N. Kanari, A Study of the Kinetics of Chlorine-Solid Reactions; Defense of the Habilitation Diploma (HDR), 2000.

W. Zhang, Z. Zhu, and C. Y. Cheng, A literature review of titanium metallurgical processes, Hydrometallurgy, vol.108, pp.177-188, 2011.

N. Kanari, I. Filippova, F. Diot, J. Mochón, I. Ruiz-bustinza et al., Utilization of a waste from titanium oxide industry for the synthesis of sodium ferrate by gas-solid reactions, Thermochim. Acta, vol.575, pp.219-225, 2014.
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P. Huang, S. Deng, Z. Zhang, X. Wang, X. Chen et al., A sustainable process to utilize ferrous sulfate waste from titanium oxide industry by reductive decomposition reaction with pyrite, Thermochim. Acta, vol.620, pp.18-27, 2015.

N. Kanari, O. Ostrosi, N. Ninane, N. Neveux, and O. Evrard, Synthesizing alkali ferrates using a waste as a raw material, JOM, vol.57, pp.39-42, 2005.

N. Kanari, Method of Producing Ferrates (VI). French Patent n ? 2 905 609, 2008.

Y. Wei, Y. Wang, and C. Liu, Preparation of potassium ferrate from spent steel pickling liquid, vol.5, pp.1770-1787, 2015.

A. Pineau, N. Kanari, and I. Gaballah, Kinetics of reduction of iron oxides by H 2 : Part I: Low temperature reduction of hematite, Thermochim. Acta, vol.447, pp.89-100, 2006.
URL : https://hal.archives-ouvertes.fr/hal-01507352

W. K. Jozwiak, E. Kaczmarek, T. P. Maniecki, W. Ignaczak, and W. Maniukiewicz, Reduction behavior of iron oxides in hydrogen and carbon monoxide atmospheres, Appl. Catal. A, vol.326, pp.17-27, 2007.

A. Pineau, N. Kanari, and I. Gaballah, Kinetics of reduction of iron oxides by H 2 : Part II. Low temperature reduction of magnetite, Thermochim. Acta, vol.456, pp.75-88, 2007.
URL : https://hal.archives-ouvertes.fr/hal-01507348

J. Tang, M. S. Chu, Z. W. Ying, F. Li, C. Feng et al., Non-isothermal gas-based direct reduction behavior of high chromium vanadium-titanium magnetite pellets and the melting separation of metallized pellets, vol.7, p.153, 2017.

Y. Cao, Y. Zhang, and T. Sun, Dephosphorization behavior of high-phosphorus oolitic hematite-solid waste containing carbon briquettes during the process of direct reduction-magnetic separation, vol.8, 2018.

J. Oh and D. Noh, The reduction kinetics of hematite particles in H 2 and CO atmospheres, vol.196, pp.144-153, 2017.

Z. Chen, J. Dang, X. Hu, and H. Yan, Reduction kinetics of hematite powder in hydrogen atmosphere at moderate temperatures, vol.8, p.751, 2018.

H. Tang, Z. Yun, X. Fu, and S. Du, Modeling and experimental study of ore-carbon briquette reduction under CO-CO 2 atmosphere, vol.8, p.205, 2018.

J. Fukushima and H. Takizawa, In situ spectroscopic analysis of the carbothermal reduction process of iron oxides during microwave irradiation, vol.8, p.49, 2018.

N. Kanari, D. Mishra, L. Filippov, F. Diot, J. Mochón et al., Kinetics of hematite chlorination with Cl 2 and Cl 2 +O 2 : Part I. Chlorination with Cl 2, Thermochim. Acta, vol.497, pp.52-59, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00413659

N. Kanari, D. Mishra, L. Filippov, F. Diot, J. Mochón et al., Kinetics of hematite chlorination with Cl 2 and Cl 2 +O 2 . Part II. Chlorination with Cl 2 +O 2, Thermochim. Acta, vol.506, pp.34-40, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00413659