Experimental Study on Low-Temperature Oxidation Characteristics and Ignition Boundary Conditions of Gasoline/Hydrogenated Catalytic Biodiesel

Sicheng Lai, Wenjun Zhong, Tamilselvan Pachiannan, Zhixia He, Qian Wang
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Abstract

Article Experimental Study on Low-Temperature Oxidation Characteristics and Ignition Boundary Conditions of Gasoline/Hydrogenated Catalytic Biodiesel Sicheng Lai 1, Wenjun Zhong 1,*, Tamilselvan Pachiannan 2,3, Zhixia He 1,2, and Qian Wang 1 1 School of Energy Power Engineering, Jiangsu University, Zhenjiang 212013, China 2 Institute for Energy Research, Jiangsu University, Zhenjiang 212013, China 3 School of Environment and Safety Engineering, Jiangsu University, Zhenjiang 212013, China * Correspondence: wj_zhong@ujs.edu.cn     Received: 25 September 2023 Accepted: 8 December 2023 Published: 14 December 2023   Abstract: This study investigates the ignition characteristics of Hydrogenated Catalytic Biodiesel (HCB) with pure gasoline, and diesel. The experiment aims to enhance the ignition characteristics of gasoline fuel by blending it with high-reactivity HCB. It provides experimental data for the fuel blends and offers dependable support for gasoline compression ignition mode applications. To achieve this, the ignition characteristics of various fuels were studied on a variable compression ratio test bench. Experiments were conducted by varying the equivalence ratio and intake temperature of the fuel blends. By analyzing CO emissions and the maximum in-cylinder temperature, we investigated the low-temperature oxidation characteristics of the fuels. Simultaneously, we identified the critical compression ratio and critical temperature as indicators of the ignition boundaries. Finally, this study examined the heat release behavior of the fuels at low temperatures and discussed their combustion characteristics under high-temperature conditions through the heat release rate analysis. The study indicates that with the increase of HCB in the blend, the low-temperature oxidation characteristics are significantly enhanced. However, the ignition boundaries are lowered, and more pronounced secondary heat release combustion behavior is observed. When the blending ratio reaches 50% namely G50H50, it exhibits low-temperature oxidation characteristics and a secondary heat release rate similar to diesel. Their critical compression ratios are 6.8 and 6.5, and the critical temperatures are 838.74 K and 881.41 K respectively. Hence the G50H50 blend holds the potential to serve as a substitute for diesel fuel in compression ignition engines. The increase in intake temperature and equivalence ratio can also enhance low-temperature oxidation characteristics and lower the ignition boundaries. Simultaneously, they exert a certain influence on the peak and phase of the heat release rate.
汽油/加氢催化生物柴油低温氧化特性和点火边界条件的实验研究
文章 汽油/加氢催化生物柴油低温氧化特性及点火边界条件的实验研究 赖思成 1, 钟文军 1,*, Tamilselvan Pachiannan 2,3, 何志霞 1,2, 王倩 1 1 江苏大学能源动力工程学院, 江苏镇江 212013 2 江苏大学能源研究院, 江苏镇江 212013 3 江苏大学环境与安全工程学院, 江苏镇江 212013江苏大学能源动力工程学院,镇江,212013,中国 2 江苏大学能源研究院,镇江,212013,中国 3 江苏大学环境与安全工程学院,镇江,212013,中国 * 通讯地址:江苏镇江,212013:wj_zhong@ujs.edu.cn 收稿日期:2023 年 9 月 25 日接受:2023 年 9 月 25 日2023 年 12 月 8 日 发表于:2023 年 12 月 14 日 摘要:本研究探讨了加氢催化生物柴油(HCB)与纯汽油、柴油的点火特性。该实验旨在通过混合高活性 HCB 来提高汽油燃料的点火特性。它为混合燃料提供了实验数据,并为汽油压燃模式的应用提供了可靠的支持。为此,在可变压缩比试验台上研究了各种燃料的点火特性。通过改变混合燃料的当量比和进气温度进行了实验。通过分析一氧化碳排放量和缸内最高温度,我们研究了燃料的低温氧化特性。同时,我们还确定了临界压缩比和临界温度作为点火边界的指标。最后,本研究考察了燃料在低温下的热释放行为,并通过热释放率分析讨论了燃料在高温条件下的燃烧特性。研究表明,随着混合燃料中六氯苯含量的增加,低温氧化特性显著增强。但是,着火界限降低,二次放热燃烧行为更加明显。当混合比达到 50%(即 G50H50)时,其低温氧化特性和二次放热率与柴油相似。它们的临界压缩比分别为 6.8 和 6.5,临界温度分别为 838.74 K 和 881.41 K。因此,G50H50 混合燃料具有在压燃式发动机中替代柴油的潜力。进气温度和当量比的提高还能增强低温氧化特性,降低点火边界。同时,它们对热释放率的峰值和阶段也有一定的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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