• Bulletin of the Chinese Ceramic Society
  • Vol. 42, Issue 11, 3945 (2023)
WANG Dongli1、2、*, XIN Rui1, ZHAO Qingxin2, WU Donghui1, PAN Huimin2, and YUAN Lili3
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • show less
    DOI: Cite this Article
    WANG Dongli, XIN Rui, ZHAO Qingxin, WU Donghui, PAN Huimin, YUAN Lili. Adsorption Performance of Seashell and Its Application Progress in Cement-Based Materials[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(11): 3945 Copy Citation Text show less
    References

    [3] SECO-REIGOSA NCUTILLAS-BARREIRO LNVOA-MUOZ J Cet al. Mixtures including wastes from the mussel shell processing industry: retention of arsenicchromium and mercury[J]. Journal of Cleaner Production201484: 680-690.

    [6] RICHARDSON A EFULLER T. Sea shells used as partial aggregate replacement in concrete[J]. Structural Survey201331(5): 347-354.

    [7] EZIEFULA U GEZEH J CEZIEFULA B I. Properties of seashell aggregate concrete: a review[J]. Construction and Building Materials2018192: 287-300.

    [8] MO K HALENGARAM U JJUMAAT M Zet al. Recycling of seashell waste in concrete: a review[J]. Construction and Building Materials2018162: 751-764.

    [9] CAI JDU YZHANG Ret al. Preparation of cement-based absorbent with coke for Cr3+ removal[J]. Materials Today Communications202335: 105749.

    [10] WIJEYAWARDANA PNANAYAKKARA NGUNASEKARA Cet al. Improvement of heavy metal removal from urban runoff using modified pervious concrete[J]. Science of the Total Environment2022815: 152936.

    [11] LIMOUSIN GGAUDET J PCHARLET Let al. Sorption isotherms: a review on physical basesmodeling and measurement[J]. Applied Geochemistry200722(2): 249-275.

    [12] ALLEN S JMCKAY GPORTER J F. Adsorption isotherm models for basic dye adsorption by peat in single and binary component systems[J]. Journal of Colloid and Interface Science2004280(2): 322-333.

    [13] KUMAR K VSIVANESAN S. Sorption isotherm for safranin onto rice husk: comparison of linear and non-linear methods[J]. Dyes and Pigments200772(1): 130-133.

    [14] GHIACI MABBASPUR AKIA Ret al. Equilibrium isotherm studies for the sorption of benzenetolueneand phenol onto organo-zeolites and as-synthesized MCM-41[J]. Separation and Purification Technology200440(3): 217-229.

    [15] NCIBI M C. Applicability of some statistical tools to predict optimum adsorption isotherm after linear and non-linear regression analysis[J]. Journal of Hazardous Materials2008153(1/2): 207-212.

    [16] KUNDU SGUPTA A K. Arsenic adsorption onto iron oxide-coated cement (IOCC): regression analysis of equilibrium data with several isotherm models and their optimization[J]. Chemical Engineering Journal2006122(1/2): 93-106.

    [17] DUBININ M. The equation of the characteristic curve of the activated charcoal[J]. Proceeding of the USSR Academy of Sciences194755: 327-329.

    [18] KIM YKIM CCHOI Iet al. Arsenic removal using mesoporous alumina prepared via a templating method[J]. Environmental Science & Technology200438(3): 924-931.

    [19] HORSFALL MSPIFF A. Equilibrium sorption study of Al3+Co2+ and Ag+ in aqueous solutions by fluted pumpkin (Telfairia occidentalis HOOK f) waste biomass[J]. Acta Chimica Slovenica200552: 174-181.

    [20] HILL AHILL APAGANINI-HILL A. The possible effects of the aggregation of the molecules of haemoglobin on its dissociation curves[J]. The Journal of Physiology191040: 4-7.

    [21] WANG J LGUO X. Adsorption kinetic models: physical meaningsapplicationsand solving methods[J]. Journal of Hazardous Materials2020390: 122156.

    [22] LAGERGREN S K. About the theory of so-called adsorption of soluble substances[J]. Sven Vetenskapsakad Handingarl189824: 1-39.

    [23] HO C FY SWASEet al. Removal of lead ions from aqueous solution using sphagnum moss peat as adsorbent[J]. Water SA199622(3): 219-224.

    [24] WU F CTSENG R LJUANG R S. Initial behavior of intraparticle diffusion model used in the description of adsorption kinetics[J]. Chemical Engineering Journal2009153(1/2/3): 1-8.

    [25] RITCHIE A G. Alternative to the Elovich equation for the kinetics of adsorption of gases on solids[J]. Journal of the Chemical SocietyFaraday Transactions 1: Physical Chemistry in Condensed Phases197773: 1650.

    [26] ZER A. Removal of Pb(II) ions from aqueous solutions by sulphuric acid-treated wheat bran[J]. Journal of Hazardous Materials2007141(3): 753-761.

    [29] MASUKUME MONYANGO M SMAREE J P. Sea shell derived adsorbent and its potential for treating acid mine drainage[J]. International Journal of Mineral Processing2014133: 52-59.

    [30] TUDOR H E AGRYTE C CHARRIS C C. Seashells: detoxifying agents for metal-contaminated waters[J]. WaterAirand Soil Pollution2006173(1): 209-242.

    [31] MAHENDRA CSIVAKIRAN R RBADRINARAYANA K Aet al. Investigation of bivalve molluscan seashells for the removal of cadmiumlead and zinc metal ions from wastewater streams[J]. Rasayan Journal of Chemistry202012(2): 903-914.

    [32] WANG Q AJIANG F YOUYANG X Ket al. Adsorption of Pb(II) from aqueous solution by mussel shell-based adsorbent: preparationcharacterizationand adsorption performance[J]. Materials202114(4): 741.

    [33] WU QCHEN JCLARK Met al. Adsorption of copper to different biogenic oyster shell structures[J]. Applied Surface Science2014311: 264-272.

    [34] HSU T C. Experimental assessment of adsorption of Cu2+ and Ni2+ from aqueous solution by oyster shell powder[J]. Journal of Hazardous Materials2009171(1/2/3): 995-1000.

    [36] KETWONG CTRISUPAKITTI SNAUSRI Cet al. Removal of heavy metal from synthetic wastewater using calcined golden apple snail shells[J]. Naresuan University Journal: Science and Technology (NUJST)201826(4): 61-70.

    [38] GUPTA V KSUHAS. Application of low-cost adsorbents for dye removal: a review[J]. Journal of Environmental Management200990(8): 2313-2342.

    [39] CHOWDHURY SSAHA P. Sea shell powder as a new adsorbent to remove Basic Green 4 (Malachite Green) from aqueous solutions: equilibriumkinetic and thermodynamic studies[J]. Chemical Engineering Journal2010164(1): 168-177.

    [40] SUTEU DBILBA DDOROFTEI Fet al. Sorption of brilliant red HE-3B reactive dye from aqueous solution onto seashells waste: equilibrium and kinetic studies[J]. Separation Science and Technology201146(9): 1462-1471.

    [41] SHIRZAD-SIBONI MKHATAEE AJOO S W. Kinetics and equilibrium studies of removal of an azo dye from aqueous solution by adsorption onto scallop[J]. Journal of Industrial and Engineering Chemistry201420(2): 610-615.

    [42] SHIRZAD-SIBONI MKHATAEE AVAFAEI Fet al. Comparative removal of two textile dyes from aqueous solution by adsorption onto marine-source waste shell: kinetic and isotherm studies[J]. Korean Journal of Chemical Engineering201431(8): 1451-1459.

    [43] PAPADIMITRIOU C AKREY GSTAMATIS Net al. The use of waste mussel shells for the adsorption of dyes and heavy metals[J]. Journal of Chemical Technology & Biotechnology201792(8): 1943-1947.

    [44] KHAIRUNISA MAQILAH T N N. Exploratory study on the use of crushed cockle shell as partial sand replacement in concrete[J]. International Journal of Research in Engineering and Science20164(2): 67-71.

    [45] YANG E IYI S TLEEM Y M. Effect of oyster shell substituted for fine aggregate on concrete characteristics: part I. Fundamental properties[J]. Cement and Concrete Research200535(11): 2175-2182.

    [46] YUSOF MUJAI S J JSAHARI Fet al. Application of clam (lokan) shell as beach retaining wall[C]. Proceeding of 4th EnCon 2011.

    [47] VARHEN CCARRILLO SRUIZ G. Experimental investigation of Peruvian scallop used as fine aggregate in concrete[J]. Construction and Building Materials2017136: 533-540.

    [48] KOCHOVA KSCHOLLBACH KGAUVIN Fet al. Effect of saccharides on the hydration of ordinary Portland cement[J]. Construction and Building Materials2017150: 268-275.

    [49] MENDES J CMORO T KFIGUEIREDO A Set al. Mechanicalrheological and morphological analysis of cement-based composites with a new LAS-based air entraining agent[J]. Construction and Building Materials2017145: 648-661.

    [50] KARIM M RHASHIM HRAZAK H A. Assessment of pozzolanic activity of palm oil clinker powder[J]. Construction and Building Materials2016127: 335-343.

    [51] WANG J JLIU E GLI L. Characterization on the recycling of waste seashells with Portland cement towards sustainable cementitious materials[J]. Journal of Cleaner Production2019220: 235-252.

    [52] LERTWATTANARUK PMAKUL NSIRIPATTARAPRAVAT C. Utilization of ground waste seashells in cement mortars for masonry and plastering[J]. Journal of Environmental Management2012111: 133-141.

    [53] CHEN DZHANG P CPAN Tet al. Evaluation of the eco-friendly crushed waste oyster shell mortars containing supplementary cementitious materials[J]. Journal of Cleaner Production2019237: 117811.

    [54] QASEM A AALMEKHLAFI M AYAHAYA F M. The effect of palm oil fuel clinker powder and cockleshell powder as cement replacement on durability properties of the concrete mortar[J]. IOP Conference Series: Earth and Environmental Science2021682(1): 012037.

    [55] YANAKA A. Study on properties of concrete mixed with rice husk ash adsorbing heavy metals[J]. International Journal of GEOMATE202222(92): 77-82.

    [56] WIJEYAWARDANA PNANAYAKKARA NLAW Det al. Performance of biochar mixed cement paste for removal of CuPb and Zn from stormwater[J]. Environmental Research2023232: 116331.

    [57] YANG E IKIM M YPARK H Get al. Effect of partial replacement of sand with dry oyster shell on the long-term performance of concrete[J]. Construction and Building Materials201024(5): 758-765.

    [58] ETTU L OIBEARUGBULEM O MEZEH J Cet al. A reinvestigation of the prospects of using periwinkle shell as partial replacement for granite in concrete[J]. International Journal of Engineering Science Invention20132(3): 54-59.

    [59] MARTNEZ-GARCA CGONZLEZ-FONTEBOA BMARTNEZ-ABELLA Fet al. Performance of mussel shell as aggregate in plain concrete[J]. Construction and Building Materials2017139: 570-583.

    [60] NGUYEN D HSEBAIBI NBOUTOUIL Met al. The use of seashell by-products in pervious concrete pavers[J]. International Journal of Civil and Environmental Engineering20137(11): 850-857.

    [61] KHANKHAJE ERAFIEIZONOOZ MSALIM M Ret al. Comparing the effects of oil palm kernel shell and cockle shell on properties of pervious concrete pavement[J]. International Journal of Pavement Research and Technology201710(5): 383-392.

    [62] SANSALONE JKUANG XRANIERI V. Permeable pavement as a hydraulic and filtration interface for urban drainage[J]. Journal of Irrigation and Drainage Engineering2008134(5): 666-674.

    [64] RANDRIANARIMANANA J JSEBAIBI NBOUTOUIL M. Laboratory analysis of stormwater runoff hydraulic and pollutant removal performance of pervious concrete based on seashell by-products[J]. Journal of Civil and Environmental Engineering201711: 1059-1068.

    [65] XIA C HZHANG X YXIA L H. Heavy metal ion adsorption by permeable oyster shell bricks[J]. Construction and Building Materials2021275: 122128.

    [70] HARADA SYANBE M. Adsorption by and artificial release of zinc and lead from porous concrete for recycling of adsorbed zinc and lead and of porous concrete to reduce urban non-point heavy metal runoff[J]. Chemosphere2018197: 451-456.

    [71] MARTNEZ-GARCA CGONZLEZ-FONTEBOA BCARRO-LPEZ Det al. Design and properties of cement coating with mussel shell fine aggregate[J]. Construction and Building Materials2019215: 494-507.

    [72] BAMIGBOYE G ONWORGU A TODETOYAN A Oet al. Sustainable use of seashells as binder in concrete production: prospect and challenges[J]. Journal of Building Engineering202134: 101864.

    [73] CUADRADO-RICA HSEBAIBI NBOUTOUIL Met al. Properties of ordinary concretes incorporating crushed queen scallop shells[J]. Materials and Structures201649(5): 1805-1816.

    [74] KUO W TWANG H YSHU C Yet al. Engineering properties of controlled low-strength materials containing waste oyster shells[J]. Construction and Building Materials201346: 128-133.

    WANG Dongli, XIN Rui, ZHAO Qingxin, WU Donghui, PAN Huimin, YUAN Lili. Adsorption Performance of Seashell and Its Application Progress in Cement-Based Materials[J]. Bulletin of the Chinese Ceramic Society, 2023, 42(11): 3945
    Download Citation