• 제목/요약/키워드: Molten salt heat storage system

검색결과 7건 처리시간 0.016초

히트파이프와 용융염을 사용하는 태양열 축열조의 설계 (Design of a Solar Thermal Storage System Employing Heat Pipes and Molten Salts)

  • 이정륜;부준홍
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2011년도 춘계학술발표대회 논문집
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    • pp.86-91
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    • 2011
  • Thermal design was conducted for a solar thermal storage system in a medium-temperature range between $200^{\circ}C$ and $400^{\circ}C$. The system was composed of heat pipes as heat carrier and molten salts as phase-change storage material. Each heat pipe penetrated through the storage system and had two heat-exchanging sections at both ends to interact with high-and low-temperature steams, while it exchanged heat with molten salts in the middle section. During a heat-storage mode, the heat pipes transferred heat from the hot steam at one side to the molten salts and it transferred heat from the molten salt to the cold steam at the other side during the heat-dissipating mode. A tube-bank type heat exchanger theory was applied to this design task to meet the required inlet and outlet temperatures of the steams depending on the operation modes. Several design variables were considered including the lengths of evaporator and condenser of a heat pipe, traverse and longitudinal pitches of the pipe, and the number of rows of the heat pipes for two different molten salt baths. An optimum design results were presented with discussion.

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태양열 발전에서 태양열에너지 수송을 위한 고온 축열 물질의 열절달 특성 (Heat Transfer Characteristics of High Temperature molten salt storage for Solar Thermal Power Generation)

  • ;김기만;강용혁;한귀영
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2008년도 춘계학술대회 논문집
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    • pp.190-193
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    • 2008
  • The heat transfer characteristics of molten salt storage system for the solar thermal power generation were investigated. Temperature profiles and the heat transfer coefficients during the storage and discharge stage were obtained with the steam as the heat transfer fluid. Two kinds of inorganic salt were employed as the storage materials and coil type of heat exchanger were installed in both tanks to provide the heat transfer surfaces during the storage and discharge stage. The effects of steam flow rates, flow direction of steam in the storage tank and the initial temperature of storage and discharge tank on the heat transfer were tested.

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Design and dynamic simulation of a molten salt THS coupled to SFR

  • Areai Nuerlan;Jin Wang;Jun Yang;Zhongxiao Guo;Yizhe Liu
    • Nuclear Engineering and Technology
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    • 제56권4호
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    • pp.1135-1144
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    • 2024
  • With the increasing ratio of renewables in the grid, a low-carbon and stable base load source that also is capable of load tracking is in demand. Sodium cooled fast reactors (SFRs) coupled to thermal heat storage system (THS) is a strong candidate for the need. This research focuses on the designing and performance validation of a two-tank THS based on molten salt to integrate with a 280 MWth sodium cooled fast reactor. Designing of the THS includes the vital component, sodium-to-salt heat exchanger which is a technology gap that needs to be filled, and designing and parameter selection of the tanks and related pumps. Modeling of the designed THS is conducted followed by the description of operation strategies and control logics of the THS. Finally, the dynamic simulation of the designed THS is conducted based on Fortran. Results show, the proposed power system meets the need of the design requirements to store heat for 18 h during a day and provide 500 MWth for peak demand for the rest of the day.

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.

고온 축열 시스템의 개발에 관한 연구 (A System Development of Thermal Energy Storage at High Temperatures)

  • 홍성안;박원훈;최형준
    • 태양에너지
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    • 제8권1호
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    • pp.13-21
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    • 1988
  • Heat transfer phenomena in a high-temperature heat storage unit were investigated using molten salts. Carbonate salt, an equimolar mixture of $Li_2CO_3$ and $K_2CO_3$, which melts at $505^{\circ}C$ with a latent heat of 82 cal/g, was selected as the most promising latent heat storage material based on its low cost and excellent thermophysical properties at moderately high temperatures. It was also found that nitrate salts were good candidates of sensible heat storage materials. For the carbonate salt to be utilized commercially, however, several means of enhancing thermal recovery must be explored by promoting heat conduction through the solid salt formed during the heat discharge period. These would be achieved by the additions of aluminum screens and wool, and stainless fins. Finally, experimental results of moving boundary of phase change were well compared with predictied values obtained from the approximate solution.

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Prismatic-core advanced high temperature reactor and thermal energy storage coupled system - A preliminary design

  • Alameri, Saeed A.;King, Jeffrey C.;Alkaabi, Ahmed K.;Addad, Yacine
    • Nuclear Engineering and Technology
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    • 제52권2호
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    • pp.248-257
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    • 2020
  • This study presents an initial design for a novel system consisting in a coupled nuclear reactor and a phase change material-based thermal energy storage (TES) component, which acts as a buffer and regulator of heat transfer between the primary and secondary loops. The goal of this concept is to enhance the capacity factor of nuclear power plants (NPPs) in the case of high integration of renewable energy sources into the electric grid. Hence, this system could support in elevating the economics of NPPs in current competitive markets, especially with subsidized solar and wind energy sources, and relatively low oil and gas prices. Furthermore, utilizing a prismatic-core advanced high temperature reactor (PAHTR) cooled by a molten salt with a high melting point, have the potential in increasing the system efficiency due to its high operating temperature, and providing the baseline requirements for coupling other process heat applications. The present research studies the neutronics and thermal hydraulics (TH) of the PAHTR as well as TH calculations for the TES which consists of 300 blocks with a total heat storage capacity of 150 MWd. SERPENT Monte Carlo and MCNP5 codes carried out the neutronics analysis of the PAHTR which is sized to have a 5-year refueling cycle and rated power of 300 MWth. The PAHTR has 10 metric tons of heavy metal with 19.75 wt% enriched UO2 TRISO fuel, a hot clean excess reactivity and shutdown margin of $33.70 and -$115.68; respectively, negative temperature feedback coefficients, and an axial flux peaking factor of 1.68. Star-CCM + code predicted the correct convective heat transfer coefficient variations for both the reactor and the storage. TH analysis results show that the flow in the primary loop (in the reactor and TES) remains in the developing mixed convection regime while it reaches a fully developed flow in the secondary loop.

수분이 NaKZn-Chloride의 녹는점과 고온안정성에 미치는 영향 (Effect of Moisture on the Melting Point and High-Temperature Stability of NaKZn-Chloride)

  • 이정환;김영;윤석호;이공훈;최준석
    • Korean Chemical Engineering Research
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    • 제56권4호
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    • pp.555-560
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    • 2018
  • $NaCl-KCl-ZnCl_2$ 혼합물(NaKZn-Chloride)의 열물성을 조사하여 열저장 매체로서의 잠재성을 평가하였다. 고온용 축열물질로 이용하기 위해서는 축열온도 범위에서 안정된 열물성을 유지하여야 하는데, 사전실험 결과 해당 혼합물은 알려진 고온안정온도인 $850^{\circ}C$ 보다 훨씬 낮은 온도에서 급격한 분해가 진행되었다. 이에 본 연구에서는, 흡수된 수분에 의해 축열물질의 열적 성질이 변화되는지 확인하고자 하였다. 혼합물의 수분함량에 따라 열물성이 변화되는 지를 열물성 장비로 측정하였으며, 가열-냉각 반복실험을 통해 다시 한 번 확인하였다. 그 결과 녹는 점의 경우 흡수된 수분에 관계없이 일정하지만, 고온 안정성의 경우 흡습한 샘플에서 다소 낮아지는 것을 알 수 있었다. 본 연구결과에 따라 흡습성을 가지는 고온 축열물질을 사용하는 시스템에서 수분과의 접촉을 줄임으로써 축열물질의 손실을 줄일 수 있다.