2014
DOI: 10.1007/s40430-014-0213-4
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Applications of artificial neural networks in prediction of performance, emission and combustion characteristics of variable compression ratio engine fuelled with waste cooking oil biodiesel

Abstract: The intention of this study is to predict the performance, emission and combustion characteristics of a single-cylinder, four-stroke variable compression ratio engine fuelled with waste cooking oil methyl ester and its blends-standard diesel with the aid of artificial neural network (ANN). The tests were performed with fuel blends of 20, 40, 60 and 80 % biodiesel with standard diesel, with an engine speed of 1,500 rpm and at compression ratios of 18:1, 19:1, 20:1, 21:1 and 22:1 under different loading conditio… Show more

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Cited by 26 publications
(8 citation statements)
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“…Besides, waste cooking oil (WCO) significantly reduces the cost of production of biodiesel since it is cheaper than the raw materials mentioned above. In addition, the fact the use of WCO has no negative impact on food safety increases the importance of using it as a raw material in biodiesel production [5][6][7].…”
Section: Introductionmentioning
confidence: 99%
“…Besides, waste cooking oil (WCO) significantly reduces the cost of production of biodiesel since it is cheaper than the raw materials mentioned above. In addition, the fact the use of WCO has no negative impact on food safety increases the importance of using it as a raw material in biodiesel production [5][6][7].…”
Section: Introductionmentioning
confidence: 99%
“…Some authors initially present here, used the MISO models. Muralidharan et al [ 82 ] analyzed and developed a model to forecast the emission, performance, and combustion parameters of the engine using waste cooking oil biodiesel. Three different ANN models with back-propagation algorithms utilized to predict parameters separately.…”
Section: Modeling Of Internal Combustion Enginesmentioning
confidence: 99%
“…This paper exploits the concept of neural network to predict the engine characteristics because neural network has been already proved for its successful prediction performance of different fuel resources [45] and engine models [46]. The neural network has been trained using Levenberg-Marquardt algorithm.…”
Section: Neural Prediction Of Engine Characteristicsmentioning
confidence: 99%