Kumaravel S, Saravanan C G, Vikneswaran M, Raman Vallinayagam, Sasikala J, J S Femilda Josephin, Alharb Sulaiman Ali, Pugazhendhi Arivalagan, Varuvel Edwin Geo, Allasi Haiter Lenin
Department of Mechanical Engineering, Annamalai University, Annamalainagar, Tamilnadu, India.
Department of Mechanical Engineering, SRM Institute of Science and Technology, Ramapuram, Chennai, 600089, Tamilnadu, India.
Sci Rep. 2024 Dec 30;14(1):31692. doi: 10.1038/s41598-024-81221-4.
Alcohol-based fuels have shown high compatibility with spark-ignition (SI) engines, which require improvements in fuel efficiency and emissions reduction to meet modern environmental standards. While extensive research has been conducted on ethanol and other lower-order alcohols, there has been comparatively limited investigation into higher-order alcohols like butanol and pentanol as fuel alternatives. Previous studies on pentanol-gasoline blends in SI engines have demonstrated improved engine performance and reduced emissions. Building on this, the present study focuses on analyzing the flame characteristics-specifically speed and distribution-of pentanol-gasoline blends within the engine. In this study, pentanol was blended with gasoline by the volume of 10%, 20%, and 30%, namely 1-PNL10, 1-PNL20, and 1-PNL30, and tested in a twin-cylinder gasoline engine with an MPFI system at various load conditions. The study has focused on investigating the flame propagation of gasoline-pentanol blends by examining the in-cylinder flame image. The in-cylinder combustion evolution was visualized and captured by using an AVL Visio scope camera. Flame characteristics such as spatial flame distribution and flame speed were evaluated from the captured flame images for pentanol-gasoline blends and compared with sole gasoline. The flame study indicates that the addition of pentanol favored to increase in the flame speed, which in turn improved the combustion rate. The flame intensity and distribution area increased with the addition of pentanol in gasoline, demonstrating improved in-cylinder combustion with increased peak in-cylinder pressure and heat release rate. The insights on the flame characteristics of pentanol-gasoline blends were used to rationalize the discussion on engine performance and emissions. The performance of the engine was enhanced while increasing the proportion of Pentanol in the gasoline. The 30% Pentanol gasoline blend showed 5.71% higher BTE than gasoline at full load condition. Emissions like CO and HC also decreased at the same time, and NO emission increased. From the test results, it can be concluded that Pentanol can be blended with gasoline up to 30% without any engine modifications.
酒精基燃料已显示出与火花点火(SI)发动机具有高度兼容性,而火花点火发动机需要提高燃油效率和减少排放以符合现代环境标准。虽然已对乙醇和其他低级醇进行了广泛研究,但对丁醇和戊醇等高级醇作为燃料替代品的研究相对有限。先前关于SI发动机中戊醇-汽油混合物的研究已证明发动机性能有所改善且排放减少。在此基础上,本研究着重分析发动机内戊醇-汽油混合物的火焰特性,特别是火焰速度和分布。在本研究中,戊醇按体积比10%、20%和30%与汽油混合,即1-PNL10、1-PNL20和1-PNL30,并在具有多点顺序燃油喷射(MPFI)系统的双缸汽油发动机上在各种负载条件下进行测试。该研究通过检查缸内火焰图像来着重研究汽油-戊醇混合物的火焰传播。使用AVL Visio scope相机对缸内燃烧过程进行可视化和捕捉。从捕捉到的戊醇-汽油混合物火焰图像中评估火焰特性,如空间火焰分布和火焰速度,并与纯汽油进行比较。火焰研究表明,添加戊醇有利于提高火焰速度,进而提高燃烧速率。随着戊醇添加到汽油中,火焰强度和分布面积增加,表明缸内燃烧得到改善,缸内压力峰值和热释放率增加。对戊醇-汽油混合物火焰特性的见解被用于合理讨论发动机性能和排放。在增加汽油中戊醇比例的同时,发动机性能得到增强。在满负荷条件下,30%戊醇汽油混合物的制动热效率比汽油高5.71%。同时,一氧化碳(CO)和碳氢化合物(HC)等排放也减少,而氮氧化物(NO)排放增加。从测试结果可以得出结论,在不进行任何发动机改装的情况下,戊醇可与汽油混合至30%。