氢-生物柴油混合燃料直喷柴油机燃烧与排放特性研究

Ö. Cihan, I. Temizer
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引用次数: 1

摘要

本研究的目的是确定菜籽油甲酯作为柴油发动机替代燃料的可用性,并通过在柴油燃料中添加菜籽油甲酯和氢。本研究进行了实验和数值模拟。该发动机在2000转/分钟的转速和满载下进行了研究。在AVL-FIRE ESE柴油机部分进行了分析。在柴油(D100)燃料中分别添加10% (B10)和20% (B20)的菜籽油甲酯,对缸内燃烧和排放进行了实验研究。此外,在柴油和生物柴油混合燃料中分别添加3%和6%的氢燃料,以消除生物柴油燃料的一些缺点。实验和数值研究的结果基本一致。这些结果的相似性也通过氢的数值研究得到了验证。确定了实验研究得到的边界条件,数值分析了氢燃料对温度、缸内压力、喷雾分布和CO生成的影响。在D100、B10和B20燃料的实验研究中,测得的缸内最大压力分别为87 bar、88 bar和89.09 bar。在数值结果中,这些值分别记录为90.02,90和93.8 bar。在这三种不同的燃料混合物中分别添加3%和6%的氢会增加缸内压力和温度。此外,在所有测试燃料中,随着氢的加入,缸内液滴直径减小。这种情况导致二氧化碳排放量减少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of combustion and emission in a DI diesel engine fueled with hydrogen-biodiesel blends
The aim of this study was to determine the availability of canola oil methyl ester as an alternative fuel in diesel engines and by adding canola oil methyl ester and hydrogen to diesel fuel. This study was carried out experimentally and numerically. The engine was studied at 2000 rpm speed and full load. The analyzes carried out in the AVL-FIRE ESE Diesel part. In-cylinder combustion and emission analyzes were examined experimentally by adding 10% (B10) and 20% (B20) of the canola oil methyl ester to the diesel (D100) fuel. Also, hydrogen fuel by the amount of 3% and 6% of the mass were added to diesel and biodiesel mixture fuels to eliminate some disadvantages of biodiesel fuels. The obtained findings in experimental and numerical studies were similar to each other. The similarity of these results was also validated by numerical studies using hydrogen. The boundary conditions obtained in experimental studies were determined, and the effect of hydrogen fuel on temperature, in-cylinder pressure, spray distribution and CO formation were examined numerically. In the experimental studies conducted with D100, B10 and B20 fuels, the maximum pressures in-cylinder were measured as 87 bar, 88 bar and 89.09 bar respectively. In numerical results, these values were recorded as 90.02, 90 and 93.8 bar respectively. Addition of 3% and 6% hydrogen to these three different fuel mixtures increased in-cylinder pressures and temperatures. Also, in-cylinder droplet diameters with the addition of hydrogen decreased in all test fuels. This situation led to a reduction in CO emissions.
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