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    A New Two-Parameter Isotherm for Modeling Adsorptive Removal of Water Contaminants

    Source: Journal of Environmental Engineering:;2023:;Volume ( 149 ):;issue: 011::page 04023079-1
    Author:
    Khim Hoong Chu
    ,
    Mohd Ali Hashim
    ,
    Jean Debord
    ,
    Michel Harel
    ,
    Jean-Claude Bollinger
    DOI: 10.1061/JOEEDU.EEENG-7419
    Publisher: ASCE
    Abstract: The two-parameter Elovich isotherm is increasingly being used to describe the adsorption of water contaminants on solid materials. This isotherm is derived from a modified version of Langmuir’s kinetic theory for saturable adsorption. However, despite incorporating a saturation capacity parameter, the Elovich isotherm fails to predict an adsorption maximum at high concentrations. As a result, there are disparities between the estimated and observed saturation capacities. In this study, we have identified a conceptual flaw within the Elovich isotherm responsible for this anomaly. By introducing modifications to the theoretical derivation of the Elovich isotherm, we have rectified the conceptual defect. The modified isotherm retains the two parameters of the Elovich isotherm but possesses a different mathematical structure. In contrast to the Elovich isotherm, the new isotherm provides estimated saturation capacities that align closely with the observed values. A comparative analysis demonstrates the superiority of the new isotherm over the Elovich isotherm in fitting data featuring a plateau. However, the new isotherm is loading-implicit, posing challenges in data fitting. To overcome this limitation, we have developed a novel method to convert the loading-implicit isotherm into an explicit form. This conversion enables convenient data fitting and facilitates the evaluation of the site energy distribution of heterogeneous adsorbents.
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      A New Two-Parameter Isotherm for Modeling Adsorptive Removal of Water Contaminants

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    contributor authorKhim Hoong Chu
    contributor authorMohd Ali Hashim
    contributor authorJean Debord
    contributor authorMichel Harel
    contributor authorJean-Claude Bollinger
    date accessioned2024-04-27T20:53:32Z
    date available2024-04-27T20:53:32Z
    date issued2023/11/01
    identifier other10.1061-JOEEDU.EEENG-7419.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4296186
    description abstractThe two-parameter Elovich isotherm is increasingly being used to describe the adsorption of water contaminants on solid materials. This isotherm is derived from a modified version of Langmuir’s kinetic theory for saturable adsorption. However, despite incorporating a saturation capacity parameter, the Elovich isotherm fails to predict an adsorption maximum at high concentrations. As a result, there are disparities between the estimated and observed saturation capacities. In this study, we have identified a conceptual flaw within the Elovich isotherm responsible for this anomaly. By introducing modifications to the theoretical derivation of the Elovich isotherm, we have rectified the conceptual defect. The modified isotherm retains the two parameters of the Elovich isotherm but possesses a different mathematical structure. In contrast to the Elovich isotherm, the new isotherm provides estimated saturation capacities that align closely with the observed values. A comparative analysis demonstrates the superiority of the new isotherm over the Elovich isotherm in fitting data featuring a plateau. However, the new isotherm is loading-implicit, posing challenges in data fitting. To overcome this limitation, we have developed a novel method to convert the loading-implicit isotherm into an explicit form. This conversion enables convenient data fitting and facilitates the evaluation of the site energy distribution of heterogeneous adsorbents.
    publisherASCE
    titleA New Two-Parameter Isotherm for Modeling Adsorptive Removal of Water Contaminants
    typeJournal Article
    journal volume149
    journal issue11
    journal titleJournal of Environmental Engineering
    identifier doi10.1061/JOEEDU.EEENG-7419
    journal fristpage04023079-1
    journal lastpage04023079-10
    page10
    treeJournal of Environmental Engineering:;2023:;Volume ( 149 ):;issue: 011
    contenttypeFulltext
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