Synergistic interactions and co-pyrolysis characteristics of lignocellulosic biomass components and plastic using a fast heating concentrating photothermal TGA system

被引:26
作者
Shagali, Abdulmajid Abdullahi [1 ]
Hu, Song [1 ]
Li, Hanjian [1 ]
He, Limo [1 ,4 ]
Han, Hengda [1 ]
Chi, Huanying [1 ,2 ]
Qing, Haoran [1 ]
Xu, Jun [1 ]
Jiang, Long [1 ,3 ]
Wang, Yi [1 ]
Su, Sheng [1 ]
Xiang, Jun [1 ]
机构
[1] Huazhong Univ Sci & Technol, Sch Energy & Power Engn, State Key Lab Coal Combust, Wuhan 430074, Hubei, Peoples R China
[2] Wuhan Text Univ, Sch Environm Engn, Wuhan 430200, Peoples R China
[3] Huazhong Univ Sci & Technol, Sch Energy & Power Engn, New Energy Sci & Engn, Wuhan 430074, Hubei, Peoples R China
[4] Natl Univ Singapore, Fac Sci, Dept Chem, Singapore 117543, Singapore
基金
中国国家自然科学基金;
关键词
Pyrolysis; Plastic; Biomass; Synergistic interaction; Kinetic analysis; EVOLVED GAS-ANALYSIS; THERMAL-DEGRADATION; KINETIC-ANALYSIS; CELLULOSE; BEHAVIOR; MODEL; FTIR; DECOMPOSITION; HEMICELLULOSE; WASTES;
D O I
10.1016/j.renene.2023.118936
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Co-pyrolysis of lignocellulosic biomass (LCB) with plastic has gained significant attention recently. Studying the pyrolysis kinetic behavior of LCB and plastic is beneficial for developing a framework for designing and improving biofuel production. The co-pyrolysis behavior, synergistic interactions and kinetic triplet parameters of the three main LCB components, i.e., cellulose, hemicellulose and lignin, and two plastics (polyethylene terephthalate [PET] and polyvinyl chloride [PVC]) were evaluated using a fast heating concentrating photothermal TGA system. The maximum decrease in mass loss rate with increasing heating rates was observed for cellulose with PET (1.23-0.94%/degrees C) and with PVC (1.05-0.62%/degrees C). The mechanism of synergistic interaction between hemicellulose and PET proceeded with polymer degradation and conversions of monomer units into excess volatiles in the higher heating rate regime. Distributed Activation Energy Model [DAEM] and CoatsRedfern [CR]) were used to calculate the kinetic parameters. DAEM results confirmed that mixed samples required lower activation energy to start the reaction. Using the CR method, the first degradation phase showed the best synergistic effect for lowering the PET and PVC activation energy, particularly with hemicellulose and lignin.
引用
收藏
页数:11
相关论文
共 50 条
[31]   Study on the characteristics and mechanism of fast co-pyrolysis of coal tar asphaltene and biomass [J].
Zhou, Ruishi ;
Cao, Rui ;
Liu, Yongqi ;
Ma, Duo ;
Yao, Qiuxiang ;
Wang, Jing ;
Sun, Ming ;
Ma, Xiaoxun .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2022, 161
[32]   Insight into synergistic effects of biomass-polypropylene co-pyrolysis using representative biomass constituents [J].
Chen, Rongjie ;
Zhang, Shiyu ;
Cong, Kunlin ;
Li, Qinghai ;
Zhang, Yanguo .
BIORESOURCE TECHNOLOGY, 2020, 307
[33]   Co-pyrolysis of lignocellulosic biomass with other carbonaceous materials: A review on advance technologies, synergistic effect, and future prospectus [J].
Chen, Wei-Hsin ;
Naveen, C. ;
Ghodke, Praveen Kumar ;
Sharma, Amit Kumar ;
Bobde, Prakash .
FUEL, 2023, 345
[34]   Co-pyrolysis and combustion characteristics of polylactic acid and acrylonitrile-butadiene-styrene: insights into interactions, kinetics and synergistic effects [J].
Wu, Xujuan ;
Yang, Yunpeng ;
Zhan, Yuanyuan ;
Li, Kaiyuan ;
Xiao, Fei .
FRONTIERS IN CHEMISTRY, 2025, 13
[35]   Synergistic interactions between lignite and biomass during co-pyrolysis from volatile release, kinetics, and char structure [J].
Cao, Zeshui ;
Xu, Qiang ;
Kang, Haopeng ;
Shi, Jian ;
Chen, Bin ;
Guo, Liejin .
JOURNAL OF THE ENERGY INSTITUTE, 2024, 114
[36]   Co-pyrolysis kinetics and enhanced synergy for furfural residues and polyethylene using artificial neural network and fast heating [J].
Li, Shuai ;
Qu, Rui ;
Hu, Erfeng ;
Liu, Zuohua ;
Xiong, Qingang ;
Yu, Jianglong ;
Zeng, Yongfu ;
Li, Moshan .
WASTE MANAGEMENT, 2025, 195 :177-188
[37]   Kinetic study for the co-pyrolysis of lignocellulosic biomass and plastics using the distributed activation energy model [J].
Navarro, M. V. ;
Lopez, J. M. ;
Veses, A. ;
Callen, M. S. ;
Garcia, T. .
ENERGY, 2018, 165 :731-742
[38]   Synergistic effects of biomass and polyurethane co-pyrolysis on the yield, reactivity, and heating value of biochar at high temperatures [J].
Wang, Xuebin ;
Ma, Daoyang ;
Jin, Qiming ;
Deng, Shuanghui ;
Stancin, Hrvoje ;
Tan, Houzhang ;
Mikulcic, Hrvoje .
FUEL PROCESSING TECHNOLOGY, 2019, 194
[39]   Enhancement of gasification and liquefaction during fast co-pyrolysis of cedar wood and polyethylene through control of synergistic interactions [J].
Kasataka K. ;
Kumagai S. ;
Kameda T. ;
Saito Y. ;
Yoshioka T. .
Bioresource Technology Reports, 2020, 11
[40]   Synergistic effects from co-pyrolysis of low-rank coal and model components of microalgae biomass [J].
Wu, Zhiqiang ;
Yang, Wangcai ;
Tian, Xueyu ;
Yang, Bolun .
ENERGY CONVERSION AND MANAGEMENT, 2017, 135 :212-225