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Dive into the research topics where Sayed Saghaian is active.

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Featured researches published by Sayed Saghaian.


Materials Science and Technology | 2014

NiTiHf-based shape memory alloys

H.E. Karaca; E. Acar; H. Tobe; Sayed Saghaian

Abstract NiTiHf-based shape memory alloys have been receiving considerable attention for high temperature, high strength and two-way shape memory applications since they could have transformation temperatures above 100°C, shape memory effect under high stress (above 500 MPa) and superelasticity above 100°C. Moreover, their shape memory properties can be tailored by microstructural engineering. However, NiTiHf-based alloys have some drawbacks such as low ductility and high slope in stress induced martensite transformation region. In order to overcome these limitations, studies have been focused on microstructural engineering by aging, alloying and processing. It has been revealed that microstructural control is crucial to govern the shape memory properties (e.g. transformation temperatures, matrix strength, shape recovery strain, twinning type, etc.) of NiTiHf-based alloys. A summary of the most recent improvements on selected NiTiHf-based systems is presented to point out their significant shape memory properties, effects of alloying, aging and microstructure of transforming phases and precipitates.


Smart Materials and Structures | 2016

Effects of Ni content on the shape memory properties and microstructure of Ni-rich NiTi-20Hf alloys

Sayed Saghaian; H.E. Karaca; H. Tobe; J Pons; R Santamarta; Y.I. Chumlyakov; Ronald D. Noebe

Shape memory properties and microstructure of four Ni-rich NiTiHf alloys (Ni50.3Ti29.7Hf20, Ni50.7Ti29.3Hf20, Ni51.2Ti28.8Hf20, and Ni52Ti28Hf20 (at.%)) were systematically characterized in the furnace cooled condition. H-phase precipitates were formed during furnace cooling in compositions with greater than 50.3Ni and the driving force for nucleation increased with Ni content. Alloy strength increased while recoverable strain decreased with increasing Ni content due to changes in precipitate characteristics. When the precipitates were small (~5–15 nm), they were readily absorbed by martensite plates, which resulted in maximum recoverable strain of 2% in Ni50.7Ti29.3Hf20. With increasing Ni content, the size (>100 nm) and volume fraction of precipitates increased and the growth of martensite plates was constrained between the precipitates when the Ni concentration was greater than 50.7 at.%. Near perfect dimensional stability with negligible irrecoverable strain was observed at stress levels as high as 2 GPa in the Ni52Ti28Hf20 alloy, though the recoverable strain was rather small. In general, strong local stress fields were created at precipitate/matrix interphases, which lead to high stored elastic energy during the martensitic transformation.


Journal of Materials Science: Materials in Medicine | 2018

Shape memory response of porous NiTi shape memory alloys fabricated by selective laser melting

Soheil Saedi; Sayed Ehsan Saghaian; Ahmadreza Jahadakbar; Narges Shayesteh Moghaddam; Mohsen Taheri Andani; Sayed Saghaian; Y. Charles Lu; Mohammad Elahinia; H.E. Karaca

AbstractPorous NiTi scaffolds display unique bone-like properties including low stiffness and superelastic behavior which makes them promising for biomedical applications. The present article focuses on the techniques to enhance superelasticity of porous NiTi structures. Selective Laser Melting (SLM) method was employed to fabricate the dense and porous (32–58%) NiTi parts. The fabricated samples were subsequently heat-treated (solution annealing + aging at 350 °C for 15 min) and their thermo-mechanical properties were determined as functions of temperature and stress. Additionally, the mechanical behaviors of the samples were simulated and compared to the experimental results. It is shown that SLM NiTi with up to 58% porosity can display shape memory effect with full recovery under 100 MPa nominal stress. Dense SLM NiTi could show almost perfect superelasticity with strain recovery of 5.65 after 6% deformation at body temperatures. The strain recoveries were 3.5, 3.6, and 2.7% for samples with porosity levels of 32%, 45%, and 58%, respectively. Furthermore, it was shown that Young’s modulus (i.e., stiffness) of NiTi parts can be tuned by adjusting the porosity levels to match the properties of the bones.


Acta Materialia | 2013

Effects of nanoprecipitation on the shape memory and material properties of an Ni-rich NiTiHf high temperature shape memory alloy

H.E. Karaca; Sayed Saghaian; G.S. Ded; H. Tobe; B. Basaran; Hans Jürgen Maier; Ronald D. Noebe; Y.I. Chumlyakov


Scripta Materialia | 2011

Compressive response of nickel-rich NiTiHf high-temperature shape memory single crystals along the [1 1 1] orientation

H.E. Karaca; Sayed Saghaian; B. Basaran; Glen S. Bigelow; Ronald D. Noebe; Y.I. Chumlyakov


Acta Materialia | 2014

Transformation strains and temperatures of a nickel–titanium–hafnium high temperature shape memory alloy

Aaron P. Stebner; Glen S. Bigelow; Jin Yang; Dhwanil Shukla; Sayed Saghaian; Richard B. Rogers; Anita Garg; H.E. Karaca; Yuriy Chumlyakov; Kaushik Bhattacharya; Ronald D. Noebe


Acta Materialia | 2015

Effects of aging on the shape memory behavior of Ni-rich Ni50.3Ti29.7Hf20 single crystals

Sayed Saghaian; H.E. Karaca; H. Tobe; M. Souri; Ronald D. Noebe; Y.I. Chumlyakov


Materials & Design | 2016

Tensile shape memory behavior of Ni 50.3 Ti 29.7 Hf 20 high temperature shape memory alloys

Sayed Saghaian; H.E. Karaca; M. Souri; Ali Sadi Turabi; Ronald D. Noebe


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2015

Microstructure and transformation related behaviors of a Ni45.3Ti29.7Hf20Cu5 high temperature shape memory alloy

H.E. Karaca; E. Acar; G.S. Ded; Sayed Saghaian; B. Basaran; H. Tobe; M. Kok; Hans Jürgen Maier; Ronald D. Noebe; Y.I. Chumlyakov


Acta Materialia | 2017

High strength NiTiHf shape memory alloys with tailorable properties

Sayed Saghaian; H.E. Karaca; H. Tobe; A.S. Turabi; Soheil Saedi; Sayed Ehsan Saghaian; Y.I. Chumlyakov; Ronald D. Noebe

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H.E. Karaca

University of Kentucky

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H. Tobe

University of Kentucky

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B. Basaran

University of Kentucky

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E. Acar

University of Kentucky

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M. Souri

University of Kentucky

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