Use of bio-glycerol for the production of synthesis gas by chemical looping reforming

被引:14
作者
Adanez-Rubio, Inaki [1 ]
Ruiz, Juan A. C. [2 ]
Garcia-Labiano, Francisco [1 ]
de Diego, Luis F. [1 ]
Adanez, Juan [1 ]
机构
[1] Inst Carboquim ICB CSIC, Dept Energy & Environm, Miguel Luesma Castan 4, Zaragoza 50018, Spain
[2] Inst SENAI Inovacao Energias Renovaveis ISI ER, Sustainabil Lab, Av Capitao Mor Gouveia 2770, BR-59063400 Natal, RN, Brazil
关键词
Chemical looping reforming; Syngas; Bio-glycerol; CO2; capture; Ni-based oxygen carrier; Biofuel; HYDROGEN-PRODUCTION; THERMODYNAMIC ANALYSIS; RENEWABLE HYDROGEN; COMBUSTION; STEAM; SYNGAS; FUEL; OPTIMIZATION; BIOETHANOL; GENERATION;
D O I
10.1016/j.fuel.2020.119578
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Glycerol availabity, a waste generated in the production of biodiesel, has increased during last years. In this work, Chemical Looping Reforming (CLR) of glycerol has been demonstrated in a 1 kW th continuous unit during 35 h using a Ni-based oxygen carrier to obtain a high purity syngas without CO2 emissions. Complete conversion of the glycerol and syngas composition close to thermodynamic equilibrium was obtained in the fuel reactor. Moreover, pure N-2 was obtained as product in the air reactor. The influence of the main operating variables on the composition and flow rates of synthesis gas was evaluated. The oxygen-to-glycerol molar ratio was the main parameter since the amount of lattice oxygen transferred by the oxygen carrier in the fuel reactor controlled the syngas composition. The increase of the water-to-glycerol ratio produced an increase in the production of H-2 and CO2 with a decrease in the CO content, increasing both the syngas yield and the H-2/CO molar ratio in the gas. Fuel reactor temperature affected mainly to the CH4 content, being lower as higher was the temperature. Close to autothermal conditions, it is possible to obtain a syngas composed by H-2 approximate to 48-50 vol%; CO approximate to 30-35 vol%; CO2 approximate to 14-18 vol%; and CH4 approximate to 1.6-3 vol%. In addition, different H-2/CO ratios can be obtained by modifying the H2O/glycerol ratio and temperature. A H-2/CO ratio of 2 could be reached using either a H2O/glyceml ratio of 1.5 at 750 degrees C or a H2O/glycerol ratio of 2 at 800 degrees C.
引用
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页数:11
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