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      Influence of moisture on the interface charge of oil–pressboard composite insulation under DC voltage

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          Abstract

          The distortion of the electric field in the oil–pressboard composite insulation caused by the accumulation of the interface charge is detrimental to both the insulation design and operation of converter transformers. The influence of moisture content on the surface charge accumulation of oil–pressboard insulation under DC voltage was studied in this study. In accordance with the Kerr electro-optic effect, the electric field strengths in transformer oil and the surface charge density were acquired after applying the positive and negative DC voltages in three oil–pressboard insulation models with different moisture content, respectively. The resistivities of the oil and pressboard in three models, namely Model 1# with 3.8–4.2 ppm moisture in oil and 0.35–0.37% moisture in pressboard, Model 2# with 7.6–7.9 ppm moisture in oil and 0.79–0.82% moisture in pressboard and Model 3# with 14.9–15.4 ppm moisture in oil and 1.39–1.42% moisture in pressboard, was also measured. The results indicate that: (i) as negative charges in oil accumulated on the pressboard surface in a much greater speed than the positive ones, the electric field in transformer oil under negative DC voltage decreases more rapidly with time than that under positive DC voltage; (ii) the increase of the moisture content in both oil and pressboard, under either positive or negative DC voltage, leads to the decrease of both the electric field strength in transformer oil and the charge density with time; and (iii) the increase of moisture content could not only decrease the resistivity of both oil and pressboard, but also the ratio of the resistivity between the pressboard and the oil. On the basis of the Maxwell–Wagner theory, the decrease of the ratio between the pressboard and oil could lead to the decrease of the interfacial charge density, leading to the slow transient process of the electric field in transformer oil under DC voltage.

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          Degradation of cellulosic insulation in power transformers. Part 3: Effects of oxygen and water on ageing in oil

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            Moisture equilibrium in transformer paper-oil systems

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              A Moisture-in-Oil Model for Power Transformer Monitoring—Part I: Theoretical Foundation

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                Author and article information

                Contributors
                Journal
                HVE
                High Voltage
                High Volt.
                The Institution of Engineering and Technology
                2397-7264
                10 January 2018
                7 February 2018
                March 2018
                : 3
                : 1
                : 73-77
                Affiliations
                [1 ] State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources, North China Electric Power University , No. 2 Beinong Road, Beijing, People's Republic of China
                [2 ] Beijing Key Laboratory of High Voltage & EMC, North China Electric Power University , No. 2 Beinong Road, Beijing, People's Republic of China
                [3 ] High Voltage Department, China Electric Power Research Institute , No. 15 Xiaoying East Road, Beijing, People's Republic of China
                Article
                HVE.2017.0096 HVE.2017.0096.R2
                10.1049/hve.2017.0096
                97108e47-47c6-454f-a11f-78fd9eb633ce

                This is an open access article published by the IET and CEPRI under the Creative Commons Attribution License ( http://creativecommons.org/licenses/by/3.0/)

                History
                : 25 June 2017
                : 4 January 2018
                : 8 January 2018
                Page count
                Pages: 0
                Funding
                Funded by: Beijing Natural Science Foundation
                Award ID: 3172033
                Categories
                Research Article

                Computer science,Engineering,Artificial intelligence,Electrical engineering,Mechanical engineering,Renewable energy
                Kerr electro-optic effect,power transformer insulation,surface charge density,oil resistivity,oil-pressboard composite insulation,surface charge accumulation,Maxwell-Wagner theory,moisture content,pressboard resistivity,transformer oil,interface charge,composite insulating materials,DC voltage,electric field strengths,surface charging,negative charges,interfacial charge density

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