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contributor authorJamshidinia, Mahdi
contributor authorKong, Fanrong
contributor authorKovacevic, Radovan
date accessioned2017-05-09T01:00:40Z
date available2017-05-09T01:00:40Z
date issued2013
identifier issn1087-1357
identifier othermanu_135_06_061010.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/152421
description abstractElectron beam meltingآ® (EBM) is one of the fastest growing additive manufacturing processes capable of building parts with complex geometries, made predominantly of Tialloys. Providing an understanding of the effects of process parameters on the heat distribution in a specimen built by EBMآ®, could be the preliminary step toward the microstructural and consequently mechanical properties control. Numerical modeling is a useful tool for the optimization of processing parameters, because it decreases the level of required experimentation and significantly saves on time and cost. So far, a few numerical models are developed to investigate the effects of EBMآ® process parameters on the heat distribution and molten pool geometry. All of the numerical models have ignored the material convection inside the molten pool that affects the real presentation of the temperature distribution and the geometry of molten pool. In this study, a moving electron beam heat source and temperature dependent properties of Ti6Al4V were used in order to provide a 3D thermalfluid flow model of EBMآ®. The influence of process parameters including electron beam scanning speed, electron beam current, and the powder bed density were studied. Also, the effects of flow convection in temperature distribution and molten pool geometry were investigated by comparing a purethermal with the developed thermalfluid flow model. According to the results, the negative temperature coefficient of surface tension in Ti6Al4V was responsible for the formation of an outward flow in the molten pool. Also, results showed that ignoring the material convection inside the molten pool resulted in the formation of a molten pool with narrower width and shorter length, while it had a deeper penetration and higher maximum temperature in the molten pool. Increasing the powder bed density was accompanied with an increase in the thermal conductivity of the powder bed that resulted in a reduction in the molten pool width on the powder bed top surface. Experimental measurements of molten pool width and depth are performed to validate the numerical model.
publisherThe American Society of Mechanical Engineers (ASME)
titleNumerical Modeling of Heat Distribution in the Electron Beam Meltingآ® of Ti 6Al 4V
typeJournal Paper
journal volume135
journal issue6
journal titleJournal of Manufacturing Science and Engineering
identifier doi10.1115/1.4025746
journal fristpage61010
journal lastpage61010
identifier eissn1528-8935
treeJournal of Manufacturing Science and Engineering:;2013:;volume( 135 ):;issue: 006
contenttypeFulltext


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