open access publication

Article, 2020

Thermal Properties of Selectively Laser-Melted AlSi10Mg Products with Different Densities

Journal of Materials Engineering and Performance, ISSN 1544-1024, 1059-9495, Volume 29, 11, Pages 7125-7130, 10.1007/s11665-020-05192-z

Contributors

Martínez-Maradiaga, David 0000-0002-9866-0669 [1] Mishin, Oleg V 0000-0002-2669-3453 [1] Engelbrecht, Kurt Luther 0000-0002-3713-9415 (Corresponding author) [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

The thermal diffusivity and thermal conductivity of selectively laser-melted AlSi10Mg samples with different target relative densities, 99 and 99.5%, have been studied in the temperature range from 25 to 400 °C. The properties were measured in the build direction and orthogonal to the build direction, for the samples in the as-built and heat-treated conditions. The 99.5% dense samples are characterized by a noticeably higher thermal diffusivity and higher thermal conductivity than the 99% dense samples. For each sample, it is found that the applied heat treatment improves the thermal diffusivity and thermal conductivity of the as-built material, but also results in pronounced anisotropy, with greater thermal diffusivity and conductivity in the build direction, especially for the 99.5% dense sample. The anisotropy is attributed to the presence of Si particles along the grain boundaries of columnar grains. Since the columnar grains are elongated along the build direction, a smaller spacing between particle-decorated boundaries in the plane perpendicular to the build direction presents a higher resistance to the heat conduction.

Keywords

AlSi10Mg, AlSi10Mg samples, Si particles, anisotropy, as-built, as-built material, boundaries, boundaries of columnar grains, columnar grains, conditions, conductivity, dense samples, density, diffusion, direction, grain, grain boundaries, grain boundaries of columnar grains, heat, heat conduction, heat treatment, heat-treatment conditions, high thermal conductivity, materials, particles, perpendicular, plane, plane perpendicular, presence, presence of Si particles, production, properties, range, relative density, resistance, samples, space, target, target relative density, temperature, temperature range, thermal conductivity, thermal diffusivity, thermal properties, treatment

Funders

  • Danish Agency for Science and Higher Education

Data Provider: Digital Science