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1.
Biotechnol Prog ; 19(3): 828-32, 2003.
Artigo em Inglês | MEDLINE | ID: mdl-12790646

RESUMO

Municipal sewage sludge was immobilized with a modified alginate gel entrapment method, and the immobilized cells were used to produce hydrogen gas in a three-phase fluidized bed. The hydrogen-producing fluidized beds were operated at different liquid velocity (U(0)) and hydraulic retention time (HRT). The results show that in response to operating liquid velocities, the fluidized-bed system had three flow regimes, namely, plug flow, slug flow, and free bubbling. Pressure fluctuation analysis was used to analyze the hydrodynamic properties in this three-phase fluidized bed when it was under a steady-state production of biogas. With a steady-state biogas production rate (U(g)) of 0.196 mL/s/L, a transition state occurred at a liquid velocity (U(0)) of 0.85 cm/s. As U(0) < 0.85 cm/s, the system was basically a nonhomogeneous fluidized bed, whereas the bed became homogeneous when U(0) was higher than 0.85 cm/s. The fluidized bed can be stably carried out at high loading rates (HRT as low as 2 h). Hydrogen fermentation results show that the maximal hydrogen production rate was 0.93 L/h/L and the best yield (Y(H)2(/sucrose)) was 2.67 mol H(2)/mol sucrose.


Assuntos
Técnicas de Cultura de Células/instrumentação , Técnicas de Cultura de Células/métodos , Hidrogênio/isolamento & purificação , Hidrogênio/metabolismo , Reologia/instrumentação , Reologia/métodos , Esgotos/microbiologia , Biotransformação , Células Imobilizadas/fisiologia , Desenho de Equipamento , Análise de Falha de Equipamento , Estudos de Viabilidade , Resíduos Industriais/prevenção & controle , Temperatura , Purificação da Água/métodos
2.
Biotechnol Prog ; 18(5): 921-6, 2002.
Artigo em Inglês | MEDLINE | ID: mdl-12363341

RESUMO

Municipal sewage sludge was immobilized to produce hydrogen gas under anaerobic conditions. Cell immobilization was essentially achieved by gel entrapment approaches, which were physically or chemically modified by addition of activated carbon (AC), polyurethane (PU), and acrylic latex plus silicone (ALSC). The performance of hydrogen fermentation with a variety of immobilized-cell systems was assessed to identify the optimal type of immobilized cells for practical uses. With sucrose as the limiting carbon source, hydrogen production was more efficient with the immobilized-cell system than with the suspended-cell system, and in both cases the predominant soluble metabolites were butyric acid and acetic acid. Addition of activated carbon into alginate gel (denoted as CA/AC cells) enhanced the hydrogen production rate (v(H2)) and substrate-based yield (Y((H2)/sucrose)) by 70% and 52%, respectively, over the conventional alginate-immobilized cells. Further supplementation of polyurethane or acrylic latex/silicone increased the mechanical strength and operation stability of the immobilized cells but caused a decrease in the hydrogen production rate. Kinetic studies show that the dependence of specific hydrogen production rates on the concentration of limiting substrate (sucrose) can be described by Michaelis-Menten model with good agreement. The kinetic analysis suggests that CA/AC cells may contain higher concentration of active biocatalysts for hydrogen production, while PU and ALSC cells had better affinity to the substrate. Acclimation of the immobilized cells led to a remarkable enhancement in v(H2) with a 25-fold increase for CA/AC and ca. 10- to 15-fold increases for PU and ALSC cells. However, the ALSC cells were found to have better durability than PU and CA/AC cells as they allowed stable hydrogen production for over 24 repeated runs.


Assuntos
Anaerobiose , Bactérias Anaeróbias/metabolismo , Hidrogênio/metabolismo , Microbiologia Industrial/métodos , Esgotos/microbiologia , Sacarose/metabolismo , Alginatos , Células Imobilizadas , Carvão Vegetal , Fermentação , Géis , Ácido Glucurônico , Ácidos Hexurônicos , Membranas Artificiais , Poliuretanos , Controle de Qualidade , Reprodutibilidade dos Testes , Sensibilidade e Especificidade , Géis de Silicone
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