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Ignition delay in dual fuel engines: an extended correlation for gaseous fuels

机译:双重燃料发动机的点火延迟:气态燃料的延长相关性

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Agricultural & municipal waste and wood residues can be easily converted to biogas or producer gas and used for producing heat and power. The main problem with these fuels is their low energy content. This is due to the presence of certain noncombustible gases like CO{sub}2 and N{sub}2 in these fuels. The use of these gases in SI engines is associated with problems like unstable operation and high levels of HC and CO emissions. Gaseous fuel can be easily used with good efficiencies and low emissions in diesel engines running in the dual-fuel mode. In dual-fuel engines, these gaseous fuels are inducted along with air and ignited after compression by a small spray of diesel called the pilot. The presence of these gases alters the thermodynamic properties of the intake charge and significantly influence the ignition delay of the pilot diesel fuel and hence the performance of the engine. The aim of this paper is to modify an existing correlation for ignition delay in a dual-fuel engine to incorporate the effects of the gaseous fuel concentration and composition on the polytropic index. An ignition delay correlation of a blogas dual-fuel engine was modified so that it can be used with any primary fuel. The polytropic index was assumed to be a function of the ratio of specific heats. Further, the effect of injection timing on ignition delay was included. The adapted model was introduced in a simulation program and the results of ignition delay were compared with those given in the literature for a dual-fuel engine. In addition, the correlation was used to predict the ignition delay of the pilot fuel when biogas, LPG, natural gas and producer gas were treated as primary fuels. The results obtained with the new correlation have been compared with experimental values from a LPG-diesel dual fuel engine. The comparison was also made for a biogas dual fuel engine. Errors less than 10% were obtained for both of the fuels between the experimental measurements and simulation results.
机译:农业和市政垃圾和木材残留物可以很容易地转化为沼气或生产者气体,并用于生产热量和功率。这些燃料的主要问题是它们的低能量内容。这是由于存在这些燃料中的某些非易性的气体如CO {SUB} 2和N {SUB} 2。在Si发动机中使用这些气体与不稳定的操作和高水平的HC和CO排放等问题有关。气体燃料可以在双燃料模式下运行的柴油发动机中容易地使用良好的效率和低排放。在双燃料发动机中,这些气态燃料随着空气而引入,并通过称为飞行员的小柴油的小喷雾在压缩后点燃。这些气体的存在改变了进气充电的热力学性质,并显着影响先导柴油燃料的点火延迟并因此影响发动机的性能。本文的目的是修改双燃料发动机中的点火延迟的现有相关性,以结合气态燃料浓度和组合物对多细胞指数的影响。修改了博客双燃料发动机的点火延迟相关性,使得它可以与任何初级燃料一起使用。假设多细胞指数是特定热量的函数。此外,包括注射时间对点火延迟的影响。在模拟程序中引入了适应的模型,并将点火延迟的结果与用于双燃料发动机的文献中给出的那些。此外,使用该相关性用于预测沼气,LPG,天然气和生产者气体作为初级燃料时试点燃料的点火延迟。已经将新相关的结果与来自LPG-柴油双燃料发动机的实验值进行了比较。还对沼气双燃料发动机进行了比较。对于实验测量结果和仿真结果之间的两种燃料,获得了小于10%的误差。

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