首页> 外文期刊>Environmental Science and Pollution Research >Experimental assessment and multi-response optimization of diesel engine performance and emission characteristics fuelled with Aegle marmelos seed cake pyrolysis oil-diesel blends using Grey relational analysis coupled principal component analysis
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Experimental assessment and multi-response optimization of diesel engine performance and emission characteristics fuelled with Aegle marmelos seed cake pyrolysis oil-diesel blends using Grey relational analysis coupled principal component analysis

机译:使用灰色关系分析耦合主成分分析,用灰色关系分析耦合主成分分析,用灰色Marmelos籽蛋白蛋白蛋白蛋白蛋白蛋白胶质解体耦合主成分分析来柴油发动机性能和排放特性的实验评估和多响应优化

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摘要

This research focuses on the detailed experimental assessment of compression ignition (CI) engine behavior fuelled with Aegle marmelos (AM) seed cake pyrolysis oil blends. The study on effects of engine performance and emission a characteristic was designed using L-25 orthogonal array (OA). These multi-objectives were normalized through gray relational analysis (GRA). Likewise, the principal component analysis (PCA) was performed to assess the weighting values respective to every performance and emission characteristics. The variability induced by using the input process parameters was allocated using analysis of variance (ANOVA). Hence, GRA-coupled PCA were employed to determine the optimal combination of CI engine control factors. The greater combination of engine characteristics levels were selected with F-5 and W-5. The higher brake thermal efficiency (BTE) have been obtained for F20 fuel as 22.01% at peak engine load, which is 11.43% for diesel. At peak load condition, F20 fuel emits 14.99% lower HC and 18.52% lower CO as compared to diesel fuel. The improved engine performance and emission characters can be attained by setting the optimal engine parameter combination as F20 blend at full engine load condition. The validation experiments show an improved average engine performance of 67.36% and average lower emission of 64.99% with the composite desirability of 0.8458.
机译:本研究侧重于用透镜Marmelos(AM)籽蛋白饼热解油混合物加油的压缩点火(CI)发动机行为的详细实验评估。使用L-25正交阵列(OA)设计了发动机性能和发射效应的研究。通过灰色关系分析(GRA)标准化这些多目标。同样地,进行主成分分析(PCA)以评估对每个性能和排放特性的加权值。使用使用差异分析(ANOVA)分配通过使用输入过程参数引起的变化。因此,使用GRA耦合的PCA来确定CI发动机控制因子的最佳组合。用F-5和W-5选择发动机特性水平的更大组合。在峰发动机负荷下,在峰值发动机负荷下获得较高的制动热效率(BTE)为22.01%,柴油为11.43%。在峰值负载条件下,与柴油燃料相比,F20燃料在HC和18.52%的CO相比下发射14.99%。通过在全发动机负载条件下将最佳发动机参数组合设置为F20混合物,可以获得改进的发动机性能和发射字符。验证实验显示出平均发动机性能的改善为67.36%,平均降低排放为64.99%,复合可取性为0.8458。

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