Gencturk et al., 2014 - Google Patents
Loading rate and temperature dependency of superelastic Cu–Al–Mn alloysGencturk et al., 2014
View PDF- Document ID
- 4791168787402758841
- Author
- Gencturk B
- Araki Y
- Kusama T
- Omori T
- Kainuma R
- Medina F
- Publication year
- Publication venue
- Construction and Building Materials
External Links
Snippet
This paper presents results from recent experiments performed on superelastic Cu–Al–Mn alloy bars (rods) with different diameters under various loading rates and temperatures. Previously, Araki et al.[2] tested the rate-dependent response of 8 mm bars up to 1 Hz …
- 238000011068 load 0 title abstract description 53
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Gencturk et al. | Loading rate and temperature dependency of superelastic Cu–Al–Mn alloys | |
Fang et al. | Superelastic NiTi SMA cables: Thermal-mechanical behavior, hysteretic modelling and seismic application | |
Zhang et al. | Determination of Ti-6242 α and β slip properties using micro-pillar test and computational crystal plasticity | |
Song et al. | Non-proportional multiaxial transformation ratchetting of super-elastic NiTi shape memory alloy: experimental observations | |
Maletta et al. | Fatigue of pseudoelastic NiTi within the stress-induced transformation regime: a modified Coffin–Manson approach | |
Kang et al. | Whole-life transformation ratchetting and fatigue of super-elastic NiTi Alloy under uniaxial stress-controlled cyclic loading | |
Resende et al. | Dislocation-based model for the prediction of the behavior of bcc materials–grain size and strain path effects | |
US10557182B2 (en) | Systems and methods for tailoring coefficients of thermal expansion between extreme positive and extreme negative values | |
Wang et al. | An experimental study of the superelastic behavior in NiTi shape memory alloys under biaxial proportional and non-proportional cyclic loadings | |
Meraghni et al. | Parameter identification of a thermodynamic model for superelastic shape memory alloys using analytical calculation of the sensitivity matrix | |
Araki et al. | Rate-dependent response of superelastic Cu–Al–Mn alloy rods to tensile cyclic loads | |
Dong et al. | Dislocation evolution in 316 L stainless steel during multiaxial ratchetting deformation | |
Mehrabi et al. | Constitutive modeling of tension-torsion coupling and tension-compression asymmetry in NiTi shape memory alloys | |
Sehitoglu et al. | Shape memory strains and temperatures in the extreme | |
Shi et al. | Elastic plastic deformation of TC6 titanium alloy analyzed by in-situ synchrotron based X-ray diffraction and microstructure based finite element modeling | |
Saleeb et al. | Large scale simulation of NiTi helical spring actuators under repeated thermomechanical cycles | |
Benafan et al. | An in situ neutron diffraction study of shape setting shape memory NiTi | |
Zhang et al. | Polycrystal plasticity modeling of nickel-based superalloy IN 617 subjected to cyclic loading at high temperature | |
Kumar et al. | Simulation of magnetostrictive properties of Galfenol under thermomechanical deformation | |
Katanchi et al. | Mixed-mode fracture of a superelastic NiTi alloy: Experimental and numerical investigations | |
Stebner et al. | Neutron diffraction studies and multivariant simulations of shape memory alloys: Empirical texture development–mechanical response relations of martensitic nickel–titanium | |
Xiao et al. | Experimental observations on mechanical response of three-phase NiTi shape memory alloy under uniaxial tension | |
Uniwersał et al. | Microstructure, texture and mechanical characteristics of asymmetrically rolled polycrystalline copper | |
Kowalewski et al. | Material effects during monotonic-cyclic loading | |
Tsiloufas et al. | Ductile fracture characterization for medium carbon steel using continuum damage mechanics |