1 |
Chintala V. Production, upgradation and utilization of solar assisted pyrolysis fuels from biomass — a technical review[J]. Renewable and Sustainable Energy Reviews, 2018, 90: 120-130.
|
2 |
Sutton D, Kelleher B, Ross J R H. Review of literature on catalysts for biomass gasification[J]. Fuel Processing Technology, 2001, 73(3): 155-173.
|
3 |
McKendry P. Energy production from biomass (part 1): Overview of biomass[J]. Bioresource Technology, 2002, 83(1): 37-46.
|
4 |
Salam M A, Ahmed K, Akter N, et al. A review of hydrogen production via biomass gasification and its prospect in Bangladesh[J]. International Journal of Hydrogen Energy, 2018, 43(32): 14944-14973.
|
5 |
Abu El-Rub Z, Bramer E A, Brem G. Review of catalysts for tar elimination in biomass gasification processes[J]. Industrial & Engineering Chemistry Research, 2004, 43(22): 6911-6919.
|
6 |
Bridgwater A V. The technical and economic feasibility of biomass gasification for power generation[J]. Fuel, 1995, 74(5): 631-653.
|
7 |
Arregi A, Amutio M, Lopez G, et al. Evaluation of thermochemical routes for hydrogen production from biomass: a review[J]. Energy Conversion and Management, 2018, 165: 696-719.
|
8 |
Guan G, Kaewpanha M, Hao X, et al. Catalytic steam reforming of biomass tar: prospects and challenges[J]. Renewable and Sustainable Energy Reviews, 2016, 58: 450-461.
|
9 |
Hamad M A, Radwan A M, Heggo D A, et al. Hydrogen rich gas production from catalytic gasification of biomass[J]. Renewable Energy, 2016, 85: 1290-1300.
|
10 |
Machin E B, Pedroso D T, de Carvalho J A. Energetic valorization of waste tires[J]. Renewable and Sustainable Energy Reviews, 2017, 68: 306-315.
|
11 |
胡国华, 张一帆, 张立群. 废橡胶裂解研究进展[J]. 高分子通报, 2017, (12): 1-13.
|
|
Hu G H, Zhang Y F, Zhang L Q. Research progress on waste rubber cracking[J]. Polymer Notification, 2017, (12): 1-13.
|
12 |
Martínez J D, Puy N, Murillo R, et al. Waste tyre pyrolysis — a review[J]. Renewable and Sustainable Energy Reviews, 2013, 23: 179-213.
|
13 |
Min Z, Yimsiri P, Asadullah M, et al. Catalytic reforming of tar during gasification (Part II): Char as a catalyst or as a catalyst support for tar reforming[J]. Fuel, 2011, 90(7): 2545-2552.
|
14 |
史训旺, 李建芬, 辛馨, 等. 轮胎热解焦镍催化剂的制备及在秸秆热解燃气重整中的应用[J]. 化学工程师, 2018, 32(1): 1-6.
|
|
Shi X W, Li J F, Xin X, et al. Preparation of tire pyrolysis coking nickel catalyst and its application in straw pyrolysis gas reforming[J]. Chemical Engineer, 2018, 32(1): 1-6.
|
15 |
Hu M, Laghari M, Cui B, et al. Catalytic cracking of biomass tar over char supported nickel catalyst[J]. Energy, 2018, 145: 228-237.
|
16 |
Al-Rahbi A S, Williams P T. Hydrogen-rich syngas production and tar removal from biomass gasification using sacrificial tyre pyrolysis char[J]. Applied Energy, 2017, 190: 501-509.
|
17 |
Raveendran K, Ganesh A, Khilar K C. Influence of mineral matter on biomass pyrolysis characteristics[J]. Fuel, 1995, 74(12): 1812-1822.
|
18 |
Zhang Z, Liu L, Shen B, et al. Preparation, modification and development of Ni-based catalysts for catalytic reforming of tar produced from biomass gasification[J]. Renewable and Sustainable Energy Reviews, 2018, 94: 1086-1109.
|
19 |
Kannari N, Oyama Y, Takarada T. Catalytic decomposition of tar derived from biomass pyrolysis using Ni-loaded chicken dropping catalysts[J]. International Journal of Hydrogen Energy, 2017, 42(15): 9611-9618.
|
20 |
Han J, Li W, Liu D, et al. Pyrolysis characteristic and mechanism of waste tyre: a thermogravimetry-mass spectrometry analysis[J]. Journal of Analytical and Applied Pyrolysis, 2018, 129: 1-5.
|
21 |
Wang Y, Li X, Mourant D, et al. Formation of aromatic structures during the pyrolysis of bio-oil[J]. Energy & Fuels, 2012, 26(1): 241-247.
|
22 |
Sing K. The use of nitrogen adsorption for the characterisation of porous materials[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2001, 187/188: 3-9.
|
23 |
Wang J, Sun C, Lin B C, et al. Micro- and mesoporous-enriched carbon materials prepared from a mixture of petroleum-derived oily sludge and biomass[J]. Fuel Processing Technology, 2018, 171: 140-147.
|
24 |
Lu P, Huang Q, Chi Y, et al. Preparation of high catalytic activity biochar from biomass waste for tar conversion[J]. Journal of Analytical and Applied Pyrolysis, 2017, 127: 47-56.
|
25 |
闫大海. 废轮胎回转窑中试热解产物应用及热解机理和动力学模型研究[D]. 杭州: 浙江大学, 2006.
|
|
Yan D H. Application of pyrolysis products and pyrolysis mechanism and kinetic model of waste tire rotary kiln[D]. Hangzhou: Zhejiang University, 2006.
|
26 |
Lu P, Qian X, Huang Q, et al. Catalytic cracking of toluene as a tar model compound using sewage-sludge-derived char[J]. Energy & Fuels, 2016, 30(10): 8327-8334.
|
27 |
陈志宏. 我国轮胎行业的发展及对钴盐粘合剂的需求[C]//第六届全国橡胶工业新材料技术论坛暨2006年橡胶助剂专业委员会会员大会论文集. 浙江 温州, 2006: 137-143.
|
|
Chen Z H. The development of China s tire industry and the demand for cobalt salt binders[C]//Proceedings of the 6th National Rubber Industry New Materials Technology Forum and the 2006 Rubber Additives Professional Committee. Wenzhou, Zhejiang, 2006: 137-143.
|
28 |
汤锌锌, 黄正. 过渡金属分子催化的烷烃转化进展[J]. 科学通报, 2018, 63(14): 1349-1360+8.
|
|
Tang X X, Huang Z. Transition metal molecule catalyzed alkane conversion progress[J]. Chinese Science Bulletin, 2018, 63(14): 1349-1360+8.
|
29 |
孙立. 生物质热解制氢机理和实验研究 [D]. 天津: 天津大学, 2008.
|
|
Sun L. Hydrogen production mechanism and experimental study of biomass pyrolysis[D]. Tianjin: Tianjin University, 2008.
|
30 |
Yan F, Luo S Y, Hu Z Q, et al. Hydrogen-rich gas production by steam gasification of char from biomass fast pyrolysis in a fixed-bed reactor: Influence of temperature and steam on hydrogen yield and syngas composition[J]. Bioresource Technology, 2010, 101(14): 5633-5637.
|