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Extracting methyl-ester from waste cooking oil for fueling a light duty diesel engine - a dual fuel approach

机译:从废物烹饪油中提取甲基酯,加以轻型柴油发动机 - 一种双燃料方法

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The intention of this test is to efficiently use waste cooking oils (WCOs) that are used globally for cooking and frying purposes. In most cases, these used cooking oils (UCOs)/WCOs are disposed in an unstandardized manner that can cause soil contamination and may affect the groundwater if disposed in large quantities. Recent studies are exploring new vegetable oils that are surplus available all over the country and are especially non-edible. Most of these oils can be extracted from seeds through transesterification and can be attempted to be used for fueling engines, some of the oils are mahua oil, jatropha, lemongrass oil, mango seed oil, and so on. Alike extraction of vegetable oils from seeds, we can extract useful forms of WCOs in the same technique to make sure WCO can be used in a CI engine. Interesting outputs were witnessed when the WCO and neat diesel (ND) blends were fueled in a dual-fuel (DF) diesel engine. In a DF engine, a volatile liquid or gaseous fuel bearing higher octane value is inducted along with air through the intake manifold and compressed to a temperature less than its self-ignition point. In addition, a pilot fuel (with a higher cetane value) is injected through the conventional injection technique which initiates the combustion in the primary fuel-air mixture. Hydrogen looks very attractive for DF operation as "primary fuel". As well the pilot fuel is WCO and neat diesel (ND) blends. WCOB was mixed with mineral diesel fuel by a volume fraction of 50% (WCOB50). In addition to this pure hydrogen was inducted into the intake along with air at the volume flow rate of 4, 6 and 8 lpm (liter per minute). Tests were conducted in a single-cylinder farming based direct injection light-duty diesel engine at several load conditions. At first, test results were correlated with ND fuel and WCOB50 fuel at all loads. WCOB50 fuel indicates a negligible reduction in brake thermal efficiency (BTE) when compared to ND fuel. Further, in this test, the influence of hydrogen induction on tailpipe exhaust emissions of a CI engine fueled with WCOB is examined.
机译:该测试的目的是有效地使用全球使用的废物烹饪油(WCO)以烹饪和煎炸。在大多数情况下,这些使用的食用油(UCOS)/ WCO以非标准化的方式设置,这可能导致土壤污染,并且如果大量设置,可能会影响地下水。最近的研究正在探索全国各地提供的新植物油,特别是不可食用。这些油中的大部分可以通过酯交换从种子中提取,并且可以试图用于加油发动机,其中一些油是Mahua油,麻风树,柠檬草油,芒果种子油等。从种子中提取植物油,我们可以以相同的技术提取有用的WCO,以确保WCO可用于CI发动机。当在双燃料(DF)柴油发动机中促进WCO和整洁的柴油(ND)混合物时,目睹有趣的输出。在DF发动机中,挥发性液体或气态燃料轴承较高的辛烷值与空气一起通过进气歧管电感,并压缩到比其自点点火点小的温度。另外,通过传统的喷射技术注入先导燃料(具有较高的十六烷值),该注射技术引发初级燃料 - 空气混合物中的燃烧。氢气看起来非常有吸引力,因为DF操作是“主要燃料”。也是试点燃料是WCO和整洁的柴油(ND)混合物。将WCOB与矿物柴油燃料混合,体积分数为50%(WCOB50)。除了该纯氢外,在进气中,在体积流速为4,6和8Lpm的体积流速(升/分钟)外。在几个负载条件下在基于单缸养殖直喷柴油发动机中进行测试。首先,测试结果与所有负载下的ND燃料和WCOB50燃料相关。与ND燃料相比,WCOB50燃料表示制动热效率(BTE)的降低可忽略不计。此外,在该试验中,检查氢诱导对用WCOB燃料的CI发动机的尾管废气排放的影响。

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