In this study, micro-computed tomography (CT) is utilized to detect defects of Ti-6Al-4V specimens fabricated by selective laser melting (SLM) and electron beam melting (EBM), which are two popular metal additive manufacturing methods. SLM and EBM specimens were fabricated with random defects at a specific porosity. The capability of micro-CT to evaluate inclusion defects in the SLM and EBM specimens is discussed. The porosity of EBM specimens was analyzed through image processing of CT single slices. An empirical method is also proposed to estimate the porosity of reconstructed models of the CT scan
Metal Additive Manufacturing (AM) has great potential to revolutionize manufacturing industries, but...
This paper reports on the results of a round robin test conducted by ten X-ray micro computed tomogr...
Recent advances in Additive Manufacturing (AM) have shown a great potential in production of intrica...
In this study, micro-computed tomography (CT) is utilized to detect defects of Ti-6Al-4V specimens f...
Additive manufacturing (AM) is a method of fabrication involving the joining of feedstock material t...
Additive manufacturing (AM) is emerging as an important manufacturing sector, due to its almost unli...
Application of Additive Manufacturing (AM) technology to fabricate complex three-dimensional compone...
Electron beam melting (EBM) is emerging as a promising manufacturing process where metallic componen...
Additive manufacturing (AM) is recognized as a core technology for producing advanced high value com...
AbstractIn this paper the application of X-ray microCT to the non-destructive testing of an additive...
<p>Additive layer manufacturing (ALM) has the potential to allow engineers almost complete freedom o...
In order to investigate the morphology of defects present in Selective Laser Melting (SLM) and Elec...
Deep-powder-bed additive manufacturing (AM) can lead to distinctive microstructural features. In thi...
Metallic lattice structures intentionally contain open porosity; however, they can also contain unwa...
Processing parameter has an important effect on Selective Laser Melting (SLM) and Electron Beam Mel...
Metal Additive Manufacturing (AM) has great potential to revolutionize manufacturing industries, but...
This paper reports on the results of a round robin test conducted by ten X-ray micro computed tomogr...
Recent advances in Additive Manufacturing (AM) have shown a great potential in production of intrica...
In this study, micro-computed tomography (CT) is utilized to detect defects of Ti-6Al-4V specimens f...
Additive manufacturing (AM) is a method of fabrication involving the joining of feedstock material t...
Additive manufacturing (AM) is emerging as an important manufacturing sector, due to its almost unli...
Application of Additive Manufacturing (AM) technology to fabricate complex three-dimensional compone...
Electron beam melting (EBM) is emerging as a promising manufacturing process where metallic componen...
Additive manufacturing (AM) is recognized as a core technology for producing advanced high value com...
AbstractIn this paper the application of X-ray microCT to the non-destructive testing of an additive...
<p>Additive layer manufacturing (ALM) has the potential to allow engineers almost complete freedom o...
In order to investigate the morphology of defects present in Selective Laser Melting (SLM) and Elec...
Deep-powder-bed additive manufacturing (AM) can lead to distinctive microstructural features. In thi...
Metallic lattice structures intentionally contain open porosity; however, they can also contain unwa...
Processing parameter has an important effect on Selective Laser Melting (SLM) and Electron Beam Mel...
Metal Additive Manufacturing (AM) has great potential to revolutionize manufacturing industries, but...
This paper reports on the results of a round robin test conducted by ten X-ray micro computed tomogr...
Recent advances in Additive Manufacturing (AM) have shown a great potential in production of intrica...