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Diesel fuel reformer for automotive fuel cell applications

机译:用于汽车燃料电池的柴油重整器

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摘要

Fuel economy and emission abatement are issues, which are highly prioritized areas in the automotive industry of today. The debate about climate change has in recent years even more emphasized the importance of these issues and has increased the search for finding sustainable technical solutions. This paper describes an effort to develop an innovative and environmentally-benign hydrogen generation system operating on commercial diesel fuel to avoid running the engine to supply electricity at stand-still. The use of a fuel cell-based auxiliary power unit (APU) has the potential of delivering electricity at high efficiencies independent of the heavy-duty truck engine. During the reformer development phase, spray formation and mixing of reactants proved to be crucial to obtain high reforming efficiencies and low diesel slip. The diesel is being injected through a nozzle creating a spray of fine droplets of a size which can establish rapid evaporation. Air and steam are being pre-heated and injected into the mixture chamber and subsequently mixed with the evaporated diesel fuel. Depending on the operating parameters, a part of the fuel is being oxidized and produces heat. Autothermal reforming was chosen to circumvent the heat transfer problem in catalytic steam reforming. By supplying heat directly to the catalyst surface by an oxidation reaction the heat demand of the strongly endothermic steam reforming reaction can be fulfilled. We employed CFD calculations, which revealed the importance of avoiding large recirculation zones leading to a prolonged residence time of the hydrocarbon molecules and causing auto-ignition and excessive temperatures in the catalyst. Five different reformer generations are being described and discussed in detail in this publication. The first one was based on a fixed bed reactor, while the other four all relied on catalytic monoliths enabling low pressure drops. The early reactor designs all suffered from auto-ignition and instability problems. The latter generations exhibited a considerably more stable temperature profile in the reformer. The conversion of diesel and the reformer efficiencies are significantly higher than the early generation diesel reformers.
机译:燃油经济性和减少排放是当今汽车行业高度优先考虑的问题。近年来,关于气候变化的辩论更加强调了这些问题的重要性,并加大了寻找可持续技术解决方案的努力。本文介绍了一项努力,以开发一种以商业柴油为燃料的创新型,对环境无害的氢气生成系统,从而避免在静止状态下运行发动机来供电。基于燃料电池的辅助动力装置(APU)的使用具有与重型卡车发动机无关的高效率输电的潜力。在重整器开发阶段,事实证明,喷雾的形成和反应物的混合对于获得高重整效率和低柴油漏失至关重要。柴油是通过喷嘴注入的,产生的细小液滴可以形成快速蒸发的大小。空气和蒸汽被预热并注入混合室,随后与蒸发的柴油混合。根据运行参数,一部分燃料会被氧化并产生热量。选择自热重整来避免催化蒸汽重整中的传热问题。通过通过氧化反应将热量直接提供给催化剂表面,可以满足强吸热蒸汽重整反应的热量需求。我们采用了CFD计算,该计算揭示了避免大的再循环区域,这会导致烃分子的停留时间延长并在催化剂中引起自燃和温度过高的重要性。在该出版物中将详细描述和讨论五代不同的重整器。第一个基于固定床反应器,而其他四个均基于催化整体式,可实现低压降。早期的反应堆设计都遭受自燃和不稳定的问题。后几代在重整器中显示出相当稳定的温度曲线。柴油的转化率和重整器效率明显高于早期的柴油重整器。

著录项

  • 来源
    《International journal of hydrogen energy》 |2009年第8期|3367-3381|共15页
  • 作者单位

    PowerCeIl, Chalmers Science Park, Sven Hultins Gata 9D, SE-412 88 Goeteborg, Sweden;

    Volvo Technology Corporation, Chalmers Science Park, Sven Hultins Gata 9D, SE-412 88 Goeteborg, Sweden;

    PowerCeIl, Chalmers Science Park, Sven Hultins Gata 9D, SE-412 88 Goeteborg, Sweden;

    Volvo Technology Corporation, Chalmers Science Park, Sven Hultins Gata 9D, SE-412 88 Goeteborg, Sweden;

    Volvo Technology Corporation, Chalmers Science Park, Sven Hultins Gata 9D, SE-412 88 Goeteborg, Sweden;

    Volvo Technology Corporation, Chalmers Science Park, Sven Hultins Gata 9D, SE-412 88 Goeteborg, Sweden;

    KTH - Royal Institute of Technology, Department of Chemical Engineering and Technology, Teknikringen 42, SE-100 44 Stockholm, Sweden;

    KTH - Royal Institute of Technology, Department of Chemical Engineering and Technology, Teknikringen 42, SE-100 44 Stockholm, Sweden;

  • 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

    reformer; fuel processor; auxiliary power unit; fuel cell; diesel; automotive; catalyst;

    机译:改革者燃料处理器辅助动力装置燃料电池;柴油机;汽车催化剂;
  • 入库时间 2022-08-18 00:29:51

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