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Thermo- and Mechanochemical Reduction of Ilmenite with H₂, Mg, and CaH₂
Journal article   Open access   Peer reviewed

Thermo- and Mechanochemical Reduction of Ilmenite with H₂, Mg, and CaH₂

Alexander Haack, Nigel T. Lucas and Claudio Pistidda
Journal of sustainable metallurgy
16/05/2026
Handle:
https://hdl.handle.net/10523/51056

Abstract

Ilmenite reduction hydrogen storage ball milling synchotron TiFe alloy
Ilmenite is an abundant raw material with a general composition of FeTiO₃, mainly used as ore for TiO₂ production, which, among other applications, is used to produce titanium metal. This paper focuses on the direct reduction of ilmenite to iron–titanium alloys via thermochemical or mechanochemical processes. These processes were carried out in the presence of reducing agents such as magnesium, calcium, and gaseous hydrogen, as well as the combination of magnesium or calcium in a hydrogen atmosphere. The mixture of ilmenite and the reducing agents was ball milled for 80 h at 350 rpm and analyzed via X-ray powder diffraction (XRPD). The influence of particle size, by necessity reduced during the milling process, on the reduction is investigated via thermal analysis [differential thermal analysis (DTA) and differential scanning calorimetry (DSC)]. Additionally, the thermochemical reduction path is investigated via in situ synchrotron radiation XRPD. In this study, the mechanochemical reduction with magnesium and the thermochemical reduction with calcium yielded the highest conversion yield of ilmenite into iron–titanium alloy, forming primarily TiFe₂ and small amounts of TiFe. TiFe is a promising hydrogen storage material. All runs were deficient in Ti after the reduction, as calculated by XRPD Rietveld refinement, which suggests the formation of an additional amorphous Ti–rich phase.
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Published (Version of record) Open Access CC BY V4.0
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https://doi.org/10.1007/s40831-026-01531-xView
Published (Version of record) Open CC BY V4.0

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