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Simulation of the Impact Resistance of Kilo Type Submarine Loaded with Non-Contact Mine Explosion


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[1] Abaqus 6.10, PDF Documentation, Theory Manual, Simulia, Dassault Systems, 2010.Search in Google Scholar

[2] Barnat W., Wstęp do modelowania wybuchu podwodnego pod pojazdem gąsienicowym, ‘Systems: Journal of Transdisciplinary Systems Science’, 2012, Vol. 16, No. 3 [Numerical approach for modeling underwater explosion next to amphibious tracked vehicle - available in Polish].Search in Google Scholar

[3] Bathe K.-J., Wilson E. L., Numerical methods in finite element analysis, Prentice-Hall, Englewood Cliffs, New Jersey 1976.Search in Google Scholar

[4] Ciślak J., Polska Marynarka Wojenna 1995, [in:] Ilustrowana Encyklopedia Techniki Wojskowej, Vol. 6, Warszawa 1995 [Polish Navy 1995, [in:] Illustrated Encyclopedia of Military Technology - available in Polish].Search in Google Scholar

[5] Cole R. H., Underwater Explosions, Princeton University Press, Princeton 1948.10.5962/bhl.title.48411Search in Google Scholar

[6] Cudny K., Powierża Z., Wybrane zagadnienia odporności udarowej okrętów, Gdynia 1978 [Selected issues impact resistance ships - available in Polish].Search in Google Scholar

[7] Experimental and numerical study of the impact of blast wave created by explosive charge on the steel plate, ed. W. Barnat, K. Kowal-Michalska, R. J. Mania, ‘Review and Current Trends in Stability of Structure’, 2013, Vol. 3, pp. 383-399.Search in Google Scholar

[8] Geers T. L., Hunter K. S., An integrated wave-effects model for an underwater explosion bubble, Boulder 2002.10.1121/1.145859012002843Search in Google Scholar

[9] Grządziela A., Model of impact underwater detonation, ‘Journal of KONES’, 2011, Vol. 18, No. 2, pp. 145-152.Search in Google Scholar

[10] Grządziela A., Szturomski B., Kluczyk M., Modeling of the minehunters hull strength, ‘International Journal of Modern Manufacturing Technologies’, 2012, Vol. IV, No. 1.Search in Google Scholar

[11] Johnson G. R., Cook W. H., A constitutive model and data for metals subjected to large strains, high strain rate, and temperatures, International Symposium on Ballistics, The Hague, The Netherlands 1983, pp. 1-7.Search in Google Scholar

[12] Kiciński R., Symulacja deformacji kadłuba okrętu podwodnego od niekontaktowego wybuchu miny, B.Sc. thesis, AMW, Gdynia 2014 [Simulation of the impact resistance of submarine loaded with non-contact mine explosion - available in Polish].Search in Google Scholar

[13] Rajendran A. M., Last H. R., Garrett R. K. Jr., Plastic Flow and Failure in HY100, HY130 and AF1410 Alloy Steels Under High Strain Rate and Impact Loading Conditions, Army Research Laboratory, 1995.Search in Google Scholar

[14] Reid W. D., The Response of Surface Ships to Underwater Explosions, Defence Science and Technology Organisation, Melbourne 1996.Search in Google Scholar

[15] Stiepanow W. C., Sipilin P. M., Nawagin J. S., Pankratow W. P., Tłoczenie wybuchowe, Warszawa 1968 [Punching Explosive - available in Polish].Search in Google Scholar

[16] Włodarczyk E., Wstęp do mechaniki wybuchu, PWN, Warszawa 1994 [Introduction to the mechanics of explosion - available in Polish].Search in Google Scholar