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Multi-Objective Optimization of Performance (BSFC) and Emission (NOx) Characteristics for CI Engine Operated on Mangifera Indica Methyl Ester Using Taguchi Grey Relational Analysis

机译:使用TAGUCHI灰色关系分析在Mangifera Indema甲酯上运行的CI发动机的性能(BSFC)和发射(NOx)特征的多目标优化

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Abstract: This paper presents an experimental study on engine performance & emission based on Taguchi method and grey relational analysis for optimization of six input parameters and their five levels. Combined effect of input parameters viz. compression ratio, injection pressure, injection-nozzle geometry, additive, fuel fraction and EGR in controlling BSFC and NOxas the response variables in CI engine fueled with Mangifera Indica biodiesel blends was investigated. Number of experiments was reduced by employing Taguchi's L25orthogonal array. The signal-to-noise (S/N) ratio and grey relational analysis techniques were used for data analysis. The combination of six input parameters was obtained for optimized engine performance and emission. The optimal combination of input parameters so obtained was further confirmed through experiments. The injection nozzle geometry was the most influencing parameter. The GRG improvement with mangifera indica Methyl Ester blend is 84.26% compared to GRG at initial settings of engine for diesel fuel
机译:摘要:本文介绍了基于Taguchi方法和灰色关系分析的发动机性能和发射的实验研究,以优化六个输入参数及其五个层次。输入参数viz的综合作用。控制BSFC和NOXA中的压缩比,注射压力,注射喷嘴几何形状,添加剂,燃料分数和EGR在用Mangifera Indica Biodiesel混合物加油的CI发动机中的响应变量。通过使用Taguchi的L25正交阵列减少了实验数量。信号 - 噪声(S / N)比率和灰色关系分析技术用于数据分析。获得六种输入参数的组合,用于优化发动机性能和发射。通过实验进一步证实了如此获得的输入参数的最佳组合。注射喷嘴几何形状最多的参数。与柴油燃料发动机初始设置的GRG相比,Mangifera Indica甲酯共混物的GRG改善为84.26%

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