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Biochemical engineering journal, 2019-11, Vol.151, p.107308, Article 107308
2019
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Autor(en) / Beteiligte
Titel
Modeling of organic shock loading in a fluidized-bed bioreactor containing sorbent particles
Ist Teil von
  • Biochemical engineering journal, 2019-11, Vol.151, p.107308, Article 107308
Ort / Verlag
Elsevier B.V
Erscheinungsjahr
2019
Quelle
Alma/SFX Local Collection
Beschreibungen/Notizen
  • [Display omitted] •Robustness of a fluidized-bed bioreactor under transient organic shock-loading.•A cyclodextrin-based hydrogel with sorption capacity used as biomass carrier.•A shock-loading index defines the combined effect of concentration peak and duration.•A simple model predicts successfully the substrate concentration in the bioreactor. This work explores the behavior of a fluidized-bed bioreactor, packed with a hydrogel carrier of cyclodextrin-based polymer, under transient shock-loading events to evaluate its robustness and stability. Fourteen input rectangular pulses with different steps (6–24 times the baseline concentration) and duration (0.5–8 times the hydraulic residence time) were applied and the dynamic responses measured. A new shock-loading index is defined to quantify the combined effect of the influent concentration increase and the perturbation duration. The shock-loading index is directly proportional to the extra amount of phenol removed, to the additional oxygen consumed in the shock pulse, and to the time to return to baseline conditions. A simple model was developed to predict the effluent phenol concentration under pulsed shock-loading events. It assumes that a continuous-flow complete-mix system without diffusional mass transfer resistance in the biofilm. In addition, substrate adsorption is modeled using a simple concept based on the constant-pattern theory, while substrate biodegradation is described by the Haldane model. In spite of its conceptual simplicity, the model provides a pragmatic approach predicting a good match for data obtained during overload events (R2 = 0.9810). The best-fitting parameters obtained were μM = 0.166 ± 0.007 d–1, KS = 8.62 ± 0.46 mg/L, and KI = 95.3 ± 3.8 mg/L.
Sprache
Englisch
Identifikatoren
ISSN: 1369-703X
eISSN: 1873-295X
DOI: 10.1016/j.bej.2019.107308
Titel-ID: cdi_crossref_primary_10_1016_j_bej_2019_107308

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