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    Academic Journal

    Source: Devices and Methods of Measurements; Том 11, № 3 (2020); 236-244 ; Приборы и методы измерений; Том 11, № 3 (2020); 236-244 ; 2414-0473 ; 2220-9506 ; 10.21122/2220-9506-2020-11-3

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    Relation: https://pimi.bntu.by/jour/article/view/668/564; Agamirov L.V. Mashinostroenie. Enciklopediya. Fiziko-mekhanicheskie svojstva. Ispytaniya metallicheskih materialov. Materialy v mashinostroenii. [Engineering. Encyclopedia. Materials in mechanical engineering. Physical-mechanical properties. Tests of metallic materials]. Moscow: Mashinostroenie Publ., 2010, vol. 40, razd. 2, 851 p.; Sandomirski S.G. [Statistical analysis of the relationship between mechanical properties and hardness of steel 41Cr4 (DIN)]. Aktual'nye voprosy mashinovedeniya. Sbornik nauchnyh trudov [Current issues of machine science. Collection of proceedings. Minsk, OIM NAN Belarusi], 2018, vol. 7, pp. 339–341 (in Russian).; Nerazrushajushhij kontrol'. Spravochnik [Nondestructive Testing. Directory]: vol. 8, edited by V.V. Kljuev. Kljuev V.V., Muzhickij V.F., Gorkunov Je.S., Shherbinin V.E. Magnitnye metody kontrolja [Magnetic Methods of Testing]. Moscow: Mashinostroenie Publ., vol. 6: kn. 1, 2006, 848 p.; Bida G.V., Nichipuruk A.P. Magnitnye svojstva termoobrabotannyh stalej [Magnetic Properties of HeatTreated Steels ]. Ekaterinburg: Ural branch RAN, 2005, 218 p.; Sandomirski S.G. Effect of Measurement Accuracy and Range of Variation of a Physical Quantity on the Correlation Coefficient. Measurement Techniques, 2014, vol. 57, iss. 10, pp. 1113–1120. DOI:10.1007/s11018-015-0588-3; Kostin K.V., Kostin V.N., Smorodinskii Ya.G., Tsar’kova T.P., Somova V.M. , Sazhina E.Yu. Choice of the Parameters and Algorithm for the Magnetic Hardness Testing of Thermally Treated Carbon Steels by the Method of Regression Modeling. Russian Journal of Nondestructive Testing, 2011, vol. 47, iss. 2, pp. 89–95. DOI:10.1134/S1061830911020094; Kostin V.N., Smorodinskii Y.G. Multipurpose Software-Hardware Systems for Active Electromagnetic Testing as a Trend. Russian Journal of Nondestructive Testing, 2017, vol. 53, iss. 7, pp. 493–504. DOI:10.1134/S1061830917070075; Danilevich S.B., Kolesnikov S.S., Palchun Yu.A. Use of Simulation Monitoring for Checking Monitoring and Testing Procedures. Measurement Techniques, 2011, vol. 54, iss. 7, pp. 846–850. DOI:10.1007/s11018-011-9814-9; Zhagora N.A. Vlijanie tochnosti izmerenij na rezul'taty ocenki sootvetstvija [The effect of measurement accuracy on conformity assessment results]. Kontrol' kachestva produkcii [Product quality control], 2016, no. 4, pp. 29–34 (in Russian).; Danilevich S.B., Tret'jak V.V. Metrologicheskoe obespechenie dostovernosti rezul'tatov kontrolja [Metrological assurance of the reliability of control results]. Kontrol'. Diagnostika [The control. Diagnostics], 2018, no. 7, pp. 56–60 (in Russian). DOI:10.14489/td.2018.07.pp.056-060; Bida G.V., Stashkov A.N. Multipurpose Use of Magnetic Properties of Steels in Nondestructive Testing of the Quality of Heat-Treated Workpieces. Russian Journal of Nondestructive Testing, vol. 39, iss. 4, 2003, pp. 310 – 316. DOI:10.1023/B:RUNT.0000009087.64604.82; Bida G.V., Nichipuruk A.P. Multiparameter Methods in Magnetic Structuroscopy and Nondestructive Testing of Mechanical Properties of Steels. Russian Journal of Nondestructive Testing, 2007, vol. 43, iss. 8, pp. 493 – 509. DOI:10.1134/S1061830907080013; Mel’gui M.A. Multiparameter Methods in Magnetic Structuroscopy and Instruments for Their Realization (Review): II. The Pulsed Magnetic Multiparameter Method and IMA-M Instrument for Its Performance. Russian Journal of Nondestructive Testing, 2015, vol. 51, iss. 3, pp. 138–145. DOI:10.1134/S1061830915030055; Matyuk V.F. Pribory magnitnoj strukturoskopii na osnove lokal'nogo ciklicheskogo impul'snogo peremagnichivanija [Instruments of magnetic structuroscopy based on the local cyclic pulse magnetization]. Nerazrushajushhij kontrol' i diagnostika [Non-Destructive Testing and Diagnostics], 2013, no. 1, pp. 3–27 (in Russian).; Burak V.A, Korotkevich Z.M. Informativnye parametry dlja magnitnogo kontrolja kachestva otpuska instrumental'noj uglerodistoj stali U8A [Informative parameters for magnetic testing grade of tempering tool carbon steel У8А]. Nerazrushajushhij kontrol' i diagnostika [Non-Destructive Testing and Diagnostics], 2013, no. 4, pp. 29–39 (in Russian).; Osipov A.A., Burak B.A., Korotkevich M., Schastnyj A.S. Ocenka regressionnyh mnogoparametrovyh modelej v zadachah magnitnogo nerazrushajushhego kontrolja [Evaluation of regression multiparameter models in problems of magnetic non-destructive testing]. Nerazrushajushhij kontrol' i diagnostika [Non-Destructive Testing and Diagnostics], 2018, no. 4, pp. 32–44 (in Russian).; Sandomirski S.G. Analysis of the Systematic Error When Measuring the Magnetization of Steels in the Coercive Recovery Process. Measurement Techniques, 2013, vol. 56, iss. 2, pp. 195–200. DOI:10.1007/s11018-013-0179-0; Sandomirski S.G. Application of Magnetic Information Parameters for Nondestructive Testing of the Hardness of Medium-Carbon Alloy Steels. Measurement Techniques, 2019, vol. 62, iss. 8, pp. 722–728. DOI:10.1007/s11018-019-01685-z; Kostin V.N., Osintseva A.A., Sazhina E.Yu. Improving Reliability of Magnetic Testing Data on Strength Properties of not-Rolled Pipes from 37G2S Steel. Russian Journal of Nondestructive Testing, 2002, vol. 38, iss. 12, pp. 909–933. DOI:10.1023/A:1023813108082; Obuhov I.V. Sluchajnye pogreshnosti izmerenij: Uchebnoe posobie [Random Measurement Errors: Study Guide]. Moscow: Knizhnyj dom "LIBROKOM", 2017, 80 p.; Novickij P.V., Zograf I.A. Ocenka pogreshnostej rezul'tatov izmerenij [Estimation of errors of measurement results]. Leningrad: Jenergoatomizdat, 1985, 248 p.; Mastjaeva I.N., Semenihina O.N. Chislennye metody [Numerical Methods]. Moscow: Moskovskij mezhdunarodnyj institut jekonometriki, informatiki, finansov i prava, 2004, 103 p.; https://pimi.bntu.by/jour/article/view/668

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    Academic Journal

    Contributors: We are thankful to colleagues of the Texas University (USA) at Austin for possibility to use the ICECAP/IceBridge project geophysical data. D.A. Golynsky got support from the Russian Science Foundation (project № 16-17-10139). We are thankful reviewers for their helpful comments., Мы признательны коллегам Техасского университета (США) в Остине за возможность использования геофизических данных по проекту ICECAP/IceBridge. Д.А. Голынский участвовал в работе при поддержке Российского научного фонда (проект № 16-17-10139). Мы благодарны двум рецензентам за их полезные комментарии.

    Source: Arctic and Antarctic Research; Том 65, № 2 (2019); 212-231 ; Проблемы Арктики и Антарктики; Том 65, № 2 (2019); 212-231 ; 2618-6713 ; 0555-2648 ; 10.30758/0555-2648-2019-65-2

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    Relation: https://www.aaresearch.science/jour/article/view/164/132; Fitzsimons I.C.W. Proterozoic basement provinces of southern and southwestern Australia, and their correlation with Antarctica // Proterozoic East Gondwana: supercontinent assembly and breakup / Yoshida M. et al. (eds.)Geological Society of London. 2003. V. 206. P. 93–130.; Grikurov G.E., Leychenkov G.L. Tectonic Map of Antarctica. 1: 10 M Scale, CGMW, Paris. 2012. 1 Sheet. URL: https://ccgm.org/en/catalogue/125-carte-tectonique-de-l-antarctique-9782917310151.html (дата обращения 27.06.2019).; Глебовский Ю.С. Основные результаты мелкомасштабной аэромагнитной съемки, про-веденной к югу от шельфового ледника Шеклтона // Бюллетень Советской антарктической экспедиции. 1959. № 12. С. 37–40.; Blankenship D.D., Kempf S., Young D. IceBridge HiCARS 2 L2 Geolocated Ice Thickness. Version 2. Boulder, Colorado USA: NASA DAAC at the National Snow and Ice Data Center. 2012. URL: http://nsidc.org/data/ir2hi2.html (дата обращения 27.06.2019).; Blankenship D.D., Kempf S., Young D. IceBridge Geometrics 823A Cesium Magnetometer L2 Geolocated Magnetic Anomalies. Version 1. [2011_AN_UTIG] // Boulder, Colorado USA: NASA DAAC at the National Snow and Ice Data Center. 2012. doi:10.5067/TO7WLC72UMAQ.; Aitken A.R.A., Young D.A., Ferraccioli F., Betts P.G., Greenbaum J.S., Richter T.G. et al. The subglacial geology of Wilkes Land, East Antarctica // Geophysical Research Letters. 2014. V. 41. P. 2390–2400. doi:10.1002/2014GL059405.; Lindsay T. Gravity and Elevation Data Acquisition in the Casey Region. Australian Antarctic Data Centre. 2000. doi:10.4225/15/583bbca96e2fd.; Davis E.R., Jones D.J., Morgan V.I., Young N.W. A survey of the Vanderford and Adams Glaciers in East Antarctica // Annals of Glaciology. 1986. V. 8. P. 197.; Young N., Malcolm P., Mantell P. Mass flux and dynamics of Totten Glacier, Antarctica // Annals of Glaciology. 1989. V. 12. P. 219–219.; Jezek K.C. Glaciological properties of the Antarctic ice sheet from RADARSAT-1 synthetic aperture radar imagery // Annals of Glaciology. 1999. V. 29. P. 286–290. doi:10.3189/172756499781820969.; Голынский А.В., Голынский Д.А. Рифтовые системы в тектонической структуре Восточной Антарктиды // Научные результаты российских геолого-геофизических исследований в Ан-тарктике. Вып. 2. СПб.: ВНИИОкеангеология, 2009. С. 132–162.; Голынский Д.А., Голынский А.В. Рифтовые системы Восточной Антарктиды — ключ к пониманию распада Гондваны // Региональная геология и металлогения. 2012. № 52. C. 58–72.; Reading A.M. The seismic structure of Precambrian and early Palaeozoic terranes in the Lambert Glacier region, East Antarctica // Earth and Planetary Science Letters. 2006. V. 244. P. 44–57. doi:10.1016/j.epsl.2006.01.031.; Chen X., Shearer P.M., Walter F., Fricker H.A. Seventeen Antarctic seismic events detected by global surface waves and a possible link to calving events from satellite images // Journal of Geophysical Research. 2011. V. 116, B06311. doi:10.1029/2011JB008262.; Werner S. Interpretation of magnetic anomalies at sheet-like bodies // Sveriges Geologiska Undersok, ser C.C. Årsbok. 1953. V. 43. № 6. 130 p.; Oasis montaj how-to guide. Complete workflow for Oasis montaj. Toronto, Ontario, Canada: Geosoft Inc., 2014. 260 p. URL: http://updates.geosoft.com/downloads/files/how-to-guides/Oasis_montaj_Complete_Workflow.pdf (дата обращения 01.07.2019).; Fretwell P. et al. Bedmap2: improved ice bed, surface and thickness datasets of Antarctica // Cryosphere. 2013. V. 7. P. 375–393. doi:10.5194/tc-7-375-2013.; Волнухин В.С., Куринин Р.Г. Физические свойства горных пород района ледника Ламберта // Геофизические исследования в Антарктиде / Под редакцией Г.И. Гапоненко, Г.Э. Грикурова и В.Н. Масолова. Л.: Севморгеология, 1980. С. 52–58.; Golynsky A.V., Golynsky D.A., Ferraccioli F., Jordan T.A., Blankenship D.D., Holt J. et al. ADMAP-2: Magnetic anomaly map of the Antarctic (Map 1, scale 1:10 000 000). Incheon, Korea: Polar Research Institute, 2017. doi:10.22663/ADMAP.V2.; Golynsky A.V., Alyavdin S.V. Masolov V.N., Tscherinov A.S., Volnukhin V.S. The composite magnetic anomaly map of the East Antarctica // Tectonophysics. 2002. V. 347. P. 109–120. doi:10.1016/S0040-1951(01)00240-2.; Golynsky A.V., Ivanov S.V., Kazankov A.Ju., Jokat W., Masolov V.N., von Frese R.R.B. and the ADMAP Working Group. New continental margin magnetic anomalies of East Antarctica // Tectonophysics. 2013. V. 585. P. 172–184. doi:10.1016/j.tecto.2012.06.043.; Leitchenkov G., Guseva J., Gandyukhin V., Grikurov G., Kristoffersen Y., Sand M., Golynsky A., Aleshkova N. Crustal structure and tectonic provinces of the Riiser-Larsen Sea area (East Antarctica): results of geophysical studies // Marine Geophysical Researches. 2008. № 29 (2). P. 135–158. doi:10.1007/s11001-008-9051-z.; Golynsky A.V., Ferraccioli F., Hong J.K., Golynsky D.A., von Frese R.R.B. et al. New magnetic anomaly map of the Antarctic // Geophysical Research Letters. 2018. № 45. P. 6437–6449. doi:10.1029/2018GL078153.; Studinger M., Bell R.E., Buck W.R., Karner G.D., Blankenship D.D. Sub-ice geology inland of the Transantarctic Mountains in light of new aerogeophysical data // Earth and Planetary Science Letters. 2004. № 220. P. 391–408. doi:10.1016/10.1016/S0012-821X(04)00066-4.; Choi S. 3-D Aeromagnetic modelling in the Grubergebirge area, central Dronning Maud Land, East Antarctica // GEOMAUD. V. 2. Geophysical Results / H.-J. Paech (ed.). Geologisches Jahrbuch Reihe B, Band B 97, Hannover. 2005. P. 101–108.; Ferraccioli F., Armadillo E., Jordan T., Bozzo E., Corr H. Aeromagnetic exploration over the East Antarctic Ice Sheet: A new view of the Wilkes Subglacial Basin // Tectonophysics. 2009. V. 478 (1–2). P. 62–77. doi:10.1016/j.tecto.2009.03.013.; LeMasurier W.E. Late Cenozoic volcanism on the Antarctic plate: an overview // Volcanoes of the Antarctic plate and southern oceans / LeMasurier W.E., Thomson J.W. (eds). Antarctic Research Series. V. 48, American Geophysical Union, Washington, DC. 1990. P. 1–19.; Bosum W., Damaske D., Roland N.W., Behrendt J., Saltus R. The GANOVEX IV Victoria Land/ Ross Sea aeromagnetic survey: interpretation of anomalies // German Antarctic North Victoria Land Expedition 1984/85, GANOVEX IV / D. Damaske and H.-J. Dürbaum (eds). Geologisches Jahrbuch Reihe. 1989. E 38. Hannover. P. 153–230.; McEnroe S.A., Robinson P., Panish P. Aeromagnetic anomalies, magnetic petrology and rock magnetism of hemo-ilmenite- and magnetite-rich cumulates from the Sokndal region, South Rogaland, Norway // American Mineralogist. 2001. V. 86 (11–12). P. 1447–1468. doi:10.2138/am-2001-11-1213.; Harrison R.J., Dunin-Borkowski R.E., Putnis A. Direct imaging of nanoscale magnetic interactions in minerals // Proceedings of the National Academy of Sciences. U.S.A. 2002. V. 99. P. 16556–16561.; Flint R.B., Daly S.J. Coompana Block // The geology of South Australia — V. 1: The Precambrian / J.F. Drexel, W.V. Preiss, A.J. Parker (eds.) Geological Survey of South Australia. 1993. Bulletin 54. P. 168–169.; Foss C., Reed G., Heath P., Dutch R., Wise T. Investigation of the Coompana negative magnetic anomaly in southwestern South Australia. AESC Abstracts, 26–30 June. 2016, Adelaide Convention Centre. № 149. URL: www.aesc2016.gsa.org.au (дата обращения 27.06.2019).; Wise T., Pawley M., Dutch R. Preliminary interpretation from the 2015 Coompana aeromagnetic survey. // MESA Journal. 2015. № 79 (4). P. 22–30. doi:10.1071/ASEG2016ab191.; Dutch R.A., Pawley M.J., Wise T.W., Tylkowski L., Lockheed A., McAlpine S.R.B., Heath P. PACE Copper Coompana Drilling Project: Drillhole CDP005 preliminary field-data report // Report Book 2017/00041. Adelaide: Geological Survey of South Australia, Resources and Energy Group, Department of the Premier and Cabinet, 2017. 21 p.; Zengerer M. Coompana Anomaly Revisited. Gondwana Geoscience, 2017. URL: http://www.gondwanageo.com (дата обращения 27.06.2019).; Недосекова И.Л. Возраст и источники вещества Ильмено-Вишневогорского щелочного комплекса (Урал, Россия): Геохимические и изотопные Rb-Sr, Sm-Nd, U-Pb, Lu-Hf данные // Литосфера. 2012. № 5. С. 77–95.; Hall C.E., Cooper A.F. & Parkinson D.L. Early Cambrian carbonatite in Antarctica // Journal of the Geological Society. 1995. V. 152. P. 721–728. doi:10.1144/gsjgs.152.4.0721.; Дортман Н.Б. Физические свойства горных пород и полезных ископаемых (петрофизика) // Справочник геофизика. М.: Недра, 1984. 456 с.; McEnroe S.A., Brown L.L. A closer look at remanence-dominated aeromagnetic anomalies: Rock magnetic properties and magnetic mineralogy of the Russell Belt microcline-sillimanite gneiss, northwest Adirondack Mountains // Journal of Geophysical Research. 2000. V. 105. B7. P. 16437– 16456. doi:10.1029/2000JB900051.; https://www.aaresearch.science/jour/article/view/164

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    Report

    Contributors: Гергет, Ольга Михайловна

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    Relation: Огородников А. С. Разработка алгоритмического и программного обеспечения для картирования горных пород по их плотностным и магнитным свойствам : магистерская диссертация / А. С. Огородников; Национальный исследовательский Томский политехнический университет (ТПУ), Инженерная школа информационных технологий и робототехники (ИШИТР), Отделение информационных технологий (ОИТ); науч. рук. О. М. Гергет. — Томск, 2019.; http://earchive.tpu.ru/handle/11683/53698

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    Academic Journal

    Source: Вестник Харьковского национального университета имени В. Н. Каразина. Серия «Физика»; № 23 (2015); 107-109 ; Вісник Харківського національного університету імені В. Н. Каразіна. Серія «Фізика»; № 23 (2015); 107-109 ; ‎2073-3771 ; 2222-5617

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    Academic Journal

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    Relation: Стадник, А. Д. Cтруктура и свойства полимерных композитов и нанокомпозитов, подвергнутых термомагнитной обработке [Текст] / А. Д. Стадник, И. А. Мороз, О. Г. Медведовская, В. Н. Билык // Журнал нано- та електронної фізики (Journal of nano- and electronic physics), 2015. – Том 7, № 3. – 03046(5cc).; http://repository.sspu.sumy.ua/handle/123456789/1601

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