High Acidity and Low Carbon-Coke Formation Affinity of Co-Ni/ZSM-5 Catalyst for Renewable Liquid Fuels Production through Simultaneous Cracking-Deoxygenation of Palm Oil

I. Istadi, Teguh Riyanto, D. Anggoro, Cokorda Satrya Pramana, Amalia Rizqi Ramadhani
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Abstract

This study investigates the effect of chemically doped Co and Ni metals on ZSM-5 catalyst with respect to the catalysts’ characteristics and performance for palm oil cracking. Some characterization methods have been conducted to identify the physicochemical properties of the synthesized catalysts, including X-ray diffraction (XRD), Scanning Electron Microscopy (SEM), N2-physisorption, NH3- and CO2-probed Temperature Programmed Desorption (NH3-TPD and CO2-TPD) methods. The deposited carbon-coke on the spent catalysts is analysed using simultaneous thermal gravimetric – differential scanning calorimetry (TG-DTG-DSC) analysis. The performance of catalysts was evaluated on palm oil cracking process in a continuous fixed-bed catalytic reactor at 450 °C. To determine the liquid product composition functional group and components, we used Attenuated Total Reflectance Fourier-transform Infrared Spectroscopy (ATR-FTIR) and batch distillation methods, respectively. We found that the Co metal chemically-doped on Ni/SM-5 catalyst, resulting the increase in the catalysts acidity and the decrease in catalysts basicity. The conversion of palm oil increases as the increase of the ratio of catalysts’ acidity to basicity. The highest triglyceride conversion (76.5%) was obtained on the 3Co-Ni/ZSM-5 with the yield of gasoline, kerosene, and diesel of 2.61%, 4.38%, and 61.75%, respectively. It was also found that the chemically doping Co metal on Ni/ZSM-5 catalyst decreased carbon-coke formation due to the low catalysts’ basicity. Overall, it is proven that the combination of Co and Ni, which chemically doped, on ZSM-5 catalyst has a good activity in palm oil conversion with low carbon-coke formation affinity and high acidity of catalyst.
棕榈油同时裂解-脱氧生产可再生液体燃料的Co-Ni/ZSM-5催化剂的高酸性和低碳结焦亲和性
本研究考察了化学掺杂Co和Ni金属对ZSM-5催化剂的影响,考察了棕榈油裂解催化剂的特性和性能。采用x射线衍射(XRD)、扫描电镜(SEM)、n2物理吸附、NH3和co2探针程序升温解吸(NH3- tpd和CO2-TPD)等表征方法对合成催化剂的理化性质进行了表征。用热重-差示扫描量热法(TG-DTG-DSC)同时分析了废催化剂上沉积的碳焦。在450℃连续固定床催化反应器中对棕榈油裂化工艺进行了催化剂性能评价。采用衰减全反射傅里叶变换红外光谱法(ATR-FTIR)和间歇精馏法测定液体产物的组成、官能团和组分。我们发现Co金属在Ni/SM-5催化剂上化学掺杂,导致催化剂酸度升高,碱度降低。随着催化剂酸碱性比的增加,棕榈油的转化率提高。3Co-Ni/ZSM-5催化剂的甘油三酯转化率最高(76.5%),汽油、煤油和柴油的收率分别为2.61%、4.38%和61.75%。在Ni/ZSM-5催化剂上化学掺杂Co金属,由于催化剂的碱度较低,减少了碳焦的形成。综上所述,在ZSM-5催化剂上化学掺杂Co和Ni的组合具有较好的棕榈油转化活性,催化剂的碳焦形成亲和力低,酸度高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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