The geometry and material properties of additively manufactured (AM) parts are closely related in a way that any alteration in geometry of the part will change the underlying manufacturing strategy. This in turn, affects the microstructure and consequently, the mechanical behavior of material. This paper aims to evaluate the effect of the AM part's thickness and geometry on microstructure, surface roughness, and mechanical properties under quasi-static and fatigue loading conditions by performing experimental tests. A series of Ti-6Al-4V specimens with three different thicknesses and two different geometries were fabricated using electron beam melting (EBM). The results of microstructural analyses revealed that specimens with lower build th...
cited By 3International audienceAs-built Ti-6Al-4 V thin parts were manufactured using Electron Beam...
Powder bed additive manufacturing of titanium components offers several advantages. The high freedom...
With the demand of devices to replace or improve areas, such as: electronic, biomedical and aerospac...
Additive manufacturing (AM) is an advanced manufacturing technique whose uptake within the aerospace...
The application of additively manufactured titanium components is attractive due to a number of pote...
Electron beam melting (EBM), a technique of additive manufacturing (AM) has been increasingly studie...
Additive manufacture (AM) appears to be the most suitable technology to produce sophisticated, high ...
Additive manufacture (AM) appears to be the most suitable technology to produce sophisticated, high ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
cited By 3International audienceAs-built Ti-6Al-4 V thin parts were manufactured using Electron Beam...
cited By 3International audienceAs-built Ti-6Al-4 V thin parts were manufactured using Electron Beam...
Powder bed additive manufacturing of titanium components offers several advantages. The high freedom...
With the demand of devices to replace or improve areas, such as: electronic, biomedical and aerospac...
Additive manufacturing (AM) is an advanced manufacturing technique whose uptake within the aerospace...
The application of additively manufactured titanium components is attractive due to a number of pote...
Electron beam melting (EBM), a technique of additive manufacturing (AM) has been increasingly studie...
Additive manufacture (AM) appears to be the most suitable technology to produce sophisticated, high ...
Additive manufacture (AM) appears to be the most suitable technology to produce sophisticated, high ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
The Electron Beam Melting (EBM) is an Additive Layer Manufacturing (ALM) technique used to directly ...
cited By 3International audienceAs-built Ti-6Al-4 V thin parts were manufactured using Electron Beam...
cited By 3International audienceAs-built Ti-6Al-4 V thin parts were manufactured using Electron Beam...
Powder bed additive manufacturing of titanium components offers several advantages. The high freedom...
With the demand of devices to replace or improve areas, such as: electronic, biomedical and aerospac...