• Title/Summary/Keyword: Cable Tray

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Development and Working Efficiency of Supporting Program for the Parametric Electrical Outfit Production Design of Offshore Plant Based on PML (PML 기반 파라메트릭 해양플랜트 전장생산설계 지원 프로그램 개발 및 업무 효율성 연구)

  • Kim, Hyun-Cheol;Kim, Jong-Myung
    • Journal of Ocean Engineering and Technology
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    • v.33 no.3
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    • pp.205-213
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    • 2019
  • Recently, because of the global recession of the offshore plant industry and low-cost orders, there has been increasing interest in strengthening the competitiveness of domestic companies for the design and production technologies of offshore plants. However, in the offshore plant design field, the Plant Design Management System (PDMS), which is a 3D CAD program for plant layout developed by AVEVA Marine, is already commonly used as offshore plant design software and widely used in large domestic shipyards and cooperative design companies. Under this background, we have been thinking about ways to design better with the existing software. In this study, we developed a parametric design program to maximize the efficiency and reduce the working time for offshore plant electrical outfit production design based on the Programmable Macro Language (PML) of PDMS. We also examined its performance. By applying the developed program to the offshore plant module selected as an application example, it was confirmed that a 50% improvement in the work efficiency of cable tray design could be obtained compared with the existing method, with work efficiency improvements of 80% or more in other field design work.

Optical Line Monitoring System Using Optical Cable Closure (광케이블 접속함체를 이용한 광선로 감시시스템)

  • Jung, So-Ki;Chae, Woong-Sik
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.38A no.7
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    • pp.592-602
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    • 2013
  • The purpose of this study is to optical cable closure and fiber line monitoring system. The current optical cable closure cases have not had any systems that help the central control station recognize opening as well as closing the cases in real-time when opening B2B and B2C lines. to solve this problem, it is considered to create systems that go off alarms, real-time fault location immediately, set alarms for open and close monitoring optical cable closure, and inspect regularly whether optical cables are deficient when monitoring the optical line in real-time and cutting them, in this paper, the monitoring system whose the central control station finds an optical signal block immediately and goes off the alarms when line workers separate components like a connector or a tray from the optical cable closure through OTDR. this study can contribute to stabilize the network quality through the quick and effective operation of the cables.

Electrical Properties of 6.6kV Cable Termination by Mechanical Damage (기계적 손상에 따른 6.6kV케이블 종단부의 전기적 특성)

  • Baek, Seung-Myeong;Choi, JIn-Wook;Kim, Sang-Hyun;Kim, Young-Seok
    • Proceedings of the KIEE Conference
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    • 2009.07a
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    • pp.1299_1300
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    • 2009
  • We show results that examine about electrical properties of XLPE insulated 6.6kV cable termination by mechanical damage. The cable used to produce the cable termination is 6/10kV tray XLPE fire retardant electric cable (6/10kV TFR-CV $35SQMM{\times}1C$) which is domestically made. We apply force to XLPE insulator and made mechanical defect using knife. Defected samples go through the withstand voltage test according to the IEEE std. 48 test regulations and lighting impulse (hereunder, IMP) withstand voltage test regulations. Then the effects of the scars shown during the construction process on electric accidents at the end part are analyzed.

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전선덕트 규격의 표준화와 시공방법

  • Hong, Seok-Muk
    • Electric Engineers Magazine
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    • v.265 no.9
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    • pp.14-21
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    • 2004
  • 현재 국가간에 IEC를 통하여 국제적인 표준화를 진행 중에 있으나, 이러한 국가간의 표준화가 완료되기 이전이나 혹은 타국과 다른 특성의 제품을 제조 생산하는 경우에는 이와 관련된 내용을 자국의 기술 범위에서 언급을 하고 있는데 국내에서도 잘 알려진 NEMA VE 1-2002/CSA C22.2 NO. 126.1-02(METAL CABLE TRAY SYSTEMS)와 국내의 연구학문도 소개하여 전기계의 기술인들에게 참고 자료가 될 수 있도록 관련기준 위주로 정리하였다.

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Temperature profile evaluation for cable tray arrangements at NPP by cable internal temperature analysis model (THIEF) (케이블 내부온도 분석용 화재모델(THIEF)을 이용한 원전 케이블 배치에 따른 온도 분포 평가)

  • Jee, Moon-Hak;Park, Sang-Jin
    • Proceedings of the Korea Institute of Fire Science and Engineering Conference
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    • 2010.10a
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    • pp.216-223
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    • 2010
  • 원자력발전소의 방화지역에서 화재가 발생할 경우 케이블의 화재리스크는 온도, 열속, 화염 등 열적 특성에 의해 평가된다. 원전의 안전정지 기능에 사용되는 각종 케이블은 설계관리 및 성능분석을 위해 화재실증실험으로 열적 특성을 실측하여야 하지만 다양한 화재시나리오에 대한 실험 조건 확보와 실험 비용 등 제약이 따른다. 이에 따라 화재모델 FDS (Fire Dynamics Simulator)의 최신버전에 포함된 THIEF (Thermally-Induced Electrical Failure) 모델을 이용하여 국내 원전의 안전정지 케이블에 대한 화재모델링 분석을 수행하였다. 이 연구에서는 케이블이 설치된 형태에 따라 일정 열속에 대한 자켓 온도와 경계조건에 대한 온도분포를 분석하였다. 본 연구 결과 THIEF 모델은 원전 방화지역의 화재에서 안전정지 케이블의 내부온도를 예측할 수 있는 화재모델로 사용가능한 것으로 확인되었다.

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Fusing Time Characteristics Analysis of Cable according to Temperature and Insulator (온도 및 절연체에 따른 케이블의 단선시간 특성 해석)

  • Kim, Ju-Hee;Kang, Sin-Dong;Kim, Jae-Ho
    • Journal of the Korean Society of Safety
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    • v.33 no.5
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    • pp.15-20
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    • 2018
  • This paper describes the fusing time characteristics of Light PVC Sheathed Circular Cord(VCTF) and Tray Frame Retardant(TFR) cables according to increased temperature under over current condition. The experimental equation will be used to determine the validity and reliability of the test results. The over current flowed 3, 5 and 10 times higher than the amount of allowable current using DC power supply with DAQ(Data Acquisition) measurement system. An infrared radiation heater, which was controlled by a variable AC auto transformer, was used to increase the temperature from room temperature to 50, 100 and 150 degrees Celsius. First, two type of cables were analyzed those with different cross-sectional areas with in the same structure and those with different structures with in the same cross-sectional areas. Then, it was determined how fusing time had been influenced according to the cross-sectional areas and different structures, respectively. The cable resistance was increased by joule heating according to increasing temperature. Therefore, the allowable current of cable is decreased. Finally, the fusing time of the cable was decreased due to increased temperatures at current flow, which were 3 times the amount of allowable current. The instantaneous breakdown was observed when current flow was 5 and 10 times over the amount of allowable current. The fusing time is directly affected by the structure of cable insulation.

Study on Horizontal and Vertical Temperature Analysis of Cable Fire in Common Duct using Room Corner Experiment (룸코너 실험을 이용한 공동구 케이블 화재 시 수평·수직 방향 온도 분석에 관한 연구)

  • JaeYeop Kim;SeHong Min
    • Journal of the Society of Disaster Information
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    • v.19 no.3
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    • pp.634-643
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    • 2023
  • Purpose: Underground common duct fires are steadily occurring, and the proportion of property damage is particularly large among property and human casualties caused by fires. Especially, cable fires that occur in common areas can spread vertically quickly and pose a great risk. This paper aims to scientifically analyze the nature of the fire by reproducing the fire through experiments. Method: To analyze the characteristics of cable fires in underground common duct, heat release rate and temperature changes were measured through Room-corner (ISO 9705) test, and the vertical and horizontal propagation of cable fires was quantitatively compared and analyzed. Result: The Room Corner Test (ISO 9705) was used to compare the temperature changes at each data logger point. The results showed that the time it took for the fire to reach the ignition temperature in the horizontal and vertical directions from the center point of the first-tier cable was 589 seconds and 536 seconds, respectively, which means that the vertical fire propagation is 53 seconds faster than the horizontal propagation. This proves that the vertical propagation of fire is relatively faster than the horizontal propagation. The horizontal propagation speed of the fire was also compared for each floor cable tray. The results showed that the third-tier cable propagated at 3.4 times the speed of the second-tier cable, and the second-tier cable propagated at 1.5 times the speed of the first-tier cable. This means that the higher the cable is located, the faster the fire spreads and the larger the fire becomes. Conclusion: This study identified the risks of cable fires and analyzed the risks of vertical fire propagation during cable fires based on the results of the Room Corner Test. Studies to prevent the spread of fire and fire response policies to prevent vertical fire propagation are required. The results of this study are expected to be used to assess the fire risk of common areas and other fires.