Unravelling the deactivation of CuZnO-based catalysts at the industrial scale: a micro to macro scale perspective†

IF 4.4 3区 化学 Q2 CHEMISTRY, PHYSICAL
Vera P. Santos , Ewa Tocha , Jin Yang , Mark McAdon , Carla Schmidt , Stuart Leadley , David Yancey , Stefan van Bloois , Joost Depicker , Swati Naik , Linh Bui , Saurabh Bhandari , Daniel Grohol , David G. Barton
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Abstract

Unexpected changes in catalyst performance can have a significant impact on manufacturing plant operations with respect to both economics and sustainability. The useful lifespan of a catalyst is influenced by various factors, including catalyst performance aging (activity and selectivity), or the mechanical damage of catalyst pellets leading to high reactor pressure drops. Deactivation of industrial catalysts often results from thermal (metal sintering, loss of active surface areas, and vaporization), chemical (poisons: inorganic and organic and fouling), and mechanical mechanisms (abrasion, fracture, and dusting). Conducting a proper root-cause analysis can be complex and typically requires multidimensional fundamental scientific approaches. This study illustrates the mechanical degradation of CuZnO catalyst pellets under industrial hydrogenation conditions, leading to an increased pressure drop and reduced catalyst lifetime. Post-mortem analysis at different length scales in combination with the development of accelerating aging tools played a substantial role in the identification of catalyst failure modes for these industrial catalysts. Careful interpretation of the microscopy results enabled the identification of characteristic fingerprints of the failure mechanism. The presence of organic chloride impurities in the feed in combination with a reducing atmosphere accelerated both the sintering of ZnO and deformation of the catalyst pills. This reduced the effective lifespan of the catalyst, as the decrease in particle void fractions led to an increased reactor pressure drop, eventually necessitating the reloading of the reactor with a fresh catalyst. Understanding these mechanisms at both micro and macro scales is crucial for improving the economics and sustainability of commercial operations.

Abstract Image

cuzno基催化剂在工业规模上的失活:从微观到宏观的视角
催化剂性能的意外变化可能对制造工厂的经济和可持续性运营产生重大影响。催化剂的使用寿命受到多种因素的影响,包括催化剂性能老化(活性和选择性),或催化剂球团的机械损伤导致反应器压降高。工业催化剂的失活通常是由热(金属烧结、活性表面积损失和汽化)、化学(毒药:无机和有机以及污垢)和机械机制(磨损、断裂和粉尘)造成的。进行适当的根本原因分析可能是复杂的,通常需要多维的基础科学方法。本研究说明了工业加氢条件下CuZnO催化剂球团的机械降解,导致压降增加,催化剂寿命缩短。不同长度尺度的死后分析结合加速老化工具的发展,在鉴定这些工业催化剂的失效模式方面发挥了重要作用。仔细解释显微镜检查结果,可以识别故障机制的特征指纹。原料中有机氯杂质的存在与还原气氛的结合加速了ZnO的烧结和催化剂丸的变形。这减少了催化剂的有效寿命,因为颗粒空洞分数的减少导致反应器压降的增加,最终需要用新的催化剂重新加载反应器。在微观和宏观尺度上理解这些机制对于提高商业运作的经济性和可持续性至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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