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用于生物燃料生产的废食用油加氢裂化

Hydrocracking of used cooking oil for biofuels production.

作者信息

Bezergianni Stella, Kalogianni Aggeliki

机构信息

Chemical Process Engineering Research Institute, Center for Research and Technology Hellas, Thermi, Thessaloniki, Greece.

出版信息

Bioresour Technol. 2009 Sep;100(17):3927-32. doi: 10.1016/j.biortech.2009.03.039. Epub 2009 Apr 14.

Abstract

Hydrocracking of used cooking oil is studied as a potential process for biofuels production. In this work several parameters are considered for evaluating the effectiveness of this technology, including hydrocracking temperature, liquid hourly space velocity (LHSV) and days on stream (DOS). Conversion and total biofuels production is favored by increasing temperature and decreasing LHSV. However moderate reaction temperatures and LHSVs are more attractive for diesel production, whereas higher temperatures and smaller LHSVs are more suitable for gasoline production. Furthermore heteroatom (S, N and O) removal increases as hydrocracking temperature increases, with de-oxygenation being particularly favorable. Saturation, however, is not favored with temperature indicating the necessity of a pre-treatment step prior to hydrocracking to enable saturation of the double bonds and heteroatom removal. Finally the impact of extended operation (catalyst life) on product yields and qualities indicates that all reactions are affected yet at different rates.

摘要

研究了废食用油的加氢裂化作为生物燃料生产的潜在工艺。在这项工作中,考虑了几个参数来评估该技术的有效性,包括加氢裂化温度、液时空速(LHSV)和连续运行天数(DOS)。提高温度和降低LHSV有利于转化率和生物燃料总产量。然而,适中的反应温度和LHSV对柴油生产更具吸引力,而较高的温度和较小的LHSV更适合汽油生产。此外,随着加氢裂化温度的升高,杂原子(S、N和O)的去除增加,其中脱氧尤为有利。然而,饱和度不受温度的青睐,这表明在加氢裂化之前需要进行预处理步骤,以使双键饱和并去除杂原子。最后,延长操作(催化剂寿命)对产物产率和质量的影响表明,所有反应都受到影响,但速率不同。

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