RISS 학술연구정보서비스

검색
다국어 입력

http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.

변환된 중국어를 복사하여 사용하시면 됩니다.

예시)
  • 中文 을 입력하시려면 zhongwen을 입력하시고 space를누르시면됩니다.
  • 北京 을 입력하시려면 beijing을 입력하시고 space를 누르시면 됩니다.
닫기
    인기검색어 순위 펼치기

    RISS 인기검색어

      KCI등재

      대형 성층 호수의 수온과 내부파의 3차원 수치 모델링 = Three-dimensional Numerical Modeling of Water Temperature and Internal Waves in a Large Stratified Lake

      한글로보기

      https://www.riss.kr/link?id=A100766978

      • 0

        상세조회
      • 0

        다운로드
      서지정보 열기
      • 내보내기
      • 내책장담기
      • 공유하기
      • 오류접수

      부가정보

      다국어 초록 (Multilingual Abstract)

      The momentum and kinetic turbulent energy carried by the wind to a stratified lake lead to basin-scale motions, which provide a major driving force for vertical and horizontal mixing. A three-dimensional (3D) hydrodynamic model was applied to Lake Tahoe, located between California and Nevada, USA, to simulate the dominant basin-scale internal waves in the deep lake. The results demonstrated that the model well represents the temporal and vertical variations of water temperature that allows the internal waves to be energized correctly at the basin scale. Both the model and thermistor chain (TC) data identified the presence of Kelvin modes and Poincare mode internal waves. The lake was weakly stratified during the study period, and produced large amplitude (up to 60 m) of internal oscillations after several wind events and partial upwelling near the southwestern lake. The partial upwelling and followed coastal jets could be an important feature of basin-scale internal waves because they can cause re-suspension and horizontal transport of fine particles from nearshore to offshore. The internal wave dynamics can be also associated with the distributions of water quality variables such as dissolved oxygen and nutrients in the lake. Thus, the basin-scale internal waves and horizontal circulation processes need to be accurately modeled for the correct simulation of the dissolved and particulate contaminants, and biogeochemical processes in the lake.
      번역하기

      The momentum and kinetic turbulent energy carried by the wind to a stratified lake lead to basin-scale motions, which provide a major driving force for vertical and horizontal mixing. A three-dimensional (3D) hydrodynamic model was applied to Lake Tah...

      The momentum and kinetic turbulent energy carried by the wind to a stratified lake lead to basin-scale motions, which provide a major driving force for vertical and horizontal mixing. A three-dimensional (3D) hydrodynamic model was applied to Lake Tahoe, located between California and Nevada, USA, to simulate the dominant basin-scale internal waves in the deep lake. The results demonstrated that the model well represents the temporal and vertical variations of water temperature that allows the internal waves to be energized correctly at the basin scale. Both the model and thermistor chain (TC) data identified the presence of Kelvin modes and Poincare mode internal waves. The lake was weakly stratified during the study period, and produced large amplitude (up to 60 m) of internal oscillations after several wind events and partial upwelling near the southwestern lake. The partial upwelling and followed coastal jets could be an important feature of basin-scale internal waves because they can cause re-suspension and horizontal transport of fine particles from nearshore to offshore. The internal wave dynamics can be also associated with the distributions of water quality variables such as dissolved oxygen and nutrients in the lake. Thus, the basin-scale internal waves and horizontal circulation processes need to be accurately modeled for the correct simulation of the dissolved and particulate contaminants, and biogeochemical processes in the lake.

      더보기

      참고문헌 (Reference)

      1 정세웅, "입자크기 분포를 고려한 부력침강 저수지 밀도류의 탁도 모델링" 한국물환경학회 24 (24): 365-377, 2008

      2 Horn, W., "Wind-induced Internal Seiches in Lake Zurich Observed and Modeled" 31 (31): 1232-1254, 1986

      3 Strub, P. T., "Wind-driven Transport in Stratified Closed Basins : Direct versus Residual Circulations" 91 : 8497-8508, 1986

      4 Stevens, C., "Wind Forcing of Inernal Waves in a Long Narrow Stratified Lake" 24 : 41-50, 1996

      5 Heaps, N. S., "Wind Effects on the Water in a Narrow Two-layered Lake" 259 : 391-430, 1966

      6 Swift, J., "Water Clarity Modeling in Lake Tahoe : Linking Suspended Matter Characteristics to Secchi Depth" 68 : 1-15, 2006

      7 Lemckert, C., "Turbulent Benthic Boundary Layer Mixing Events in Fresh Water Lakes, Physical Processes in Lakes and Ocean, Coastal and Estuarine Studies, V. 54" American Geophysical Union 503-516, 1998

      8 Coats, R., "The Warming of Lake Tahoe" 76 : 121-148, 2006

      9 Leonard, B. P., "The Ultimate Conservative Difference Scheme Applied to Unsteady One-dimensional Advection" 88 : 17-74, 1991

      10 Sahoo, G. B., "The Response of Lake Tahoe to Climate Change" 116 : 71-95, 2013

      1 정세웅, "입자크기 분포를 고려한 부력침강 저수지 밀도류의 탁도 모델링" 한국물환경학회 24 (24): 365-377, 2008

      2 Horn, W., "Wind-induced Internal Seiches in Lake Zurich Observed and Modeled" 31 (31): 1232-1254, 1986

      3 Strub, P. T., "Wind-driven Transport in Stratified Closed Basins : Direct versus Residual Circulations" 91 : 8497-8508, 1986

      4 Stevens, C., "Wind Forcing of Inernal Waves in a Long Narrow Stratified Lake" 24 : 41-50, 1996

      5 Heaps, N. S., "Wind Effects on the Water in a Narrow Two-layered Lake" 259 : 391-430, 1966

      6 Swift, J., "Water Clarity Modeling in Lake Tahoe : Linking Suspended Matter Characteristics to Secchi Depth" 68 : 1-15, 2006

      7 Lemckert, C., "Turbulent Benthic Boundary Layer Mixing Events in Fresh Water Lakes, Physical Processes in Lakes and Ocean, Coastal and Estuarine Studies, V. 54" American Geophysical Union 503-516, 1998

      8 Coats, R., "The Warming of Lake Tahoe" 76 : 121-148, 2006

      9 Leonard, B. P., "The Ultimate Conservative Difference Scheme Applied to Unsteady One-dimensional Advection" 88 : 17-74, 1991

      10 Sahoo, G. B., "The Response of Lake Tahoe to Climate Change" 116 : 71-95, 2013

      11 Nishri, A., "The Physical Regime and the Respective Biogeochemical Processes in the Lower Water Mass of Lake Kinneret" 45 : 972-981, 2000

      12 Munnich, M., "The Influence of Bottom Topography on Internal Seiches in Stratified Media" 23 : 257-266, 1996

      13 Spigel, R. H., "The Classification of Mixed-layer Dynamics in Lakes of Small to Medium Size" 10 : 1104-1121, 1980

      14 Strub, P. T., "Temperature and Transport Patterns in Lake Tahoe : Satellite Imagery, Field Data and a Dynamical Model" 22 : 112-118, 1984

      15 Lemmin, U., "Summertime Winds and Direct Cyclonic Circulation : Observations from Lake Geneva" 14 : 1207-1220, 1996

      16 Casulli, V., "Semi-implicit Finite Difference Methods for Three Dimensional Shallow Water Flow" 15 : 629-648, 1992

      17 Bernhardt, J., "Seasonal Pattern of Rotation-affected Internal Seiches in a Small Temperate Lake" 58 (58): 1344-1360, 2013

      18 Antenucci, J. P., "Seasonal Evolution of the Basin-scale Internal Wave Field in a Large Stratified Lake" 45 (45): 1621-1638, 2000

      19 Nakayama, K., "Residual Circulation due to Internal Waves Shoaling on a Slope" 55 (55): 1009-1023, 2010

      20 Schwab, D. J., "Propagation of Kelvin Waves along Irregular Coastlines in Finite-difference Methods" 22 (22): 239-245, 1998

      21 Imberger, J., "Physical Limnology" 27 : 303-475, 1990

      22 Jassby, A. D., "Origins and Scale Dependence of Temporal Variability in the Transparency of Lake Tahoe California-Nevada" 44 : 282-294, 1999

      23 Idso, S. B., "On the Concept of Lake Stability" 18 : 681-683, 1973

      24 Laval, B., "Modeling Circulation in Lakes : Spatial and Temporal Variations" 48 : 983-994, 2003

      25 Hodges, B. R., "Modeling Basin-scale Motions in a Stratified Lake" 45 (45): 1603-1620, 2000

      26 Monismith, S. G., "Modal Response of Reservoirs to Wind Stress" 113 (113): 1290-1306, 1987

      27 Abbott, M. R., "Mixing and the Dynamics of the Deep Chlorophyll Maximum in Lake Tahoe" 29 (29): 862-878, 1984

      28 Hutter, K., "Linear Gravity Waves, Kelvin Waves and Poincare Waves, Theoretical Modelling and Observations, in Hydrodynamics of Lakes" Springer-Verlag 39-80, 1984

      29 Roberts, D. M., "Lake Tahoe Total Maximum Daily Load" California Regional Water Quality Control Board 2007

      30 Mortimer, C. H., "Lake Hydrodynamics, Mitteilungen Internationale Vereinigung f?r" 20 : 124-197, 1974

      31 Garret, C., "Internal Waves in the Ocean" 11 : 339-368, 1979

      32 Csanady, G. T., "Hydrodynamics of Large Lakes" 7 : 357-386, 1975

      33 Martin, J. L., "Hydrodynamics and Transport for Water Quality Modeling" CRC Press, Inc 1999

      34 Shimizu, K., "Horizontal Structure and Excitation of Primary Motions in a Strongly Stratified Lake" 52 (52): 2641-2655, 2007

      35 Hodges, B. R., "Estuary, Lake and Coastal Ocean Model: ELCOM, Users Guide, Centre for Water Research" University of Western Australia technical Publication 2006

      36 Antenucci, J. P., "Energetics of Long Internal Gravity Waves in Large Lakes" 46 (46): 1760-1773, 2001

      37 정세웅, "ELCOM-CAEDYM을 이용한 용담호 3차원 수리-수질 연동 모델링" 한국물환경학회 27 (27): 413-424, 2011

      38 Steissberg, T. E., "Characterizing Partial Upwellings and Surface Circulation at Lake Tahoe, Californai-Nevada, USA with Thermal Infrared Images" 99 : 2-15, 2005

      39 Eckert, W., "Biogeochemical Evolution in Response to Physical Forcing in the Water Column of a Warm Monomictic Lake" Centre for Water Research manuscript 2000

      40 Gloor, M., "Benthic Boundary Mixing and Resuspension Induced by Internal Seiches" 284 : 59-68, 1994

      41 Fricker, P. D., "Bathymetry, Stratification, and Internal Seiche Structure" 105 (105): 237-251, 2000

      42 Rueda, F. J., "Basin-scale Internal Wave Dynamics during a Winter Cooling Period in a Large Lake" 108 (108): 1-16, 2003

      43 Schladow, S. G., "An Extraordinary Upwelling Event in a Deep Thermally Stratified Lake" 31 : L15504-, 2004

      44 정세웅, "3차원 ELCOM 모형을 이용한 대청호 수온성층 모의" 한국물환경학회 25 (25): 922-934, 2009

      더보기

      동일학술지(권/호) 다른 논문

      동일학술지 더보기

      더보기

      분석정보

      View

      상세정보조회

      0

      Usage

      원문다운로드

      0

      대출신청

      0

      복사신청

      0

      EDDS신청

      0

      동일 주제 내 활용도 TOP

      더보기

      주제

      연도별 연구동향

      연도별 활용동향

      연관논문

      연구자 네트워크맵

      공동연구자 (7)

      유사연구자 (20) 활용도상위20명

      인용정보 인용지수 설명보기

      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2027 평가예정 재인증평가 신청대상 (재인증)
      2021-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2018-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2015-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2012-01-01 학술지명변경 한글명 : 수질보전 한국물환경학회지 -> 한국물환경학회지
      외국어명 : 미등록 -> Journal of Korean Society on Water Environment
      KCI등재
      2011-12-27 학회명변경 영문명 : Korean Society on Water Quality -> Korean Society on Water Environment KCI등재
      2011-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-07-22 학회명변경 영문명 : Journal Of Korean Society On Water Qulity -> Korean Society on Water Quality KCI등재
      2009-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2004-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2003-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2001-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
      더보기

      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.51 0.51 0.46
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.43 0.39 0.613 0.15
      더보기

      이 자료와 함께 이용한 RISS 자료

      나만을 위한 추천자료

      해외이동버튼