Upgrading rice husk via oxidative torrefaction: Characterization of solid, liquid, gaseous products and a comparison with non-oxidative torrefaction

被引:103
|
作者
Chen, Dengyu [1 ,2 ]
Chen, Fan [1 ]
Cen, Kehui [1 ]
Cao, Xiaobing [1 ]
Zhang, Jie [1 ]
Zhou, Jianbin [1 ]
机构
[1] Nanjing Forestry Univ, Coll Mat Sci & Engn, Nanjing 210037, Peoples R China
[2] Chinese Acad Sci, Key Lab Renewable Energy, Guangzhou 510640, Peoples R China
基金
中国国家自然科学基金;
关键词
Rice husk; Oxidative torrefaction; Temperature; Fuel property; Biomass; CATALYTIC FAST PYROLYSIS; OIL PALM FIBER; BIOMASS TORREFACTION; OXYGEN MIGRATION; GRINDABILITY; HEMICELLULOSE; DENSIFICATION; GASIFICATION; PRETREATMENT; TEMPERATURE;
D O I
10.1016/j.fuel.2020.117936
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In this study, oxidative torrefaction and non-oxidative torrefaction of rice husks were performed under different severities, and the effects of temperature (220-300 degrees C) and O-2 concentration (0-15 vol%) on the properties of the solid, liquid, and gas products were investigated. Oxidation of hydrocarbons play an important role in thermal degradation of samples, and higher O-2 concentration promotes the severity of torrefaction. Oxygen content in rice husk decreased whether the torrefaction temperature increased or the O-2 concentration increased. Consequently, the H/C and O/C ratios as well as the mass and energy yield of the sample remarkably decreased, even at small O-2 concentrations of 2%. Gas yield in the oxidative torrefaction process was higher than that in non-oxidative torrefaction. CO2 was the dominant gas, and volume fraction of CO2 further increased during oxidative torrefaction. This may be contributed to enhanced thermal degradation of rice husk and to the combustion reaction between CO and O-2, especially at a higher torrefaction temperature and with a higher concentration of O-2. In the case of liquid products, acids and phenols were the dominant organic components. However, formation of water and acetic acid was promoted, whereas the presence of O-2 inhibited generation of levoglucosan. On the basis of products distribution and the evaluation of O-2 that participates in torrefaction, it was concluded that O-2-containing atmosphere could be a potential agent to replace a pure N-2 atmosphere, which may reduce operational costs and make biomass torrefaction more commercially feasible.
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页数:8
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  • [21] Oxygen migration characteristics during bamboo torrefaction process based on the properties of torrefied solid, gaseous, and liquid products
    Ma, Zhongqing
    Zhang, Yu
    Shen, Yunfang
    Wang, Junhao
    Yang, Youyou
    Zhang, Wenbiao
    Wang, Shurong
    [J]. BIOMASS & BIOENERGY, 2019, 128
  • [22] Optimizing the torrefaction of pigeon pea stalk (cajanus cajan) using response surface methodology (RSM) and characterization of solid, liquid and gaseous products
    Singh, Rishikesh Kumar
    Chakraborty, Jyoti Prasad
    Sarkar, Arnab
    [J]. RENEWABLE ENERGY, 2020, 155 : 677 - 690
  • [23] New sight on the lignin torrefaction pretreatment: Relevance between the evolution of chemical structure and the properties of torrefied gaseous, liquid, and solid products
    Ma, Zhongqing
    Wang, Junhao
    Li, Cong
    Yang, Youyou
    Liu, Xiaohuan
    Zhao, Chao
    Chen, Dengyu
    [J]. BIORESOURCE TECHNOLOGY, 2019, 288
  • [24] Torrefaction of Acacia nilotica: Oxygen Distribution and Carbon Densification Mechanism Based on In-Depth Analyses of Solid, Liquid, and Gaseous Products
    Singh, Satyansh
    Chakraborty, Jyoti Prasad
    Mondal, Monoj Kumar
    [J]. ENERGY & FUELS, 2020, 34 (10) : 12586 - 12597
  • [25] Conversion among photo-oxidative products of polypropylene in solid, liquid and gaseous states
    Liu, Xuan
    Yang, Rui
    [J]. BMC CHEMISTRY, 2020, 14 (01)
  • [26] Conversion among photo-oxidative products of polypropylene in solid, liquid and gaseous states
    Xuan Liu
    Rui Yang
    [J]. BMC Chemistry, 14
  • [27] Improved H2 yields over rice husk derived SiO2 nanoparticles supported Ni catalyst during non-oxidative methane cracking
    Manasa, Kandula
    Naresh, Gutta
    Kalpana, Manda
    Sasikumar, Boggala
    Velisoju, Vijay K.
    Chary, Komandur V. R.
    Michalkiewicz, Beata
    Venugopal, Akula
    [J]. JOURNAL OF THE ENERGY INSTITUTE, 2021, 99 : 73 - 81
  • [28] Comparative Study of Physicochemical Characteristics and Catalytic Activity of Copper Oxide over Synthetic Silicon Oxide and Silicon Oxide from Rice Husk in Non-Oxidative Dehydrogenation of Ethanol
    Mambetova, Manshuk
    Yergaziyeva, Gaukhar
    Dossumov, Kusman
    Askaruly, Kydyr
    Azat, Seitkhan
    Bexeitova, Kalampyr
    Anissova, Moldir
    Baizhomartov, Bedelzhan
    [J]. CHEMENGINEERING, 2022, 6 (05)
  • [29] Characterization of the liquid and solid products obtained from the oxidative pyrolysis of meat and bone meal in a pilot-scale fluidised bed plant
    Cascarosa, E.
    Fonts, I.
    Mesa, J. M.
    Sanchez, J. L.
    Arauzo, J.
    [J]. FUEL PROCESSING TECHNOLOGY, 2011, 92 (10) : 1954 - 1962
  • [30] Rice Husk Ash Derived SiO2 for Template Free Synthesis of H-ZSM-5 Support for Ni Catalyst: Investigation on Non-Oxidative CH4 Cracking for Clean H2 Production
    Kandula, Manasa
    Gutta, Naresh
    Aytam, Hari Padmasri
    Perupogu, Vijayanand
    Manda, Kalpana
    Akula, Venugopal
    [J]. CATALYSIS SURVEYS FROM ASIA, 2022, 26 (04) : 336 - 345