首页> 外文期刊>Chemical engineering journal >Synergistic effect and mechanism of mass transfer and catalytic oxidation of octane degradation in yolk-shell Fe3O4@C/Fenton system
【24h】

Synergistic effect and mechanism of mass transfer and catalytic oxidation of octane degradation in yolk-shell Fe3O4@C/Fenton system

机译:杨贝壳Fe3O4辛酸盐氟苯铵盐中辛烷化和催化氧化和催化氧化的协同作用及机理

获取原文
获取原文并翻译 | 示例
           

摘要

Volatile organic compound (VOC) emissions are a global environmental concern because of their potential health risks. The removal of refractory VOCs calls for advanced technologies with powerful oxidative ability and high mass transfer efficiency. In this study, a yolk-shell Fe3O4@C/Fenton system was designed to improve octane removal efficiency. The octane removal efficiency at equilibrium was increased by 24.7% relative to that of the Fe3O4/Fenton system, and the main intermediate or byproduct levels decreased by 89.4%. The yolk-shell Fe3O4@C displayed higher catalytic and mass transfer efficiencies for octane degradation than Fe3O4. A synergistic effect of mass transfer enhancement and catalytic oxidation was observed in the yolk-shell Fe3O4@C/ Fenton system. The mechanism of the synergistic effect of mass transfer and octane degradation, a regional reaction theory for the yolk-shell structure, and octane removal pathways were proposed and supported by the octane removal results and byproducts detection and measurement. This yolk-shell Fe3O4@C/Fenton system provides an effective and advanced way to treat refractory and hydrophobic VOCs, and its preparation can be extended to other high-efficiency core-shell structure catalyst-carbon materials.
机译:由于其潜在的健康风险,挥发性有机化合物(VOC)排放是全球环境问题。拒绝耐火转向呼叫的先进技术,具有强大的氧化能力和高传质效率。在这项研究中,设计了yolk-shell fe3O4 @ c / fenton系统以提高辛烷除去效率。相对于Fe3O4 / Fenton系统的平衡下的辛烷除去效率增加了24.7%,主要中间体或副产品水平降低了89.4%。 Yolk-shell Fe3O4 @ C显示出高于Fe3O4的辛烷值降解的催化和传质效率更高。在Yolk-Shell Fe3O4 @ C / Fenton系统中观察到传质增强和催化氧化的协同效应。辛烷除去结果提出并支持辛烷值和辛烷值的协同作用,辛烷值壳结构的协同效应,辛烷值壳结构和辛烷除去途径。这款Yolk-shell Fe3O4 @ C / Fenton系统提供了一种有效和先进的方式来治疗耐火材料和疏水VOC,其制备可以扩展到其他高效核 - 壳结构催化剂 - 碳材料。

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