Bifunctional CaCO3/HY Catalyst in the Simultaneous Cracking-Deoxygenation of Palm Oil to Diesel-Range Hydrocarbons

Q1 Earth and Planetary Sciences Indonesian Journal of Science and Technology Pub Date : 2022-12-28 DOI:10.17509/ijost.v8i2.55494
Rosyad Adrian Febriansyar, Teguh Riyanto, I. Istadi, D. Anggoro, B. Jongsomjit
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Abstract

Palm oil is a promising raw material for biofuel production using the simultaneous catalytic mechanism of the bifunctional cracking-deoxygenation reactions. Through the cracking-deoxygenation process, the chains of palmitic acid and oleic acid in the palm oil were converted to diesel-range hydrocarbons. The combination effects of CaCO3 and HY zeolite enhanced the bifunctional catalytic cracking-deoxygenation of palm oil into biofuel, because of the increasing acid and basic sites in the catalysts due to the synergistic roles of CaCO3 and HY. The introduction of CaCO3 on HY zeolite generated both a strong acid and strong basic sites simultaneously on the designed catalyst, which supports the bifunctional mechanisms of hybrid cracking-deoxygenation, respectively. The CaCO3 impregnated on the HY catalyst has a synergistic and bifunctional effect on the catalyst supporting cracking-deoxygenation reaction mechanisms as mentioned previously. The deoxygenation reaction required the bifunctional strong acid and strong basic sites on the CaCO3/HY catalyst through decarboxylation, decarbonylation, and hydrodeoxygenation reaction mechanisms. Meanwhile, the cracking reaction pathway was supported by the strong acid sites generated on the CaCO3/HY catalyst. In other words, the high acidity strength promotes diesel selectivity, whereas the high strength of basicity leads to the deoxygenation reaction.
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双功能CaCO3/HY催化剂在棕榈油裂解-脱氧制柴油烃类中的应用
棕榈油是利用双功能裂解-脱氧反应同时催化机制生产生物燃料的重要原料。通过裂解-脱氧过程,棕榈油中的棕榈酸链和油酸链转化为柴油级烃类。CaCO3和HY沸石的联合作用增强了棕榈油裂解-脱氧成生物燃料的双功能催化作用,这是因为CaCO3和HY的协同作用增加了催化剂中的酸和碱位点,在HY沸石上引入CaCO3同时在催化剂上产生了强酸和强碱位点,分别支持了混合裂解-脱氧的双功能机制。浸渍在HY催化剂上的CaCO3对支持裂化-脱氧反应机理的催化剂具有协同和双功能作用。该脱氧反应需要CaCO3/HY催化剂上的双官能团强酸和强碱位点通过脱羧、脱羰和加氢脱氧反应机制进行。同时,CaCO3/HY催化剂上生成的强酸位点支持了裂化反应途径。也就是说,高酸性强度促进柴油的选择性,而高碱性强度导致脱氧反应。
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来源期刊
Indonesian Journal of Science and Technology
Indonesian Journal of Science and Technology Engineering-Engineering (all)
CiteScore
11.20
自引率
0.00%
发文量
10
审稿时长
16 weeks
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