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Desulfurization and Autothermal Reforming of Jet-A Fuel to Produce Syngas for Onboard Solid Oxide Fuel Cell Applications

机译:Jet-A燃料的脱硫和自热重整以生产用于车载固体氧化物燃料电池的合成气

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摘要

Fuel cell is one of the most promising clean energy and alternative energy technologies due to its advantages of low emissions and high efficiency. One application of the fuel cell technology is onboard auxiliary power units (APUs) for power generation in aircrafts, ships, and automobiles. In order to supply hydrogen or syngas for the fuel cell APUs, onboard fuel processing technology was proposed to convert hydrocarbon fuels into syngas through reforming reactions. Two major tasks need to be completed in onboard fuel processing technology. Firstly sulfur compounds have to be removed from hydrocarbon fuels because sulfur can cause reforming catalyst deactivation and fuel cell electrodes poisoning problems. Secondly hydrogen and carbon monoxide shall be produced by reforming of hydrocarbon fuels at a high energy conversion efficiency. This dissertation focused on onboard fuel processing of Jet-A fuel to produce hydrogen and syngas for solid oxide fuel cell (SOFC) APUs. Jet-A fuel was studied because it is the logistic fuel commonly used for civilian airplanes and military heavy duty trucks. Ultra-deep adsorptive desulfurization of Jet-A fuel from over 1,000 ppmw to below 50 ppmw, and autothermal reforming of n-dodecane as a Jet-A fuel surrogate as well as the real desulfurized Jet-A fuel to produce syngas have been systematically investigated in the present study. For the adsorptive desulfurization of Jet-A fuel, a novel NiO-CeO₂/A1₂O₃-SiO₂ adsorbent was proposed and prepared in-house for experimental tests. The sulfur adsorption kinetic characteristic and isotherm at equilibrium were studied in batch tests, and the dynamic desulfurization performance of the adsorbent was investigated in fixed bed tests. Fixed bed tests operation conditions including liquid hourly space velocity (LHSV), adsorbent particle size, and fixed bed dimensions were optimized to achieve the highest adsorbent sulfur adsorption capacity. For the reforming of Jet-A fuel, autothermal reforming (ATR) method was employed and a bimetallic NiO-Rh catalyst was synthesized for the ATR reactions. A lab-scale 2.5 kWt autothermal reforming system including the reformer and balance-of-plant was designed, fabricated, integrated and tested. The reforming system performances at various operation conditions were compared. Reformer operation temperature, steam to carbon ratio and oxygen to carbon ratio, as well as pre-heating temperatures for fuel, air and steam were optimized based on system energy conversion efficiency, H₂ selectivity and COₓ selectivity.
机译:燃料电池由于其低排放和高效率的优点而成为最有前途的清洁能源和替代能源技术之一。燃料电池技术的一种应用是机载辅助动力装置(APU),用于飞机,轮船和汽车的发电。为了向燃料电池APU提供氢气或合成气,提出了机载燃料处理技术,可通过重整反应将烃类燃料转化为合成气。车载燃料处理技术需要完成两个主要任务。首先,必须从碳氢燃料中除去硫化合物,因为硫会导致重整催化剂失活和燃料电池电极中毒的问题。其次,通过重整烃类燃料以高能量转化效率来生产氢气和一氧化碳。本文主要研究Jet-A燃料的机载燃料处理过程,以生产用于固体氧化物燃料电池(PUFC)APU的氢气和合成气。对Jet-A燃料进行了研究,因为它是民用飞机和军用重型卡车常用的后勤燃料。已经系统地研究了Jet-A燃料的超深度吸附脱硫从超过1,000 ppmw到低于50 ppmw,以及正十二烷的自动热重整作为Jet-A燃料的替代物以及实际脱硫的Jet-A燃料以生产合成气的问题。在目前的研究中。为了对Jet-A燃料进行吸附脱硫,提出了一种新型的NiO-CeO 2 / Al 2 O 3 -SiO 2吸附剂,并在室内制备用于实验测试。分批试验研究了硫的吸附动力学特性和平衡时的等温线,固定床试验研究了吸附剂的动态脱硫性能。优化了固定床测试操作条件,包括液时空速(LHSV),吸附剂粒度和固定床尺寸,以实现最高的吸附剂硫吸附能力。对于Jet-A燃料的重整,采用自热重整(ATR)方法,并合成了双金属NiO-Rh催化剂用于ATR反应。设计,制造,集成和测试了实验室规模的2.5 kWt自动热重整系统,包括重整炉和工厂平衡装置。比较了各种操作条件下的重整系统性能。基于系统的能量转化效率,H 2选择性和CO 3选择性,优化了重整器的操作温度,蒸汽与碳的比率,氧气与碳的比率以及燃料,空气和蒸汽的预热温度。

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    Xu Xinhai;

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  • 年度 2014
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