Effects of Recycled Sponge Iron on Phosphorus Recovery from Polluted Water
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials and Reagents
2.2. Modification of Sponge Iron and Kinetics of Phosphorus Adsorption
2.3. Adsorption Isotherm
2.4. Desorption and Reactivation of Sponge Iron
2.5. Experiments of Continuous Flow Phosphorus Removal with Sponge Iron
2.6. Recovery of Phosphorus from Waste Liquid of Alkali Regeneration
2.7. XRD Analysis for Struvite
3. Results and Discussion
3.1. Adsorption Kinetics of Phosphorus on the Sponge Iron
3.1.1. Effect of Adsorption Time on Phosphorus Adsorption Capacity
3.1.2. Adsorption Isotherm
3.2. Resorption and Reactivation of Sponge Iron
- The iron oxide on the surface of sponge iron dissociates or the iron ion is separated out by the corrosion of single iron, and the chemical reaction with phosphate produces insoluble salts, such as FePO4, Fe3(PO4)2, etc. After insoluble precipitates are formed, they easily cover the surface of sponge iron, which is not conducive to the further removal of phosphorus in the solution [41].
- Iron ions generate long linear polynuclear hydroxyl complexes through hydrolysis and polymerization, and coordinate exchange with phosphates.
- Under acidic and weakly alkaline conditions, sponge iron will combine with protons with positive charge; thus, electrostatic adsorption with negatively charged phosphate ions will occur [39].
3.3. Effect of Sponge Iron Filtration Column on Phosphorus Removal
3.4. Recovery of Phosphorus from Regenerated Waste Liquid by Struvite Precipitation
3.4.1. Effect of pH on the Recovery of Phosphorus
3.4.2. Effect of Magnesium Salt Dosage
3.4.3. Effect of Ammonia Nitrogen Dosage
3.4.4. System Experiment
3.4.5. XRD Analysis of Precipitation Products
4. Conclusions
- Using 6% sulfuric acid to modify sponge iron could improve the adsorption capacity of phosphorus, and in this experiment the theoretical maximum adsorption capacity of modified sponge iron was increased by 335% compared with that before modification. When the modified sponge iron was saturated with phosphorus, its phosphorus removal ability could be restored by desorption and reactivation, and the activation rate could reach 98.2%.
- The sponge iron percolation bed had a good dynamic phosphorus removal performance, and the accumulated phosphorus adsorption capacity reached 6.95 kg/m3. The carrier was easy to activate and regenerate, and thus it could be used to effectively recover phosphorus from water containing phosphorus.
- pH is the main factor affecting the production of struvite from alkali regeneration waste liquid. The optimal conditions for the preparation of struvite from phosphorus containing desorption solution achieved by adjusting the pH and adding nitrogen and magnesium are: initial pH = 10, n (Mg2+):n (PO43−):n (NH4+) = 1.3:1:1.1. Under the optimal conditions, the phosphorus recovery rate could reach 97.8%.
Author Contributions
Funding
Conflicts of Interest
References
- Xiao, W.; Ke, S.; Quan, N.; Zhou, L.; Wang, J.; Zhang, L.; Dong, Y.; Qin, W.; Qiu, G.; Hu, J. The Role of Nanobubbles in the Precipitation and Recovery of Organic-Phosphine-Containing Beneficiation Wastewater. Langmuir 2018, 34, 6217–6224. [Google Scholar] [CrossRef]
- Han, C.; Qin, Y.; Zheng, B.; Ma, Y.; Yang, C.; Liu, Z.; Zhuang, D.; Zhao, Y. Geochemistry of phosphorus release along transect of sediments from a tributary backwater zone in the Three Gorges Reservoir. Sci. Total Environ. 2020, 722, 136964. [Google Scholar] [CrossRef]
- Xu, R.; Zhang, M.; Mortimer, R.J.G.; Pan, G. Enhanced Phosphorus Locking by Novel Lanthanum/Aluminum–Hydroxide Composite: Implications for Eutrophication Control. Environ. Sci. Technol. 2017, 51, 3418–3425. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, B.; Ding, W.; Xu, B.; Wang, L.; Li, Y.; Zhang, C. Spatial characteristics of total phosphorus loads from different sources in the Lancang River Basin. Sci. Total Environ. 2020, 722, 137863. [Google Scholar] [CrossRef]
- Yogev, U.; Vogler, M.; Nir, O.; Londong, J.; Gross, A. Phosphorous recovery from a novel recirculating aquaculture system followed by its sustainable reuse as a fertilizer. Sci. Total Environ. 2020, 722, 137949. [Google Scholar] [CrossRef]
- Blatter, M.; Furrer, C.; Cachelin, C.P.; Fischer, F. Phosphorus, chemical base and other renewables from wastewater with three 168-L microbial electrolysis cells and other unit operations. Chem. Eng. J. 2020, 390, 124502. [Google Scholar] [CrossRef]
- Afridi, M.N.; Lee, W.-H.; Kim, J.-O. Application of synthesized bovine serum albumin-magnetic iron oxide for phosphate recovery. J. Ind. Eng. Chem. 2020, 86, 113–122. [Google Scholar] [CrossRef]
- Gao, Y.; Fang, Z.; Chen, C.; Zhu, X.; Liang, P.; Qiu, Y.; Zhang, X.; Huang, X. Evaluating the performance of inorganic draw solution concentrations in an anaerobic forward osmosis membrane bioreactor for real municipal sewage treatment. Bioresour. Technol. 2020, 307, 123254. [Google Scholar] [CrossRef]
- Chi Thanh, V.; Wu, T. Magnetic porous NiLa-Layered double oxides (LDOs) with improved phosphate adsorption and antibacterial activity for treatment of secondary effluent. Water Res. 2020, 175, 115679. [Google Scholar]
- Kress, N.; Gertner, Y.; Shoham-Frider, E. Seawater quality at the brine discharge site from two mega size seawater reverse osmosis desalination plants in Israel (Eastern Mediterranean). Water Res. 2019, 171, 115402. [Google Scholar] [CrossRef]
- Chen, Y.; Lin, H.; Yan, W.; Huang, J.; Wang, G.; Shen, N. Alkaline fermentation promotes organics and phosphorus recovery from polyaluminum chloride-enhanced primary sedimentation sludge. Bioresour. Technol. 2019, 294, 122160. [Google Scholar] [CrossRef] [PubMed]
- Yang, H.; Liu, J.; Hu, P.; Zou, L.; Li, Y.-Y. Carbon source and phosphorus recovery from iron-enhanced primary sludge via anaerobic fermentation and sulfate reduction: Performance and future application. Bioresour. Technol. 2019, 294, 122174. [Google Scholar] [CrossRef]
- Kabenge, I.; Ouma, G.; Aboagye, D.; Banadda, N. Performance of a constructed wetland as an upstream intervention for stormwater runoff quality management. Environ. Sci. Pollut. Res. 2018, 25, 36765–36774. [Google Scholar] [CrossRef]
- Tong, Y.R.; McNamara, P.J.; Mayer, B.K. Fate and impacts of triclosan, sulfamethoxazole, and 17 beta-estradiol during nutrient recovery via ion exchange and struvite precipitation. Environ. Sci. Water Res. Technol. 2017, 3, 1109–1119. [Google Scholar] [CrossRef] [Green Version]
- Koh, K.Y.; Zhang, S.; Chen, J.P. Improvement of Ultrafiltration for Treatment of Phosphorus-Containing Water by a Lanthanum-Modified Aminated Polyacrylonitrile Membrane. ACS Omega 2020, 5, 7170–7181. [Google Scholar] [CrossRef] [Green Version]
- Huang, X.; Zhu, T.; Duan, W.; Liang, S.; Li, G.; Xiao, W. Comparative studies on catalytic mechanisms for natural chalcopyrite-induced Fenton oxidation: Effect of chalcopyrite type. J. Hazard. Mater. 2019, 381, 120998. [Google Scholar] [CrossRef]
- Muisa, N.; Nhapi, I.; Ruziwa, W.; Manyuchi, M.M. Utilization of alum sludge as adsorbent for phosphorus removal in municipal wastewater: A review. J. Water Process Eng. 2020, 35, 101187. [Google Scholar] [CrossRef]
- Karami, M.; Koohestani, H.; Gholami, H. Investigation of the effect of geometrical shape of sponge iron on the operating parameters of the induction furnace. Can. Met. Q. 2022, 1–6. [Google Scholar] [CrossRef]
- Xiao, W.; Zhao, Y.; Yang, J.; Ren, Y.; Yang, W.; Huang, X.; Zhang, L. Effect of Sodium Oleate on the Adsorption Morphology and Mechanism of Nanobubbles on the Mica Surface. Langmuir 2019, 35, 9239–9245. [Google Scholar] [CrossRef] [PubMed]
- Lin, J.; He, S.; Wang, X.; Zhang, H.; Zhan, Y. Removal of phosphate from aqueous solution by a novel Mg(OH)(2)/ZrO2 composite: Adsorption behavior and mechanism. Colloids Surf. Physicochem. Eng. Asp. 2019, 561, 301–314. [Google Scholar] [CrossRef]
- Xiao, W.; Ren, Y.-X.; Yang, J.; Cao, P.; Wang, J.; Qin, W.-Q.; Qiu, G.-Z. Adsorption mechanism of sodium oleate and styryl phosphonic acid on rutile and amphibole surfaces. Trans. Nonferr. Met. Soc. China 2019, 29, 1939–1947. [Google Scholar] [CrossRef]
- Yuan, L.; Qiu, Z.; Yang, J.; Li, Z.; Farooq, U.; Lu, Y.; Lyu, S. Adsorption performance and mechanism for phosphate removal by cerium hydroxide loaded on molecular sieve. J. Taiwan Inst. Chem. Eng. 2018, 93, 450–460. [Google Scholar] [CrossRef]
- Zhang, J.; Ding, W.; Zhang, Z.; Xu, J.; Wen, Y. Preparation of black phosphorus-PEDOT:PSS hybrid semiconductor composites with good film-forming properties and environmental stability in water containing oxygen. RSC Adv. 2016, 6, 76174–76182. [Google Scholar] [CrossRef]
- Hadroug, S.; Jellali, S.; Azzaz, A.A.; Kwapinska, M.; Hamdi, H.; Leahy, J.J.; Jeguirim, M.; Kwapinski, W. Valorization of salt post-modified poultry manure biochars for phosphorus recovery from aqueous solutions: Investigations on adsorption properties and involved mechanism. Biomass Convers. Biorefin. 2021, 1–16. [Google Scholar] [CrossRef]
- Pellicer-Castell, E.; Belenguer-Sapiña, C.; Amorós, P.; El Haskouri, J.; Herrero-Martínez, J.M.; Mauri-Aucejo, A. Study of silica-structured materials as sorbents for organophosphorus pesticides determination in environmental water samples. Talanta 2018, 189, 560–567. [Google Scholar] [CrossRef]
- Gong, W.; Fan, Y.; Xie, B.; Tang, X.; Guo, T.; Luo, L.; Liang, H. Immobilizing Microcystis aeruginosa and powdered activated carbon for the anaerobic digestate effluent treatment. Chemosphere 2019, 244, 125420. [Google Scholar] [CrossRef]
- Ebrahiminejad, M.; Karimzadeh, R. Influence of phosphorus content on properties and performance of NiW nanocatalyst supported on activated red mud in atmospheric diesel hydrodesulfurization. J. Hazard. Mater. 2019, 384, 121485. [Google Scholar] [CrossRef] [PubMed]
- Zhan, Y.; Wu, X.; Lin, J. Combined use of calcium nitrate, zeolite, and anion exchange resin for controlling phosphorus and nitrogen release from sediment and for overcoming disadvantage of calcium nitrate addition technology. Environ. Sci. Pollut. Res. 2020, 27, 24863–24878. [Google Scholar] [CrossRef]
- Wu, B.; Fang, L.; Fortner, J.D.; Guan, X.; Lo, I.M. Highly efficient and selective phosphate removal from wastewater by magnetically recoverable La(OH)(3)/Fe3O4 nanocomposites. Water Res. 2017, 126, 179–188. [Google Scholar] [CrossRef] [PubMed]
- Jellali, S.; Khiari, B.; Usman, M.; Hamdi, H.; Charabi, Y.; Jeguirim, M. Sludge-derived biochars: A review on the influence of synthesis conditions on pollutants removal efficiency from wastewaters. Renew. Sustain. Energy Rev. 2021, 144, 111068. [Google Scholar] [CrossRef]
- Sun, H.; Zhou, Q.; Zhao, L.; Wu, W. Enhanced simultaneous removal of nitrate and phosphate using novel solid carbon source/zero-valent iron composite. J. Clean. Prod. 2021, 289, 125757. [Google Scholar] [CrossRef]
- Ma, J.; Ren, S.; Song, Y.; Wang, D.; Men, B.; Zhao, H. Advances in the Application of Zero-Valent Iron Technology in the Field of Wastewater Treatment. Chemistry 2019, 82, 3–11. [Google Scholar]
- Sleiman, N.; Deluchat, V.; Wazne, M.; Mallet, M.; Courtin-Nomade, A.; Kazpard, V.; Baudu, M. Phosphate removal from aqueous solution using ZVI/sand bed reactor: Behavior and mechanism. Water Res. 2016, 99, 56–65. [Google Scholar] [CrossRef]
- Wang, Y.; Feng, Y.; Jiang, J.; Yao, J. Designing of Recyclable Attapulgite for Wastewater Treatments: A Review. ACS Sustain. Chem. Eng. 2018, 7, 1855–1869. [Google Scholar] [CrossRef]
- Easun, T.L.; Moreau, F.; Yan, Y.; Yang, S.; Schröder, M. Structural and dynamic studies of substrate binding in porous metal–organic frameworks. Chem. Soc. Rev. 2016, 46, 239–274. [Google Scholar] [CrossRef] [Green Version]
- Xue, R.; Xu, J.; Gu, L.; Pan, L.; He, Q. Study of Phosphorus Removal by Using Sponge Iron Adsorption. Water Air Soil Pollut. 2018, 229, 161. [Google Scholar] [CrossRef]
- Wang, G.-B.; Wang, Y.; Zhang, Y. Combination effect of sponge iron and calcium nitrate on severely eutrophic urban landscape water: An integrated study from laboratory to fields. Environ. Sci. Pollut. Res. 2018, 25, 8350–8363. [Google Scholar] [CrossRef]
- Strauch, S.M.; Wenzel, L.C.; Bischoff, A.; Dellwig, O.; Klein, J.; Schüch, A.; Wasenitz, B.; Palm, H.W. Commercial African Catfish (Clarias gariepinus) Recirculating Aquaculture Systems: Assessment of Element and Energy Pathways with Special Focus on the Phosphorus Cycle. Sustainability 2018, 10, 1805. [Google Scholar] [CrossRef] [Green Version]
- Wang, Y.; Li, J.; Zhai, S.; Wei, Z.; Feng, J. Enhanced phosphorus removal by microbial-collaborating sponge iron. Water Sci. Technol. 2015, 72, 1257–1265. [Google Scholar] [CrossRef] [PubMed]
- Jiang, C.; Jia, L.; He, Y.; Zhang, B.; Kirumba, G.; Xie, J. Adsorptive removal of phosphorus from aqueous solution using sponge iron and zeolite. J. Colloid Interface Sci. 2013, 402, 246–252. [Google Scholar] [CrossRef]
- Park, I.; Higuchi, K.; Tabelin, C.B.; Jeon, S.; Ito, M.; Hiroyoshi, N. Suppression of arsenopyrite oxidation by microencapsulation using ferric-catecholate complexes and phosphate. Chemosphere 2021, 269, 129413. [Google Scholar] [CrossRef] [PubMed]
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Cheng, P.; Wang, B.; Wang, X.; Xiao, W. Effects of Recycled Sponge Iron on Phosphorus Recovery from Polluted Water. Minerals 2022, 12, 730. https://doi.org/10.3390/min12060730
Cheng P, Wang B, Wang X, Xiao W. Effects of Recycled Sponge Iron on Phosphorus Recovery from Polluted Water. Minerals. 2022; 12(6):730. https://doi.org/10.3390/min12060730
Chicago/Turabian StyleCheng, Ping, Biao Wang, Xiaohuan Wang, and Wei Xiao. 2022. "Effects of Recycled Sponge Iron on Phosphorus Recovery from Polluted Water" Minerals 12, no. 6: 730. https://doi.org/10.3390/min12060730
APA StyleCheng, P., Wang, B., Wang, X., & Xiao, W. (2022). Effects of Recycled Sponge Iron on Phosphorus Recovery from Polluted Water. Minerals, 12(6), 730. https://doi.org/10.3390/min12060730