• Title/Summary/Keyword: 열물성치

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Development of Calculation Program for Thermophysical Properties of Synthetic Sand Mold (인공주물사의 열물성치 계산 프로그램 개발)

  • In-Sung Cho;Jeong-Ho Nam;K.D. Saveliyev;V.M. Golod;Hee-Soo Kim
    • Journal of Korea Foundry Society
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    • v.43 no.4
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    • pp.194-200
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    • 2023
  • The heat transfer of the mold in the casting process has been calculated by considering the mold as a uniform isotropic material. Since the mold was not a uniform isotropic material, however, the calculation was performed with approximate values, and in particular, estimated values were used when considering compaction and the amount of added binder. In this study, a calculation algorithm of the thermal properties of the sand mold was developed. An algorithm for calculating the thermal conductivity and specific heat based on a thermal resistance model in the case of mono-dispersed sand grains was also developed and applied to sand molds with various size distributions. The thermal properties of sand were calculated for artificial sand, and relatively close values compared to the experimental values were obtained.

Review - Bio-thermal properties of human skin tissue layers for burn prediction model (화상예측 모델 개발을 위한 피부 조직 열물성치 연구에 관한 고찰)

  • Lee, Jun-Kyoung;Bang, Chang-Hoon;Kwon, Jung-Suk;Bang, Young-Jun
    • Proceedings of the Korea Institute of Fire Science and Engineering Conference
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    • 2012.04a
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    • pp.313-316
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    • 2012
  • 다수의 소방공무원이 화재나 고온 조건 등에 노출되어 화상을 입고 심리적 신체적 고통 받고 있다. 화상 관련 연구는 피부조직의 비선형성, 혈류에 의한 열전달 분석의 불확실성 등 신체 내부의 복잡한 물리현상으로 인하여 국내에서는 연구가 매우 미흡한 실정이다. 이에 따라 화상 예측에 대한 연구를 기반으로 화상을 방지할 수 있는 예방법이 필요하며, 화상 예측의 기초 연구로 피부조직의 형상 모델링 및 열물성치를 정확하게 파악하는 것이 매우 중요하다. 본 연구는 피부조직의 형상 및 열물성치와 관련된 기존 연구를 수집 및 정리하여 향후 화상 예측시 좋은 결과를 얻을 수 있도록 하는 데에 그 목적이 있다.

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A study on the measurement of thermophysical properties of ${Al}_{2}{O}_{3}, {Si}_{3}{N}_{4}$ and SiC series by a single rectangular pulse heating (방향파 펄스 가열에 의한 ${Al}_{2}{O}_{3}, {Si}_{3}{N}_{4}$, SiC 계열의 열물성치 측정에 관한 연구)

  • 차경옥;장희석;이흥주
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.14 no.1
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    • pp.145-156
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    • 1990
  • In this study, thermophysical properties of the engineering ceramic materials such as $Al_{2}$O$_{3}$, Si$_{3}$N$_{4}$ and SiC were measured b y a single rectangular pulse heating method. The values of thermal diffusivities, specific heats, and thermal conductivities were measured as a function of temperature ranging form room temperature to 1300K. The measured thermal properties of one group of ceramic material were compared with those of other group and discussed in detail in connection with the chemical composition. Thus, some criteria for thermal design with the engineering ceramic materials were proposed.

A study on the measurement of thermophysical properties of ceramic dielectric materials by unsteady square wave pulse heating method (非定常方形波 펄즈 加熱에 의한 세라믹 誘電體의 熱物性値 測定에 관한 硏究)

  • 차경옥
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.12 no.1
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    • pp.152-162
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    • 1988
  • In recent years, attention has been paid to the ceramic material next to metals and plastics due to its inherent characteristics, i.e., good hardness, resistance to heat and corrosion. Recently, various kinds of ceramic dielectrics have been developed for application in industry. It is of prime importance to know the thermophysical properties for wider use of these new materials. However, no extensive effort has been made for systematic measurement of the properties. In this paper, the dielectric constant of five different kinds of ceramic dielectrics ware measured. We call these samples as MgO.SiO$_{2}$, MgTiO$_{3}$, TiO$_{2}$, CaTiO$_{3}$, and BaTiO$_{3}$. Which are currently in commercial sue. The values of thermal dirrusivities, specific heats, and thermal conductivities of these ceramic dielectrics sere measured as a function of temperature ranging from room temperature to about 1300k.

Influences of changes in the Thermal Properties on Pyrolysis of Solid Combustibles (열물성의 변화가 고체 가연물의 열분해에 미치는 영향)

  • Hong, Ter-Ki;Lee, Jong Won;Park, Seul-Hyun
    • Fire Science and Engineering
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    • v.31 no.3
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    • pp.41-48
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    • 2017
  • In order to investigate the influence of changes in the thermal properties of solid combustibles on thermal decomposition, a series of solid pyrolysis experiments were performed using a cone calorimeter specified in KS F ISO 5660-1. In the present study, Poly Methyl Methacrylate (PMMA) which does not produce Char during pyrolysis process was used as solid fuel. Results obtained from cone calorimeter experiments were compared to ones obtained from numerical analysis of Fire Dynamics Simulator (FDS) 1D pyrolysis model adopted with thermal properties of solid fuel as input parameters. Comparisons between experimentally calculated and model-predicted mass loss rate were then made to elucidate the effect of changes in the thermal properties on pyrolysis of PMMA.

A Study of the Effect of Grouting Region on the Solution of Line Source Analysis (그라우팅 영역이 선형열원 해석에 미치는 영향에 관한 연구)

  • Lee, Se-Kyoun;Woo, Joung-Son;Ro, Jeong-Geun
    • Journal of Energy Engineering
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    • v.19 no.3
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    • pp.143-150
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    • 2010
  • Line source method of borehole system assumes the entire surrounding medium is uniform. However, thermal properties of grouting region are considerably different from those of surrounding soil. In this study we investigate the effect of grouting materials on the solution of line source method with the aid of numerical analysis. This numerical model generates the temperature of borehole fluid with which line source solution can be obtained. Then this solution can be compared with input condition of numerical model. The results of this comparison show that thermal conductivity and borehole thermal resistance of line source solution are approximately 86% and 91% of the input condition of numerical model. Chart method is developed in this study to find the numerical input conditions (thermal conductivity and borehole thermal resistance) from the line source solution. Thermal response test of test borehole is conducted, the results of which are approximately consistent with the Chart method. Thermal property changes of grouting materials on the line source solution are also examined.

Numerical Study on Skin Burn Injury due to Flash Flame Exposure (돌발화염으로 인한 화상예측에 관한 수치해석적 연구)

  • Lee, Jun-Kyoung;Bang, Chang-Hoon
    • Fire Science and Engineering
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    • v.26 no.5
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    • pp.13-20
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    • 2012
  • Many fire-fighters suffer from the burn injuries, and the severe burns are the most catastrophic injury a person can survive, resulting in pain, emotional stress, and tremendous economic costs. It is important to understand the physiology of burns for prevention from skin burns and a successful treatment of a burn patient. But a few researches have been presented because the complex physical phenomena of our inside body like non-linearity characteristics of human skin make them difficult. Thus in this study, thermal analyses of biological tissues exposed to a flash fire causing severe tissue damage were studied by using a finite difference method based on the Pennes bio-heat equation. The several previous models for skin thermo-physical properties were summarized, and the calculated values with those models of tissue injury were compared with the results obtained by the previous experiment for low heat flux conditions. The skin models with good agreement could be found. Also, the skin burn injury prediction results with the best model for high heat flux conditions by flash flame were suggested.

Lumped System Analysis on the Lunar Surface Temperature Using the Bottom Conductive Heat Flux Model (달 표면온도 예측을 위한 집중계 해석방법과 하부 열유속 모델의 적용)

  • Kim, Taig Young
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.47 no.1
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    • pp.66-74
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    • 2019
  • Instead of securing thermophysical properties throughout the entire lunar surface, a theoretical method to predict the lunar surface temperature accurately using improved Lumped System Model (LSM) was developed. Based on the recently published research, thermal mass per unit area at the top regolith layer is assumed uniform. The function of bottom conductive heat flux was introduced under the theoretical background. The LSM temperature prediction agrees well with the DLRE measurement except for dusk, dawn and high latitude region where the solar irradiation is weak. The relative large temperature discrepancy in such region is caused by the limit of the bottom conductive heat flux model. The surface temperature map of the moon generated by the LSM method is similar to the DLRE measurement except for the anomalous temperature zones where surface topography and thermophysical properties appear in highly uneven.

The measurements of thermophysical properties of ceramics by single rectangular pulse heating method in transient heat source (방형파펄즈가열법에 의한 세라믹스의 열물성 측정에 관한 연구)

  • Cha, K.O.;Lee, K.H.;Yim, Going
    • Journal of the Korean Crystal Growth and Crystal Technology
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    • v.9 no.6
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    • pp.612-620
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    • 1999
  • Thermophysical properties of the high-dielectric ceramics were measured by a single rectangular pulse heating method. The values of thermal diffusivities, specific heats, and thermal conductivities were measured as a function of temperature ranging from room temperature to 1300 K.

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An Analysis of Axisymmetric Two Dimensional Heat Diffusion Equation to Measure the Thermal Diffusivity of Layered Materials (積層材料의 熱擴散係數測定을 위한 軸對稱 二次元 熱擴散方程式의 解析)

  • 김진원;이흥주
    • Transactions of the Korean Society of Mechanical Engineers
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    • v.10 no.3
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    • pp.349-356
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    • 1986
  • For the extension of application in flash method measuring the thermophysical properties of materials, the heat diffusion equation with the heat transfer loss from front, rear, and circumferential surfaces of two layer cylinderical sample is mathematically analyzed by means of Green's function for axially symmetric pulse heating on the front of samples. The solutions are applied to determine the unknown thermal diffusivity of the two materials and analyzed the measurement error due to heat loss and finite pulse time effects.