• 제목/요약/키워드: irrigated water exchange

검색결과 6건 처리시간 0.024초

THE PHYSICALLY-BASED SOIL MOISTURE BALANCE MODEL DEVELOPMENT AND APPLICATIONS ON PADDY FIELDS

  • Park, Jae-Young;Lee, Jae-Hyoung
    • Water Engineering Research
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    • 제1권3호
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    • pp.243-256
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    • 2000
  • This physically-based hydrologic model is developed to calculate the soil-moisture balance on paddy fields. This model consists of three modules; the first is the unsaturated module, the second is the rice evapotranspiration module with SPAC(soil-plant-atmospheric-continuum), and the third is the groundwater and open channel flows based upon the interrehtionship module. The model simulates the hydrlogical processes of infiltration, soil water storage, deep perocolation or echarge to the shallow water table, transpiration and evaporation from the soil surface and also the interrelationship of the groundwater and river flow exchange. To verify the applicability of the developed model, it was applied to the Kimjae Plains, located in the center of the Dongjin river basin in Korea, during the most serious drought season of 1994. The result shows that the estimated water net requirement was 757mm and the water deficit was about 5.9% in this area in 1994. This model can easily evaluate the irrigated water quantity and visualize the common crop demands and soil moisture conditions.

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서남부간척지에서 벼 질소시비와 물관리 방법별 생육 및 수량 (Growth and Yield of Rice in Levels of Nitrogen and Water Management of Reclaimed Saline Soil in Southwestern Area)

  • 김영두;최민규;이경도;백만기;구본일;강신구;박홍규;김보경
    • 한국작물학회지
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    • 제57권3호
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    • pp.203-208
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    • 2012
  • 서남부간척지에서 벼 재배시 질소시비량 절감을 위한 물관리방법을 구명하기 위하여 세사양토(문포통, 염농도 0.3% 내외)에서 청호벼를 공시하여 시험한 결과를 요약하면 다음과 같다. 토양염농도 변화는 이앙후 3일과 6일 간격 환수에서 활착기에 각각 0.10~0.24%, 0.24~0.32%로 경과되었으나, 9일 간격 환수에서는 0.36~0.52%로 경과되었고 그 이후 영화분화기 까지도 활착기와 같은 염분농도로 경과하였다. 생육 및 수량구성요소는 환수간격 3일과 6일에서는 환수간격과 질소시비량별 차이가 크지 않았으나 환수간격 9일에서는 질소시비량에 관계없이 생육이 저조하였으며 또한 백미품위 및 미질 특성변화는 환수간격보다는 질소시비량간 차이가 컸다. 쌀 수량은 환수간격 3일과 6일에서 각각 평균 497, 492 kg/10a로 질소시비량별 환수간격에 따른 통계적 유의성이 인정되지 않았으나 환수간격 9일에서는 질소시비량에 관계없이 수량이 현저히 감소하였다. 따라서 환수간격과 질소시비량에 따른 쌀 수량, 미질과 염해 등을 고려해 볼때 이앙 후 6일 간격 환수와 질소시비량 17 kg/10a로 시용해도 생육 및 수량에 큰 차이를 보여주지 않아 생산비 절감 및 물 절약 측면에서 적당하다고 생각된다.

Water and mass balance analysis for hydrological model development in paddy fields

  • Tasuku, KATO;Satoko, OMINO;Ryota, TSUCHIYA;Satomi, TABATA
    • 한국수자원학회:학술대회논문집
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    • 한국수자원학회 2015년도 학술발표회
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    • pp.238-238
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    • 2015
  • There are demands for water environmental analysis of discharge processes in paddy fields, however, it is not fully understood in nutrients discharge process for watershed modeling. As hydrological processes both surface and ground water and agricultural water managements are so complex in paddy fields, the development of lowland paddy fields watershed model is more difficult than upland watershed model. In this research, the improvement of SWAT (Soil and Water Assessment Tool) model for a paddy watershed was conducted. First, modification of surface inundated process was developed in improved pot hole option. Those modification was evaluated by monitoring data. Second, the monitoring data in river and drainage channel in lowland paddy fields from 2012 to 2014 were analyzed to understand discharge characteristics. As a case study, Imbanuma basin, Japan, was chosen as typical land and water use in Asian countries. In this basin, lowland paddy fields are irrigated from river water using small pumps that were located in distribution within the watershed. Daily hydrological fluctuation was too complex to estimate. Then, to understand surface and ground water discharge characteristics in irrigation (Apr-Aug) and non-irrigation (Sep-Mar) period, the water and material balance analysis was conducted. The analysis was composed two parts, watershed and river channel blocks. As results of model simulation, output was satisfactory in NSE, but uncertainty was large. It would be coming from discharge process in return water. The river water and ground water in paddy fields were exchanged each other in 5.7% and 10.8% to river discharge in irrigation and non-irrigation periods, respectively. Through this exchange, nutrient loads were exchanged between river and paddy fields components. It suggested that discharge from paddy fields was not only responded to rainfall but dynamically related with river water table. In general, hydrological models is assumed that a discharge process is one way from watershed to river. However, in lowland paddy fields, discharge process is dynamically changed. This function of paddy fields showed that flood was mitigated and temporally held as storage in ground water. Then, it showed that water quality was changed in mitigated function in the water exchange process in lowland paddy fields. In future, it was expected that hydrological models for lowland paddy fields would be developed with this mitigation function.

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미국 네브라스카의 관개된 옥수수 농업생태계의 복사, 에너지 및 엔트로피의 교환 (Radiation, Energy, and Entropy Exchange in an Irrigated-Maize Agroecosystem in Nebraska, USA)

  • 양현영;요하나 마리아 인드라와티;앤드류 수커;이지혜;이경도;김준
    • 한국농림기상학회지
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    • 제22권1호
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    • pp.26-46
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    • 2020
  • 이 연구의 목표는 관개된 옥수수 밭에서의 복사, 에너지 및 엔트로피의 교환을 평가하고 문서화하는 것이다. 열역학적 관점에서, 우리는 이 농업생태계를 태양 복사로 인해 시스템 내부와 외부 사이에 큰 경도(gradient)가 부여되는 열린 열역학적 시스템으로 간주하였다. 따라서 시스템이 평형에서 멀어질 때, 열역학적 원칙에 따라 비평형 소산 과정(nonequilibrium dissipative process)인 이 생태-사회시스템이 모든 생물, 물리, 화학 및 인위적 구성 요소를 사용하여 태양으로부터 주어진 경도에 저항하여 이를 감소시키도록 움직인다고 가정하였다. 이 가설을 검증하기 위한 첫 단계로서 미국 네브라스카의 옥수수 밭에 위치한 AmeriFlux의 NE1 사이트에서 2003년부터 2014년까지 관측된 플럭스 및 미기상 자료를 사용하여 복사, 에너지 및 엔트로피의 교환을 정량화하였다. 12년 평균한 생장기간의 결과에 따르면, 시스템의 에너지 포획(순복사와 하향단파복사의 비, Rn/Rs↓)은 옥수수의 생장과 함께 증가하였고, 생장기간이 비생장기간보다 약 80% 높았다. 생장기간 동안 시스템 내의 엔트로피 생성(σ)은 평균 9.56 MJ m-2 K-1이었고, 주로 하향단파 복사에 의해 결정되었다. 엔트로피 수송(J)은 잠열플럭스, 순장파복사, 현열플럭스의 순으로 기여하였고, 시스템 외부 환경으로 퍼낸 양은 σ의 ~84%에 해당하는 -7.99 MJ m-2 K-1이었다. 따라서 매년 생장 기간동안 시스템 내에 순 축적된 엔트로피(dS/dt)는 1.57 MJ m-2 K-1이었다. 탄소 흡수 효율(CUE)은 1.25~1.62, 물 사용 효율(WUE)은 1.98~2.92 g C (kg H2O)-1이었고 모두 옥수수의 성장과 함께 증가하였다. 극심한 가뭄으로 관개가 더 빈번하게 행해진 2012년의 경우, σ와 J가 모두 평년보다 10% 많은 최대값을 보였고, 그 결과 서로 대부분 상쇄되어 dS/dt는 평년보다 조금 높은 수준에 머물렀다. 가뭄 중에도 빈번한 관개로 인해 엔트로피 수송의 주된 경로가 현열플럭스에서 잠열플럭스로 바뀌면서 생산량과 CUE는 평년 값을 웃돌았으나 물과 빛의 사용 효율은 오히려 낮아졌다. 이러한 결과에 근거하여 관개된 옥수수 생태-사회시스템의 지속가능성의 변화를 평가하기에는 아직 여러가지 문제가 남아있다. 자기-조직화 과정은 시스템과 주변 간의 경도를 효과적으로 감소시키는 역할을 한다. 따라서 엔트로피 자료와 함께, 지속가능성의 척도가 되는 자기-조직화 역량을 나타내는 스펙트랄 엔트로피, 또는 하부시스템의 구조 및 에너지·물질의 흐름의 강도와 방향의 변화를 가늠할 수 있는 역학적 과정망(dynamic process network) 분석 등의 추가 연구가 병행되어야 한다.

생태계와 대기 간의 가스 교환 메카니즘 규명을 위한 안정동위원소의 응용 (Application of Stable Isotopes in Studies of Gas Exchange Processes Between Biosphere and the Atmosphere)

  • 한광현;정덕영
    • 한국토양비료학회지
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    • 제43권2호
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    • pp.242-251
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    • 2010
  • 이 논문은 장기간에 걸쳐 논 생태계에서 측정된 이산화탄소와 메탄의 순교환량 과 이와 동시에 모니터링된 다양한 환경요소들과의 상관관계들을 살펴보고, 이들 플럭스와 환경 요소 및 생태계 요소들이 어떻게 교환된 이산화탄소와 메탄의 동위원소비에 영향을 미치는 지를 파악하고자 하였다. 생육기간 동안 관측된 이산화탄소 및 메탄의 순교환량은 는 담수기에는 각각 일사량과 토양온도의 변화에 따라 경시적인 변화를 보였으나, 낙수기를 전후해서는 토양에 저장되어 있던 가스들이 낙수 후 확산장벽이 사라짐으로 인해 급격히 대기 중으로 대량 방출되는 경향을 보였다. 이러한 플럭스의 변화는 토양 중에 저장되어 있는 이산화탄소와 메탄의 저장량 감소와 직접적으로 연결되었고, 이에 상응하는 순교환량 중 토양의 기여분 증가와 대기 중 이산화탄소 및 메탄의 농도 증가 및 동위원소비 변화가 관찰되었다. 이러한 변화는 환원상태에서 진행되는 메탄생성의 결과로, 기질인 이산화탄소는 상대적으로 무거운 $^{13}C$ 동위원소가 축적되는 반면, 생성물인 메탄은 가벼운 $^{12}C$ 동위원소가 축적되기 때문으로 판단된다. 따라서, 토양 유래 이산화탄소는 식물체 호흡 유래 이산화탄소와 구분되는 동위원소 특성을 지내게 된다. Keeling plot 혼합 모델로 추정된 이산화탄소와 메탄의 가스교환 동위원소 지문은 담수기와 낙수기에 걸쳐 매우 뚜렷한 변화를 보였으며, 그 변화 정도는 토양 중 가스 저장량, 교환된 플럭스의 크기 및 방향, 이동 경로, 부분적인 방출 이산화탄소의 재흡수도, 메탄의 산화정도 등에 의해 크게 달랐다. 본 연구의 결과들은 자연상태에서 관측된 플럭스와 결합된동위원소 기술이 생태계 내 다양한 가스 교환 메커니즘을 이해하는데 매우 유용한 도구가 될 수 있음을 보여주였다.

지하수 관개에 의한 수도의 멸준양상과 그 방지책에 관한 연구 (Studies on the Rice Yield Decreased by Ground Water Irrigation and Its Preventive Methods)

  • 한욱동
    • 한국농공학회지
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    • 제16권1호
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    • pp.3225-3262
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    • 1974
  • The purposes of this thesis are to clarify experimentally the variation of ground water temperature in tube wells during the irrigation period of paddy rice, and the effect of ground water irrigation on the growth, grain yield and yield components of the rice plant, and, furthermore, when and why the plant is most liable to be damaged by ground water, and also to find out the effective ground water irrigation methods. The results obtained in this experiment are as follows; 1. The temperature of ground water in tube wells varies according to the location, year, and the depth of the well. The average temperatures of ground water in a tubewells, 6.3m, 8.0m deep are $14.5^{\circ}C$ and $13.1^{\circ}C$, respercively, during the irrigation period of paddy rice (From the middle of June to the end of September). In the former the temperature rises continuously from $12.3^{\circ}C$ to 16.4$^{\circ}C$ and in the latter from $12.4^{\circ}C$ to $13.8^{\circ}C$ during the same period. These temperatures are approximately the same value as the estimated temperatures. The temperature difference between the ground water and the surface water is approximately $11^{\circ}C$. 2. The results obtained from the analysis of the water quality of the "Seoho" reservoir and that of water from the tube well show that the pH values of the ground water and the surface water are 6.35 and 6.00, respectively, and inorganic components such as N, PO4, Na, Cl, SiO2 and Ca are contained more in the ground water than in the surface water while K, SO4, Fe and Mg are contained less in the ground water. 3. The response of growth, yield and yield components of paddy rice to ground water irrigation are as follows; (l) Using ground water irrigation during the watered rice nursery period(seeding date: 30 April, 1970), the chracteristics of a young rice plant, such as plant height, number of leaves, and number of tillers are inferior to those of young rice plants irrigated with surface water during the same period. (2) In cases where ground water and surface water are supplied separately by the gravity flow method, it is found that ground water irrigation to the rice plant delays the stage at which there is a maximum increase in the number of tillers by 6 days. (3) At the tillering stage of rice plant just after transplanting, the effect of ground water irrigation on the increase in the number of tillers is better, compared with the method of supplying surface water throughout the whole irrigation period. Conversely, the number of tillers is decreased by ground water irrigation at the reproductive stage. Plant height is extremely restrained by ground water irrigation. (4) Heading date is clearly delayed by the ground water irrigation when it is practised during the growth stages or at the reproductive stage only. (5) The heading date of rice plants is slightly delayed by irrigation with the gravity flow method as compared with the standing water method. (6) The response of yield and of yield components of rice to ground water irrigation are as follows: \circled1 When ground water irrigation is practised during the growth stages and the reproductive stage, the culm length of the rice plant is reduced by 11 percent and 8 percent, respectively, when compared with the surface water irrigation used throughout all the growth stages. \circled2 Panicle length is found to be the longest on the test plot in which ground water irrigation is practised at the tillering stage. A similar tendency as that seen in the culm length is observed on other test plots. \circled3 The number of panicles is found to be the least on the plot in which ground water irrigation is practised by the gravity flow method throughout all the growth stages of the rice plant. No significant difference is found between the other plots. \circled4 The number of spikelets per panicle at the various stages of rice growth at which_ surface or ground water is supplied by gravity flow method are as follows; surface water at all growth stages‥‥‥‥‥ 98.5. Ground water at all growth stages‥‥‥‥‥‥62.2 Ground water at the tillering stage‥‥‥‥‥ 82.6. Ground water at the reproductive stage ‥‥‥‥‥ 74.1. \circled5 Ripening percentage is about 70 percent on the test plot in which ground water irrigation is practised during all the growth stages and at the tillering stage only. However, when ground water irrigation is practised, at the reproductive stage, the ripening percentage is reduced to 50 percent. This means that 20 percent reduction in the ripening percentage by using ground water irrigation at the reproductive stage. \circled6 The weight of 1,000 kernels is found to show a similar tendency as in the case of ripening percentage i. e. the ground water irrigation during all the growth stages and at the reproductive stage results in a decreased weight of the 1,000 kernels. \circled7 The yield of brown rice from the various treatments are as follows; Gravity flow; Surface water at all growth stages‥‥‥‥‥‥514kg/10a. Ground water at all growth stages‥‥‥‥‥‥428kg/10a. Ground water at the reproductive stage‥‥‥‥‥‥430kg/10a. Standing water; Surface water at all growh stages‥‥‥‥‥‥556kg/10a. Ground water at all growth stages‥‥‥‥‥‥441kg/10a. Ground water at the reproductive stage‥‥‥‥‥‥450kg/10a. The above figures show that ground water irrigation by the gravity flow and by the standing water method during all the growth stages resulted in an 18 percent and a 21 percent decrease in the yield of brown rice, respectively, when compared with surface water irrigation. Also ground water irrigation by gravity flow and by standing water resulted in respective decreases in yield of 16 percent and 19 percent, compared with the surface irrigation method. 4. Results obtained from the experiments on the improvement of ground water irrigation efficiency to paddy rice are as follows; (1) When the standing water irrigation with surface water is practised, the daily average water temperature in a paddy field is 25.2$^{\circ}C$, but, when the gravity flow method is practised with the same irrigation water, the daily average water temperature is 24.5$^{\circ}C$. This means that the former is 0.7$^{\circ}C$ higher than the latter. On the other hand, when ground water is used, the daily water temperatures in a paddy field are respectively 21.$0^{\circ}C$ and 19.3$^{\circ}C$ by practising standing water and the gravity flow method. It can be seen that the former is approximately 1.$0^{\circ}C$ higher than the latter. (2) When the non-water-logged cultivation is practised, the yield of brown rice is 516.3kg/10a, while the yield of brown rice from ground water irrigation plot throughout the whole irrigation period and surface water irrigation plot are 446.3kg/10a and 556.4kg/10a, respectivelely. This means that there is no significant difference in yields between surface water irrigation practice and non-water-logged cultivation, and also means that non-water-logged cultivation results in a 12.6 percent increase in yield compared with the yield from the ground water irrigation plot. (3) The black and white coloring on the inside surface of the water warming ponds has no substantial effect on the temperature of the water. The average daily water temperatures of the various water warming ponds, having different depths, are expressed as Y=aX+b, while the daily average water temperatures at various depths in a water warming pond are expressed as Y=a(b)x (where Y: the daily average water temperature, a,b: constants depending on the type of water warming pond, X; water depth). As the depth of water warning pond is increased, the diurnal difference of the highest and the lowest water temperature is decreased, and also, the time at which the highest water temperature occurs, is delayed. (4) The degree of warming by using a polyethylene tube, 100m in length and 10cm in diameter, is 4~9$^{\circ}C$. Heat exchange rate of a polyethylene tube is 1.5 times higher than that or a water warming channel. The following equation expresses the water warming mechanism of a polyethylene tube where distance from the tube inlet, time in day and several climatic factors are given: {{{{ theta omega (dwt)= { a}_{0 } (1-e- { x} over { PHI v })+ { 2} atop { SUM from { { n}=1} { { a}_{n } } over { SQRT { 1+ {( n omega PHI) }^{2 } } } } LEFT { sin(n omega t+ { b}_{n }+ { tan}^{-1 }n omega PHI )-e- { x} over { PHI v }sin(n omega LEFT ( t- { x} over {v } RIGHT ) + { b}_{n }+ { tan}^{-1 }n omega PHI ) RIGHT } +e- { x} over { PHI v } theta i}}}}{{{{ { theta }_{$\infty$ }(t)= { { alpha theta }_{a }+ { theta }_{ w'} +(S- { B}_{s } ) { U}_{w } } over { beta } , PHI = { { cpDU}_{ omega } } over {4 beta } }}}} where $\theta$$\omega$; discharged water temperature($^{\circ}C$) $\theta$a; air temperature ($^{\circ}C$) $\theta$$\omega$';ponded water temperature($^{\circ}C$) s ; net solar radiation(ly/min) t ; time(tadian) x; tube length(cm) D; diameter(cm) ao,an,bn;constants determined from $\theta$$\omega$(t) varitation. cp; heat capacity of water(cal/$^{\circ}C$ ㎥) U,Ua; overall heat transfer coefficient(cal/$^{\circ}C$ $\textrm{cm}^2$ min-1) $\omega$;1 velocity of water in a polyethylene tube(cm/min) Bs ; heat exchange rate between water and soil(ly/min)

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