The conversıon of ethanol to acetone on a ZnO-CaO catalyst in the presence of water vapor

IF 0.3 Q4 ENGINEERING, PETROLEUM Nafta-Gaz Pub Date : 2023-10-01 DOI:10.18668/ng.2023.10.07
Narqiz N. Baghirova, Rena E. Mustafayeva
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Abstract

The main product of the conversion of ethanol to acetone on a ZnO-CaO catalyst is acetone, the yield of which strongly depends on the composition of the reaction environment. When oxygen is present, the yield of products of destructive and complete oxidation increases greatly. In contrast, when water vapor is present, both the selectivity and conversion of ethanol increase. Therefore, the conversion of ethanol is the limiting step in the overall process, which determines the selectivity of the conversion of ethanol to acetone. In this regard, it appeared suitable to investigate the effect of introducing water to the contact zone. As experiments indicated, the addition of water caused a significant effect on the conversion, selectivity, and acetone yield on the ZnO-CaO catalyst. As the partial pressure of water vapor increases, the conversion of ethanol and the acetone yield increase, while the yield of carbon dioxide decreases. The decrease in carbon dioxide is associated not only with the inhibition of the conversion of ethanol to CO2. In this study, the adsorption of water vapor and ammonia on the surface of the ZnO-CaO catalyst was examined by infrared spectroscopy method. It has been shown that water vapor at low temperatures is adsorbed on the catalyst surface in the molecular form, while at higher temperatures it is adsorbed in the dissociative form. Co-transformation reactions of ethanol with acetic acid, acetaldehyde with ethylene, and acetaldehyde with acetic acid have been studied. The obtained results indicated that acetone is formed mainly through the stage of complexation of acetaldehyde with ethylene. The isomerization reaction of 1-butene to 2-butene has been investigated. It was found that the yield of cis-2-butene in the absence of water vapor is higher, likely attributed to the molecular adsorption of water on Lewis centers. Based on these findings, a scheme for the vapor-phase conversion of ethanol into acetone on the studied catalysts was formulated.
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乙醇在ZnO-CaO催化剂上在水蒸气存在下生成丙酮的conversıon反应
在ZnO-CaO催化剂上,乙醇转化为丙酮的主要产物是丙酮,丙酮的产率很大程度上取决于反应环境的组成。当有氧气存在时,破坏性氧化和完全氧化的产物产量大大增加。相反,当水蒸气存在时,乙醇的选择性和转化率都增加。因此,乙醇的转化是整个过程中的限制性步骤,它决定了乙醇转化为丙酮的选择性。在这方面,研究向接触区引入水的影响似乎是合适的。实验表明,水的加入对ZnO-CaO催化剂的转化率、选择性和丙酮产率有显著影响。随着水蒸气分压的增加,乙醇的转化率和丙酮的产率增加,而二氧化碳的产率降低。二氧化碳的减少不仅与乙醇转化为二氧化碳的抑制有关。本文采用红外光谱法研究了ZnO-CaO催化剂表面对水蒸气和氨的吸附。研究表明,水蒸气在低温下以分子形式吸附在催化剂表面,而在高温下以解离形式吸附在催化剂表面。研究了乙醇与乙酸、乙醛与乙烯、乙醛与乙酸的共转化反应。结果表明,丙酮主要是通过乙醛与乙烯的络合反应形成的。研究了1-丁烯与2-丁烯的异构化反应。结果表明,在没有水蒸气的情况下,顺式-2-丁烯的产率较高,这可能是由于水在Lewis中心的分子吸附作用所致。在此基础上,提出了乙醇气相转化为丙酮的方案。
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来源期刊
Nafta-Gaz
Nafta-Gaz ENGINEERING, PETROLEUM-
CiteScore
0.80
自引率
60.00%
发文量
81
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