scholarly journals Hardness-gradient reversion in FeMnSiCr shape memory alloy modules produced by high-speed high pressure torsion

2015 ◽  
Vol 33 ◽  
pp. 04001 ◽  
Author(s):  
Leandru-Gheorghe Bujoreanu ◽  
Viorel Goanță ◽  
Nicanor Cimpoeșu ◽  
Carmela Gurău ◽  
Marius-Gabriel Suru ◽  
...  
2014 ◽  
Vol 23 (7) ◽  
pp. 2396-2402 ◽  
Author(s):  
Gheorghe Gurău ◽  
Carmela Gurău ◽  
Octavian Potecaşu ◽  
Petrică Alexandru ◽  
Leandru-Gheorghe Bujoreanu

Author(s):  
Gheorghe Gurau ◽  
Carmela Gurau ◽  
Francisco Manuel Braz Fernandes ◽  
Rui Jorge Cordeiro Silva ◽  
Florin Marin

2017 ◽  
Vol 1143 ◽  
pp. 214-220 ◽  
Author(s):  
Gheorghe Gurau ◽  
Carmela Gurau ◽  
Mihaela Banu ◽  
Leandru Gheorghe Bujoreanu

High speed high pressure torsion (HSHPT) processing technology, engineered to achieving (ultra) fine bulk metallic structure under high pressure (~ GPa) and torsion by applying supplementary elevated rotation speed of superior anvil. Coned-disk spring shape modules were processed from an as cast Fe-28Mn-6Si-5Cr (mass %) shape memory alloy (SMA). Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) studies revealed that the structure of modules became submicron as an effect of HSHPT processing. After severe plastic deformation, a grain size gradient was obtained along the truncated cone generator, increasing from inner to outer areas, due to different deformation degrees in these zones. The mechanical and shape memory properties was performed in order to relate the structural changes caused by severe plastic deformation.


2021 ◽  
Vol 802 ◽  
pp. 140647
Author(s):  
Hamidreza Koohdar ◽  
Mahmoud Nili-Ahmadabadi ◽  
Faezeh Javadzadeh Kalahroudi ◽  
Hamid Reza Jafarian ◽  
Terence G. Langdon

Metals ◽  
2020 ◽  
Vol 10 (12) ◽  
pp. 1629
Author(s):  
Gheorghe Gurau ◽  
Carmela Gurau ◽  
Francisco Manuel Braz Fernandes ◽  
Petrica Alexandru ◽  
Vedamanickam Sampath ◽  
...  

It is generally accepted that severe plastic deformation (SPD) has the ability to produce ultrafinegrained (UFG) and nanocrystalline materials in bulk. Recent developments in high pressure torsion (HPT) processes have led to the production of bimetallic composites using copper, aluminum or magnesium alloys. This article outlines a new approach to fabricate multilayered Ni-Ti nanocomposites by a patented SPD technique, namely, high speed high pressure torsion (HSHPT). The multilayered composite discs consist of Ni-Ti alloys of different composition: a shape memory alloy (SMA) Ti-rich, whose Mf > RT, and an SMA Ni-rich, whose Af < RT. The composites were designed to have 2 to 32 layers of both alloys. The layers were arranged in different sequences to improve the shape recovery on both heating and cooling of nickel-titanium alloys. The manufacturing process of Ni-Ti multilayers is explained in this work. The evolution of the microstructure was traced using optical, scanning electron and transmission electron microscopes. The effectiveness of the bonding of the multilayered composites was investigated. The shape memory characteristics and the martensitic transition of the nickel-titanium nanocomposites were studied by differential scanning calorimetry (DSC). This method opens up new possibilities for designing various layered metal-matrix composites achieving the best combination of shape memory, deformability and tensile strength.


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