• 제목/요약/키워드: thermal degradation temperature

검색결과 577건 처리시간 0.031초

Hot Leg Temperature Uncertainty due to Thermal Stratification

  • Jang, Ho-Cheol;Ju, Kyong-In;Kim, Young-Bo;Sul, Young-Sil;Cheong, Jong-Sik
    • 한국원자력학회:학술대회논문집
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    • 한국원자력학회 1996년도 춘계학술발표회논문집(2)
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    • pp.29-35
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    • 1996
  • For the Reactor Coolant System(RCS) flow rate measurement by the secondary calorimetric heat balance method, the coolant temperature of the hot leg is needed. Several Resistance Temperature Detectors(RTD) are installed in the hot leg to measure the temperature, but the average value of RTDs does not correctly represent the energy-averaged(bulk) temperature because of the thermal stratification phenomenon. Therefore some correction is introduced to predict the bulk temperature, but the correction inevitably contains uncertainty because the stratification is not defined well quantitatively yet. Therefore a large uncertainty for the correction has been used for the conservative estimation. But unrealistically large uncertainty causes degradation of the measurement method and yields difficulty to meet the acceptance criterion in start-up flow measurement test. In this paper, an analytical estimation is made on the correction and the related uncertainty using the measured hot leg velocity profile of System 80 reactor flow model test and the measured temperatures of YGN 3&4 and PVNGS 1&2 start-up tests. The results reveal that the magnitude of the correction uncertainty is much smaller than that used in the previous design. Therefore, the confidence on the flow rate measurement method can be improved and the difficulty in start-up flow measurement test can be lessened if the smaller correction uncertainty obtained through this estimation is applied.

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Oxidation Behaviors of SiCf/SiC Composites Tested at High Temperature in Air by an Ablation Method

  • Park, Ji Yeon;Kim, Daejong;Lee, Hyeon-Geun;Kim, Weon-Ju;Pouchon, Manuel
    • 한국세라믹학회지
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    • 제55권5호
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    • pp.498-503
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    • 2018
  • Using the thermal ablation method, the oxidation behavior of $SiC_f/SiC$ composites was investigated in air and in the temperature range of $1,300^{\circ}C$ to $2,000^{\circ}C$. At the relatively low temperature of $1,300^{\circ}C$, passive oxidation, which formed amorphous phase, predominantly occurred in the thermal ablation test. When the oxidation temperature increased, SiO (g) and CO (g) were formed by active oxidation and the dense oxide layer changed to a porous one by vaporization of gas phases. In the higher temperature oxidation test, both active oxidation due to $SiO_2$ decomposition on the surface of the oxide layer and active/passive oxidation transition due to interfacial reaction between oxide and base materials such as SiC fiber and matrix phase simultaneously occurred. This was another cause of high temperature degradation of $SiC_f/SiC$ composites.

ANALYSIS OF PRESTRESSED CONCRETE CONTAINMENT VESSEL (PCCV) UNDER SEVERE ACCIDENT LOADING

  • Noh, Sang-Hoon;Moon, Il-Hwan;Lee, Jong-Bo;Kim, Jong-Hak
    • Nuclear Engineering and Technology
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    • 제40권1호
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    • pp.77-86
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    • 2008
  • This paper describes the nonlinear analyses of a 1:4 scale model of a prestressed concrete containment vessel (PCCV) using an axisymmetric model and a three-dimensional model. These two models are refined by comparison of the analysis results and with testing results. This paper is especially focused on the analysis of behavior under pressure and the temperature effects revealed using an axisymmetric model. The temperature-dependent degradation properties of concrete and steel are considered. Both geometric and material nonlinearities, including thermal effects, are also addressed in the analyses. The Menetrey and Willam (1995) concrete constitutive model with non-associated flow potential is adopted for this study. This study includes the results of the predicted thermal and mechanical behaviors of the PCCV subject to high temperature loading and internal pressure at the same time. To find the effect of high temperature accident conditions on the ultimate capacity of the liner plate, reinforcement, prestressing tendon and concrete, two kinds of analyses are performed: one for pressure only and the other for pressure with temperature. The results from the test on pressurization, analysis for pressure only, and analyses considering pressure with temperatures are compared with one another. The analysis results show that the temperature directly affects the behavior of the liner plate, but has little impact on the ultimate pressure capacity of the PCCV.

코어 내부 구성요소와 L2 캐쉬의 배치 관계에 따른 멀티코어 프로세서의 온도 분석 (Analysis on the Temperature of Multi-core Processors according to Placement of Functional Units and L2 Cache)

  • 손동오;김종면;김철홍
    • 한국컴퓨터정보학회논문지
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    • 제19권4호
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    • pp.1-8
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    • 2014
  • 멀티코어 프로세서는 여러 개의 코어가 하나의 칩에 배치됨에 따라 전력 밀도가 상승하여 높은 발열이 발생한다. 이러한 발열 문제를 해결하기 위해서 최근까지 다양한 연구가 진행되고 있다. 마이크로프로세서의 온도 감소를 위한 기법으로는 기계적 냉각 기법, 동적 온도 관리 기법 등이 있지만 이러한 기법들은 추가적인 냉각 비용이 발생하거나 성능의 저하가 발생한다. 플로어플랜기법은 추가적인 냉각비용이 발생하지 않으며, 성능저하가 거의 발생하지 않는다는 장점을 지닌다. 본 논문에서는 멀티코어 프로세서의 특정 구성요소의 발열 문제를 해결하기 위해 코어 내부 구성요소와 L2 캐쉬의 다양한 플로어플랜을 활용하고자 한다. 실험 결과, 코어의 뜨거운 구성요소를 L2 캐쉬와 인접하게 배치할 경우 칩의 온도 감소에 매우 효과적임을 알 수 있다. 코어를 캐쉬 상단-가운데 배치하는 기본 플로어플랜과 비교하여, 코어를 중앙에 배치하고 뜨거운 구성요소를 L2 캐쉬와 인접하게 배치하는 플로어플랜의 경우에는 $8.04^{\circ}C$, 코어를 외곽에 배치하고 뜨거운 구성요소를 L2 캐쉬와 인접하게 배치하는 플로어플랜의 경우에는 $8.05^{\circ}C$의 최고온도 감소 효과를 보임을 알 수 있다.

2차원 구조와 3차원 구조에 따른 멀티코어 프로세서의 온도 분석 (Thermal Pattern Comparison between 2D Multicore Processors and 3D Multicore Processors)

  • 최홍준;안진우;장형범;김종면;김철홍
    • 한국컴퓨터정보학회논문지
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    • 제16권9호
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    • pp.1-10
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    • 2011
  • 동작 주파수의 증가는 싱글코어 프로세서의 성능을 크게 향상시키는 반면 전력 소모 증가와 높은 온도로 인한 신뢰성 저하 문제를 유발하고 있다. 최근에는 싱글코어 프로세서의 한계점을 극복하기 위한 대안으로 멀티코어 프로세서가 주로 사용되고 있다. 하지만, 멀티코어 프로세서를 2차원 구조로 설계하는 경우에는 내부 연결망에서의 전송 지연 현상으로 인해 프로세서의 성능 향상이 제약을 받고 있다. 내부 연결망에서의 전송 지연을 줄이기 위한 방안으로 멀티코어 프로세서를 3차원 구조로 설계하는 연구가 최근 큰 주목을 받고 있다. 2차원 구조 멀티코어 프로세서와 비교하여 3차원 구조 멀티코어 프로세서는 성능 향상과 전력 소모 감소의 장점을 지닌 반면, 높은 전력 밀도로 인해 발생된 발열 문제가 프로세서의 신뢰성을 위협하는 문제가 되고 있다. 3차원 멀티코어 프로세서에서 발생되는 발열 문제에 대한 상세한 분석이 제공된다면, 프로세서의 신뢰성을 확보하기 위한 연구 진행에 큰 도움이 될 것으로 기대된다. 그러므로 본 논문에서는 3차원 멀티코어 프로세서의 온도에 밀접하게 연관된 요소인 작업량, 방열판과의 거리, 그리고 적층되는 다이의 개수와 온도 사이의 관계를 자세히 살펴보고 높은 온도가 프로세서의 성능에 미치는 영향 또한 분석하고자 한다. 특히, 2차원 구조 멀티코어 프로세서와 3차원 구조 멀티코어 프로세서에서의 온도 문제를 함께 분석함으로써, 온도 측면에서 효율적인 프로세서 설계를 위한 가이드라인을 제시하고자 한다.

전기방사법에 의해 제조된 폴리우레탄 나노섬유의 수산화알루미늄 내첨에 의한 내염화 특성 향상 (Enhanced Flame Resistant Properties of Aluminum Hydroxide Addition on Electrospun Polyurethane Nanofibers)

  • 김형기
    • 한국화재소방학회논문지
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    • 제30권6호
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    • pp.9-13
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    • 2016
  • 본 논문에서는 내산화성 및 난연성이 향상된 폴리우레탄 나노섬유를 전기방사법 및 수산화알루미늄 내첨을 통해 제조하였다. 전기방사 조건은 인가전압: 20 kV, 폴리머 용액 유량: 1.2 ml/h, 롤러 속도: 120 rpm 및 롤러와 주사기 팁의 거리: 15 cm의 공정변수에서 최적의 조건을 확인하였다. 폴리우레탄 섬유의 내산화성 및 난연성을 향상시키기 위하여, 수산화알루미늄을 전기방사 시 내첨하였다. 제조된 샘플의 열적 특성을 평가하기 위하여 열중량분석기(thermogravimetric analysis, Shimadzu, TGA-50H)를 사용하였다. 또한 관련 분석을 통해 고분자 분해 온도(polymer decomposition temperature), 적분열분해 진행온도(integral procedure decomposition temperature), 최종 분해 온도(final decomposition temperature) 및 열분해 후 잔여량 등을 분석하였다. 그리고 분해 반응의 속도론적 고찰을 위해 Horowitz-Metzger 적분식을 통해 활성화 에너지를 해석하였다. 수산화알루미늄의 내첨에 의해, 분해 활성화 에너지가 50% 이상 증가함을 확인하였다. 이는 수산화알루미늄이 $300{\sim}500^{\circ}C$에서 열분해함에 따라 수화반응에 의해 폴리우레탄 나노섬유의 열분해 저항성이 커지기 때문인 것으로 파악된다.

Hastelloy X 주조재의 열간 노출에 따른 미세조직 및 인장 특성 변화 (The Effect of Thermal Exposure on the Microstructural Evolution and Tensile Properties in Cast Hastelloy X)

  • 최백규;김인수;도정현;정중은;정인용;홍현욱;조창용
    • 한국주조공학회지
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    • 제37권5호
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    • pp.139-147
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    • 2017
  • Microstructural evolution of cast Hastelloy X during thermal exposure has been investigated. OM, SEM, and TEM microscopy were carried out on the as-cast, the standard heat treated, and the thermally exposed conditions. Tensile tests were also conducted to understand the effect of microstructural evolution on the degradation of tensile properties. Coarse $M_6C$ and fine $M_{23}C_6$ carbides were found in as-cast Hastelloy X with fine carbides on sub-boundary. Some of $M_{23}C_6$ carbide dissolved into the matrix during solution heat treatment and dislocation network formed at the interface between the carbide and the matrix due to the misfit strain. There was no significant microstructural difference between the exposed specimens at $400^{\circ}C$ and the solution heat treated specimen. A large amount of $M_{23}C_6$ carbides precipitated along and near grain boundaries and sub-boundaries after exposure at $650^{\circ}C$. Exposure at $870^{\circ}C$ of the alloy caused precipitation of $M_6C$ and ${\mu}$. The strength increased and the elongation decreased by thermal exposure at $650^{\circ}C$ and $870^{\circ}C$ because carbides interfere with the movement of the dislocation. It was found that the precipitation of carbide gave significant effects on the tensile properties of Hastelloy X.

고온시 고강도 콘크리트의 물리적 특성 모델 설정에 관한 실험적 연구 (An Experimental Study on the Physical Properties Model of High Strength Concrete at High Temperature)

  • 김흥열;서치호;최승관;전현규
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2005년도 봄학술 발표회 논문집(II)
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    • pp.1-4
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    • 2005
  • This research is to present experimental materials model of high strength concrete for prediction of fire safety of structural members based on physical properties of materials during heating up to 800$^{circ}C$. The following conclusions are drawn from this study. First of all, between 100 to 200 $^{circ}C$, the physical models of concrete such as specific heat and thermal conductivity, show visible degradation, regardless of concrete strength. Second, between 300 to 600$^{circ}C$, the physical models of the 29MPa and 49MPa concrete show degradation continually at these temperatures. Finally, beyond 600$^{circ}C$, the physical models of 49MPa strength concrete show larger degradation than 29MPa strength concrete due to rise of pore pressure and melting of the interface between aggregate and cement paste.

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Effect of Thermal Aging on Electrical Properties of Low Density Polyethylene

  • Wang, Can;Xie, Yaoheng;Pan, Hua;Wang, Youyuan
    • Journal of Electrical Engineering and Technology
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    • 제13권6호
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    • pp.2412-2420
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    • 2018
  • The thermal degradation of low density polyethylene (LDPE) will accelerate the production of carbonyl groups (C=O), which can act as the induced dipoles under high voltage. In this paper, we researched the dielectric properties and space charge behavior of LDPE after thermal aging, which can help us to understand the correlation between carbonyl groups (C=O) and electrical properties of LDPE. The spectra results show that LDPE exhibit obvious thermooxidative reactions when the aging time is 35 days and the productions mainly contain carboxylic acid, carboxylic eater and carboxylic anhydride, whose amount increase with the increasing of aging time. The dielectric properties show that the real permittivity of LDPE is inversely proportional to temperature before aging and subsequently become proportional to temperature after thermal aging. Furthermore, both the real and imaginary permittivity increase sharply with the increasing of aging time. The fitting results of imaginary permittivity show that DC conductivity become more sensitive about temperature after thermal aging. On this basis, the active energies of materials calculated from DC conductivity increase first and then decrease with the increasing of aging time. In addition, the space charge results show that the heterocharges accumulated near electrodes in LDPE change to the homocharges after thermal aging and the mean volume charge density increase with the increasing of aging time. It is considered that the overlaps caused by electrical potential area is the main reason for the increase of DC conductivity.

Influence of Substrate Thermal Conductivity on OLED Lifetime

  • Chung, Seung-Jun;Lee, Jae-Hyun;Jeong, Jae-Wook;Kim, Jang-Joo;Hong, Yong-Taek
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2008년도 International Meeting on Information Display
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    • pp.1026-1029
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    • 2008
  • Temperature increase during OLED operation can significantly degrade the device lifetime. By using top-emission OLEDs fabricated on glass and silicon substrates that have different thermal conductivities, we found that efficient heat dissipation and corresponding lifetime improvement can be obtained by making a direct contact between the OLED anode and the high thermally-conductive silicon substrate. We describe substrate-dependent OLED heat dissipation behavior and OLED lifetime improvement by using infrared camera images and constant current stress test methods.

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