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Electric resistance monitoring as a method for controlling shape memory alloy characteristics during shape-setting treatments in the furnace

Academic Article
Publication Date:
2014
abstract:
This paper proposes a method, based on electric resistance, for monitoring online the shape-setting of NiTi shape memory alloys during thermal treatments in the furnace.The experimental part includes straight-annealing experiments of 1. mm Ni-rich NiTi wires with different cold-working degrees (0%, 25%, 30% and - 40% CW series) or at various ageing temperatures (708. K, 748. K, 808. K, 853. K, and 893. K - T series). Furthermore shape-setting experiments of ? springs at 708. K are reported. A test current was injected into each specimen during ageing and the resulting tension was measured continuously over a set length of material, initially for 1800. s. The resulting curves were repeatable and showed an initial drop in voltage, followed by a definite rise, a plateau and a long slow decrease. These epochs are connected to critical latencies that were used to set the durations of subsequent shape-setting experiments of separate samples in the CW and T series. Mechanical tensile tests, DSC, XRD measurements and FEG-SEM analyses were carried out on all specimens. Correlations were established between electric resistance curve latencies, mechanical performance and microstructural evolution in the material. In particular, the point at the end of the plateau region appears to mark optimal pseudoelastic behaviour. This method may improve the efficiency of parameter optimisation in shape memory alloys processing. © 2014 Elsevier B.V.
Iris type:
01.01 Articolo in rivista
Keywords:
Mechanical properties; Microstructural evolution; NiTi; Precipitates; Pseudoelastic; Resistivity
List of contributors:
Garavaglia, Lorenzo; Pittaccio, Simone
Authors of the University:
GARAVAGLIA LORENZO ELIA
PITTACCIO SIMONE
Handle:
https://iris.cnr.it/handle/20.500.14243/271591
Published in:
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING
Journal
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URL

http://www.sciencedirect.com/science/article/pii/S0921509314001063
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