[1] C.H. Li, P.F.S. Hi, Treatment of 2-naphthalenesulfonic acid wastewater by the weakl ybasic resin, Chem. Eng. J. 29(6) (2001) 42-45.[2] D.M. Jia, C.H. Li, B.L. Zhao, S. Sun, Studies on the adsorption of 2-naphthalenesulfonic acid on basic resin from effluents, J. Chem. Eng. Data 55(2010) 5801-5806.[3] Y.L. Zhang, X.J. Yu, Q.L.Wang, Z.J. Jiang, T. Fang, Adsorption of zinc onto anionic ionexchange resin from cyanide barren solution, Chin. J. Chem. Eng. 23(4) (2015) 646-651.[4] M. Szlachta, V. Gerda, N. Chubar, Adsorption of arsenite and selenite using an inorganic ion exchanger based on Fe-Mn hydrous oxide, J. Colloid Interface Sci. 365(2012) 213-221.[5] X. Ling, H.B. Li, H.W. Zha, C.L. He, J.H. Huang, Polar-modified post-cross-linked polystyrene and its adsorption towards salicylic acid fromaqueous solution, Chem. Eng. J. 286(2016) 400-407.[6] X.F. Jiang, J.H. Huang, Adsorption of Rhodamine B on two novel polar-modified postcross-linked resins:Equilibrium and kinetics, J. Colloid Interface Sci. 467(2016) 230-238.[7] G.Q. Xiao, R.M. Wen, Comparative adsorption of glyphosate from aqueous solution by 2-aminopyridine modified polystyrene resin, D301 resin and 330 resin:Influencing factors, salinity resistance and mechanism, Fluid Phase Equilib. 411(2016) 1-6.[8] Z.W. Zhao, J.L. Zhang, X.Y. Chen, X.H. Liu, J.T. Li, W.G. Zhang, Separation of tungsten and molybdenum using macroporous resin:Equilibrium adsorption for single and binary systems, Hydrometallurgy 140(2013) 120-127.[9] L.M. Camacho, R.R. Parra, S. Deng, Arsenic removal from groundwater by MnO2-modified natural clinoptilolite zeolite:Effects of pH and initial feed concentration, J. Hazard. Mater. 189(2011) 286-293.[10] H.B. Li, Z.Y. Fu, C. Yan, J.H. Huang, Y.N. Liu, S.I. Kirin, Hydrophobic-hydrophilic postcross-linked polystyrene/poly (methyl acryloyl diethylenetriamine) interpenetrating polymer networks and its adsorption properties, J. Colloid Interface Sci. 63(2016) 61-68.[11] M. Hadi, M.R. Samarghandi, G. McKay, Simplified fixed bed design models for the adsorption of acid dyes on novel pine cone derived activated carbon", Water Air Soil Pollut. 218(2011) 197-212.[12] J. Wang, S. Zhang, B. Pan, W. Zhang, L. Lv, Hydrous ferric oxide-resin nanocomposites of tunable structure for arsenite removal:Effect of the host pore structure, J. Hazard. Mater. 198(2011) 241-246.[13] D.M. Jia, Y.J. Li, C.H. Li, Iron-Impregnated weakly basic resin for the removal of 2-naphthalenesulfonic acid from aqueous solution, J. Chem. Eng. Data 56(2011) 3881-3889.[14] C.H. Li, D.M. Jia, Separation of Organic/Inorganic Mixed Acid Using Technology of Exchange Adsorption, Chemical Industrial Press, Beijing, 2015.[15] C.J. Radke, J.M. Prausnitz, Thermodynamics of multi-solute adsorption from dilute liquid solutions, AIChE J. 18(4) (1972) 761-768.[16] W. Taktsuji, H. Yoshida, Removal of organic acid fromwine by adsorption on weakly base ion exchangers:Equilibria for sing and binary systems, Sep. Sci. Technol. 29(11) (1994) 1473-1490.[17] V.M. Bhandari, V.A. Juvekar, Sorption of dibasic acid on weak base resins, Ind. Eng. Chem. Res. 32(7) (1993) 200-213.[18] X. Li, K. He, B.C. Pan, Efficient As(Ⅲ) removal by macroporous anion exchanger supported Fe-Mn binary oxide:Behavior and mechanism, Chem. Eng. J. 190(2012) 131-138.[19] D.A. Dzombak, F.M.M. Morel, Surface Complexation Modeling:Hydrous Ferric Oxide, New York, Wiley, 1990.[20] H.J. Zheng, Z.Q. Li, S. He, Study on extraction process of lactic acid fromfermentation broth with anionic resin, Food Sci. 30(6) (2009) 84-88. |