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A portable fuel processor for hydrogen production from ethanol in a 250 W_(el) fuel cell system

机译:便携式燃料处理器,用于在250 W_(el)燃料电池系统中由乙醇生产氢气

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摘要

This paper describes the design, manufacturing, operation, and optimization of a mobile ethanol reformer fuel cell system for off-grid power production. The reformer system includes an autothermal reformer, high and low temperature shift reactors, a selective methanation reactor, and a tail gas combustor. A minimum amount of process controls and little internal heat integration kept system architecture simple.rnProcess simulations provided optimal operating parameters, expected hydrogen yield, and system efficiency. The reformer temperature was selected to be 730 ℃ with minimal methane production and no soot formation in the reactor. The oxygen-to-steam ratio is determined by the temperature of feed streams, reforming temperature and heat losses. It was set to be in the order of 0.9. The steam-to-carbon ratio has no impact on carbon monoxide concentration (on a dry basis) in the reformer system product gas, i.e. at the outlet of the selective methanation reactor. Therefore, it was selected to be 2.5, sufficiently high to avoid soot formation in the reforming reactor and yet small enough to keep the size of the water evaporator in a sensible range.rnThe reformer fuel cell system was operated in a lab environment and all reactors were thoroughly investigated. Main focus was to keep the carbon monoxide concentration at the outlet of the selective methanation reactor below 10 ppmv at all times. Furthermore, startup and shut down procedures were optimized to minimize degradation of the catalysts. Finally, the complete reformer fuel cell system was operated to investigate its performance. System controls allowed fully automated operation of the integrated reformer fuel cell system.
机译:本文介绍了用于离网发电的移动式乙醇重整器燃料电池系统的设计,制造,操作和优化。该重整系统包括自动热重整器,高温和低温变换反应器,选择性甲烷化反应器和尾气燃烧器。最少的过程控制和很少的内部热集成使系统架构变得简单。过程仿真提供了最佳的运行参数,预期的氢气产量和系统效率。重整器温度选择为730℃,甲烷生成量最小,反应器中没有烟灰形成。氧气与蒸汽的比例取决于进料流的温度,重整温度和热损失。设置为0.9左右。蒸汽/碳比对重整器系统产物气体中,即选择性甲烷化反应器出口处的一氧化碳浓度(以干基计)没有影响。因此,将其选择为2.5,足够高以避免在重整反应器中形成烟灰,又要足够小以将水蒸发器的尺寸保持在合理的范围内。-重整器燃料电池系统在实验室环境和所有反应器中运行被彻底调查。主要重点是始终保持选择性甲烷化反应器出口的一氧化碳浓度低于10 ppmv。此外,优化了启动和关闭程序以最小化催化剂的降解。最后,运行完整的重整燃料电池系统以研究其性能。系统控制允许集成重整器燃料电池系统实现全自动操作。

著录项

  • 来源
    《International journal of hydrogen energy》 |2009年第19期|8006-8015|共10页
  • 作者单位

    Fraunhofer Institute for Solar Energy Systems ISE, Heidenhofstrasse 2, D-79110 Freiburg, Germany;

    Fraunhofer Institute for Solar Energy Systems ISE, Heidenhofstrasse 2, D-79110 Freiburg, Germany;

    Fraunhofer Institute for Solar Energy Systems ISE, Heidenhofstrasse 2, D-79110 Freiburg, Germany;

  • 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
  • 中图分类
  • 关键词

    ethanol ATR; shift; reformer fuel cell system; PEMFC;

    机译:乙醇ATR;转移;重整器燃料电池系统;聚乙二醇;

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