4.7 Article

Multi-resistance kinetic models for biosorption of Cd by raw and immobilized citrus peels in batch and packed-bed columns

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 244, Issue -, Pages 105-116

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2013.12.017

Keywords

Biosorption; Batch kinetics; Film-diffusion model; Intraparticle diffusion model; Breakthrough curve prediction

Funding

  1. National Research Initiative of the USDA Cooperative State Research, Education, and Extension Service [2005-35504-16092]
  2. USGS NIWR grant

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Biosorbents should be of suitable size and stability for successful use in packed-bed columns, a reactor type commonly used in industrial sorption or ion exchange processes. Two polymeric materials (calcium alginate and agar) were investigated for immobilization of citrus peels to improve biosorbent properties. By varying relevant parameters such as initial concentration, flow rate, and bed height, immobilized peels and raw peels pre-saturated with calcium and hydrogen ions were compared for cadmium biosorption in equilibrium and kinetic batch experiments as well as in fixed-bed reactors. The batch equilibrium was described by Langmuir and Freundlich isotherms, with the following affinity sequence: protonated raw peels (PRP) approximate to protonated alginate-immobilized peels (PALP) > agar-immobilized peels (AGP) > calcinated raw peels (CRP). The Langmuir uptake capacity followed the order PALP > CRP > PRP > AGP. Batch kinetics was described by three mass transfer models (based on external resistance, intraparticle resistance, and both) and by three surface reaction models (pseudo first order, pseudo second order, and Langmuir kinetics). Frequently used mass transfer models such as Weber-Morris, Boyd, and Urano were reviewed, revealing that these models are different approximations of the same parent model. The suitability of using Weber-Morris and Boyd plots to determine the dominating mass transfer resistance was critically evaluated, and mathematically analogous models were identified. Breakthrough curves were simulated by a surface reaction model (Bohart-Adams) and were predicted a priori by a mass transfer model (Klin-kenberg) using external and intraparticle mass transfer coefficients from engineering correlation and batch kinetic data, respectively. (C) 2013 Elsevier B.V. All rights reserved.

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