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Hydrous Ethanol Steam Reforming and Thermochemical Recuperation to Improve Dual-Fuel Diesel Engine Emissions and Efficiency

机译:含水乙醇蒸汽重整和热化学回收,以改善双燃料柴油发动机的排放和效率

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Dual-fuel strategies can enable replacement of diesel fuel with low reactivity biofuels like hydrous ethanol. Previous work has shown that dual-fuel strategies using port injection of hydrous ethanol can replace up to 60% of diesel fuel on an energy basis. However, they yield negligible benefits in NOX emissions, soot emissions, and brake thermal efficiency (BTE) over conventional single fuel diesel operation. Pretreatment of hydrous ethanol through steam reforming before mixing with intake air offers the potential to both increase BTE and decrease soot and NOX emissions. Steam reforming can upgrade the heating value of the secondary fuel through thermochemical recuperation (TCR) and produces inert gases to act as a diluent similar to exhaust gas recirculation. This study experimentally investigated a novel thermally integrated steam reforming TCR reactor that uses sensible and chemical energy in the exhaust to provide the necessary heat for hydrous ethanol steam reforming. An off-highway diesel engine was operated at three speed and load settings with varying hydrous ethanol flow rates reaching fumigant energy fractions of up to 70%. The engine achieved soot reductions of close to 90% and minor NOX reductions; however, carbon monoxide and unburned hydrocarbon emissions increased. A first law energy balance using the experimental data shows that the developed TCR system effectively upgraded the heating value of the secondary fuel. Overall, hydrous ethanol steam reforming using TCR can lead to 23% increase in fuel heating value at 100% conversion, a limit approached in the conducted experiments.
机译:双燃料策略可以用低反应性的生物燃料(如含水乙醇)代替柴油。先前的工作表明,使用端口注入含水乙醇的双燃料策略可以替代多达60%的柴油。但是,与传统的单燃料柴油机运行相比,它们在NOX排放,烟尘排放和制动热效率(BTE)方面的收益微不足道。在与进气混合之前,通过蒸汽重整对含水乙醇进行预处理可以增加BTE并减少烟尘和NOX排放。蒸汽重整可以通过热化学换热(TCR)来提高二次燃料的热值,并产生惰性气体以充当类似于废气再循环的稀释剂。这项研究通过实验研究了一种新型的热集成蒸汽重整TCR反应器,该反应器在排气中利用了敏感的化学能,为含水乙醇蒸汽重整提供了必要的热量。一种非公路用柴油发动机在三种速度和负载设置下运行,含水乙醇的流量不断变化,熏蒸能量分数高达70%。发动机的烟尘减少量接近90%,NOX减少量也很小;但是,一氧化碳和未燃碳氢化合物的排放量增加了。使用实验数据的第一定律能量平衡表明,开发的TCR系统有效地提高了二次燃料的热值。总体而言,使用TCR进行含水乙醇蒸汽重整可以使燃料热值在100%转化时提高23%,这是进行的实验所达到的极限。

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