留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China

LYU Mingzhi SHENG Lianxi ZHANG Zhongsheng ZHANG Li

LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. 中国地理科学, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
引用本文: LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. 中国地理科学, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. Chinese Geographical Science, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
Citation: LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. Chinese Geographical Science, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y

Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China

doi: 10.1007/s11769-016-0809-y
基金项目: Under the auspices of National Natural Science Foundation of China (No. 41471081), Scientific Research Foundation of Graduate School of Northeast Normal University (No. 12SSXT149)
详细信息
    通讯作者:

    SHENG Lianxi

Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China

Funds: Under the auspices of National Natural Science Foundation of China (No. 41471081), Scientific Research Foundation of Graduate School of Northeast Normal University (No. 12SSXT149)
More Information
    Corresponding author: SHENG Lianxi
  • 摘要: Estimating carbon sequestration and nutrient accumulation rates in Northeast China are important to assess wetlands function as carbon sink buffering greenhouse gas increasing in North Asia. The objectives of this study were to estimate accreting rates of carbon and nutrients in typical temperate wetlands. Results indicated that average soil organic carbon (SOC), total nitrogen (TN) and total phosphorus (TP) contents were 37.81%, 1.59% and 0.08% in peatlands, 5.33%, 0.25% and 0.05% in marshes, 2.92%, 0.27% and 0.10% in marshy meadows, respectively. Chronologies reconstructed by 210Pb in the present work were acceptable and reliable, and the average time to yield 0-40 cm depth sediment cores was 150 years. Average carbon sequestration rate (Carbonsq), nitrogen and phosphorus accumulation rates were 219.4 g C/(m2·yr), 9.16 g N/(m2·yr) and 0.46 g P/(m2·yr) for peatland; 57.13 g C/(m2·yr), 5.42 g N/(m2·yr) and 2.16 g P/(m2·yr) for marshy meadow; 78.35 g C/(m2·yr), 8.70 g N/(m2·yr) and 0.71 g P/(m2·yr) for marshy; respectively. Positive relations existed between Carbonsq with nitrogen and precipitations, indicating that Carbonsq might be strengthened in future climate scenarios.
  • [1] Adame M F, Santini N S, Tovilla C et al., 2015. Carbon stocks and soil sequestration rates of tropical riverine wetlands. Biogeosciences, 12(12): 3805-3818. doi:  10.5194/bg-12-3805-2015
    [2] Adams M B, 2003. Ecological issues related to N deposition to natural ecosystems: research needs. Environment International, 29(2-3): 189-199. doi:  10.1016/S0160-4120(02)00179-4
    [3] Bai J, Cui B, Deng W et al., 2007. Soil organic carbon contents of two natural inland saline-alkalined wetlands in northeastern China. Journal of Soil and Water Conservation, 62(6): 447-452. doi:  10.1007/s11769-013-0612-y
    [4] Bai J H, Wang Q G,, Deng W et al., 2012. Spatial and seasonal distribution of nitrogen in marsh soils of a typical floodplain wetland in Northeast China. Environmental Monitoring and Assessment, 184(3): 1253-1263. doi:  10.1007/s10661-011-2037-3
    [5] Bao K S, Wang G P, Xing W et al., 2015. Accumulation of organic carbon over the past 200 years in alpine peatlands, Northeast China. Environmental Earth Sciences, 73(11): 7489-7503. doi:  10.1007/s12665-014-3922-1
    [6] Bao K S, Yu X F, Jia L et al., 2010. Recent carbon accumulation in Changbai Mountain peatlands, Northeast China. Mountain Research and Development, 30(1): 33-41. doi:  10.1659/MRD-JOURNAL-D-09-00054.1
    [7] Beilman D W, MacDonald G M, Smith L C et al., 2009. Carbon accumulation in peatlands of West Siberia over the last 2000 years. Global Biogeochemical Cycles, 23. doi:  10.1029/2007GB003112
    [8] Belyea L R, Malmer N, 2004. Carbon sequestration in peatland: patterns and mechanisms of response to climate change. Global Change Biology, 10(7): 1043-1052. doi: 10.1111/j. 1529-8817.2003.00783.x
    [9] Bernal B, Mitsch W J, 2012. Comparing carbon sequestration in temperate freshwater wetland communities. Global Change Biology, 18(5): 1636-1647. doi: 10.1111/j.1365-2486.2011. 02619.x
    [10] Bernal B, Mitsch W J, 2013. Carbon sequestration in freshwater wetlands in Costa Rica and Botswana. Biogeochemistry, 115(1-3): 77-93. doi:  10.1007/s10533-012-9819-8
    [11] Brenner M, Schelske C L, Keenan L W, 2001. Historical rates of sediment and nutrient accumulation in marshes of the Upper St. Johns River Basin, Florida, USA. Journal of Paleolimnology, 26(3): 241-257. doi:  10.1023/A:1017578330641
    [12] Bridgham S D, Megonigal J P, Keller J K et al., 2006. The carbon balance of North American wetlands. Wetlands, 26(4): 889-916. 10.1672/0277-5212(2006)26[889:Tcbona]2.0.Co;2
    [13] Callaway J C, DeLaune R D, Patrick W H, 1996. Chernobyl Cs-137 used to determine sediment accretion rates at selected northern European coastal wetlands. Limnology and Oceanography, 41(3): 444-450. doi:  10.4319/lo.1996.41.3.0444
    [14] Cao M K, Woodward F I, 1998. Net primary and ecosystem production and carbon stocks of terrestrial ecosystems and their responses to climate change. Global Change Biology, 4(2): 185-198. doi:  10.1046/j.1365-2486.1998.00125.x
    [15] Chimner R A, Ewel K C, 2005. A tropical freshwater wetland: II. production, decomposition, and peat formation. Wetlands Ecology and Management, 13(6): 671-684. doi: 10.1007/s 11273-005-0965-9
    [16] Chmura G L, Anisfeld S C, Cahoon D R et al., 2003. Global carbon sequestration in tidal, saline wetland soils. Global Biogeochemical Cycles, 17(4). doi:  10.1029/2002GB001917
    [17] Choi Y, Wang Y, Hsieh Y P et al., 2001. Vegetation succession and carbon sequestration in a coastal wetland in Northwest Florida: evidence from carbon isotopes. Global Biogeochemical Cycles, 15(2): 311-319. doi:  10.1029/2000GB001308
    [18] Costanza R, dArge R, deGroot R et al., 1997. The value of the world's ecosystem services and natural capital. Nature, 387(6630): 253-260. doi:  10.1038/387253a0
    [19] Craft C B, Casey W P, 2000. Sediment and nutrient accumulation in floodplain and depressional freshwater wetlands of Georgia, USA. Wetlands, 20(2): 323-332. doi: 10.1672/0277-5212 (2000)020[0323:SANAIF]2.0.CO;2
    [20] Craft C B, Richardson C J, 1993. Peat accretion and N, P, and organic C accumulation in nutrient-enriched and unenriched everglades peatlands. Ecological Applications, 3(3): 446-458. doi:  10.2307/1941914
    [21] Craft C B, Richardson C J, 1998. Recent and long-term organic soil accretion and nutrient accumulation in the everglades. Soil Science Society of America Journal, 62(3): 834-843. doi:  10.2136/sssaj1998.03615995006200030042x
    [22] Davidson E A, Janssens I A, 2006. Temperature sensitivity of soil carbon decomposition and feedbacks to climate change. Nature, 440(7081): 165-173. doi:  10.1038/nature04514
    [23] Dieleman C M, Branfireun B A, Mclaughlin J W et al., 2015. Climate change drives a shift in peatland ecosystem plant community: Implications for ecosystem function and stability. Global Change Biology, 21(1): 388-395. doi: 10.1111/Gcb. 12643
    [24] Graham S A, Craft C B, McCormick P V et al., 2005. Forms and accumulation of soil P in natural and recently restored peatlands—upper Klamath Lake, Oregon, USA. Wetlands, 25(3): 594-606. doi: 10.1672/0277-5212(2005)025[0594:Faaosp]2.0. Co;2
    [25] Hessen D O, Agren G I, Anderson T R et al., 2004. Carbon, sequestration in ecosystems: the role of stoichiometry. Ecology, 85(5): 1179-1192. doi:  10.1890/02-0251
    [26] Huang J, Kang S C, Zhang Q G et al., 2012. Wet deposition of mercury at a remote site in the Tibetan Plateau: concentrations, speciation, and fluxes. Atmospheric Environment, 62: 540-550. doi:  10.1016/j.atmosenv.2012.09.003
    [27] Kayranli B, Scholz M, Mustafa A et al., 2010. Carbon storage and fluxes within freshwater wetlands: a critical review. Wetlands, 30(1): 111-124. doi:  10.1007/s13157-009-0003-4
    [28] Lal R, 2005. Forest soils and carbon sequestration. Forest Ecology and Management, 220(1-3): 242-258. doi: 10.1016/j. foreco.2005.08.015
    [29] Marin-Muniz J L, Hernandez M E, Moreno-Casasola P, 2014. Comparing soil carbon sequestration in coastal freshwater wetlands with various geomorphic features and plant communities in Veracruz, Mexico. Plant and Soil, 378(1-2): 189-203. doi:  10.1007/s11104-013-2011-7
    [30] Oenema O, Delaune R D, 1988. Accretion rates in salt marshes in the eastern Scheldt, Southwest Netherlands. Estuarine Coastal and Shelf Science, 26(4): 379-394. doi: 10.1016/0272-7714 (88)90019-4
    [31] Ohlson M, Okland R H, 1998. Spatial variation in rates of carbon and nitrogen accumulation in a boreal bog. Ecology, 79(8): 2745-2758. doi:  10.2307/176514
    [32] Oren R, Ellsworth D S, Johnsen K H et al., 2001. Soil fertility limits carbon sequestration by forest ecosystems in a CO2-enriched atmosphere. Nature, 411(6836): 469-472. doi: 10. 1038/35078064
    [33] Page S E, Rieley J O, Banks C J, 2011. Global and regional importance of the tropical peatland carbon pool. Global Change Biology, 17(2): 798-818. doi:  10.1111/j.1365-2486.2010.02279.x
    [34] Reay D S, Dentener F, Smith et al., 2008. Global nitrogen deposition and carbon sinks. Nature Geoscience, 1(7): 430-437. doi:  10.1038/ngeo230
    [35] Song C, Zhang J, Zhang L, 2005. The variation of carbon stock in freshwater mire after nitrogen input. Advance in Earth Sciences, 20: 1249-1255. doi:  1001-8166(2005)11-1249-07
    [36] Song Kaishan, Liu Dianwei, Wang Zongming et al., 2008. Land use change in Sanjiang Plain and its driving forces analysis since 1954. Acta Geographica Sinica, 63(1): 93. (in Chinese)
    [37] Song K S, Wang Z M, Du J et al., 2014. Wetland degradation: its driving forces and environmental impacts in the Sanjiang Plain, China. Environmental Management, 54(2): 255-271. doi:  10.1007/s00267-014-0278-y
    [38] Stark K, Wallberg P, Nylen T, 2006. Post-depositional redistribution and gradual accumulation of Cs-137 in a riparian wetland ecosystem in Sweden. Journal of Environmental Radioactivity, 87(2): 175-187. doi:  10.1016/j.jenvrad.2005.11.008
    [39] Wieder R K, 2001. Past, present, and future peatland carbon balance: an empirical model based on Pb-210-dated cores. Ecological Applications, 11(2): 327-342. doi:  10.2307/3060892
    [40] Xiao Y, Huang Z, Lu X, 2015. Changes of soil labile organic carbon fractions and their relation to soil microbial characteristics in four typical wetlands of Sanjiang Plain, Northeast China. Ecological Engineering, 82: 381-389. doi: 10.1016/j.ecoleng. 2015.05.015
    [41] Zaehle S, 2013. Terrestrial nitrogen-carbon cycle interactions at the global scale. Philosophical Transactions of the Royal Society B-Biological Sciences, 368: 1621. doi: 10.1098/rstb.2013. 0125
    [42] Zhang Y, Xu H L, Chen H et al., 2014. Diversity of wetland plants used traditionally in China: a literature review. Journal of Ethnobiology and Ethnomedicine, 10. doi: Artn 7210.1186/1746-4269-10-72
  • [1] REN Wanxia, XUE Bing, YANG Jun, LU Chengpeng.  Effects of the Northeast China Revitalization Strategy on Regional Economic Growth and Social Development . Chinese Geographical Science, 2020, 30(5): 791-809. doi: 10.1007/s11769-020-1149-5
    [2] CHENG Caifeng, LI Min, XUE Zhenshan, ZHANG Zongsheng, LYU Xianguo, JIANG Ming, ZHANG Hongri.  Impacts of Climate and Nutrients on Carbon Sequestration Rate by Wetlands: A Meta-analysis . Chinese Geographical Science, 2020, 30(3): 483-492. doi: 10.1007/s11769-020-1122-3
    [3] ZENG Xinhua, ZHANG Wanjun, LIU Xiuping, CAO Jiansheng, SHEN Huitao, ZHAO Xin, ZHANG Nannan, BAI Yuru, Yi Mei.  Change of Soil Organic Carbon after Cropland Afforestation in ‘Beijing- Tianjin Sandstorm Source Control’ Program Area in China . Chinese Geographical Science, 2014, 0(4): 461-470. doi: 10.1007/s11769-014-0701-6
    [4] ZHOU Wangming, Bernard Joseph LEWIS, WU Shengnan, YU Dapao, ZHOU Li, WEI Yawei.  Biomass Carbon Storage and Its Sequestration Potential of Afforestation under Natural Forest Protection Program in China . Chinese Geographical Science, 2014, 0(4): 406-413. doi: 10.1007/s11769-014-0702-5
    [5] LIU Wenhui, ZHU Jiaojun, JIA Quanquan, ZHENG Xiao, LI Junsheng, LOU Xuedong, HU Lile.  Carbon Sequestration Effects of Shrublands in Three-North Shelterbelt Forest Region, China . Chinese Geographical Science, 2014, 0(4): 444-453. doi: 10.1007/s11769-014-0698-x
    [6] FAN Ruqin, ZHANG Xiaoping, YANG Xueming, LIANG Aizhen, JIA Shuxia, CHEN Xuewen.  Effects of Tillage Management on Infiltration and Preferential Flow in a Black Soil, Northeast China . Chinese Geographical Science, 2013, 23(3): 312-320. doi: 10.1007/s11769-013-0606-9
    [7] WANG Qiang, ZHANG Zhongsheng1, ZHOU Xuehong, LU Xianguo.  Mercury Distribution and Accumulation in Typical Wetland Ecosystems of Sanjiang Plain, Northeast China . Chinese Geographical Science, 2013, 23(1): 49-58.
    [8] ZHAO Junfang YAN Xiaodong JIA Gensuo.  Simulating the net carbon budget of forest ecosystems and its response to climate change in Northeast China using the improved forest carbon budget model FORCCHN . Chinese Geographical Science, 2012, 22(1): 29-41.
    [9] XU Xinliang, LI Kerang.  Biomass Carbon Sequestration by Planted Forests in China . Chinese Geographical Science, 2010, 20(4): 289-297. doi: 10.1007/s11769-010-0401-9
    [10] QIU Fangdao, TONG Lianjun, ZHANG Huimin, ZHANG Na.  Decomposition Analysis on Direct Material Input and Dematerialization of Mining Cities in Northeast China . Chinese Geographical Science, 2009, 19(2): 104-112. doi: 10.1007/s11769-009-0104-2
    [11] LI Bo, TONG Lianjun.  Vulnerability and Sustainable Development Mode of Coal Cities in Northeast China . Chinese Geographical Science, 2008, 18(2): 119-126. doi: 10.1007/s11769-008-0119-0
    [12] ZHANG Pingyu.  Revitalizing Old Industrial Base of Northeast China:Process, Policy and Challenge . Chinese Geographical Science, 2008, 18(2): 109-118. doi: 10.1007/s11769-008-0109-2
    [13] MEI Lin, XU Xiaopo, CHEN Mingxiu.  Regional Evolution Features and Coordinated Development Strategies for Northeast China . Chinese Geographical Science, 2006, 16(4): 378-382.
    [14] ZHANG Lei, SONG Feng-bin.  SORPTION AND DESORPTION CHARACTERISTICS OF CADMIUM BY FOUR DIFFERENT SOILS IN NORTHEAST CHINA . Chinese Geographical Science, 2005, 15(4): 343-347.
    [15] WANG Xi-kui, QIU Shan-wen, SONG Chang-chun, KULAKOV Aleksey, TASHCHI Stepan, MYASNIKOV Evgeny.  CENOZOIC VOLCANISM AND GEOTHERMAL RESOURCES IN NORTHEAST CHINA . Chinese Geographical Science, 2001, 11(2): 150-154.
    [16] 黄铁青, 刘兆礼, 潘瑜春, 张养贞.  LAND COVER SURVEY IN NORTHEAST CHINA USING REMOTE SENSING AND GIS . Chinese Geographical Science, 1998, 8(3): 264-270.
    [17] 刘红玉.  CONSERVATION OF WETLANDS ESPECIALLY AS WATERFOWL HABITAT IN NORTHEAST CHINA . Chinese Geographical Science, 1998, 8(3): 281-288.
    [18] 邹春静, 徐文铎, 卜军.  INFLUENCE OF GLOBAL WARMING ON VEGETATION IN NORTHEAST CHINA . Chinese Geographical Science, 1997, 7(1): 68-78.
    [19] 王荣芬, 于国政.  THE OPEN PORT SYSTEM IN NORTHEAST CHINA . Chinese Geographical Science, 1997, 7(3): 270-277.
    [20] 刘继生.  A FRACTAL STUDY ON URBAN SYSTEM IN NORTHEAST CHINA . Chinese Geographical Science, 1996, 6(3): 272-281.
  • 加载中
计量
  • 文章访问数:  424
  • HTML全文浏览量:  19
  • PDF下载量:  884
  • 被引次数: 0
出版历程
  • 收稿日期:  2015-11-06
  • 修回日期:  2016-03-02
  • 刊出日期:  2016-06-27

Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China

doi: 10.1007/s11769-016-0809-y
    基金项目:  Under the auspices of National Natural Science Foundation of China (No. 41471081), Scientific Research Foundation of Graduate School of Northeast Normal University (No. 12SSXT149)
    通讯作者: SHENG Lianxi

摘要: Estimating carbon sequestration and nutrient accumulation rates in Northeast China are important to assess wetlands function as carbon sink buffering greenhouse gas increasing in North Asia. The objectives of this study were to estimate accreting rates of carbon and nutrients in typical temperate wetlands. Results indicated that average soil organic carbon (SOC), total nitrogen (TN) and total phosphorus (TP) contents were 37.81%, 1.59% and 0.08% in peatlands, 5.33%, 0.25% and 0.05% in marshes, 2.92%, 0.27% and 0.10% in marshy meadows, respectively. Chronologies reconstructed by 210Pb in the present work were acceptable and reliable, and the average time to yield 0-40 cm depth sediment cores was 150 years. Average carbon sequestration rate (Carbonsq), nitrogen and phosphorus accumulation rates were 219.4 g C/(m2·yr), 9.16 g N/(m2·yr) and 0.46 g P/(m2·yr) for peatland; 57.13 g C/(m2·yr), 5.42 g N/(m2·yr) and 2.16 g P/(m2·yr) for marshy meadow; 78.35 g C/(m2·yr), 8.70 g N/(m2·yr) and 0.71 g P/(m2·yr) for marshy; respectively. Positive relations existed between Carbonsq with nitrogen and precipitations, indicating that Carbonsq might be strengthened in future climate scenarios.

English Abstract

LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. 中国地理科学, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
引用本文: LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. 中国地理科学, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. Chinese Geographical Science, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
Citation: LYU Mingzhi, SHENG Lianxi, ZHANG Zhongsheng, ZHANG Li. Distribution and Accumulation of Soil Carbon in Temperate Wetland, Northeast China[J]. Chinese Geographical Science, 2016, 26(3): 295-303. doi: 10.1007/s11769-016-0809-y
参考文献 (42)

目录

    /

    返回文章
    返回