Nanostructured scheelite (CaWO4) was synthesized by calcination in air of enriched wolframite (Fe1-xMnxWO4) ore and calcium carbonate (CaCO3). The effects of process parameters such as milling conditions of the solid reactants, calcination in flowing or static air, and use of stoichiometric excess of calcium carbonate on wolframite conversion into scheelite were studied by X-Ray Diffraction (XRD) and field emission gun scanning electron microscopy (FEG SEM). The intimate mixing and associated decrease in the diffusion path by high-energy planetary ball milling (PBM) were responsible for the conversion of most of wolframite into nanostructured scheelite after 2 h at 600 °C, with no need of calcium carbonate stoichiometric excess. Complete co...
An evaluation of calcium tungsten oxide (CaWO<sub>4</sub>) nanoparticles’ properties was conducted u...
Production of nanostructured WC powders is regarded with difficulties related to excessive crystalli...
Pure scheelite (CaWO4) and carbon black mixtures, containing either 0–6 wt% cobalt or 0–2 wt% nickel...
Nanostructured scheelite (CaWO4) was synthesized by calcination in air of enriched wolframite (Fe1-x...
Nanostructured scheelite (CaWO4) was synthesized directly from enriched wolframite (Fe1-xMnxWO4) ore...
Mixtures of scheelite and graphite or carbon black, with different CaWO4:C weight ratios, have been ...
A mixture of scheelite and magnesium has been mechanically milled together for 100 h, either with gr...
A series of tungstate scheelite structured MWO 4 (M=Ca, Sr, Pb and Ba) were synthesised using the su...
Mixtures of scheelite and carbon black, with different CaWO4:C weight ratios were prepared using eit...
Pure scheelite (CaWO4) and carbon black mixtures, containing 0 or 2 wt% cobalt or nickel were prepar...
A mixture of graphite and scheelite (CaWO4) have been mechanically milled together for 40 h. The res...
A mixture of scheelite and magnesium was mechanically milled for 100 h in an inert atmosphere. The r...
Tungsten minerals scheelite CaWO4 and ferberite FeWO4 (or wolframite (Fe,Mn)WO4) are met in nature i...
An evaluation of calcium tungsten oxide (CaWO<sub>4</sub>) nanoparticles’ properties was conducted u...
Production of nanostructured WC powders is regarded with difficulties related to excessive crystalli...
Pure scheelite (CaWO4) and carbon black mixtures, containing either 0–6 wt% cobalt or 0–2 wt% nickel...
Nanostructured scheelite (CaWO4) was synthesized by calcination in air of enriched wolframite (Fe1-x...
Nanostructured scheelite (CaWO4) was synthesized directly from enriched wolframite (Fe1-xMnxWO4) ore...
Mixtures of scheelite and graphite or carbon black, with different CaWO4:C weight ratios, have been ...
A mixture of scheelite and magnesium has been mechanically milled together for 100 h, either with gr...
A series of tungstate scheelite structured MWO 4 (M=Ca, Sr, Pb and Ba) were synthesised using the su...
Mixtures of scheelite and carbon black, with different CaWO4:C weight ratios were prepared using eit...
Pure scheelite (CaWO4) and carbon black mixtures, containing 0 or 2 wt% cobalt or nickel were prepar...
A mixture of graphite and scheelite (CaWO4) have been mechanically milled together for 40 h. The res...
A mixture of scheelite and magnesium was mechanically milled for 100 h in an inert atmosphere. The r...
Tungsten minerals scheelite CaWO4 and ferberite FeWO4 (or wolframite (Fe,Mn)WO4) are met in nature i...
An evaluation of calcium tungsten oxide (CaWO<sub>4</sub>) nanoparticles’ properties was conducted u...
Production of nanostructured WC powders is regarded with difficulties related to excessive crystalli...
Pure scheelite (CaWO4) and carbon black mixtures, containing either 0–6 wt% cobalt or 0–2 wt% nickel...