[1] |
Kastner V, Somitsch W, Schnitzhofer W. The anaerobic fermentation of food waste: A comparison of two bioreactor systems[J]. Journal of Cleaner Production, 2012, 34:82-90
|
[2] |
Bernstad A, la Cour Jansen J. A life cycle approach to the management of household food waste -A Swedish full-scale case study[J]. Waste Management, 2011, 31:1879-1896
|
[3] |
Righi S, Oliviero L, Pedrini M, et al. Life Cycle Assessment of management systems for sewage sludge and food waste: centralized and decentralized approaches[J]. Journal of Cleaner Production, 2013, 44:8-17
|
[4] |
Mata-Alvarez J. Biomethanization of the organic fraction of municipal solid waste[M]. London, UK: IWA Publishing, 2003:141-178
|
[5] |
Gebrezgabhera S A, Meuwissen M P M, Prins B A M, et al. Economic analysis of anaerobic digestion-A case of Green power biogas plant in the Netherlands[J]. NJAS -Wageningen Journal of Life Sciences, 2010, 57(2):109-115
|
[6] |
Cho J K, Park S C, Chang H N. Biochemical methane potential and solid state anaerobic digestion of Korean food wastes[J].Bioresource Technology, 1995, 52: 245-253
|
[7] |
李东,袁振宏,张宇,等.城市生活有机垃圾各组分的厌氧消化产甲烷能力[J].环境科学学报,2008,28(11):2284-2290
|
[8] |
Li Y Q, Zhang R H, Liu X Y, et al. Evaluating methane production from anaerobic mono-and co-digestion of kitchen waste, corn stover, and chicken manure[J]. Energy Fuels, 2013, 27:2085-2091
|
[9] |
Li Y Q, Zhang R H, Liu G Q, et al. Comparison of methane production potential, biodegradability, and kinetics of different organic substrates[J]. Bioresource Technology, 2013, 149: 565-569
|
[10] |
APHA. Standard methods for the examination of water and wastewater[S]. Washington, DC: American Public Health Association, America Water Works Association, Water Environment Federation, 2005
|
[11] |
贾传兴,彭绪亚,刘国涛.有机垃圾两相厌氧消化氨氮累积模型的建立及验证[J].重庆大学学报,2011,34(1): 121-127
|
[12] |
李小建,冯文谦,曾彩明,等.油脂去除对餐厨垃圾压滤液厌氧消化的影响[J].环境化学,2012,31(4): 522-527
|
[13] |
赵蔚蔚,闫永强.沈阳市餐饮业餐厨垃圾性状及产生量的调查[J].环境卫生工程,2007,15(2): 10-14
|
[14] |
王攀,任连海,甘筱.城市餐厨垃圾产生现状调查及影响因素分析[J].环境科学与技术,2013,36(3): 181-185
|
[15] |
李亚红,王琦,蔡伟民.不同pH值条件下Fe3+、Cu2+和Zn2+对厨余垃圾两相厌氧消化水解酸化过程的影响[J].环境工程学报,2007,1(10): 116-119
|
[16] |
Chen Y, Cheng J J, Creamer K S. Inhibition of anaerobic digestion process: A review[J]. Bioresource Technology, 2008, 99(10): 4044-4064
|
[17] |
Cabbai V, Ballico M, Aneggi E, et al. BMP tests of source selected OFMSW to evaluate anaerobic codigestion with sewage sludge[J]. Waste Management, 2013, 33: 1626-1632
|
[18] |
Elbeshbishy E, Nakhla G, Hafez H. Biochemical methane potential (BMP) of food waste and primary sludge: Inuence of inoculum pre-incubation and inoculum source[J]. Bioresource Technology, 2010, 110: 18-25
|
[19] |
Sliesa J A, Brekelmans J, Martín M A, et al. Impact of ammonia and sulphate concentration on thermophilic anaerobic digestion[J]. Bioresource Technology, 2010, 101(23): 9040-9048
|
[20] |
Cavaleiro A J, Ferreira T, Pereira F, et al. Biochemical methane potential of raw and pre-treated meat-processing wastes[J]. Bioresource Technology, 2013, 129: 519-525
|
[21] |
Symons G E, Buswell A M. The methane fermentation of carbohydrates[J]. Journal of the American Chemical Society, 1933,55: 2028-2036
|
[22] |
Raposo F, Fernández-Cegrí V, De la Rubia M A, et al. Biochemical methane potential (BMP) of solid organic substrates: evaluation of anaerobic biodegradability using data from an international interlaboratory study[J]. Journal of Chemical Technology and Biotechnology, 2011, 86: 1088-1098
|
[23] |
Heo N H, Park S C, Kang H. Effects of mixture ratio and hydraulic retention time on single-stage anaerobic co-digestion of food waste and waste activated sludge[J]. Journal of Environmental Science and Health, 2004, A39 (7): 1739-1756
|
[24] |
李荣平,葛亚军,王奎升,等.餐厨垃圾特性及其厌氧消化性能研究[J].可再生能源,2010,28(1): 76-80
|
[25] |
Murphy J D, McKeogh E. Technical, economic and environmental analysis of energy production from municipal solid waste[J]. Renewable Energy, 2004, 29: 1043-1057
|
[26] |
Zhang L, Jahng D. Long-term anaerobic digestion of food waste stabilized by trace elements[J]. Waste Management, 2012, 32: 1509-1515
|
[27] |
Dai X H, Duan N N, Dong B, et al. High-solids anaerobic co-digestion of sewage sludge and food waste in comparison with mono digestions: Stability and performance[J]. Waste Management, 2013, 33: 308-316
|
[28] |
Nagao N, Tajima N, Kawai M, et al. Maximum organic loading rate for the single-stage wet anaerobic digestion of food waste[J]. Bioresource Technology, 2012, 118: 210-218
|