The elastic modulus of B19\u27 shape-memory NiTi was determined using three techniques; from the response of lattice planes measured using in situ neutron diffraction during loading, instrumented indentation using a spherical indenter and macroscopic extensometry. The macroscopic measurements resulted in a modulus of 68 GPa, significantly less than the 101 GPa from indentation and the lattice plane average of 109 GPa from neutron diffraction. Evidence from the neutron measurements suggests that the disparity derives from the onset of small amounts of twinning at stresses less that 40 MPa, which might otherwise be considered elastic from a macroscopic view point
To explore the possibility of customising the functional behaviour of NiTi shape memory alloy via co...
Deformation of a B19\u27 martensitic, polycrystalline Ni49.9Ti50.1 (at. %) shape memory alloy and it...
A gripping capability was designed, implemented, and tested for in situ neutron diffraction measurem...
Deformation phenomena in shape memory alloys involve stress-, temperature-induced phase transformati...
As the name suggests, the shape-memory effect refers to a phenomenon wherein a material when mechani...
Near equi-atomic nickel titanium (NiTi) shape memory alloys (SMAs) are a class of materials characte...
Neutron diffraction measurements of internal elastic strains and texture were performed during uniax...
A combined experimental and computational effort was undertaken to provide insight into the elastic ...
A combined experimental and computational effort was undertaken to provide insight into the elastic ...
We report on in situ neutron diffraction measurements during heating and cooling through the phase t...
Shape recovery in shape memory alloys (SMAs) occurs against external stress by means of a reversible...
A bulk polycrystalline Ni49.9Ti50.1 (at.%) shape memory alloy specimen was shape set while neutron d...
Polycrystalline NiTi shape memory alloys have the ability to recover their original, pre-deformed sh...
In situ neutron diffraction was used to investigate the microstructural features of stoichiometric a...
In situ neutron diffraction was used to provide insights into martensite variant microstructures dur...
To explore the possibility of customising the functional behaviour of NiTi shape memory alloy via co...
Deformation of a B19\u27 martensitic, polycrystalline Ni49.9Ti50.1 (at. %) shape memory alloy and it...
A gripping capability was designed, implemented, and tested for in situ neutron diffraction measurem...
Deformation phenomena in shape memory alloys involve stress-, temperature-induced phase transformati...
As the name suggests, the shape-memory effect refers to a phenomenon wherein a material when mechani...
Near equi-atomic nickel titanium (NiTi) shape memory alloys (SMAs) are a class of materials characte...
Neutron diffraction measurements of internal elastic strains and texture were performed during uniax...
A combined experimental and computational effort was undertaken to provide insight into the elastic ...
A combined experimental and computational effort was undertaken to provide insight into the elastic ...
We report on in situ neutron diffraction measurements during heating and cooling through the phase t...
Shape recovery in shape memory alloys (SMAs) occurs against external stress by means of a reversible...
A bulk polycrystalline Ni49.9Ti50.1 (at.%) shape memory alloy specimen was shape set while neutron d...
Polycrystalline NiTi shape memory alloys have the ability to recover their original, pre-deformed sh...
In situ neutron diffraction was used to investigate the microstructural features of stoichiometric a...
In situ neutron diffraction was used to provide insights into martensite variant microstructures dur...
To explore the possibility of customising the functional behaviour of NiTi shape memory alloy via co...
Deformation of a B19\u27 martensitic, polycrystalline Ni49.9Ti50.1 (at. %) shape memory alloy and it...
A gripping capability was designed, implemented, and tested for in situ neutron diffraction measurem...