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Volume 45 Issue 3
Feb.  2023
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Article Contents
Xu Xin,Wang Xiang,Hu Huina, et al. Hourly variations of partial pressure of CO2 in surface sea water and its controlling mechanisms in the northeastern Beibu Gulf in spring and summer[J]. Haiyang Xuebao,2023, 45(3):14–26 doi: 10.12284/hyxb2023052
Citation: Xu Xin,Wang Xiang,Hu Huina, et al. Hourly variations of partial pressure of CO2 in surface sea water and its controlling mechanisms in the northeastern Beibu Gulf in spring and summer[J]. Haiyang Xuebao,2023, 45(3):14–26 doi: 10.12284/hyxb2023052

Hourly variations of partial pressure of CO2 in surface sea water and its controlling mechanisms in the northeastern Beibu Gulf in spring and summer

doi: 10.12284/hyxb2023052
  • Received Date: 2022-08-13
  • Rev Recd Date: 2022-10-25
  • Available Online: 2022-11-07
  • Publish Date: 2023-02-01
  • Diurnal observation is necessary for grasping the variability of carbonate system in coastal waters and sea-air CO2 exchange process and is helpful to reduce the uncertainty of assessments for carbon source/sink. Surface carbonate system and related parameters were obtained during twice 24 hours fixed sampling and observation conducted in April and August 2018 in the Yingluo Bay-Anpu Harbor, located in the northeastern Beibu Gulf. In this paper, we analyzed the hourly variations of partial pressure of CO2 in surface sea water (pCO2) and discussed the corresponding environment factors controlling pCO2 in both seasons. The pCO2 values ranged from 530−628 μatm in spring to 427−748 μatm in summer, with the average sea-air CO2 flux in spring and summer for (1.7±0.8) mmol/(m2·d) and (1.2±0.8) mmol/(m2·d), respectively. The study area acted as a weak CO2 source during both seasons. The hourly changes of pCO2 in spring were more significantly affected by temperature effects than in summer. During summertime, pCO2 had more sensibly response to tidal action, enhanced biological production and respiration with inflow of coastal freshwater such as rivers and submarine groundwater discharge. Water warming dominated the formation of high pCO2 in spring. The enhanced biological production during the physical mixing of saline and fresh water played a role in the drawdown of surface dissolved inorganic carbon (DIC) and the mangroves and salt marshes ecosystems along the bay had a certain contribution to the addition of DIC on the freshwater end-member in summer. The variations of the ratio of DIC concentration and total alkalinity (TA) in the water masses could imply the overall distribution pattern adjacent to the Yingluo Bay-Anpu Harbor that high values exists in the bay and lower values exists in offshore water.
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  • [1]
    Chen C T A, Borges A V. Reconciling opposing views on carbon cycling in the coastal ocean: continental shelves as sinks and near-shore ecosystems as sources of atmospheric CO2[J]. Deep-Sea Research Part II: Topical Studies in Oceanography, 2009, 56(8/10): 578−590.
    [2]
    Cai Weijun. Estuarine and coastal ocean carbon paradox: CO2 sinks or sites of terrestrial carbon incineration?[J]. Annual Review of Marine Science, 2011, 3: 123−145. doi: 10.1146/annurev-marine-120709-142723
    [3]
    Chen C T A, Zhai Weidong, Dai Minhan. Riverine input and air-sea CO2 exchanges near the Changjiang (Yangtze River) Estuary: status quo and implication on possible future changes in metabolic status[J]. Continental Shelf Research, 2008, 28(12): 1476−1482. doi: 10.1016/j.csr.2007.10.013
    [4]
    Zhai Weidong, Dai Minhan. On the seasonal variation of air-sea CO2 fluxes in the outer Changjiang (Yangtze River) Estuary, East China Sea[J]. Marine Chemistry, 2009, 117(1/4): 2−10.
    [5]
    Wang Bin, Chen Jianfang, Jin Haiyan, et al. Inorganic carbon parameters responding to summer hypoxia outside the Changjiang Estuary and the related implications[J]. Journal of Ocean University of China, 2013, 12(4): 568−576. doi: 10.1007/s11802-013-2239-0
    [6]
    Yu Peisong, Zhang Haisheng, Zheng Minhui, et al. The partial pressure of carbon dioxide and air-sea fluxes in the Changjiang River Estuary and adjacent Hangzhou Bay[J]. Acta Oceanologica Sinica, 2013, 32(6): 13−17. doi: 10.1007/s13131-013-0320-6
    [7]
    Wang Bin, Chen Jianfang, Jin Haiyan, et al. Diatom bloom-derived bottom water hypoxia off the Changjiang Estuary, with and without typhoon influence[J]. Limnology and Oceanography, 2017, 62(4): 1552−1569. doi: 10.1002/lno.10517
    [8]
    Zhai Weidong, Yan Xiuli, Qi Di. Biogeochemical generation of dissolved inorganic carbon and nitrogen in the North Branch of inner Changjiang Estuary in a dry season[J]. Estuarine, Coastal and Shelf Science, 2017, 197: 136−149. doi: 10.1016/j.ecss.2017.08.027
    [9]
    Dai Minhan, Zhai Weidong, Cai Weijun, et al. Effects of an estuarine plume-associated bloom on the carbonate system in the lower reaches of the Pearl River Estuary and the coastal zone of the northern South China Sea[J]. Continental Shelf Research, 2008, 28(12): 1416−1423. doi: 10.1016/j.csr.2007.04.018
    [10]
    Guo Xianghui, Cai Weijun, Zhai Weidong, et al. Seasonal variations in the inorganic carbon system in the Pearl River (Zhujiang) Estuary[J]. Continental Shelf Research, 2008, 28(12): 1424−1434. doi: 10.1016/j.csr.2007.07.011
    [11]
    Guo Xianghui, Dai Minhan, Zhai Weidong, et al. CO2 flux and seasonal variability in a large subtropical estuarine system, the Pearl River Estuary, China[J]. Journal of Geophysical Research: Biogeosciences, 2009, 114(G3): G03013.
    [12]
    Liu Zhiyuan, Zhang Longjun, Cai Weijun, et al. Removal of dissolved inorganic carbon in the Yellow River Estuary[J]. Limnology and Oceanography, 2014, 59(2): 413−426. doi: 10.4319/lo.2014.59.2.0413
    [13]
    Li Xuegang, Song Jinming, Niu Lifeng, et al. Role of the Jiaozhou Bay as a source/sink of CO2 over a seasonal cycle[J]. Scientia Marina, 2007, 71(3): 441−450. doi: 10.3989/scimar.2007.71n3441
    [14]
    Zhang Longjun, Xue Ming, Liu Qizhen. Distribution and seasonal variation in the partial pressure of CO2 during autumn and winter in Jiaozhou Bay, a region of high urbanization[J]. Marine Pollution Bulletin, 2012, 64(1): 56−65. doi: 10.1016/j.marpolbul.2011.10.023
    [15]
    龚信宝, 韩萍, 张龙军, 等. 胶州湾春季4月份表层海水pCO2分布及控制因素分析[J]. 中国海洋大学学报(自然科学版), 2015, 45(4): 95−102.

    Gong Xinbao, Han Ping, Zhang Longjun, et al. Distribution and controlling factors of sea surface partial pressure of CO2 in Jiaozhou Bay during April[J]. Periodical of Ocean University of China, 2015, 45(4): 95−102.
    [16]
    Li Yunxiao, Yang Xufeng, Han Ping, et al. Controlling mechanisms of surface partial pressure of CO2 in Jiaozhou Bay during summer and the influence of heavy rain[J]. Journal of Marine Systems, 2017, 173: 49−59. doi: 10.1016/j.jmarsys.2017.04.006
    [17]
    黄道建, 于锡军, 郭振仁, 等. 大亚湾表层水中溶解无机碳的时空分布[J]. 生态科学, 2013, 32(3): 331−337. doi: 10.3969/j.issn.1008-8873.2013.03.012

    Huang Daojian, Yu Xijun, Guo Zhenren, et al. Spatial-temporal distribution of dissolved inorganic carbon in surface waters of Daya Bay, China[J]. Ecological Science, 2013, 32(3): 331−337. doi: 10.3969/j.issn.1008-8873.2013.03.012
    [18]
    韩婷婷, 齐占会, 吴风霞, 等. 大亚湾不同海洋功能区表层海水无机碳体系的比较研究[J]. 热带海洋学报, 2016, 35(2): 57−65. doi: 10.11978/2015059

    Han Tingting, Qi Zhanhui, Wu Fengxia, et al. Comparative study of dissolved inorganic carbon systems of surface waters in various oceanic functional areas of Daya Bay[J]. Journal of Tropical Oceanography, 2016, 35(2): 57−65. doi: 10.11978/2015059
    [19]
    Dai Minhan, Lu Zhongming, Zhai Weidong, et al. Diurnal variations of surface seawater pCO2 in contrasting coastal environments[J]. Limnology and Oceanography, 2009, 54(3): 735−745. doi: 10.4319/lo.2009.54.3.0735
    [20]
    Ko Y H, Seok M W, Jeong J Y, et al. Monthly and seasonal variations in the surface carbonate system and air-sea CO2 flux of the Yellow Sea[J]. Marine Pollution Bulletin, 2022, 181: 113822. doi: 10.1016/j.marpolbul.2022.113822
    [21]
    Shaw P T, Chao S Y. Surface circulation in the South China Sea[J]. Deep-Sea Research Part I: Oceanographic Research Papers, 1994, 41(11/12): 1663−1683.
    [22]
    Sun Hongliang, Huang Weimin. Three-dimensional numerical simulation for tide and tidal current in the Beibu Gulf[J]. Acta Oceanologica Sinica, 2001, 20(1): 29−38.
    [23]
    Hu Yuekai, Tian Bo, Yuan Lin, et al. Mapping coastal salt marshes in China using time series of Sentinel-1 SAR[J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2021, 173: 122−134. doi: 10.1016/j.isprsjprs.2021.01.003
    [24]
    Benson B B, Krause D Jr. The concentration and isotopic fractionation of oxygen dissolved in freshwater and seawater in equilibrium with the atmosphere1[J]. Limnology and Oceanography, 1984, 29(3): 620−632. doi: 10.4319/lo.1984.29.3.0620
    [25]
    Dickson A G, Millero F J. A comparison of the equilibrium constants for the dissociation of carbonic acid in seawater media[J]. Deep Sea Research Part A. Oceanographic Research Papers, 1987, 34(10): 1733−1743. doi: 10.1016/0198-0149(87)90021-5
    [26]
    Mehrbach C, Culberson C H, Hawley J E, et al. Measurement of the apparent dissociation constants of carbonic acid in seawater at atmospheric pressure[J]. Limnology and Oceanography, 1973, 18(6): 897−907. doi: 10.4319/lo.1973.18.6.0897
    [27]
    Dickson A G. Standard potential of the reaction: AgCl(s) + 12H2(g) = Ag(s) + HCl(aq), and the standard acidity constant of the ion $ \rm HSO_4^- $ in synthetic seawater from 273.15 to 318.15 K[J]. The Journal of Chemical Thermodynamics, 1990, 22(2): 113−127. doi: 10.1016/0021-9614(90)90074-Z
    [28]
    Perez F F, Fraga F. Association constant of fluoride and hydrogen ions in seawater[J]. Marine Chemistry, 1987, 21(2): 161−168. doi: 10.1016/0304-4203(87)90036-3
    [29]
    Lee K, Kim T W, Byrne R H, et al. The universal ratio of boron to chlorinity for the North Pacific and North Atlantic oceans[J]. Geochimica et Cosmochimica Acta, 2010, 74(6): 1801−1811. doi: 10.1016/j.gca.2009.12.027
    [30]
    Ko Y H, Lee K, Eom K H, et al. Organic alkalinity produced by phytoplankton and its effect on the computation of ocean carbon parameters[J]. Limnology and Oceanography, 2016, 61(4): 1462−1471. doi: 10.1002/lno.10309
    [31]
    Takahashi T, Sutherland S C, Sweeney C, et al. Global sea-air CO2 flux based on climatological surface ocean pCO2, and seasonal biological and temperature effects[J]. Deep-Sea Research Part II: Topical Studies in Oceanography, 2002, 49(9/10): 1601−1622.
    [32]
    Takahashi T, Olafsson J, Goddard J G, et al. Seasonal variation of CO2 and nutrients in the high-latitude surface oceans: a comparative study[J]. Global Biogeochemical Cycles, 1993, 7(4): 843−878. doi: 10.1029/93GB02263
    [33]
    Weiss R F. Carbon dioxide in water and seawater: the solubility of a non-ideal gas[J]. Marine Chemistry, 1974, 2(3): 203−215. doi: 10.1016/0304-4203(74)90015-2
    [34]
    Sweeney C, Gloor E, Jacobson A R, et al. Constraining global air-sea gas exchange for CO2 with recent bomb 14C measurements[J]. Global Biogeochemical Cycles, 2007, 21(2): GB2015.
    [35]
    Wanninkhof R. Relationship between wind speed and gas exchange over the ocean[J]. Journal of Geophysical Research: Oceans, 1992, 97(C5): 7373−7382. doi: 10.1029/92JC00188
    [36]
    Liu Zilin, Cai Yuming, Ning Xiuren. Distribution characteristics of size-fractionated chlorophyll a and primary productivity in Beibu Gulf[J]. Acta Oceanologica Sinica, 1998, 17(1): 71−83.
    [37]
    Lu Zhongming, Gan Jianping, Dai Minhan. Modeling seasonal and diurnal pCO2 variations in the northern South China Sea[J]. Journal of Marine Systems, 2012, 92(1): 30−41. doi: 10.1016/j.jmarsys.2011.10.003
    [38]
    Jones D C, Ito T, Takano Y, et al. Spatial and seasonal variability of the air-sea equilibration timescale of carbon dioxide[J]. Global Biogeochemical Cycles, 2014, 28(11): 1163−1178. doi: 10.1002/2014GB004813
    [39]
    黄广灵, 黄本胜, 邱静, 等. 英罗湾潮汐水道演变及其稳定性分析[J]. 中国农村水利水电, 2018(10): 27−31. doi: 10.3969/j.issn.1007-2284.2018.10.006

    Huang Guangling, Huang Bensheng, Qiu Jing, et al. The evolution and stability of the tidal channel of Yingluo Bay[J]. China Rural Water and Hydropower, 2018(10): 27−31. doi: 10.3969/j.issn.1007-2284.2018.10.006
    [40]
    Zeebe R E, Wolf-Gladrow D. CO2 in Seawater: Equilibrium, Kinetics, Isotopes[M]. Amsterdam: Elsevier, 2001: 346.
    [41]
    Redfield A C, Ketchum B H, Richards F A. The influence of organisms on the composition of the sea water[M]//Hill M N. The Seas, Vol 2, The Composition of Sea-water: Comparative and Descriptive Oceanography. New York: Interscience Publishers, 1963: 26−77.
    [42]
    黄广灵, 邱静, 陈晖. 英罗湾−安铺港沉积动力地貌特征及成因研究[J]. 广东水利水电, 2020(11): 52−57.

    Huang Guangling, Qiu Jing, Chen Hui. Submarine dynamic geomorphological characteristics and their formation cause in the Yingluo Bay-Anpu Harbor Area[J]. Guangdong Water Resources and Hydropower, 2020(11): 52−57.
    [43]
    Kaiser D, Unger D, Qiu Guanglong. Particulate organic matter dynamics in coastal systems of the northern Beibu Gulf[J]. Continental Shelf Research, 2014, 82: 99−118. doi: 10.1016/j.csr.2014.04.006
    [44]
    Mcleod E, Chmura G L, Bouillon S, et al. A blueprint for blue carbon: toward an improved understanding of the role of vegetated coastal habitats in sequestering CO2[J]. Frontiers in Ecology and the Environment, 2011, 9(10): 552−560. doi: 10.1890/110004
    [45]
    劳齐斌, 刘国强, 申友利, 等. 北部湾入海河流营养盐的分布特征及入海通量研究[J]. 海洋学报, 2020, 42(12): 93−100.

    Lao Qibin, Liu Guoqiang, Shen Youli, et al. Distribution characteristics and fluxes of nutrients in the rivers of the Beibu Gulf[J]. Haiyang Xuebao, 2020, 42(12): 93−100.
    [46]
    DeGrandpre M D, Hammar T R, Wallace D W R, et al. Simultaneous mooring-based measurements of seawater CO2 and O2 off Cape Hatteras, North Carolina[J]. Limnology and Oceanography, 1997, 42(1): 21−28. doi: 10.4319/lo.1997.42.1.0021
    [47]
    Zhai Weidong, Chen Jianfang, Jin Haiyan, et al. Spring carbonate chemistry dynamics of surface waters in the northern East China Sea: water mixing, biological uptake of CO2, and chemical buffering capacity[J]. Journal of Geophysical Research: Oceans, 2014, 119(9): 5638−5653. doi: 10.1002/2014JC009856
    [48]
    翟惟东. 南海北部春季非水华期的CO2分压及其调控[J]. 海洋学报, 2015, 37(6): 31−40.

    Zhai Weidong. Sea surface partial pressure of CO2 and its controls in the northern South China Sea in the non-bloom period in spring[J]. Haiyang Xuebao, 2015, 37(6): 31−40.
    [49]
    Wang Songyin, Zhai Weidong. Regional differences in seasonal variation of air-sea CO2 exchange in the Yellow Sea[J]. Continental Shelf Research, 2021, 218: 104393. doi: 10.1016/j.csr.2021.104393
    [50]
    曹振轶, 鲍敏, 管卫兵, 等. 北部湾东北部水团分布及季节变化分析[J]. 海洋与湖沼, 2019, 50(3): 532−542. doi: 10.11693/hyhz20190100007

    Cao Zhenyi, Bao Min, Guan Weibing, et al. Water-mass evolution and the seasonal change in northeast of the Beibu Gulf, China[J]. Oceanologia et Limnologia Sinica, 2019, 50(3): 532−542. doi: 10.11693/hyhz20190100007
    [51]
    Wang Z A, Cai Weijun. Carbon dioxide degassing and inorganic carbon export from a marsh-dominated estuary (the Duplin River): a marsh CO2 pump[J]. Limnology and Oceanography, 2004, 49(2): 341−354. doi: 10.4319/lo.2004.49.2.0341
    [52]
    Chen C T A, Huang T H, Fu Yuhan, et al. Strong sources of CO2 in upper estuaries become sinks of CO2 in large river plumes[J]. Current Opinion in Environmental Sustainability, 2012, 4(4): 179−185.
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