钨锰双金属支撑蒙脱石催化聚酯/粘胶纤维热解的研究

IF 1.7 4区 化学 Q4 CHEMISTRY, PHYSICAL
Pingli Li, Qi Yang, Hongmei Peng
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引用次数: 0

摘要

本文利用蒙脱石(MMT)催化剂与不同比例和数量的钨锰双金属,对聚酯/粘胶纤维的热解脱氧升级进行了研究。通过对 NH3 的温度编程解吸(NH3-TPD)发现,在添加钨锰双金属后,蒙脱石形成了新的酸性位点,导致总酸度大幅上升。双金属负载量为 10 wt% 的 MMT 芳烃产率最高(73.10%),单环芳烃(MAHs)产率最高,为 40.38%,而多环芳烃(PAHs)产率最低。当双金属负载量为 15 wt% 和 20 wt% 时,MAHs 产量急剧下降。适度的负载有可能促进 MAHs 的生成,而过高的负载则容易促进 PAHs 的生成。不同比例的钨锰双金属负载会提高 MMT 的酸平衡。当双金属负载比例为 1:1 时,会产生显著的协同效应,从而大幅提高催化剂对 MAHs 和 PAHs 的调节性能。具体而言,催化剂表现出产生更多有用 MAHs(40.38%)的趋势,同时减少了 PAHs 的产生(32.72%)。这一现象可归因于适当的孔隙结构以及孔隙中路易斯酸和布伦斯特酸位点的公平分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Study of the pyrolysis of polyester/viscose fibers catalyzed by tungsten-manganese bimetal supported montmorillonite

Study of the pyrolysis of polyester/viscose fibers catalyzed by tungsten-manganese bimetal supported montmorillonite

The upgrading of pyrolysis deoxygenation of polyester/viscose fibers was examined in this paper utilizing montmorillonite (MMT) catalysts with varying ratios and amounts of tungsten-manganese bimetallic. The temperature-programmed desorption of NH3 (NH3-TPD) revealed that after tungsten-manganese bimetal loading, MMT formed novel acidic sites, resulting in a considerable rise in total acidity. The maximum aromatics yield (73.10%) was achieved by the MMT with a bimetal loading of 10 wt%, the yield of monocyclic aromatic hydrocarbons (MAHs) was highest at 40.38%, while the yield of polycyclic aromatic hydrocarbons (PAHs) was lowest. The MAHs yield dramatically dropped at 15 wt% and 20 wt% bimetal loading. The application of a moderate load has the potential to facilitate the generation of MAHs, whilst an excessive load can readily facilitate the development of PAHs. The acid equilibrium of MMT was enhanced following the application of varying ratios of tungsten-manganese bimetal loading. When the ratio of bimetal load was 1:1, a significant synergistic impact was seen, resulting in a substantial enhancement of the catalyst regulation performance on MAHs and PAHs. Specifically, the catalyst exhibited a tendency to generate a higher proportion of useful MAHs (40.38%) while simultaneously reducing the production of PAHs (32.72%). This phenomenon can be attributed to the appropriate pore structure and the equitable distribution of Lewis acid and Brønsted acid sites within the pores.

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来源期刊
CiteScore
3.30
自引率
5.60%
发文量
201
审稿时长
2.8 months
期刊介绍: Reaction Kinetics, Mechanisms and Catalysis is a medium for original contributions in the following fields: -kinetics of homogeneous reactions in gas, liquid and solid phase; -Homogeneous catalysis; -Heterogeneous catalysis; -Adsorption in heterogeneous catalysis; -Transport processes related to reaction kinetics and catalysis; -Preparation and study of catalysts; -Reactors and apparatus. Reaction Kinetics, Mechanisms and Catalysis was formerly published under the title Reaction Kinetics and Catalysis Letters.
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