ZHANG Run, CHEN Min, MA Qiang, CAO Jianping, QIU Yusheng. Insights into the coupling of upper ocean-benthic carbon dynamics in the western Arctic Ocean from an isotopic (13C, 234Th) perspective[J]. Acta Oceanologica Sinica, 2015, 34(6): 26-33. doi: 10.1007/s13131-015-0684-x
Citation: ZHANG Run, CHEN Min, MA Qiang, CAO Jianping, QIU Yusheng. Insights into the coupling of upper ocean-benthic carbon dynamics in the western Arctic Ocean from an isotopic (13C, 234Th) perspective[J]. Acta Oceanologica Sinica, 2015, 34(6): 26-33. doi: 10.1007/s13131-015-0684-x

Insights into the coupling of upper ocean-benthic carbon dynamics in the western Arctic Ocean from an isotopic (13C, 234Th) perspective

doi: 10.1007/s13131-015-0684-x
  • Received Date: 2014-05-12
  • Rev Recd Date: 2014-10-28
  • The coupling of upper ocean-benthic carbon dynamics in the ice-free western Arctic Ocean (the Chukchi Sea and the Canada Basin) was evaluated during the late July-early September 2003 using natural stable (13C) and radioactive (238U-234Th) isotope tracers. POC export flux estimated from 234Th/238U disequilibria and dissolved CO2 concentration ([CO2(aq)]) pointed out that the strengthened biological pump in the Chukchi Shelf have significantly lowered [CO2(aq)] and altered the magnitude of isotopic (12C/13C) fractionation during carbon fixation in the surface ocean. Further, δ13C signatures of surface sediments (δ13Csed) are positively correlated to those of weighted δ13CPOC in upper ocean (δ13Csed =13.64+1.56×δ13CPOC, r2=0.73, p<0.01), suggesting that the POC isotopic signals from upper ocean have been recorded in the sediments, partly due to the rapid export of particles as evidenced by low residence times of the highly particle-reactive 234Th from the upper water column. It is suggested that there probably exists an upper ocean-benthic coupling of carbon dynamics, which likely assures the sedimentary δ13C record an indicator of paleo-CO2 in the western Arctic Ocean.
  • loading
  • Arrigo K R, Pabi S, Van Dijken G L, et al. 2010. Air-sea flux of CO2 in the Arctic Ocean, 1998-2003. Journal of Geophysical Research, 115(G4): G04024
    Ashjian C J, Gallager S M, Plourde S. 2005. Transport of plankton and particles between the Chukchi and Beaufort Seas during sum-mer 2002, described using a Video Plankton Recorder. Deep-Sea Research Part II: Topical Studies in Oceanography, 52(24-26): 3259-3280
    Bates N R, Moran S B, Hansell D A, et al. 2006. An increasing CO2 sink in the Arctic Ocean due to sea-ice loss. Geophysical Research Letters, 33(23): L23609, doi: 10.1029/2006GL027028
    Belicka L L, Macdonald R W, Harvey H R. 2002. Sources and trans-port of organic carbon to shelf, slope, and basin surface sedi-ments of the Arctic Ocean. Deep-Sea Research Part I: Oceano-graphic Research Papers, 49(8): 1463-1483
    Belicka L L, Macdonald R W, Yunker M B, et al. 2004. The role of de-positional regime on carbon transport and preservation in Arc-tic Ocean sediments. Marine Chemistry, 86(1-2): 65-88
    Bentaleb I, Fontugne M, Descolas-Gros C, et al. 1996. Organic carbon isotopic composition of phytoplankton and sea-surface pCO2 reconstructions in the Southern Indian Ocean during the last 50,000 yr. Organic Geochemistry, 24(4): 399-410
    Bentaleb I, Fontugne M, Descolas-Gros C, et al. 1998. Carbon isotop-ic fractionation by plankton in the Southern Indian Ocean: rela-tionship between δ13C of particulate organic carbon and dis-solved carbon dioxide. Journal of Marine Systems, 17(1-4): 39-58
    Boetius A, Albrecht S, Bakker K, et al. 2013. Export of algal biomass from the melting Arctic sea ice. Science, 339(6126): 1430-1432 Brown K A, McLaughlin F, Tortell P D, et al. 2014. Determination of particulate organic carbon sources to the surface mixed layer of the Canada Basin, Arctic Ocean. Journal of Geophysical Re-search: Oceans, 119(2): 1084-1102
    Buesseler K O, Bacon M P, Cochran J K, et al. 1992. Carbon and nitro-gen export during the JGOFS North Atlantic Bloom experiment estimated from 234Th: 238U disequilibria. Deep-Sea Research Part A. Oceanographic Research Papers, 39(7-8): 1115-1137
    Chen J H, Edwards R L, Wasserburg G L. 1986. 238U,234U and 232Th in seawater. Earth and Planetary Science Letters, 80(3-4): 241-251
    Chen Liqi, Gao Zhongyong, Wang Weiqiang, et al. 2003a. Distribu-tion pattern of pCO2 in the Bering Sea basin and its influence to the Arctic carbon sink. Science in China (D) (in Chinese), 33: 781-790
    Chen Liqi, Gao Zhongyong. 2007. Spatial variability in the partial pressures of CO2 in the northern Bering and Chukchi seas. Deep-Sea Research Part II: Topical Studies in Oceanography, 54(23-26): 2619-2629
    Chen Min, Huang Yipu, Cai Pinghe, et al. 2003b. Particulate organic carbon export fluxes in the Canada Basin and Bering Sea as de-rived from 234Th/238U disequilibria. Arctic, 56(1): 32-44
    Chen Min, Huang Yipu, Qiu Yusheng. 1997. Enrichment, purification and determination of 238U and 234Th in natural seawater. Journ-al of Isotopes (in Chinese), 10: 199-199
    Chen Zhihua, Shi Xuefa, Cai Deling, et al. 2006. Organic carbon and nitrogen isotopes in surface sediments from the western Arctic Ocean and their implications for sedimentary environments. Haiyang Xuebao (in Chinese), 25(5): 39-54
    Emerson S, Quay P, Karl D, et al. 1997. Experimental determination of the organic carbon flux from open-ocean surface waters. Nature, 389(6654): 951-954
    Fischer G, Müller P J, Wefer G. 1998. Latitudinal δ13Corg variations in sinking matter and sediments from the South Atlantic: effects of anthropogenic CO2 and implications for paleo-PCO2 recon-structions. Journal of Marine Systems, 17(1-4): 471-495
    Francois R, Altabet M A, Goericke R, et al. 1993. Changes in the δ13C of surface water particulate organic matter across the subtrop-ical convergence in the SW Indian Ocean. Global Biogeochem-ical Cycles, 7(3): 627-644
    Guo Laodong, Tanaka T, Wang Deli, et al. 2004. Distributions, speci-ation and stable isotope composition of organic matter in the southeastern Bering Sea. Marine Chemistry, 91(1-4): 211-226
    Hofmann M, Wolf-Gladrow D A, Takahashi T, et al. 2000. Stable car-bon isotope distribution of particulate organic matter in the ocean: a model study. Marine Chemistry, 72(2-4): 131-150
    Hollander D J, McKenzie J A. 1991. CO2 control on carbon-isotope fractionation during aqueous photosynthesis: A paleo-pCO2 barometer. Geology, 19(9): 929-932
    Lapoussière A, Michel C, Starr M, et al. 2011. Role of free-living and particle-attached bacteria in the recycling and export of organ-ic material in the Hudson Bay system. Journal of Marine Sys-tems, 88(3): 434-445
    Lee S H, Joo H M, Liu Zhilin, et al. 2012. Phytoplankton productivity in newly opened waters of the Western Arctic Ocean. Deep-Sea Research Part II: Topical Studies in Oceanography, 81-84: 18-27
    Lehmann M F, Bernasconi S M, Barbieri A, et al. 2002. Preservation of organic matter and alteration of its carbon and nitrogen iso-tope composition during simulated and in situ early sediment-ary diagenesis. Geochimica et Cosmochimica Acta, 66(20): 3573-3584
    Liu Zilin, Chen Jianfang, Liu Yanlan, et al. 2011. The size-fraction-ated chlorophyll a concentration and primary productivity in the Bering Sea in the summer of 2008. Haiyang Xuebao (in Chinese), 33(3): 148-157
    Liu Zilin, Chen Jianfang, Zhang Tao, et al. 2007. The size-fractionated chlorophyll a concentration and primary productivity in the Chukchi Sea and its northern Chukchi Plateau. Acta Ecologica Sinica (in Chinese), 27(12): 4953-4962
    Ma Qiang, Chen Min, Qiu Yusheng, et al. 2005. Regiona卬洠楥瑳桴?卭?????敯湦爠楐捏桃猠?卸????删桦潬?呸???ひど???匠瑦慲扯汭攠???慲湩摵?中′椳猴漠瑩潮瀠楴捨?挠潷浥?灴潥獲楮琠楁潲湣?潴晩?猠楏湣步楡湮朮?灁慣牴瑡椠捏汣敥獡?慯湬摯?穩潣潡瀠汓慩湮歩瑣潡測?漲瘴攨父?琺栠改?猭漱田琸格?敲愾獍瑯敲牡湮??攠牂椬渠杋?卬敬慹?獒栠敐氬映???敳整灲?卭攠態?删敥獴攠慡牬挮栠′倰愰爵琮?????呯潮灡楬挠慣汨?卮瑧略摳椠敩獮?楐湏?传捥數慰湯潲杴爠慦灬桵祸???????????に????こ?ち?扡牮?吠物業浰扬汩散?却?????慦獯歲愠牷慡湴?????ぬふ???呢桥敮?牨潩汣攠?潯晵?獬畩獮灧攠湩摮攠摁?灣慴物瑣椠捳畨汥慬瑶敥?洮愠瑄瑥敥牰?楓湥??獒略扳??????獐畡扲?吠桉?猺挠慔癯数湩杣楡湬朠?慴湵摤??獳甠扩?㈠????獮畯执?呡桰?摹攬爠椵瘲攨搲?攭砲瀶漩爺琠″昴氲男砭攳猴‵漱昼?偲伾??楲湡?琠桓攠??愠湓慭摩慴??慊猠楎渮?漲昰‰琰栮攠??牵换琾椲挳?似振敳慵湢???愠牡楳渠敡??桲敡浣?楲猠瑯牦礠????????????????扡牲?噩楣汬汥椠湥獸歰楯???????畨湥戠慂牥?創?????畓捥捡椮愠牃潯湮整????????こと???愠牒扥潳湥?????愠爲戰漨渲??㈠?爵愳琭椱漶猷?潢晲 ̄獎敡摩楤浵攠湁琠慓爬礠?潣牡杬慡湮椠捒?浓愬琠瑆敥牤?晲爠潈洠?琬栠敥?删潡獬献?匱改愹???湓瑴?慢牬捥琠楯捲慧??慩?爠散捡潲牢摯?漠晩?灯桴祯瑰潥灳氠慩湮欠瑳潥湤?扭汥潮潴浳?摯祦渠慴浨楥挠獮???潨甠牂湥慲汩?潧昭??敵潴灨栠祃獨極捫慣汨?删敳獥敡慳爬挠桁???に?????????ㄠ?????????扥牬?圮攠楃獯獮?剩???????????慦爠扒潥湳?摡楲潣硨椬搠攱″椨渵?眶愩琺攠父?愹渭搶?猱攼慢睲愾瑏敷牥??琠桓攠?猬漠求畵扥楳汳楥瑬祥?漠晋?慏?渠潓湩?楳搠敋愠汗?杗愮猠?‰?愱爮椠湒敥??桶敡浬極獡瑴物祮?????????ば??社???扳牵?夾慕渭杳?公楩湮杩汴楹愠湲来???楩湯??敨湩杰洠楩湮朠???楷湡??慲漺??敭瑰?慩汣???はの???卯灲攠捴楨敥猠?捳潵浰瀾漲猳?椼琯楳潵湰 ̄慕渭搼?摵楢猾琲爳椴戼甯瑳極潢渾?潨映?灩桳祥瑱潵灩汬慩湢歲瑩潵湭?業湥??桯畤欮挠桍楡?卩敮慥?慃湨摥??敳牴楲湹本?匱攲愷???栴椩渺攠猳攱??漹甼牢湲愾汐?潲景?偩潣汨愠牄?剋攬猠敒慩牣捨桴??椭湍??桧楥渠敊猠敁??′???金????????㈠??扡爠?婣桥愠湩杮?剴畨湥???档整湩??椠湁???畡潬??慥潶摩潥湷朠??攠瑍?慲汩??㈠こ????噣慥爬椠愱琨椱漩渺猠?椱渷?琴栴攱?楢獲漾瑐潯灰楰挠?挠潎洬瀠潔獲極瑬楬漠湔?漠晋?灮慩牧琠楆挬甠汥慴琠敡?漮爠朱愹渹椹挮?捃慯牮扴潲湯?慳渠摯?琠桴敨楥爠?牡敲?汯慮琠楩潳湯?睯楰琭桩?挠慣牯扭潰湯?摩祴湩慯浮椠捯獦?楓湯?瑴桨敥?睮攠獏瑣敥牡湮??牨捹瑴楯捰?佡据敫慴湯???敇敬灯?卡敬愠?剩敯獧敥慯牣捨桥?偩慣牡瑬?????呥潳瀬椠挱愳氨?匩琺甠搸椲攷猭?椴渳?佢捲放慒湡潵朠片愠灈栬礠???????????????扬牦?婇桬慡湤杲?剷甠湄??娱根改渷朮??楏渼晳慵湢朾???桳敵湢 ̄?楡湱??敥瑰?慮汤?????????湯?楹獮潴瑨潥灴楩捣?瀼敳牵?猾瀱攳挼琯楳癵数 ̄潃渠?瑲桡散?捩潯牮牡整汩慯瑮椠潩湮?潴晨?猠畯牣晥慡据攺?潡挠敭慯湤?捬愠牶扥潲湳?摳礠湯慢洭楳捥獲?慡湴摩?獮敳愮?楇捬敯?浡敬氠瑂楩湯杧?楯湣?健牭祩摣穡??慃祹???湳琬愠爱挱琨椲挩愺?′搶男爭椲渷朸?慢畲猾瑒牵慴汧?獲畳洠浶敡牮???敲攠灌?卥敦慦?前攬猠敃慡物挠桐?偮慧牨瑥????体捴敩慭湡潣朠牉愬瀠桥楴挠?剬攮猠攲愰爱挱栮?值慳灵敢爾猲???????????in surface waters: distribution of particle export flux across the Antarctic Circumpolar Current and in the Weddell Sea during the GEOTRACES expedition ZERO and DRAKE. Deep-Sea Re-search Part II: Topical Studies in Oceanography, 58(25-26): 2749-2766
    Ruttenberg K C, Go.i M A. 1997. Phosphorus distribution, C:N:P ra-tios, and δ13Cin arctic, temperate, and tropical coastal sedi-ocments: tools for characterizing bulk sedimentary organic matter. Marine Geology, 139(1-4): 123-145
  • 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 (3009) PDF downloads(3461) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return