Torrefaction of fruit waste seed and shells for biofuel production with reduced CO2 emission

被引:36
作者
Lin, Yi-Li [1 ]
Zheng, Nai-Yun [1 ]
机构
[1] Natl Kaohsiung Univ Sci & Technol, Dept Safety Hlth & Environm Engn, Kaohsiung 824, Taiwan
关键词
Torrefaction; Energy density; Thermal stability; Fuel ratio (FR); Energy return on investment (EROI); Greenhouse gas emissions (GHG); LIFE-CYCLE ASSESSMENT; HYDROTHERMAL CARBONIZATION; COMBUSTION CHARACTERISTICS; BIOMASS; BIOCHAR; REDUCTION; PYROLYSIS; STRAW; FUEL; COAL;
D O I
10.1016/j.energy.2021.120226
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study investigated the torrefaction of fruit waste of Mangifera indica seeds (MIse) and Passiflora edulis shells (PEsh) at different temperatures (210-300 degrees C) and reaction times (30 and 60 min) to produce biochar as an ecofriendly renewable energy resource. The results confirmed that the torrefaction temperature had a greater influence on the torrefied biomass than the torrefaction times. With the increase in the torrefaction temperatures and times, the H/C and O/C atomic ratios of both biochar were comparable to those of lignite. The thermal stability of PEsh was considerably higher than that of MIse. Moreover, both biochar samples exhibited an increased fuel ratio (FR = 0.02-0.17) and a high energy return on investment (EROI = 11.5-28.5). The greenhouse gas (GHG) emissions caused by the combustion of the obtained biochar were considerably lower than those caused by the combustion of coal. Cofiring 10%-20% biochar with coal yielded FRs close to that of bituminous coal and effectively mitigated GHG emissions. In sum, PEsh as a bioenergy feedstock is a feasible partial substitute for bituminous coal in power plants because of its higher fixed carbon content, energy density, FR, and EROI as well as lower GHG emissions compared to MIse. (C) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:9
相关论文
共 57 条
[21]   Torrefaction of biomass from municipal solid waste fractions I: Temperature profiles, moisture content, energy consumption, mass yield, and thermochemical properties [J].
Iroba, Kingsley L. ;
Baik, Oon-Doo ;
Tabil, Lope G. .
BIOMASS & BIOENERGY, 2017, 105 :320-330
[22]   Effect of torrefaction on rice straw physicochemical characteristics and particulate matter emission behavior during combustion [J].
Kai, Xingping ;
Meng, Yuxia ;
Yang, Tianhua ;
Li, Bingshuo ;
Xing, Wanli .
BIORESOURCE TECHNOLOGY, 2019, 278 :1-8
[23]   An efficient multiphase bioprocess for enhancing the renewable energy production from almond shells [J].
Kaur, Manpreet ;
Kumar, Manoj ;
Sachdeva, Sarita ;
Puri, S. K. .
ENERGY CONVERSION AND MANAGEMENT, 2020, 203
[24]   Pulverized coal combustion characteristics of high-fuel-ratio coals [J].
Kurose, R ;
Ikeda, M ;
Makino, H ;
Kimoto, M ;
Miyazaki, T .
FUEL, 2004, 83 (13) :1777-1785
[25]  
Leadership ECfCC, 2018, EM FACT GREENH GAS I
[26]   Environmental and energy assessment of biomass residues to biochar as fuel: A brief review with recommendations for future bioenergy systems [J].
Lee, Mengshan ;
Lin, Yi-Li ;
Chiueh, Pei-Te ;
Den, Walter .
JOURNAL OF CLEANER PRODUCTION, 2020, 251
[27]  
Lee X.J., 2020, Mater. Sci. Energy Technol., V3, P601, DOI [10.1016/j.mset.2020.06.006, DOI 10.1016/J.MSET.2020.06.006]
[28]   Life cycle energy consumption and GHG emissions of biomass-to-hydrogen process in comparison with coal-to-hydrogen process [J].
Li, Guoxuan ;
Cui, Peizhe ;
Wang, Yinglong ;
Liu, Zhiqiang ;
Zhu, Zhaoyou ;
Yang, Sheng .
ENERGY, 2020, 191
[29]   Torrefaction of fruit peel waste to produce environmentally friendly biofuel [J].
Lin, Yi-Li ;
Zheng, Nai-Yun ;
Hsu, Cheng-Hsun .
JOURNAL OF CLEANER PRODUCTION, 2021, 284
[30]  
Lin YiLi Lin YiLi, 2015, International Journal of Chemical Engineering and Applications, V6, P401, DOI 10.7763/IJCEA.2015.V6.518