• 제목/요약/키워드: Thermal Fatigue

검색결과 573건 처리시간 0.026초

서열환경 하에서의 텐셀소재 의복의 착용감 연구 (A Study on Wear Sensations of Tecel Fabrics in Hot Environments)

  • 권오경;송민규;이창미
    • 대한가정학회지
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    • 제38권3호
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    • pp.149-161
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    • 2000
  • The purpose of the study was to examine the effect of Tencel fabrics on physiological reactions of a human body and thermal comfort under the hot environment. The 3 females subjects in their twenties were selected and a wear sensation test of the subjects was performed with four experimental ensembles made of cotton and Tencel fabrics for the study in the hot environment(3$0^{\circ}C$, 70%RH). The resets of the test were summarized as follows: For the mean skin temperature, Tencel garments showed about 0.2$^{\circ}C$-0.4$^{\circ}C$ lower than that of the cotton garment. The temperature of the rectal was 0.2$^{\circ}C$-0.4$^{\circ}C$ lower for Tencel garments than that for the colon garment. In the form of ensembles, the order of rectal temperature of the subjects for both Tencel and cotton ensembles was 1>IV>III>II. In the body weight loss according to garment materials, Tencel had a lower and more uniform than the cotton Thus, it could concluded that if the perspiration took into account, garments made of Tencel can be more ideal than that of the cotton. The heart rate and oxygen consumption appeared to be proportional to each other. For the heart rate, ensemble TI and TII of Tencel were much lower than ensemble CI and CII. For whole enembles except for TIV, Tencel ensembles showed relatively better thermal sensation and comfort sensation than the cotton ensembles. In the fatigue sensation, the reactions of the subjects were “slightly fatigue” and “fatigue” for the cotton, but “neutral” and “slightly fatigue” for Tencel.

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PMV 온열 환경과 조도가 시작업 성능에 미치는 영향에 대한 연구 (A Study on the Effects of PMV Thermal Environment and Illumination on Visual Performance)

  • 김형선;김형태;김형식;곽원택;김진호
    • 감성과학
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    • 제17권2호
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    • pp.55-62
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    • 2014
  • 본 연구에서는 PMV 온열환경이 변화함에 따라 LED광원의 조도가 시작업 성능에 미치는 영향을 분석하기 위해 오류검색수정작업 평가지를 개발하였고, 오류검색수정작업의 정확도 및 소요시간을 분석하였다. 또한 작업을 진행하면서 느끼는 시각피로도에 대한 설문을 실시하여 주관적인 평가도 병행하였다. 본 실험의 PMV 온열환경은 온도 $17{\pm}1{\sim}29{\pm}1^{\circ}C$, 습도 $50{\pm}5{\sim}60{\pm}5%$의 범위에서 PMV 값에 따라 4가지 형태를 구성하였으며, LED광원의 조도는 400lx, 700lx, 1000lx의 3가지 형태로 구성하여 실험을 진행하였다. 오류검색수정작업의 정확도(LED p 값=0.058, PMV*LED p값=0.083) 및 소요시간(LED p값=0.004, PMV p값=0.000)은 PMV 온열환경과 LED광원의 조도 변화에 모두 유의하였으나, 피로도는 PMV 온열환경(p값=0.003)과 유의한 차이를 보였다.

복합발전플랜트 배열회수보일러 분배기의 응력 및 피로 평가 (Stress and Fatigue Evaluation of Distributor for Heat Recovery Steam Generator in Combined Cycle Power Plant)

  • 이부윤
    • 한국산학기술학회논문지
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    • 제19권8호
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    • pp.44-54
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    • 2018
  • 복합발전플랜트 배열회수보일러 고압증발기의 기기인 분배기에 대하여 설계조건과 과도운전조건을 고려하여 응력 및 피로에 관한 안전성을 평가하였다. 먼저, 배열회수보일러 튜브군 모델의 해석결과로부터 분배기의 상부에 연결되는 수직 강수관, 하부에 연결되는 수직 급수배관, 열교환기의 입구헤더로 향하는 수평방향의 방사형 배관들에 대하여 노즐하중을 도출하였다. 이와 같이 구한 노즐하중은 분배기의 상세모델에 대한 설계조건과 과도운전조건의 해석 시에 노즐 단면에 가해지는 하중으로 사용하였다. 분배기의 상세한 해석모델을 만들고 설계조건의 내압과 노즐하중에 대한 정적구조해석을 수행하였다. 설계조건에서 최대응력은 수평방향 배관의 노즐 보어에서 발생하였다. 최대응력 위치의 국부 1차 막응력이 쉘과 노즐에서 허용기준보다 작으므로 ASME Code의 허용기준을 만족하는 것으로 나타났다. 배열회수보일러에 주어진 8가지 과도운전조건을 고려하여, 분배기의 상세모델에 대하여 열해석을 수행하고, 과도운전 시의 내압, 노즐하중, 열하중에 대한 과도구조해석을 수행하였다. 과도운전조건에서 최대응력은 분배기 상부의 수직 강수관 노즐 부위에서 발생하였다. ASME Code에 의거하여 수직 강수관 노즐 부위의 피로수명을 평가하였다. 결과적으로 계산된 누적피로사용계수가 허용기준보다 작으므로 기대수명 동안에 피로파손에 관하여 안전한 것으로 나타났다.

마그네슘 금속복합재의 피로균열거동해석 (Fatigue Crack Growth Behavior of a Magnesium-Based Composite)

  • 김두환;박용걸;김성훈;한석규
    • 한국강구조학회 논문집
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    • 제9권4호통권33호
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    • pp.515-521
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    • 1997
  • 마그네슘 금속 복합재의 열처리 및 섬유 강화재 방향에 따른 효과를 파악하기 위하여 인장강도 및 피로해석이 연구되었다. TEM 관측에 따라 시편은 섬유 강화재와 마그네슘 복합기지 사이의 시효 열처리된 변형된 계면이다. 인장실험 결과로부터 시효 처리된 시편의 극한 인장강도는 주조상태의 시편보다 시효 처리시 화학반응에 의한 섬유 강화재-기지간의 접합강도 약화로 감소하였다. 피로균열 거동실험은 균열거동 방향이 섬유 강화재 방향과 수직인 시편과 균열거동 방향이 섬유 강화재 방향과 평행한 시편을 실험하였다. 피로균열 거동해석을 비교해보면 섬유 강화재와 하중방향이 수직인 시효처리된 시편의 경우가 주조상태의 시편보다 피로균열 거동에 더 크게 저항하였다. 반대로 섬유 강화재 방향에 평행한 주조상태의 시편은 섬유 강화재 방향에 평행한 시효처리된 시편보다 피로 균열거동에 더 크게 저항함을 알 수 있었다.

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G91강 저주파 피로균열 성장에 미치는 온도와 응력비의 영향 (Effects of Temperature and Stress Ratio on Low-Cycle Fatigue Crack Growth of G91 Steel)

  • 김종범;황수경;김범준;이종훈;박창규;이형연;김문기;임병수
    • 대한금속재료학회지
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    • 제50권4호
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    • pp.271-279
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    • 2012
  • 9-12% Cr steels have been used in thermal power plants which repeat start and stop operations. Major factors of fatigue life are temperature, frequency, stress ratio, holding time, microstructure, and environment. Normally, fatigue life decreases at high temperature, low frequency, high stress ratio, and long holding time conditions. A Mod.9Cr-1Mo steel, called G91, was developed at ORNL (Oak Ridge National Laboratory, USA) and was adopted as a high-temperature structural material in the ASME Code in 2004. However, its low-cycle fatigue and fatigue crack growth characteristics have been rarely studied. In this work, we have investigated the low-cycle fatigue crack growth behaviors of G91 steel under various test conditions in terms of temperature and stress ratio. As temperature and stress ratio increase, the crack growth rate becomes faster and striation distance also increases. On the other hand, the number of branch cracks decreases.

철도 차량용 제동디스크의 열응력 해석 (Thermal Stress Analysis for a Ventilated Disk Brake of Railway Vehicles)

  • 이영민;박재실;석창성;이찬우
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 춘계학술대회 논문집
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    • pp.1617-1621
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    • 2005
  • In this study, as a basic research to improve braking efficiency of a ventilated disk brake, we carried out a thermal stress analysis. From analysis result, we knew that a maximum mechanical stress by braking pressure and friction force is applicable to 5 percent of yield strength and has no effect on a fatigue life's decrease for brake disk material. While, a maximum thermal stress by frictonal heat is applicable to 43 percent of yield strength and locates on a friction surface. So, we have found that a thermal stress is the primary factor of crack initiation on a friction surface of disk brake

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사각 T분기관내 누설유동의 난류침투에 의한 열성층 발생에 관한 수시해석적 연구 (Numerical Analysis of Thermal Stratification due to Turbulence Penetration into Leaking Flow in a T Branch)

  • 홍석우;최영돈;박민수;서정희
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 추계학술대회논문집B
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    • pp.729-734
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    • 2001
  • Thermal stratification due to turbulence penetration and in-leakage of valve cause the large thermal stress, which lead to fatigue crack of the piping system of nuclear power plant. So it is needed that numerical and experimental study for the phenomenon is conducted because there have not yet been sufficient study for the relationship between turbulence penetration and thermal stratification. Therefore numerical analysis is done here and respected to give a fundamental method of the approach to the phenomenon.

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원전 밀림관 열성층의 3 차원 수치해석 (3-Dimensional Numerical Analysis for Thermal Stratification in Surgeline in Nuclear Power Plant)

  • 김영종;김만원;고은미
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2008년도 추계학술대회A
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    • pp.729-734
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    • 2008
  • A thermal stratification may occur in the horizontal parts of the surge line during operating transients of the pressurizer, which produces relatively high fatigue usage factor. Heat-up transient is the most severe case among the transient conditions. In this study, to study the relationship between the magnitude of thermal stratification and the length of vertical part of the surge line, some parametric fluid-structure interaction (FSI) analyses with different length variables of the vertical part of the surge line were performed for plant heat-up transient condition by using 3-dimensional numerical analysis. The conservativeness of the traditional finite element model for thermal stratification analysis based on the conservative assumption in the surge line was also discussed by comparison of the results of 3-dimensional transient FSI analysis of this study. Stresses calculated with 3-dimensional transient model were considerably reduced comparing with the traditional analysis.

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The Effect of Turbulence Penetration on the Thermal Stratification Phenomenon Caused by Coolant Leaking in a T-Branch of Square Cross-Section

  • Choi, Young-Don;Hong, Seok-Woo;Park, Min-Soo
    • International Journal of Air-Conditioning and Refrigeration
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    • 제11권2호
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    • pp.51-60
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    • 2003
  • In the nuclear power plant, emergency core coolant system (ECCS) is furnished at reactor coolant system (RCS) in order to cool down high temperature water in case of emergency. However, in this coolant system, thermal stratification phenomenon can occur due to coolant leaking in the check valve. The thermal stratification produces excessive thermal stresses at the pipe wall so as to yield thermal fatigue crack (TFC) accident. In the present study, effects of turbulence penetration on the thermal stratification into T-branches with square cross-section in the modeled ECCS are analysed numerically. Standard k-$\varepsilon$ model is employed to calculate the Reynolds stresses in momentum equations. Results show that the length and strength of thermal stratification are primarily affected by the leak flow rate of coolant and the Reynolds number of duct. Turbulence penetration into the T-branch of ECCS shows two counteracting effects on the thermal stratification. Heat transport by turbulence penetration from main duct to leaking flow region may enhance thermal stratification while the turbulent diffusion may weaken it.

난류침투가 사각단면 T분기관 내 누설유동에 의해 발생한 열성층 현상에 미치는 영향 (The Effect of Turbulence Penetration on the Thermal Stratification Phenomenon Caused by Leaking Flow in a T-Branch of Square Cross-Section)

  • 홍석우;최영돈;박민수
    • 설비공학논문집
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    • 제15권3호
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    • pp.239-245
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    • 2003
  • In the nuclear power plant, emergency core coolant system (ECCS) is furnished at reactor coolant system (RCS) in order to cool down high temperature water in case of emergency. However, in this coolant system, thermal stratification phenomenon can occur due to coolant leaking in the check valve. The thermal stratification produces excessive thermal stresses at the pipe wall so as to yield thermal fatigue crack (TFC) accident. In the present study, effects of turbulence penetration on the thermal stratification into T-branches with square cross-section in the modeled ECCS are analysed numerically. $textsc{k}$-$\varepsilon$ model is employed to calculate the Reynolds stresses in momentum equations. Results show that the length and strength of thermal stratification are primarily affected by the leak flow rate of coolant and the Reynolds number of the main flow in the duct. Turbulence penetration into the T-branch of ECCS shows two counteracting effects on the thermal stratification. Heat transport by turbulence penetration from the main duct to leaking flow region may enhance thermal stratification while the turbulent diffusion may weaken it.