乙炔
烧结
煅烧
催化作用
碳纤维
热液循环
金属
化学
材料科学
有机化学
化学工程
冶金
工程类
复合数
复合材料
作者
Haixia Su,Yang Jiao,Jian‐Gong Shi,Zhiwei Yuan,Di Zhang,Xupeng Wang,Jing Ren,Dan Liu,Jianzhou Gui,Haiyang Gao,Xiaoli Xu
标识
DOI:10.1016/j.petsci.2023.10.012
摘要
A series of model catalysts were obtained by treating commercial fresh and spent catalysts unloaded from the factory with different methods, including green oil dipping, extraction and high-temperature regeneration; finally, the deactivation behavior of the commercial catalyst for acetylene hydrogenation were studied. The influence of various possible deactivation factors on the catalytic performance was elucidated via detailed structural characterization, surface composition analysis, and activity evaluation. The results showed that green oil, carbon deposit and sintering of active metal were the main reasons for deactivation, among which green oil and carbon deposit led to rapid deactivation, while the activity could be recovered after regeneration by high-temperature calcination. The sintering of active metal components was attributed to the high-temperature regeneration in hydrothermal conditions, which was slow but irreversible and accounted for permanent deactivation. Thus, optimizing the regeneration is expected to extend the service life of the commercial catalyst.
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