4.7 Article

Superplasticity behavior and deformation mechanism of the in-situ Al3Zr/6063Al composites processed by friction stir processing

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 710, Issue -, Pages 225-233

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2017.03.246

Keywords

In-situ aluminum composites; Friction stir processing; High-strain-rate superplasticity; Deformation mechanism

Funding

  1. Natural Science Foundation of China [U1664254, 51174098]
  2. Natural Science Foundation for Young of Jiangsu Province, China [BK20160516]
  3. Special Research Foundation of Doctoral Program in institutions of higher learning [20133227110023]
  4. Research Foundation for Advanced Talents of Jiangsu University, China [14JDG125]
  5. Postdoctoral Science Foundation of Jiangsu Province, China [1501029B]
  6. Postdoctoral Science Foundation of China [2016M591780]

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In this study, in-situ 5 wt % Al3Zr/60063Al composites were fabricated by direct melt reaction method and subjected to forging and friction stir processing (FSP) to achieve high-strain-rate superplasticity of the composites. Analysis determination technics of XRD, OM, SEM, TEM and high-temperature tensile tests were employed to study the microstructure, superplasticity property and deformation mechanism of the fabricated composites. The results show that the average grain size of the fabricated composites is less than 2 mu m after the processing of forging and FSP. And the composites exhibited superplasticity at the temperature of 400 degrees C-550 degrees C with initial strain rate of 1.0 x 10(-3) s(-1) to 1.0 x 10(-1) s(-1). Especially, the elongation could reach the maximum value of 330%, with a strain rate sensitive exponent (m) of 0.45, initial strain rate of 1.0 x 10(-2) s(-1) and deformation temperature of 500 degrees C. Meanwhile, the strain rate sensitivity exponent was calculated to be 0.29-0.45 and the activation energy was 99.51-121.28 kJ/ma which indicates that the key deformation mechanism of the composites was grain boundary sliding (GBS) accommodated by dislocation slip. Furthermore, the structure analysis of the composites shows that the FSP composites exhibits higher dislocation density (1.42 x 10(15) m(-2)) than the as-cast composites (6.6 x 10(14) m(-2)), which is benefit to the dislocation slip and grain coarsening, i.e. a useful softening mechanism of the composites to avoid quick work hardening during the high-strain-rate deformation. (C) 2017 Elsevier B.V. All rights reserved.

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