Changes in Mechanical and Microstructural Properties of Magnesium Alloys Resulting from Superimposed High Current Density Pulses

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Abstract:

Magnesium alloys are important engineering materials due to their good combination of strength and very low densities. However, the low ductility imposed by the hcp-lattice has thus far limited the application of magnesium alloys as sheet material. The use of the electroplastic effect offers a route to increase formability of magnesium alloys while being more energy efficient than conventional hot forming. The underlying mechanism (s) of this effect have not yet been fully understood. This study investigates the impact of high current density electrical pulses on magnesium alloys. Special consideration was given to the effect of the orientation of the applied electric current relative to the mechanical loading of the specimens. The results show that the mechanical properties of coarse-grained materials are more strongly affected by the current pulses than finer grained material. Applying the current parallel to the compressive load shows a more pronounced softening of the material than pulses applied perpendicular to the mechanical stress. Microstructure investigations revealed the formation of twinning solely in the interior of grains even at stresses below the yield point for both configurations.

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Materials Science Forum (Volume 1016)

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385-391

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January 2021

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© 2021 Trans Tech Publications Ltd. All Rights Reserved

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[1] E. Aghion, B. Bronfin, Magnesium Alloys Development towards the 21st Century, Materials Science Forum. 350 (2000) 19-30.

DOI: 10.4028/www.scientific.net/msf.350-351.19

Google Scholar

[2] M. K. Kulekci, Magnesium and its alloys applications in automotive industry, Int. J. Adv. Manuf. Technol. 39 (2008) 851-865.

DOI: 10.1007/s00170-007-1279-2

Google Scholar

[3] Z. Xu, S. Tian, F. Ding, H. Tian, Research of electroplastic rolling of AZ31 Mg alloy strip., Journal of Materials Processing Technology. 182 (2007) 128-133.

DOI: 10.1016/j.jmatprotec.2006.07.019

Google Scholar

[4] H. Xie, X. Dong, Z. Ai, Q. Wang, F. Peng, K. Liu, F. Chen, J. Wang, Experimental investigation on electrically assisted cylindrical deep drawing of AZ31B magnesium alloy sheet, International Journal of Advanced Manufacturing Technology. 86 (2016) 1063–1069.

DOI: 10.1007/s00170-015-8246-0

Google Scholar

[5] K. Okazaki, M. Kagawa, H. Conrad, An Evaluation of the Contributi-ons of Skin, Pinch and Heating Effects to the Electroplastic Effect in Ti-tanium, Materials Science and Engineering. 45 (1980) 109-116.

DOI: 10.1016/0025-5416(80)90216-5

Google Scholar

[6] H. Conrad, Thermally activated plastic flow of metals and ceramics with an electric field or current, Materials Science and Engineering: A. 322 (2002) 100-107.

DOI: 10.1016/s0921-5093(01)01122-4

Google Scholar

[7] K. Okazaki, M. Kagawa, H. Conrad, A study of the electroplastic effect in metals, Scripta Metallurgica. 12 (1978) 1063-1068.

DOI: 10.1016/0036-9748(78)90026-1

Google Scholar

[8] G. Gerstein, M. Nowak, M. Bierbaum, T. Zhuravina, M. Schaper, F.-W. Bach, Increase the Deformability of NiCo Single Crystals Using of Electrical Pulse-Like Currents, Key Eng. Mater.. 504 (2012) 143–148.

DOI: 10.4028/www.scientific.net/kem.504-506.143

Google Scholar

[9] E. Demler, G. Gerstein, A. Dalinger, A. Epishin, D. Rodman, F. Nürnberger, Influence of High-Current-Density Impulses on the Compression Behavior: Experiments with Iron and a Nickel-Based Alloy, Journal of Materials Engineering and Performance. 26 (2017) 177-184.

DOI: 10.1007/s11665-016-2457-x

Google Scholar

[10] E. Demler, G. Gerstein, A. Dalinger, A. Epishin, F. Nürnberger, H. J. Maier, Influence of high current-density impulses on the stress-strain response and microstructural evolution of the single crystal superalloy CMSX-4, Materials Research. 22 (2018) 1-9.

DOI: 10.1590/1980-5373-mr-2018-0428

Google Scholar

[11] E. Demler, G. Gerstein, A. Dalinger, F. Nürnberger, A. Epishin, D.A. Molodov, Effect of Electrical Pulses on the Mechanical Behavior of Single Crystals of Nickel-Based CMSX-4 Superalloy and the Mobility of Low-Angle Grain Boundary in Aluminum Bicrystals, Bulletin of the Russian Academy of Sciences: Physics. 82 (2018) 1079-1085.

DOI: 10.3103/s106287381809006x

Google Scholar

[12] F. Körkemeyer, K.D. Molodov, A. Dalinger, G. Gerstein, A. Tripathi, S. Zaefferer, D.A. Molodov, Mechanical properties of Mg and Mg alloys during and after high current density pulses, 2nd Conference & Exhibition on Light Materials, Bremen, Germany, (2017).

Google Scholar

[13] S. Reschka, G. Gerstein, A. Dalinger, S. Herbst, F. Nürnberger, S. Zaefferer, Visualization and Observation of Morphological Peculiarities of Twin Formation in Mg‑Based Samples After Electrically Assisted Forming, Metallography, Microstructure, and Analysis. 8 (2019) 806-814.

DOI: 10.1007/s13632-019-00589-2

Google Scholar

[14] G. Gerstein, F. Körkemeyer, A. Dalinger, S. Zaefferer, H. J. Maier, Anomalous twinning in AZ 31 magnesium alloy during electrically assisted forming, Materials Letters. 255 (2019) 1-3.

DOI: 10.1016/j.matlet.2019.126516

Google Scholar

[15] K. Okazaki, M. Kagawa, H. Conrad, Additional results on the electroplastic effect in metals, Scripta Metallurgica. 13 (1979) 277-280.

DOI: 10.1016/0036-9748(79)90311-9

Google Scholar

[16] K. Okazaki, M. Kagawa, H. Conrad, Effects of strain rate, temperature and interstitial content on the electroplastic effect in titanium, Scripta Metallurgica. 13 (1979) 473-477.

DOI: 10.1016/0036-9748(79)90072-3

Google Scholar

[17] P. B. Hirsch, Dislocations in semiconductors, Materials Science and Technology. 1 (1985) 666-677.

Google Scholar

[18] O. A. Troitsky, Electroplastic effect in metals, Ferrous Metallurgy, Bulletin of Scientific, Technical and Economic Information. 9 (2018) 65–76 (In Russian).

DOI: 10.32339/0135-5910-2018-9-65-76

Google Scholar