The Effect of the Order of Reagent Addition on the Settling Rate of Aluminium Hydroxide in the Al(III)-Na2CO3 System

Birsen Demirata1, Reşat Apak2, Gülcin Gümüs1, Hüseyin Afsar3
1Faculty of Science and Letters, Istanbul Technical University, Maslak, Istanbul, Turkey
2Faculty of Engineering, Istanbul University, Avcilar, Istanbul, Turkey
3Faculty of Science and Letters, Yildiz Technical University, Sisli, Istanbul, Turkey

Tóm tắt

The effects of several factors on the settling rate of aluminiumhydroxide were investigated during chemical coagulation using aluminium salts. Experimental variables were pH, aluminium (III) concentration and the order of addition of reagents. Experiments were carried out at pH 5–8 and rapid settling was achieved when aluminium (III) solutions were added to Na2CO3 solutions near neutral pH, close to the minimumsolubility pH of Al(OH)3. For a narrow range of total Al concentration where Al(III) species were supersaturated with respect to the solid phase, Al(III)-added-to-carbonate type mixtures yielded a higher settling rate than mixtures obtainedby the reverse order of reagent addition. The results were interpreted by comparing the rates of formation of polymer andsolid (amorphous Al(OH)3) phases. It was concluded that Al(III) coagulants should be added to water containing natural or artificially incorporated carbonate alkalinity for rapid settling of Al(OH)3 flocs.

Từ khóa


Tài liệu tham khảo

Amirtharajah, A. and Mills, K. M.: 1982, ‘Rapid-mix Dosing for Mechanisms of Alum Coagulation’, J. Am. Water Works Assoc. 74, 210–216. Apak, R.: 1997, Basic Analytical Chemistry, 2nd ed., (a text book of 640 p, in Turkish), Istanbul University Publ., Istanbul. Baes, C. F. and Mesmer, R. E.: 1976, The Hydrolysis of Cations, Wiley-Interscience, New York, pp. 112–120. Clark, M. M. Srivastava, R. M. and David, R.: 1993, ‘Mixing and Aluminum Precipitation’, Environ. Sci. Technol. 27, 2181–2189. Dempsey, B. A.: 1984, ‘Removal of Naturally Occuring Compounds by Coagulation and Sedimentation’, CRC Crit. Rev. 14, 311–331. Edwards, M.: 1997, ‘Predicting DOC Removal During Enhanced Coagulation, J. Am. Water Works Assoc. 89, 78–89. Faust, S. D. and McWharter, J. G.: 1976, ‘Water Chemistry’, in H. W. Gehm and J. I. Bregman (eds.), Handbook of Water Resources and Pollution Control, Van Nostrand-Reinhold, New York, pp. 84–131. Gray, K. A., Yao, C. and O'Melia, C. R.: 1995, ‘Inorganic Metal Polymers: Preparation and Characterization’, J. Am. Water Works Assoc. 87, 136–146. Hahn, H. H. and Stumm, W.: 1968, ‘Kinetics of Coagulation with Hydrolyzed Al(III): The Rate-determining Step’, J. Colloid Interface Sci. 28, 134–138. Kumru, S. S. and Bale, H. D.: 1994, ‘Aggregation in Aluminium Hydroxide Solutions Investigated by Small-angle X-ray Scattering’, J. Appl. Cryst. 27, 682–692. Kuo, C. J., Amy. G. L. and Bryant, C. W.: 1988, ‘Factors Affecting Coagulation with Aluminium Sulfate’, Water Res. 22, 853–862. Matijevic, E., Mathai, K. G., Ottewill, R. H. and Verker, M.: 1961, ‘Detection of Metal Ion Dydrolysis by Coagulation of Aluminium(III)’, J. Phys. Chem. 65, 826–830. Matsui, Y., Yuasa, A., Furuya, Y. and Kamei, T.: 1998, ‘Dynamic Analysis of Coagulation with Alum and PACl’, J. Am. Water Works Assoc. 90, 96–106. O'Melia, C. R.: 1972, ‘Coagulation and Flocculation’, in W. J. Weber Jr. (ed.), Physicochemical Processes for Water Quality Control, Wiley-Interscience, New York. O'Melia, C. R.: 1978, ‘Coagulation in Wastewater Treatment’, in K. J. Ives (ed.), The Scientific Basis of Flocculation’ NATO Adv. Study Inst. Series, Sijthoff and Noordhoff, Alphen aan den Rijn, The Netherlands, pp. 219–268. Parker, D. R. and Bertsch, P. M.: 1992, ‘Formation of the ‘Al13’ Tri Decameric Polycation under Diverse Synthesis Conditions’, Environ. Sci. Technol. 26, 914–921. Parthasarathy, N. and Buffle, J.: 1985, ‘Study of Polymeric Aluminium (III) Hydroxide Solutions for Application in Waste Water Treatment: Properties of the Polymer and Optimal Conditions of Preparation’, Water Res. 19, 25–30. Rossini, M., Garrido, J. G. and Galluzzo, M.: 1999, ‘Optimization of the Coagulation - Flocculation Treatment: Influence of Rapid Mix Parameters’, Water Res. 33, 1817–1826. Snodgrass, W. J., Clark, M. M. and O'Melia, C. R.: 1984, ‘Formation and Growth in Dilute Aluminum(III) Solution’, Water. Res. 18, 79–88. Sullivan, J. H. and Singley, J. E.: 1968, ‘Reactions of Metal Ions in Dilute Aqueous Solution: Hydrolysis of Aluminium’, J. Am. Water Works Assoc. 60, 1280–1287. Tchoubar, D.: 1991, ‘Partial Hydrolysis of Ferric Chloride Salt. Structural Investigation by Photon-correlation Spectroscopy and Small-angle X-ray Scattering, Langmuir 7, 398–402. Vermeulen, A. C. and De Bruyn, P. L.: 1975, ‘Hydrolysis-precipitation Studies of Aluminium(III) Solutions. 1. Titration of Acidified Aluminium Nitrate Solutions, J. Colloid Interface Sci. 51, 449–455. White, M. C., Thompson, J. D., Harrington, G. W. and Singer, P. C.: 1997, ‘Evaluation Criteria for Enhanced Coagulation Compliance’, J. Am. Water Works Assoc. 89, 64–77. Wiese, G. R. and Healy, T. W.: 1975a, ‘Coagulation and Electrokinetic Behaviour of TiO2 and Al2O3 Colloidal Dispersions’, J. Colloid Interface Sci. 51, 427–433. Wiese, G. R. and Healy, T. W.: 1975b, ‘Stability Effects in Al2O3 and TiO2 Colloidal Dispersions’, J. Colloid Interface Sci. 52, 452–458. Wood, T.: 1990, Sol-Gel Science: The Physics and Chemistry of Sol-Gel Processing, in C.J. Brinker and G. W. Scherer (eds.), Academic Press, San Diego, pp. 64–65. Yao, C. and O'Melia, C. R.: 1989, ‘Comparison of Aluminium Preparations as Coagulation in Water Treatment’, Aqua 38, 339–343.