• 제목/요약/키워드: chemical heat-storage material

검색결과 37건 처리시간 0.027초

태양열 발전을 위한 고온 축열 물질의 열전달 특성 (Heat Transfer Characteristics of High Temperature molten salt storage for Solar Thermal Power Generation)

  • ;김기만;한귀영;서태범;강용혁
    • 한국태양에너지학회 논문집
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    • 제27권3호
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    • pp.63-69
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    • 2007
  • The heat transfer characteristics of inorganic salt for high temperature heat storage material of solar power system were examined. The inorganic salts employed in this study was a mixture of $NaNO_3$ and $KNO_3$ and the operating temperature range was determined by measuring the melting temperature with DSC and by measuring the thermal decomposition temperature with TGA. The heat transfer characteristics was qualitatively obtained in terms of temperature profiles of salt in the tanks during the heat storage and heat release process as a function of steam flow rates, steam inlet temperature and the inlet position of steam. The effects of steam flow rates and inlet temperature of steam were experimentally determined and the effect of natural convection was observed due to significant density difference with temperature.

소성 Dolomite를 이용한 화학열펌프내의 축·방열특성 (Characteristic of heat storage/release in chemical heat pump using the calcined dolomite)

  • 홍민혁;이영세;최현국;박영해;김종식
    • 한국산업융합학회 논문집
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    • 제8권4호
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    • pp.191-196
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    • 2005
  • This study was carried out to investigate the heat storage/release characteristics of the thermochemical reaction of the calcined dolomite with the packed bed shape experimental apparatus for development of chemical heat pump system. In the present study, it was found that MgO of the calcined dolomite was not hydrated during the hydration process under the experimental conditions. Therefore, the MgO of the calcined dolomite can be regard as an inert material. As a result, it was found that all of CaO packed kept the reaction temperature of about $510^{\circ}C$ through the entire part of the bed. The dehydration reaction was incurred first at the wall side area as the supplied heat was transferred through the wall side into the packed bed. As a result of the temperature and concentration spread, the reaction was completed at the wall side progressed into the center.

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Na2B4O7·10H2O/Na2B4O7·5H2O 계의 열분해 탈수반응 및 내구성 고찰 (The Characteristics of the Dehydration Reaction and the Durability for the Thermal Decomposition in Na2B4O7·10H2O/Na2B4O7·5H2O System)

  • 최호상;박영태
    • 공업화학
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    • 제10권6호
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    • pp.885-888
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    • 1999
  • 본 연구에서는 $Na_2B_4O_7{\cdot}10H_2O/Na_2B_4O_7{\cdot}5H_2O$ 반응계의 열분해 탈수반응에 의한 반응속도상수를 결정하고 반응계의 재현성 및 화학축열재의 반복사용에 따른 내구성을 검토하였다. 반응계의 열분해 탈수반응의 차수는 1차이었고, 열분해 탈수 반응속도는 수증기의 분압차에 정비례하였다. 반응계의 반응속도상수는 약 0.27이었고, 반응속도상수와 반응차수에 대한 반응의 재현성이 우수하였다. 또한 화학축열재의 내구성은 연속적으로 반복 사용하여도 활성변화는 ${\pm}5%$ 범위 내에 있었다.

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축열 성능 향상 SSPCM 혼합 콘크리트 제조 및 열적특성 분석 (Preparation and Thermal-property Analysis of Heat Storage Concrete with SSPCM for Energy Saving in Buildings)

  • 정수광;장성진;임재한;김희선;류성룡;김수민
    • 한국태양에너지학회 논문집
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    • 제35권1호
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    • pp.89-96
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    • 2015
  • n-octadecnae based shape stabilized phase change material (SSPCM) was prepared by using vacuum impregnation method. And an exfoliated graphite nanoplate (xGnP) which has high thermal conductivity properties is used as a PCM container. And then we made heat storage concretes which contains SSPCM for reducing heating and cooling load in buildings. In the prepararion process, the SSPCM was mixed to a concrete as 10, 20 and 30wt% of cement weight. The thermal properties and chemical properties of heat storage concrete were analyzed from Scanning electron microscope (SEM), Fourier transformation infrared spectrophotometer (FT-IR), Deferential scanning calorimeter (DSC), Thermogravimetric analysis (TGA) and TCi thermal conductivity analyzer. And we conducted surface temperature analysis of SSPCM and xGnP by using heat plate and insulation mold.

PCM 기술의 콘크리트 적용 II : 계면중합법에 의한 1-도데카놀 마이크로 캡슐에 있어서 계면활성제로 사용된 SSMA의 표면활성도가 마이크로 캡슐의 특성에 미치는 영향 (Application of PCM Technology to Concrete II : Effects of SSMA(Sulfonated Styrene-Maleic Anhydride) on the Properties of the 1-Dodecanol Micro-Capsule)

  • 신세순;정재윤;임명관;최동욱;김영호
    • 한국건설순환자원학회논문집
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    • 제1권1호
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    • pp.17-25
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    • 2013
  • 축열재 이용 기술은 실내 냉난방을 위하여 사용된 에너지를 장시간 일정온도로 유지할 수 있도록 하여 에너지 사용 효율을 높이는 장점이 있다. 이 중 상변화 물질을 이용한 잠열 축열재는 물질의 잠열성질을 이용하는 것으로서 심물질로서 일정온도에서 녹는점을 갖는 물질을 캡슐화 하여 이를 건축자재에 적용하여 실내 및 외기의 온도에 따라서 심물질이 녹거나 어는 과정에서 축열과 방열로 인한 에너지 절감 및 차단 효과를 갖는다. 상변화 물질을 이용해 축열재를 만드는 방법은 마이크로 캡슐화의 방법이 있다. 이 방법은 크게 분류하면 화학적 방법, 물리 화학적 방법 및 물리적 기계적 방법의 3가지로 나눌 수 있다. 물리 화학적 방법으로 습식공정에 의한 마이크로 캡슐화 공정을 이용했으며 이 공정은 심물질을 용매에서 에멀젼화한 다음 고분자모노머를 심물질인 에멀젼의 벽면에 코팅하여 경화 시키는 공정이다. 이 경우에 심물질의 에멀젼이나 벽재 모노머의 코팅 성능을 좋게 하기 위하여 계면활성제가 사용된다. 또한 계면활성제의 특성에 따라서 마이크로 캡슐화의 성능이 좌우되고 특히 벽재물질의 코팅 두께 및 코팅의 균일성에 크게 좌우된다. 본 연구에서는 상변화를 이용한 축열재로서 심물질인 1-도데카놀을 멜라민수지로 계면중합법에 의하여 마이크로 캡슐화 하는데 있어서 계면활성제인 SSMA(sulfonated styrene-maleic anhydride)의 화학적 특성에 따른 마이크로 캡슐의 성능과 이에 따른 축열 성능을 비교하였다.

금속수소화물-팽창흑연 복합체의 열전달 특성 및 수소 저장 특성 (Heat Transfer Characteristics and Hydrogen Storage Kinetics of Metal Hydride-Expended Graphite Composite)

  • 이평종;김종원;배기광;정성욱;강경수;정광진;박주식;김영호
    • 한국수소및신에너지학회논문집
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    • 제31권6호
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    • pp.564-570
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    • 2020
  • Metal hydride is suitable for safe storage of hydrogen. The hydrogen storage kinetics of the metal hydride are highly dependent on its heat transfer characteristics. This study presents a metal hydride-expended graphite composite with improved thermal conductivity and its hydrogen storage kinetics. To improve the heat transfer characteristics, a metal hydride was mixed and compacted with a high thermal conductivity additive. As the hydrogen storage material, AB5 type metal hydride La0.9Ce0.1Ni5 was used. As an additive, flakes-type expended graphite was used. With improved heat transfer characteristics, the metal hydride-expended graphite composite stores hydrogen four times faster than metal hydride powder.

캡슐화된 PCM을 이용한 유동층 축열조에서 열전달 특성 연구 (Heat Transfer Chracteristics in a Fluidized bed Heat Storage System Using Encapsulated PCM)

  • 윤영호;한귀영;강용혁;곽희열;이태규;전명석
    • 태양에너지
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    • 제18권3호
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    • pp.89-94
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    • 1998
  • 태양열 응용을 위한 한 방편으로 캡슐화된 PCM을 이용한 유동층 축열조에서 축열 및 방열과정에서 열전달 특성을 살펴보았다. 유동층 축열조는 원통형으로 높이는 40cm, 직경은 5.0cm 이었다. 축열물질은 무기염의 일종인 sodium acetate 였으며, 이것은 파라핀 왁스와 PMMA 로 코팅되었다. 캡슐화된 PCM의 크기는 약 $2{\sim}3mm$였으며, 용융점은 $58^{\circ}C$였다. 축열 및 방열과정시 유동층 축열조의 시간에 따른 온도분포, 순간 열저장 및 방출 속도를 측정하였으며 이로부터 유동층 축열조의 체적 열전달 계수를 도출하였다. 또한 유동층 축열조의 조업변수인 열전달 유체의 유속, 유입온도에 대한 열전달 계수의 영향도 관찰하였다.

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Sol-gel 공정을 통한 SiO2 쉘과의 상이한 스테아산 비율의 합성 및 특성 (Synthesis and Characteristics of Different Ratio of Stearic Acid with SiO2 Shell Through Sol-Gel Process)

  • 샤픽빈이신크;이한승
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2020년도 봄 학술논문 발표대회
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    • pp.66-67
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    • 2020
  • The synthesis of stearic acid composite phase change material (PCM) was investigated and the samples produced were characterized for use in latent heat storage, using a simple chemical sol-gel process. The PCM was encapsulated to tetraethyl orthosilicate by various preparation ratios of stearic acid (5, 10, 15, 20, 30 and 50%). Fourier transformation infrared spectroscope (FT-IR) and X-Ray diffraction (XRD) were performed to determine the chemical structure and crystalloid phase of the microencapsulated PCM. SATEOS1 (5%) shows the best proportion for the PCM. With the presence of stearic acid as core materials and SiO2 as the supporting materials, it does not show any chemical reaction between both of them. SATEOS1 shows promising potential for thermal energy storage as it shows a better encapsulation efficiency and good thermal stability.

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Effect of Cross-Linking Characteristic on the Physical Properties and Storage Stability of Acrylic Rubber

  • Seong-Guk Bae;Min-Jun Gim;Woong Kim;Min-Keun Oh;Ju-Ho Yun;Jung-Soo Kim
    • Elastomers and Composites
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    • 제58권3호
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    • pp.136-141
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    • 2023
  • Polyacrylic rubber (ACM) is well known for its excellent heat resistance and chemical stability. Additionally, its performance can be readily manipulated by modifying its functional groups, rendering it highly attractive to various industries. However, extreme climate changes have necessitated an expansion of the operating temperature range and lifespan of ACM products. This requires the optimization of both the compounding process and functional-group design. Hence, we investigated the relationship between the cross-linking system and mechanical properties of an ACM with a carboxylic cure site. The crosslink density is determined by chemical kinetics according to the structure of additives, such as diamine crosslinkers and guanidine accelerators. This interaction enables the manipulation of the scotch time and mechanical properties of the compound. This fundamental study on the correlation analysis between cross-linking systems, physical properties, and storage stability can provide a foundation for material research aimed at satisfying the increasingly demanding service conditions of rubber products.

소성Dolomite 수화물계의 축열시스템에 관한 연구 - 소성Dolomite 탈수반응층의 전열해석 - (A Study on Heat Storage System Using Calcined Dolomite - Numerical Analysis of Heat Transfer in Calcined Dolomite Dehydration Packed Bed -)

  • 박영해;김종식
    • 한국태양에너지학회 논문집
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    • 제23권1호
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    • pp.29-38
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    • 2003
  • To develope chemical heat pump using available energy sources, solar heat and other kinds of waste thermal energy, we have studied the material and heat transfer rate in the cylindrical bed reactor packed with Calcined Dolomite. Our results from the studies are as follows ; 1 The time needed to complete dehydration reaction at the wall side of the cylindrical reactor(r/rL=0.5) was shorter than that of the center(r/rL=0.0) as much as 12%. 2. Two dimensional (radial and circumferential) partial differential equations, concerning heat and mass transfer rate in the packed bed of calcined Dolomite, are solved numerically to describe the characteristics of the reaction in the cylindrical reactor. The solution reads rate of reaction in the packed bed reactor depends on the temperature and concentration of reactants. These results read the supplied heat transfers from the wall side of the cylinder to the center, dehydration reaction begins at the inner side of the wall of the cylindrical reactor and the dehydration reaction proceeds from the wall side to center of cylinder.