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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Studying the effects of hydrogen addition on the second-law balance of a biogas-fuelled spark ignition engine by use of a quasi-dimensional multi-zone combustion model
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Studying the effects of hydrogen addition on the second-law balance of a biogas-fuelled spark ignition engine by use of a quasi-dimensional multi-zone combustion model

机译:通过拟量多区域燃烧模型研究加氢对沼气火花点火发动机二次律平衡的影响

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Although a first-law analysis can show the improvement that hydrogen addition impacts on the performance of a biogas-fuelled spark-ignition (SI) engine, additional benefits can be revealed when the second law of thermodynamics is brought into perspective. It is theoretically expected that hydrogen enrichment in biogas can increase the second-law efficiency of engine operation by reducing the combustion-generated irreversibilities, because of the fundamental differences in the mechanism of entropy generation between hydrogen and traditional hydrocarbon combustion. In this study, an experimentally validated closed-cycle simulation code, incorporating a quasi-dimensional multi-zone combustion model that is based on the combination of turbulent entrainment theory and flame stretch concepts for the prediction of burning rates, is further extended to include second-law analysis for the purpose of quantifying the respective improvements. The analysis is applied for a single-cylinder homogeneous charge SI engine, fuelled with biogas-hydrogen blends, with up to 15 vol % hydrogen in the fuel mixture, when operated at 1500 r/min, wide-open throttle, fuel-to-air equivalence ratio of 0.9, and ignition timing of 20° crank angle before top dead centre. Among the major findings derived from the second-law balance during the closed part of the engine cycle is the increase in the second-law efficiency from 40.85 per cent to 42.41 per cent with hydrogen addition, accompanied by a simultaneous decrease in the combustion irreversibilities from 18.25 per cent to 17.18 per cent of the total availability of the charge at inlet valve closing. It is also illustrated how both the increase in the combustion temperatures and the decrease in the combustion duration with increasing hydrogen content result in a reduction in the combustion irreversibilities. The degree of thermodynamic perfection of the combustion process from the second-law point of view is quantified by using two (differently defined) combustion exergetic efficiencies, whose maximum values during the combustion process increase with hydrogen enrichment from 49.70 per cent to 53.45 per cent and from 86.01 per cent to 87.33 per cent, respectively. [PUBLICATION ABSTRACT]
机译:尽管第一定律分析可以显示出氢气添加会影响沼气供油式火花点火(SI)发动机性能的改进,但是当将热力学第二定律纳入考虑范围时,可以显示出更多的好处。从理论上讲,由于氢气与传统碳氢化合物燃烧之间的熵产生机理存在根本差异,沼气中的氢气富集可通过减少燃烧产生的不可逆性来提高发动机运行的第二律效率。在这项研究中,结合湍流夹带理论和火焰拉伸概念来预测燃烧速率的准多维多区域燃烧模型的实验验证封闭循环模拟代码进一步扩展为包括第二部分。律分析,目的是量化各个改进。该分析适用于单缸均质充气SI发动机,该发动机以沼气-氢气混合物为燃料,当以1500 r / min的转速运行时,燃料混合物中的氢含量最高为15 vol%,节气门全开,空气当量比为0.9,点火正时为上死点之前的20°曲柄角。在发动机循环的封闭阶段从二次定律平衡得出的主要发现中,随着氢气的添加,二次定律效率从40.85%提高到42.41%,同时燃烧不可逆性也随之降低。进气阀关闭时可充气总量的18.25%至17.18%。还示出了随着氢气含量的增加,燃烧温度的增加和燃烧持续时间的减少如何导致燃烧不可逆性的减小。从第二定律的角度来看,燃烧过程的热力学完美程度是通过使用两个(不同定义的)燃烧能效来量化的,其燃烧过程中的最大值随着氢富集而从49.70%增加到53.45%,并且从86.01%增至87.33%。 [出版物摘要]

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