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首页> 外文期刊>Energy & fuels >Modeling of Hydrogen Production from Catalytic Partial Oxidation of Ethanol over a Platinum-Rhodium-Supported Catalyst
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Modeling of Hydrogen Production from Catalytic Partial Oxidation of Ethanol over a Platinum-Rhodium-Supported Catalyst

机译:铂 - 铑负载催化剂对乙醇催化部分氧化氢气生产的建模

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摘要

With the aim of designing an onboard hydrogen production system for automotive applications, this work numerically obtained in-depth knowledge of the catalytic partial oxidation of ethanol (ECPOX). The simulation was developed based on a two-dimensional, non-isothermal, and single-channel monolithic catalyst. By combining a novel microkinetic approach with the classical Langmuir–Hinshelwood method, a surface reaction mechanism for ECPOX over platinum–rhodium coated on an alumina catalyst was formulated. The mechanism consisted of (i) partial oxidation of ethanol, (ii) oxidation of hydrogen, (iii) ethanol steam reforming, (iv) oxidation of carbon monoxide, (v) formation of acetaldehyde, (vi) formation of methane, and (vii) water–gas shift. Essential parameters, such as equilibrium constants for the adsorption process and activation energies, were estimated using transition state theory (TST) and the theory of unity bond index-quadratic exponential potential (UBI-QEP), respectively. The developed mechanism was optimized and validated against experimental data. The model predicted products produced from ECPOX (e.g., H_(2), CO, CO_(2), H_(2)O, CH_(3)CHO, and CH_(4)) and the temperature profile inside the monolith channel as a function of the ethanol content and the oxygen-to-ethanol molar ratio. The hot spot position and temperature were accurately calculated by the model. The oxidation of ethanol dominated the first 7 mm of the catalyst, while steam reforming was active over the whole catalyst length. The reverse water–gas shift showed a small effect in the oxidation zone and approached equilibrium in the reforming zone. The model indicated that carbon monoxide adsorbed on the catalyst surface (CO*) was the most abundant reaction intermediate (MARI).
机译:目的是设计用于汽车应用的车载氢气生产系统,这项工作对乙醇(ECPOX)的催化部分氧化进行了数控深入了解。基于二维,非等温和单通道整体催化剂开发了模拟。通过将新的微酮方法与经典的Langmuir-hinshelwood方法相结合,配制了涂布于氧化铝催化剂上的铂 - 铑的ECPOX的表面反应机理。该机制由(i)乙醇的部分氧化,(ii)氢气氧化,(iii)乙醇蒸汽重整,(iv)一氧化碳氧化,(v)形成乙醛,(vi)甲烷的形成,和( vii)水气移。使用过渡状态理论(TST)和Unity Bond指数 - 二次指数电位(UBI-QEP)分别估计了对吸附过程和激活能量的平衡常数等必要参数。开发机制被优化并针对实验数据验证。由ECPOX生产的模型预测产品(例如,H_(2),CO,CO_(2),H_(2)O,CH_(3)CHO和CH_(4))和巨大通道内的温度曲线作为a乙醇含量和氧 - 乙醇摩尔比的作用。通过模型精确计算热点位置和温度。乙醇的氧化占催化剂的前7毫米,而蒸汽重整在整个催化剂长度上是活性的。反向水气体移位在氧化区中显示出小的效果并在重整区接近平衡。该模型表明,吸附在催化剂表面(CO *)上的一氧化碳是最丰富的反应中间体(Mari)。

著录项

  • 来源
    《Energy & fuels 》 |2021年第5期| 4404-4417| 共14页
  • 作者单位

    College of Industrial Technology King Mongkut’s University of Technology North Bangkok|Research Centre for Combustion Technology and Alternative Energy (CTAE) Science and Technology Research Institute King Mongkut’s University of Technology North Bangkok;

    College of Industrial Technology King Mongkut’s University of Technology North Bangkok|Research Centre for Combustion Technology and Alternative Energy (CTAE) Science and Technology Research Institute King Mongkut’s University of Technology North Bangkok;

    Research Centre for Combustion Technology and Alternative Energy (CTAE) Science and Technology Research Institute King Mongkut’s University of Technology North Bangkok|Department of Mechanical and Automotive Engineering Technology Faculty of Engineering and Technology King Mongkut’s University of Technology North Bangkok Rayong Campus;

    College of Industrial Technology King Mongkut’s University of Technology North Bangkok|Research Centre for Combustion Technology and Alternative Energy (CTAE) Science and Technology Research Institute King Mongkut’s University of Technology North Bangkok;

    College of Industrial Technology King Mongkut’s University of Technology North Bangkok|Research Centre for Combustion Technology and Alternative Energy (CTAE) Science and Technology Research Institute King Mongkut’s University of Technology North Bangkok;

    School of Mechanical Engineering Institute of Engineering Suranaree University of Technology;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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