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Influence of Methanol Induction on Performance, Emission and Combustion Behavior of a Methanol - Diesel Dual Fuel Engine

机译:甲醇诱导对甲醇 - 柴油双燃料发动机性能,发射和燃烧行为的影响

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Experimental work was carried out to evaluate the performance, emission and combustion characteristics of a dual fuel engine with diesel as pilot fuel and methanol as inducted primary fuel. A single cylinder water cooled direct injection diesel engine developing a power output of 3.7kW at 1500 rev/min. was modified to work in the dual fuel mode. Tests were conducted at fixed loads such as 100%, 80%, 60% and 40% of the maximum power output with varying methanol induction rates. Brake thermal efficiency in dual fuel operation was better than normal diesel operation with methanol induction mainly at high power outputs. It increased from 30.3% with neat diesel to a maximum of 32.7% when methanol contributed about 44% of energy share. Smoke was reduced significantly with all methanol induction rates at all power outputs in dual fuel operation with diesel as pilot fuel. It was reduced from 3.8 BSU to 1.8 BSU with diesel at the maximum efficiency point at 100% load. NO emission was found lower in dual fuel operation at all loads and all methanol admission rates. This trend was noted mainly due to the reduction in the charge temperature due to vaporization of methanol. However, there was an increase in HC and CO emissions with methanol induction in dual fuel operation. Cylinder peak pressure and maximum rate of pressure rise were found as higher with methanol induction as compared to neat diesel operation mainly at high power outputs due to improvement in combustion. At low power outputs due to misfire peak pressure and maximum rate of pressure rise were reduced. Ignition delay and combustion duration were observed to be higher with methanol induction as compared to neat diesel operation all power outputs. Heat release rate resulted in improved premixed combustion phase with methanol induction mainly at high power outputs. However, at very high rates of methanol induction, premixed combustion phase became inferior due to misfire. It was concluded that diesel as pilot fuel and methanol as the inducted primary fuel could reduce smoke and NO levels significantly in a dual fuel engine with improved thermal efficiencies. However, care must be taken for controlling HC and CO emissions. In addition poor part load performance must be paid attention.
机译:进行了实验工作,以评估双燃料发动机与柴油作为先导燃料和甲醇作为电感初级燃料的性能,排放和燃烧特性。单缸水冷直喷式柴油发动机在1500档/分钟内开发3.7kW的功率输出。被修改为在双燃料模式下工作。测试以固定载荷进行,如100%,80%,60%和40%的最大功率输出,具有不同的甲醇感应率。双燃料操作中的制动热效率优于正常柴油操作,主要以甲醇诱导主要处于高功率输出。当甲醇占能量份额的约44%,它从整洁的柴油增加到最高32.7%的30.3%。所有电源输出中的所有甲醇诱导率都显着降低了柴油,柴油作为试点燃料。它以3.8 BSU减少到1.8 BSU,在100%负荷的最大效率点处用柴油减少。在所有载荷和所有甲醇录取率的双燃料操作中没有发现排放量较低。该趋势主要提出,主要是由于甲醇蒸发引起的电荷温度。然而,HC和双燃料操作中甲醇诱导的CO排放量增加。与燃烧的高功率输出的整齐柴油操作相比,汽缸峰值压力和最大压力升高率较高,主要是由于燃烧的提高。在低功率输出,由于失火峰值压力和最大压力升高速率降低。与整齐的柴油运行相比,观察到点火延迟和燃烧持续时间与甲醇诱导相比,与整齐的柴油操作所有电力输出相比。热释放速率导致改善预混燃烧相,主要是高功率输出的甲醇诱导。然而,在非常高的甲醇诱导率下,由于失火,预混合的燃烧阶段变得低劣。结论是,由于电感的主要燃料可以在双燃料发动机中减少烟雾和甲醇作为导频燃料和甲醇,在双燃料发动机中显着降低烟雾,并且在具有改善的热效的双燃料发动机中。但是,必须注意控制HC和CO排放。另外必须注意差的部分负载性能。

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