生物降解
甲烷
纤维素
化学
无氧运动
淀粉
生物量(生态学)
基质(水族馆)
食品科学
制浆造纸工业
有机化学
生物
农学
生理学
生态学
工程类
作者
F. Raposo,V. Fernández‐Cegrí,M.A. de la Rubia,R. Borja,Fabrice Béline,Cristina Cavınato,Göksel N. Demirer,Belén Fernández,M. Fdz-Polanco,Jean‐Claude Frigon,Rangaraj Ganesh,Prasad Kaparaju,J. Koubova,R. Méndez,G. Menin,A. Peene,Paul Scherer,M. Torrijos,Hinrich Uellendahl,Isabella Wierinck
摘要
Abstract BACKGROUND: This paper describes results obtained for different participating research groups in an interlaboratory study related to biochemical methane potential (BMP). In this research work, all experimental conditions influencing the test such as inoculum, substrate characteristics and experimental conditions were investigated. The study was performed using four substrates: three positive control substrates (starch, cellulose and gelatine), and one raw biomass material (mung bean) at two different inoculum to substrate ratios (ISR). RESULTS: The average methane yields for starch, cellulose, gelatine and mung bean at ISR of 2 and 1 were 350 ± 33, 350 ± 29, 380 ± 42, 370 ± 36 and 370 ± 35 mL CH 4 g −1 VS added , respectively. The percentages of biotransformation of these substrates into methane were 85 ± 8, 85 ± 7, 88 ± 9, 85 ± 8 and 85 ± 8%, respectively. On the other hand, the first‐order rate constants obtained from the experimental data were 0.24 ± 0.14, 0.23 ± 0.15, 0.27 ± 0.13, 0.31 ± 0.17 and 0.23 ± 0.13 d −1 , respectively. CONCLUSION: The influence of inocula and experimental factors was nearly insignificant with respect to the extents of the anaerobic biodegradation, while the rates differed significantly according to the experimental approaches. Copyright © 2011 Society of Chemical Industry
科研通智能强力驱动
Strongly Powered by AbleSci AI