首页> 外文期刊>Fuel >Investigation of reactivities of bimetallic Cu-Fe oxygen carriers with coal in high temperature in-situ gasification chemical-looping combustion (iG-CLC) and chemical-looping with oxygen uncoupling (CLOU) using a fixed bed reactor
【24h】

Investigation of reactivities of bimetallic Cu-Fe oxygen carriers with coal in high temperature in-situ gasification chemical-looping combustion (iG-CLC) and chemical-looping with oxygen uncoupling (CLOU) using a fixed bed reactor

机译:使用固定床反应器对高温煤中煤与煤中煤与煤中煤与煤中的煤与氧耦合(CLOU)的化学循环的反应性研究

获取原文
获取原文并翻译 | 示例
           

摘要

Bimetallic Fe-Cu oxygen carriers (OCs) with SiO2 as a support are attractive materials for coal chemical-looping combustion (CLC) based on their availability from naturally occurring, low cost materials. The objectives of this study are to investigate reduction reactivities and CO2 conversion efficiency of synthesized Fe-Cu-Si OCs for both in-situ gasification CLC (iG-CLC) and Chemical-Looping with Oxygen Uncoupling (CLOU) at high temperatures (950 to 1100 degrees C) with varying ratios of OC to coal char (phi) using a fixed bed reactor-quadrupole mass spectrometer system. Two Cu-Fe-Si OCs with high iron content (40% Fe2O3 + 20%CuO by wt.) (Fe40Cu20) and high copper content (Fe20Cu40) were prepared using a pressure pelletizing method. Oxygen uncoupling efficiency and rate for the Fe40Cu20 OC were lower than the Fe20Cu40 OC due to their CuFe2O4 and CuO composition difference from XRD analysis. For Fe40Cu20 OC with phi = 80 in iG-CLC, the carbon conversion rate increased 37% from 950 degrees C to 1000 degrees C but only increased 5.4% from 1000 degrees C to 1100 degrees C. As the ratios phi dropped (80, 40 and 24), the CO2 conversion efficiencies decreased and the content of metallic Cu in the reduced OC residues increased. So, the optimum ratio phi is important to avoid agglomeration caused by Cu at high temperature. The Fe20Cu40 OC with phi = 67 in CLOU had higher the carbon conversion rate (dXc/dt = 0.0083 s(-1)) and CO2 conversion efficiency (Sco(2) = 0.96) compared to the Fe40Cu20 OC with phi = 80 in iG-CLC (dXc/dt = 0.0037 s(-1) and Sco(2) = 0.88).
机译:具有SiO2作为支撑的双金属Fe-Cu氧载体(OCS)是基于自然发生的低成本材料的可用性的煤化学环燃烧(CLC)的吸引力。本研究的目的是研究原位气化CLC(IG-CLC)的合成Fe-Cu-Si OCs的还原反应和CO2转化效率,并在高温下用氧解耦(CLOU)(950至1100℃)使用固定床反应器 - 四极杆质谱仪系统具有不同比例的OC与煤炭(PHI)。使用压力造粒方法制备具有高铁含量(40%Fe2O3 + 20%CuO的Cu-Fe-Si OCS(Fe 40Cu20)和高铜含量(Fe20Cu40)。由于其CuFe2O4和与XRD分析的CUO成分差异,Fe40Cu20 oc的氧耦合效率和速率低于Fe20cu40 oc。对于IG-CLC中PHI = 80的FE40CU20 oc,碳转化率从950℃的碳转换率增加到1000℃,但只有1000度C至1100℃的增加5.4%。随着PHI的比率掉落(80,40 24),CO 2转化效率降低,降低的OC残基中金属Cu的含量增加。因此,最佳比率Phi对于避免在高温下避免Cu引起的凝聚是重要的。与CLOU中的PHI = 67的FE20CU40 OC具有较高的碳转化率(DXC / DT = 0.0083s(-1))和CO2转化效率(SCO(2)= 0.96)与IG中的PHI = 80的FE40CU20 OC相比-CLC(DXC / DT = 0.0037 S(-1)和SCO(2)= 0.88)。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号