• 제목/요약/키워드: Solar Storage

검색결과 615건 처리시간 0.026초

태양열 온수급탕 시스템의 TRNSYS 열성능 분석 (Performance Analysis of Solar Heating System for High Solar Fraction using TRNSYS)

  • 손진국
    • 한국태양에너지학회 논문집
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    • 제32권3호
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    • pp.59-67
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    • 2012
  • In this paper, performances of solar hot water supply systems are parametrically analyzed with the variations of solar collector area, slope of collector and volume of storage. All simulations are conducted by using TRNSYS computer program. Average solar fractions, collector efficiencies and temperatures of storage are investigated monthly as well as annually. For system analysis, the maximum value of monthly average solar fractions has a limitation of 90 percent. As a result, the designed solar thermal system with $6m^2$ collector area, $50^{\circ}$ slope and $0.36m^2$ storage volume could provide almost an annual average solar fraction of 72 percent. By increasing the storage volume to $0.42m^2$, the annual solar fraction of system increases up to 73 percent.

이중진공관형 태양열 집열기의 연간 집열효율에 관한 연구 (A Study on the Annual Storage Efficiency of Concentric Evacuated Tube Solar Energy Collector System)

  • 김기철;팽진기;윤영환
    • 한국태양에너지학회 논문집
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    • 제28권4호
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    • pp.50-55
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    • 2008
  • The Storage efficiency of concentric evacuated tube solar collector is tested for one year from January 1st to December 31st under the real sun condition. The testing equipment is operated continuously for three days without cooling the storage tank. Daily storage efficiency is obtained from dividing stored energy in the storage tank by solar insolation on the solar collector for each day. Daily averaged temperature of the storage tank is lowest in January and highest in August. Monthly averaged storage efficiency is also lowest in November and highest in June. Therefore, it can be said that the storage temperature and the storage efficiency are roughly proportional to outdoor temperature. Furthermore, the daily storage efficiency is reversely proportional to $(T_s-T_a)/I_c$ where $T_s$ and $T_a$ are daily averaged storage temperature and outdoor temperature from sunrise to sunset, and $I_c$ is total insolation on the solar collector for a day.

태양열 축열조의 종횡비에 따른 열성층화 수치해석 연구 (Numerical Study on Thermal Stratification of the Aspect ratio of Solar Thermal Storage Tank)

  • 주홍진;김정배;곽희열
    • 한국태양에너지학회:학술대회논문집
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    • 한국태양에너지학회 2008년도 추계학술발표대회 논문집
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    • pp.178-183
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    • 2008
  • The purpose of this study is to compare the effect on the thermal stratification under various aspect ratios in the solar storage tank using FLUENT. Numerical calculations of three designs with different aspect ratio were carried out to show the behaviour of stratification in a solar storage tank. The calculation results show that the thermal stratification of the 2.5:1 aspect ratio solar storage tank can be 6.22% higher then that of the 1.5:1 aspect ratio solar storage tank and 2.68% higher then that of the 2:1 aspect ratio solar storage tank.

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TRNSYS를 이용한 Borehole 방식 태양열 계간축열 시스템의 성능에 관한 연구 (A Study on Performance of Seasonal Borehole Thermal Energy Storage System Using TRNSYS)

  • 박상미;서태범
    • 한국태양에너지학회 논문집
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    • 제38권5호
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    • pp.37-47
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    • 2018
  • The heating performance of a solar thermal seasonal storage system applied to a glass greenhouse was analyzed numerically. For this study, the gardening 16th zucchini greenhouse of Jeollanam-do agricultural research & extension services was selected. And, the heating load of the glass greenhouse selected was 576 GJ. BTES (Borehole Thermal Energy Storage) was considered as a seasonal storage, which is relatively economical. The TRNSYS was used to predict and analyze the dynamic performance of the solar thermal system. Numerical simulation was performed by modeling the solar thermal seasonal storage system consisting of flat plate solar collector, BTES system, short-term storage tank, boiler, heat exchanger, pump, controller. As a result of the analysis, the energy of 928 GJ from the flat plate solar collector was stored into BTES system and 393 GJ of energy from BTES system was extracted during heating period, so that it was confirmed that the thermal efficiency of BTES system was 42% in 5th year. Also since the heat supplied from the auxiliary boiler was 87 GJ in 5th year, the total annual heating demand was confirmed to be mostly satisfied by the proposed system.

자연순환식 태양열 급탕 시스템의 성능 추정 방법에 관한 연구 (A Study on the System Performance Prediction Method of Natural Circulation Solar Hot Water System)

  • 윤석범;전문헌
    • 태양에너지
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    • 제7권2호
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    • pp.37-53
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    • 1987
  • This study has been prepared for the purpose of developing the system performance prediction method of natural circulation solar hot water system. The storage tank of the natural circulation solar hot water system equipped with flat-plate solar collector is located at higher elevation than the solar collectors. Therefor, the storage tank temperature distribution formed accordance with configuration of storage tank by flow rate of circulating fluid affect system collection efficiency. In this study measure the storage tank temperature distribution with various experimental system under real sun condition and present the theoretical prediction method of the storage tank temperature. Moreover measure the flow rate not only day-time but also night-time reverse flow rate with die injection visual flow meter. Main conclusion obtain from the present study is as follows; 1) The storage tank temperature distribution above the connecting pipe connection position is the same as that of the fully mixed tank and below the connection position is the same as that of stratified tank. 2) The system performance sensitive to the storage tank temperature distribution. Therefore detailed tank model is necessary. Average storage tank temperature can be calculate 3% and storage tank temperature profile can get less than 10% difference with this model system.

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자연형 및 설비형 태양열 온수기의 이용특성에 대한 실험적 연구 (The Experimental Research for the Use Characteristics of the Passive and Active type Domestic Solar Hot Water Systems)

  • 이동원;곽희열
    • 한국태양에너지학회 논문집
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    • 제33권5호
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    • pp.82-88
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    • 2013
  • There are the stirring test and drain test in the daily performance test to determine the thermal performance of a domestic solar hot water system. The drain test is a test that measures the discharge heating rate while drain the hot water from the top of the storage tank and supply the city water to the bottom of the tank. From the perspective of the user, this drain test is more effective than the stirring test. In this study, the thermal performance were compared through the drain test for a passive type and an active type domestic solar hot water systems consisting of the same storage tank and collectors. At this point, a passive type was used the horizontal storage tanks, and an active type was used vertical storage tank. In the drain test, when the hot water drained up to the reference hot water temperature, an active type which have vertical storage tank represents excellent daily performance than a passive type which have horizontal storage tank regardless of weather conditions. The reason for this is because the vertical storage tank is advantageous to thermal stratification in the tank. After the drain test, the residual heat for the horizontal storage tank was much more than the vertical storage tank, but in the next day the amount of discharged heat were less than the those of vertical storage tank neither. Thus, the solar water heating system which have horizontal storage tank should be adopted preheating control method rather than separate using control method when connected with auxiliary heat source device.

효율적인 광전기화학적 태양에너지 전환과 저장을 위한 Solar Water Battery의 최적화 (Optimization of Solar Water Battery for Efficient Photoelectrochemical Solar Energy Conversion and Storage)

  • 고현주;박이슬
    • 청정기술
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    • 제27권1호
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    • pp.85-92
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    • 2021
  • 태양에너지를 활용하여 전력을 생산하는 시스템인 Solar water battery는 광전기화학전지와 에너지저장시스템을 결합한 것으로 추가적인 외부 전압 없이 태양에너지의 전환과 저장을 동시에 할 수 있다. Solar water battery는 광전극, 저장전극 그리고 상대전극으로 구성되어 있고, 이들의 선택과 조합은 시스템의 성능과 효율에 있어 중요한 역할을 한다. 본 연구에서는 Solar water battery의 구성요소들을 변화시켜 시스템에 미치는 영향을 알고자 하였다. 상대전극이 방전 시 미치는 영향, 광전극과 저장전극의 전극 재료, 전해질의 종류에 따른 태양에너지 전환 효율과 저장 용량에 미치는 영향에 대해 연구하였다. 이들의 최적화된 구성(TiO2 : NaFe-PB : Pt foil)에서 15시간동안의 광조사 후의 방전 용량이 72.393 mAh g-1으로 시스템 구성 조건에 따라 광전환/저장 효율이 크게 영향을 받음을 확인 할 수 있었다. 또한, 유기 오염물질을 광전극 반응조내 전해질에 첨가하여 광전하를 효율적으로 분리시킴으로써 광전류 증가시켰으며, 이로 인해 저장용량이 향상되고, 동시에 오염물질도 분해시킬 수 있음을 확인하였다. 이처럼 Solar water battery는 추가적인 외부 전압이 필요없는 새로운 친환경 태양에너지 전환/저장 시스템이며, 나아가 수처리에도 활용할 수 있을 것으로 기대된다.

온실(溫室) 난방(暖房)을 위한 태양열(太陽熱)-지하(地下) 잠열(潛熱) 축열(蓄熱) 시스템 개발(開發) (Development of Solar Energy-Underground Latent Heat Storage System for Greenhouse Heating)

  • 송현갑;류영선
    • Journal of Biosystems Engineering
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    • 제19권3호
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    • pp.211-221
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    • 1994
  • In this study, to maximize the solar energy utilization for greenhouse heating during the winter season, solar energy-underground latent heat storage system was constructed, and the thermal performance of the system has been analyzed to obtain the basic data for realization of greenhouse solar heating system. The results are summarized as follows. 1. $Na_2SO_4{\cdot}10H_20$ was selected as a latent heat storage material, its physical properties were stabilized and the phase change temperature was controlled at $13{\sim}15^{\circ}C$. 2. Solar radiation of winter season was the lowest value in December, and Jinju area was the highest and the lowest value was shown in Jeju area. 3. The minimum inner air temperature of greenhouse with latent heat storage system(LHSS) was $7.0{\sim}7.5^{\circ}C$ higher than that of greenhouse without LHSS and was $7.0{\sim}11.2^{\circ}C$ higher than the minimum ambient air temperature. 4. Greenhouse heating effect of latent heat storage system was getting higher according to the increase of solar radiation and was not concerned with the variation of minimum ambient air temperature. 5. The relative humidity of greenhouse with latent heat storage system was varied from 50 to 85%, but that of greenhouse without LHSS was varied from 30 to 93%. 6. The heating cost of greenhouse with solar energy-latent heat storage system was about 24% of that with the kerosene heating system.

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태양열 시스템의 활용성 제고를 위한 축열 장치 개발에 관한 실험적 연구 (A Study on the Development of Thermal Storage Units for Efficient Utilization of Solar Systems)

  • 천원기;이재영
    • 한국태양에너지학회 논문집
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    • 제22권1호
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    • pp.31-42
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    • 2002
  • This study has been carried out to design a number of storage units which could improve the utilizability of solar energy by offering convenient means to store it. The proposed units are systematically tested to establish their reliability in actual operations. One of the prominent features of the present storage units is that each design is meant to drastically improve the thermal response of solar systems which would definitely offer extreme convenience to whoever uses it. Also sought in the present study is to elicit ideal operating conditions during the storage and extraction phases of solar energy once it is delivered to the storage unit. The present study has confirmed the potential use of the proposed units with their applicability in capitalizing the sun's energy.

태양열이용 Baffle형 축열탱크를 갖는 온수난방시스템의 열성능 해석 (Analysis of Thermal Performance of Solar Hot-Water and Heating System with Baffle Storage Tank)

  • 서정세;이중섭
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2009년도 하계학술발표대회 논문집
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    • pp.768-773
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    • 2009
  • A numerical study has been performed to investigate the thermal Performance of Solar heating system with baffle type of storage tank by using the commercial code TRNSYS. As a result, the solar fraction depends strongly on the efficiency and heat loss coefficient of solar collector as well as the heating capacity of house and the water temperature supplied to the shower. In addition, the solar fraction has been basically ranked to higher level in baffle type of storage tank than typical type of single storage tank for the range of operation condition.

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