Magnetic Shape Memory Nanocomposites Assembled with High Speed High Pressure Torsion

Author:

Gurau Carmela1ORCID,Tolea Felicia2ORCID,Cimpoesu Nicanor3,Sofronie Mihaela2ORCID,Cantaragiu Ceoromila Alina4ORCID,Stefanescu Cristian1ORCID,Gurau Gheorghe1ORCID

Affiliation:

1. Department of Materials Engineering and Environment, Faculty of Engineering, “Dunarea de Jos” University of Galati, 47 Domneasca Street, RO-800008 Galati, Romania

2. National Institute of Materials Physics, Atomistilor Street 405A, RO-077125 Bucharest-Magurele, Romania

3. Department of Materials Science, Gheorghe Asachi Technical University of Iasi, Bd. Dimitrie Mangeron, nr. 67, RO-700050 Iasi, Romania

4. Applied Sciences Department, Cross-Border Faculty, “Dunarea de Jos” University of Galati, 47 Domneasca Street, RO-800008 Galati, Romania

Abstract

When a severe plastic deformation (SPD) process is performed at high temperatures, it becomes more versatile. Designed originally for the bulk nanoconstruction of hard-to-deform alloys, high-speed high-pressure torsion (HSHPT) is an SPD method used in this research for assembling multiple layers of shape memory nanocomposites. Three hard-to-deform magnetic alloys in the cast state were used. Soft magnetic shape memory alloys, NiFeGa and FePdMn, and a potentially hard magnetic alloy, CoZr, were assembled in various composites. Both grain refinement and strong layer bonding were achieved in ZrCo/FePdMn and ZrCo/NiFeGa composites in seconds. The very short SPD time is specific to HSHPT because of the intense friction that occurs under high pressures, which generates huge amounts of heat. After SPD, the temperature rises in bulk material like a pulse, being dissipated mostly through heat conduction. The SPD parameters were carefully controlled with an advanced automation system using a programmable logic controller. Nevertheless, the major drawbacks of high-pressure torsion were overcome, and large SPD discs were obtained. Various investigation techniques (optical microscopy, scanning electron microscopy, energy dispersive spectroscopy and atomic force microscopy) show well-defined interfaces as well as a fine and ultrafine structure.

Funder

Romanian Ministry of National Education, CNCSUEFISCDI

Publisher

MDPI AG

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