[1]席北斗,魏自民,刘鸿亮. 有机固体废弃物管理与资源化技术[M]. 北京:国防工业出版社,2006.
[2]Haug R T. The practical handbook of compost engineering[M]. Boca Raton:Lewis Publishers,1993.
[3]罗一鸣,李国学,Schuchardt F,等. 过磷酸钙添加剂对猪粪堆肥温室气体和氨气减排的作用[J]. 农业工程学报,2012,28(22):235-242.
[4]Parry M L,Canziani O F,Paluti J P,et al. IPCC fourth assessment report:climate change 2007:contribution of working group Ⅱ to the fourth assessment report of the intergovernmental panel on climate change[R]. Cambridg:Cambridge University Press,2007:212-213.
[5]Chowdhury M A,de Neergaard A,Jensen L S. Potential of aeration flow rate and bio-char addition to reduce greenhouse gas and ammonia emissions during manure composting[J]. Chemosphere,2014,97:16-25.
[6]赵晨阳,李洪枚,魏源送,等. 翻堆频率对猪粪条垛堆肥过程温室气体和氨气排放的影响[J]. 环境科学,2014,35(2):533-540.
[7]江滔,Schuchardt F,李国学. 冬季堆肥中翻堆和覆盖对温室气体和氨气排放的影响[J]. 农业工程学报,2011,27(10):212-217.
[8]Zhang H Y,Li C P,Li G X,et al. Effect of spent air reusing (SAR) on maturity and greenhouse gas emissions during municipal solid waste (MSW) composting-with different pile height[J]. Procedia Environmental Sciences,2012,16 (16):59-69.
[9]Jiang T,Schuchardt F,Li G,et al. Effect of C/N ratio,aeration rate and moisture content on ammonia and greenhouse gas emission during the composting[J]. Journal of Environmental Sciences,2011,23(10):1754-1760.
[10]Shen Y,Ren L,Li G,et al. Influence of aeration on CH4,N2O and NH3 emissions during aerobic composting of a chicken manure and high C/N waste mixture[J]. Waste Management,2011,31(1):33-38.
[11]沈洪艳,张相锋,董世魁,等. 餐厨垃圾和绿化废弃物好氧堆肥过程中温室气体排放研究[J]. 河南农业大学学报,2013,47(2):202-205.
[12]Cayuela M L,Sánchez-Monedero M A,Roig A,et al. Biochemical changes and GHG emissions during composting of lignocellulosic residues with different N-rich by-products[J]. Chemosphere,2012,88(2):196-203.
[13]Bautista J M,Kim H,Ahn D H,et al. Changes in physicochemical properties and gaseous emissions of composting swine manure amended with alum and zeolite[J]. Korean Journal of Chemical Engineering,2011,28(1):189-194.
[14]杨帆,李国学,江滔,等. 蚯蚓辅助堆肥处理蔬菜废弃物及其温室气体减排效果[J]. 农业工程学报,2012,28(16):190-196.
[15]Chen Y X,Huang X D,Han Z Y,et al. Effects of bamboo charcoal and bamboo vinegar on nitrogen conservation and heavy metals immobility during pig manure composting[J]. Chemosphere,2010,78(9):1177-1181.
[16]Mu J,Uehara T,Furuno T. Effect of bamboo vinegar on regulation of germination and radicle growth of seed plants[J]. Journal of Wood Science,2003,49(3):262-270.
[17]Zhou L,Jiang E C,Li B S. Effect of wood vinegar on seed germination and water implantation of corn[J]. Journal of Northeast Agricultural University,2009,16(2):6-11.
[18]Kadota M,Niimi Y. Effects of charcoal with pyroligneous acid and barnyard manure on bedding plants[J]. Scientia Horticulturae,2004,101(3):327-332.
[19]Saberi M,Hassan A,Sarpeleh A,et al. Wood vinegar as a biological product for managing Fusarium oxysporum f.sp. radicis-cucumerinum[J]. Canadian Journal of Plant Protection,2013,1(4):129-133.
[20]Wititsiri S. Production of wood vinegars from coconut shells and additional materials for control of termite workers,Odontotermes sp.and striped mealy bugs,Ferrisia virgata[J]. Songklanakarin J Sci Technol,2011,33(3):349-354.
[21]Wang H F,Wang J L,Wang C,et al. Effect of bamboo vinegar as an antibiotic alternative on growth performance and fecal bacterial communities of weaned piglets[J]. Livestock Science,2012,144(1/2):173-180.
[22]Yan L,Kim I H,Huh K. Influence of bamboo vinegar supplementation on growth performance,apparent total tract digestibility,blood characteristics,meat quality,fecal noxious gas content,and fecal microbial concentration in finishing pigs[J]. Livestock Science,2012,144(3):240-246.
[23]鲍士旦. 土壤农化分析[M]. 北京:中国农业出版社,1981:438-441.
[24]Rabl A,Benoist A,Dron D,et al. How to account for CO2 emissions from biomass in an LCA[J]. The International Journal of Life Cycle Assessment,2007,12(5):281.
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Zhang Hongxi,et al.Extraction of lignin from cotton stalks by pulping autocatalytic method of ethanol[J].Jiangsu Agricultural Sciences,2013,41(09):243.
[2]王香祖,刘瑞玲,席继锋,等.添加棉秆制作发酵床养猪效果试验[J].江苏农业科学,2014,42(03):157.
Wang Xiangzu,et al.Study on effect of fermentation bed made by cotton stalk on swine rearing[J].Jiangsu Agricultural Sciences,2014,42(09):157.
[3]何伟,耿莉莉,曾永明,等.甲酸法分离棉秆木质素的条件优化[J].江苏农业科学,2016,44(08):383.
He wei,et al.Optimization of separation condition of lignin from cotton stalk by formic acid[J].Jiangsu Agricultural Sciences,2016,44(09):383.
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Chen Zhenxin,et al.Effects of different additives ratios on efficiency and heavy metal forms during sewage sludge composting process[J].Jiangsu Agricultural Sciences,2017,45(09):227.
[5]崔纪成,杨瑛.棉秆活性炭制备工艺及其碘吸附性能[J].江苏农业科学,2017,45(02):245.
Cui Jicheng,et al.Preparation process of cotton stalk-based activated carbon and its adsorption capacity[J].Jiangsu Agricultural Sciences,2017,45(09):245.
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Zhou Lin,et al.Preliminary study on preparation of cotton stalk-based activated carbon in southern Xinjiang by three-stage method[J].Jiangsu Agricultural Sciences,2019,47(09):229.
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Yuan Yuan,et al.Research progress on aerobic composting of vegetable wastes[J].Jiangsu Agricultural Sciences,2022,50(09):29.
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