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 |
[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
|
[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.
|