344
Views
0
CrossRef citations to date
0
Altmetric
Technical Reports

Utilization of high-volume phosphogypsum in artificial aggregate by compaction granulation: effects of muck on physical properties, strength and leaching stability

, , , &

References

  • Zhou J, Yu D, Shu Z, et al. A novel two-step hydration process of preparing cement-free non-fired bricks from waste phosphogypsum. Constr Build Mater. 2014;73:222–228.
  • Fei X, Fang M, Wang Y. Climate change affects land-disposed waste. Nat Clim Chang. 2021;11(12):1004–1005.
  • Uchikawa H, Hanehara S. 8 - Recycling of waste as an alternative raw material and fuel in cement manufacturing. In Chandra S, editor. Waste materials used in concrete manufacturing. Westwood (NJ): William Andrew Publishing; 1996. p. 430–553.
  • Khedher M, Awad J, Donner E, et al. The potential reuse of drinking water treatment sludge for organics removal and disinfection by-products formation control. J Environ Chem Eng. 2022;10(3):108001.
  • Kacimi L, Simon-Masseron A, Ghomari A, et al. Reduction of clinkerization temperature by using phosphogypsum. J Hazard Mater. 2006;137(1):129–137.
  • Akın Altun İ, Sert Y. Utilization of weathered phosphogypsum as set retarder in Portland cement. Cem Concr Res. 2004;34(4):677–680.
  • Wang J. RETRACTED: utilization effects and environmental risks of phosphogypsum in agriculture: a review. J Cleaner Prod. 2020;276:123337.
  • Meskini S, Samdi A, Ejjaouani H, et al. Valorization of phosphogypsum as a road material: stabilizing effect of fly ash and lime additives on strength and durability. J Cleaner Prod. 2021;323:129161.
  • Ding C, Sun T, Shui Z, et al. Physical properties, strength, and impurities stability of phosphogypsum-based cold-bonded aggregates. Constr Build Mater. 2022;331:127307.
  • Pérez-Moreno SM, Gázquez MJ, Pérez-López R, et al. Assessment of natural radionuclides mobility in a phosphogypsum disposal area. Chemosphere. 2018;211:775–783.
  • Wang M, Luo H, Chen Y, et al. Leaching characteristics of calcium and strontium from phosphogypsum under acid rain. Bull Environ Contam Toxicol. 2018;100(2):310–315.
  • Chen Q, Zhang Q, Qi C, et al. Recycling phosphogypsum and construction demolition waste for cemented paste backfill and its environmental impact. J Cleaner Prod. 2018;186:418–429.
  • Li B, Shu J, Yang L, et al. An innovative method for simultaneous stabilization/solidification of PO43− and F − from phosphogypsum using phosphorus ore flotation tailings. J Cleaner Prod. 2019;235:308–316.
  • Contreras M, Pérez-López R, Gázquez MJ, et al. Fractionation and fluxes of metals and radionuclides during the recycling process of phosphogypsum wastes applied to mineral CO2 sequestration. Waste Manag. 2015;45:412–419.
  • Zhou Z, Lu Y, Zhan W, et al. Four stage precipitation for efficient recovery of N, P, and F elements from leachate of waste phosphogypsum. Miner Eng. 2022;178:107420.
  • Wu F, Liu S, Qu G, et al. Highly targeted solidification behavior of hazardous components in phosphogypsum. Chem Eng J Adv. 2022;9:100227.
  • Singh M. Treating waste phosphogypsum for cement and plaster manufacture. Cem Concr Res. 2002;32(7):1033–1038.
  • Nabbou N, Belhachemi M, Boumelik M, et al. Removal of fluoride from groundwater using natural clay (kaolinite): optimization of adsorption conditions. CR Chim. 2019;22(2–3):105–112.
  • Noyma NP, de Magalhães L, Furtado LL, et al. Controlling cyanobacterial blooms through effective flocculation and sedimentation with combined use of flocculants and phosphorus adsorbing natural soil and modified clay. Water Res. 2016;97:26–38.
  • Srinivasan R. Advances in application of natural clay and its composites in removal of biological, organic, and inorganic contaminants from drinking water. Adv Mater Sci Eng. 2011;2011:1–17.
  • Yuan GD, Theng BKG, Churchman GJ, et al. Chapter 5.1 - Clays and clay minerals for pollution control. In: Bergaya. F, Lagaly G, editors. Developments in clay science. Vol. 5. Amsterdam, Netherlands: Elsevier; 2013. p. 587–644.
  • Kosobucki P, Kruk M, Buszewski B. Immobilization of selected heavy metals in sewage sludge by natural zeolites. Bioresour Technol. 2008;99(13):5972–5976.
  • Strelko V, Malik DJ, Streat M. Interpretation of transition metal sorption behavior by oxidized active carbons and other adsorbents. Sep Sci Technol. 2005;39(8):1885–1905.
  • Sujana MG, Anand S. Fluoride removal studies from contaminated ground water by using bauxite. Desalination. 2011;267(2–3):222–227.
  • Guo Q, Reardon EJ. Fluoride removal from water by meixnerite and its calcination product. Appl Clay Sci. 2012;56:7–15.
  • Ioannou A, Dimirkou A. Phosphate adsorption on hematite, kaolinite, and kaolinite–hematite (k–h) systems as described by a constant capacitance model. J Colloid Interface Sci. 1997;192(1):119–128.
  • Landry CJ, Koretsky CM, Lund TJ, et al. Surface complexation modeling of Co(II) adsorption on mixtures of hydrous ferric oxide, quartz and kaolinite. Geochim Cosmochim Acta. 2009;73(13):3723–3737.
  • Tombácz E, Libor Z, Illés E, et al. The role of reactive surface sites and complexation by humic acids in the interaction of clay mineral and iron oxide particles. Org Geochem. 2004;35(3):257–267.
  • Wei S, Tan W, Liu F, et al. Surface properties and phosphate adsorption of binary systems containing goethite and kaolinite. Geoderma. 2014;213:478–484.
  • Bolt GH, van Olphen H. The surface chemistry of soils. Clays Clay Miner. 198533(4):367–367.
  • Gier S, Johns WD. Heavy metal-adsorption on micas and clay minerals studied by X-ray photoelectron spectroscopy. Applied Clay Science. 2000;16(5–6):289–299.
  • Malani A, Ayappa KG. Adsorption isotherms of water on mica: redistribution and film growth. J Phys Chem B. 2009;113(4):1058–1067.
  • Dash B, Jena SK, Rath SS. Adsorption of Cr (III) and Cr (VI) ions on muscovite mica: experimental and molecular modeling studies. J Mol Liq. 2022;357:119116.
  • Baykal G, Döven AG. Utilization of fly ash by pelletization process; theory, application areas and research results. Resour Conserv Recycl. 2000;30(1):59–77.
  • Mo L, Yang S, Huang B, et al. Preparation, microstructure and property of carbonated artificial steel slag aggregate used in concrete. Cem Concr Compos. 2020;113:103715.
  • Geetha S, Ramamurthy K. Environmental friendly technology of cold-bonded bottom ash aggregate manufacture through chemical activation. J Cleaner Prod. 2010;18(15):1563–1569.
  • Geetha S, Ramamurthy K. Reuse potential of low-calcium bottom ash as aggregate through pelletization. Waste Manag. 2010;30(8–9):1528–1535.
  • Vasugi V, Ramamurthy K. Identification of design parameters influencing manufacture and properties of cold-bonded pond ash aggregate. Mater Design. 2014;54:264–278.
  • Huang CH, Wang SY. Application of water treatment sludge in the manufacturing of lightweight aggregate. Constr Build Mater. 2013;43:174–183.
  • Liao YC, Huang CY. Effects of heat treatment on the physical properties of lightweight aggregate from water reservoir sediment. Ceram Int. 2011;37(8):3723–3730.
  • Wang X, Jin Y, Wang Z, et al. Development of lightweight aggregate from dry sewage sludge and coal ash. Waste Manag. 2009;29(4):1330–1335.
  • González-Corrochano B, Alonso-Azcárate J, Rodas M. Characterization of lightweight aggregates manufactured from washing aggregate sludge and fly ash. Resour Conserv Recycl. 2009;53(10):571–581.
  • González-Corrochano B, Alonso-Azcárate J, Rodríguez L, et al. Valorization of washing aggregate sludge and sewage sludge for lightweight aggregates production. Constr Build Mater. 2016;116:252–262.
  • Costa ARD, Matos SRC, Camarini G, et al. Hydration of sustainable ternary cements containing phosphogypsum. Sustain Mater Technol. 2021;28:e00280.
  • Tiong M, Li X, Mo KH, et al. Effects of moulding pressure and w/c induced pore water saturation on the CO2 curing efficiency of dry-mix cement blocks. Constr Build Mater. 2022;335:127509.
  • Zhang Z, Yan Y, Qu Z, et al. Endowing strength to calcium silicate hydrate (C-S-H) powder by high pressure mechanical compaction. Cem Concr Res. 2022;159:106858.
  • Bassam R, El Alouani M, Maissara J, et al. Investigation of competitive adsorption and desorption of heavy metals from aqueous solution using raw rock: characterization kinetic, isotherm, and thermodynamic. Mater Today Proc. 2022;52:158–165.
  • Ren P, Ling TC, Mo KH. Recent advances in artificial aggregate production. J Cleaner Prod. 2021;291:125215.
  • Tsai CT, editor Cold-Bonding technique – a new approach to recycle innocuous construction residual soil, sludge, and sediment as coarse aggregates. Sintering of ceramics. Boca Raton (FL): 2012.
  • Wu F, Chen B, Qu G, et al. Harmless treatment technology of phosphogypsum: dstabilization of toxic and harmful substances. J Environ Manage. 2022;311:114827.
  • Kumar N, Bharti A, Dixit M. Powder compaction dies and compressibility of various materials. Powder Metall Met Ceram. 2021;60(7–8):403–409.
  • Mehta PK, Monteiro PJM, editors. Concrete: microstructure, properties, and materials. New York (NY): 2005.
  • Juenger MCG, Winnefeld F, Provis JL, et al. Advances in alternative cementitious binders. Cem Concr Res. 2011;41(12):1232–1243.
  • Manikandan R, Ramamurthy K. Effect of curing method on characteristics of cold bonded fly ash aggregates. Cem Concr Compos. 2008;30(9):848–853.
  • Yu J, Qian J, Tang J, et al. Effect of ettringite seed crystals on the properties of calcium sulphoaluminate cement. Constr Build Mater. 2019;207:249–257.
  • Wang Z, Shui Z, Sun T, et al. Recycling utilization of phosphogypsum in eco excess-sulphate cement: synergistic effects of metakaolin and slag additives on hydration, strength and microstructure. J Cleaner Prod. 2022;358:131901.
  • Deng G, He Y, Lu L, et al. The effect of activators on the dissolution characteristics and occurrence state of aluminum of alkali-activated metakaolin. Constr Build Mater. 2020;235:117451.
  • Gabrisová A, Havlica J, Sahu S. Stability of calcium sulphoaluminate hydrates in water solutions with various pH values. Cem Concr Res. 1991;21(6):1023–1027.
  • Clark BA, Brown PW. The formation of calcium sulfoaluminate hydrate compounds: part I. Cem Concr Res. 1999;29(12):1943–1948.
  • D’Alessandro W, Bellomo S, Parello F. Fluorine adsorption by volcanic soils at Mt. Etna, Italy. Appl Geochem. 2012;27(6):1179–1188.
  • Bortoluzzi EC, Pérez CAS, Ardisson JD, et al. Occurrence of iron and aluminum sesquioxides and their implications for the P sorption in subtropical soils. Appl Clay Sci. 2015;104:196–204.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.