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S. Borisov and A. L. Borisova,Plasma-Sprayed Powder Coatings [in Russian], Tekhnika, Kiev (1986).\nT. H. Stenberg, K. J. Niemi, P. M. J. Vuoristo, and T. A. Mantula, “Preparation and properties of TiC-Ni composite coating,” in:Proc. of the 13th Int. Thermal Spray Conf. (28 May–5 June 1992), Vol. 1, Orlando, Florida (1993), pp. 661–665.\nA. Ya. Kulik, Yu. S. Borisov, A. S. Mogutin, and M. D. Nikitin,Gas Spraying of Composite Powders [in Russian], Mashinostroenie, Leningrad (1985).\nE. Lugscheid, M. Loch, and H. G. Suk, “Powder technology—state of the art,” in:Proc. of the 13th Int. Thermal Spray Conf. (28 May–5 June 1992), Vol. 1, Orlando, Florida (1993), pp. 555–559.\nS. G. Cliche and S. Daillaire, “Synthesis and deposition of TiC-Fe coating by plasma spraying,” in:Proc. of the 3rd Nat. Thermal Spray Conf. (20–25 May 1990), Long Beach, California (1990), pp. 761–765.\nV. E. Ovcharenko. O. P. Solonenko, et al., “Plasma processing and spraying of composite powders having a microdisperse inner structure,” in:Proc. of the 3rd European Congress on Thermal Plasma Processing (19–21 September 1994), Aachen, Germany (1994), pp. 395–403.\nV. E. Ovcharenko and O. P. Solonenko, “Physical peculiarities of plasma spheroidization of composite powders having a microdisperse structure,” in:Proc. of the 14 Int. Thermal Spray Conf. (22–26 May 1995), Kobe, Japan (1995), pp.1151–1156.\nV. K. Smolyakov, “Mathematical modeling of steady combustion of group IV and V transient metals and their alloys with non-metals,” Candidate's Dissertation in Phys.-Math. Sci., Tomsk (1984).\nM. A. Korchagin and V. V. Aleksandrov, “Electron-microscope study of the interaction of titanium with carbon,”Fiz. Goreniya Vzryava,27, No. 1, 72–76 (1981).\nC. L. Smithells (ed.),Metals Reference Book, Butterworth, London-Boston (1976).\nG. V. Samsonov and I. M. Vinitskii,Refractory Compounds, Handbook [in Russian], Metallurgiya, Moscow (1976).\nE. A. Nekrasov, V. K. Smolyakov, and Yu. M. Maksimov, “Mathematical model for combustion of the titanium-carbon system,”Fiz. Goreniya Vzryva,17, No. 5, 39–46 (1981).\nA. A. Samarskii,Theory of Difference Schemes [in Russian], Nauka, Moscow (1977).\nI. P. Dobrovol'skii and B. A. Kartashkin, “Modeling of dissolution of solids in liquids,” in:Physicochemical Computer-Assisted Studies in Metallurgy and Metal Engineering [in Russian], Nauka, Moscow (1974), pp. 29–36.\nA. V. Chechetkin and N. A. Zanemonets,Heat Engineering [in Russian], Vysshaya Shkola, Moscow (1986).",{"VOID":142},"10.1007\u002FBF02674496","PUBLICATION","VERIFIED","2024-06-24T07:16:22.510+00:00","Auto Verify","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF02674496",[149,165],{"id":150,"sortIndex":19,"researcher":18,"roles":151,"affiliations":153,"properties":162,"displayName":164,"givenName":18,"familyName":18},"381a0cc5-7ad7-4c3b-a9b5-d94a38003367",[152],"AUTHOR",[154],{"id":155,"sortIndex":19,"affiliation":156,"properties":18},"5b94c997-692f-459d-a080-eafbd8a07ca7",{"id":155,"createTime":18,"updateTime":18,"relativeEntities":157,"slug":18,"properties":158,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":161,"statistic":18},[],{"title":159},{"VI":160},"Siberian Division, Russian Academy of Sciences, Institute of the Physics of Strength and Materials Science, Tomsk",[],{"title":163},{"VI":164},"V. E. 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Quantitative estimates of dispersion of the granular structure of the synthesized intermetallide are made within the framework of the mathematical model proposed in the present paper.",{"EN":259},"Formation of the granular structure in the intermetallic compound Ni3Al in high-temperature synthesis under compression",{"VOID":261},"[\"14442368188746404521\"]",{"VOID":263},"A. G. Merzhanov and I. P. Borovinskaya, “Self-propagating high-temperature synthesis of refractory inorganic compounds,” Dokl. Akad. Nauk SSSR, 204, No. 2, 366–369 (1972).\nL. S. Stel’makh, N. I. Zhilyaeva, and A. M. Stolin, “Rheodynamics and heat transfer during hot compaction of powder materials,” Inzh.-Fiz. Zh., 63, No. 5, 612–622 (1992).\nV. I. Itin and Yu. S. Naiborodenko, High-Temperature Synthesis of Intermetallic Compounds [in Russian], Izd. Tomsk. Univ., Tomsk (1981).\nA. E. Sychev and A. G. Merzhanov, “Self-propagating high-temperature synthesis of nanomaterials,” Usp. Khim., 73, No. 2, 157–170 (2002).\nV. K. Smolyakov and O. V. Lapshin, “Formation of the microscopic structure of the product of SHS under compaction,” Combust., Expl., Shock Waves, 38, No. 2, 148–156 (2002).\nL. M. Buchatskii and A. M. Stolin, “High-temperature rheology of SHS materials,” Inzh.-Fiz. Zh., 63, No. 5, 593–604 (1992).\nV. V. Skorokhod, Rheological Foundations of the Sintering Theory [in Russian], Naukova Dumka, Kiev (1972).\nV. M. Gorokhov and M. S. Koval’chenko, “Advanced concepts of the behavior of powder materials under hot compression,” in: Rheological Models and Processes of Deformation of Porous and Powder Composite Materials [in Russian], Naukova Dumka, Kiev (1985), pp. 126–135.\nL. M. Buchatskii, A. M. Stolin, and S. I. Khudyaev, “Kinetics of variation of the density distribution during hot compression of a viscous porous body,” Poroshk. Metallurg., No. 2, 37–42 (1986).\nJ. Happel and H. Brenner, Low Reynolds Number Hydrodynamics, Noordhoff, Leyden (1973).\nYu. M. Maksimov, O. K. Lepakova, L. G. Raskolenko, and M. Kh. Ziatdinov, “Sintering of reaction products of combustion of alloys in nitrogen,” Poroshk. Metallurg., No. 12, 44–49 (1985).\nG. V. Samsonov and I. M. Vinitskii, Refractory Compounds, Handbook [in Russian], Metallurgiya, Moscow (1977).\nC. L. Smithells (ed.), Metals Reference Book, Butterworth, London-Boston (1976).\nV. A. Rabinovich and Z. Ya. Khavin, Brief Chemical Handbook [in Russian], Khimiya, Moscow (1978).\nV. N. Eremenko, Ya. V. Natazon, V. P. Titov, and A. G. Tsydulko, “Kinetics of nickel dissolution in liquid aluminum,” Izv. Akad. Nauk SSSR, Metally, No. 1, 64–66 (1981).\nA. A. 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Ul’yanitskii, “Gas detonation and its application in engineering and technologies (review),” Combust., Expl., Shock Waves, 39, No. 4, 382–410 (2003).",{"doi":657},"10.1023\u002FA:1024726619703",{"id":659,"createTime":660,"updateTime":661,"relativeEntities":662,"slug":663,"properties":664,"entityType":143,"verifyStatus":144,"verifyTime":673,"verifyNote":146,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":674,"fullTextUrl":18,"authors":675,"publicationType":179,"publisherRelationship":704,"citationCount":19,"citationInfo":766,"publishDate":769,"publishYear":767,"citationAnalyzeStatus":770,"lastCitationAnalyze":661,"indexDatabases":771,"openAccess":18,"references":772,"isForceReanalyzing":248},"efd3ddfa-10b0-48f1-800d-5166ae7b2788","2024-02-09T12:26:56.587+00:00","2026-07-30T00:39:25.989+00:00",[],"Experimental-Study-of-a-Cellular-Ethanol-Flame-Evaporating-On-the-Ceiling-",{"abstract":665,"title":667,"gsPaper":669,"doi":671},{"EN":666},"This paper describes the study of evaporation and combustion of ethanol under a horizontal wall in a stratified shear gas layer in the case of the Rayleigh–Taylor instability. Data on the nature of flow are obtained with the use of particle image velocimetry (PIV), and temperature profiles are recorded by a thermocouple. It is shown that cells are formed in a narrow range of air velocity of 0.6 ± 0.05 m\u002Fs and does not depend on the height of the obstacle (backward ledge or an edge is 0–7 mm in height). The flow between the wall and flame front is an alternation of mushroom-shaped structures moving from one wall to another. In the cellular flame, the flow of substance (with respect to the air flow) exceeds its level in a standard laminar boundary layer three times. The averaged transverse velocity is directed away from the wall in the boundary layer with combustion without cells, and it is reduced and directed toward the wall in the cellular flame between the wall and flame front.",{"EN":668},"Experimental Study of a Cellular Ethanol Flame Evaporating “On the Ceiling”",{"VOID":670},"[\"1740645300425079386\"]",{"VOID":672},"10.1134\u002FS001050821801001X","2024-04-29T06:16:13.924+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS001050821801001X",[676,691],{"id":677,"sortIndex":19,"researcher":18,"roles":678,"affiliations":679,"properties":688,"displayName":690,"givenName":18,"familyName":18},"4883fe68-d186-444a-af1a-d63372b0a5c2",[152],[680],{"id":681,"sortIndex":19,"affiliation":682,"properties":18},"713bece5-fb97-4a14-869f-c5782271157c",{"id":681,"createTime":18,"updateTime":18,"relativeEntities":683,"slug":18,"properties":684,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":687,"statistic":18},[],{"title":685},{"VI":686},"Kutateladze Institute of Thermophysics, Siberian Branch, Russian Academy of Sciences, Novosibirsk, Russia",[],{"title":689},{"VI":690},"R. Kh. Abdrakhmanov",{"id":692,"sortIndex":167,"researcher":18,"roles":693,"affiliations":694,"properties":701,"displayName":703,"givenName":18,"familyName":18},"695a2865-017a-4201-8422-a4b39a9d161d",[152],[695],{"id":681,"sortIndex":19,"affiliation":696,"properties":18},{"id":681,"createTime":18,"updateTime":18,"relativeEntities":697,"slug":18,"properties":698,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":700,"statistic":18},[],{"title":699},{"VI":686},[],{"title":702},{"VI":703},"B. F. Boyarshinov",{"url":674,"publisher":705,"properties":761},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":706,"slug":10,"properties":707,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":710,"manageAffiliations":730,"indexDatabases":741,"url":18,"thumbnailPath":18,"statistic":756,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":708,"title":709},{"VOID":13},{"EN":15},[711,715,719,722,726],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":712,"label":713,"description":714,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":716,"label":717,"description":718,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":720,"label":721,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{"id":39,"createTime":18,"updateTime":18,"relativeEntities":723,"label":724,"description":725,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":42},{},{"id":45,"createTime":18,"updateTime":18,"relativeEntities":727,"label":728,"description":729,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":48},{},[731,736],{"id":52,"createTime":18,"updateTime":18,"relativeEntities":732,"slug":18,"properties":733,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":735,"statistic":18},[],{"title":734},{"EN":56},[],{"id":59,"createTime":18,"updateTime":18,"relativeEntities":737,"slug":18,"properties":738,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":740,"statistic":18},[],{"title":739},{"EN":63},[],[742,749],{"id":67,"indexDatabase":743,"url":80,"indexYears":18,"academicFieldIds":748,"indexDatabaseRanking":18},{"id":69,"createTime":18,"updateTime":18,"relativeEntities":744,"label":745,"description":746,"key":76,"publicationTags":747,"standard":18},[],{"EN":72,"VI":72},{"EN":74,"VI":75},[78,79],[82,83,84,85],{"id":87,"indexDatabase":750,"url":98,"indexYears":99,"academicFieldIds":755,"indexDatabaseRanking":18},{"id":89,"createTime":18,"updateTime":18,"relativeEntities":751,"label":752,"description":753,"key":95,"publicationTags":754,"standard":18},[],{"EN":92,"VI":92},{"EN":92,"VI":94},[97],[101,102,103,104,105],{"impactFactor":19,"impactFactorByYear":757,"i10Index":108,"i10IndexLast5Year":19,"totalPublication":109,"totalPublicationByYear":758,"totalCitation":113,"totalCitationByYear":759,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":760,"hindexLast5Year":121,"hindex":121},{},{"2003":111,"2004":112},{"2003":115,"2004":116},{"2003":119,"2004":120},{"pages":762,"volume":764},{"VOID":763},"1-8",{"VOID":765},"54",{"total":19,"publishYear":767,"statisticByYear":768},2018,{},"2018-03-08","DONE_ANALYZE_CITATION",[97,78],[773,776,779,782,788,791,794,797,800,803,806,809,812,815,818,821,824,827,830,833,839,842,845],{"id":18,"text":774,"url":18,"identifiers":775},"M. van Dyke, An Album of Fluid Motion (The Parabolic Press, Stanford, 1982).",{},{"id":18,"text":777,"url":18,"identifiers":778},"N. A. Inogamov, A. Yu. Dem’yanov, and E. E. Son, Mixing Hydrodynamics (Izd. Mosk. Fiz.-Tekh. Inst., Moscow, 1999) [in Russian].",{},{"id":18,"text":780,"url":18,"identifiers":781},"B. S. Petukhov and A. F. Polyakov, Heat Transfer in Mixed Turbulent Convection (Nauka, Moscow, 1986).",{},{"id":783,"text":784,"url":785,"identifiers":786},"4c68646b-0035-4279-8000-0006b275d4fa","T. S. Chen, E. M. Sparrow and A. Mucoglu, “Mixed Convection in Boundary Layer Flow on a Horizontal Plate,” J. Heat Transfer 99 (1), 66–71 (1977).","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10440-022-00541-7",{"doi":787},"10.1007\u002Fs10440-022-00541-7",{"id":783,"text":789,"url":785,"identifiers":790},"Ya. Mori, “Buoyancy Effects in Forced Laminar Convection Flow over a Horizontal Flat Plate,” J. Heat Transfer 83 (4), 479–482 (1961).",{"doi":787},{"id":783,"text":792,"url":785,"identifiers":793},"Ch.-K. Lim and B.-J. Chung, “Natural Convection Experiments on the Upward and Downward Faces of Inclined Plates Using an Electroplating System,” Heat Mass Transfer 51, 713–722 (2015).",{"doi":787},{"id":783,"text":795,"url":785,"identifiers":796},"Y. Zhang, M. J. Bustamante, M. J. Gollner, et al., “Burning on Flat Wicks at Various Orientations,” J. Fire Sci. 32 (1), 52–71 (2014).",{"doi":787},{"id":783,"text":798,"url":785,"identifiers":799},"J. De Ris and L. Orloff, “The Role of Buoyancy Direction and Radiation in Turbulent Diffusion Flames on Surfaces,” in 15th Symp. (Int.) on Combustion (1974).",{"doi":787},{"id":783,"text":801,"url":785,"identifiers":802},"P. L. Blackshear and M. A. Kanury, “Some Effects of Size, Orientation and Fuel Molecular Weight on the Burning of the Fuel-Soaked Wicks,” in 11th Symp. (Int.) on Combustion (1967).",{"doi":787},{"id":783,"text":804,"url":785,"identifiers":805},"M. J. Gollner, X. Huang, A. S. Rangwala, et al., “Effects of Inclination on Upward Flame Spread,” in 2011 Fall Technical Meeting of the Western States Section of Combustion Institute, October 16–18, 2011.",{"doi":787},{"id":783,"text":807,"url":785,"identifiers":808},"C. E. Wooldridge and R. J. Muzzy, “Measurements in the Turbulent Boundary Layer with Porous Wall Injection and Combustion,” in Tenth Symp. (Int.) on Combustion (1965).",{"doi":787},{"id":783,"text":810,"url":785,"identifiers":811},"J. W. Jones, L. I. Iscaacson, and S. Vreekes, “A Turbulent Boundary Layer with Mass Addition, Combustion, and Pressure Gradients,” AIAA J. 9 (9), 1762–1768 (1971).",{"doi":787},{"id":783,"text":813,"url":785,"identifiers":814},"L. Orloff and J. De Ris, “Modeling of Ceiling Fires,” in 13th Symp. (Int.) on Combustion (1971).",{"doi":787},{"id":783,"text":816,"url":785,"identifiers":817},"L. Orloff and J. De Ris, “Cellular and Turbulent Ceiling Fires,” Combust. Flame 18, 389–401 (1972).",{"doi":787},{"id":18,"text":819,"url":18,"identifiers":820},"B. Lewis and G. von Elbe, Combustion, Flames and Explosions in Gases (Academic Press, New York, 1961).",{},{"id":783,"text":822,"url":785,"identifiers":823},"R. Kh. Abdrakhmanov, B. F. Boyarshinov, and S. Yu. Fedorov, “Investigation of the Local Parameters of a Cellular Propane\u002FButane\u002FAir Flame,” Int. J. Heat Mass Transfer. 109 1172–1180 (2017).",{"doi":787},{"id":783,"text":825,"url":785,"identifiers":826},"S. M. Ali, V. Raghavan, and A. S. Rangwala, “Numerical Analysis of Flame Heating on Arbitrarily Oriented Condensed Fuel Surfaces,” Fire Saf. J. 49, 67–78 (2012).",{"doi":787},{"id":783,"text":828,"url":785,"identifiers":829},"B. F. Boyarshinov, “On the Boundaries of the Transitional Regime of Mass Transfer During Ethanol Combustion on Horizontal Rear Walls of a Rib and a Step,” Fiz. Goreniya Vzryva 51 (4), 3–11 (2015) [Combust., Expl., Shock Waves 51 (4), 401–408 (2015)].",{"doi":787},{"id":18,"text":831,"url":18,"identifiers":832},"B. F. Boyarshinov, “Effect of Obstacles on a Flow Structure and Mass Transfer in the Boundary Layer with Combustion of Ethanol on a Horizontal Surface,” Teplofiz. Aeromekh. 20 (6), 713–722 (2013).",{},{"id":834,"text":835,"url":836,"identifiers":837},"22f4cbc9-9d95-4414-8de0-83b5087ee87b","B. F. Boyarshinov and S. Yu. Fedorov, “Measurement of Temperature and Concentration of OH Radicals in Combustion of Hydrogen and Ethanol by the Laser–Induced Fluorescence Technique,” Fiz. Goreniya Vzryva 40 (5), 16–20 (2004) [Combust., Expl., Shock Waves 40 (5), 511–515 (2004)].","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1023\u002FB:CESW.0000041402.12524.07",{"doi":838},"10.1023\u002FB:CESW.0000041402.12524.07",{"id":783,"text":840,"url":785,"identifiers":841},"B. F. Boyarshinov, “Analysis of Experimental Data on Heat and Mass Transfer in a Boundary Layer,” Fiz. Goreniya Vzryva 34 (2), 73–81 (2004) [Combust., Expl., Shock Waves 34 (2), 183–190 (2004)].",{"doi":787},{"id":783,"text":843,"url":785,"identifiers":844},"T. Ota and H. Nishiyama, “A Correlation of Maximum Turbulent Heat Transfer Coefficient in Reattachment Flow Region,” Int. J. Heat Mass Transfer. 30 (6), 1193–1199 (1987).",{"doi":787},{"id":783,"text":846,"url":785,"identifiers":847},"K. Kapoor and Y. Jaluria, “Flow and Heat Transfer Due to a Buoyant Ceiling Jet Turning Downward at a Corner,” J. Heat Transfer 118 (1), 38–46 (1996).",{"doi":787},{"id":849,"createTime":850,"updateTime":851,"relativeEntities":852,"slug":853,"properties":854,"entityType":143,"verifyStatus":144,"verifyTime":865,"verifyNote":146,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":866,"fullTextUrl":18,"authors":867,"publicationType":179,"publisherRelationship":937,"citationCount":167,"citationInfo":999,"publishDate":1002,"publishYear":1000,"citationAnalyzeStatus":770,"lastCitationAnalyze":1003,"indexDatabases":1004,"openAccess":18,"references":18,"isForceReanalyzing":248},"7427f64c-d8b7-4d1c-813b-56fcd2a06d1a","2024-02-11T12:08:36.877+00:00","2026-07-27T03:37:00.181+00:00",[],"Numerical-method-to-discuss-the-mechanism-of-nano-Mn-ferrite-powder-preparation-by-detonation-of-emulsion-explosives",{"abstract":855,"title":857,"gsPaper":859,"references":861,"doi":863},{"EN":856},"In the present research, the phase distribution of the detonation products of emulsion explosives used to prepare nano-MnFe2O4 powders by detonation is simulated by a numerical method. The mechanism of nano-MnFe2O4 powder synthesis via detonation of emulsion explosives is discussed and explained. The results obtained indicate that FeO and MnO form in the reaction zone before the Chapman-Jouguet detonation state is reached; these oxides react with surplus oxygen in air during the decrease in temperature and pressure, resulting in MnFe2O4 generation.",{"EN":858},"Numerical method to discuss the mechanism of nano-Mn ferrite powder preparation by detonation of emulsion explosives",{"VOID":860},"[\"820839675931558965\"]",{"VOID":862},"X. H. Wang et al., “Nano-MnFe2O4 Powders Synthesis by Detonation of Emulsion Explosive,” Appl. Phys. A 90(3), 417–422 (2008).\nM. Born and J. E. Mayer, “Lattice Theory of Ionic Crystals,” Z. Phys. 75, 1–18 (1932).\nC. L. Mader, Numerical Modeling of Explosives and Propellants (CRC Press, New York, 1998).\nX. H. Wang, Research of Nano-Mn(Zn) Ferrite Synthesis by Detonation of Emulsion Explosive (Dalian Univ. of Technology, 2008).\nK. A. Gschneldner, Jr. “Physical Properties and Interrelationships of Metallic and Semimetallic Elements,” Solid State Phys. 16, 275–426 (1964).\nP. M. Stanley, LASL Shock Hugoniot Data (Univ. of California Press, Berkeley-London, 1980).\nQ. Wu, F. Q. Jing, and X. Z. Li, “Determination of the Input Parameters β0K, β′0K and ρ0K for 0 K Universal Isothermal Equation of State,” Chin. J. High Pressure Phys. 19(2), 97–104 (2005).\nX. H. Wang et al., “Experiment Research of Nano Manganese Ferrite Powders Prepared by Detonation Method,” Chin. J. High Pressure Phys. 21(2), 173–177 (2007).",{"VOID":864},"10.1134\u002FS001050821303012X","2024-08-30T21:29:35.148+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS001050821303012X",[868,883,896,911,924],{"id":869,"sortIndex":19,"researcher":18,"roles":870,"affiliations":871,"properties":880,"displayName":882,"givenName":18,"familyName":18},"92f8e468-aa18-40aa-85c8-200e89c57be4",[152],[872],{"id":873,"sortIndex":19,"affiliation":874,"properties":18},"f6f84a58-1651-46c3-8914-cdedad0318e8",{"id":873,"createTime":18,"updateTime":18,"relativeEntities":875,"slug":18,"properties":876,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":879,"statistic":18},[],{"title":877},{"VI":878},"Dalian University of Technology, Dalian Liaoning, China",[],{"title":881},{"VI":882},"X. H. Wang",{"id":884,"sortIndex":167,"researcher":18,"roles":885,"affiliations":886,"properties":893,"displayName":895,"givenName":18,"familyName":18},"c37b7336-ec5b-412a-8bb8-1ae12baf6ea7",[152],[887],{"id":873,"sortIndex":19,"affiliation":888,"properties":18},{"id":873,"createTime":18,"updateTime":18,"relativeEntities":889,"slug":18,"properties":890,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":892,"statistic":18},[],{"title":891},{"VI":878},[],{"title":894},{"VI":895},"X. J. Li",{"id":897,"sortIndex":108,"researcher":18,"roles":898,"affiliations":899,"properties":906,"displayName":908,"givenName":18,"familyName":18},"19c4ca97-af3e-4b5f-bad9-3e5dde4a1366",[152],[900],{"id":873,"sortIndex":19,"affiliation":901,"properties":18},{"id":873,"createTime":18,"updateTime":18,"relativeEntities":902,"slug":18,"properties":903,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":905,"statistic":18},[],{"title":904},{"VI":878},[],{"title":907,"gsAuthor":909},{"VI":908},"H. H. Yan",{"VOID":910},"[\"EgCn-PQAAAAJ\"]",{"id":912,"sortIndex":111,"researcher":18,"roles":913,"affiliations":914,"properties":921,"displayName":923,"givenName":18,"familyName":18},"468b02e7-c183-4926-b825-4ef177b55b61",[152],[915],{"id":873,"sortIndex":19,"affiliation":916,"properties":18},{"id":873,"createTime":18,"updateTime":18,"relativeEntities":917,"slug":18,"properties":918,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":920,"statistic":18},[],{"title":919},{"VI":878},[],{"title":922},{"VI":923},"Yo. Yin",{"id":925,"sortIndex":121,"researcher":18,"roles":926,"affiliations":927,"properties":934,"displayName":936,"givenName":18,"familyName":18},"bce2bb07-1c8b-44d5-9368-4831dbede3f1",[152],[928],{"id":873,"sortIndex":19,"affiliation":929,"properties":18},{"id":873,"createTime":18,"updateTime":18,"relativeEntities":930,"slug":18,"properties":931,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":933,"statistic":18},[],{"title":932},{"VI":878},[],{"title":935},{"VI":936},"Zh. Yu. Liu",{"url":866,"publisher":938,"properties":994},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":939,"slug":10,"properties":940,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":943,"manageAffiliations":963,"indexDatabases":974,"url":18,"thumbnailPath":18,"statistic":989,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":941,"title":942},{"VOID":13},{"EN":15},[944,948,952,955,959],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":945,"label":946,"description":947,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":949,"label":950,"description":951,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":953,"label":954,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{"id":39,"createTime":18,"updateTime":18,"relativeEntities":956,"label":957,"description":958,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":42},{},{"id":45,"createTime":18,"updateTime":18,"relativeEntities":960,"label":961,"description":962,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":48},{},[964,969],{"id":52,"createTime":18,"updateTime":18,"relativeEntities":965,"slug":18,"properties":966,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":968,"statistic":18},[],{"title":967},{"EN":56},[],{"id":59,"createTime":18,"updateTime":18,"relativeEntities":970,"slug":18,"properties":971,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":973,"statistic":18},[],{"title":972},{"EN":63},[],[975,982],{"id":67,"indexDatabase":976,"url":80,"indexYears":18,"academicFieldIds":981,"indexDatabaseRanking":18},{"id":69,"createTime":18,"updateTime":18,"relativeEntities":977,"label":978,"description":979,"key":76,"publicationTags":980,"standard":18},[],{"EN":72,"VI":72},{"EN":74,"VI":75},[78,79],[82,83,84,85],{"id":87,"indexDatabase":983,"url":98,"indexYears":99,"academicFieldIds":988,"indexDatabaseRanking":18},{"id":89,"createTime":18,"updateTime":18,"relativeEntities":984,"label":985,"description":986,"key":95,"publicationTags":987,"standard":18},[],{"EN":92,"VI":92},{"EN":92,"VI":94},[97],[101,102,103,104,105],{"impactFactor":19,"impactFactorByYear":990,"i10Index":108,"i10IndexLast5Year":19,"totalPublication":109,"totalPublicationByYear":991,"totalCitation":113,"totalCitationByYear":992,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":993,"hindexLast5Year":121,"hindex":121},{},{"2003":111,"2004":112},{"2003":115,"2004":116},{"2003":119,"2004":120},{"pages":995,"volume":997},{"VOID":996},"353-358",{"VOID":998},"49",{"total":167,"publishYear":1000,"statisticByYear":1001},2013,{"2025":167},"2013-06-20","2026-07-27T03:37:00.180+00:00",[97,78],{"id":1006,"createTime":1007,"updateTime":1008,"relativeEntities":1009,"slug":1010,"properties":1011,"entityType":143,"verifyStatus":144,"verifyTime":1022,"verifyNote":146,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1023,"fullTextUrl":18,"authors":1024,"publicationType":179,"publisherRelationship":1049,"citationCount":1111,"citationInfo":1112,"publishDate":1115,"publishYear":1113,"citationAnalyzeStatus":770,"lastCitationAnalyze":1116,"indexDatabases":1117,"openAccess":18,"references":18,"isForceReanalyzing":248},"8a070d45-a8bf-4e58-80bd-87c5c6590f1b","2024-02-07T12:56:09.562+00:00","2026-07-27T00:33:51.522+00:00",[],"Detonation-As-Combustion-in-a-Supersonic-Flow-of-a-Combustible-Mixture",{"abstract":1012,"title":1014,"gsPaper":1016,"references":1018,"doi":1020},{"EN":1013},"The classical models of steady propagation of combustion and detonation waves in a combustible mixture describe the increase in the system entropy to a maximum value in the case of deflagration (subsonic) combustion of the mixture driven by slow processes of heat conduction and diffusion. In the detonation (supersonic) regime, however, where one of the leading roles belongs to the bow shock wave, the models predict that the combustible system after completion of the chemical reaction “chooses\" the minimum increase in entropy. These predictions are inconsistent with the formulation of chemical thermodynamics that the entropy of the system reaches its maximum value after the spontaneous irreversible chemical reaction is finalized and the equilibrium state is established. It is shown in the present study that the predictions of the classical models on the minimum increase in entropy in the case of detonation are eliminated if detonation is considered as a process of combustion of a mixture preliminary subjected to an irreversible process of compression and heating of the initial mixture in the bow shock wave (chemical spike) with a corresponding increase in entropy of the initial mixture and subsequent energy release from the mixture in an irreversible process of mixture conversion to chemical reaction products.",{"EN":1015},"Detonation As Combustion in a Supersonic Flow of a Combustible Mixture",{"VOID":1017},"[\"208543689768587711\"]",{"VOID":1019},"Physics of Explosion, Ed. by L. P. Orlenko (Fizmatlit, Moscow, 2002) [in Russian].\nK. I. Shchelkin and Ya. K. Troshin, Gas-Dynamics of Combustion (Izd. Akad. Nauk SSSR, Moscow, 1963) [in Russian].\nF. Bartlma, Gasdynamik der Verbrennung (Springer-Verlag, Wien, 1975).\nN. M. Bazhin, V. A. Ivanchenko, and V. N. Parmon, Thermodynamics for Chemists (Khmimiya–KolosS, Moscow, 2004) [in Russian].\nK. P. Stanyukovich, Unsteady Motions of Continuous Media (Nauka–GRFMLit, Moscow, 1971) [in Russian].",{"VOID":1021},"10.1134\u002FS0010508222060077","2024-05-13T05:48:43.172+00:00","https:\u002F\u002Flink.springer.com\u002F10.1134\u002FS0010508222060077",[1025],{"id":1026,"sortIndex":19,"researcher":18,"roles":1027,"affiliations":1028,"properties":1046,"displayName":1048,"givenName":18,"familyName":18},"3dd8eb72-a813-419b-ae93-914071110ada",[152],[1029,1037],{"id":1030,"sortIndex":19,"affiliation":1031,"properties":18},"2613e6d3-eb19-41f6-8488-670dac68a7b7",{"id":1030,"createTime":18,"updateTime":18,"relativeEntities":1032,"slug":18,"properties":1033,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1036,"statistic":18},[],{"title":1034},{"VI":1035},"Lavrentyev Institute of Hydrodynamics, Siberian Branch, Russian Academy of\nSciences, \nNovosibirsk, Russia",[],{"id":1038,"sortIndex":167,"affiliation":1039,"properties":1045},"15e643fb-87ba-46da-b1f8-af92beb558d2",{"id":1038,"createTime":18,"updateTime":18,"relativeEntities":1040,"slug":18,"properties":1041,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1044,"statistic":18},[],{"title":1042},{"VI":1043},"Novosibirsk State University, Novosibirsk, Russia",[],{},{"title":1047},{"VI":1048},"A. A. Vasil’ev",{"url":1023,"publisher":1050,"properties":1106},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1051,"slug":10,"properties":1052,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1055,"manageAffiliations":1075,"indexDatabases":1086,"url":18,"thumbnailPath":18,"statistic":1101,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1053,"title":1054},{"VOID":13},{"EN":15},[1056,1060,1064,1067,1071],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":1057,"label":1058,"description":1059,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":1061,"label":1062,"description":1063,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":1065,"label":1066,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{"id":39,"createTime":18,"updateTime":18,"relativeEntities":1068,"label":1069,"description":1070,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":42},{},{"id":45,"createTime":18,"updateTime":18,"relativeEntities":1072,"label":1073,"description":1074,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":48},{},[1076,1081],{"id":52,"createTime":18,"updateTime":18,"relativeEntities":1077,"slug":18,"properties":1078,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1080,"statistic":18},[],{"title":1079},{"EN":56},[],{"id":59,"createTime":18,"updateTime":18,"relativeEntities":1082,"slug":18,"properties":1083,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1085,"statistic":18},[],{"title":1084},{"EN":63},[],[1087,1094],{"id":67,"indexDatabase":1088,"url":80,"indexYears":18,"academicFieldIds":1093,"indexDatabaseRanking":18},{"id":69,"createTime":18,"updateTime":18,"relativeEntities":1089,"label":1090,"description":1091,"key":76,"publicationTags":1092,"standard":18},[],{"EN":72,"VI":72},{"EN":74,"VI":75},[78,79],[82,83,84,85],{"id":87,"indexDatabase":1095,"url":98,"indexYears":99,"academicFieldIds":1100,"indexDatabaseRanking":18},{"id":89,"createTime":18,"updateTime":18,"relativeEntities":1096,"label":1097,"description":1098,"key":95,"publicationTags":1099,"standard":18},[],{"EN":92,"VI":92},{"EN":92,"VI":94},[97],[101,102,103,104,105],{"impactFactor":19,"impactFactorByYear":1102,"i10Index":108,"i10IndexLast5Year":19,"totalPublication":109,"totalPublicationByYear":1103,"totalCitation":113,"totalCitationByYear":1104,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":1105,"hindexLast5Year":121,"hindex":121},{},{"2003":111,"2004":112},{"2003":115,"2004":116},{"2003":119,"2004":120},{"pages":1107,"volume":1109},{"VOID":1108},"696-708",{"VOID":1110},"58",5,{"total":1111,"publishYear":1113,"statisticByYear":1114},2023,{"2024":167,"2025":111},"2023-01-10","2026-07-27T00:33:51.521+00:00",[78],{"id":1119,"createTime":1120,"updateTime":1121,"relativeEntities":1122,"slug":1123,"properties":1124,"entityType":143,"verifyStatus":144,"verifyTime":1135,"verifyNote":146,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1136,"fullTextUrl":18,"authors":1137,"publicationType":179,"publisherRelationship":1153,"citationCount":19,"citationInfo":1215,"publishDate":1218,"publishYear":1216,"citationAnalyzeStatus":246,"lastCitationAnalyze":1121,"indexDatabases":1219,"openAccess":18,"references":18,"isForceReanalyzing":248},"54740f79-5c0c-499b-80e4-aff2b294c71f","2024-02-14T10:17:01.667+00:00","2026-07-25T08:34:58.441+00:00",[],"Destruction-of-filled-polymer-targets-by-high-velocity-impact",{"abstract":1125,"title":1127,"gsPaper":1129,"references":1131,"doi":1133},{"EN":1126},"An analysis is made of experimental results on impact (at velocities of 0.6–6.26 km\u002Fsec) of projectiles made of Caprolon and polyethylene and compound projectiles (made of Caprolon with steel or aluminum spheres) on targets made of an epoxy resin with and without a filler (Al2O3) in a ballistic range. Impact on the edge surface of cylindrical targets with a characteristic size of 0.05 m is investigated. Complete fracture of the targets was recorded at velocities above 1 km\u002Fsec. The masses and dimensions of the collected fragments are subjected to statistical analysis. Average values of the fragment sizes and specific surface fracture energy are calculated.",{"EN":1128},"Destruction of filled polymer targets by high-velocity impact",{"VOID":1130},"[\"3796566586955220758\"]",{"VOID":1132},"B. L. Glushak, V. F. Kuropatenko, and S. A. Novikov, Strength of Materials under Dynamic Loading [in Russian], Nauka, Novosibirsk (1992).\nG. I. Kanel’, S. V. Razorenov, A. V. Utkin, and V. E. Fortov, Shock-Wave Phenomena in Condensed Media [in Russian], Yanus-K, Moscow (1996).\nV. M. Fomin, A. I. Gulidov, G. A. Sapozhnikov, et al., High-Velocity Interaction [in Russian], Izd. Sib. Otd. Ross. Akad. Nauk, Novosibirsk (1999).\nL. V. Al’tshuler, R. F. Trunin, V. D. Urlin, et al., “Development of dynamic methods for high-pressure research in Russia,” Usp. Fiz. Nauk, 169, No. 2, 323–344 (1999).\nR. Kinslow (ed.), High-Velocity Impact Phenomena, Academic Press, New York-London (1970).\nB. L. Strauss, “New ablative heat shield materials for mars landers,” J. Spacecraft Rockets, 4, No. 10, 1304–1309 (1967).\nN. N. Pilyugin, “Determining the velocities of sticking of electrons to aluminum oxides from ballistic experiments,” Teplofiz. Vysok. Temp., 32, No. 3, 339–353 (1994).\nA. N. Pilyugin and N. N. Pilyugin, “Determining the rate constants of recombination and sticking reactions from ballistic experiments,” Combust., Expl., Shock Waves, 31, No. 5, 70–82 (1995).\nN. N. Pilyugin, “Sticking velocities of electrons to aluminum oxides in mixtures of air with xenon,” Combust., Expl., Shock Waves, 41, No. 3, 65–73 (2005).\nN. N. Pilyugin, “Laboratory determination of the rate constant of silicon ion recombination: Applications to studies of a meteoric trace,” Astronom. Vestn., 31, No. 6, 550–557 (1997).\nP. V. Kozlov, S. V. Kochergin-Nikitskii, and N. N. Pilyugin, “Fracture of polymer materials under high-velocity impact,” in: Abstracts of IX All-Union Congress on the Theoretical and Applied Mechanics, Vol. 3, Lobachevskii Nizhegorod. Gos. Univ., Novgorod (2006), pp. 112–113.\nD. Kerren, D. Shocky, L. Simen, and M. Ostin, “Mechanisms and models of crater formation in environment,” in: Impact, Explosion and Fracture [Russian translation], Mir, 1981, pp. 81–115.\nA. Fujiwara, “Results obtained by laboratory simulations of catastrophic impact,” Memore S. A. It., 57, No. 1, 47–63 (1986).\nG. S. Khodakov, Physics of Grinding [in Russian], Nauka, Moscow (1972).\nA. N. Kolmogorov, “Lognormal law of distribution of particle sizes in grinding,” Dokl. Akad. Nauk, SSSR, 31, No. 2 (1942).\nJ. J. Gilvary, “Fracture of brittle solids,” J. Appl. Phys., 32, No. 3 (1961).\nL. I. Baron and I. E. Hmelkovskii, Rock Breaking by Free Impact [in Russian], Nauka, Moscow (1971).\nÉ. A. Koshelev, V. M. Kuznetsov, S. G. Sofronov, and A. G. Chernikov, “Statistics of fragments formed during fracture of solids by explosion,” J. Appl. Mech. Tech. Phys., No. 2, 87–100 (1971).\nV. A. Odintsov, “Bimodal distribution of fragments of cylinders,” Combust., Expl., Shock Waves, 27, No. 5, 118–122 (1991).\nV. A. Odintsov, “Hyperexponential spectra of explosive destruction of metal cylinders,” Mekh. Tverd. Tela, No. 5, 48–55 (1992).\nF. Kun, F. K. Wittel, H. J. Herrmann, B. H. Kroplin, and K. J. Maloy, “Scaling behavior of fragment shapes,” Phys. Rev. Lett., No. 96, 025504, 1–4 (2006).\nA. B. Kiselev, “Model of fragmentation during high-velocity collision of particles of space dust,” Vestnik Mosk. Univ., Ser. 1, Mat., Mekh., No. 3, 50–55 (2001).\nW. K. Brown and K. H. Wohletz, “Derivation of the Weibull distribution based on physical principles and its connection to the Rosin-Rammler and lognormal distributions,” J. Appl. Phys., No. 78(4), 2758–2763 (1995).\nH. Melosh, Impact Cratering. A Geological Process, Oxford University Press-Clarendon Press, Oxford-New York (1989).\nD. E. Munson, R. R. Boade, and K. W. Schuler, “Stress-wave propagation in Al2O3-epoxy mixtures,” J. Appl. Phys., 49, No. 9, 797–807 (1978).\nG. P. Cherepanov, Mechanics of Brittle Fracture [in Russian], Nauka, Moscow (1974).",{"VOID":1134},"10.1007\u002Fs10573-008-0031-z","2024-05-16T15:04:40.964+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10573-008-0031-z",[1138],{"id":1139,"sortIndex":19,"researcher":18,"roles":1140,"affiliations":1141,"properties":1150,"displayName":1152,"givenName":18,"familyName":18},"b27972bd-611b-4628-b6fc-f3cfe0b1ed34",[152],[1142],{"id":1143,"sortIndex":19,"affiliation":1144,"properties":18},"12926613-e6e3-4b08-8b1b-e2c869a52052",{"id":1143,"createTime":18,"updateTime":18,"relativeEntities":1145,"slug":18,"properties":1146,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1149,"statistic":18},[],{"title":1147},{"VI":1148},"Institute of Mechanics, Lomonosov Moscow State University, Moscow",[],{"title":1151},{"VI":1152},"N. N. Pilyugin",{"url":1136,"publisher":1154,"properties":1210},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1155,"slug":10,"properties":1156,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1159,"manageAffiliations":1179,"indexDatabases":1190,"url":18,"thumbnailPath":18,"statistic":1205,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1157,"title":1158},{"VOID":13},{"EN":15},[1160,1164,1168,1171,1175],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":1161,"label":1162,"description":1163,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":1165,"label":1166,"description":1167,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":1169,"label":1170,"description":18,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{"id":39,"createTime":18,"updateTime":18,"relativeEntities":1172,"label":1173,"description":1174,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":42},{},{"id":45,"createTime":18,"updateTime":18,"relativeEntities":1176,"label":1177,"description":1178,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":48},{},[1180,1185],{"id":52,"createTime":18,"updateTime":18,"relativeEntities":1181,"slug":18,"properties":1182,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1184,"statistic":18},[],{"title":1183},{"EN":56},[],{"id":59,"createTime":18,"updateTime":18,"relativeEntities":1186,"slug":18,"properties":1187,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1189,"statistic":18},[],{"title":1188},{"EN":63},[],[1191,1198],{"id":67,"indexDatabase":1192,"url":80,"indexYears":18,"academicFieldIds":1197,"indexDatabaseRanking":18},{"id":69,"createTime":18,"updateTime":18,"relativeEntities":1193,"label":1194,"description":1195,"key":76,"publicationTags":1196,"standard":18},[],{"EN":72,"VI":72},{"EN":74,"VI":75},[78,79],[82,83,84,85],{"id":87,"indexDatabase":1199,"url":98,"indexYears":99,"academicFieldIds":1204,"indexDatabaseRanking":18},{"id":89,"createTime":18,"updateTime":18,"relativeEntities":1200,"label":1201,"description":1202,"key":95,"publicationTags":1203,"standard":18},[],{"EN":92,"VI":92},{"EN":92,"VI":94},[97],[101,102,103,104,105],{"impactFactor":19,"impactFactorByYear":1206,"i10Index":108,"i10IndexLast5Year":19,"totalPublication":109,"totalPublicationByYear":1207,"totalCitation":113,"totalCitationByYear":1208,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":1209,"hindexLast5Year":121,"hindex":121},{},{"2003":111,"2004":112},{"2003":115,"2004":116},{"2003":119,"2004":120},{"pages":1211,"volume":1213},{"VOID":1212},"239-247",{"VOID":1214},"44",{"total":19,"publishYear":1216,"statisticByYear":1217},2008,{},"2008-03-01",[97,78],{"id":1221,"createTime":1222,"updateTime":1223,"relativeEntities":1224,"slug":1225,"properties":1226,"entityType":143,"verifyStatus":144,"verifyTime":1235,"verifyNote":146,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1236,"fullTextUrl":18,"authors":1237,"publicationType":179,"publisherRelationship":1266,"citationCount":1327,"citationInfo":1328,"publishDate":1330,"publishYear":373,"citationAnalyzeStatus":17,"lastCitationAnalyze":1331,"indexDatabases":1332,"openAccess":18,"references":1333,"isForceReanalyzing":248},"3445053c-cb70-441f-807e-fe64b46084e8","2024-02-21T06:06:40.897+00:00","2026-07-23T13:36:03.023+00:00",[],"Characteristics-of-RDX-combustion-zones-at-different-pressures-and-initial-temperatures",{"abstract":1227,"title":1229,"gsPaper":1231,"doi":1233},{"EN":1228},"The RDX burning rates and temperature profiles in the combustion wave are measured with the pressure and initial temperature varied within wide limits. Parameters of combustion waves are found. The gas phase of RDX is demonstrated to have a single-zone structure. Two regimes of RDX combustion are found: a basic regime at p > 0.1 MPa and a special regime at p ≤ 0.1 MPa. The main characteristics of these regimes are obtained, and the wave regions responsible for the burning rate are determined. Both regimes are characterized by wide reaction zones in the gas phase. The processes of vaporization and decomposition of the condensed phase proceed simultaneously on the burning surface. The fraction of thermal expansion in the reaction layer of this phase is estimated. Laws of RDX gasiffication (pyrolysis) in the combustion wave are found, which turn out to be the same as those for HMX. Distributions of the heat-release rate in the combustion wave (in the reaction layer of the condensed phase and in the gas phase) are obtained. Sensitivity of the burning rate to the initial temperature is measured.",{"EN":1230},"Characteristics of RDX combustion zones at different pressures and initial temperatures",{"VOID":1232},"[\"6547262574079264134\"]",{"VOID":1234},"10.1007\u002Fs10573-006-0084-9","2024-05-03T21:46:47.496+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10573-006-0084-9",[1238,1253],{"id":1239,"sortIndex":19,"researcher":18,"roles":1240,"affiliations":1241,"properties":1250,"displayName":1252,"givenName":18,"familyName":18},"e28bccf2-f12c-4282-a328-4ea6af6b913d",[152],[1242],{"id":1243,"sortIndex":19,"affiliation":1244,"properties":18},"baf42419-0484-4f62-b42f-c40df75d11a7",{"id":1243,"createTime":18,"updateTime":18,"relativeEntities":1245,"slug":18,"properties":1246,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1249,"statistic":18},[],{"title":1247},{"VI":1248},"Semenov Institute of Chemical Physics, Russian Academy of Sciences, Moscow",[],{"title":1251},{"VI":1252},"A. A. Zenin",{"id":1254,"sortIndex":167,"researcher":18,"roles":1255,"affiliations":1256,"properties":1263,"displayName":1265,"givenName":18,"familyName":18},"1d373e5e-a04a-4d56-bf39-5cab1e3e1b4b",[152],[1257],{"id":1243,"sortIndex":19,"affiliation":1258,"properties":18},{"id":1243,"createTime":18,"updateTime":18,"relativeEntities":1259,"slug":18,"properties":1260,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1262,"statistic":18},[],{"title":1261},{"VI":1248},[],{"title":1264},{"VI":1265},"S. V. 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L. Boggs, “The thermal behavior of cyclotrimethylenetrinitramine (RDX) and cyclotetramethylenetetranitramine (HMX),” in: K. K. Kuo and M. Summerfield (eds.), Progress in Astronautics and Aeronautics, Vol. 90: Fundamentals of Solid-Propellant Combustion, Academic Press, New York (1984), pp. 121–175.",{"doi":787},{"id":783,"text":1338,"url":785,"identifiers":1339},"A. A. Zenin, “HMX and RDX: Combustion mechanism and influence on modern double-base propellant combustion,” J. Propul. Power, 11, No. 4, 752–758 (1995).",{"doi":787},{"id":18,"text":1341,"url":18,"identifiers":1342},"A. A. Zenin, V. M. Puchkov, and S. V. Finjakov, “Combustion mechanism of nitramines as monopropellants and as additives to double-base propellants,” in: Aerotecnica Missile Spazio, Vol. 7, Nos. 3–4, Revista dell’Assozione Italiana di Aeronautica and Astronautica (1995).",{},{"id":18,"text":1344,"url":18,"identifiers":1345},"A. A. Zenin, V. M. Puchkov, S. V. Finjakov, and G. P. Kusnezov, “Burning wave parameters and nitramine combustion mechanism,” in: Proc. of the 26th Symp. (Int.) on Combustion, Napoli, The Combustion Inst. (1996), pp. 752–758.",{},{"id":783,"text":1347,"url":785,"identifiers":1348},"L. T. DeLuca, F. Cozzi, G. Germiniasi, et al., “Combustion mechanism of an RDX-based composite propellant,” Combust. Flame, 118, 248–261 (1999).",{"doi":787},{"id":783,"text":1350,"url":785,"identifiers":1351},"C. W. Fong and R. F. Smith, “The effect of binder, particle size and catalysts on the burning rates of PETN and RDX composite propellants,” Combust. Sci. Technol., 57, No. 1, 1–15 (1988).",{"doi":787},{"id":783,"text":1353,"url":785,"identifiers":1354},"K. V. Raman and H. Singh, “Ballistic modification of RDX-based CMDB propellants,” Propel., Expl., Pyrotech., 13, 149–151 (1988).",{"doi":787},{"id":1356,"text":1357,"url":1358,"identifiers":1359},"24a348be-654b-47a1-a4eb-a90cc8fdc3b8","A. A. Zenin, V. M. Puchkov, and S. V. Finyakov, “Characteristics of HMX combustion waves at various pressures and initial temperatures,” Combust., Expl., Shock Waves, 34, No. 2, 170–176 (1998).","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF02672817",{"doi":1360},"10.1007\u002FBF02672817",{"id":18,"text":1362,"url":18,"identifiers":1363},"A. A. Zenin, “Experimental study of the solid propellant combustion mechanism and the flow of combustion products,” Doct. Dissertation in Phys.-Math. Sci., Moscow (1976).",{},{"id":18,"text":1365,"url":18,"identifiers":1366},"S. V. Finjakov, “Study of the mechanism of powder combustion with a flow past the burning surface,” Candidate’s Dissertation in Phys.-Math. Sci., Moscow (1992).",{},{"id":18,"text":1368,"url":18,"identifiers":1369},"O. I. Leipunskii, A. A. Zenin, and V. M. Puchkov, “Influence of catalysts on the combustion-zone characteristics of condensed substances,” in: Combustion and Explosion, Proc. Third All-Union Symp. on Combustion and Explosion [in Russian], Nauka, Moscow (1972), pp. 74–77.",{},{"id":18,"text":1371,"url":18,"identifiers":1372},"A. A. Zenin, “Processes in combustion zones of ballistite powders,” in: Physical Processes in Combustion and Explosion [in Russian], Atomizdat, Moscow (1980), pp. 68–104.",{},{"id":783,"text":1374,"url":785,"identifiers":1375},"A. A. Zenin, “Thermophysics of stable combustion waves of solid propellants,” in: L. DeLuca, E. W. Price, and M. Summerfield (eds.), Progress in Astronautics and Aeronautics, Vol. 143: Nonsteady Burning and Combustion Stability of Solid Propellants, AIAA, Washington (1992), Chapter 6, pp. 197–231.",{"doi":787},{"id":18,"text":1377,"url":18,"identifiers":1378},"A. A. Zenin and S. V. Finjakov, “Physics of combustion of HTPB\u002Fnitramine compositions,” in: Energetic Materials, Proc. of the 32nd Int. Annu. Conf. of ICT, Karlsruhe, FRG (2001), pp. 8,1–8,24.",{},{"id":18,"text":1380,"url":18,"identifiers":1381},"A. A. Zenin and S. V. Finjakov, “Physics of combustion of energetic binder-nitramine mixtures,” in: Energetic Materials, Proc. of the 33rd Int. Annu. Conf. of ICT, Karlsruhe, FRG (2002), pp. 7,1–7,14.",{},{"id":18,"text":1383,"url":18,"identifiers":1384},"A. A. Zenin and S. V. Finjakov, “Combustion mechanism of new polymer\u002Foxidizer compositions,” in: Energetic Materials, Proc. of the 34th Int. Annu. Conf. of ICT, Karlsruhe, FRG (2003), pp. 54,1–54,13.",{},{"id":18,"text":1386,"url":18,"identifiers":1387},"A. A. Zenin and S. V. Finjakov, “Physics of combustion of solid mixtures with active binder and new oxidizer,” in: Energetic Materials, Proc. of the 35th Int. Annu. Conf. of ICT, Karlsruhe, FRG (2004), pp. 144,1–144,16.",{},{"id":18,"text":1389,"url":18,"identifiers":1390},"A. A. Zenin and S. V. Finjakov, “Physico-kinetical combustion mechanisms of new solid mixture compositions,” in: Energetic Materials, Proc. of the 36th Int. Annu. Conf. of ICT, Karlsruhe, FRG (2005), pp. 157,1–157,16.",{},{"id":18,"text":1392,"url":18,"identifiers":1393},"A. A. Zenin, V. K. Bobolev, O. I. Leipunskii, and A. P. Glazkova, “Study of the temperature distribution in ammonium perchlorate combustion,” Prikl. Mekh. Tekh. Fiz., No. 3, 154–158 (1964).",{},{"id":18,"text":1395,"url":18,"identifiers":1396},"A. A. Zenin, S. V. Finjakov, and N. G. Ibragimov, “Physics of nitrozoamine combustion: As a monopropellant and as an ingredient of modern propellants,” in: Energetic Materials, Proc. of the 30th Int. Annu. Conf. of ICT, Karlsruhe, FRG (1999), pp. 51,1–51,13.",{},{"id":1398,"text":1399,"url":1400,"identifiers":1401},"cff62a57-7868-44d5-b2a8-94479ec7c61e","A. A. Zenin, “Structure of temperature distribution in steady-state burning of a ballistite powder,” Combust., Expl., Shock Waves, 2, No. 3, 40–45 (1966).","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF00749025",{"doi":1402},"10.1007\u002Fbf00749025",{"id":18,"text":1404,"url":18,"identifiers":1405},"Yu. A. Maksimov, “Boiling temperature and enthalpy of vaporization of liquid RDX and HMX,” Zh. Fiz. Khim., 66, No. 2, 540–542 (1992).",{},{"id":18,"text":1407,"url":18,"identifiers":1408},"V. D. Barsukov and V. P. Nelaev, “Thermal effect of the zones of chemical conversion on the burning rate of a condensed system,” Inzh.-Fiz. Zh., XXIX, No. 6, 989–993 (1975).",{},{"id":18,"text":1410,"url":18,"identifiers":1411},"Ya. B. Zel’dovich, “Theory of combustion of propellants and explosives,” Zh. Éksp. Teor. Fiz., 12, Nos. 11\u002F12, 498–524 (1942).",{},{"id":783,"text":1413,"url":785,"identifiers":1414},"O. P. Korobeinichev, “Flame structure of solid propellants,” in: V. Yang, T. B. Brill, and W. Zh. Ren (eds.), Progress in Astronautics and Aeronautics, Vol. 185: Solid Propellant Chemistry, Combustion, and Motor Interior Ballistics, AIAA, Reston, Virginia (2000), Chapter 2.3, pp. 335–354.",{"doi":787},{"id":18,"text":1416,"url":18,"identifiers":1417},"A. A. Paletsky and O. P. Korobeinichev, “Study of the flame structure of ADN\u002FHTPB composite propellants using molecular-beam mass-spectrometry,” in: Energetic Materials, Proc. of the 29th Int. Annu. Conf. of ICT, Karlsruhe, FRG (1998), pp. 156,1–156,11.",{},{"id":783,"text":1419,"url":785,"identifiers":1420},"M. S. Miller and W. R. Anderson, “Energetic-material combustion modeling with elementary gas-phase reactions: A practical approach,” in: V. Yang, T. B. Brill, and W. Zh. Ren (eds.), Progress in Astronautics and Aeronautics, Vol. 185: Solid Propellant Chemistry, Combustion, and Motor Interior Ballistics, AIAA, Reston, Virginia (2000), Chapter 2.12, pp. 501–531.",{"doi":787},{"id":18,"text":1422,"url":18,"identifiers":1423},"A. A. Zenin, S. V. Finjakov, V. M. Puchkov, and N. G. Ibragimov, “Temperature coefficients of parameters of combustion waves in nitramine-containing powders,” Khim. Fiz., 18, No. 9, 73–81 (1999).",{},{"id":783,"text":1425,"url":785,"identifiers":1426},"A. A. Zenin, S. V. Finjakov, V. M. Puchkov, and N. G. Ibragimov, “Temperature and pressure sensitivities of burning wave parameters of nitramine-containing propellants and HMX,” J. Propul. 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The areas of the new contact particle surfaces produced by high-rate deformation were measured by stereological methods. The eddy current method was used to measure the macroscopic electric conductivity of the compacts. From these data, the mean sizes and number of macrodefects per unit volume of a compact were calculated. The techniques employed can be useful for an analysis of the structure of composite materials produced by various methods.",{"EN":1437},"Explosive compaction of aluminum powder and the structure of compacts",{"VOID":1439},"[\"4826847097975058753\"]",{"VOID":1441},"10.1007\u002FBF02699371","2024-05-02T09:46:41.890+00:00","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF02699371",[1445,1460,1473,1486],{"id":1446,"sortIndex":19,"researcher":18,"roles":1447,"affiliations":1448,"properties":1457,"displayName":1459,"givenName":18,"familyName":18},"4164fa26-58f5-4e1b-942d-382f5cee16e2",[152],[1449],{"id":1450,"sortIndex":19,"affiliation":1451,"properties":18},"996dc7e8-f639-4805-8031-9897a4a4e123",{"id":1450,"createTime":18,"updateTime":18,"relativeEntities":1452,"slug":18,"properties":1453,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1456,"statistic":18},[],{"title":1454},{"VI":1455},"Lavrent'ev Institute of Hydrodynamics, Siberian Division, Russian Academy of Sciences, Novosibirsk",[],{"title":1458},{"VI":1459},"S. 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V. Shepel’skii, V. N. Kornilov, and V. I. Belokopytov, “Analytical prediction of the anisotropy of fracture resistance for compacts of spherical powders,”Poroshk. Metall., No. 1, 62–65 (1990).",{"doi":787},{"id":783,"text":1572,"url":785,"identifiers":1573},"D. Raybould, “The production of strong parts and nonequilibrium alloys by dynamic compaction,” in:Shock Waves and High-Strain-Rate Phenomena in Metals, Plenum Press, New York-London (1981), pp. 895–911.",{"doi":787},{"id":783,"text":1575,"url":785,"identifiers":1576},"B. L. Mordike, J.-P. Jernot, and J.-L. Chermant, “Sintering of nickel powders. II. Influence of the particle size on the physical properties,”Z. Metall.,75, 12, 923–928 (1984).",{"doi":787},{"id":783,"text":1578,"url":785,"identifiers":1579},"G. E. Kuz’min, V. I. Mali, and V. V. Pai, “Projection of flat plates by layers of condensed explosives,”Fiz. Goreniya Vzryva,9, No. 4, 558–562 (1973).",{"doi":787},{"id":18,"text":1581,"url":18,"identifiers":1582},"S. A. Saltykov,Stereometrical Metallography [in Russian], Metallurgiya, Moscow (1970).",{},{"id":783,"text":1584,"url":785,"identifiers":1585},"Yu. V. Zagarin, G. E. Kuz’min, and I. V. Yakovlev, “Measurements of pressure and temperature during shock loading of porous composite materials,”Fiz. Goreniya Vzryva,25, No. 2, 129–133 (1989).",{"doi":787},{"id":18,"text":1587,"url":18,"identifiers":1588},"V. G. Levich,Course in Theoretical Physics [in Russian], Vol. 1, Nauka, Moscow (1969), pp. 687 and 894.",{},{"id":18,"text":1590,"url":18,"identifiers":1591},"I. E. Tamm,Fundamentals of the Theory of Electricity [in Russian], Nauka, Moscow (1976), p. 129.",{},{"id":18,"text":1593,"url":18,"identifiers":1594},"L. D. Landau and E. M. Lifshits,Hydrodynamics [in Russian], Nauka, Moscow (1986), pp. 50–51.",{},{"id":783,"text":1596,"url":785,"identifiers":1597},"W. B. Kouwenhoven and G. P. Daiger, “The measurement of specific resistance by eddy current shielding,”Rev. Sci. 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