• 제목/요약/키워드: piping stress

검색결과 269건 처리시간 0.022초

LNG배관에 존재하는 균열에 대한 응력확대계수 해석 (An Analysis of Stress Intensity Factor for Presented Crack in L.N.G. Piping)

  • 조천연;한지원;우흥식
    • 한국안전학회지
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    • 제11권4호
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    • pp.115-121
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    • 1996
  • This paper describes an analysis of the stress intensity factor (SIF) of the presented cracks in LNG piping. The stress analysis used the Finite Element Method. The stress Intensity factor calculated Raju & Newmann equation and ASME Section XI method. The cracks in the flanges are found to be influenced by temperature, but the cracks of the piping are found not to be influenced by temperature. If the cracks shape in the flanges and the cracks shape of the piping are same each other, the cracks in the flange will be dangerous more than the cracks of the piping.

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석유화학 플랜트 배관계의 응력 및 진동 평가와 적용에 관한 연구 (A Study on Stress and Vibration Evaluations and Application of Piping System in Petrochemical Plant)

  • 민선규;최명진;장승호
    • 한국공작기계학회논문집
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    • 제11권3호
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    • pp.110-116
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    • 2002
  • Here are shown on stress and vibration evaluations and application of piping system in petrochemical plant with and actual example. While stress evaluation by thermal growth has no argument on the calculated results, vibrational evaluations have some different results in accordance with the evaluation methods. In case of the static stress evaluation the ASME B3l.3 code defines 7000 cycles of fatigue lift: in operating the piping system with a design condition. However, the method of vibrational evaluation on piping systems in petrochemical plants has not been established clearly, yet. In this stuffy, it is purposed to present the requirement of a vibrational evaluation method for petrochemical plant piping system, with an actual application.

탄성추종계수를 이용한 고온 배관계의 크리프 응력 예측 (Prediction of Creep Stress in High Temperature Piping System Using Elastic Follow-up Factor)

  • 서준민;윤교근;이현재;오영진;김윤재
    • 한국압력기기공학회 논문집
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    • 제14권1호
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    • pp.32-37
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    • 2018
  • When designing high temperature piping system, creep phenomena must be considered. Since ASME code does not provide detailed methods of design by rule (DBR) for high temperature piping, Finite element analysis should be performed. However, In the case of piping system with frequent design changes, creep analysis of the entire piping system for every change is ineffective and practically impossible. Therefore, based on elastic and elastic-plastic analysis, which takes a relatively short time, the creep stress is predicted by using elastic follow-up factor method provided in R5 code and plastic-creep analogy presented by Hoff. The predicted creep stress for a virtual piping system was compared with the creep analysis result and the two results showed similar stress relaxation tendency in time.

응력부식균열을 고려한 고리 1호기 원자로냉각재계통의 배관 파손확률 평가 (Evaluation of Piping Failure Probability of Reactor Coolant System in Kori Unit 1 Considering Stress Corrosion Cracking)

  • 박정순;최영환;박재학
    • 한국압력기기공학회 논문집
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    • 제6권1호
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    • pp.43-49
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    • 2010
  • The piping failure probability of the reactor coolant system in Kori unit 1 was evaluated considering stress corrosion cracking. The P-PIE program (Probabilistic Piping Integrity Evaluation Program) developed in this study was used in the analysis. The effect of some variables such as oxygen concentration during start up and steady state operation, and operating temperature, which are related with stress corrosion cracking, on the piping failure probabilities was investigated. The effects of leak detection capability, the size of big leak, piping loops, and reactor types on the piping failure probability were also investigated. The results show that (1) LOCA (loss of coolant accident) probability of Kori unit 1 is extremely low, (2) leak probability is sensitive to oxygen concentration during steady state operation and operating temperature, while not sensitive to the oxygen concentration during start up, and (3) the piping thickness and operating temperature play important roles in the leak probabilities of the cold leg in 4 reactor types having same inner diameter.

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Thermal stress analysis for high pressure and temperature pipelines in ultra steam turbine (UST) system

  • 최대건
    • 대한조선학회지
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    • 제52권2호
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    • pp.19-24
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    • 2015
  • A reliable assessment and analysis of the condition of high pressure and temperature steam pipelines requires defining stress state, which will take into consideration not just the impact of internal pressure and temperature but all applied loads. For that, usage of modeling and numerical methods for calculation and analysis of stress state is essential. The main aim of piping stress analysis is to check the design of piping layout, which will allow simple, efficient and economical piping supports and provide flexibility to the piping system for loads and stresses. The piping stress analysis is carried out using CAESER II software. By using this software we can evaluate stresses, stress ratios, flange condition, support loads, element forces and displacements at each node and points. In this paper, only the maximum and minimum displacement results are tabulated, which is also shown in detail by an example of main steam pipelines of UST Main Engine System [1].

배관 재료의 물성을 고려한 내진설계 방법에 관한 연구 (A Study on Seismic Design Method Considering Physical Properties of Piping Material)

  • 방대석;이재오
    • 한국화재소방학회논문지
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    • 제32권2호
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    • pp.38-47
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    • 2018
  • 본 연구에서는 배관 재료의 물성을 고려한 공학적 내진설계방식과 소방시설의 내진설계의 기준에 따른 사양위주의 설계방식에 대하여 비교 분석하였다. 배관 재료의 물성을 고려한 내진설계 방식의 경우는 배관에서 발생되는 비틀림 응력과 굽힘 응력의 합성 값을 통해 배관의 안전성을 분석하게 된다. 하지만 사양위주의 설계방식의 경우는 배관 재료의 안전성이 아니라 배관이 움직이는 힘을 해석하여 흔들림 방지버팀대가 견딜 수 있는지 여부를 해석하고 있다. 소화배관은 하나의 연결된 구조체로 일정구간에서 발생되는 흔들리는 힘을 통해서는 배관의 안전성을 보장받을 수 없기 때문에 배관 재료의 응력과 변위의 안전성 분석을 통해서 가능하다. 그러므로 안전성 있는 소화 설비 배관의 내진설계를 위해서는 배관 재료의 물성과 건축 구조물의 내진성능을 고려한 해석방법을 적용할 필요가 있다.

루프디자인에 따른 배관시스템의 열응력에 관한 연구 (A Study on Thermal Stress of Power Piping due to Loop Design)

  • 이정현;박지성
    • 한국생산제조학회지
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    • 제23권5호
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    • pp.450-455
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    • 2014
  • Domestic power plants have consistently been developed over the years in industrially developed nations with high standards of living. Considering the power plant development strategy, design efficiency is of upmost importance. Therefore, an improper design directly affects the power plant's risk management plan and the potential risks of the piping system. Therefore, in this study, research is intended to be carried out to allow efficient power plant operation, through optimization of the design of the piping system. The purpose of the study is to confirm economic feasibility by changing the piping loop design, expanding the length of pipe loops, and to investigate the thermal stress influence on the piping system through simulations of systems similar in condition to those currently used in existing plants in Korea.

공업용수배관의 응역부식균열 거동에 관한 연구 (Study on the Stress Corrosion Cracking Behaviour of Piping for Industrial Water)

  • 임우조;이진평
    • 수산해양기술연구
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    • 제33권3호
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    • pp.194-201
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    • 1997
  • Recently with the rapid development in the industries such as an iron mill and chemical plants, these are enlarged by the use of the piping. This piping was encountered the stress corrosion cracking(SCC) because of stress by water pressure and residual stress of welding etc. under industrial water. In this paper, the behaviour of stress corrosion cracking on the weld zone of steel pipe piping water(SPPW) were investigated according to pre-heat before welding in natural seawater(specific resistance : 25$\Omega$-cm). The main results obtained are as follows :1) The stress corrosion cracking for SPPW and SB 41 is most ready to propagate in heat affected zone of weldment. 2) The SCC sensitivity of SPPW on weldment is more susceptible than that of SB 41. 3) The stress corrosion cracking growth of heat affected zone is delayed by the preheat and dry of base metal and electrode before welding.

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공정플랜트 연료배관의 시스템응력 해석에 의한 구조 건전성 평가 (Structural Integrity Evaluation by System Stress Analysis for Fuel Piping in a Process Plant)

  • 정성용;윤기봉;팜반듀엣;유종민;김지윤
    • 한국안전학회지
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    • 제28권3호
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    • pp.44-50
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    • 2013
  • Process gas piping is one of the most basic components frequently used in the refinery and petrochemical plants. Many kinds of by-product gas have been used as fuel in the process plants. In some plants, natural gas is additionally introduced and mixed with the byproduct gas for upgrading the fuel. In this case, safety or design margin of the changed piping system of the plant should be re-evaluated based on a proper design code such as ASME or API codes since internal pressure, temperature and gas compositions are different from the original plant design conditions. In this study, series of piping stress analysis were conducted for a process piping used for transporting the mixed gas of the by-product gas and the natural gas from a mixing drum to a knock-out drum in a refinery plant. The analysed piping section had been actually installed in a domestic industry and needed safety audit since the design condition was changed. Pipe locations of the maximum system stress and displacement were determined, which can be candidate inspection and safety monitoring points during the upcoming operation period. For studying the effects of outside air temperature to safety the additional stress analysis were conducted for various temperatures in $0{\sim}30^{\circ}C$. Effects of the friction coefficient between the pipe and support were also investigated showing a proper choice if the friction coefficient is important. The maximum system stresses were occurred mainly at elbow, tee and support locations, which shows the thermal load contributes considerably to the system stress rather than the internal pressure or the gravity loads.

증기 동력기관 내 배관시스템의 열응력 해석 (Thermal Stress Analysis of Piping Systems in Steam-driven Power Engines)

  • 김찬희;정희택;배진수;정인수;이석순
    • 동력기계공학회지
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    • 제13권6호
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    • pp.35-42
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    • 2009
  • The piping systems in the steam-driven power engines lie under the cyclic condition of thermal expansion and contraction by superheated steam. These phenomena might cause some severe damages on the pipes and the accessory devices. To avoid these damages, the calculation of the proper strength and the consideration of the reduced resultant forces on the materials are needed. In the present study, numerical investigations on the effects of the thermal deformation of the industrial piping system were performed with comparison of the design data. Commercial software, ABAQUS with the thermal-fluidic loadings based on the design conditions was used for the thermal stress analysis of the piping system. From the analysis of the initially-designed pipe supporters, the rearrangement was suggested to improve the piping design.

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