Thermodynamic calculations and analysis were carried out for a rational understanding of the results from selected laboratory MTH reactions. Simul'/> A research into the thermodynamics of methanol to hydrocarbon (MTH): conflictions between simulated product distribution and experimental results
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A research into the thermodynamics of methanol to hydrocarbon (MTH): conflictions between simulated product distribution and experimental results

机译:甲醇热力学对烃(MTH)的研究:模拟产物分布与实验结果之间的矛盾

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摘要

Abstract Thermodynamic calculations and analysis were carried out for a rational understanding of the results from selected laboratory MTH reactions. Simulations without solid carbons (coke), CO, CO2 and light alkanes target on the yield of olefin and aromatic products, which has been found better referenced to the real experimental observations that occur in time-on-stream (TOS). The confliction between simulated data and real experimental results is presumably ascribed to the limited dwelling time of products in the reaction system. Hydrocarbon pool based reactions donate olefins and methyl-benzenes as primary products in a continuous-flow MTH reaction; when the dwelling time of product extends intra-conversions (H2 transfers) between products would further adjust the composition of MTH yield, in which case alkanes and aromatic products (cokes precursors) increase. In the case of intra-conversions are ignored due to limited product dwelling time, thermodynamic calculation on Gibbs free energy change of selected sub reactions shows fairly close results to the real experimental data, which well supports the above explanations. This work highlights the importance of proper choosing target products and/or sub reactions for a rational thermodynamic prediction of MTH product distribution obtained in time-on-stream.]]>
机译:<![CDATA [<标题>抽象 ara ID =“PAR1”>进行热力学计算和分析,用于理性理解所选实验室反应的结果。没有固体碳(焦炭),CO,CO <下标> 2 和光烷烃靶标的烯烃和芳香产品的产量,已经发现较好地引用了时间内发生的真实实验观察 - 流(TOS)。模拟数据与实际实验结果之间的碰撞可能归因于反应系统中产品的有限住宅时间。基于烃基池的反应在连续流动的MTH反应中赋予烯烃和甲基苯作为初级产物;当产品的居住时间延伸到产物之间的帧内交换机(H <下标> 2℃)进一步调节MTH产率的组成,在这种情况下,其中烷烃和芳族产物(焦化前体)增加。在由于产品居住时间有限的情况下忽略了换算,所选子反应的Gibbs自由能量变化的热力学计算显示了实际实验数据的相当接近的结果,这很好地支持上述解释。 This work highlights the importance of proper choosing target products and/or sub reactions for a rational thermodynamic prediction of MTH product distribution obtained in time-on-stream.]]>

著录项

  • 来源
    《Applied Petrochemical Research》 |2017年第1期|共12页
  • 作者单位

    State Key Laboratory of Heavy Oil Processing China University of Petroleum (Beijing);

    Inorganic Chemistry Laboratory Department of Chemistry KACST-Oxford Petrochemical Research Centre (KOPRC) University of Oxford;

    Inorganic Chemistry Laboratory Department of Chemistry KACST-Oxford Petrochemical Research Centre (KOPRC) University of Oxford;

    Inorganic Chemistry Laboratory Department of Chemistry KACST-Oxford Petrochemical Research Centre (KOPRC) University of Oxford;

    Petrochemical Research Institute King Abdulaziz City for Science and Technology;

    Petrochemical Research Institute King Abdulaziz City for Science and Technology;

    Inorganic Chemistry Laboratory Department of Chemistry KACST-Oxford Petrochemical Research Centre (KOPRC) University of Oxford;

    Inorganic Chemistry Laboratory Department of Chemistry KACST-Oxford Petrochemical Research Centre (KOPRC) University of Oxford;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 石油、天然气工业;
  • 关键词

    Methanol to hydrocarbon; Hydrocarbon pool mechanism; Thermodynamic; Intra-conversion; Dwelling time;

    机译:甲醇至烃;碳氢化合物池机制;热力学;帧内转换;住房时间;

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