• 제목/요약/키워드: Water Cycle

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물의 순환에 대한 초등 예비 교사들의 지구 시스템적 인식 (The Earth Systems Perceptions about Water Cycle of the Elementary Pre-service Teachers)

  • 정진우;김윤지
    • 한국초등과학교육학회지:초등과학교육
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    • 제27권4호
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    • pp.319-327
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    • 2008
  • 본 연구의 목적은 물의 순환에 대해 학습하는 학생들의 개념과 지구 시스템 사고에 직접적인 영향을 미치게 될 초등 예비 교사들의 인식을 밝히는 것이다. 초등 예비 교사 131명을 대상으로 개념 그리기 방법을 적용하여 물 순환의 구성 요소로 응답한 개념들을 지구 시스템의 하위계인 수권, 기권, 지권, 생물권의 범주로 코딩하고, 물의 순환 과정으로 응답한 요소들로부터 지구 시스템 하위계의 상호작용에 대한 인식을 지구 시스템의 관점에서 분석하였다. 예비 교사들은 물 순환의 구성 요소를 주로 기권과 수권에서 인식하고 지권의 작용과 생물권의 영향에 대한 인식이 부족하였다. 물의 순환 과정에서 모든 예비 교사들이 강수를 인식하였고 대부분 증발과 응결에 대한 인식을 표출하였으며, 지표에서의 흐름을 다수의 예비 교사들이 응답한데 반하여 지하에서의 흐름에 대한 표출이 적었다.

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유기랭킨사이클과 암모니아-물 랭킨사이클의 열역학적 성능의 비교 해석 (Comparative Thermodynamic Analysis of Organic Rankine Cycle and Ammonia-Water Rankine Cycle)

  • 김경훈;김만회
    • 한국수소및신에너지학회논문집
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    • 제27권5호
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    • pp.597-603
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    • 2016
  • In this paper a comparative thermodynamics analysis is carried out for organic Rankine cycle (ORC) and ammonia-water Rankine cycle (AWRC) utilizing low-grade heat sources. Effects of the working fluid, ammonia concentration, and turbine inlet pressure are systematically investigated on the system performance such as mass flow rate, pressure ratio, turbine-exit volume flow, and net power production as well as the thermal efficiency. Results show that ORC with a proper working fluid shows higher thermal efficiency than AWRC, however, AWRC shows lower mass flow rate of working fluid and lower pressure ratio of expander than ORC.

저온 열원 및 LNG 냉열을 이용하는 복합 발전 사이클의 성능 해석 (Performance Analysis of a Combined Power Cycle Utilizing Low-Temperature Heat Source and LNG Cold Energy)

  • 김경훈;오재형;고형종
    • 한국수소및신에너지학회논문집
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    • 제23권4호
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    • pp.382-389
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    • 2012
  • Power generation cycle using ammonia-water mixture as working fluid has attracted much attention because of its ability to efficiently convert low-temperature heat source into useful work. If an ammonia-water power cycle is combined with a power cycle using liquefied natural gas (LNG), the conversion efficiency could be further improved owing to the cold energy of LNG at $-162^{\circ}C$. In this work parametric study is carried out on the thermodynamic performance of a power cycle consisted of an ammonia-water Rankine cycle as an upper cycle and a LNG cycle as a bottom cycle. As a driving energy the combined cycle utilizes a low-temperature heat source in the form of sensible heat. The effects on the system performance of the system parameters such as ammonia concentration ($x_b$), turbine 1 inlet pressure ($P_{H_1}$) and temperature ($T_{H_1}$), and condenser outlet temperature ($T_{L_1}$) are extensively investigated. Calculation results show that thermal efficiency increases with the increase of $P_{H_1}$, $T_{H_1}$ and the decrease of $T_{L_1}$, while its dependence on $x_b$ has a downward convex shape. The changes of net work generation with respect to $P_{H_1}$, $T_{H_1}$, $T_{L_1}$, and $x_b$ are roughly linear.

순산소 연소 기본 사이클의 작동조건 변화에 따른 성능해석 (Influence of Operating Conditions on the Performance of a Oxy-fuel Combustion Reference Cycle)

  • 박병철;손정락;김동섭;안국영;강신형
    • 한국유체기계학회 논문집
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    • 제12권4호
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    • pp.30-36
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    • 2009
  • Recently, there has been growing interest in the oxyfuel combustion cycle since it enables high-purity $CO_2 capture with high$ efficiency. However, the oxyfuel combustion cycle has some important issues regarding to its performance such as the requirement of water recirculation to decrease a turbine inlet temperature and proper combustion to enhance cycle efficiency. Also, Some of water vapour remain not condensed at condenser outlet because cycle working fluid contains non-condensable gas, i.e., $CO_2$. The purpose of the present study is to analyze performance characteristics of the oxyfuel combustion cycle with different turbine inlet temperatures, combustion pressures and condenser pressure. It is expected that increasing the turbine inlet temperature improves cycle efficiency, on the other hand, the combustion pressure has specific value to display highest cycle efficiency. And increasing condensing pressure improves water vapour condensing rate.

물 환경 건전화를 위한 도시하천의 물 순환 모의 (I) - 안양천 유역 - (Hydrologic Cycle Simulation of Urban river for Rehabilitation of Water Environment (I) - Anyangcheon Basin -)

  • 이정민;이상호;이길성
    • 한국물환경학회지
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    • 제22권2호
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    • pp.349-357
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    • 2006
  • Nowadays, the discharges of urban streams during dry season are depleted because the hydrologic cycle in the watershed has been destroyed due to the expansion of the impermeable area, the excessive groundwater pumping, climate change, and so forth. The streamflow depletion may bring out severe water quality problems. This research are to investigate the hydrologic characteristics and to develop a technology to restore sound hydrologic cycle of Anyangcheon watershed. For the hydrological cycle analysis of the Anyangcheon watershed, continuous simulations of urban runoff were performed for the upstream basin of Gocheok bridge whose basin area covered 4/5 of the whole catchment area. The increase of impervious area by urbanization was analysed and its effect on urban runoff was evaluated. The SWMM 5 (Storm Water Management Model 5) was used for the continuous simulation of urban runoff. The analysis results of urbanization effect on runoff are as follows: the surface runoff in 2000 increases to 65% of the whole precipitation whereas the surface runoff in 1975 amounts to 50% of the precipitation; the groundwater runoff in 2000 amounts to 7% and shows 6% decrease during the period from 1975 to 2000.

SBF Conceptual Representation을 활용한 초등학교 6학년 학생들의 자연현상 개념 분석 (An Analysis of the Conceptions about the Nature Phenomenon Using SBF Conceptual Representation in the 6th Students)

  • 문병찬;김해경
    • 대한지구과학교육학회지
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    • 제3권1호
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    • pp.1-8
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    • 2010
  • The purpose of this study was to analysis the 6th students' conceptions of the nature phenomenon focused on the systematic characteristics. For this study, 12 students of the 6th grades participated in special class for testing their conceptions about the water cycle in the earth system. And we analyzed the outcomes of students' conceptions based on SBF conceptual representation. The results indicate that most of the subjects perceived that the water cycle in earth system wasn't complex system maintaining its existence and functions as a whole through the interaction of its parts but simple system maintaining some actions between atmosphere and hydrosphere, geosphere, biosphere(biological world). And they didn't perceive the characteristics of the water cycle whose all parts must be presented the change of volume between vapor and water, glacier proposing the total hydro-volume are established in the earth system. Based on the results, it was suggested that the main goals of the schools' science education should be to provide students who understand the water cycle system as attaching importance to form with the skills needed to coherent understanding of the essential qualities for the nature phenomenon system.

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Safety margin and fuel cycle period enhancements of VVER-1000 nuclear reactor using water/silver nanofluid

  • Saadati, Hassan;Hadad, Kamal;Rabiee, Ataollah
    • Nuclear Engineering and Technology
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    • 제50권5호
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    • pp.639-647
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    • 2018
  • In this study, the effects of selecting water/silver nanofluid as both a coolant and a reactivity controller during the first operating cycle of a light water nuclear reactor are investigated. To achieve this, coupled neutronic-thermo-hydraulic analysis is employed to simulate the reactor core. A detailed VVER1000/446 reactor core is modeled in monte carlo code (MCNP), and the model is verified using the porous media approach. Results show that the maximum required level of silver nanoparticles is 1.3 Vol.% at the beginning of the cycle; this value drops to zero at the end of cycle. Due to substitution of water/boric acid with water/Ag nanofluid, reactor operation time at maximum power extends to 357.3 days, and the energy generation increases by about 27.3%. The higher negative coolant temperature coefficient of reactivity in the presence of nanofluid in comparison with the water/boric acid indicates that the reactor is inherently safer. Considering the safety margins in the presence of the nanofluid, minimum departure from nucleate boiling ratio is calculated to be 2.16 (recommendation is 1.75).

작동유체에 따른 온도차발전사이클의 성능 해석 (Performance Analysis of Ocean Thermal Energy Conversion on Working Fluid Classification)

  • 이호생;문정현;김현주
    • 동력기계공학회지
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    • 제20권2호
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    • pp.79-84
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    • 2016
  • The thermodynamic performance of ocean thermal energy conversion with 1 kg/s geothermal water flow rate as a heat source was evaluated to obtain the basic data for the optimal design of cycle with respect to the classification of the working fluid. The basic thermodynamic model for cycle is rankine cycle and the geothermal water and deep seawater were adapted for the heat source of evaporator and condenser, respectively. R245fa, R134a are better to use as a working fluid than others in view of the use of geothermal water. It is important to select the proper working fluid to operate the ocean thermal energy conversion. So, this paper can be used as the basic data for the design of ocean thermal energy conversion with geothermal water and deep seawater.

하천(河川)을 고려한 호소(湖沼)의 물 순환 정책방안 -충남·대전지역 농업용 호소의 체류시간을 중심으로- (Policy for Water Cycle of Agricultural Reservoirs Considering Downstream - Focused on HRT of Agricultural Reservoir in Chungcheongnam-do and Daejeon Metropolitan City -)

  • 이상진
    • 한국콘텐츠학회논문지
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    • 제11권9호
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    • pp.246-253
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    • 2011
  • 농업용수를 확보하기 위하여 조성한 호소에 장기간 물을 담수함에 따라 수질오염으로 이용가치 저하와 하류 하천이 건천화 되어 하천의 기능을 상실하는 등 유역내 잘못된 물 관리체계로 여러 가지 문제점이 발생하고 있다. 충남 대전지역을 중심으로 농업용 호소의 운영현황을 조사한 결과 대부분 호소수의 체류시간은 8개월 이상을 유지하여 그 기간 동안 하류하천의 건천화가 나타났고, 호소수의 수질은 생활계 및 축산계 오염물질의 유입과 강수량에 따른 물 순환특성과 상당히 밀접한 것으로 분석되었다. 따라서 호소 유역내수질오염물질 저감과 함께 하류하천이 건천화가 되지 않도록 담수량과 담수시기를 조절하고, 호소수 체류 시간은 가급적 짧게 유지하는 등 유역내 물 순환체계를 개선할 필요가 있다.

LNG 냉열을 이용하는 암모니아-물 랭킨 사이클과 유기 랭킨 사이클의 열역학적 성능 특성 해석 (Thermodynamic Performance Analysis of Ammonia-Water Rankine Cycle and Organic Rankine Cycle Using Cold Energy of LNG)

  • 김경훈
    • 한국수소및신에너지학회논문집
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    • 제31권4호
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    • pp.363-371
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    • 2020
  • Recently, the technologies to utilize the cold energy of liquefied natural gas (LNG) have attracted significant attention. In this paper, thermodynamic performance analysis of combined cycles consisting of ammonia Rankine cycle (AWR) and organic Rankine cycle (ORC) with LNG Rankine cycle to recover low-grade heat source and the cold energy of LNG. The mathematical models are developed and the effects of the important system parameters such as turbine inlet pressure, ammonia mass fraction, working fluid on the system performance are systematically investigated. The results show that the thermal efficiency of AWR-LNG cycle is higher but the total power production of ORC-LNG cycle is higher.