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Fiz. 51, 957 (1966) [Sov. Phys. JETP 24, 637 (1967)].\nA. N. Starostin, A. N. Mironov, N. L. Aleksandrov, et al., Physica A (Amsterdam) 305, 287 (2002).\nYu. K. Zemtsov, A. Yu. Sechin, and A. N. Starostin, Zh. Éksp. Teor. Fiz. 110, 1654 (1996) [JETP 83, 909 (1996)].\nA. G. Leonov, A. A. Rudenko, A. N. Starostin, et al., Zh. Éksp. Teor. Fiz. 122, 282 (2002) [JETP 95, 242 (2002)].\nL. A. Artsimovich, Controlled Thermonuclear Reactions (Fizmatgiz, Moscow, 1961; Gordon & Breach, New York, 1964).\nF. Raiola, P. Migliardi, G. Gyurky, et al., Eur. Phys. J. A 13, 377 (2002).\nF. Raiola, P. Migliardi, P. Gang, et al., Phys. Lett. 547, 193 (2002).\nA. N. Starostin, V. I. Savchenko, and N. J. Fish, Phys. Lett. A 274, 64 (2000).\nL. M. Biberman, Zh. Éksp. Teor. Fiz. 17, 416 (1947); T. Holstein, Phys. Rev. 72, 1212 (1947).\nL. M. Biberman, V. S. Vorob’ev, and I. T. Yakubov, Kinetics of Nonequilibrium Low-Temperature Plasmas (Nauka, Moscow, 1982; Consultants Bureau, New York, 1987).\nD. 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V. Byalobzhesky, Radiation Corrosion (Nauka, Moscow, 1967) [in Russian].",{},{"id":22,"text":469,"url":22,"identifiers":470},"S. Lapuerta, N. Bérerd, N. Moncoffre, N. Millard-Pinard, H. Jaffrézic, D. Crusset, and D. Féron, J. Nucl. Mater. 375, 80 (2008).",{"doi":471},"10.1016\u002Fj.jnucmat.2007.10.011",{"id":22,"text":473,"url":22,"identifiers":474},"A. V. Filippov, V. N. Babichev, N. A. Dyatko, A. F. Pal’, A. N. Starostin, M. D. Taran, and V. E. Fortov, J. Exp. Theor. Phys. 102, 342 (2006).",{"doi":475},"10.1134\u002FS1063776106020154",{"id":22,"text":477,"url":22,"identifiers":478},"C. Cason, J. Perkins, A. Werkheiser, and J. Duderstadt, AIAA J. 15, 1079 (1977).\nhttps:\u002F\u002Farc.aiaa.org\u002Fdoi\u002F10.2514\u002F3.60757",{"doi":479},"10.2514\u002F3.60757",{"id":22,"text":481,"url":22,"identifiers":482},"Tomashov N.D., Chernova G.P. Theory of Corrosion and Corrosion-Resistant Structural Alloys  (Metallurgy, Moscow, 1986) [in Russian]",{},{"id":22,"text":484,"url":22,"identifiers":485},"P. B. P. Phipps, D. W. Rice, Rice, ACS Symp. Ser.  89, 235 (1979).",{"doi":486},"10.1021\u002Fbk-1979-0089.ch008",{"id":22,"text":488,"url":22,"identifiers":489},"A. V. Filippov, I. N. Derbenev, N. A. Dyatko, S. A. Kurkina, G. B. Lopantseva, A. F. Pal’, and A. N. Starostin, J. Exp. Theor. Phys. 125, 246 (2017).",{"doi":490},"10.1134\u002FS1063776117070020",{"id":22,"text":492,"url":22,"identifiers":493},"S. V. Starodubtsev and A. M. Romanov, The Passage of Charged Particles through Matter (Akad. Nauk Uzb. SSR, Tashkent, 1962; Israel Program for Scientific Translations, Jerusalem, 1965).",{},{"id":22,"text":495,"url":22,"identifiers":496},"B. V. Zhuravlev, A. P. Napartovich, A. F. Pal’, V. V. Pichugin, A. V. Rodin, A. N. Starostin, T. V. Taran, M. D. Taran, and A. V. Filippov,  Sov. J. Plasma Phys. 14, 133 (1988).",{},{"id":22,"text":498,"url":22,"identifiers":499},"A. V. Petukhov,  Chem. Phys. Lett. 277, 539 (1997).",{"doi":500},"10.1016\u002FS0009-2614(97)00916-0",{"id":22,"text":502,"url":22,"identifiers":503},"I. V. Savenkova, E. A. Fatyanova, Corrosion of Metals: Methods of Protecting Metals from Corrosion (Yugo-Zap. Gos. Univ., Kursk, 2013) [in Russian].",{},{"id":22,"text":505,"url":22,"identifiers":506},"M. Pourbaix and A. Pourbaix, Corrosion 45, 71 (1989).",{"doi":507},"10.5006\u002F1.3577890",{"id":22,"text":509,"url":22,"identifiers":510},"D. A. Frank-Kamenetsky, Diffusion and Heat Transfer in Chemical Kinetics (Nauka, Moscow, 1987)  [in Russian].",{},{"id":22,"text":512,"url":22,"identifiers":513},"A. F. Pal’, A. N. Starostin, and A. V. Filippov, Plasma Phys. Rep. 27, 143 (2001).",{"doi":514},"10.1134\u002F1.1348492",{"id":22,"text":516,"url":22,"identifiers":517},"G. J. Hagelaar and L. C. Pitchford, Plasma Sources Sci. Technol. 14, 722 (2005).",{"doi":518},"10.1088\u002F0963-0252\u002F14\u002F4\u002F011",{"id":22,"text":520,"url":22,"identifiers":521},"S. Pancheshnyi, S. F. Biagi, M. C. Bordage, G. J. M. Hagelaar, W. L. Morgan, A. V. Phelps, and L. C. Pitchford, Chem. Phys. 389, 148 (2012).",{"doi":522},"10.1016\u002Fj.chemphys.2011.04.020",{"id":22,"text":524,"url":22,"identifiers":525},"L. C. Pitchford, L.L. Alves, K. Bartschat, S. F. Biagi, M. C. Bordage, I. Bray, and S. Pancheshnyi, Plasma Processes Polym. 17, 1600098 (2017).",{"doi":526},"10.1002\u002Fppap.201600098",{"id":22,"text":528,"url":22,"identifiers":529},"R. W. Revie and H. H. Uhlig, Corrosion and Corrosion Control: An Introduction to Corrosion Science and Engineering (Wiley, New York, 1985).",{},{"id":531,"createTime":532,"updateTime":533,"relativeEntities":534,"slug":535,"properties":536,"entityType":115,"verifyStatus":116,"verifyTime":545,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":546,"fullTextUrl":22,"authors":547,"publicationType":182,"publisherRelationship":634,"citationCount":22,"citationInfo":22,"publishDate":686,"publishYear":687,"citationAnalyzeStatus":688,"lastCitationAnalyze":533,"indexDatabases":689,"openAccess":22,"references":690,"isForceReanalyzing":236},"7ec94257-8aa6-482f-8023-c08838b9826a","2024-02-13T14:21:32.639+00:00","2026-08-17T00:41:54.342+00:00",[],"The-effect-of-charge-exchange-with-neutrals-on-the-saturation-of-the-spectral-line-intensities-of-multicharged-ions-in-plasma",{"abstract":537,"title":539,"gsPaper":541,"doi":543},{"EN":538},"The influence of charge-exchange processes on the spectral line intensities of impurity ions in the edge and core plasmas of fusion devices is considered. It is found that, at a sufficiently high density of neutrals, the rate at which the atomic states are populated through charge exchange becomes independent of the neutral density, which results in the saturation of the spectral line intensities. This effect can substantially limit the efficiency of impurity-ion spectroscopy. Conditions under which the saturation effect manifests itself are examined for both the edge and core plasma regions in the presence of fast neutral beams. The results of calculations for the edge plasma are used to interpret the experimental data from the TORE SUPRA tokamak. It is shown that, in the central plasma region, the intensities of the visible spectral lines associated with the charge exchange of impurity ions in the course of neutral beam injection decrease (rather than increase, as was expected earlier) with increasing ion charge.",{"EN":540},"The effect of charge exchange with neutrals on the saturation of the spectral line intensities of multicharged ions in plasma",{"VOID":542},"[\"3719319099975322408\"]",{"VOID":544},"10.1134\u002F1.1618890","2024-04-28T23:33:52.117+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002F1.1618890",[548,563,578,591,604,619],{"id":549,"sortIndex":23,"researcher":22,"roles":550,"affiliations":551,"properties":560,"displayName":562,"givenName":22,"familyName":22},"b7fdca9d-4b43-4753-b5de-2d63f42e988c",[126],[552],{"id":553,"sortIndex":23,"affiliation":554,"properties":22},"835b8aeb-8d50-49ef-b7b6-36c0ac8c5f7e",{"id":553,"createTime":22,"updateTime":22,"relativeEntities":555,"slug":22,"properties":556,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":559,"statistic":22},[],{"title":557},{"VI":558},"Institute of Spectroscopy, Russian Academy of Sciences, Troitsk, Moscow oblast, Russia",[],{"title":561},{"VI":562},"L. A. Bureeva",{"id":564,"sortIndex":90,"researcher":22,"roles":565,"affiliations":566,"properties":575,"displayName":577,"givenName":22,"familyName":22},"0091eb4a-7c38-4c60-ac4a-81889d4149cf",[126],[567],{"id":568,"sortIndex":23,"affiliation":569,"properties":22},"16b57974-6d43-4495-b8f7-c2d42dc441b4",{"id":568,"createTime":22,"updateTime":22,"relativeEntities":570,"slug":22,"properties":571,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":574,"statistic":22},[],{"title":572},{"VI":573},"Russian Research Centre Kurchatov Institute, Moscow, Russia",[],{"title":576},{"VI":577},"V. S. Lisitsa",{"id":579,"sortIndex":156,"researcher":22,"roles":580,"affiliations":581,"properties":588,"displayName":590,"givenName":22,"familyName":22},"e6406397-daa1-4ae1-a332-52146534a6cd",[126],[582],{"id":568,"sortIndex":23,"affiliation":583,"properties":22},{"id":568,"createTime":22,"updateTime":22,"relativeEntities":584,"slug":22,"properties":585,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":587,"statistic":22},[],{"title":586},{"VI":573},[],{"title":589},{"VI":590},"D. A. Petrov",{"id":592,"sortIndex":170,"researcher":22,"roles":593,"affiliations":594,"properties":601,"displayName":603,"givenName":22,"familyName":22},"53deb5c6-dd1e-4edf-87e3-4756b884e800",[126],[595],{"id":568,"sortIndex":23,"affiliation":596,"properties":22},{"id":568,"createTime":22,"updateTime":22,"relativeEntities":597,"slug":22,"properties":598,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":600,"statistic":22},[],{"title":599},{"VI":573},[],{"title":602},{"VI":603},"D. A. Shuvaev",{"id":605,"sortIndex":325,"researcher":22,"roles":606,"affiliations":607,"properties":616,"displayName":618,"givenName":22,"familyName":22},"44dd5cda-9fbc-4612-8107-754f3efcb783",[126],[608],{"id":609,"sortIndex":23,"affiliation":610,"properties":22},"19c80d4a-f3a5-4996-ad2b-213da21a8ae4",{"id":609,"createTime":22,"updateTime":22,"relativeEntities":611,"slug":22,"properties":612,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":615,"statistic":22},[],{"title":613},{"VI":614},"GSI, Darmstadt, Germany",[],{"title":617},{"VI":618},"F. Rosmej",{"id":620,"sortIndex":341,"researcher":22,"roles":621,"affiliations":622,"properties":631,"displayName":633,"givenName":22,"familyName":22},"a766c69f-9dda-438d-b323-c04786e2a041",[126],[623],{"id":624,"sortIndex":23,"affiliation":625,"properties":22},"8b95b692-54f6-4a50-8d9b-96a74224da9d",{"id":624,"createTime":22,"updateTime":22,"relativeEntities":626,"slug":22,"properties":627,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":630,"statistic":22},[],{"title":628},{"VI":629},"Centre St. Jérôme, Université de Provence, Marseille Cedex 20, France",[],{"title":632},{"VI":633},"R. Stamm",{"url":546,"publisher":635,"properties":681},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":636,"slug":10,"properties":637,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":641,"manageAffiliations":650,"indexDatabases":661,"url":22,"thumbnailPath":22,"statistic":676,"gsStatistic":22,"type":94,"analyzePriority":22},[],{"issn":638,"title":639,"eissn":640},{"VOID":15},{"EN":17},{"VOID":13},[642,646],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":643,"label":644,"description":645,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":647,"label":648,"description":649,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},[651,656],{"id":39,"createTime":22,"updateTime":22,"relativeEntities":652,"slug":22,"properties":653,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":655,"statistic":22},[],{"title":654},{"EN":43},[],{"id":46,"createTime":22,"updateTime":22,"relativeEntities":657,"slug":22,"properties":658,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":660,"statistic":22},[],{"title":659},{"EN":50},[],[662,669],{"id":54,"indexDatabase":663,"url":65,"indexYears":66,"academicFieldIds":668,"indexDatabaseRanking":70},{"id":56,"createTime":22,"updateTime":22,"relativeEntities":664,"label":665,"description":666,"key":62,"publicationTags":667,"standard":22},[],{"EN":59,"VI":59},{"EN":59,"VI":61},[64],[68,69],{"id":72,"indexDatabase":670,"url":85,"indexYears":22,"academicFieldIds":675,"indexDatabaseRanking":22},{"id":74,"createTime":22,"updateTime":22,"relativeEntities":671,"label":672,"description":673,"key":81,"publicationTags":674,"standard":22},[],{"EN":77,"VI":77},{"EN":79,"VI":80},[83,84],[87],{"impactFactor":23,"impactFactorByYear":677,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":90,"totalPublicationByYear":678,"totalCitation":23,"totalCitationByYear":679,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":680,"hindexLast5Year":23,"hindex":23},{},{"2023":90},{},{},{"pages":682,"volume":684},{"VOID":683},"835-844",{"VOID":685},"29","2003-10-01",2003,"ERROR_IN_ANALYZE_CITATION",[70,83],[691,694,697,700,703,706,709,712,715,718,721,724],{"id":22,"text":692,"url":22,"identifiers":693},"I. Beigman, in Proceedings of the Lebedev Physical Institute (Fiz. Inst. im. P. N. Lebedeva, Akad. Nauk SSSR, Moscow, 1987), Vol. 179, p. 160.",{},{"id":22,"text":695,"url":22,"identifiers":696},"R. Guirlet, M. Koubiti, A. Escarguel, et al., Plasma Phys. Controlled Fusion 43, 177 (2001).",{},{"id":22,"text":698,"url":22,"identifiers":699},"L. A. Bureyeva, T. Kato, V. S. Lisitsa, and C. Namba, Phys. Rev. A 65, 032702 (2002).",{},{"id":22,"text":701,"url":22,"identifiers":702},"V. A. Astapenko, L. A. Bureyeva, and V. S. Lisitsa, Usp. Fiz. Nauk 172, 155 (2002) [Phys. Usp. 45, 149 (2002)].",{},{"id":22,"text":704,"url":22,"identifiers":705},"L. A. Vainstein, I. I. Sobelman, and E. A. Yukov, Excitation of Atoms and Broadening of Spectral Lines (Nauka, Moscow, 1979; Springer-Verlag, Berlin, 1981).",{},{"id":22,"text":707,"url":22,"identifiers":708},"K. R. Cornelius, K. Wojtkowski, and R. E. Olson, J. Phys. B 33, 2017 (2000).",{},{"id":22,"text":710,"url":22,"identifiers":711},"L. A. Bureyeva and V. S. Lisitsa, A Perturbed Atom (Gordon and Breach, 2000).",{},{"id":22,"text":713,"url":22,"identifiers":714},"R. K. Janev, L. P. Presnyakov, and V. P. Shevelko, Physics of Highly Charged Ions (Springer-Verlag, Berlin, 1985).",{},{"id":22,"text":716,"url":22,"identifiers":717},"L. M. Biberman, V. S. Vorob'ev, and I. T. Yakubov, Kinetics of Nonequilibrium Low-Temperature Plasma (Nauka, Moscow, 1982; Consultans Bureau, New York, 1987).",{},{"id":22,"text":719,"url":22,"identifiers":720},"F. B. Rosmej and V. S. Lisitsa, Phys. Lett. A 244, 401 (1998).",{},{"id":22,"text":722,"url":22,"identifiers":723},"L. A. Bureyeva, T. Kato, V. S. Lisitsa, and C. Namba, J. Phys. B 34, 1 (2001).",{},{"id":22,"text":725,"url":726,"identifiers":727},"http:\u002F\u002Fwww-dg.lhd.nifs.ac.jp\u002Flayout.html.","http:\u002F\u002Fwww-dg.lhd.nifs.ac.jp\u002Flayout.html",{},{"id":729,"createTime":730,"updateTime":731,"relativeEntities":732,"slug":733,"properties":734,"entityType":115,"verifyStatus":116,"verifyTime":745,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":746,"fullTextUrl":22,"authors":747,"publicationType":182,"publisherRelationship":797,"citationCount":22,"citationInfo":22,"publishDate":848,"publishYear":460,"citationAnalyzeStatus":688,"lastCitationAnalyze":731,"indexDatabases":849,"openAccess":22,"references":22,"isForceReanalyzing":236},"ed76558a-ebb2-4220-8136-de5caeae8c44","2024-01-20T06:52:07.250+00:00","2026-08-17T00:41:48.260+00:00",[],"Arbitrary-Amplitude-Dust-Ion-Acoustic-Solitary-Structures-in-Five-Components-Unmagnetized-Plasma",{"abstract":735,"title":737,"gsPaper":739,"references":741,"doi":743},{"EN":736},"The energy integral derived by using Sagdeev pseudo-potential technique has been analyzed to investigate the existence of arbitrary amplitude dust–ion acoustic solitons including double layers and supersolitons in a collisionless five components unmagnetized plasma. The plasma system contains warm adiabatic ions, two distinct populations of electrons at different temperatures, nonthermal hot positron species, and negatively charged static dust grains. The graphical analysis of Sagdeev pseudo-potential shows the existence of positive potential supersolitons (PPSS) along with positive potential double layers (PPDLs) and positive potential solitary waves (PPSWs) whereas in the negative potential side, the system does not support negative potential supersolitons but the existence of negative potential double layers (NPDLs), negative potential solitary waves (NPSWs), the coexistence of both PPSWs and NPSWs, and super-nonlinear periodic waves have been established. To explain the existence of different DIA solitary structures, phase portraits of the dynamical system corresponding to the different DIA solitary structures have been drawn. With the help of phase portraits, the transition of PPSWs just before and just after the formation of PPDL has been discussed. We have seen that the amplitude of PPSW decreases with increasing \n                  \n                    \n                  \n                  $${{\\beta }_{e}}$$\n                  \n                , \n                  \n                    \n                  \n                  $${{\\beta }_{p}}$$\n                  \n                , and \n                  \n                    \n                  \n                  $${{\\sigma }_{{sc}}}$$\n                  \n                 and it increases with increasing \n                  \n                    \n                  \n                  $${{\\sigma }_{{pc}}}$$\n                  \n                 whereas there exists a critical value \n                  \n                    \n                  \n                  $$n_{{pc}}^{c}$$\n                  \n                 of \n                  \n                    \n                  \n                  $${{n}_{{pc}}}$$\n                  \n                 such that the amplitude of PPSW decreases (increases) with increasing \n                  \n                    \n                  \n                  $${{n}_{{pc}}}$$\n                  \n                 for \n                  \n                    \n                  \n                  $${{n}_{{pc}}} \u003C n_{{pc}}^{c}$$\n                  \n                 (\n                  \n                    \n                  \n                  $$n_{{pc}}^{c} \u003C {{n}_{{pc}}}$$\n                  \n                ) for a fixed value of the Mach number M in the region of existence of PPSWs. Effects of parameters have been considered on the amplitude of NPSWs and PPSS also.",{"EN":738},"Arbitrary Amplitude Dust–Ion Acoustic Solitary Structures in Five Components Unmagnetized Plasma",{"VOID":740},"[\"12627778899264198140\"]",{"VOID":742},"W. H. Zurek, Astrophys. J. 289, 603 (1985).\nJ. C. Higdon, R. E. Lingenfelter, and R. E. Rothschild, Astrophys. J. 698, 350 (2009).\nP. K. Shukla, Phys. Scr. 77, 068201 (2008).\nH. Alfvén, Cosmic Plasma (Reidel, Dordrecht, 1981).\nN. Jehan, W. Masood, and A. M. Mirza, Phys. Scr. 80, 035506 (2009).\nS. A. El-Tantawy, N. A. El-Bedwehy, and W. M. Moslem, Phys. Plasmas 18, 052113 (2011).\nS. A. El-Tantawy and W. M. Moslem, Phys. Plasmas 18, 112105 (2011).\nA. E. Dubinov and D. Y. Kolotkov, IEEE Trans. Plasma Sci. 40, 1429 (2012).\nM. M. Masud, S. Sultana, and A. A. Mamun, Astrophys. Space Sci. 348, 99 (2013).\nA. S. Bains, N. S. Saini, and T. S. Gill, Astrophys. Space Sci. 343, 293 (2013).\nA. N. Dev, M. K. Deka, R. K. Kalita, and J. 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Rep. 38, 833 (2012).",{"VOID":744},"10.1134\u002FS1063780X22601225","2024-06-24T11:21:28.649+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1063780X22601225",[748,765,780],{"id":749,"sortIndex":23,"researcher":22,"roles":750,"affiliations":751,"properties":760,"displayName":762,"givenName":22,"familyName":22},"ad9e5753-375b-4118-b38d-c95a2bd04ed7",[126],[752],{"id":753,"sortIndex":23,"affiliation":754,"properties":22},"0a0559a8-43e3-4fb4-84a0-7936a4394390",{"id":753,"createTime":22,"updateTime":22,"relativeEntities":755,"slug":22,"properties":756,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":759,"statistic":22},[],{"title":757},{"VI":758},"Department of Mathematics, Jadavpur University, Kolkata, India",[],{"title":761,"gsAuthor":763},{"VI":762},"P. Halder",{"VOID":764},"[\"m8rjDkAAAAAJ\"]",{"id":766,"sortIndex":90,"researcher":22,"roles":767,"affiliations":768,"properties":775,"displayName":777,"givenName":22,"familyName":22},"61511e08-34ed-4555-b9ed-f6127d70b1ba",[126],[769],{"id":753,"sortIndex":23,"affiliation":770,"properties":22},{"id":753,"createTime":22,"updateTime":22,"relativeEntities":771,"slug":22,"properties":772,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":774,"statistic":22},[],{"title":773},{"VI":758},[],{"title":776,"gsAuthor":778},{"VI":777},"A. Bandyopadhyay",{"VOID":779},"[\"t1sHg00AAAAJ\"]",{"id":781,"sortIndex":156,"researcher":22,"roles":782,"affiliations":783,"properties":792,"displayName":794,"givenName":22,"familyName":22},"957585f4-73ee-4df8-a0ef-bc74d70b32a1",[126],[784],{"id":785,"sortIndex":23,"affiliation":786,"properties":22},"5b303c76-0127-4fd3-9a69-f25987d5fd5c",{"id":785,"createTime":22,"updateTime":22,"relativeEntities":787,"slug":22,"properties":788,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":791,"statistic":22},[],{"title":789},{"VI":790},"Department of Mathematics, Guru Ghasidas Vishwavidyalaya, Bilaspur, India",[],{"title":793,"gsAuthor":795},{"VI":794},"S. Sardar",{"VOID":796},"[\"HGP2MlwAAAAJ\"]",{"url":746,"publisher":798,"properties":844},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":799,"slug":10,"properties":800,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":804,"manageAffiliations":813,"indexDatabases":824,"url":22,"thumbnailPath":22,"statistic":839,"gsStatistic":22,"type":94,"analyzePriority":22},[],{"issn":801,"title":802,"eissn":803},{"VOID":15},{"EN":17},{"VOID":13},[805,809],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":806,"label":807,"description":808,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":810,"label":811,"description":812,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},[814,819],{"id":39,"createTime":22,"updateTime":22,"relativeEntities":815,"slug":22,"properties":816,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":818,"statistic":22},[],{"title":817},{"EN":43},[],{"id":46,"createTime":22,"updateTime":22,"relativeEntities":820,"slug":22,"properties":821,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":823,"statistic":22},[],{"title":822},{"EN":50},[],[825,832],{"id":54,"indexDatabase":826,"url":65,"indexYears":66,"academicFieldIds":831,"indexDatabaseRanking":70},{"id":56,"createTime":22,"updateTime":22,"relativeEntities":827,"label":828,"description":829,"key":62,"publicationTags":830,"standard":22},[],{"EN":59,"VI":59},{"EN":59,"VI":61},[64],[68,69],{"id":72,"indexDatabase":833,"url":85,"indexYears":22,"academicFieldIds":838,"indexDatabaseRanking":22},{"id":74,"createTime":22,"updateTime":22,"relativeEntities":834,"label":835,"description":836,"key":81,"publicationTags":837,"standard":22},[],{"EN":77,"VI":77},{"EN":79,"VI":80},[83,84],[87],{"impactFactor":23,"impactFactorByYear":840,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":90,"totalPublicationByYear":841,"totalCitation":23,"totalCitationByYear":842,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":843,"hindexLast5Year":23,"hindex":23},{},{"2023":90},{},{},{"pages":845,"volume":847},{"VOID":846},"467-483",{"VOID":458},"2023-05-18",[70,83],{"id":851,"createTime":852,"updateTime":853,"relativeEntities":854,"slug":855,"properties":856,"entityType":115,"verifyStatus":116,"verifyTime":867,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":868,"fullTextUrl":22,"authors":869,"publicationType":182,"publisherRelationship":1078,"citationCount":391,"citationInfo":1130,"publishDate":1133,"publishYear":1131,"citationAnalyzeStatus":688,"lastCitationAnalyze":853,"indexDatabases":1134,"openAccess":22,"references":22,"isForceReanalyzing":236},"6c5e6d6b-5a05-4659-80e1-cd2c4d8269da","2023-12-06T12:31:47.804+00:00","2026-08-15T13:08:56.079+00:00",[],"Study-of-plasma-rotation-in-the-GOL-3-facility",{"abstract":857,"title":859,"gsPaper":861,"references":863,"doi":865},{"EN":858},"The MHD activity of plasma in the GOL-3 facility was studied experimentally. 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An analogy is revealed between the development of plasma sheets and the time evolution of the current sheet structure, which was previously studied using magnetic measurements. In the late stage of the sheet evolution, a change in the rotation direction of plasma sheets formed in 3D magnetic configurations was observed. Apparently, this is caused by a change in the direction of the Hall currents at the side edges of the current sheet.",{"EN":1145},"Time evolution of the plasma spatial structure during the formation of a current sheet in argon according to holographic interferometry",{"VOID":1147},"[\"4971183905709395180\"]",{"VOID":1149},"S. I. Syrovatskii, Annu. Rev. Astron. Astrophys. 19, 163 (1981).\nD. Biscamp, Magnetic Reconnection in Plasmas (Cambridge Univ. Press, Cambridge, 2000).\nE. R. Priest and T. Forbes, Magnetic Reconnection: MHD Theory and Applications (Cambridge Univ. Press, Cambridge, 2000).\nPlasma Heliogeophysics, Ed. by L. M. Zelenyi and I. S. Veselovskii (Fizmatlit, Moscow, 2008), Vols. 1, 2 [in Russian].\nS. Yu. Bogdanov, N. P. Kyrie, and A. G. Frank, Tr. IOFAN 51, 3 (1996).\nA. G. Frank, Phys. Usp. 53, 941 (2010).\nS. Yu. Bogdanov, G. V. Dreiden, N. P. Kyrie, et al., Sov. J. Plasma Phys. 18, 654 (1992).\nA. G. Frank, V. P. Gavrilenko, N. P. Kyrie, and G. V. Ostrovskaya, in Encyclopedia of Low-Temperature Plasma, Ed. by V. E. Fortov, Ser. B, Vol. III-2: Thermodynamic, Optical, and Transport Properties of Low-Temperature Plasma, Part 1: Optical Properties of Low-Temperature Plasma, Ed. by V. N. Ochkin (Yanus-K, Moscow, 2008), p. 335 [in Russian].\nN. P. Kyrie, V. S. Markov, and A. G. Frank, Plasma Phys. Rep. 36, 357 (2010).\nA. G. Frank and C. N. Satunin, Plasma Phys. Rep. 33, 829 (2011).\nA. G. Frank, N. P. Kyrie, and S. N. Satunin, Phys. Plasmas 18, 111209 (2011).\nN. P. Kyrie, V. S. Markov, and A. G. Frank, JETP Lett. 95, 14 (2012).\nN. P. Kyrie and A. G. Frank, Plasma Phys. Rep. 38, 960 (2012).\nG. V. Dreiden, A. N. Zaidel’, I. I. Komissarova, et al., Sov. Tech. Phys. Lett. 1, 68 (1975).\nA. G. Frank, S. Yu. Bogdanov, G. V. Dreiden, et al., Phys. Lett. A 348, 318 (2006).\nS. Yu. Bogdanov, G. V. Dreiden, V. S. Markov, et al., Plasma Phys. Rep. 33, 930 (2007).\nA. G. Frank, S. G. Bugrov, and V. S. Markov, Phys. Plasmas 15, 092102 (2008).\nM. Yamada, R. Kurlsrud, and H. Ji, Rev. Mod. Phys. 82, 603 (2010).\nS. Yu. Bogdanov, G. V. Dreiden, I. I. Komissarova, et al., Plasma Phys. Rep. 28, 549 (2002).\nA. G. Frank, S. Yu. Bogdanov, V. S. Markov, et al., Phys. Plasmas 12, 052316 (2005).\nS. Yu. Bogdanov, G. V. Dreiden, V. S. Markov, et al., Plasma Phys. Rep. 32, 1034 (2006).\nS. Yu. Bogdanov, S. G. Bugrov, V. P. Gritsyna, et al., Plasma Phys. Rep. 33, 435 (2007).\nA. G. Frank, S. G. Bugrov, and V. S. Markov, Phys. Lett. A 373, 1460 (2009).\nS. Yu. Bogdanov, V. B. Burilina, V. S. Markov, and A. G. Frank, JETP Lett. 59, 537 (1994).\nA. G. Frank, Plasma Phys. Controlled Fusion 41(Suppl. 3A), A687 (1999).\nG. V. Ostrovskaya, A. G. Frank, and S. Yu. Bogdanov, Tech. Phys. 55, 936 (2010).\nG. V. Ostrovskaya and A. G. Frank, Tech. Phys. 57, 495 (2012).\nS. Yu. Bogdanov, N. P. Kyrie, V. S. Markov, and A. G. Frank, JETP Lett. 71, 53 (2000).\nR. L. Stenzel and W. Gekelman, J. Geophys. Res. 86, 649 (1981).\nY. Yagi and N. Kawashima, Jpn. J. Appl. Phys. 24, L259 (1985).\nG. V. Ostrovskaya, Tech. Phys. 53, 1103 (2008).\nS. I. Syrovatskii, Sov. Phys. JETP 33, 933 (1971).",{"VOID":1151},"10.1134\u002FS1063780X14010085","2024-06-27T00:06:24.579+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1063780X14010085",[1155,1170],{"id":1156,"sortIndex":23,"researcher":22,"roles":1157,"affiliations":1158,"properties":1167,"displayName":1169,"givenName":22,"familyName":22},"606ca73f-f31c-4bdf-9c75-6fc75a44921e",[126],[1159],{"id":1160,"sortIndex":23,"affiliation":1161,"properties":22},"67cdaed2-6e46-4ec2-a22a-84852ec6153b",{"id":1160,"createTime":22,"updateTime":22,"relativeEntities":1162,"slug":22,"properties":1163,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1166,"statistic":22},[],{"title":1164},{"EN":1165},"Ioffe Physical-Technical Institute, St. Petersburg, Russia",[],{"title":1168},{"VI":1169},"G. V. Ostrovskaya",{"id":1171,"sortIndex":90,"researcher":22,"roles":1172,"affiliations":1173,"properties":1182,"displayName":1184,"givenName":22,"familyName":22},"10a2d719-d098-431f-b2c7-0a3f568f54a6",[126],[1174],{"id":1175,"sortIndex":23,"affiliation":1176,"properties":22},"0b07f2d2-8f10-4a73-b343-dd3e1d419954",{"id":1175,"createTime":22,"updateTime":22,"relativeEntities":1177,"slug":22,"properties":1178,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1181,"statistic":22},[],{"title":1179},{"VI":1180},"Prokhorov General Physics Institute, Russian Academy of Sciences, Moscow, Russia",[],{"title":1183},{"VI":1184},"A. G. Frank",{"url":1153,"publisher":1186,"properties":1232},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1187,"slug":10,"properties":1188,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1192,"manageAffiliations":1201,"indexDatabases":1212,"url":22,"thumbnailPath":22,"statistic":1227,"gsStatistic":22,"type":94,"analyzePriority":22},[],{"issn":1189,"title":1190,"eissn":1191},{"VOID":15},{"EN":17},{"VOID":13},[1193,1197],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1194,"label":1195,"description":1196,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1198,"label":1199,"description":1200,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},[1202,1207],{"id":39,"createTime":22,"updateTime":22,"relativeEntities":1203,"slug":22,"properties":1204,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1206,"statistic":22},[],{"title":1205},{"EN":43},[],{"id":46,"createTime":22,"updateTime":22,"relativeEntities":1208,"slug":22,"properties":1209,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1211,"statistic":22},[],{"title":1210},{"EN":50},[],[1213,1220],{"id":54,"indexDatabase":1214,"url":65,"indexYears":66,"academicFieldIds":1219,"indexDatabaseRanking":70},{"id":56,"createTime":22,"updateTime":22,"relativeEntities":1215,"label":1216,"description":1217,"key":62,"publicationTags":1218,"standard":22},[],{"EN":59,"VI":59},{"EN":59,"VI":61},[64],[68,69],{"id":72,"indexDatabase":1221,"url":85,"indexYears":22,"academicFieldIds":1226,"indexDatabaseRanking":22},{"id":74,"createTime":22,"updateTime":22,"relativeEntities":1222,"label":1223,"description":1224,"key":81,"publicationTags":1225,"standard":22},[],{"EN":77,"VI":77},{"EN":79,"VI":80},[83,84],[87],{"impactFactor":23,"impactFactorByYear":1228,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":90,"totalPublicationByYear":1229,"totalCitation":23,"totalCitationByYear":1230,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":1231,"hindexLast5Year":23,"hindex":23},{},{"2023":90},{},{},{"pages":1233,"volume":1235},{"VOID":1234},"21-33",{"VOID":1236},"40",20,{"total":1237,"publishYear":1239,"statisticByYear":1240},2014,{"2014":156,"2015":170,"2016":170,"2017":156,"2018":170,"2019":90,"2021":90,"2022":170,"2024":156},"2014-01-29","DONE_ANALYZE_CITATION",[70,83],{"id":1245,"createTime":1246,"updateTime":1247,"relativeEntities":1248,"slug":1249,"properties":1250,"entityType":115,"verifyStatus":116,"verifyTime":1261,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1262,"fullTextUrl":22,"authors":1263,"publicationType":182,"publisherRelationship":1342,"citationCount":23,"citationInfo":1394,"publishDate":1397,"publishYear":1395,"citationAnalyzeStatus":1242,"lastCitationAnalyze":1398,"indexDatabases":1399,"openAccess":22,"references":22,"isForceReanalyzing":236},"f2fdf81a-f17a-40e4-8121-069babfb83c0","2024-02-10T06:33:34.259+00:00","2026-07-25T15:00:24.387+00:00",[],"Study-of-soft-X-ray-emission-from-Z-pinches-with-a-complex-atomic-composition",{"abstract":1251,"title":1253,"gsPaper":1255,"references":1257,"doi":1259},{"EN":1252},"Results are presented from experimental studies of Z-pinches produced by implosion of aluminum and tungsten cylindrical wire arrays in the Angara-5-1 facility. The electron temperature T\n                        \n                  e\n                 and density n\n                        \n                  e\n                 of the high-temperature pinch plasma have been determined by analyzing line emission from multicharged ions. For the same mass and radius of the array and the same number of wires in it, the intensity of line emission of H- and He-like Al ions from an imploded Al + W wire array containing even a small amount of tungsten (7 wt %) is one order of magnitude lower than that from an Al array. As the W content increases, the total soft X-ray (SXR) yield increases, while the duration of the SXR pulse decreases. For the 30% W content in the array, the power and duration of the SXR pulse are nearly the same as those recorded during the implosion of a W array with the same linear mass and radius and the same number of wires. Results are also presented from experiments with nested wire arrays in which the outer and inner shells were made of Al and W wires, respectively. It is found that, in this case, the effect of tungsten on the line emission of aluminum is much weaker than that in experiments with arrays in which tungsten and aluminum wires were placed in the same shell, even if the mass of the inner (tungsten) shell was larger than that of the outer (aluminum) one. At the same time, the inner W shell plays a significant role in the implosion dynamics of a nested wire array, reducing the duration of the SXR pulse and increasing the SXR power.",{"EN":1254},"Study of soft X-ray emission from Z-pinches with a complex atomic composition",{"VOID":1256},"[\"4891121808692500511\"]",{"VOID":1258},"T. W. L. Sanford, G. O. Allshouse, B. M. Marder, et al., Phys. Rev. Lett. 77, 5063 (1996).\nR. B. Spilman, C. Deeney, G. A. Chandler, et al., Phys. Plasmas 5, 2105 (1998).\nY. G. Kalinin, L. Zhenghong, H. Xinshehg, et al., in Proceedings of the 15th International Conference on High-Power Particle Beams, St. Petersburg, 2004, p. 910.\nE. P. Bol’shakov, E. P. Velikhov, V. P. Smirnov, et al., At. Énerg. 53, 14 (1982).\nG. S. Volkov, V. I. Zaitsev, S. Langli, et al., Prib. Tekh. Éksp., No. 1, 125 (1997).\nG. S. Volkov, V. V. Zazhivikhin, V. I. Zaitsev, and V. O. Mishenskii, Prib. Tekh. Éksp., No. 3, 119 (1996).\nB. L. Henke and P. A. Jaanimagi, Rev. Sci. Instrum. 56, 1537 (1985).\nG. S. Volkov, E. V. Grabovski, V. I. Zaitsev, et al., Prib. Tekh. Éksp., No. 2, 74 (2004).\nC. A. Coverdale, C. Deeney, M. R. Douglas, et al., Phys. Rev. Lett. 88, 065 001 (2002).\nPlasma Diagnostic Techniques, Ed. by R. H. Huddlestone and S. L. Leonard (Academic, New York, 1965; Mir, Moscow, 1967).\nI. I. Sobel’man, L. A. Vainstein, and E. A. Yukov, Excitation of Atoms and Broadening of Spectral Lines (Nauka, Moscow, 1979; Springer-Verlag, Berlin, 1981).\nYa. B. Zel’dovich and Yu. P. Raizer, Physics of Shock Waves and High-Temperature Hydrodynamic Phenomena (Nauka, Moscow, 1963; Academic, New York, 1966, 1967), Vols. 1, 2.\nL. A. Vainstein, U. N. Safronova, and A. M. Urnov, Tr. FIAN 119, 13 (1980).\nH. R. Griem, Spectral Line Broadening by Plasmas (Academic, New York, 1974; Mir, Moscow, 1978).\nL. P. Presnyakov, Usp. Fiz. Nauk 119, 49 (1976).\nA. A. Radtsig and B. M. Smirnov, Reference Data on Atoms, Molecules, and Ions (Énergoatomizdat, Moscow, 1986; Springer-Verlag, Berlin, 1985).\nC. Deeney, M. R. Douglas, R. B. Spielman, et al., Phys. Rev. Lett. 81, 4883 (1998).\nD. L. Peterson, R. L. Bowers, W. Matuska, et al., Phys. Plasmas 6, 2178 (1999).",{"VOID":1260},"10.1134\u002FS1063780X10030013","2024-06-23T00:39:57.536+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS1063780X10030013",[1264,1277,1290,1303,1316,1329],{"id":1265,"sortIndex":23,"researcher":22,"roles":1266,"affiliations":1267,"properties":1274,"displayName":1276,"givenName":22,"familyName":22},"93034da1-d96c-4e67-a80f-c9bd073e8137",[126],[1268],{"id":129,"sortIndex":23,"affiliation":1269,"properties":22},{"id":129,"createTime":22,"updateTime":22,"relativeEntities":1270,"slug":22,"properties":1271,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1273,"statistic":22},[],{"title":1272},{"VI":134},[],{"title":1275},{"VI":1276},"G. S. Volkov",{"id":1278,"sortIndex":90,"researcher":22,"roles":1279,"affiliations":1280,"properties":1287,"displayName":1289,"givenName":22,"familyName":22},"b32a0f56-4270-4d8b-b8c6-d89671b7d7a8",[126],[1281],{"id":129,"sortIndex":23,"affiliation":1282,"properties":22},{"id":129,"createTime":22,"updateTime":22,"relativeEntities":1283,"slug":22,"properties":1284,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1286,"statistic":22},[],{"title":1285},{"VI":134},[],{"title":1288},{"VI":1289},"V. I. Zaitsev",{"id":1291,"sortIndex":156,"researcher":22,"roles":1292,"affiliations":1293,"properties":1300,"displayName":1302,"givenName":22,"familyName":22},"4bc55d19-c027-461a-985d-c229dd7effb4",[126],[1294],{"id":129,"sortIndex":23,"affiliation":1295,"properties":22},{"id":129,"createTime":22,"updateTime":22,"relativeEntities":1296,"slug":22,"properties":1297,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1299,"statistic":22},[],{"title":1298},{"VI":134},[],{"title":1301},{"VI":1302},"E. V. Grabovski",{"id":1304,"sortIndex":170,"researcher":22,"roles":1305,"affiliations":1306,"properties":1313,"displayName":1315,"givenName":22,"familyName":22},"4dc9fdad-ebb1-4ffa-a22a-4826918c2574",[126],[1307],{"id":129,"sortIndex":23,"affiliation":1308,"properties":22},{"id":129,"createTime":22,"updateTime":22,"relativeEntities":1309,"slug":22,"properties":1310,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1312,"statistic":22},[],{"title":1311},{"VI":134},[],{"title":1314},{"VI":1315},"M. V. Fedulov",{"id":1317,"sortIndex":325,"researcher":22,"roles":1318,"affiliations":1319,"properties":1326,"displayName":1328,"givenName":22,"familyName":22},"ed38c35f-6556-4f21-9cc1-51822715f648",[126],[1320],{"id":129,"sortIndex":23,"affiliation":1321,"properties":22},{"id":129,"createTime":22,"updateTime":22,"relativeEntities":1322,"slug":22,"properties":1323,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1325,"statistic":22},[],{"title":1324},{"VI":134},[],{"title":1327},{"VI":1328},"V. V. Aleksandrov",{"id":1330,"sortIndex":341,"researcher":22,"roles":1331,"affiliations":1332,"properties":1339,"displayName":1341,"givenName":22,"familyName":22},"754a29fd-c36e-42de-a4e5-5ce31b4fcf68",[126],[1333],{"id":129,"sortIndex":23,"affiliation":1334,"properties":22},{"id":129,"createTime":22,"updateTime":22,"relativeEntities":1335,"slug":22,"properties":1336,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1338,"statistic":22},[],{"title":1337},{"VI":134},[],{"title":1340},{"VI":1341},"N. I. Lakhtyushko",{"url":1262,"publisher":1343,"properties":1389},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1344,"slug":10,"properties":1345,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1349,"manageAffiliations":1358,"indexDatabases":1369,"url":22,"thumbnailPath":22,"statistic":1384,"gsStatistic":22,"type":94,"analyzePriority":22},[],{"issn":1346,"title":1347,"eissn":1348},{"VOID":15},{"EN":17},{"VOID":13},[1350,1354],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1351,"label":1352,"description":1353,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1355,"label":1356,"description":1357,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},[1359,1364],{"id":39,"createTime":22,"updateTime":22,"relativeEntities":1360,"slug":22,"properties":1361,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1363,"statistic":22},[],{"title":1362},{"EN":43},[],{"id":46,"createTime":22,"updateTime":22,"relativeEntities":1365,"slug":22,"properties":1366,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1368,"statistic":22},[],{"title":1367},{"EN":50},[],[1370,1377],{"id":54,"indexDatabase":1371,"url":65,"indexYears":66,"academicFieldIds":1376,"indexDatabaseRanking":70},{"id":56,"createTime":22,"updateTime":22,"relativeEntities":1372,"label":1373,"description":1374,"key":62,"publicationTags":1375,"standard":22},[],{"EN":59,"VI":59},{"EN":59,"VI":61},[64],[68,69],{"id":72,"indexDatabase":1378,"url":85,"indexYears":22,"academicFieldIds":1383,"indexDatabaseRanking":22},{"id":74,"createTime":22,"updateTime":22,"relativeEntities":1379,"label":1380,"description":1381,"key":81,"publicationTags":1382,"standard":22},[],{"EN":77,"VI":77},{"EN":79,"VI":80},[83,84],[87],{"impactFactor":23,"impactFactorByYear":1385,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":90,"totalPublicationByYear":1386,"totalCitation":23,"totalCitationByYear":1387,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":1388,"hindexLast5Year":23,"hindex":23},{},{"2023":90},{},{},{"pages":1390,"volume":1392},{"VOID":1391},"191-199",{"VOID":1393},"36",{"total":23,"publishYear":1395,"statisticByYear":1396},2010,{},"2010-04-08","2026-07-25T15:00:24.386+00:00",[70,83],{"id":1401,"createTime":1402,"updateTime":1403,"relativeEntities":1404,"slug":1405,"properties":1406,"entityType":115,"verifyStatus":116,"verifyTime":1417,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1418,"fullTextUrl":22,"authors":1419,"publicationType":182,"publisherRelationship":1485,"citationCount":22,"citationInfo":22,"publishDate":1536,"publishYear":1537,"citationAnalyzeStatus":1538,"lastCitationAnalyze":1539,"indexDatabases":1540,"openAccess":22,"references":22,"isForceReanalyzing":236},"5d1fea7f-2b6e-4795-8159-a3f25301820b","2024-01-29T17:01:21.432+00:00","2026-07-23T18:42:34.585+00:00",[],"Effect-of-the-global-topology-of-the-interplanetary-magnetic-field-on-the-properties-of-impulsive-acceleration-processes-in-distant-regions-of-the-Earth-s-magnetospheric-tail",{"abstract":1407,"title":1409,"gsPaper":1411,"references":1413,"doi":1415},{"EN":1408},"The paper is devoted to a statistical study of high-speed ion beams (beamlets) observed by the Interball-1 and Interball-2 satellites in the boundary region of the plasma sheet of the geomagnetic tail and in the high-latitude auroral regions of the Earth’s magnetosphere. Beamlets result from nonlinear acceleration processes occurring in the current sheet in the distant regions of the geomagnetic tail. They propagate toward the Earth along the magnetic field lines and are detected in the boundary region of the plasma sheet and near the high-latitude boundary of the plasma sheet in the auroral region in the form of short (with a duration of 1–2 min) bursts of high-energy (with energies of about several tens of keV) ions. The sizes of the latitudinal zones where the beamlets are localized in the tail and in the auroral region are determined using the epoch superposition method. The relationship between the frequency of beamlet generation in the boundary region of the plasma sheet and the prehistory of the direction of the interplanetary magnetic field (the magnitude of a clock angle) is investigated. It was established that this direction exerts a global effect on the beamlet generation frequency; moreover, it was found that the beamlet generation frequency in the midnight local time sector of the tail and at the flanks depends differently on the direction of the interplanetary magnetic field. In the midnight sector, the beamlets are observed at almost all directions of the interplanetary field, whereas the frequency of their generation at the flanks is maximal only when the interplanetary magnetic field has a large y component.",{"EN":1410},"Effect of the global topology of the interplanetary magnetic field on the properties of impulsive acceleration processes in distant regions of the Earth’s magnetospheric tail",{"VOID":1412},"[]",{"VOID":1414},"J. D. Winningham, F. Yasuhara, S.-I. Akasofu, and W. J. Heikkila, J. Geophys. Res. 80, 3148 (1975).\nT. E. Eastman, L. F. Frank, W. K. Peterson, and W. Lennartsson, J. Geophys. Res. 89, 1553 (1984).\nT. E. Eastman, L. A. Frank, and C. Y. Huang, J. Geophys. Res. 90, 9541 (1985).\nK. Amano and T. Tsuda, J. Geomagn. Geoelectr. 30(1), 27 (1978).\nG. K. Parks, M. McCarthy, R. J. Fitzenreiter, et al., J. Geophys. Res. 89, 8885 (1984).\nK. Takahashi and E. W. Hones, J. Geophys. Res. 93, 8558 (1988).\nJ. Buchner and L. M. Zelenyi, J. Geophys. Res. 94, 11821 (1989).\nM. Ashour-Abdalla, J. P. Berchem, J. Buchner, and L. M. Zelenyi, J. Geophys. Res. 98, 5651 (1993).\nM. Ashour-Abdalla, L. M. Zelenyi, V. Peroomian, et al., J. Geophys. Res. 100, 19191 (1995).\nL. R. Lyons and T. W. Speisen, J. Geophys. Res. 87, 2276 (1982).\nJ. Chen and P. J. Palmadesso, J. Geophys. Res. 91, 1499 (1986).\nG. R. Burkhart and J. Chen, J. Geophys. Res. 96, 14033 (1991).\nJ. Buchner, Geophys. Res. Lett. 18, 1595 (1991).\nT. W. Speiser, J. Geophys. Res. 70, 4219 (1965).\nJ. S. Wagner, P. C. Gray, J. R. Kan, et al., Planet. Space Sci. 29, 391 (1981).\nL. A. Frank and W. R. Paterson, Geophys. Res. Lett. 21, 2963 (1994).\nG. Parks, L. Chen, M. McCarthy, et al., Geophys. Res. Lett. 25, 3285 (1998).\nE. E. Grigorenko, A. O. Fedorov, and L. M. Zelenyi, Ann. Geophys. 20, 329 (2002).\nV. Peroomian, M. Ashour-Abdalla, and L. M. Zelenyi, J. Geophys. Res. 105, 18807 (2000).\nL. A. Frank, W. R. Paterson, and M. G. Kivelson, J. Geophys. Res. 99, 14877 (1994).\nL. M. Zelenyi, R. A. Kovrazkhin, and J. M. Bosqued, J. Geophys. Res. 95, 12119 (1990).\nJ.-A. Sauvaud, D. Popescu, D. C. Delcourt, et al., J. Geophys. Res. 104, 28565 (1999).\nV. A. Sergeev, J.-A. Sauvaud, D. Popescu, et al., J. Geophys. Res. 105, 18465 (2000).\nS. Klimov, S. Romanov, E. Amata, et al., Ann. Geophys. 15, 514 (1997).\nYu. I. Yermolaev, A. O. Fedorov, O. L. Vaisberg, et al., Ann. Geophys. 15, 533 (1997).\nJ.-A. Sauvaud, H. Barthe, C. Aoustin, et al., Ann. Geophys. 16, 1056 (1998).\nR. J. DeCoster and L. A. Frank, J. Geophys. Res. 84, 5099 (1979).\nT. G. Onsager, M. F. Thomsen, R. C. Elphic, and J. T. Gosling, J. Geophys. Res. 96, 20999 (1991).\nL. M. Zelenyi, A. L. Taktakishvili, E. M. Dubinin, et al., in Proceedings of the 9th COSPAR Colloquium “Magnetospheric Research with Advanced Techniques,” Beijing, 1996, p. 125.\nE. Dubinin, L. Yu. Budnik, N. Pissarenko, et al., in Proceedings of the 3rd International Conference on Substorms, Versailles, 1996, p. 533.\nM. Ashour-Abdalla, L. M. Zelenyi, V. Peroomian, et al., J. Geophys. Res. 101, 15287 (1996).\nW. Liu, J. Geophys. Res. 106, 289 (2001).\nV. A. Sergeev, R. C. Elphic, F. S. Mozer, et al., Planet. Space Sci. 40, 1551 (1992).\nA. Keiling, H. Reme, I. Dandouras, et al., in Proceedings of the EGS-AGU-EUG Joint Assembly, 2003, Nice, p. 1059.\nM. Hoshino, A. Nishida, and T. Yamamoto, Geophys. Res. Lett. 21, 2935 (1994).\nM. Ashour-Abdalla, M. El-Alaoui, V. Peroomian, and R. Walker, Geophys. Res. Lett. 26, 3545 (1999).\nA. J. Klimas, J. A. Valdivia, D. Vassiliadis, et al., J. Geophys. Res. 105, 18765 (2000).\nT. Nagai, I. Shinohara, M. Fujimoto, et al., J. Geophys. Res. 106, 25929 (2001).\nV. Peroomian and L. Zelenyi, Space Sci. Rev. 95, 257 (2001).\nM. Watanabe, N. Sato, R. Greenwald, et al., J. Geophys. Res. 105, 22955 (2000).\nW. Baumjohann, G. Paschmann, N. Sckopke, et al., J. Geophys. Res. 93, 11507 (1988).\nN. C. Maynard, W. J. Burke, J. Moen, et al., J. Geophys. Res. 108, 1006 (2003).\nA. A. Petrukovich, W. Baumjohann, R. Nakamura, et al., J. Geophys. Res. 105, 21109 (2000).\nG. Rostoker, J. Geophys. Res. 101, 12955 (1996).\nA. Nishida, T. Mukai, T. Yamamoto, et al., J. Geophys. Res. 103, 4409 (1998).\nT. Wiegelmann and J. Buchner, Nonlin. Processes Geophys. 8, 127 (2001).",{"VOID":1416},"10.1134\u002F1.1884687","2024-06-25T04:48:48.953+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002F1.1884687",[1420,1444,1457,1472],{"id":1421,"sortIndex":23,"researcher":22,"roles":1422,"affiliations":1423,"properties":1441,"displayName":1443,"givenName":22,"familyName":22},"ec4a403c-fe8f-4ec5-bfa2-dc1b3719c240",[126],[1424,1432],{"id":1425,"sortIndex":23,"affiliation":1426,"properties":22},"0e866100-5ad9-4e6c-a61c-5b14f7d0bc7b",{"id":1425,"createTime":22,"updateTime":22,"relativeEntities":1427,"slug":22,"properties":1428,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1431,"statistic":22},[],{"title":1429},{"EN":1430},"Skobeltsyn Institute of Nuclear Physics, Moscow State University, Vorob’evy gory, Moscow, Russia",[],{"id":1433,"sortIndex":90,"affiliation":1434,"properties":1440},"99220b10-0b4d-4286-903d-40c1f82389e4",{"id":1433,"createTime":22,"updateTime":22,"relativeEntities":1435,"slug":22,"properties":1436,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1439,"statistic":22},[],{"title":1437},{"VI":1438},"Institute for Space Research, Russian Academy of Sciences, Moscow, Russia",[],{},{"title":1442},{"VI":1443},"E. E. Grigorenko",{"id":1445,"sortIndex":90,"researcher":22,"roles":1446,"affiliations":1447,"properties":1454,"displayName":1456,"givenName":22,"familyName":22},"4ec8c177-0131-41ae-9e81-dc35d2f84015",[126],[1448],{"id":1433,"sortIndex":23,"affiliation":1449,"properties":22},{"id":1433,"createTime":22,"updateTime":22,"relativeEntities":1450,"slug":22,"properties":1451,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1453,"statistic":22},[],{"title":1452},{"VI":1438},[],{"title":1455},{"VI":1456},"L. M. Zelenyi",{"id":1458,"sortIndex":156,"researcher":22,"roles":1459,"affiliations":1460,"properties":1469,"displayName":1471,"givenName":22,"familyName":22},"277bd0a7-ddc2-441b-abdf-ec67bf7e5997",[126],[1461],{"id":1462,"sortIndex":23,"affiliation":1463,"properties":22},"f195acf4-eff6-41b6-925b-6ea49eef5981",{"id":1462,"createTime":22,"updateTime":22,"relativeEntities":1464,"slug":22,"properties":1465,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1468,"statistic":22},[],{"title":1466},{"VI":1467},"Centre d’Etude Spatiale des Rayonnements, Toulouse pFrance",[],{"title":1470},{"VI":1471},"A. O. Fedorov",{"id":1473,"sortIndex":170,"researcher":22,"roles":1474,"affiliations":1475,"properties":1482,"displayName":1484,"givenName":22,"familyName":22},"cb0a2e7d-0cc6-46a3-961a-d395e852bf85",[126],[1476],{"id":1462,"sortIndex":23,"affiliation":1477,"properties":22},{"id":1462,"createTime":22,"updateTime":22,"relativeEntities":1478,"slug":22,"properties":1479,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1481,"statistic":22},[],{"title":1480},{"VI":1467},[],{"title":1483},{"VI":1484},"J. -A. Sauvaud",{"url":1418,"publisher":1486,"properties":1532},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1487,"slug":10,"properties":1488,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1492,"manageAffiliations":1501,"indexDatabases":1512,"url":22,"thumbnailPath":22,"statistic":1527,"gsStatistic":22,"type":94,"analyzePriority":22},[],{"issn":1489,"title":1490,"eissn":1491},{"VOID":15},{"EN":17},{"VOID":13},[1493,1497],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1494,"label":1495,"description":1496,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1498,"label":1499,"description":1500,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},[1502,1507],{"id":39,"createTime":22,"updateTime":22,"relativeEntities":1503,"slug":22,"properties":1504,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1506,"statistic":22},[],{"title":1505},{"EN":43},[],{"id":46,"createTime":22,"updateTime":22,"relativeEntities":1508,"slug":22,"properties":1509,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1511,"statistic":22},[],{"title":1510},{"EN":50},[],[1513,1520],{"id":54,"indexDatabase":1514,"url":65,"indexYears":66,"academicFieldIds":1519,"indexDatabaseRanking":70},{"id":56,"createTime":22,"updateTime":22,"relativeEntities":1515,"label":1516,"description":1517,"key":62,"publicationTags":1518,"standard":22},[],{"EN":59,"VI":59},{"EN":59,"VI":61},[64],[68,69],{"id":72,"indexDatabase":1521,"url":85,"indexYears":22,"academicFieldIds":1526,"indexDatabaseRanking":22},{"id":74,"createTime":22,"updateTime":22,"relativeEntities":1522,"label":1523,"description":1524,"key":81,"publicationTags":1525,"standard":22},[],{"EN":77,"VI":77},{"EN":79,"VI":80},[83,84],[87],{"impactFactor":23,"impactFactorByYear":1528,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":90,"totalPublicationByYear":1529,"totalCitation":23,"totalCitationByYear":1530,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":1531,"hindexLast5Year":23,"hindex":23},{},{"2023":90},{},{},{"pages":1533,"volume":1535},{"VOID":1534},"212-228",{"VOID":234},"2005-03-01",2005,"ERROR_IN_GET_PLATFORM_ID","2026-07-23T18:42:34.584+00:00",[70,83],{"id":1542,"createTime":1543,"updateTime":1544,"relativeEntities":1545,"slug":1546,"properties":1547,"entityType":115,"verifyStatus":116,"verifyTime":1557,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1558,"fullTextUrl":22,"authors":1559,"publicationType":182,"publisherRelationship":1575,"citationCount":22,"citationInfo":22,"publishDate":1241,"publishYear":1239,"citationAnalyzeStatus":1538,"lastCitationAnalyze":1626,"indexDatabases":1627,"openAccess":22,"references":22,"isForceReanalyzing":236},"cb360661-8b12-4035-815a-7bcba076d38f","2024-02-07T14:13:11.114+00:00","2026-07-23T12:45:28.940+00:00",[],"On-the-influence-of-Alfv%C3%A9n-resonance-on-ion-cyclotron-resonance-heating",{"abstract":1548,"title":1550,"gsPaper":1552,"references":1553,"doi":1555},{"EN":1549},"Physical processes determining the excitation of RF electromagnetic fields in a plasma column in a magnetic field are analyzed. The Alfvén resonance plays an important role at frequencies close to the ion cyclotron frequency. It leads to the enhancement of the RF electric field and transformation of Alfvén oscillations with a predominantly transverse polarization of the electric field into lower hybrid ones, which have a significant longitudinal component of the electric field. Lower hybrid oscillations efficiently interact with electrons causing their heating. Difficulties in the implementation of ion cyclotron resonance heating by the magnetic beach method are outlined. The processes considered in this work can be important for the VASIMR plasma engine.",{"EN":1551},"On the influence of Alfvén resonance on ion cyclotron resonance heating",{"VOID":1412},{"VOID":1554},"A. I. Karchevskii and Yu. A. Muromkin, in Isotopes, Ed. by V. Yu. Baranov (Fizmatlit, Moscow, 2005), Vol. 1, p. 307 [in Russian].\nV. A. Zhil’tsov, E. G. Kudryavtsev, V. M. Kulygin, et al., At. Energ. 101, 302 (2006).\nE. A. Bering, F. R. Chang Diaz, J. P. Squire, et al., Phys. Plasmas 17, 043509 (2010).\nA. V. Zvonkov and A. V. Timofeev, Sov. J. Plasma Phys. 13, 158 (1987).\nT. Stix, The Theory of Plasma Waves (Mc Graw-Hill, New York, 1962).\nA. V. Arefiev and B. N. Breizman, Phys. Plasmas 5, 2942 (2004).\nA. G. Elfimov, A. G. Kirov, and V. P. Sidorov, in High-Frequency Plasma Heating, Ed. by A. G. Litvak (AIP, New York, 1992), p. 239.\nA. I. Akhiezer, I. A. Akhiezer, R. V. Polovin, et al., Plasma Electrodynamics (Pergamon, Oxford, 1975).\nA. V. Timofeev, Plasma Phys. Rep. 30, 740 (2004).\nA. V. Timofeev, Plasma Phys. Rep. 31, 1012 (2005).\nA. V. Timofeev, Phys. Usp. 49, 1197 (2006).\nA. V. Timofeev, Plasma Phys. Rep. 37, 56 (2011).\nA. C. Compant La Fontaine and V. G. Pashkovsky, Phys. Plasmas 2, 4641 (1995).\nA. V. Timofeev, Resonance Phenomena in Plasma Oscillations (Fizmatlit, Moscow, 2000) [in Russian].\nA. V. Longinov and K. N. Stepanov, in High-Frequency Plasma Heating, Ed. by A. G. Litvak (AIP, New York, 1992), p. 93.\nV. E. Golant and V. I. Fedorov, Methods of High-Frequency Plasma Heating in Toroidal Fusion Devices (Energoizdat, Moscow, 1986) [in Russian].\nA. C. Compant La Fontaine, P. Louvet, P. L. Gourri- erec, and A. Pailloux, J. Phys. D 31, 847 (1998).\nA. V. Timofeev, JETP Lett. 97, 5 (2013).",{"VOID":1556},"10.1134\u002FS1063780X14010103","2024-06-25T08:06:57.172+00:00","http:\u002F\u002Flink.springer.com\u002F10.1134\u002FS1063780X14010103",[1560],{"id":1561,"sortIndex":23,"researcher":22,"roles":1562,"affiliations":1563,"properties":1572,"displayName":1574,"givenName":22,"familyName":22},"5225bf99-981a-4596-9fcb-b5dbb8212b75",[126],[1564],{"id":1565,"sortIndex":23,"affiliation":1566,"properties":22},"17c1ae4f-1100-409b-b25a-11e525cf4442",{"id":1565,"createTime":22,"updateTime":22,"relativeEntities":1567,"slug":22,"properties":1568,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1571,"statistic":22},[],{"title":1569},{"VI":1570},"National Research Centre “Kurchatov Institute”, Moscow, Russia",[],{"title":1573},{"VI":1574},"A. V. Timofeev",{"url":1558,"publisher":1576,"properties":1622},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1577,"slug":10,"properties":1578,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1582,"manageAffiliations":1591,"indexDatabases":1602,"url":22,"thumbnailPath":22,"statistic":1617,"gsStatistic":22,"type":94,"analyzePriority":22},[],{"issn":1579,"title":1580,"eissn":1581},{"VOID":15},{"EN":17},{"VOID":13},[1583,1587],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1584,"label":1585,"description":1586,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1588,"label":1589,"description":1590,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},[1592,1597],{"id":39,"createTime":22,"updateTime":22,"relativeEntities":1593,"slug":22,"properties":1594,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1596,"statistic":22},[],{"title":1595},{"EN":43},[],{"id":46,"createTime":22,"updateTime":22,"relativeEntities":1598,"slug":22,"properties":1599,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1601,"statistic":22},[],{"title":1600},{"EN":50},[],[1603,1610],{"id":54,"indexDatabase":1604,"url":65,"indexYears":66,"academicFieldIds":1609,"indexDatabaseRanking":70},{"id":56,"createTime":22,"updateTime":22,"relativeEntities":1605,"label":1606,"description":1607,"key":62,"publicationTags":1608,"standard":22},[],{"EN":59,"VI":59},{"EN":59,"VI":61},[64],[68,69],{"id":72,"indexDatabase":1611,"url":85,"indexYears":22,"academicFieldIds":1616,"indexDatabaseRanking":22},{"id":74,"createTime":22,"updateTime":22,"relativeEntities":1612,"label":1613,"description":1614,"key":81,"publicationTags":1615,"standard":22},[],{"EN":77,"VI":77},{"EN":79,"VI":80},[83,84],[87],{"impactFactor":23,"impactFactorByYear":1618,"i10Index":23,"i10IndexLast5Year":23,"totalPublication":90,"totalPublicationByYear":1619,"totalCitation":23,"totalCitationByYear":1620,"totalCitationPerPublication":23,"totalCitationPerPublicationByYear":1621,"hindexLast5Year":23,"hindex":23},{},{"2023":90},{},{},{"pages":1623,"volume":1625},{"VOID":1624},"1-13",{"VOID":1236},"2026-07-23T12:45:28.939+00:00",[70,83],{"id":1629,"createTime":1630,"updateTime":1631,"relativeEntities":1632,"slug":1633,"properties":1634,"entityType":115,"verifyStatus":116,"verifyTime":1645,"verifyNote":118,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1646,"fullTextUrl":22,"authors":1647,"publicationType":182,"publisherRelationship":1678,"citationCount":23,"citationInfo":1730,"publishDate":1733,"publishYear":1731,"citationAnalyzeStatus":1242,"lastCitationAnalyze":1631,"indexDatabases":1734,"openAccess":22,"references":22,"isForceReanalyzing":236},"b6e107d7-3ff2-4d35-80c6-31969842cacb","2023-12-29T12:35:16.830+00:00","2026-07-23T10:06:26.980+00:00",[],"Evolutionary-sheath-structure-in-magnetized-collisionless-plasma-with-electron-inertia",{"abstract":1635,"title":1637,"gsPaper":1639,"references":1641,"doi":1643},{"EN":1636},"A classical hydrodynamic model is methodologically formulated to see the equilibrium properties of a planar plasma sheath in two-component magnetized bounded plasma. It incorporates the weak but finite electron inertia instead of asymptotically inertialess electrons. The effects of the externally applied oblique (relative to the bulk plasma flow) magnetic field are judiciously accented. It is, for the sake of simplicity, assumed that the relevant physical parameters (plasma density, electrostatic potential, and flow velocity) vary only in a direction normal to the confining wall boundary. It is noticed for the first time that the derived Bohm condition for sheath formation is modified conjointly by the electron inertia, magnetic field, and field orientation. It is manifested that the electron inertia in the presence of plasma gyrokinetic effects slightly enhances the ion Mach threshold value (typically, M\n                                \n                                    i0 ≥ 1.139) toward the sheath entrance. This flow supercriticality is in contrast with the heuristic formalism (M\n                                \n                                    i0 ≥ 1) for the zero-inertia electrons. A numerical illustrative scheme on the parametric sheath features on diverse nontrivial apposite arguments is constructed alongside ameliorative scope.",{"EN":1638},"Evolutionary sheath structure in magnetized collisionless plasma with electron inertia",{"VOID":1640},"[\"9983086969435570192\"]",{"VOID":1642},"E. Ahedo, Phys. Plasmas 4, 4419 (1997).\nD. Bohm, in The Characteristics of Electrical Discharges in Magnetic Fields, Ed. by A. Guthrie and R. Wakerling (McGraw-Hill, New York, 1949), p. 77.\nB. Alterkop, S. Goldsmith, and R. L. Boxman, Contrib. Plasma Phys. 45, 485 (2005).\nK. U. Riemann, J. Seebacher, D. D. Tskhakaya, and S. Kuhn, Plasma Phys. Controlled Fusion 47, 1949 (2005).\nR. N. Franklin, J. Phys. D 36, R309 (2003).\nI. Langmuir, Phys. Rev. 33, 954 (1929).\nK. U. Riemann, Phys. Plasmas 4, 4158 (1997).\nU. Deka and C. B. Dwivedi, Braz. J. Phys. 40, 333 (2010).\nR. N. Franklin and J. Snell, Phys. Plasmas 8, 643 (2001).\nX. Zou, J. Y. Liu, Z. X. Wang, Y. Gong, Y. Liu, and X.-G. Wang, Chin. Phys. Lett. 21, 1572 (2004).\nR. Chodura, Phys. Fluids 25, 1628 (1982).\nD. L. Holland, B. D. Fried, and G. J. Morales, Phys. Fluids B 5, 1723 (1993).\nH. Schmitz, K. U. Riemann, and Th. Daube, Phys. Plasmas 3, 2486 (1996).\nP. C. Stangeby, Phys. Plasmas 2, 702 (1995).\nX. Zou, J. Y. Liu, Y. Gong, Z.-X. Wang, Y. Liu, and X.-G. Wang, Vacuum 73, 681 (2004).\nJ. Loizu, P. Ricci, and C. Theiler, Phys. Rev. E 83, 016406 (2011).\nC. B. Dwivedi, P. K. Karmakar, and S. C. Tripathy, Astrophys. J. 663, 1340 (2007).\nM. Gohain and P. K. Karmakar, Europhys. Lett. 112, 45002 (2015).\nB. A. Alterkop, I. D. Dubinova, and A. E. Dubinov, JETP 102, 173 (2006).\nM. Gohain and P. K. Karmakar, Eur. Phys. J. D 70, 222 (2016).\nG. D. Severn, American J. Phys. 75, 92 (2007).\nP. K. Karmakar, U. Deka, and C. B. Dwivedi, Phys. Plasmas 12, 032105 (2005).\nP. K. Karmakar, U. Deka, and C. B. Dwivedi, Phys. Plasmas 13, 104702 (2006).\nU. Deka, C. B. Dwivedi, and H. Ramachandran, Phys. Scr. 73, 87 (2006).\nJ. Ou and J. Yang, Phys. Plasmas 19, 113504 (2012).\nJ. E. Allen, Contrib. Plasma Phys. 48, 400 (2008).\nM. M. Hatami, Plasma Sci. Technol. 15, 1169 (2013).\nX. Zou, M. Qiu, H. Liu, et al., Vacuum 83, 205 (2009).\nH. Liu, X. Zou, and M. Qiu, Plasma Sci. Technol. 16, 633 (2014).\nK. U. Riemann, J. Phys. D 24, 493 (1991).\nU. L. Rohde, G. C. Jain, A. K. Poddar, and A. K. Ghosh, Introduction to Integral Calculus (Wiley, New Jersey, 2012).\nM. Khoramabadi, H. R. Ghomi, and M. Ghoranneviss, J. Plasma Fusion Res. 8, 1399 (2009).\nH. Ghomi and M. Khoramabadi, J. Plasma Phys. 76, 247 (2010).\nJ. C. Butcher, Appl. Num. Math. 24, 331 (1997).\nM. Khoramabadi, H. Ghomi, and M. Ghoranneviss, in Proceedings of the 19th International Symposium on Plasma Chemistry (ISPC-19), Bochum, 2009.\nS. Kuhn, K. U. Riemann, N. Jelic, D. D. Tskhakaya, D. Tskhakaya, and M. Stanojevic, Phys. Plasmas 13, 013503 (2006).\nS. Robertson, Plasma Phys. 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