Role of microwave during microwave-assisted catalytic reforming of guaiacol, syringolbio-oil as model compounds

被引:5
作者
An, Yang [1 ]
Dou, Jinxiao [1 ]
Tian, Lu [1 ]
Zhao, Xiaohui [1 ]
Yu, Jianglong [1 ,2 ]
机构
[1] Univ Sci & Technol Liaoning, Sch Chem Engn, Key Lab Adv Coal & Coking Technol Liaoning Prov, Anshan 114051, Peoples R China
[2] Southeast Univ Monash Univ Joint Grad Sch & Monas, Suzhou 215123, Peoples R China
基金
中国国家自然科学基金;
关键词
Bio-oil model compound; Thermal cracking; Catalytic reforming; Microwave-assisted; RICH BIO-OIL; SYNGAS PRODUCTION; CO-PYROLYSIS; TAR COMPOUND; MOSO BAMBOO; FIXED-BED; BIOMASS; CRACKING; CHAR; GASIFICATION;
D O I
10.1016/j.jaap.2021.105290
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
To better understand the role of microwave and the mechanisms of thermal cracking and catalytic reforming of lignocellulosic bio-oils, this study compares the difference in the reaction characteristics between microwaveassisted and conventional heating of representative bio-oil model compounds. Syringol and guaiacol were selected as bio-oil model compounds. The effects of the heating method on the conversion of the model compound and the yield and composition of products were systematically investigated in the temperature range of 600-700 degrees C. The results showed that high reaction temperature and microwave-assisted heating favoured the conversion of model compounds, and the conversions of syringol were generally higher than those of guaiacol under the same conditions (temperature, heating method). The heating method was found to greatly influence the yield and composition of products. The bio-oil obtained from conventional thermal cracking of model compounds contained phenolics, aromatic hydrocarbons, aryl alkyl ethers, and oxygen-containing heterocyclic compounds. In contrast, microwave-induced polarisation of poorly stable methoxy groups promotes the formation of phenolics, the concentration of the phenolic in the guaiacol and syringol bio-oil reached 62.5-66.17 area% and 85.18-87.65 area%, respectively, in the temperature range of 600-700 degrees C. Catalytic reforming of model compounds showed that activated carbon catalyst drastically promoted the phenol formation, particularly under microwave-assisted heating, the phenol concentration reached 93.9-97.97 area% in bio-oil during catalytic reforming of guaiacol. The formation of electron-hole pairs on the active metal sites induced by microwave radiation possibly enhanced the demethoxylation to selectively generate phenol due to the strong electrondonating ability of the methoxyl group. Microwave-assisted catalytic reforming of the model compounds was also beneficial for H2 formation because of the direct dehydrogenation of methyl radicals and the gas-phase reactions. The H2 concentrations of 81.07-82.41 vol.% and 75.2-79.16 vol.% were obtained during microwave-assisted catalytic reforming of guaiacol and syringol, respectively.
引用
收藏
页数:12
相关论文
共 50 条
[31]   Microwave-assisted catalytic transesterification of soybean oil using KOH/γ-Al2O3 [J].
Varol, Pelin Misiroglu ;
Cakan, Alattin ;
Kiren, Burcu ;
Ayas, Nezihe .
BIOMASS CONVERSION AND BIOREFINERY, 2023, 13 (02) :633-645
[32]   High Quality Bio-oil Production from Catalytic Microwave-assisted Pyrolysis of Pine Sawdust [J].
Wang, Xinyun ;
Wu, Fengyi ;
Li, Chuan ;
Chen, Mingqiang ;
Wang, Jun .
BIORESOURCES, 2018, 13 (03) :5479-5490
[33]   Microwave-assisted catalytic pyrolysis of lignocellulosic biomass for production of phenolic-rich bio-oil [J].
Mamaeva, Alisa ;
Tahmasebi, Arash ;
Tian, Lu ;
Yu, Jianglong .
BIORESOURCE TECHNOLOGY, 2016, 211 :382-389
[34]   Fast microwave-assisted catalytic co-pyrolysis of microalgae and scum for bio-oil production [J].
Xie, Qinglong ;
Addy, Min ;
Liu, Shiyu ;
Zhang, Bo ;
Cheng, Yanling ;
Wan, Yiqin ;
Li, Yun ;
Liu, Yuhuan ;
Lin, Xiangyang ;
Chen, Paul ;
Ruan, Roger .
FUEL, 2015, 160 :577-582
[35]   A review on the role of various machine learning algorithms in microwave-assisted pyrolysis of lignocellulosic biomass waste [J].
Mafat, Iradat Hussain ;
Surya, Dadi Venkata ;
Rao, Chinta Sankar ;
Kandya, Anurag ;
Basak, Tanmay .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2024, 371
[36]   Intensified microwave-assisted heterogeneous catalytic reactors for sustainable chemical manufacturing [J].
Chen, Weiqi ;
Malhotra, Abhinav ;
Yu, Kewei ;
Zheng, Weiqing ;
Plaza-Gonzalez, Pedro J. ;
Catala-Civera, Jose M. ;
Santamaria, Jesus ;
Vlachos, Dionisios G. .
CHEMICAL ENGINEERING JOURNAL, 2021, 420
[37]   SYNTHESIS OF CARBON NANOMATERIALS BY MEANS OF MICROWAVE-ASSISTED CATALYTIC PYROLYSIS OF CELLULOSE [J].
Zaritovskii, A. N. ;
Kotenko, E. N. ;
Grishchuk, S. V. ;
Glazunova, V. A. ;
Volkova, G. K. .
PHYSICAL AND CHEMICAL ASPECTS OF THE STUDY OF CLUSTERS NANOSTRUCTURES AND NANOMATERIALS, 2023, (15) :973-981
[38]   Activated carbon and palm oil fuel ash as microwave absorbers for microwave-assisted pyrolysis of oil palm shell waste [J].
Chuayjumnong, Sunisa ;
Karrila, Seppo ;
Jumrat, Saysunee ;
Pianroj, Yutthapong .
RSC ADVANCES, 2020, 10 (53) :32058-32068
[39]   Microwave-assisted catalytic pyrolysis of moso bamboo for high syngas production [J].
Dong, Qing ;
Niu, Miaomiao ;
Bi, Dongmei ;
Liu, Weiyu ;
Gu, Xuexin ;
Lu, Chen .
BIORESOURCE TECHNOLOGY, 2018, 256 :145-151
[40]   Oil production from microwave-assisted pyrolysis of a low rank American brown coal [J].
Zhang, Yaning ;
Liu, Shiyu ;
Fan, Liangliang ;
Zhou, Nan ;
Omar, Muhammad Mubashar ;
Peng, Peng ;
Anderson, Erik ;
Addy, Min ;
Cheng, Yanling ;
Liu, Yuhuan ;
Li, Bingxi ;
Snyder, John ;
Chen, Paul ;
Ruan, Roger .
ENERGY CONVERSION AND MANAGEMENT, 2018, 159 :76-84