[1] S. Belboom, C. Szöcs, A. Léonard, Environmental impacts of phosphoric acid production using di-hemihydrate process:A Belgian case study, J. Clean. Prod. 108(2015) 978-986. [2] Q. Liu, W. Liu, L. Lv, et al., Study on reactions of gaseous P2O5 with Ca3(PO4)2 and SiO2 during a rotary kiln process for phosphoric acid production, Chin. J. Chem. Eng. 26(2018) 795-805. [3] X. Bai, S. Zeng, Progress of technological development for phosphoric acid production, Sulphur Phosphorus & Bulk Materials Handling Related, Engineering 5(2006) 1-5. (in Chinese) [4] L. C. JR, Treatment of Phosphoric Acid, Process, Apparatus and Product, US Pat., US3649175, (1972). (in Chinese) [5] J. C. Barber, Processes and Equipment for Production of Elemental Phosphorus and Thermal Phosphoric Acid, US Pat, US4919906, (1990). [6] T. A. Hendrickson, Production of Ortho Phosphoric Acid, US Pat., US3341289, (1967). [7] J. Mu, F. Leder, W.C. Park, R.A. Hard, J. Megy, H. Reiss, Reduction of phosphate ores by carbon:Part I. Process variables for design of rotary kiln system, Metall. Trans. B 17(4) (1986) 861-868. [8] F. Leder, H. Reiss, J. Mu, J. Megy, R.A. Hard, W.C. Park, Reduction of phosphate ore by carbon:Part II, Rate Limiting Steps, Metallurgical Transactions B 17(4) (1986) 869-877. [9] D. B. Blake, J. A. Megy, S. A. Pachpor, L. M. Handman, T. P. Fowler, J. A. Trainham, M. Vignovic, Phosphorous Pentoxide Producing Methods and Systems With Increased Agglomerate Compression Strength, US Pat., US20160090305, (2016). [10] J. A. Megy, Phosphorous pentoxide producing methods and phosphate ore feed agglomerates, US Pat., US8734749B2, (2014). [11] J. A. Megy, Phosphorous pentoxide producing methods, US Pat., US7910080, (2011). [12] W. C. Saeman, Phosphorus Recovery Feed Control Method, US Pat., US3558114, (1971). [13] M.L. Yan, Analysis on production technology of kiln-method phosphoric acid, Phosphate& Compound Fertilizer 25(3) (2010) 32-35. (in Chinese) [14] J. A. Megy, R. A. Hard, Process for reducing phosphate ore. US Pat., US 4351809, (1982). [15] S. Deng, B. Liang, C. Li, L. Lü, P. Wu, Y. Qiu, L. Wang, Research progress of kiln phosphoric acid process, Chemical Industry and Engineering Progress 31(7) (2012) 1402-1406. (in Chinese) [16] H. Yang, C. Li, B. Liang, P. Wu, Y. Qiu, L. Lv, Thermodynamics of kiln-process phosphoric acid, Chemical Reaction Engineering and Technology 27(6) (2011) 543-549. (in Chinese) [17] T.Y. Tien, The System SiO2-P2O5, Journal of the American Ceramic Society 45(9) (2010) 422-424. [18] G. Baret, R. Madar, C. Bernard, Silica-based oxide systems I. Experimental and calculated phase Equilibria in silicon, boron, phosphorus, germanium, and arsenic oxide mixtures, Journal of Electrochemical Society 138(9) (1991) 2830-2835. [19] M. Rahman, P. Hudon, In-ho Jung, a coupled experimental study and thermodynamic modeling of the SiO2-P2O5 system, Metallurgical & Materials Transactions B 44(4) (2013) 837-852. [20] W. Gutt, High-temperature phase equilibria in the system 2CaO·SiO2 -·3-CaO·P2O5·CaO, Nature 197(1963) 142-143. |