共 30 条
[5]
Artificial neural network approach for co-pyrolysis of Chlorella vulgaris and peanut shell binary mixtures using microalgae ash catalyst.[J].Jang Tyng Bong;Adrian Chun Minh Loy;Bridgid Lai Fui Chin;Man Kee Lam;Daniel Kuok Ho Tang;Huei Yeong Lim;Yee Ho Chai;Suzana Yusup.Energy.2020,
[6]
Bioenergy and emission characterizations of catalytic combustion and pyrolysis of litchi peels via TG-FTIR-MS and Py-GC/MS.[J].Chao Liu;Jingyong Liu;Fatih Evrendilek;Wuming Xie;Jiahong Kuo;Musa Buyukada.Renewable Energy.2020,
[7]
Co-pyrolysis of sewage sludge and rice husk by TG–FTIR–MS: Pyrolysis behavior; kinetics; and condensable/non-condensable gases characteristics.[J].Chengxin Wang;Haobo Bi;Qizhao Lin;Xuedan Jiang;Chunlong Jiang.Renewable Energy.2020,
[8]
Kinetic analysis based on the kinetic compensation effect and optimization calculation.[J].Hong Zhu;Naian Liu.Thermochimica Acta.2020, prepublish
[9]
Thermal pyrolysis of high density polyethylene (HDPE) in a novel fixed bed reactor system for the production of high value gasoline range hydrocarbons (HC).[J].S.M. Al-Salem.Process Safety and Environmental Protection.2019,
[10]
Synergistic effect on co-pyrolysis of rice husk and sewage sludge by thermal behavior; kinetics; thermodynamic parameters and artificial neural network.[J].Salman Raza Naqvi;Zeeshan Hameed;Rumaisa Tariq;Syed A. Taqvi;Imtiaz Ali;M. Bilal Khan Niazi;Tayyaba Noor;Arshad Hussain;Naseem Iqbal;M. Shahbaz.Waste Management.2019,