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Journal ArticleDOI

A review on the application of response surface method and artificial neural network in engine performance and exhaust emissions characteristics in alternative fuel

TLDR
It was demonstrated from the review that most of the research yield favourable results of engine modelling prediction for both of the methods, and a high degree of determination coefficient indicating that the model could predict the model efficiency with reasonable accuracy.
Abstract
Alternative fuel is one of the widely used fuel substitutions for both petrol and diesel in the field of internal combustion engine. The increase in the demand for alternative fuel is currently driven by the requirement of decreasing engine fuel consumption and fulfilling the stringent engine exhaust emissions pollutant regulations. In order to effectively tackle the aforementioned concerns, it appears that through engine experimental analysis alone for both engine performance and exhaust emissions is insufficient. Recently, the need for engine modelling based on statistical and machine learning methodologies through response surface and artificial neural network technique, respectively, are non-trivial to provide a better decision support analysis. Therefore, the present study reviews the extent to which the application of these methods in various alternative fuel in both spark and compression ignition engine to investigate their viability. The paper also describes herein the ways to determine the accuracy and the significance of model fitting for both methodologies. It was demonstrated from the review that most of the research yield favourable results of engine modelling prediction for both of the methods. It can be concluded the comparison between predicted and experimental results provided a high degree of determination coefficient indicating that the model could predict the model efficiency with reasonable accuracy.

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Citations
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Journal ArticleDOI

An overview of Higher alcohol and biodiesel as alternative fuels in engines

TL;DR: In this paper, a review of engine performance and combustion characteristics using alternative fuels such as alcohol and biodiesel is presented and the effects of alternative fuels on emission properties such as NOx, CO and HC.
Journal ArticleDOI

A review on application of artificial neural network (ANN) for performance and emission characteristics of diesel engine fueled with biodiesel-based fuels

TL;DR: Biodiesel has been emerging as a potential and promising biofuel for the strategy of reducing toxic emissions and improving engine performance, and the development of a novel approach like the ANN model to anticipate engine performance and exhaust emissions with high accuracy was believed to be the best choice.
Journal ArticleDOI

Optimization of diesel engine operating parameters fueled with palm oil-diesel blend: Comparative evaluation between response surface methodology (RSM) and artificial neural network (ANN)

Samet Uslu
- 15 Sep 2020 - 
TL;DR: In this article, the authors used response surface methodology (RSM) and artificial neural network (ANN) models to evaluate the performance and emission characteristics of a single-cylinder diesel engine by several engine loads and injection advances.
Journal ArticleDOI

A review on machine learning forecasting growth trends and their real-time applications in different energy systems

TL;DR: A comprehensive review is conducted on supervised based machine learning algorithms by using three well-known forecasting engines to suggest suitable methods for forecasting analysis and several other prediciton tasks to choose a better forecasting model for performing the desired task in multiple applications.
Journal ArticleDOI

Optimization of diesel engine performance and emission parameters employing cassia tora methyl esters-response surface methodology approach

TL;DR: In this paper, the authors used RSM to optimize the factors which are responsible for the performance of engine as well as emission analysis in case of cassia tora biodiesel blends in direct injection diesel engine using RSM optimization technique.
References
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Journal ArticleDOI

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Journal ArticleDOI

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