Theoretical analysis of the kinetic performance of laboratory- and full-scale composting systems

被引:8
作者
Baptista, Marco [1 ,2 ]
Silveira, Ana [1 ]
Antunes, Fernando [3 ]
机构
[1] Univ Nova Lisboa, Dept Ciencias & Engn Ambiente, Fac Ciencias & Tecnol, P-2829516 Quinta De Torre, Caparica, Portugal
[2] Inst Nacl Recursos Biol IP, Unidade Ambiente & Recursos Nat, Inst Nacl Invest Agr, Lisbon, Portugal
[3] Univ Lisbon, Dept & Ctr Quim & Bioqum, Fac Ciencias, P-1699 Lisbon, Portugal
关键词
Composting; kinetics; rate constant; full-scale; food waste; particle size; SUBSTRATE DEGRADATION PATTERNS; HOUSEHOLD WASTE; PART; REACTOR; OPTIMIZATION; ENVIRONMENT; EMISSIONS; BIOWASTE; AMMONIA; MODEL;
D O I
10.1177/0734242X11433528
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Composting research at laboratory-scale is critical for the development of optimized full-scale plants. Discrepancies between processes at laboratory-scale and full-scale systems have been investigated in terms of heat balances, but a kinetic analysis of this issue is still missing. In this study, the composting rate at laboratory-scale was, on average, between 1.9 and 5.7 times faster than in full-scale systems for a set of published studies using municipal solid waste, food waste or similar materials. Laboratory-scale performance and full-scale systems were limited to 71 and 46%, respectively, of their maximum potential due to poor management of environmental process conditions far from their optimum. The main limiting environmental factor was found to be moisture content, followed by temperature. Besides environmental factors, waste composition and particle size were identified as factors accounting for kinetic differences between laboratory- and full-scale systems. Overall, this study identifies those factors that affect the kinetics of the composting process most and revealed a significant margin for reducing process time in full-scale composting.
引用
收藏
页码:700 / 707
页数:8
相关论文
共 37 条
[1]  
Adani F, 2000, WASTE MANAGE RES, V18, P471
[2]   Diagnosis and optimization of the composting process in full-scale mechanical-biological treatment plants [J].
Baptista, Marco ;
Antunes, Fernando ;
Silveira, Ana .
WASTE MANAGEMENT & RESEARCH, 2011, 29 (06) :565-573
[3]   Composting kinetics in full-scale mechanical-biological treatment plants [J].
Baptista, Marco ;
Antunes, Fernando ;
Goncalves, Manuel Souteiro ;
Morvan, Bernard ;
Silveira, Ana .
WASTE MANAGEMENT, 2010, 30 (10) :1908-1921
[4]   Kinetic analysis of forced aeration composting - I. Reaction rates and temperature [J].
Bari, QH ;
Koenig, A ;
Guihe, T .
WASTE MANAGEMENT & RESEARCH, 2000, 18 (04) :303-312
[5]  
Beck-Friis B, 2003, COMPOST SCI UTIL, V11, P41
[6]   Gaseous emissions of carbon dioxide, ammonia and nitrous oxide from organic household waste in a compost reactor under different temperature regimes [J].
Beck-Friis, B ;
Smårs, S ;
Jönsson, H ;
Kirchmann, H .
JOURNAL OF AGRICULTURAL ENGINEERING RESEARCH, 2001, 78 (04) :423-430
[7]   Modelling of composting of food waste in a column reactor [J].
Briski, F. ;
Vukovic, M. ;
Papa, K. ;
Gomzi, Z. ;
Domanovac, T. .
CHEMICAL PAPERS, 2007, 61 (01) :24-29
[8]   Composting of vegetable waste [J].
Chang, James I. ;
Tsai, J. J. ;
Wu, K. H. .
WASTE MANAGEMENT & RESEARCH, 2006, 24 (04) :354-362
[9]   Carbon turnover and ammonia emissions during composting of biowaste at different temperatures [J].
Eklind, Ylva ;
Sundberg, Cecilia ;
Smars, Sven ;
Steger, Kristin ;
Sundh, Ingvar ;
Kirchmann, Holger ;
Joensson, Hakan .
JOURNAL OF ENVIRONMENTAL QUALITY, 2007, 36 (05) :1512-1520
[10]  
Finstein M. S., 1992, Environmental microbiology., P355