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AbstractAbstract
[en] The convection mixing model is proposed for low-energy high-current electron beam treatment of titanium alloys, pre-processed by heterogeneous plasma flows generated via explosion of carbon tape and powder TiB2. The model is based on the assumption vortices in the molten layer are formed due to the treatment by concentrated energy flows. These vortices evolve as the result of thermocapillary convection, arising because of the temperature gradient. The calculation of temperature gradient and penetration depth required solution of the heat problem with taking into account the surface evaporation. However, instead of the direct heat source the boundary conditions in phase transitions were changed in the thermal conductivity equation, assuming the evaporated material takes part in the heat exchange. The data on the penetration depth and temperature distribution are used for the thermocapillary model. The thermocapillary model embraces Navier-Stocks and convection heat transfer equations, as well as the boundary conditions with the outflow of evaporated material included. The solution of these equations by finite elements methods pointed at formation of a multi-vortices structure when electron-beam treatment and its expansion over new zones of material. As the result, strengthening particles are found at the depth exceeding manifold their penetration depth in terms of the diffusion mechanism. (paper)
Source
12. international conference radiation-thermal effects and processes in inorganic materials; Tomsk (Russian Federation); 4-12 Sep 2016; Available from http://dx.doi.org/10.1088/1757-899X/168/1/012031; Country of input: International Atomic Energy Agency (IAEA)
Record Type
Journal Article
Literature Type
Conference
Journal
IOP Conference Series. Materials Science and Engineering (Online); ISSN 1757-899X;
; v. 168(1); [6 p.]

Country of publication
ALLOYS, BEAMS, BORIDES, BORON COMPOUNDS, DIFFERENTIAL EQUATIONS, ENERGY TRANSFER, EQUATIONS, HEAT TRANSFER, LEPTON BEAMS, MASS TRANSFER, PARTIAL DIFFERENTIAL EQUATIONS, PARTICLE BEAMS, PHYSICAL PROPERTIES, THERMODYNAMIC PROPERTIES, TITANIUM COMPOUNDS, TRANSITION ELEMENT ALLOYS, TRANSITION ELEMENT COMPOUNDS
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