Waste-to-energy: Co-pyrolysis of potato peel and macroalgae for biofuels and biochemicals

被引:16
作者
Fardi, Zahra [1 ]
Shahbeik, Hossein [1 ]
Nosrati, Mohsen [1 ]
Motamedian, Ehsan [1 ]
Tabatabaei, Meisam [2 ,3 ]
Aghbashlo, Mortaza [4 ]
机构
[1] Tarbiat Modares Univ, Fac Chem Engn, Dept Biotechnol, POB 14115-143, Tehran, Iran
[2] Univ Malaysia Terengganu, Higher Inst Ctr Excellence HICoE, Inst Trop Aquaculture & Fisheries AKUATROP, Kuala Nerus 21030, Terengganu, Malaysia
[3] Saveetha Inst Med & Tech Sci, Dept Biomat, Saveetha Dent Coll, Chennai 600077, India
[4] Univ Tehran, Coll Agr & Nat Resources, Fac Agr Engn & Technol, Dept Mech Engn Agr Machinery, Karaj, Iran
关键词
Co-pyrolysis; Bio-oil; Biochar; Macroalgae; Potato peel; Biomass; RICE HUSK; BIO-OIL; PRODUCT DISTRIBUTION; BIOMASS; SEAWEED; QUALITY; MECHANISM; BIOCHAR; ADSORPTION; CONVERSION;
D O I
10.1016/j.envres.2023.117614
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Waste-to-energy conversion presents a pivotal strategy for mitigating the energy crisis and curbing environmental pollution. Pyrolysis is a widely embraced thermochemical approach for transforming waste into valuable energy resources. This study delves into the co-pyrolysis of terrestrial biomass (potato peel) and marine biomass (Sargassum angastifolium) to optimize the quantity and quality of the resultant bio-oil and biochar. Initially, thermogravimetric analysis was conducted at varying heating rates (5, 20, and 50 degrees C/min) to elucidate the thermal degradation behavior of individual samples. Subsequently, comprehensive analyses employing FTIR, XRD, XRF, BET, FE-SEM, and GC-MS were employed to assess the composition and morphology of pyrolysis products. Results demonstrated an augmented bio-oil yield in mixed samples, with the highest yield of 27.1 wt% attained in a composition comprising 75% potato peel and 25% Sargassum angastifolium. As confirmed by GC-MS analysis, mixed samples exhibited reduced acidity, particularly evident in the bio-oil produced from a 75% Sargassum angastifolium blend, which exhibited approximately half the original acidity. FTIR analysis revealed key functional groups on the biochar surface, including O-H, C--O, and C-O moieties. XRD and XRF analyses indicated the presence of alkali and alkaline earth metals in the biochar, while BET analysis showed a surface area ranging from 0.64 to 1.60 m2/g. The favorable characteristics of the products highlight the efficacy and costeffectiveness of co-pyrolyzing terrestrial and marine biomass for the generation of biofuels and value-added commodities.
引用
收藏
页数:17
相关论文
共 100 条
[1]   Microwave vacuum co-pyrolysis of waste plastic and seaweeds for enhanced crude bio-oil recovery: Experimental and feasibility study towards industrialization [J].
Abomohra, Abd El-Fatah ;
Sheikh, Huda M. A. ;
El-Naggar, Amal H. ;
Wang, Qingyuan .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 149
[2]   Slow and pressurized co-pyrolysis of coal and agricultural residues [J].
Aboyade, Akinwale O. ;
Carrier, Marion ;
Meyer, Edson L. ;
Knoetze, Hansie ;
Goergens, Johann F. .
ENERGY CONVERSION AND MANAGEMENT, 2013, 65 :198-207
[3]   Evaluation of orange and potato peels as an energy source: a comprehensive study on their pyrolysis characteristics and kinetics [J].
Acikalin, Korkut .
BIOMASS CONVERSION AND BIOREFINERY, 2022, 12 (02) :501-514
[4]   Customized biochar for soil applications in arid land: Effect of feedstock type and pyrolysis temperature on soil microbial enumeration and respiration [J].
Al-Rabaiai, Ahmed ;
Menezes-Blackburn, Daniel ;
Al-Ismaily, Said ;
Janke, Rhonda ;
Pracejus, Bernhard ;
Al-Alawi, Ahmed ;
Al-Kindi, Mohamed ;
Bol, Roland .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2022, 168
[5]   Date palm waste pyrolysis into biochar for carbon dioxide adsorption [J].
Ben Salem, Imen ;
Saleh, Mariam Badawi ;
Iqbal, Jibran ;
El Gamal, Maisa ;
Hameed, Suhaib .
ENERGY REPORTS, 2021, 7 :152-159
[6]   Artificial neural network approach for co-pyrolysis of Chlorella vulgaris and peanut shell binary mixtures using microalgae ash catalyst [J].
Bong, Jang Tyng ;
Loy, Adrian Chun Minh ;
Chin, Bridgid Lai Fui ;
Lam, Man Kee ;
Tang, Daniel Kuok Ho ;
Lim, Huei Yeong ;
Chai, Yee Ho ;
Yusup, Suzana .
ENERGY, 2020, 207
[7]   A study on catalytic co-pyrolysis of cellulose with seaweeds polysaccharides over ZSM-5: Towards high-quality biofuel production [J].
Cao, Bin ;
Xia, Zhen ;
Wang, Shuang ;
Abomohra, Abd El-Fatah ;
Cai, Ning ;
Hu, Yamin ;
Yuan, Chuan ;
Qian, Lili ;
Liu, Lu ;
Liu, Xinlin ;
Li, Bin ;
He, Zhixia ;
Wang, Qian .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2018, 134 :526-535
[8]   Insight into biomass pyrolysis mechanism based on cellulose, hemicellulose, and lignin: Evolution of volatiles and kinetics, elucidation of reaction pathways, and characterization of gas, biochar and bio-oil [J].
Chen, Dengyu ;
Cen, Kehui ;
Zhuang, Xiaozhuang ;
Gan, Ziyu ;
Zhou, Jianbin ;
Zhang, Yimeng ;
Zhang, Hong .
COMBUSTION AND FLAME, 2022, 242
[9]   Macroalgae for biofuels production: Progress and perspectives [J].
Chen, Huihui ;
Zhou, Dong ;
Luo, Gang ;
Zhang, Shicheng ;
Chen, Jianmin .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 47 :427-437
[10]   Recent developments in lignocellulosic biomass catalytic fast pyrolysis: Strategies for the optimization of bio-oil quality and yield [J].
Chen, Xu ;
Che, Qingfeng ;
Li, Shujuan ;
Liu, Zihao ;
Yang, Haiping ;
Chen, Yingquan ;
Wang, Xianhua ;
Shao, Jingai ;
Chen, Hanping .
FUEL PROCESSING TECHNOLOGY, 2019, 196