Synthesis of Micromesoporous Zeolite-Alumina Catalysts for Olefin Production from Heavy Crude Oil

IF 2.3 4区 工程技术 Q3 ENGINEERING, CHEMICAL International Journal of Chemical Engineering Pub Date : 2023-01-31 DOI:10.1155/2023/7302409
M. Al-Samhan, J. Al-Fadhli, A. M. Al-Otaibi, R. Bouresli
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引用次数: 1

Abstract

Maximizing the production of high-value olefins from heavy crude oil is a crucial topic in the downstream refining industry. However, converting heavier fractions is a major challenge due to the small pore size of the zeolites. Therefore, this work aimed to develop extrudate zeolite catalysts posing adequate micromesoporous pore network and moderate acidity by combining microporous zeolite with the boehmite phase of alumina. These extruded zeolite-alumina catalysts are expected to allow sufficient diffusion of heavy fractions, thus leading to high cracking of heavy oil into valuable olefins. Different zeolite-alumina catalysts of varying alumina content ranging from 25 to 75% (AlZ-25, AlZ-50, and AlZ-75) were prepared in the laboratory to study the optimum zeolite-alumina ratios for maximum olefin production from heavy oil. The catalysts were characterized for their chemical and physical properties using nitrogen adsorption (N2 adsorption), X-ray diffraction (XRD), inductively coupled plasma (ICP) spectrometry, Fourier transform infrared (FT-IR) spectroscopy, and NH3 temperature programmed desorption (TPD). A gradual increase in the average pore diameter (APD) of the catalysts was observed due to the alumina ratio with a distinct range of acidity that is in the range of 125 to 375°C, and also the geometry of pores is not the same for all of the supports. Catalytic performance tests were conducted in a fixed-bed reactor at 450°C, 10 bar, and liquid hourly space velocity (LHSV) of 1 h−1. The results revealed that the prepared catalysts were thermally stable and effective in heavy oil conversion to olefins. Moreover, the selectivity of propylene was higher than that of ethylene (P/E) due to the modified textural and acidic properties of the catalysts. The results showed that the catalysts prepared with moderate acidity and adequate mesopores exhibited a considerable effect on the conversion of heavy crude oil into olefins. Hence, the acidity and mesoporosity of the catalysts play a vital role in determining the catalyst performance.
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重质原油制烯烃微孔分子筛-氧化铝催化剂的合成
最大限度地从重质原油中生产高价值烯烃是下游炼油行业的一个关键话题。然而,由于沸石的小孔径,转化较重的馏分是一个主要挑战。因此,本工作旨在通过将微孔沸石与氧化铝的勃姆石相结合,开发出具有足够的微孔网络和中等酸度的挤出沸石催化剂。预计这些挤出的沸石-氧化铝催化剂能够使重馏分充分扩散,从而导致重油高度裂化成有价值的烯烃。在实验室中制备了氧化铝含量在25%至75%范围内的不同沸石-氧化铝催化剂(AlZ-25、AlZ-50和AlZ-75),以研究从重油中最大限度地生产烯烃的最佳沸石-氧化铝比例。使用氮气吸附(N2吸附)、X射线衍射(XRD)、电感耦合等离子体(ICP)光谱、傅立叶变换红外(FT-IR)光谱和NH3程序升温脱附(TPD)对催化剂的化学和物理性质进行了表征。观察到催化剂的平均孔径(APD)逐渐增加,这是由于氧化铝比的不同酸度范围在125至375°C之间,而且并非所有载体的孔几何形状都相同。催化性能测试在450°C的固定床反应器中进行,10 bar,液体小时空速(LHSV)为1 结果表明,所制备的催化剂具有热稳定性,能有效地将重油转化为烯烃。此外,由于催化剂的结构和酸性性质的改变,丙烯的选择性高于乙烯(P/E)。结果表明,在中等酸度和适当的介孔条件下制备的催化剂对重质原油转化为烯烃具有显著的影响。因此,催化剂的酸性和介孔性在决定催化剂性能方面起着至关重要的作用。
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来源期刊
International Journal of Chemical Engineering
International Journal of Chemical Engineering Chemical Engineering-General Chemical Engineering
CiteScore
4.00
自引率
3.70%
发文量
95
审稿时长
14 weeks
期刊介绍: International Journal of Chemical Engineering publishes papers on technologies for the production, processing, transportation, and use of chemicals on a large scale. Studies typically relate to processes within chemical and energy industries, especially for production of food, pharmaceuticals, fuels, and chemical feedstocks. Topics of investigation cover plant design and operation, process design and analysis, control and reaction engineering, as well as hazard mitigation and safety measures. As well as original research, International Journal of Chemical Engineering also publishes focused review articles that examine the state of the art, identify emerging trends, and suggest future directions for developing fields.
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