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Artificial neural networks with stepwise regression for predicting transformer oil furan content

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TLDR
In this article, a prediction model is proposed for estimation of furan content in transformer oil using oil quality parameters and dissolved gases as inputs, and stepwise regression is used to further tune the prediction model by selecting the most significant predictors.
Abstract
In this paper a prediction model is proposed for estimation of furan content in transformer oil using oil quality parameters and dissolved gases as inputs. Multi-layer perceptron feed forward neural networks were used to model the relationships between various transformer oil parameters and furan content. Seven transformer oil parameters, which are breakdown voltage, water content, acidity, total combustible hydrocarbon gases and hydrogen, total combustible gases, carbon monoxide and carbon dioxide concentrations, are proposed to be predictors of furan content in transformer oil. The predictors were chosen based on the physical nature of oil/paper insulation degradation under transformer operating conditions. Moreover, stepwise regression was used to further tune the prediction model by selecting the most significant predictors. The proposed model has been tested on in-service power transformers and prediction accuracy of 90% for furan content in transformer oil has been achieved.

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Citations
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Journal ArticleDOI

A new technique to measure interfacial tension of transformer oil using UV-Vis spectroscopy

TL;DR: In this paper, an Artificial Neural Network (ANN) approach is proposed to estimate the IFT of transformer oil using ultraviolet-to-visible (UV-Vis) spectroscopy.
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Application of neuro-fuzzy scheme to investigate the winding insulation paper deterioration in oil-immersed power transformer

TL;DR: In this article, an attempt has been made to examine the effectiveness of Neuro-Fuzzy Scheme (NFS), to identify the deterioration of the winding insulation paper (WIP) in a oil-immerged power transformer, and to compare its performance over conventional methods (IEEE/IEC).
Journal ArticleDOI

Feature Selection for Effective Health Index Diagnoses of Power Transformers

TL;DR: The experimental results demonstrate that water content, acidity, breakdown voltage, and FFA (Furan), are the most influential testing parameters in determining the transformer HI.
Journal ArticleDOI

Transformer Paper Expected Life Estimation Using ANFIS Based on Oil Characteristics and Dissolved Gases (Case Study: Indonesian Transformers)

TL;DR: In this paper, an adaptive Neuro Fuzzy Inference System (ANFIS) for power transformer paper conditions in order to estimate the transformer transformer's expected life was presented, and the best combination of input variables and membership function was selected to build the optimal ANFIS model, which was then compared and evaluated.
Journal ArticleDOI

Accuracy Analysis Mechanism for Agriculture Data Using the Ensemble Neural Network Method

TL;DR: Experimental results reveal that the ENN method is better than traditional back-propagation neural networks and multiple regression analysis, and the method based on ENN has a much lower error rate than traditionalback-propaganda neural networks.
References
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Book

Applied Statistics and Probability for Engineers

TL;DR: Montgomery and Runger's Engineering Statistics text as discussed by the authors provides a practical approach oriented to engineering as well as chemical and physical sciences by providing unique problem sets that reflect realistic situations, students learn how the material will be relevant in their careers.
Journal ArticleDOI

Applied Statistics and Probability for Engineers

Robert V Brill
- 01 Feb 2004 - 
TL;DR: Next, the authors discuss an additive model obtained by replacing the timevarying regression coefŽ cients by constants, and a brief summary of multivariate survival analysis, including measures of association and frailty models.
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Asset-Management of Transformers Based on Condition Monitoring and Standard Diagnosis [Feature Article]

TL;DR: In this paper, a methodology is developed to use data acquisition derived from condition monitoring and standard diagnosis for rehabilitation purposes of transformers, where the interpretation and understanding of the test data are obtained from international test standards to determine the current condition of transformer.
Journal ArticleDOI

Degradation of cellulosic insulation in power transformers .4. Effects of ageing on the tensile strength of paper

TL;DR: In this paper, the authors investigated the primary causes of loss of strength of paper during ageing under accelerated conditions in insulating oil and found that the primary cause is normally mechanical failure/loss of integrity due to loss of mechanical strength as a result of degradation.
Journal ArticleDOI

Aging of cellulose at transformer service temperatures. Part 1: Influence of type of oil and air on the degree of polymerization of pressboard, dissolved gases, and furanic compounds in oil

TL;DR: In this article, the influence of air and oil type on the aging of a power transformer was investigated under a considerable amount of moisture, and the rate of the degree of polymerization, the development of furanic compounds, as well as the gas-in-oil analysis in comparison with the pure oil under the same conditions have been investigated.
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