The fracture toughness (K1c) and fatigue crack growth rate (FCGR) properties of selective laser melted (SLM) specimens produced from grade 5 Ti6Al4V powder metal has been investigated. Three specimen orientations relative to the build direction as well as two different post-build heat treatments were considered. Specimens and test procedures were designed in accordance with ASTM E399 and ASTM E647 standard. The results show that there is a strong influence of post-build processing (heat treated versus ‘as built’) as well as specimen orientation on the dynamic behaviour of SLM produced Ti6Al4V. The greatest improvement in properties after heat treatment was demonstrated when the fracture plane is perpendicular to the SLM build direction...
Results of an experimental determination of the propagation of long fatigue cracks in Ti6Al4V alloy ...
The unique thermal history of selective laser melting (SLM) can lead to high residual stress and a n...
One of the challenges of additive manufacturing (AM) technology is the inability to generate repeata...
The fracture toughness (K1c) and fatigue crack growth rate (FCGR) properties of selective laser melt...
The fracture toughness (K1c) and fatigue crack growth rate (FCGR) properties of selective laser melt...
Additive manufacturing has of late gained a lot of attention; this is partly because light weight me...
This paper describes and analyzes fracture toughness and crack propagation of selective laser molten...
The tensile properties, mode I fracture toughness (K-Ic), fatigue crack growth behavior, and unnotch...
This research investigates the effect of a varying build orientation and different heat treatment on...
Selective laser melting (SLM) is a powerful additive manufacturing (AM) technology, of which the mos...
In this study; turning, milling, heat treatment and shot peening (SP) post-process operations alone ...
In this study; turning, milling, heat treatment and shot peening (SP) post-process operations alone ...
Total fatigue life performance of high strength titanium alloy Ti-6Al-4V manufactured by Additive Ma...
The focus of this research project was to determine experimentally the fatigue and fracture toughnes...
Selective Laser Melting (SLM) is characterized by a layer-wise building process that enables the nea...
Results of an experimental determination of the propagation of long fatigue cracks in Ti6Al4V alloy ...
The unique thermal history of selective laser melting (SLM) can lead to high residual stress and a n...
One of the challenges of additive manufacturing (AM) technology is the inability to generate repeata...
The fracture toughness (K1c) and fatigue crack growth rate (FCGR) properties of selective laser melt...
The fracture toughness (K1c) and fatigue crack growth rate (FCGR) properties of selective laser melt...
Additive manufacturing has of late gained a lot of attention; this is partly because light weight me...
This paper describes and analyzes fracture toughness and crack propagation of selective laser molten...
The tensile properties, mode I fracture toughness (K-Ic), fatigue crack growth behavior, and unnotch...
This research investigates the effect of a varying build orientation and different heat treatment on...
Selective laser melting (SLM) is a powerful additive manufacturing (AM) technology, of which the mos...
In this study; turning, milling, heat treatment and shot peening (SP) post-process operations alone ...
In this study; turning, milling, heat treatment and shot peening (SP) post-process operations alone ...
Total fatigue life performance of high strength titanium alloy Ti-6Al-4V manufactured by Additive Ma...
The focus of this research project was to determine experimentally the fatigue and fracture toughnes...
Selective Laser Melting (SLM) is characterized by a layer-wise building process that enables the nea...
Results of an experimental determination of the propagation of long fatigue cracks in Ti6Al4V alloy ...
The unique thermal history of selective laser melting (SLM) can lead to high residual stress and a n...
One of the challenges of additive manufacturing (AM) technology is the inability to generate repeata...