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Comparative analysis of various methods to reduce CO_2 emission in a biodiesel fueled CI engine

机译:减少生物柴油为燃料的CI发动机中减少CO_2排放的各种方法的比较分析

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The main aim of this experimental work is to reduce engine-out carbon dioxide (CO2) emission of CI engine fuelled with Karanja oil methyl ester (K100). K100 emitted higher NO and CO2 and lower smoke in comparison to diesel as a result of high fuel borne carbon and oxygen. Various techniques namely 1. Low-carbon biofuel blending 2. Post-combustion carbon capture system (PCCCS) 3. Oxygenate blending 4. Pre-combustion treatment system was adopted to reduce CO2 emission. Equal volume blending of low-carbon biofuels namely eucalyptus oil (EU), camphor oil (CMO), pine oil (PO) and Orange oil (ORG) with K100 reduces CO2 emission. K50-O50 blend emitted minimum CO2, about 27% less in comparison to K100. PCCCS with zeolite, activated carbon and liquid mono ethanolamine (MEA) injection with K50-O50 reduced CO2 emission further. CO2 emission for K50-O50+zeolite is 13.5% less in comparison to K50-O50 at maximum load. CO2 is further reduced with oxygenate blending. Oxygenates namely methanol (M), ethanol (E), n-butanol (B), n-pentanol (P) and acetone (A) were blended 20% by volume (based on the knock limit) with K50-O50 and tested along with zeolite based PCCCS. Among the oxygenates, methanol blending with K50-O50 with ZPCCCS lessened CO2 emission by 65% in comparison to K100. Magnetic fuel reforming system based pre-combustion treatment system reduced CO2 emission further. The combination of all the techniques emitted 68.5% less CO2 in comparison to K100 at maximum load. The effect of the techniques on other emission and performance parameters were also discussed in detail.
机译:该实验工作的主要目的是减少使用Karanja油甲酯(K100)为燃料的CI发动机排放的二氧化碳(CO2)。与柴油相比,K100排放的NO和CO2含量更高,烟气排放量也更低,这是由于燃料中的碳和氧含量较高。各种技术,包括1.低碳生物燃料混合2.燃烧后碳捕集系统(PCCCS)3.氧气混合4.采用预燃烧处理系统以减少CO2排放。将低碳生物燃料(桉树油(EU),樟脑油(CMO),松树油(PO)和橙油(ORG))与K100进行等量混合可减少CO2排放。 K50-O50共混物排放的最低二氧化碳量,比K100低约27%。带有沸石,活性炭和液态单乙醇胺(MEA)的K50-O50注入的PCCCS进一步减少了CO2排放。与最大负荷下的K50-O50相比,K50-O50 +沸石的CO2排放量减少了13.5%。含氧化合物混合可进一步减少二氧化碳。将含氧量即甲醇(M),乙醇(E),正丁醇(B),正戊醇(P)和丙酮(A)与K50-O50混合按体积计20%(基于爆震极限)并进行测试与基于沸石的PCCCS。在含氧化合物中,与KPC-S混合的K50-O50与K100相比,甲醇的CO2排放降低了65%。基于磁性燃料重整系统的预燃烧处理系统进一步减少了CO2排放。与最大负荷下的K100相比,所有技术的组合所排放的二氧化碳减少了68.5%。还详细讨论了该技术对其他排放和性能参数的影响。

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