...
首页> 外文期刊>Fuel Processing Technology >Influence of metal addition to Ni-based catalysts for the co-production of carbon nanotubes and hydrogen from the thermal processing of waste polypropylene
【24h】

Influence of metal addition to Ni-based catalysts for the co-production of carbon nanotubes and hydrogen from the thermal processing of waste polypropylene

机译:镍基催化剂中添加金属对废聚丙烯热处理产生的碳纳米管和氢的联产的影响

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

This paper investigates the co-production of hydrogen and carbon nanotubes from the pyrolysis-catalytic gasification of waste plastics (polypropylene). We report on the influence of a range of metal additions to a nickel based catalyst based on ternary mixed oxide types Ni-Metal-Al, where the metal was Zn, Mg, Ca, Ce or Mn. The results showed that of the different metal-nickel catalysts investigated, the Ni-Mn-Al catalyst was the most promising catalyst in relation to the co-production of hydrogen and CNT. For example, the Ni-Mn-Al catalyst produced 71.4 mmol hydrogen g(-1) plastic, while the hydrogen production using Ni-Ca-Al, Ni-Ce-Al and Ni-Zn-Al catalysts were 68.5 mmol g(-1), 63.1 mmol g(-1) and 45.9 mmol hydrogen g(-1) plastic respectively. In addition, carbon deposition on the catalyst was highest in the order of: Ni-Mn-Al > Ni-Ca-Al > Ni-Zn-Al > NiCe-Al > Ni-Mg-Al. The carbon deposition for the Ni-Mn-Al catalyst was found to consist of mostly carbon nanotubes. Further investigation of the Ni-Mn-Al catalyst demonstrated that the interaction between Ni and catalyst support plays a significant role in the gasification process; weak metal support interaction (for the Ni-Mn-Al catalyst calcined at 300 degrees C) resulted in a lower hydrogen production and much higher yield of carbon products. In addition, the influence of steam injection rate on hydrogen and carbon nanotube production was investigated for the Ni-Mn-Al catalyst. Increasing the steam injection rate significantly increased hydrogen production and decreased carbon deposition. However, at lower steam injection rates, the quality of the product carbon nanotubes was improved. (C) 2014 Elsevier B.V. All rights reserved.
机译:本文研究了废塑料(聚丙烯)的热解催化气化过程中氢和碳纳米管的联产。我们报告了基于三元混合氧化物类型Ni-Metal-Al的镍基催化剂中一系列金属添加的影响,其中金属为Zn,Mg,Ca,Ce或Mn。结果表明,在研究的各种金属镍催化剂中,就氢和碳氢化合物的联产而言,Ni-Mn-Al催化剂是最有前途的催化剂。例如,Ni-Mn-Al催化剂产生71.4 mmol的氢g(-1)塑料,而使用Ni-Ca-Al,Ni-Ce-Al和Ni-Zn-Al催化剂产生的氢为68.5 mmol g(- 1),63.1 mmol g(-1)和45.9 mmol氢g(-1)塑料。另外,催化剂上的碳沉积最高的顺序为:Ni-Mn-Al> Ni-Ca-Al> Ni-Zn-Al> NiCe-Al> Ni-Mg-Al。发现Ni-Mn-Al催化剂的碳沉积物主要由碳纳米管组成。对Ni-Mn-Al催化剂的进一步研究表明,Ni与催化剂载体之间的相互作用在气化过程中起着重要作用。较弱的金属与载体之间的相互作用(对于在300摄氏度下煅烧的Ni-Mn-Al催化剂而言)导致了较低的氢气产生和更高的碳产物收率。此外,研究了Ni-Mn-Al催化剂中蒸汽注入速率对氢和碳纳米管生产的影响。增加蒸汽注入速率会显着增加氢气产量并减少碳沉积。然而,在较低的蒸汽注入速率下,产物碳纳米管的质量得以改善。 (C)2014 Elsevier B.V.保留所有权利。

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