4.7 Article

Effects of tensile loading direction on the mechanical properties and deformation behavior of columnar-grained HAl77-2 aluminum brass

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2016.06.009

关键词

HAl77-2 aluminum brass; Mechanical property; Strain hardening; Anisotropy

资金

  1. National Key Technology R&D Program of China [2011BAE23B00]
  2. National Natural Science Foundation of China [51104016]
  3. State Key Laboratory of Advanced Technologies for Comprehensive Utilization of Platinum Metals [SKL-SPM-201204]
  4. Fundamental Research Funds for the Central Universities [FRF-TP-14-028A1]

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Columnar-grained HAl77-2 aluminum brass ingot was fabricated by directional solidification method, and the tensile samples were then cut from the ingot along the different angles (0 degrees, 15 degrees, 30 degrees, 45 degrees, 60 degrees, 75 degrees and 90 degrees) between the loading direction and the grain growing direction. The effects of the loading direction on the mechanical properties, strain hardening behavior and deformation mechanism of the alloy were investigated. The samples with the angles of 0-30 degrees deformed mainly by dislocation planar slip mechanism during tensile deformation, showing low flow stress, uniform intragranular deformation and excellent plasticity, e.g., their elongations to failure were more than 80.0%. A number of deformation bands or intercrossed low-angle subgrain boundaries formed in the 45-90 degrees samples during deformation, with high strain concentration inside the grains, which caused low plasticity, e.g. the elongations to failure were 62.9-65.2%. High density of dislocations, dense Lomer-Cottrell locks and geometrical hardening mainly contributed to the higher strain hardening rate and tensile strength of the 45 degrees and 60 degrees samples than those of the other samples. In order to obtain columnar-grained HAl77-2 alloy with excellent cold workability, it is supposed to control the angle between columnar grain growing direction and main extension deformation direction in a range of 0-30 degrees by the directional solidification technology. (C) 2016 Elsevier B.V. All rights reserved.

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