Tytuł artykułu
Treść / Zawartość
Pełne teksty:
Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
The paper has presented the results of theoretical studies and experimental tests of the plastic deformation of multi-layered Ti/Al/Mg specimens. Theoretical studies were carried out using the Forge2011® computer program. Physical modeling, on the other hand, was performed using the Gleeble3800 simulator. Cuboidal specimens were cut off from the plates obtained in the explosive welding method. Based on the obtained investigation results it has been found non uniform deformation of the particular layer as a result their different value of flow stress.
Wydawca
Czasopismo
Rocznik
Tom
Strony
1361--1368
Opis fizyczny
Bibliogr. 31 poz., fot., rys.
Twórcy
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, 19 Armii Krajowej Str., 42-201 Częstochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, 19 Armii Krajowej Str., 42-201 Częstochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, 19 Armii Krajowej Str., 42-201 Częstochowa, Poland
autor
- Czestochowa University of Technology, Faculty of Production Engineering and Materials Technology, 19 Armii Krajowej Str., 42-201 Częstochowa, Poland
autor
- Military University of Technology, Faculty of Mechanical, 2 Gen. Sylwestra Kaliskiego Str., 00-908 Warszawa 46, Poland
autor
- Military University of Technology, Faculty of Mechanical, 2 Gen. Sylwestra Kaliskiego Str., 00-908 Warszawa 46, Poland
autor
- ZTW Explomet Sp. J. 100 Oświecimska Str., 46-020 Opole, Poland
autor
- ZTW Explomet Sp. J. 100 Oświecimska Str., 46-020 Opole, Poland
Bibliografia
- [1] A. Wiśniewski, Pancerze - budowa, projektowanie i badanie, WNT, Warszawa (2001).
- [2] W. Gooch, M. Burkins, R. Squillacioti, R. Stockmannkoch, H. Oscarsson, C. Nash, Ballistic Testing of Swedish Steel ARMOX Plate for U.S. Armor Applications, 21st International Ballistic Symposium, Adelaide Australia, 19-23 April 2004.
- [3] T. Børvik, S. Dey, A. H. Clausen, Perforation resistance of five different high-strength steel plates subjected to small-arms projectiles, Int. J. Impact Eng. 36, 948-964 (2009).
- [4] J. Godzimirski, J. Janiszewski, M. Rośkowicz, Z. Surma, Ballistic resistance tests of multi-layer protective panels, Maint. and Reliab. 17 (3), 416-421 (2015).
- [5] A. Tasdemirci, I. W. Hall, Development of novel multilayer materials for impact applications: A combined numerical and experimental approach, Mater. Des. 30, 1533-1541 (2009).
- [6] B. Płonka, K. Remsak, M. Rajda, Badania balistyczne demonstratorów opancerzenia dodatkowego, Szybk. Poj. Gąsien. 47 (1), 1-10 (2018).
- [7] Z. Odanović, B. Bobić, Ballistic protection efficiency of composite ceramics/metal armours, Scient.-Techn. Rev. 3, 30-38 (2003).
- [8] S. Atiq, A. R. Boccaccini, D. N. Boccaccini, I. Dlouhy, C. Kaya, Fracture behaviour of mullitefibre reinforced-mullitematrix composites under quasi-static and ballistic impact loading, Comp. Sc. and Techn. 65, 325-333 (2005).
- [9] T. A. Bogetti, B. A. Cheeseman, Ballistic impact into fabric and compliant composite laminates, Comp. Struct. 61, 161-173 (2003).
- [10] K. O. Pedersen, T. Børvik, O. S. Hopperstad, Fracture mechanisms of aluminium alloy AA7075-T651 under various loading conditions, Mater. Des. 32, 97-107 (2011).
- [11] T. Børvik, O. S. Hopperstad, K. O. Pedersen, Quasi-brittle fracture during structural impact of AA7075-T651 aluminium plates, Int. J. Impact Eng. 37, 537-551 (2010).
- [12] D. Boroński, M. Kotyk, P. Maćkowiak, L. Śnieżek, Mechanical properties of explosively welded AA2519-AA1050-Ti6Al4V layered material at ambient and cryogenic conditions, Mater. Des. 133, 390-403 (2017).
- [13] L. Szugajevw, J. Jarzemski, Niektóre aspekty konstrukcji powłok ekranujących i absorpcyjnych – część II, Probl. Techn. Uzbr. 36 (104), 121-127 (2007).
- [14] D.R.J. White, Electromagnetic Shielding Materials and Performance, Don White Consultants Inc., USA, 1980.
- [15] T. Chen-Ching, Ch. Chien-Chih, Experimental Data for Study on the Shielding Effect of Electromagnetic Wave, Eng. 3, 771-777 (2011).
- [16] L. N. Kong, Z. W. Li, L. Liu, R. Huang, M. Abshinova, Z. H. Yang, Recent progress in some composite materials and structures for specific electromagnetic applications, Int. Mater. Rev. 58, 203-59 (2013).
- [17] X. Chen, J. Liu, Z. Zhang, F. Pan, Effect of heat treatment on electromagnetic shielding effectiveness of ZK60 magnesium alloy, Mater. Des. 42, 327-333 (2012).
- [18] X. Chen, J. Liu, F. Pan, Enhanced electromagnetic interference shielding in ZK60 magnesium alloy by aging precipitation, J. of Phys. and Chem. of Sol. 74, 872-878 (2013).
- [19] K. Song., F. S. Pan, X. H. Chen, Z. H. Zhang, A. T. Tang, J. She, Z. W. Yu, H. C. Pan, X. Y. Xu, Effect of texture on the electromagnetic shielding property of magnesium alloy, Mater. Let. 157, 73-76 (2015).
- [20] H. Paul, M. M. Miszczyk, A. Gałka, R. Chulist, Z. Szulc, Microstructural and Chemical Composition Changes in the Bonding Zone of Explosively Welded Sheets, Arch. of Met. and Mat. 64 (2), 683-694 (2019).
- [21] F. Findik, Recent developments in explosive welding, Mater. Des. 32, 1081-1093 (2011).
- [22] D. M. Fronczek, J. Wojewoda-Budka, R. Chulist, A. Sypien, A. Korneva, Z. Szulc, N. Schell, P. Zieba, Structural properties of Ti/Al clads manufactured by explosive welding and annealing, Mater. Des. 91, 80-89 (2016).
- [23] T. Fras, I. Szachogluchowicz, L. Śnieżek, Ti6Al4V-AA1050-AA2519 explosively-cladded plates under impact loading, Europ. Phys. J. Spec. Top. 227, 17-27 (2018).
- [24] D. Boroński, M. Kotyk, P. Maćkowiak, L. Śnieżek, Mechanical properties of explosively welded AA2519-AA1050-Ti6Al4V layered material at ambient and cryogenic conditions, Mater. Des. 133, 390-403 (2017).
- [25] R. Mola, S. Mróz, P. Szota, S. Sawicki, The analysis of the plastic deformation of two-layered magnesium - aluminium alloys (AZ31- Al), Metallurg. 55 (4), 625-627 (2016).
- [26] S. Mróz, P. Szota, A. Stefanik, FE and physical modelling of plastic flow the two-layer Mg/Al materials, Comp. Meth. in Mater. Sc.17 (3), 148-155 (2017).
- [27] F. H. Norton, Creep of steel at high temperature, McGraw Hill, New York, 1929.
- [28] N. J. Hoff, Approximate analysis of structures in the presence of moderately large steps deformation, Quart, Appl. Mech. 2, 49 (1954).
- [29] S. Mróz, Teoretyczno-technologiczne podstawy walcowania prętów bimetalowych w wykrojach, Seria Monografie nr 45, Częstochowa, 2015.
- [30] A. Gontarz, A. Dziubińska, Ł. Okoń, Determination of Friction Coefficients at Elevated Temperatures for some Al, Mg and Ti Alloys, Arch. Metall. Mater. 56 (2), 379-384 (2011).
- [31] R. Mola, S. Mroz, P. Szota, Effects of the process parameters on the formability of the intermetallic zone in two-layer Mg/Al materials, Arch. of Civ. and Mech. Eng. 18 (4), 1401-1409 (2018).
Uwagi
EN
The part of research was funded by Polish Ministry of National Defence, grant number: BG/13-998.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-64176bb2-5d13-4281-8185-45d5117e661c