[1] |
巴苏. 生物质气化和热解:实际设计和理论 [M]. 北京: 学术出版社, 2010. BASU P. Biomass Gasification and Pyrolysis: Practical Design and Theory [M]. Beijing: Academic Press, 2010.
|
[2] |
孙立, 张晓东. 生物质热解气化原理与技术 [M]. 北京:化学工业出版社, 2013. SUN L, ZHANG X D. Biomass Pyrolysis Gasification Principle and Technology [M]. Beijing: Chemical Industry Press, 2013.
|
[3] |
李春柱. 维多利亚时代的褐煤的科学进展 [M]. 余江龙,常丽萍, 译. 北京: 化学工业出版社, 2009:109. LI C Z. Advances in the Science of Victorian Brown Coal [M]. YU J L, CHANG L P, trans. Beijing: Chemical Industry Press, 2009:109.
|
[4] |
谢克昌. 煤的结构和反应性 [M]. 北京: 科学出版社, 2002:222. XIE K C. Coal Structure and Its Reactivity [M]. Beijing: Science Press, 2002:222.
|
[5] |
SONG Y, XIANG J, HU S, et al. Importance of the aromatic structures in volatiles to the in-situ destruction of nascent tar during the volatile-char interactions [J]. Fuel Processing Technology, 2015, 132: 31-38.
|
[6] |
KRERKKAIWAN S, FUSHIMI C, YAMAMOTO H, et al. Influences of heating rate during coal char preparation and AAEMs on volatile-char interaction with different sources of biomass volatile [J]. Fuel Processing Technology, 2014, 119: 10-18.
|
[7] |
ZHANG S, MIN Z, TAY H L, et al. Effects of volatile-char interactions on the evolution of char structure during the gasification of Victorian brown coal in steam [J]. Fuel, 2011, 90 (4): 1529-1535.
|
[8] |
REED T B, GAUR S. A survey of biomass gasification 2000: gasifier projects and manufacturers around the world[R]. Biomass Energy Foundation, 1999.
|
[9] |
MUHAMMAD N, OMAR W N, MAN Z, et al. Effect of ionic liquid treatment on pyrolysis products from bamboo [J]. Industrial & Engineering Chemistry Research, 2012, 51 (5): 2280-2289.
|
[10] |
LOU R, WU S B, LV G J. Fast pyrolysis of enzymatic/mild acidolysis lignin from moso bamboo [J]. BioResources, 2010, 5 (2): 827-837.
|
[11] |
LOU R, WU S B, LV G J. Effect of conditions on fast pyrolysis of bamboo lignin [J]. Journal of Analytical and Applied Pyrolysis, 2010, 89 (2): 191-196.
|
[12] |
KANTARELIS E, LIU J, YANG W, et al. Sustainable valorization of bamboo via high-temperature steam pyrolysis for energy production and added value materials [J]. Energy & Fuels, 2010, 24 (11): 6142-6150.
|
[13] |
REN X Y, ZHANG Z T, WANG W L, et al. Transformation and products distribution of moso bamboo and derived components during pyrolysis [J]. BioResources, 2013, 8 (3): 3685-3698.
|
[14] |
XIAO G, NI M J, HUANG H, et al. Fluidized-bed pyrolysis of waste bamboo [J]. Journal of Zhejiang University Science A, 2007, 8 (9): 1495-1499.
|
[15] |
ZHANG L X, KUDO S, TSUBOUCHI N, et al. Catalytic effects of Na and Ca from inexpensive materials on in-situ steam gasification of char from rapid pyrolysis of low rank coal in a drop-tube reactor [J]. Fuel Processing Technology, 2013, 113: 1-7.
|
[16] |
JENSEN P A, FRANDSEN F, DAM-JOHANSEN K, et al. Experimental investigation of the transformation and release to gas phase of potassium and chlorine during straw pyrolysis [J]. Energy & Fuels, 2000, 14 (6): 1280-1285.
|
[17] |
KEOWN D M, FAVAS G, HAYASHI J I, et al. Volatilisation of alkali and alkaline earth metallic species during the pyrolysis of biomass: differences between sugar cane bagasse and cane trash [J]. Bioresource Technology, 2005, 96 (14): 1570-1577.
|
[18] |
SATHE C, PANG Y, LI C Z. Effects of heating rate and ion-exchangeable cations on the pyrolysis yields from a Victorian brown coal [J]. Energy & Fuels, 1999, 13 (3): 748-755.
|
[19] |
JAMIL K, HAYASHI J I, LI C Z. Pyrolysis of a Victorian brown coal and gasification of nascent char in CO2 atmosphere in a wire-mesh reactor [J]. Fuel, 2004, 83 (7): 833-843.
|
[20] |
SATHE C, HAYASHI J I, LI C Z, et al. Combined effects of pressure and ion-exchangeable metallic species on pyrolysis of Victorian lignite [J]. Fuel, 2003, 82 (3): 343-350.
|
[21] |
XU W C, TOMITA A. Effect of coal type on the flash pyrolysis of various coals [J]. Fuel, 1987, 66 (5): 627-631.
|
[22] |
XU W C, TOMITA A. Effect of temperature on the flash pyrolysis of various coals [J]. Fuel, 1987, 66 (5): 632-636.
|
[23] |
MAE K, MAKI T, MIURA K. A new method for estimating the cross-linking reaction during the pyrolysis of brown coal [J].Journal of Chemical Engineering of Japan, 2002, 35 (8): 778-785.
|
[24] |
SCHAFER H N. Pyrolysis of brown coals (Ⅰ): Decomposition of acid groups in coals containing carboxyl groups in the acid and cation forms [J]. Fuel, 1979, 58 (9): 667-672.
|
[25] |
SCHAFER H N. Pyrolysis of brown coals (Ⅱ): Decomposition of acidic groups on heating in the range 100-900℃ [J]. Fuel, 1979, 58 (9): 673-679.
|
[26] |
HAYASHI J I, TAKAHASHI H, DOI S, et al. Reactions in brown coal pyrolysis responsible for heating rate effect on tar yield [J]. Energy & Fuels, 2000, 14 (2): 400-408.
|
[27] |
吴文广. 生物质焦油均相转化及其在焦炭中异相脱除的实验研究[D]. 上海: 上海交通大学, 2012. WU W G. Experimental investigation of homogeneous conversion and heterogeneous decomposition of pyrolytic biomass tar [D]. Shanghai: Shanghai Jiao Tong University, 2012.
|
[28] |
REED T B, GAUR S. A survey of biomass gasification [R]. National Renewable Energy Laboratory, 1998.
|
[29] |
MASCHIO G, KOUFOPANOS C, LUCCHESI A. Pyrolysis, a promising route for biomass utilization [J]. Bioresource Technology, 1992, 42 (3): 219-231.
|
[30] |
BALDWIN R M, MAGRINI-BAIR K A, NIMLOS M R, et al. Current research on thermochemical conversion of biomass at the National Renewable Energy Laboratory [J]. Applied Catalysis B: Environmental, 2012, 115: 320-329.
|