2021
DOI: 10.1016/j.matpr.2020.10.290
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A review on status monitoring techniques of transformer and a case study on loss of life calculation of distribution transformers

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Cited by 12 publications
(9 citation statements)
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“…Many strategies are effective for classifying the various sorts of failures stated, as seen in Figure 5 and established by Lekshmi in the study of monitoring techniques [27]; for example, for thermal analysis, which needs a thermal camera and a data acquisition device to record the power transformer's image data, deep learning algorithms are used to categorize failures, primarily internal winding problems.…”
Section: Power Transformer Monitoring Techniquesmentioning
confidence: 99%
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“…Many strategies are effective for classifying the various sorts of failures stated, as seen in Figure 5 and established by Lekshmi in the study of monitoring techniques [27]; for example, for thermal analysis, which needs a thermal camera and a data acquisition device to record the power transformer's image data, deep learning algorithms are used to categorize failures, primarily internal winding problems.…”
Section: Power Transformer Monitoring Techniquesmentioning
confidence: 99%
“…Transformer life expectancy mostly depends on the insulation that is put in place to protect it from heat losses. Throughout the lifespan of the transformer, a number of abnormal circumstances, such as insulation defects, overloading, and winding shorting, will happen, which alters the transformer's typical life span [27]. The life loss is a very informative indicator of the power transformer since it gives an obvious view of the power transformer state.…”
Section: Life Lossmentioning
confidence: 99%
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“…where: FEQA=aging factor n=time interval index N=total time duration 𝛥𝑡 𝑛 =time interval And, the percentage of LOL can be determined as [26], [27]:…”
Section: The Loss Of Life Of the Transformermentioning
confidence: 99%
“…Mechanical damage can also occur when the cooling mechanism fails to function properly. It may gradually turn into a serious fault, such as overheating, winding failure, and oil contamination (Chandran et al, 2021;Murugan & Ramasamy, 2019). Most of these faults can be prevented through testing and maintenance.…”
Section: Introductionmentioning
confidence: 99%