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Anaerobic rumen SBR for degradation of cellulosic material

机译:厌氧瘤胃SBR降解纤维素材料

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Hydrolysis of organic particulates under anaerobic conditions is generally regarded as the rate limiting step in solid digestion processes. Rumen-based ecosystems appear to achieve very high hydrolysis rates for cellulosic organic material. This study aimed at the development and demonstration of an anaerobic sequencing batch reactor (SBR) process operating with a rumen-based microbial inoculum. Fibrous alpha cellulose was used as sole carbon substrate and the use of an SBR operating cycle allowed the utilisation of a high liquid flow rate (hydraulic retention time of 0.67 d) while maintaining a much longer solids retention time of 7 d. Complete mass balances for carbon and nitrogen, as well as GOD balancing allowed the full characterisation of the process stoichiometry and kinetics. Elemental analysis of the biomass revealed a composition of C5H4.8O2.4N0.7, which is quite different from other generic biomass compositions used in the literature. The anaerobic rumen SBR was compared with another rumen-based reactor system in the literature which used a continuous filtration process for solid/liquid separation. This comparison showed that the volatile fatty acid production rate from cellulose in the anaerobic SBR was comparable with the performance achieved in the,continuous system, although loading, substrate type and media composition were quite different between these two studies. Further evaluation of the anaerobic rumen SBR is required to determine its practical application for other substrates and to demonstrate the scale-up potential of this concept.
机译:在厌氧条件下水解有机颗粒通常被认为是固体消化过程中的限速步骤。基于瘤胃的生态系统似乎对纤维素有机材料实现了很高的水解速度。这项研究旨在开发和演示基于瘤胃微生物接种物的厌氧测序批处理反应器(SBR)工艺。纤维状α纤维素被用作唯一的碳基质,并且使用SBR操作循环允许利用高液体流速(液体保留时间为0.67 d),同时保持更长的7 d固体保留时间。碳和氮的完整质量平衡以及GOD平衡使工艺化学计量和动力学得以全面表征。对生物质的元素分析显示C5H4.8O2.4N0.7的组成与文献中使用的其他通用生物质组成有很大不同。将厌氧瘤胃SBR与另一种基于瘤胃的反应器系统进行了比较,该系统使用连续过滤过程进行固/液分离。该比较表明,厌氧SBR中纤维素的挥发性脂肪酸生成速率与连续系统中获得的性能相当,尽管这两项研究之间的负载,底物类型和培养基组成存在很大差异。需要对厌氧瘤胃SBR进行进一步评估,以确定其在其他底物上的实际应用,并证明该概念的放大潜力。

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