Vapour Phase Hydrogenolysis of Glycerol over NaY-Zeolite Supported Ru Catalysts for Targeted Selectivity towards 1,2-Propanediol

Shalini Kandasamy, Shanthi Priya Samudrala, S. Bhattacharya
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引用次数: 2

Abstract

Biodiesel waste (glycerol) valorization has been gaining interest currently due to the unique structural characteristic of the compound to be processed into many valuable commodities. The current study is focused on the catalytic hydrogenolysis of glycerol to 1,2-propanediol over Ru supported on NaY-Zeolite catalyst via a sustainable route. The catalysts with variable Ru loading (1-5wt%) synthesized by wetness impregnation method were tested for the selective hydrogenolysis of glycerol in a continuous fixed bed reactor at atmospheric pressure and moderate temperatures (160-240 °C). The physicochemical properties of the catalytic materials have been characterized by FTIR, XRD and SEM-EDX techniques. It was observed that the synthesized catalyst remained stable and retained the high crystallinity upon increasing Ru loading and the stretching vibrations of the silica-alumina structure exhibited no difference before and after metal impregnation. Reaction parametric studies performed to compare the effect of calcination and reaction temperature on the catalytic performance during glycerol hydrogenolysis suggested that calcined catalyst has better activity towards glycerol conversion as compared to that of the uncalcined catalyst. Optimization of other reaction parameters such as metal loading, catalyst weight, glycerol concentration, glycerol flow rate as well as hydrogen flow rate is expected to elevate the selectivity towards 1,2-propanediol to a greater extent.
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硝酸沸石负载钌催化剂气相氢解甘油对1,2-丙二醇的靶向选择性
生物柴油废弃物(甘油)的增值处理由于其独特的结构特征而引起了人们的兴趣,这种化合物可以加工成许多有价值的商品。目前的研究重点是通过可持续的途径,在nay -沸石催化剂负载Ru上催化甘油氢解制1,2-丙二醇。采用湿浸渍法合成了Ru负载(1 ~ 5wt%)可变的催化剂,在常压、中等温度(160 ~ 240℃)的连续固定床反应器中进行了甘油选择性氢解实验。采用FTIR、XRD和SEM-EDX等技术对催化材料的理化性质进行了表征。结果表明,随着Ru负载的增加,合成的催化剂保持稳定,并保持了较高的结晶度,并且在金属浸渍前后硅铝结构的拉伸振动没有差异。反应参数研究比较了煅烧和反应温度对甘油氢解催化性能的影响,结果表明,煅烧后的催化剂比未煅烧的催化剂具有更好的甘油转化活性。优化金属负载、催化剂重量、甘油浓度、甘油流速和氢气流速等其他反应参数,有望在更大程度上提高对1,2-丙二醇的选择性。
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