyev, D. G. Yulmetyeva, P. Hanggi, et al., Zh. Eksp. Teor. Fiz. 131(4), 729 (2007) [JETP 104, 644 (2007)].\nR. M. Yulmetyev, P. Hanggi, D. G. Yulmetyeva, et al., Physica A (Amsterdam) 383, 443 (2007).\nS. F. Timashev, R. M. Yul’met’ev, S. A. Demin, et al., Almanakh Klinich. Med. 17, 233 (2008).\nA. A. Ovchinnikov, S. F. Timashev, and A. A. Belyi, Kinetics of Diffusion Controlled Chemical Processes (Khimiya, Moscow, 1986; Nova Science, Commack, New York, 1989).",{"EN":902},"",{"EN":904},"It is shown that complex signals represented in the form of time series of measured dynamic variables can contain chaotic components whose time changes can be described as anomalous diffusion processes. To determine the parameters of such processes, procedures for the extraction of low-frequency and highest-frequency flicker-noise components, which are flicker-noise spectroscopy characteristics, should be developed. The methodology of the corresponding analysis is demonstrated for the example of magnetoencephalogram signals recorded as responses to the external action of a flickering color stimulus.",{"EN":906},"Anomalous diffusion in the dynamics of complex processes",{"VOID":908},"10.1134\u002FS1990793109020237","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1990793109020237",[911],{"id":912,"sortIndex":21,"researcher":20,"roles":913,"affiliations":914,"properties":925},"59e2eca2-8abb-491c-a0e2-a695ea82653b",[192],[915],{"id":20,"sortIndex":21,"affiliation":916,"properties":20},{"id":917,"createTime":918,"updateTime":919,"relativeEntities":920,"slug":921,"properties":922,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"51ea26d0-22b6-44c4-bf57-6868b73bf5d9","2024-01-08T21:04:21.785+00:00","2024-12-10T15:22:07.425+00:00",[],"Karpov-Research-Institute-of-Physical-Chemistry-Moscow-Russia",{"title":923},{"VI":924},"Karpov Research Institute of Physical Chemistry, Moscow, Russia",{"title":926},{"VI":927},"S. F. Timashev",{"url":20,"publisher":929,"properties":20},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":930,"slug":10,"properties":931,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":935,"manageAffiliations":936,"indexDatabases":937,"url":95,"thumbnailPath":20,"statistic":952,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":932,"eissn":933,"title":934},{"VOID":13},{"VOID":15},{"EN":17},[],[],[938,945],{"id":77,"indexDatabase":939,"url":90,"indexYears":91,"academicFieldIds":944,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":940,"label":941,"description":942,"key":87,"publicationTags":943,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":946,"url":72,"indexYears":20,"academicFieldIds":951,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":947,"label":948,"description":949,"key":68,"publicationTags":950,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":953,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":954,"totalCitation":128,"totalCitationByYear":955,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":956,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},"2009-05-13",2009,{"id":960,"createTime":961,"updateTime":961,"relativeEntities":962,"slug":20,"properties":963,"entityType":183,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":972,"fullTextUrl":20,"authors":973,"publicationType":325,"publisherRelationship":1006,"citationCount":20,"citationInfo":20,"publishDate":1040,"publishYear":361,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"13c18d6c-b44e-4d17-bf34-7922299dbe49","2024-01-17T23:51:21.457+00:00",[],{"references":964,"abstract":966,"title":968,"doi":970},{"VOID":965},"S. Iijima, Nature 354, 56 (1991).\nL. V. Radushkevich and V. M. Lukinovich, Zh. Fiz. Khim. 26, 88 (1952).\nM. Endo, T. Koyama, and Y. Hishiyama, Jpn. J. Appl. Phys. 15, 2073 (1976).\nP. Harris, Carbon Nanotubes and Related Structures. New Matherials for the Twenty-First Century (Cambridge Univ., New York, 1999; Tekhnosfera, Moscow, 2003).\nB. Eggins, Chemical Sensors and Biosensors (Wiley, New York, 2003; Tekhnosfera, Moscow, 2005).\nA. Hassanien, M. Tokumoto, P. Umek, et al., Nanotecnology 16, 278 (2005).\nN. G. Lebedev, I. V. Zaporotskova, and L. A. Chernozatonskii, Fulleren. Nanotubes Carbon Nanostruct. 12, 443 (2004).\nN. G. Lebedev, I. V. Zaporotskova, and L. A. Chernozatonskii, Int. J. Quant. Chem. 100, 548 (2004).\nE. N. Shamina and N. G. Lebedev, Nauch.-Tekh. Vedom. SPbGPU, Ser. Fiz.-Mat. Nauki, No. 2 (2009).\nN. F. Stepanov, Quantum Mechanics and Quantum Chemistry (Mir, Moscow, 2001) [in Russian].\nB. E. Granger, P. Král, H. R. Sadeghpour, and M. Shapiro, Phys. Rev. Lett. 89, 135506 (2002).\nP. N. Gevko, A. V. Okotrub, and L. G. Bulusheva, Phys. Solid State 48, 1007 (2006).\nT. Clark, A Handbook of Computational Chemistry (Wiley, New York, 1985).\nA. G. Stromberg and D. P. Semchenko, Physical Chemistry (Vyssh. shk, Moscow, 1988) [in Russian].",{"EN":967},"Quantum-chemical semiempirical calculations were performed of the adsorption of fluorine and hydrogen atoms and molecules on the surface of single-layered carbon nanotubes with various diameters. Semiempirical quantum-chemical MNDO calculations were based on the model of a molecular cluster with boundary pseudoatoms. The energy characteristics of adsorption were determined. Changes in physical properties caused by the adsorption of atoms and diatomic molecules were analyzed.",{"EN":969},"The chiral effect of adsorption of univalent atoms and diatomic molecules on the surface of carbon nanotubes",{"VOID":971},"10.1134\u002FS1990793112050090","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1990793112050090",[974,989],{"id":975,"sortIndex":190,"researcher":20,"roles":976,"affiliations":977,"properties":986},"1fd3833c-cfd6-46bd-a001-9a1fd761174f",[192],[978],{"id":20,"sortIndex":21,"affiliation":979,"properties":20},{"id":980,"createTime":981,"updateTime":981,"relativeEntities":982,"slug":20,"properties":983,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"aa69db44-3f00-496d-8ff2-9a74d6659669","2023-12-27T08:32:30.084+00:00",[],{"title":984},{"VI":985},"Volgograd State University, Volgograd, Russia",{"title":987},{"VI":988},"N. G. Lebedev",{"id":990,"sortIndex":21,"researcher":20,"roles":991,"affiliations":992,"properties":1003},"6c43456e-e787-4fc9-b1e1-96631517ffce",[192],[993],{"id":20,"sortIndex":21,"affiliation":994,"properties":20},{"id":995,"createTime":996,"updateTime":997,"relativeEntities":998,"slug":999,"properties":1000,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"b1aa606f-3bb1-442b-92ae-7cd22b36c613","2023-12-27T05:50:28.452+00:00","2024-09-27T14:26:51.580+00:00",[],"Volgograd-State-Medical-University-Volgograd-Russia",{"title":1001},{"VI":1002},"Volgograd State Medical University, Volgograd, Russia",{"title":1004},{"VI":1005},"E. N. Shamina",{"url":972,"publisher":1007,"properties":1035},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1008,"slug":10,"properties":1009,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1013,"manageAffiliations":1014,"indexDatabases":1015,"url":95,"thumbnailPath":20,"statistic":1030,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":1010,"eissn":1011,"title":1012},{"VOID":13},{"VOID":15},{"EN":17},[],[],[1016,1023],{"id":77,"indexDatabase":1017,"url":90,"indexYears":91,"academicFieldIds":1022,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":1018,"label":1019,"description":1020,"key":87,"publicationTags":1021,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":1024,"url":72,"indexYears":20,"academicFieldIds":1029,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":1025,"label":1026,"description":1027,"key":68,"publicationTags":1028,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":1031,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":1032,"totalCitation":128,"totalCitationByYear":1033,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":1034,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},{"volume":1036,"pages":1038},{"VOID":1037},"6",{"VOID":1039},"448-454","2012-07-17",{"id":1042,"createTime":1043,"updateTime":1044,"relativeEntities":1045,"slug":1046,"properties":1047,"entityType":183,"verifyStatus":184,"verifyTime":1044,"verifyNote":185,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1056,"fullTextUrl":20,"authors":1057,"publicationType":325,"publisherRelationship":1074,"citationCount":20,"citationInfo":20,"publishDate":1107,"publishYear":1108,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"1659a13b-8e64-4eeb-8da7-cfa7ef71cdcf","2023-11-27T21:24:34.867+00:00","2024-12-22T23:51:18.004+00:00",[],"Gasless-combustion-wave-with-extremely-high-excess-enthalpy-under-heat-loss-conditions",{"references":1048,"abstract":1050,"title":1052,"doi":1054},{"VOID":1049},"A. N. Firsov and K. G. Shkadinskii, Fiz. Goreniya Vzryva 23(3), 46 (1987).\nB. L. Kopeliovich, Fiz. Goreniya Vzryva 39(6), 45 (2003).\nB. L. Kopeliovich, Khim. Fiz. 29(3), 52 (2010) [Russ. J. Phys. Chem. B 29, 242 (2010)].\nK. G. Shkadinskii, B. I. Khaikin, and A. G. Merzhanov, Fiz. Goreniya Vzryva 7(1), 19 (1971).\nA. P. Aldushin, V. D. Lugovoi, A. G. Merzhanov, and B. I. Khaikin, Dokl. Akad. Nauk SSSR 234, 1434 (1978).\nA. G. Strunina, A. V. Dvoryankin, and A. G. Merzhanov, Fiz. Goreniya Vzryva 19(2), 30 (1983).\nL. K. Gusachenko and V. E. Zarko, Fiz. Goreniya Vzryva 43(3), 47 (2007) [Combust. Explos., Shock Waves 43, 286 (2007)].\nL. K. Gusachenko and V. E. Zarko, Khim. Fiz. 27(1), 79 (2008) [Russ. J. Phys. Chem. B 27, 83 (2008)].\nV. N. Marshakov and A. G. Istratov, Fiz. Goreniya Vzryva 43(2), 72 (2007) [Combust. Explos., Shock Waves 43, 188 (2007)].\nA. V. Anan’ev, A. G. Istratov, Z. V. Kirsanova, V. N. Marshakov, and G. V. Melik-Gaikazov, Khim. Fiz. 20(12), 47 (2001).\nV. N. Marshakov, A. G. Istratov, and V. M. Puchkov, Fiz. Goreniya Vzryva 39(4), 100 (2003).\nV. N. Marshakov, Khim. Fiz. 6(4), 530 (1987).",{"EN":1051},"A numerical experiment on investigation of a gasless combustion wave propagating at the limit due to a high excess enthalpy in the heating zone is performed. Under heat loss conditions, waves emerge on the surface of the combustion front, causing changes in the rate of chemical reactions similar to those realized on the burning surface of propellants and explosives.",{"EN":1053},"Gasless combustion wave with extremely high excess enthalpy under heat loss conditions",{"VOID":1055},"10.1134\u002FS1990793111020072","http:\u002F\u002Flink.springer.com\u002F10.1134\u002FS1990793111020072",[1058],{"id":1059,"sortIndex":21,"researcher":20,"roles":1060,"affiliations":1061,"properties":1071},"8140b11c-ad45-4c38-86ee-94c101bdf784",[192],[1062],{"id":20,"sortIndex":21,"affiliation":1063,"properties":20},{"id":1064,"createTime":1065,"updateTime":1065,"relativeEntities":1066,"slug":1067,"properties":1068,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"7c519c17-6e74-4ef2-b3e3-8db7c97c7d51","2023-11-27T21:24:34.876+00:00",[],"Institute-of-Mass-and-Heat-Transfer-Academic-Scientific-Complex-Belarusian-Academy-of-Sciences-Minsk-Belarus",{"title":1069},{"VI":1070},"Institute of Mass and Heat Transfer, Academic Scientific Complex, Belarusian Academy of Sciences, Minsk, Belarus",{"title":1072},{"VI":1073},"B. L. Kopeliovich",{"url":1056,"publisher":1075,"properties":1103},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1076,"slug":10,"properties":1077,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1081,"manageAffiliations":1082,"indexDatabases":1083,"url":95,"thumbnailPath":20,"statistic":1098,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":1078,"eissn":1079,"title":1080},{"VOID":13},{"VOID":15},{"EN":17},[],[],[1084,1091],{"id":77,"indexDatabase":1085,"url":90,"indexYears":91,"academicFieldIds":1090,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":1086,"label":1087,"description":1088,"key":87,"publicationTags":1089,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":1092,"url":72,"indexYears":20,"academicFieldIds":1097,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":1093,"label":1094,"description":1095,"key":68,"publicationTags":1096,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":1099,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":1100,"totalCitation":128,"totalCitationByYear":1101,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":1102,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},{"volume":1104,"pages":1105},{"VOID":357},{"VOID":1106},"110-115","2011-03-28",2011,{"id":1110,"createTime":1111,"updateTime":1112,"relativeEntities":1113,"slug":1114,"properties":1115,"entityType":183,"verifyStatus":184,"verifyTime":1112,"verifyNote":185,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1125,"fullTextUrl":20,"authors":1126,"publicationType":325,"publisherRelationship":1142,"citationCount":20,"citationInfo":20,"publishDate":1171,"publishYear":486,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":362},"62b3ec00-a75d-4074-8c82-d56ca7caab0d","2024-04-06T22:47:02.682+00:00","2024-12-20T23:51:14.719+00:00",[],"The-Mutual-Influence-of-the-Turbulence-Coefficient-and-Reynolds-Number-on-the-Formation-of-a-Turbulent-Process-1-The-Randomness-Coefficient",{"references":1116,"keywords":1118,"abstract":1119,"title":1121,"doi":1123},{"VOID":1117},"G. Alfonci, Applied Mech. Rev. 62, 040802 (2009). https:\u002F\u002Fdoi.org\u002F10.1115\u002F1.3124648\nP. Sagaut, Large Eddy Simulation for Incompressible Flows (Springer, New York, 2006).\nI. V. Lebed and S. Y. Umanskii, Russ. J. Phys. Chem. B 1 (1), 52 (2007). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793107010071\nI. V. Lebed, Russ. J. Phys. Chem. B 8 (2), 240 (2014). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793114020171\nA. Ph. Kiselev and I. V. Lebed, Chaos, Solitons and Fractals 142, 110491 (2021). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.chaos.2020.110491\nG. I. Taylor, Proc. Roy. Soc. London A 151, 421 (1935).\nH. K. Moffatt, J. Fluid Mech. 106, 27 (1981).\nA. Ph. Kiselev and I. V. Lebed, Russ. J. Phys. Chem. B 15 (1), 189 (2021). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS199079312101005X\nA. Ph. Kiselev and I. V. Lebed, Russ. J. Phys. Chem. B 15 (5), 895 (2021). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793121030222\nI. V. Lebed, Physica A 515, 715 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.physa.2018.09.166\nI. V. Lebed, Physica A 524, 325 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.physa.2019.04.086\nI. V. Lebed, Chem. Phys. Rep. 16 (7), 1263 (1997).\nI. V. Lebed, The Foundations of Multimoment Hydrodynamics, Part 1: Ideas, Methods and Equations (Nova Science Publishers, New York, 2018).\nJ. M. Chomaz, P. Bonneton, and E. J. Hopfinger, J. Fluid Mech. 234, 1 (1993). https:\u002F\u002Fdoi.org\u002F10.1017\u002FS0022112093002009\nI. V. Lebed, Russ. J. Phys. Chem. B 16 (1), 197 (2022). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS1990793122010092\nI. V. Lebed, Russ. J. Phys. Chem. B 16 (2), 370 (2022). https:\u002F\u002Fdoi.org\u002F10.1134\u002FS199079312202018X\nH. Sakamoto and H. Haniu, J. Fluid Mech. 287, 151 (1995). https:\u002F\u002Fdoi.org\u002F10.1017\u002FS0022112095000905\nF. Mikami, R. Toyota, and N. Nishikawa, J. Phys.: Conf. Ser. 216, 012013 (2010). https:\u002F\u002Fdoi.org\u002F10.1088\u002F1742-6596\u002F216\u002F1\u002F012013",{"EN":902},{"EN":1120},"The equations of multimoment hydrodynamics, supplemented by stochastic components, are used to study the chaotic distortion of a regular flow in the wake of a sphere. The mutual influence of the Reynolds number and the intensity of weak disordered perturbations in the incident flow, characterized by the turbulence coefficient, is investigated. The calculations show that the turbulent flow pattern is formed due to the excessive growth of disordered perturbations in the unstable recirculating zone in the near wake behind the sphere. The transition from laminar to turbulent motion has a considerable length on the Reynolds number scale. The turbulence coefficient is a key factor influencing the formation of a turbulent flow pattern. Low values of the turbulence coefficient can block the occurrence of turbulence even at arbitrarily high values of the Reynolds number. On the contrary, high values of the turbulence coefficient can initiate turbulence even at relatively low values of the Reynolds number. The degree of the development of turbulence is interpreted in terms of randomness coefficients depending on the Reynolds number and the turbulence coefficient. The previously formulated idea on the nature of turbulence is confirmed. The regular component of turbulence is formed as a result of unstable motion of coherent structures. Excessively expanding disordered perturbations form the chaotic component of turbulence.",{"EN":1122},"The Mutual Influence of the Turbulence Coefficient and Reynolds Number on the Formation of a Turbulent Process: 1. The Randomness Coefficient",{"VOID":1124},"10.1134\u002FS1990793123050056","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1990793123050056",[1127],{"id":1128,"sortIndex":21,"researcher":20,"roles":1129,"affiliations":1130,"properties":1139},"231fdb49-1949-42b5-a2cf-c3e6e1fcc145",[192],[1131],{"id":20,"sortIndex":21,"affiliation":1132,"properties":20},{"id":1133,"createTime":1134,"updateTime":1134,"relativeEntities":1135,"slug":20,"properties":1136,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"1614f4c3-fe54-487e-9ce2-ef7e3a1ab98e","2024-01-04T11:40:35.438+00:00",[],{"title":1137},{"VI":1138},"Institute of Applied Mechanics, Russian Academy of Sciences, Moscow, Russia",{"title":1140},{"VI":1141},"I. V. Lebed",{"url":20,"publisher":1143,"properties":20},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1144,"slug":10,"properties":1145,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1149,"manageAffiliations":1150,"indexDatabases":1151,"url":95,"thumbnailPath":20,"statistic":1166,"gsStatistic":20,"type":163,"analyzePriority":20},[],{"issn":1146,"eissn":1147,"title":1148},{"VOID":13},{"VOID":15},{"EN":17},[],[],[1152,1159],{"id":77,"indexDatabase":1153,"url":90,"indexYears":91,"academicFieldIds":1158,"indexDatabaseRanking":94},{"id":79,"createTime":80,"updateTime":81,"relativeEntities":1154,"label":1155,"description":1156,"key":87,"publicationTags":1157,"standard":20},[],{"EN":84,"VI":84},{"EN":84,"VI":86},[89],[93],{"id":57,"indexDatabase":1160,"url":72,"indexYears":20,"academicFieldIds":1165,"indexDatabaseRanking":20},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":1161,"label":1162,"description":1163,"key":68,"publicationTags":1164,"standard":20},[],{"EN":64,"VI":64},{"VI":66,"EN":67},[70,71],[74,75],{"impactFactor":21,"impactFactorByYear":1167,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":1168,"totalCitation":128,"totalCitationByYear":1169,"totalCitationPerPublication":143,"totalCitationPerPublicationByYear":1170,"hindexLast5Year":162,"hindex":162},{"2012":98,"2013":99,"2014":100,"2015":99,"2016":101,"2017":102,"2018":103,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2007":113,"2008":114,"2009":115,"2010":116,"2011":117,"2012":118,"2013":119,"2014":116,"2015":120,"2016":115,"2017":121,"2018":122,"2019":115,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2007":130,"2008":131,"2009":132,"2010":133,"2011":134,"2012":135,"2013":136,"2014":132,"2015":137,"2016":138,"2017":139,"2018":118,"2019":140,"2020":119,"2021":130,"2022":141,"2023":142},{"2007":145,"2008":146,"2009":147,"2010":148,"2011":149,"2012":150,"2013":151,"2014":152,"2015":153,"2016":154,"2017":155,"2018":156,"2019":157,"2020":158,"2021":159,"2022":160,"2023":161},"2023-11-22"]