首页> 外文期刊>Materials and Corrosion >Alloying with copper to reduce metal dusting of nickel
【24h】

Alloying with copper to reduce metal dusting of nickel

机译:与铜合金化以减少镍的金属粉尘

获取原文
获取原文并翻译 | 示例
           

摘要

Copper is thought to be noncatalytic to carbon deposition from gas atmospheres, and owing to its extremely low solubility for carbon, inert to the metal dusting reaction. Thus, the addition of copper to nickel, which forms a near perfect solid solution, may be able to suppress or greatly retard the metal dusting of the alloy, without the need for a protective oxide scale on the surface,, The dusting behaviour of Ni-Cu alloys containing up to 50 wt% Cu, along with pure Cu, was investigated in a 68%CO-31%H{sub}2-1%H{sub}2O gas mixture (a{sub}c: 19) at 680 ℃ for up to 150 h,, Surface analysis showed that two types of carbon deposits, graphite particle clusters and filaments, were observed on pure Ni and Ni-Cu alloys with Cu contents of up to 5 wt%. Alloys with more than 10 wt% Cu showed very little coking, forming filaments only. SEM and TEM analyses revealed metal particles encapsulated by graphite shells within the graphite particle clusters, and metal particles at filament tips or embedded along their lengths. A kinetic investigation showed that alloy dusting rates decreased significantly with increasing copper levels up to 10 wt%. At copper concentrations of more than 20 wt%, the rate of metal dusting was negligible. Although pure copper is not catalytic to carbon formation, scattered carbon nanotubes were observed on its surface. The effect of copper on alloy dusting rates is attributed to a dilution effect.
机译:铜被认为对气体气氛中的碳沉积无催化作用,并且由于其对碳的极低溶解性,对金属粉尘反应呈惰性。因此,向镍中添加几乎形成完美固溶体的铜,可以抑制或大大延迟合金的金属粉尘,而无需在表面形成保护性氧化皮。在68%CO-31%H {sub} 2-1%H {sub} 2O混合气体中研究了含Cu和纯Cu的-Cu合金(a {sub} c:19)在680℃下长达150 h的表面分析表明,在Cu含量最高为5 wt%的纯Ni和Ni-Cu合金上观察到两种类型的碳沉积物,石墨颗粒簇和细丝。 Cu含量超过10 wt%的合金几乎没有结焦,仅形成长丝。 SEM和TEM分析显示,金属颗粒被石墨壳内的石墨壳包裹,金属丝位于细丝尖端或沿其长度嵌入。动力学研究表明,随着铜含量提高到10 wt%,合金粉尘率显着降低。在铜浓度大于20wt%时,金属粉尘的速率可忽略不计。尽管纯铜对碳的形成没有催化作用,但在其表面观察到了分散的碳纳米管。铜对合金除尘率的影响归因于稀释作用。

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