Ti6Al4V parts produced by electron beam melting: analysis of dimensional accuracy and surface roughness
R Borrelli, S Franchitti, C Pirozzi, L Carrino… - Journal of Advanced …, 2020 - World Scientific
Journal of Advanced Manufacturing Systems, 2020•World Scientific
Additive manufacturing (AM), applied to metal industry, is a family of processes that allows
complex shape components to be realized from raw materials in the form of powders.
Electron beam melting (EBM) is a relatively new additive manufacturing (AM) technology.
Similar to electron-beam welding, EBM utilizes a high-energy electron beam as a moving
heat source to melt metal powder, and 3D parts are produced in a layer-building fashion by
rapid self-cooling. By EBM, it is possible to realize metallic complex shape components, eg …
complex shape components to be realized from raw materials in the form of powders.
Electron beam melting (EBM) is a relatively new additive manufacturing (AM) technology.
Similar to electron-beam welding, EBM utilizes a high-energy electron beam as a moving
heat source to melt metal powder, and 3D parts are produced in a layer-building fashion by
rapid self-cooling. By EBM, it is possible to realize metallic complex shape components, eg …
Additive manufacturing (AM), applied to metal industry, is a family of processes that allows complex shape components to be realized from raw materials in the form of powders. Electron beam melting (EBM) is a relatively new additive manufacturing (AM) technology. Similar to electron-beam welding, EBM utilizes a high-energy electron beam as a moving heat source to melt metal powder, and 3D parts are produced in a layer-building fashion by rapid self-cooling. By EBM, it is possible to realize metallic complex shape components, e.g. fine network structures, internal cavities and channels, which are difficult to make by conventional manufacturing means. This feature is of particular interest in titanium industry in which numerous efforts are done to develop near net shape processes. In the field of mechanical engineering and, in particular, in the aerospace industry, it is crucial for quality certification purpose that components are produced through qualified and robust manufacturing processes ensuring high product repeatability. The contribution of the present work is to experimentally identify the EBM job parameters (sample orientation, location of the sample in the layer and height in the build chamber) that influence the dimensional accuracy and the surface roughness of the manufactured parts in Ti6Al4V. The repeatability of EBM is investigated too.
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