Ammonia removal from low-strength municipal wastewater by powdered resin combined with simultaneous recovery as struvite

Kuo Fang , Fei Peng , Hui Gong , Huanzhen Zhang , Kaijun Wang

Front. Environ. Sci. Eng. ›› 2021, Vol. 15 ›› Issue (1) : 8

PDF (1775KB)
Front. Environ. Sci. Eng. ›› 2021, Vol. 15 ›› Issue (1) : 8 DOI: 10.1007/s11783-020-1300-7
RESEARCH ARTICLE
RESEARCH ARTICLE

Ammonia removal from low-strength municipal wastewater by powdered resin combined with simultaneous recovery as struvite

Author information +
History +
PDF (1775KB)

Abstract

• Powdered resin was employed for ammonia recovery from municipal wastewater.

• Powdered resin achievedefficient ammonia removal under various working conditions.

• Co-existing cations indicated competitive adsorption of ammonia.

• Ammonia was recoveredby two-stage crystallization coupled with ion exchange.

Low-strength municipal wastewater is considered to be a recoverable nutrient resource with economic and environmental benefits. Thus, various technologies for nutrient removal and recovery have been developed. In this paper, powdered ion exchange resin was employed for ammonia removal and recovery from imitated low-strength municipal wastewater. The effects of various working conditions (powdered resin dosage, initial concentration, and pH value) were studied in batch experiments to investigate the feasibility of the approach and to achieve performance optimization. The maximum adsorption capacity determined by the Langmuir model was 44.39 mg/g, which is comparable to traditional ion exchange resin. Further, the effects of co-existing cations (Ca2+, Mg2+, K+) were studied. Based on the above experiments, recovery of ammonia as struvite was successfully achieved by a proposed two-stage crystallization process coupled with a powdered resin ion exchange process. Scanning electron microscopy (SEM) and X-ray diffractometry (XRD) results revealed that struvite crystals were successfully gained in alkaline conditions (pH= 10). This research demonstrates that a powdered resin and two-stage crystallization process provide an innovative and promising means for highly efficient and easy recovery from low-strength municipal wastewater.

Graphical abstract

Keywords

Ammonia removal and recovery / Powdered resin / Crystallization process / Struvite / Co-existing cations

Cite this article

Download citation ▾
Kuo Fang, Fei Peng, Hui Gong, Huanzhen Zhang, Kaijun Wang. Ammonia removal from low-strength municipal wastewater by powdered resin combined with simultaneous recovery as struvite. Front. Environ. Sci. Eng., 2021, 15(1): 8 DOI:10.1007/s11783-020-1300-7

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Bian Y, Chen X, Lu L, Liang P, Ren Z J (2019). Concurrent nitrogen and phosphorus recovery using flow-electrode capacitive deionization. ACS Sustainable Chemistry & Engineering, 7(8): 7844–7850

[2]

Choi J, Lee H, Hong S (2016). Capacitive deionization (CDI) integrated with monovalentcation selective membrane for producing divalent cation-rich solution. Desalination, 400: 38–46

[3]

Cusick R D, Logan B E (2012). Phosphate recovery as struvite within a single chamber microbial electrolysis cell. Bioresource Technology, 107: 110–115

[4]

Daims H, Lebedeva E V, Pjevac P, Han P, Herbold C, Albertsen M, Jehmlich N, Palatinszky M, Vierheilig J, Bulaev A, Kirkegaard R H, Von Bergen M, Rattei T, Bendinger B, Nielsen P H, Wagner M (2015). Complete nitrification by Nitrospira bacteria. Nature, 528: 504–509

[5]

Fang K, Gong H, He W, Peng F, He C, Wang K (2018). Recovering ammonia from municipal wastewater by flow-electrode capacitive deionization. Chemical Engineering Journal, 348: 301–309

[6]

Ferraz F M, Povinelli J, Vieira E M (2013). Ammonia removal from landfill leachate by air stripping and absorption. Environmental Technology, 34(15): 2317–2326

[7]

Gong H, Wang Z J, Zhang X, Jin Z Y, Wang C P, Zhang L P, Wang K J (2017). Organics and nitrogen recovery from sewage via membrane-based pre-concentration combined with ion exchange process. Chemical Engineering Journal, 311: 13–19

[8]

Greenlee L F, Lawler D F, Freeman B D, Marrot B, Moulin P (2009). Reverse osmosis desalination: Water sources, technology, and today’s challenges. Water Research, 43(9): 2317–2348

[9]

He W, Gong H, Fang K, Peng F, Wang K (2019). Revealing the effect of preparation parameters on zeolite adsorption performance for low and medium concentrations of ammonium. Journal of Environmental Sciences (China), 85: 177–188

[10]

Heraldy E, Rahmawati F, Heriyanto , Putra D P (2017). Preparation of struvite from desalination waste. Journal of Environmental Chemical Engineering, 5(2): 1666–1675

[11]

Jin P, Li B, Mu D, Li X, Peng Y (2019). High-efficient nitrogen removal from municipal wastewater via two-stage nitritation/anammox process: Long-term stability assessment and mechanism analysis. Bioresource Technology, 271: 150–158

[12]

Jin Z, Gong H, Temmink H, Nie H, Wu J, Zuo J, Wang K (2016). Efficient sewage pre-concentration with combined coagulation microfiltration for organic matter recovery. Chemical Engineering Journal, 292: 130–138

[13]

Kabdaşlı I, Atalay Z, Tunay O (2017). Effect of solution composition on struvite crystallization. Journal of Chemical Technology and Biotechnology (Oxford, Oxfordshire), 92(12): 2921–2928

[14]

Kataki S, West H, Clarke M, Baruah D C (2016). Phosphorus recovery as struvite: Recent concerns for use of seed, alternative Mg source, nitrogen conservation and fertilizer potential. Resources, Conservation and Recycling, 107: 142–156

[15]

Kim D, Min K J, Lee K, Yu M S, Park K Y (2017). Effects of pH, molar ratios and pre-treatment on phosphorus recovery through struvite crystallization from effluent of anaerobically digested swine wastewater. Environmental Engineering Research, 22(1): 12–18

[16]

Li T, Xiao K, Yang B, Peng G, Liu F, Tao L, Chen S, Wei H, Yu G, Deng S (2019). Recovery of Ni(II) from real electroplating wastewater using fixed-bed resin adsorption and subsequent electrodeposition. Frontiers of Environmental Science & Engineering, 13(6): 91

[17]

Li W, Ding X, Liu M, Guo Y, Liu L (2012). Optimization of process parameters for mature landfill leachate pretreatment using MAP precipitation. Frontiers of Environmental Science & Engineering, 6(6): 892–900

[18]

Liang P, Sun X L, Bian Y H, Zhang H L, Yang X F, Jiang Y, Liu P P, Huang X (2017). Optimized desalination performance of high voltage flow-electrode capacitive deionization by adding carbon black in flow-electrode. Desalination, 420: 63–69

[19]

Lin X C, Han Z Y, Yu H J, Ye Z Y, Zhu S M, Zhu J (2018). Struvite precipitation from biogas digestion slurry using a two chamber electrolysis cell with a magnesium anode. Journal of Cleaner Production, 174: 1598–1607

[20]

Mossad M, Zou L (2012). A study of the capacitive deionisation performance under various operational conditions. Journal of Hazardous Materials, 213-214: 491–497

[21]

Mullen P, Venkiteshwaran K, Zitomer D H, Mayer B K (2019). Ion exchange nutrient recovery from anaerobic membrane bioreactor permeate. Water Environment Research, 91(7): 606–615

[22]

Ngah W S W, Fatinathan S (2010). Pb(II) biosorption using chitosan and chitosan derivatives beads: Equilibrium, ion exchange and mechanism studies. Journal of Environmental Sciences (China), 22(3): 338–346

[23]

Nightingale E R Jr (1959). Phenomenological theory of ion solvation: Effective radii of hydrated ions. Journal of Physical Chemistry, 63(9): 1381–1387

[24]

Quist-Jensen C A, Sorensen J M, Svenstrup A, Scarpa L, Carlsen T S, Jensen H C, Wybrandt L, Christensen M L (2018). Membrane crystallization for phosphorus recovery and ammonia stripping from reject water from sludge dewatering process. Desalination, 440: 156–160

[25]

Tanne N, Xu R, Zhou M, Zhang P, Wang X, Wen X (2019). Influence of pore size and membrane surface properties on arsenic removal by nanofiltration membranes. Frontiers of Environmental Science & Engineering, 13(2): 19

[26]

Tilman D, Cassman K G, Matson P A, Naylor R, Polasky S (2002). Agricultural sustainability and intensive production practices. Nature, 418(6898): 671–677

[27]

Tong Y R, Mcnamara P J, Mayer B K (2017). Fate and impacts of triclosan, sulfamethoxazole, and 17 beta-estradiol during nutrient recovery via ion exchange and struvite precipitation. Environmental Science. Water Research & Technology, 3(6): 1109–1119

[28]

van Kessel M, Speth D R, Albertsen M, Nielsen P H, Op Den Camp H J M, Kartal B, Jetten M S M, Lucker S (2015). Complete nitrification by a single microorganism. Nature, 528: 555–559

[29]

Wang Q M, Li J S, Tang P, Fang L, Poon C S (2018). Sustainable reclamation of phosphorus from incinerated sewage sludge ash as value-added struvite by chemical extraction, purification and crystallization. Journal of Cleaner Production, 181: 717–725

[30]

Wang Z, Gong H, Zhang Y, Liang P, Wang K (2017). Nitrogen recovery from low-strength wastewater by combined membrane capacitive deionization (MCDI) and ion exchange (IE) process. Chemical Engineering Journal, 316: 1–6

[31]

Wei J, Ge J, Rouff A A, Wen X, Meng X, Song Y (2019). Phosphorus recovery from wastewater using light calcined magnesite, effects of alkalinity and organic acids. Journal of Environmental Chemical Engineering, 7(5): 103334

[32]

Williams A T, Zitomer D H, Mayer B K (2015). Ion exchange-precipitation for nutrient recovery from dilute wastewater. Environmental Science. Water Research & Technology, 1(6): 832–838

[33]

Xiao Y, Zheng Y, Wu S, Yang Z H, Zhao F (2016). Nitrogen recovery from wastewater using microbial fuel cells. Frontiers of Environmental Science & Engineering, 10(1): 185–191

[34]

Yoshida S, Kanazawa N, Qiu L, Umeda M, Uchino H, Fukuda J, Aoyagi M, Watanabe T (2002). Regeneration mechanism of ion exchange materials in electrodeionization system. Electrochemistry, 70(10): 784–788

[35]

Zhang C, Ma J, He D, Waite T D (2018a). Capacitive membrane stripping for ammonia recovery (CapAmm) from dilute wastewaters. Environmental Science & Technology Letters, 5(1): 43–49

[36]

Zhang C, Ma J, Song J, He C, Waite T D (2018b). Continuous ammonia recovery from wastewaters using an integrated capacitive flow electrode membrane stripping system. Environmental Science & Technology, 52: 14275–14285

[37]

Zhang M, Zhang H,Xu D, Han L, Niu D, Tian B, Zhang J, Zhang L, Wu W (2011). Removal of ammonium from aqueous solutions using zeolite synthesized from fly ash by a fusion method. Desalination, 271(1–3): 111–121

[38]

Zhang T, Wu X S, Li H H, Tsang D C W, Li G X, Ren H Q (2020). Struvite pyrolysate cycling technology assisted by thermal hydrolysis pretreatment to recover ammonium nitrogen from composting leachate. Journal of Cleaner Production, 242: 11842

[39]

Zhao X, Wu Y, Zhang X, Tong X, Yu T, Wang Y, Ikuno N, Ishii K, Hu H (2019). Ozonation as an efficient pretreatment method to alleviate reverse osmosis membrane fouling caused by complexes of humic acid and calcium ion. Frontiers of Environmental Science & Engineering, 13(4): 55

RIGHTS & PERMISSIONS

Higher Education Press

AI Summary AI Mindmap
PDF (1775KB)

Supplementary files

FSE-20079-OF-FK_suppl_1

2031

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/