用废催化裂化催化剂回收硅和铝组分合成沸石

IF 7.1 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL
Mathias S. Marschall, Markus Seifert, Mathias Hauck, Oliver Busse, Jan J. Weigand
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引用次数: 0

摘要

催化裂化催化剂,特别是稀土元素(REE)的部分再利用已经取得了重大进展,但只有全面的回收策略才能有效地促进化学工业的可持续发展。本研究提出了一种新型的催化裂化废催化剂回收工艺,包括预处理、二氧化硅和氧化铝的选择性分离以及沸石或类沸石材料的合成。该工艺专门利用从废FCC催化剂中回收的硅和铝来生产高质量的催化剂组分和吸附剂。可选稀土元素(REE)浸出,用氢氧化钠再活化后的酸处理,沉淀和过滤产生硅种(二氧化硅)。富含铝的酸性滤液通过氢氧化钠将其转化为碱性介质进行进一步处理,从而能够沉淀和去除不需要的重金属和稀土元素。铝是通过中和碱性溶液,然后沉淀和过滤来回收的。总的来说,高达95%的硅酸和氧化铝被回收。随后的化学合成生产出高结晶沸石Y和ZSM-5作为FCC催化剂的活性沸石,AlPO4作为替代粘合剂。一项技术经济分析显示,只要不考虑环境修复,在炼油厂旁边的工业规模上的周转是可控的,而成本仍高于当前的市场价格。与最近的研究不同,不需要额外的硅和铝来源,这促进了更独立的本地回收。此外,利用Y沸石生产过程中得到的滤液合成A沸石作为吸附剂,几乎完成了回收循环。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Zeolite synthesis using recycled silicon and aluminum components from spent FCC catalysts

Zeolite synthesis using recycled silicon and aluminum components from spent FCC catalysts
Significant efforts have been made to partially reuse FCC catalysts, particularly rare earth elements (REE), but only comprehensive recycling strategies can effectively contribute to a sustainable chemical industry. This work presents a novel recycling process for spent FCC catalyst materials, involving pre-treatment, selective separation of silica and alumina species, and synthesis of zeolites or zeolite-like materials. The process exclusively utilizes silicon and aluminum recovered from the spent FCC catalyst to produce high-quality catalyst components and sorbents. Optional rare earth element (REE) leaching, acid treatment after reactivation with sodium hydroxide, precipitation, and filtration yield silicon species (silica). The acidic, aluminum-rich filtrate is processed further by converting it into an alkaline medium with sodium hydroxide, enabling the precipitation and removal of unwanted heavy metals and rare earth elements. Aluminum species are recovered through neutralization of the alkaline solution, followed by precipitation and filtration. Overall, up to 95 % of the silicic acid and aluminum oxide are recovered. Subsequent chemical syntheses yield high-crystalline zeolite Y and ZSM-5 as active zeolites for FCC catalysts, alongside AlPO4 as an alternative binder. A techno-economic analysis reveals a manageable turnover on industrial scale next to a refinery, while the costs still surpass current market prices, as long they do not care about environmental remediation. Unlike recent studies, no additional silicon and aluminum sources are required, which promotes a more independent local recycling. Furthermore, zeolite A was synthesized as a sorbent using the filtrate solution obtained during the production of zeolite Y, thus nearly completing the recycling loop.
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来源期刊
Waste management
Waste management 环境科学-工程:环境
CiteScore
15.60
自引率
6.20%
发文量
492
审稿时长
39 days
期刊介绍: Waste Management is devoted to the presentation and discussion of information on solid wastes,it covers the entire lifecycle of solid. wastes. Scope: Addresses solid wastes in both industrialized and economically developing countries Covers various types of solid wastes, including: Municipal (e.g., residential, institutional, commercial, light industrial) Agricultural Special (e.g., C and D, healthcare, household hazardous wastes, sewage sludge)
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