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Methanol as a fuel for internal combustion engines

机译:甲醇用作内燃机的燃料

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Transportation of people and goods largely relies on the use of fossil hydrocarbons, contributing to global warming and problems with local air quality. There are a number of alternatives to fossil fuels that can avoid a net carbon emission and can also decrease pollutant emissions. However, many have significant difficulty in competing with fossil fuels due to either limited availability, limited energy density, high cost, or a combination of these.Methanol (CH3OH) is one of these alternatives, which was demonstrated in large fleet trials during the 1980s and 1990s, and is currently again being introduced in various places and applications. It can be produced from fossil fuels, but also from biomass and from renewable energy sources in carbon capture and utilization schemes. It can be used in pure form or as a blend component, in internal combustion engines (ICEs) or in direct methanol fuel cells (DMFCs). These features added to the fact it is a liquid fuel, making it an efficient way of storing and distributing energy, make it stand out as one of the most attractive scalable alternatives.This review focuses on the use of methanol as a pure fuel or blend component for ICEs. First, we introduce methanol historically, briefly introduce the various methods for its production, and summarize health and safety of using methanol as a fuel. Then, we focus on its use as a fuel for ICEs. The current data on the physical and chemical properties relevant for ICEs are reviewed, highlighting the differences with fuels such as ethanol and gasoline. These are then related to the research reported on the behaviour of methanol and methanol blends in spark ignition and compression ignition engines. Many of the properties of methanol that are significantly different from those of for example gasoline (such as its high heat of vaporization) lead to advantages as well as challenges. Both are extensively discussed.Methanol's performance, in terms of power output, peak and part load efficiency, and emissions formation is summarized, for so-called flex-fuel engines as well as for dedicated engines. We also briefly touch upon engine hardware changes and material compatibility. Methanol fuel reforming using engine waste heat is discussed, as a potential route towards further increases in efficiency and decreases in emissions. Next to the experimental work, research efforts into modelling the behaviour of methanol as a fuel are also reviewed, including mixture formation, normal and abnormal combustion. Methanol's properties such as high latent heat, fast burning velocity, high knock-resistance and no carbon-to-carbon bonds are shown to leverage engine technology developments such as increased compression ratios, downsizing and dilution; enabling much increased engine efficiencies.Finally, we point out the current gaps in knowledge to indicate which areas future research should be directed at. (C) 2018 Elsevier Ltd. All rights reserved.
机译:人员和货物的运输主要依靠化石碳氢化合物的使用,从而导致全球变暖和当地空气质量问题。化石燃料有许多替代方案,可以避免产生净碳排放,也可以减少污染物排放。但是,由于可用性有限,能量密度有限,成本高或两者兼而有之,许多人在与化石燃料的竞争中遇到了巨大困难。甲醇(CH3OH)是这些替代品之一,这在1980年代的大型机队试验中得到了证明。和1990年代,目前又在各种地方和应用中引入。它可以由化石燃料生产,也可以由生物质和碳捕集与利用计划中的可再生能源生产。它可以以纯净形式或混合成分的形式用于内燃机(ICE)或直接甲醇燃料电池(DMFC)中。这些特性增加了它是液体燃料的事实,使其成为一种有效的存储和分配能量的方式,使其成为最具吸引力的可扩展替代品之一。本综述着重于使用甲醇作为纯燃料或混合燃料ICE的组件。首先,我们从历史上介绍甲醇,简要介绍其生产方法,并总结使用甲醇作为燃料的健康和安全性。然后,我们专注于将其用作ICE的燃料。审查了与ICE有关的有关理化性质的当前数据,突出了与乙醇和汽油等燃料的差异。然后,这些与报道的有关火花点火和压缩点火发动机中甲醇和甲醇混合物行为的研究有关。甲醇的许多特性与汽油(例如,其较高的汽化热)明显不同,这既带来了优势,也带来了挑战。两者都得到了广泛讨论。总结了所谓的柔性燃料发动机和专用发动机在功率输出,峰值和部分负载效率以及排放形成方面的甲醇性能。我们还简要介绍了引擎硬件的更改和材料兼容性。讨论了利用发动机废热进行甲醇燃料重整,作为进一步提高效率和减少排放的潜在途径。除实验工作外,还对建模甲醇作为燃料行为的研究工作进行了回顾,包括混合物形成,正常燃烧和异常燃烧。甲醇的特性,例如高潜热,快速燃烧速度,高耐爆震性和无碳碳键,都证明可以利用发动机技术的发展,例如增加压缩比,减小尺寸和稀释。最后,我们指出了当前的知识差距,以指出未来的研究应针对哪些领域。 (C)2018 Elsevier Ltd.保留所有权利。

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