4.7 Article

Effects of direct reduction process on the microstructure and reduction characteristics of carbon-bearing nickel laterite ore pellets

Journal

POWDER TECHNOLOGY
Volume 376, Issue -, Pages 496-506

Publisher

ELSEVIER
DOI: 10.1016/j.powtec.2020.08.059

Keywords

Nickel laterite ore; Microstructure; Reduction; Compressive strength; Metallization rate

Funding

  1. National Key R&D Program of China [2017YFB0603800 2017YFB0603802]
  2. National Natural Science Foundation of China [51604049]

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A coal-based direct reduction process was used to recover the ferronickel from low-grade nickel laterite ore. The effects of basicity on the compressive strength, metallization rate, microstructure, and reduction characteristics of carbon-bearing nickel laterite ore pellets were investigated. The results show that the metallization rate of iron and the compressive strength of metallized pellets follow a parabolic function with increasing basicity. The optimal reduction temperature of the rotary kiln should be controlled at 1150 degrees C to 1250 degrees C with pellet basicity of 056 to prevent the ring-forming phenomenon. Under optimum process conditions, the metallized pellets mainly consist of ferronickel ([Fe,Ni ]), forsterite ferroan (Mg1.38Fe0.6Ca0.01SiO4), and pigeonite ((Ca0.06Mg0.68Fe0.26)SiO3). The particle size of ferronickel can reach to 30 mu m with a high nickel-chromium concentrations. The compressive strength of metallized pellets is 5220 to 7223 N.Pellet(-1), and the metallization rates of iron and nickel are 95.28% to 98.45%, 94.75 to 96.33%, respectively. (C) 2020 Elsevier B.V. All rights reserved.

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