1 |
中华人民共和国国家统计局.中国统计年鉴[M].北京:中国统计出版社,2020.
|
|
National Bureau of Statistics of the People's Republic of China.China Statistical Yearbook[M].Beijing:China Statistics Press,2020.
|
2 |
王兆夺,祝超伟,于东生.全球气候变化背景下对“温室效应”的思考[J].辽宁师范大学学报:自然科学版,2017,40(3):407-414.
|
|
WANG Zhaoduo, ZHU Chaowei, YU Dongsheng.On“Greenhouse Effect”under the background of global climate change[J].Journal of Liaoning Normal University:Natural Science Edition,2017,40(3):407-414.
|
3 |
IRFAN M, ELAVARASAN R M, AHMAD M,et al.Prioritizing and overcoming biomass energy barriers:Application of AHP and G-TOPSIS approaches[J].Technological Forecasting and Social Change,2022,177.Doi:10.1016/j.techfore.2022.121524 .
|
4 |
聂永增.对于酒糟综合利用现状及创新应用的思考[J].轻工科技,2021,37(9):11-12.
|
|
NIE Yongzeng.Thoughts on the comprehensive utilization of distiller's grains and its innovative application[J].Light Industry Science and Technology,2021,37(9):11-12.
|
5 |
张德成,敖先权,陈前林,等.酒糟与煤焦在CO2气氛下的共气化活性[J].过程工程学报,2016,16(4):629-633.
|
|
ZHANG Decheng, AO Xianquan, CHEN Qianlin,et al.Co-gasification characteristics of distillery residue with coal char in CO2 atmosphere[J].The Chinese Journal of Process Engineering,2016,16(4):629-633.
|
6 |
WANG Jiaxing, ZHANG Shuping, XU Dan,et al.Catalytic activity evaluation and deactivation progress of red mud/carbonaceous catalyst for efficient biomass gasification tar cracking[J].Fuel,2022,323.Doi:10.1016/j.fuel.2022.124278 .
|
7 |
LV Jiwei, AO Aianquan, LI Qian,et al.Steam co-gasification of different ratios of spirit-based distillers′grains and anthracite coal to produce hydrogen-rich gas[J].Bioresource Technology,2019,283:59-66.
|
8 |
ZHAO Aiming, LV Jiwei, CHEN Qianlin,et al.Spirit-based distillers’grains and red mud synergistically catalyse the steam gasification of anthracite to produce hydrogen-rich synthesis gas[J].International Journal of Hydrogen Energy,2021,46(1):314-323.
|
9 |
PHOUNGLAMCHEIK A, BACKEBO M, ROBINSON R,et al.The significance of intraparticle and interparticle diffusion during CO2 gasification of biomass char in a packed bed[J].Fuel,2022,3.Doi:1010.1016/j.fuel.2021.122302 .
|
10 |
CAI Jianjun, ZHANG Wenheng, LUO Ming,et al.Evaluation of the CO2 gasification of residual char under a regeneration atmosphere via calcium-based chemical looping gasification[J].Chemical Engineering and Processing-Process Intensification,2021,168.Doi:10.1016/j.cep.2021.108564 .
|
11 |
NILSSON S, GOMEZ-BAREA A, OLLEROll P.Gasification of char from dried sewage sludge in fluidized bed:Reaction rate in mixtures of CO2 and H2O[J].Fuel,2013,105:764-768.
|
12 |
CHANG Guozhang, YAN Ximin, QI Pengyu,et al.Characteristics of reactivity and structures of palm kernel shell(PKS) biochar during CO2/H2O mixture gasification[J].Chinese Journal of Chemical Engineering,2018,26(10):2153-2161.
|
13 |
关昱,张彦迪,刘银河.CO2/H2O气氛下红沙泉煤中碱(土)金属的分布及其气化反应特性[J].燃料化学学报,2022,50(6):674-682.
|
|
GUAN Yu, ZHANG Yandi, LIU Yinhe.Distribution of alkaline(earth) metals and gasification reaction characteristics of HSQ coal under CO2/H2O atmosphere[J].Journal of Fuel Chemistry and Technology,2022,50(6):674-682.
|
14 |
HOWANIEC N.Temperature induced development of porous structure of bituminous coal chars at high pressure[J].Journal of Sustainable Mining,2016,15(3):120-124.
|
15 |
GLENK G, REICHELSTEIN S.Economics of converting renewable power to hydrogen[J].Nature Energy,2019,4(3):216-222.
|
16 |
GUIZANI C, ESCUDERO-SANZ F J, SALVADOR S.The gasification reactivity of high-heating-rate chars in single and mixed atmospheres of H2O and CO2 [J].Fuel,2013,108:812-823.
|
17 |
MASSOUDI-FARID M, HWANG J.Competition between H2O and CO2 for active sites during co-gasification of bituminous coal and pineapple sawdust in an atmosphere containing H2O,CO2,H2,and CO[J].Fuel,2017,207:198-203.
|
18 |
ROBERTS D G, HARRIS D J.Char gasification kinetics in mixtures of CO2 and H2O:The role of partial pressure in determining the extent of competitive inhibition[J].Energy & Fuels,2014,28(12):7643-7648.
|
19 |
UMEMOTO S, KAJITANI S, HARA S.Modeling of coal char gasification in coexistence of CO2 and H2O considering sharing of active sites[J].Fuel,2013,103:14-21.
|
20 |
BAI Yonghui, LV Peng, YANG Xuhao,et al.Gasification of coal char in H2O/CO2 atmospheres:Evolution of surface morphology and pore structure[J].Fuel,2018,218:236-246.
|
21 |
GAO Meiqi, LV Peng, YANG Zhirong,et al.Effects of Ca/Na compounds on coal gasification reactivity and char characteristics in H2O/CO2 mixtures[J].Fuel,2017,206:107-116.
|
22 |
LIU Rui, ZHANG Yan, ZHENG Ling,et al.Some new insights into the synergy occurring during char gasification in CO2/H2O mixtures[J].Fuel,2020,268.Doi:10.1016/j.fuel.2020.117307 .
|
23 |
GIL M V, RIAZA J, ÁLVAREZ L,et al.Biomass devolatilization at high temperature under N2 and CO2:Char morphology and reactivity[J].Energy,2015,91:655-662.
|
24 |
WEI Juntao, GUO Qinghua, HE Qing,et al.Co-gasification of bituminous coal and hydrochar derived from municipal solid waste:Reactivity and synergy[J].Bioresource Technology,2017,239:482-489.
|
25 |
KORUS A, RAVENNI G, LOSKA K,et al.The importance of inherent inorganics and the surface area of wood char for its gasification reactivity and catalytic activity towards toluene conversi- on[J].Renewable Energy,2021,173:479-497.
|
26 |
MASSOUDI FARID M, JEONG H J, HWANG J.Kinetic study on coal-biomass mixed char co-gasification with H2O in the presence of H2 [J].Fuel,2016,181:1066-1073.
|
27 |
PARTHASARATHY P, K.S NARAYANAN.Hydrogen production from steam gasification of biomass:Influence of process parameters on hydrogen yield-A review[J].Renewable Energy,2014,66:570-579.
|
28 |
ELLIS N, MASNADI M S, ROBERTS D G.Mineral matter interactions during co-pyrolysis of coal and biomass and their impact on intrinsic char co-gasification reactivity[J].Chemical Engineering Journal,2015,279:402-408.
|
29 |
XU Deliang, YANG Liu, DING Kuan,et al.Mini-review on char catalysts for tar reforming during biomass gasification:The importance of char structure[J].Energy & Fuels,2020,34(2):1219-1229.
|
30 |
JAYARAMAN K, GOKALP I, JEYAKUMAR S.Estimation of synergetic effects of CO2 in high ash coal-char steam gasificati-on[J].Applied Thermal Engineering,2017,110:991-998.
|
31 |
黄艳琴,苏德仁,阴秀丽,等.木粉焦CO2和H2O气化过程孔结构及反应性的变化[J].燃料化学学报,2011,39(6):432- 437.
|
|
HUANG Yanqin, SU Deren, YIN Xiuli,et al.Changes of pore structure and reactivity during CO2 and H2O gasification of fir char[J].Journal of Fuel Chemistry and Technology,2011,39(6):432-437.
|
32 |
SHENG Changdong.Char structure characterised by Raman spectroscopy and its correlations with combustion reactivity[J].Fuel,2007,86(15):2316-2324.
|
33 |
LI Xiao, CHANG Guozhang, YANG Laishun,et al.Enhancement of coke gasification by lignite and a low-cost Fe/red mud catalyst to produce syngas[J].Journal of the Energy Institute,2021,98:116-123.
|
34 |
FENG Dongdong, ZHAO Yijun, ZHANG Yu,et al.Catalytic mechanism of ion-exchanging alkali and alkaline earth metallic species on biochar reactivity during CO2/H2O gasification[J].Fuel,2018,212:523-532.
|