塑料废弃物催化加氢裂化制液体燃料的复合沸石催化剂

IF 3.6 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials for Renewable and Sustainable Energy Pub Date : 2020-04-13 DOI:10.1007/s40243-020-00169-3
Dureem Munir, Hassaan Amer, Rabya Aslam, Mohamed Bououdina, Muhammad Rashid Usman
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引用次数: 28

摘要

研究了在氢和沸石复合催化剂存在下废塑料模型混合物转化为高值液体产品的过程。为了比较,还进行了实际废塑料混合物与高密度聚乙烯的转化。在不同的硅铝比、碱浓度和水热处理时间下合成了复合沸石催化剂。采用SEM、EDX、XRD、N2-BET、FTIR和py-FTIR对催化剂进行表征。催化实验在500?Ml搅拌间歇式反应器在20?反应温度在360 ~ 400℃之间变化。不经碱预处理制备的复合催化剂BC27和BC48是最合适的催化剂。BC27和BC48在400?93.0°C, ?实际塑料混合物的转化率达到Wt %,产液率超过68.0% Wt %。实验结果表明,再生催化剂的性能与新鲜催化剂相当。
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Composite zeolite beta catalysts for catalytic hydrocracking of plastic waste to liquid fuels

The conversion of model waste plastic mixture into high-value liquid product was studied in the presence of hydrogen and composites of zeolite beta catalysts. For the sake of comparison, the conversion of actual waste plastic mixture and high-density polyethylene was also carried out. The composite zeolite beta catalysts were synthesized using a range of silica-to-alumina ratios, alkali concentrations, and hydrothermal treatment times. SEM, EDX, XRD, N2-BET, FTIR, and py-FTIR were used for the characterization of the catalysts. The catalytic experiments were conducted in a 500?ml stirred batch reactor at 20?bar initial cold H2 pressure and the temperature of the reaction was varied between 360 and 400?°C. The two composite catalysts, BC27 and BC48, prepared without alkali pretreatment were found to be the most suitable catalysts. With BC27 and BC48 at 400?°C, 93.0?wt% conversion was obtained with actual plastic mixture and the liquid yield exceeded 68.0?wt%. Experiments with the regenerated catalysts showed their performance comparable to the fresh catalysts.

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来源期刊
Materials for Renewable and Sustainable Energy
Materials for Renewable and Sustainable Energy MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.90
自引率
2.20%
发文量
8
审稿时长
13 weeks
期刊介绍: Energy is the single most valuable resource for human activity and the basis for all human progress. Materials play a key role in enabling technologies that can offer promising solutions to achieve renewable and sustainable energy pathways for the future. Materials for Renewable and Sustainable Energy has been established to be the world''s foremost interdisciplinary forum for publication of research on all aspects of the study of materials for the deployment of renewable and sustainable energy technologies. The journal covers experimental and theoretical aspects of materials and prototype devices for sustainable energy conversion, storage, and saving, together with materials needed for renewable fuel production. It publishes reviews, original research articles, rapid communications, and perspectives. All manuscripts are peer-reviewed for scientific quality. Topics include: 1. MATERIALS for renewable energy storage and conversion: Batteries, Supercapacitors, Fuel cells, Hydrogen storage, and Photovoltaics and solar cells. 2. MATERIALS for renewable and sustainable fuel production: Hydrogen production and fuel generation from renewables (catalysis), Solar-driven reactions to hydrogen and fuels from renewables (photocatalysis), Biofuels, and Carbon dioxide sequestration and conversion. 3. MATERIALS for energy saving: Thermoelectrics, Novel illumination sources for efficient lighting, and Energy saving in buildings. 4. MATERIALS modeling and theoretical aspects. 5. Advanced characterization techniques of MATERIALS Materials for Renewable and Sustainable Energy is committed to upholding the integrity of the scientific record. As a member of the Committee on Publication Ethics (COPE) the journal will follow the COPE guidelines on how to deal with potential acts of misconduct. Authors should refrain from misrepresenting research results which could damage the trust in the journal and ultimately the entire scientific endeavor. Maintaining integrity of the research and its presentation can be achieved by following the rules of good scientific practice as detailed here: https://www.springer.com/us/editorial-policies
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