Thermodynamic analysis of syngas production from biodiesel via chemical looping reforming

被引:7
作者
Liao, Chia-Hsuan [1 ]
Chein, Reiyu [1 ]
机构
[1] Natl Chung Hsing Univ, Dept Mech Engn, Taichung 40227, Taiwan
关键词
Thermodynamic analysis; Biodiesel; Chemical looping reforming; Syngas; Carbon reactor; WASTE COOKING OIL; FISCHER-TROPSCH SYNTHESIS; HYDROGEN-PRODUCTION; PARTIAL OXIDATION; OXYGEN CARRIERS; DIESEL FUEL; STEAM; FAME; OPTIMIZATION; PERFORMANCE;
D O I
10.1016/j.ijhydene.2021.01.008
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this study, thermodynamic analysis of the syngas production using biodiesel derived from waste cooking oil is studied based on the chemical looping reforming (CLR) process. The NiO is used as the oxygen carrier to carry out the thermodynamic analysis. Syngas with various H2/CO ratios can be obtained by chemical looping dry reforming (CL-DR) or steam reforming (CL-SR). It is found that the syngas obtained from CL-DR is suitable for long-chain carbon fuel synthesis while syngas obtained from CL-SR is suitable for methanol synthesis. The carbon-free syngas production can be obtained when reforming temperature is higher than 700 ?C for all processes. To convert the carbon resulted from biodiesel coking and operate the CLR with a lower oxygen carrier flow rate, a carbon reactor is introduced between the air and fuel reactors for removing the carbon using H2O or CO2 as the oxidizing agent. Because of the endothermic nature of both Boudouard and water-gas reactions, the carbon conversion in the carbon reactor increases with increased reaction temperature. High purity H2 or CO yield can be obtained when the carbon reactor is operated with high reaction temperature and oxidizing agent flow. ? 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:16591 / 16602
页数:12
相关论文
共 44 条
[31]   Reuse of waste animal fat in biodiesel: Biorefining heavily-degraded contaminant-rich waste animal fat and formulation as diesel fuel additive [J].
Ndiaye, Mbalo ;
Arhaliass, Abdellah ;
Legrand, Jack ;
Roelens, Guillaume ;
Kerihuel, Anthony .
RENEWABLE ENERGY, 2020, 145 (145) :1073-1079
[32]   Thermodynamic analysis of hydrogen production by steam and autothermal reforming of soybean waste frying oil [J].
Noureddine, Hajjaji ;
Nahla, Faleh ;
Zouhour, Khila ;
Marie-Noelle, Pons .
ENERGY CONVERSION AND MANAGEMENT, 2013, 70 :174-186
[33]   Chemical looping reforming of waste cooking oil in packed bed reactor [J].
Pimenidou, P. ;
Rickett, G. ;
Dupont, V. ;
Twigg, M. V. .
BIORESOURCE TECHNOLOGY, 2010, 101 (16) :6389-6397
[34]   Comparative study of gasoline, diesel and biodiesel autothermal reforming over Rh-based FeCrAl-supported composite catalyst [J].
Potemkin, D., I ;
Rogozhnikov, V. N. ;
Ruban, N., V ;
Shilov, V. A. ;
Simonov, P. A. ;
Shashkov, M., V ;
Sobyanin, V. A. ;
Snytnikov, P., V .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (49) :26197-26205
[35]   Syngas and a separate nitrogen/argon stream via chemical looping reforming - A 140 kW pilot plant study [J].
Proell, Tobias ;
Bolhar-Nordenkampf, Johannes ;
Kolbitsch, Philipp ;
Hofbauer, Hermann .
FUEL, 2010, 89 (06) :1249-1256
[36]  
Rostrup-Nielsen J., 1977, J CATAL, V48, P155, DOI DOI 10.1016/0021-9517(77)90087-2
[37]   Chemical-looping combustion and chemical-looping reforming in a circulating fluidized-bed reactor using Ni-based oxygen carriers [J].
Ryden, Magnus ;
Lyngfelt, Anders ;
Mattisson, Tobias .
ENERGY & FUELS, 2008, 22 (04) :2585-2597
[38]   Chemical compositions, properties, and standards for different generation biodiesels: A review [J].
Singh, Digambar ;
Sharma, Dilip ;
Soni, S. L. ;
Sharma, Sumit ;
Kumari, Deepika .
FUEL, 2019, 253 :60-71
[39]   The waste-to-energy framework for integrated multi-waste utilization: Waste cooking oil, waste lubricating oil, and waste plastics [J].
Singhabhandhu, Ampaitepin ;
Tezuka, Tetsuo .
ENERGY, 2010, 35 (06) :2544-2551
[40]  
Smith J.M., 2005, Introduction to Chemical Engineering Thermodynamics, V7th ed.