The Effect of Reductor Type in Thermal Upgrading of Limonite

Author:

Bahfie Fathan1,Manaf Azwar2,Astuti Widi1,Nurjaman Fajar1,Prasetyo Erik3

Affiliation:

1. National Research and Innovation Agency of Indonesia

2. University of Indonesia

3. Norwegian University of Science and Technology

Abstract

Thermal upgrading is the process for nickel extraction in selective reduction with holding temperature in low (300-500 °C). The effect and type of reductor are the main factor during this process. With those factors, this research will be finding the variation of reductor type. The first step is limonite and reductor characterization. Ni, Fe, Mg, Al, and Si levels in limonite are 1.4 Ni, 50.5 Fe, 1.81 Al, 4.86 Mg, and 16.5 Si weight percent, respectively. The iron oxide/oxyhydroxide content of limonite is 94.4 percent and 5.6 percent silicate. For reductor, those are graphite, palm kernel shell, and anthracite with carbon percentage 98, 77, and 68 %. From XRF, the optimum nickel grade is in the graphite and anthracite with 6.5 and 7 wt%. For phases, the ferronickel is appearing in the high intensity for the optimum reductor type and the microstructure is around 5-10 um for both. Moreover, the optimum reductor type are graphite and anthracite. Keyword: reductor type, limonite, phase, microstructure, thermal upgrading.

Publisher

Trans Tech Publications, Ltd.

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference22 articles.

1. Nickel Laterite Ore Deposits: Weathered Serpentinites;Butt;Elements,2013

2. Microwave heating behaviour of nickeliferous limonitic laterite ores;Pickles;Minerals Engineering

3. Kyle. 2010. Nickel Laterite Processing Technologies – Where To Next?, In ALTA 2010 Nickel/Cobalt/Copper Conference, 24-27 May, Perth, Western Australia.

4. Carbothermic Reduction of Nickeliferous Laterite Ores for Nickel Pig Iron Production in China: A Review;Rao;JOM,2013

5. Factors Affecting the Upgrading of a Nickeliferous Limonitic Laterite Ore by Reduction Roasting, Thermal Growth and Magnetic Separation;Rodrigues;Minerals,2017

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