LI Yuanlong, WANG Fan. Thermohaline intrusions in the thermocline of the western tropical Pacific Ocean[J]. Acta Oceanologica Sinica, 2013, 32(7): 47-56. doi: 10.1007/s13131-013-0331-3
Citation: LI Yuanlong, WANG Fan. Thermohaline intrusions in the thermocline of the western tropical Pacific Ocean[J]. Acta Oceanologica Sinica, 2013, 32(7): 47-56. doi: 10.1007/s13131-013-0331-3

Thermohaline intrusions in the thermocline of the western tropical Pacific Ocean

doi: 10.1007/s13131-013-0331-3
  • Received Date: 2011-12-15
  • Rev Recd Date: 2012-10-16
  • The existing high-resolution hydrographic data in the western tropical Pacific Ocean are used to explore the spatial distribution and primary characteristics of thermohaline intrusions in the thermocline. Statistics show that the vertical scales of intrusions are 20-40 min the upper thermocline (22.0-26.0σ0) and 40-80 m in the lower thermocline (26.0-27.2σ0). In the upper thermocline, themost intensive intrusions exist at the equatorial front (EF) where north/south Pacific water masses converge, and the westward spreading of the north Pacific tropical water (NPTW) in the Philippines Sea also produces patches of intrusions surrounding its high-salinity tongue. In the lower thermocline, intrusions are also strong at the tropical front (TF) which is the boundary between the north Pacific subtropical/tropical waters. At the bottom of the thermocline (at about 27.0σ0), intrusionsmainly exist near the western boundary, which are produced by intermediate water convergence through the advection of subthermocline western boundary flows. Most strikingly a “C”-shape distribution of intrusions at around 26.4σ0 is revealed, covering the vicinity of the EF, the TF, and theMindanao Current (MC), i.e., the western boundary pathway of the north Pacific subtropical cell (STC). Synoptic section analysis reveals that intrusions aremore prominent on the warm/salty flank of the fronts, implying more cross-front tongues of cold/fresh water. Among the intrusions, those at the EF are of best lateral coherence which implies a unique drivingmechanism involving near-inertial velocity perturbations near the equator.
  • loading
  • Beal L M. 2007. Is interleaving in the Agulhas Current driven by nearinertial velocity perturbation? Journal of Physical Oceanography, 37: 141-154
    Bingham F M, Lukas R. 1994. The southward intrusion of North Pacific Intermediate Water along the Mindanao coast. Journal of Physical Oceanography, 24: 141-154
    Boyer T P, Antonov J I, Baranova O K, et al. 2009. World Ocean Database 2009. In: S. Levitus, ed. NOAA Atlas NESDIS 66. US Gov Printing Office, Wash., DC. DVDs 216
    Carmack E C, Aagaard K, Swift J H, et al. 1997. Changes in temperature and tracer distributions within the Arctic Ocean: results from the 1994 Arctic Ocean section. Deep-Sea Research: Part II, 44: 1487-1502
    Chu P C, Hsieh C P. 2007. Change of multifractal thermal characteristics in the western Philippine Sea upper layer during internal wave-soliton propagation. Journal of Oceanography, 63: 927-939
    Edwards N, Richards K J. 1999. Linear double-diffisive-inertial instability at the equator. Journal of Fluid Mechanics, 395: 295-319
    Ferrari R, Polzin K L. 2005. Finescale structure of the T-S relation in the eastern North Atlantic. Journal of Physical Oceanography, 35: 1437-1454
    Ffield A, Robertson R. 2008. Temperature finestructure in the Indonesian seas, Journal of Geophysical Research, 113: C09009, doi: 09010.01029/02006JC003864
    Fine R A, Lukas R, Bingham F M, et al. 1994. The western equatorial Pacific: a water mass crossroads. Journal of Geophysical Research, 99: 25063-25080
    Firing E, Kashino Y, Hacker P. 2005. Energetic subthermocline currents observed east of Mindanao. Deep-Sea Research: Part II, 52: 605-613
    Gao Shan, Qu Tangdong, Hu Dunxin. 2012. Origin and pathway of the Luzon Undercurrent identified by a simulated adjoint tracer. Journal of Geophysical Research, 117: C05011, doi: 10.1029/2011JC007748
    Georgi D T. 1981. On the relationship between the large-scale property variations and fine structure in the Circumpolar Deep Water. Journal of Geophysical Research, 86(C7): 6556-6566
    Gordon A L. 1986. Interocean exchange of thermocline water. Journal of Geophysical Research, 91: 5037-5046
    Gu Daifang, Philander S G H. 1997. Interdecadal climate fluctuations that depend on exchange between the tropics and extratropics. Science, 275: 805-807
    Horne E. 1978. Interleaving at the subsurface front in the slope water off Nova Scotia. Journal of Geophysical Research, 83(C7): 3659- 3671
    Hu Dunxin, Cui Maochang, Qu Tangdong, et al. 1989. A subsurface northward current off Mindanao identified by dynamic calculation. Oceanography of Asian Marginal Seas, Elsevier Oceanography, Series 54: 359-365
    Jackett D R, McDougall T J. 1985. An oceanographic variable for charactisation of intrusions and water masses. Deep-Sea Research: Part I, 32: 1195-1207
    Lee J H, Richards K. 2004. The three-dimensional structure of the interleaving layers in the western equatorial Pacific Ocean. Geophysical Research Letters, 31: L07301, doi: 10.1029/2004GRL019441
    Li Yuanlong, Wang Fan. 2012. Spreading and salinity change of North Pacific tropical water in the Philippine Sea. Journal of Oceanography, 68: 439-452
    Li Yuanlong, Wang Fan, Sun Yan. 2012a. Low-frequency spiciness variations in the tropical Pacific observed during 2003-2011. Geophysical Research Letters, 39: L23601, doi: 10.1029/2012GL053971
    Li Yuanlong, Wang Fan, Zhai Fangguo. 2012b. Interannual variations of subsurface spiciness in the Philippine Sea: observations and mechanism. Journal of Physical Oceanography, 42: 1022-1038
    Lindstrom T, Lukas R, Fine R, et al. 1989. The western equatorial Pacific Ocean circulation study. Nature, 330: 533-537
    Liu Zhiyu, Thorpe S A, Smyth W D. 2012. Instability and hydraulics of turbulent stratified shear flows. Journal of Fluid Mechanics, 695: 235-256
    Lu Peng, McCreary J P. 1995. Influence of the ITCZ on the fow of the thermocline water from the subtropical to the equatorial Pacifc Ocean. Journal of Physical Oceanography, 25: 3076-3088
    Lukas R, Yamagata T, McCreary J P. 1996. Pacific low-latitude western boundary currents and the Indonesian Throughflow. Journal of Geophysical Research, 101(C5): 12209-12216
    McCreary J P, Lu P. 1994. On the interaction between the subtropical and the equatorial oceans: the subtropical cell. Journal of Physical Oceanography, 24: 466-497
    McPhaden M. 1985. Fine-structure variability observed in CTD measurements from the central equatorial Pacific. Journal of Geophysical Research, 90(C6): 11726-11740
    Qiu Bo, Lukas R. 1996. Seasonal and interannual variability of the North Equatorial Current, the Mindanao Current, and the Kuroshio along the Pacific western boundary. Journal of Geophysical Research, 101(C5): 12315-12330
    Qu Tangdong, Chiang T L, Wu C R, et al. 2012. Mindanao Current/Undercurrent in an eddy-resolving GCM. Journal of Geophysical Research, 117: C06026, doi: 10.1029/2011JC007838
    Qu Tangdong, Gan Jianping, Ishida A, et al. 2008. Semiannual variation in thewestern tropical PacificOcean. Geophysical Research Letters, 35: L16602, doi: 10.1029/2008GL035058
    Qu Tangdong, Kagimoto T, Yamagata T. 1997. A subsurface countercurrent along the east coast of Luzon. Deep-Sea Research: Part I, 44: 413-423
    Qu Tangdong, Lindstrom E J. 2004. Northward intrusion of Antarctic Intermediate Water in the western Pacific. Journal of Physical Oceanography, 34: 2104-2118
    Richards K, Banks H. 2002. Characteristics of interleaving in the western equatorial Pacific. Journal of Geophysical Research, 107(C12): 3231, doi: 10.1029/2001JC000971
    Richards K J, EdwardsNR. 2003. Lateralmixing in the equatorial Pacific: the importance of inertial instability. Geophysical Research Letters, 30(17): 1888, doi: 10.1029/2003GL017768
    Richards K, Pollard R T. 1991. Structure of the upper ocean in the western equatorial Pacific. Nature, 350: 48-50
    Ruddick B R, Richards K. 2003. Oceanic thermohaline intrusions: observations. Progress in Oceanography, 56: 499-527
    Ruddick B R, Turner J S. 1979. The vertical length scale of doublediffusive intrusions. Deep-Sea Research, 26A: 903-913
    Rudels B, Muench R D, Gunn J, et al. 2000. Evolution of the Arctic Ocean boundary current north of the Siberian shelves. Journal of Marine System, 25: 77-99
    Schneider N, Miller A J, Alexander M A, et al. 1999. Subduction of decadal North Pacific temperature anomalies: observations and dynamics. Journal of Physical Oceanography, 29: 1056-1070.
    Shcherbina A Y, Gregg M C, Alford M H, et al. 2009. Characterizing thermohaline intrusions in the north Pacific subtropical front zone. Journal of Physical Oceanography, 39: 2735-2756
    Shcherbina A Y,GreggMC, AlfordMH, et al. 2010. Three-dimensional structure and temporal evolution of submesoscale thermohaline intrusions in the north Pacific subtropical frontal zone. Journal of Physical Oceanography, 40: 1669-1689
    Stommel H, Federov K N. 1967. Small-scale structure in temperature and salinity near Timor andMindanao. Tellus, 19: 306-325
    Sun Fengying, Kim V S, Huang Boyin, et al. 2004. Water exchange between the subpolar and subtropical North Pacific in an OGCM. Science in China: Series D. Earth Sciences, 47: 37-48
    Talley J D, Yun J Y. 2001. The role of cabbeling and double diffusion in setting the density of the North Pacific Intermediate Water salinityminimum. Journal of Physical Oceanography, 31: 1538- 1549
    Toole J M, Georgi D T. 1981. On the dynamics and effects of double diffusively driven intrusions. Progress in Oceanography, 10: 123-145
    Toole J M, Millard R, Wang Z, et al. 1990. Observations of the Pacific North Equatorial Current bifurcation at the Philippine coast. Journal of Physical Oceanography, 20: 307-318
    Wang Dongxiao,Wang Jia, Wu Lixin, et al. 2003a. Relative importance of wind and buoyancy forcing for interdecadal regime shifts in the Pacific Ocean. Science in China: Series D. Earth Sciences, 46: 417-427
    Wang Dongxiao, Wang Jia, Wu Lixin, et al. 2003b. Regime shifts in the North Pacific simulated by a COADS-driven isopycnal model. Advances in Atmospheric Sciences, 20: 743-754
    Wang Fan, Li Yuanlong. 2012. Thermohaline finestructure observed near the northern Philippine coast. Chinese Journal of Oceanology and Limnology, 30: 908-919
    Zhao Jun, Li Yuanlong, Wang Fan, et al. 2012. Spatial-temporal patterns and driving mechanisms of semiannual variations in the Philippine Sea. Deep-Sea Research: Part I, 68: 105-115
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1144) PDF downloads(1712) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return