• Title/Summary/Keyword: CNCV cable

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AC Breakdown Voltage Characteristics for 22.9kV Power Cable Before and After Cyclic Aging for 14days (14주기 열화에 따른 22.9kV 전력케이블의 교류파괴전압 특성분석)

  • Kim, We-Young;Heo, Jong-Cheol;Park, Tae-Gone
    • Proceedings of the KIEE Conference
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    • 2005.07c
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    • pp.2271-2273
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    • 2005
  • The cyclic aging for 14days is performed in order to remove the large amount of the volatiles contained in freshly manufactured cable. And the accelerated water treeing test(AWTT) is performed to accelerate the occurance of the water tree in the dielectric of XLPE. In this paper, we examined the AC breakdown voltage characteristics of the 22.9kV power cable before and after the cyclic aging for 14days and the AWTT. As the result, the AC breakdown voltage of the TR CNCV-W power cable is higher than that of CNCV-W and FR CNCO-W power cable.

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Statistical Life Expectancy Calculation of MV Cables and Application Methods (중전압 전선의 통계적 수명예측 계산과 응용 방법)

  • Chong-Eun, Cho;On-You, Lee;Sang-Bong, Kim;Kang-Sik, Kim
    • KEPCO Journal on Electric Power and Energy
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    • v.8 no.2
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    • pp.61-68
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    • 2022
  • In this paper, the change history of various types of MV (Medium Voltage) cables was investigated. In addition, the statistical life expectancy of each type was calculated by using the operation data and the failure data. For cut-off year, 10 years was applied, and realistically applicable statistical life expectancy was calculated by correcting the cause of failure entered by mistake. The life expectancy of FR-CNCO-W was calculated as 51.2 years, CNCV-W 38.1 years, and CNCV 31.4 years and the overall average is 33.8 years. Currently, the life expectancy of TR CNCV-W is 29.4 years, but it is estimated that the lifespan will be extended if failure data is accumulated. As a result, it is expected that life expectancy results can be applied to Asset Management System (AMS) in the future.

Diagnostic method of Insulation Deterioration for CV cable Using D.C. Potential Decay Components (직류전압 감쇄성분 측정에 관한 CV케이블의 절연열화 예측)

  • Yoo, Hyeong-Ho;Han, Min-Koo
    • Proceedings of the KIEE Conference
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    • 1989.07a
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    • pp.323-328
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    • 1989
  • In this paper, we studied the diagnostic method of insulation deterioration for 22.9kV CNCV cable using D.C potential decay component. At first, arbitrary D.C high voltage is appeied the CNCV cable for two minutes and switched off in vacuum. And then D.C potential decay components is measured for ten minutes. It is detecting source for cable insulation deterioration that its gradient is. Provisionally, we decided the criterion voltage and select the high voltage meter and S.W.

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Investigation on DC Breakdown Strength Characteristics of Power Cable Insulation (전력 케이블 절연재에 대한 DC절연파괴강도특성 고찰)

  • Lee, Han-Joo;Jung, Eui-Hwan;Joe, Sung-Hoon;Yoon, Jae-Hoon;Lim, Kee-Joe
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2010.06a
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    • pp.86-86
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    • 2010
  • Recently, CV, CNCV, CNCV-W cable are used to transmit and distribute electric power. And a lot of researchers put more effort to realize high performance. The dielectric breakdown strength characteristic is a standard to design insulators. Examination of that is a main factor to determine long term insulation performance, which is used to diagnose Insulation deterioration. In this paper, we prepared XLPE, XLPE/nano-filler, LDPE/nano-filler for comparing each of the dielectric breakdown strength characteristics.

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Partial Discharge Simulation and Analysis Based on Experiment in Underground Distribution Power Cables

  • Jung, Chae-Kyun;Kim, Jeong-Tae;Lee, Jong-Beom
    • Journal of Electrical Engineering and Technology
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    • v.8 no.4
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    • pp.832-839
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    • 2013
  • This paper describes the simulation and experiment for partial discharge (PD) pulse propagation in 22.9kV CNCV power cables. To investigate the propagation characteristics of PD, experiments are carried out by injecting the PD pulse in 100m-long 60 $mm^2$ CNCV cable in the laboratory. The characteristics of PD are also simulated using EMTP to investigate and analyze PD in the same cable. By comparing the simulation and test results, parameter permittivity is recalculated by considering semiconducting screen in the process of simulation and analysis of PD. After it is proved that simulation results and test results are almost similar in the laboratory, extensive simulations are performed to analyse various PD characteristics such as propagation velocity, attenuation, etc. in 60 $mm^2$ and 325 $mm^2$ CNCV cables. Authors are confident that results obtained in this paper will be used as important technical materials to detect and investigate PD generated in transmission and distribution power cables.

Lightning Impulse Breakdown Voltage Characteristics for 22.9kV TR CNCV-W Power Cable Before and After Cyclic Aging for 14days (14주기 열화에 따른 22.9kV TR CNCV-W 전력케이블의 Lightning-Impulse 파괴전압 특성분석)

  • Kim, We-Young;Heo, Jong-Cheoi;Park, Tae-Gone
    • Proceedings of the KIEE Conference
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    • 2006.07c
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    • pp.1505-1506
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    • 2006
  • XLPE 절연 전력케이블의 제조과정에서 발생하는 가교부산물을 제거할 목적으로 14주기노화를 실시한다. 이 과정에서 가교부산물이 제거되는 효과도 있지만 열에 의한 구조적 결함도 생기게 되며, 이들 모두가 뇌충격파괴전압에 영향을 준다. 22.9kV 트리억제형(TR CNCV-W) 케이블에 대하여 14주기노화 전과 후의 파괴전압을 분석하였으며, 전반적으로 노화과정이 파괴전압을 감소시키는 결과를 보였으나 60 $mm^2$ 케이블은 상승효과와 감소효과가 비슷하게 작용하는 것으로 나타났다.

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Considerations on the Propagation of Partial Discharge Pulse in 3-Phase Power Cable Systems including Cross-Bonding Joints (3상 전력케이블 크로스본딩 접속에서 부분방전 펄스 전파 특성 고찰)

  • Kim, Jeong-Tae;Kim, Dong-Uk;Kim, Ji-Hong
    • Proceedings of the KIEE Conference
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    • 2011.07a
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    • pp.1606-1607
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    • 2011
  • In this study, the propagation characteristics of partial discharge(PD) pulses in the 3-phase cable systems including crossbonding joints were discussed. For the purpose, experiments for 22.9kV CNCV cables were performed using simulated PD pulses, and on-site partial discharge measurements were carried out for the 345kV XLPE cable system.

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Analysis of Partial Discharge Inception Voltages for the Wrong Positioning Defects in the Joint of Distribution Power Cables

  • Kim, Jeong-Tae;Kim, Dong-Uk;Lee, Young-Jo;Koo, Ja-Yoon
    • Journal of Electrical Engineering and Technology
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    • v.7 no.6
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    • pp.977-982
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    • 2012
  • In order to find out partial discharge (PD) phenomena in the cable joint due to the poor workmanship during the installation, the relationship between PD inception voltages and joint defects was investigated. For the purpose, in the joint of 22.9kV CNCV cables, electric fields were calculated for various semiconductive layer wrong positioning (WP) defects. And, PDIV were investigated through the experiments and compared with the results of electric field analysis. In all WP defect cases, the PD inception field calculated using measured PDIVs was similarly shown to be the average value of 1.84kV/mm. In addition, the calculated PDIV and the measured PDIV were almost equal, from the PDIV calculation using maximum electric fields and the measured PDIV for the normal case. Throughout this study, it is possible to analyze WP defects due to the poor workmanship and to establish better joint design for the distribution grade extruded cable system.

A Consideration on 3-Phase Non-Loop, Multiple-Point Ground Method in 22.9[kV] CNCV Underground Cable Systems (22.9[kV] CNCV케이블 지중배전계통의 3상 비일괄 동심증성선 다중접지방식에 대한 이론적고찰)

  • Jeon, Myung-Su;Song, Joong-Ho
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.22 no.2
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    • pp.85-93
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    • 2008
  • In 22.9[kV]-y distribution systems, underground cables are provided with 3-wire loop multiple-point ground in which each coaxial-neutral line of the distribution cable lines(A, B, C phases) is 3-wire common grounded at every connecting section. In the underground cable distribution systems, circulating current flows in the coaxial-neutral lines and its magnitude amounts to about $40{\sim}50[%]$ load currents, even though loads are balanced. This paper presents a new ground method to overcome such a problem and a comprehensive analysis in tows of current capacity of power cables, induced voltage of cable sheath, and electromagnetic interference voltage from power cable lines.