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河流水动力条件对大型底栖动物分布影响研究进展
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  • 英文篇名:Research Progress of River Dynamic Influences on the Distribution of Macroinvertebrates
  • 作者:陈含墨 ; 渠晓东 ; 王芳
  • 英文作者:CHEN Hanmo;QU Xiaodong;WANG Fang;State Key Laboratory of Simulation and Regulation of Water Cycle in River Basin,China Institute of Water Resources and Hydropower Research;
  • 关键词:河流 ; 底栖动物 ; 水动力 ; 底质
  • 英文关键词:river;;macroinvertebrate;;hydrodynamic;;substrate
  • 中文刊名:HJKX
  • 英文刊名:Research of Environmental Sciences
  • 机构:中国水利水电科学研究院流域水循环模拟与调控国家重点实验室;
  • 出版日期:2019-03-01 10:05
  • 出版单位:环境科学研究
  • 年:2019
  • 期:v.32;No.256
  • 基金:流域水循环模拟与调控国家重点实验室(中国水利水电科学研究院)开放研究基金(No.2016TS01);; 水利部水资源重点项目“全国重要江河湖泊生态流量(水位)保护”(No.126301001000160014-2)~~
  • 语种:中文;
  • 页:HJKX201905005
  • 页数:8
  • CN:05
  • ISSN:11-1827/X
  • 分类号:40-47
摘要
大型底栖无脊椎动物(简称"底栖动物")是河流生态系统重要的生物类群,其组成与分布受河流水动力条件影响显著.对世界范围内不同气候带的7条大型河流的研究发现,底栖动物在河流纵向上展现出了明显的分布特征:①山区树线以上,粗颗粒有机物有限,直接收集者占绝对优势,其中流速大的河段以适应流水的摇蚊幼虫为主,流速低的河段以寡毛类为主.②树线以下的上游河段,充足的凋落物进入河流,流速大的河段以抗冲刷能力强的水生昆虫(如蜉蝣目)为主,流速低的河段以寡毛类和摇蚊幼虫为主.③中下游河段以及河口地区,河流比降小、水深大、流速小、底质较细,受一定程度的人类活动影响,寡毛类、摇蚊幼虫和软体动物等较为常见,其中寡毛类和软体动物主要栖息在淤泥底质中,摇蚊幼虫在沙质河中更为常见.底栖动物的物种数量及组成与底质的稳定性、河流含沙量、降水量等因素相关.水动力条件中的底质、含沙量及流速对底栖动物的影响最为显著:①底栖动物物种数随着底质粒径和稳定性的降低而减少,在卵石底质中达到最大值.②含沙量增加导致底栖动物的物种数和密度显著下降.③汛期水动力条件的改变直接导致底栖动物密度和优势种变化,汛期过后则优势种恢复,密度达到年内最大值.研究推测气候通过影响底栖动物食物网来影响其密度,而不是种类.建议今后增强气候变化对底栖动物食物网及密度综合影响的研究.
        Macroinvertebrates are important biological groups of river ecosystems,and their composition and distribution are significantly affected by river hydrodynamic conditions. Studies on seven large rivers in different climatic zones have found that macroinvertebrates exhibit distinct distribution characteristics in the longitudinal direction of rivers:(1) Above the tree line,the coarse-grained organic matter is limited,and the collectors are dominant. Chironomidae is mainly adapted to live in the river section with fast flow rate,and the slow flow rate section is dominated by Oligochaetes.(2) In the upper reaches that below tree line,a lot of litter falls into river,aquatic insects that possess strong erosion resistibility,such as Ephemerida,dominate in fast flow rate section and Oligochaetes and Chironomidae dominate in slow flow rate section.(3) In the middle and lower reaches of the river and the estuary area where the river gradient is smaller,the water depth is deeper,the flow velocity is slow,the substrate is fine,and it is also affected by human activity are dominated by Oligochaetes,Chironomidae and mollusks. In the middle and lower reaches,Oligochaetes and mollusks mainly inhabit in the silt substrate,and Chironomidae are more common in sandy substrate rivers. The effects of sediment,sediment concentration and flow rate on hydrodynamic conditions are most significant for macroinvertebrates:(1) Species number decreases with substrate particle size and stability decrease,and gets to the maximum in cobble.(2) With the increase in sediment concentration,species number and density decrease significantly.(3) Dominant taxa and species number change with dynamic condition changes in the flood season and after flood season,the dominant species recovers and the density of macroinvertebrates reaches the maximum in a year. This study reckons that the climate influences the density of macroinvertebrate through impacting the food web instead of species. It is suggested that more research on the impact of climate on the density and food web should be conducted.
引文
[1] VANNOTE R L,MINSHALL G W,CUMMINS K W,et al.The river continuum concept[J]. Canadian Journal of Fishery and Aquatic Science,1980,37(2):130-137.
    [2] NEWBOLD J D,O'NEILL R V,ELWOOD J W,et al. Nutrient spiralling in streams:implications for nutrient limitation and invertebrate activity[J]. American Naturalist,1982,120(5):628-652.
    [3] AND K W C,KLUG M J.Feeding ecology of stream invertebrates[J].Annual Review of Ecology and Systematics,1979,10(1):147-172.
    [4] BENKE A C,ARSDALL T C V,Jr GILLESPIE D M,et al.Invertebrate productivity in a subtropical blackwater river:the importance of habitat and life history[J]. Ecological Monographs,1984,54(1):25-63.
    [5]邵学军,王兴奎.河流动力学概论[M].北京:清华大学出版社,2005:51-55.
    [6] DEWSON Z S,JAMES A B W,DEATH R G. A review of the consequences of decreased flow for instream habitat and macroinvertebrates[J].Journal of the North American Benthological Society,2007,26(3):401-415.
    [7] BEISEL J N,USSEGLIO-POLATERA P,THOMAS S,et al.Stream community structure in relation to spatial variation:the influence of mesohabitat characteristics[J]. Hydrobiologia,1998,389(1/2/3):73-88.
    [8] ARUNACHALAM M,NAIR K C M,VIJVERBERG J,et al.Substrate selection and seasonal variation in densities of invertebrates in stream pools of a tropical river[J]. Hydrobiologia,1991,213(2):141-148.
    [9]钱宁.河床演变学[M].北京:科学出版社,1987:53-74.
    [10]潘保柱,王兆印,余国安.长江源和黄河源的大型底栖动物群落特征研究[J].长江流域资源与环境,2012,21(3):369-374.PAN Baozhu, WANG Zhaoyin, YU Guoan. Assemblage characteristics of macrozoobenthos in the source region of the Yangtze River and the source region of the Yellow River[J].Resources and Environment in the Yangtze Basin,2012,21(3):369-374.
    [11]曲修杰.黄河玛曲段水产种质资源保护区的调查研究[D].北京:中国农业科学院,2009:15-17.
    [12] ZHAO Weihua, WANG Haijun, WANG Hongzhu, et al.Macroinvertebrates in the bed sediment of the Yellow River[J].International Journal of Sediment Research,2011,26(3):255-268.
    [13]龚廷登,杨伟阶,何滔,等.金沙江水富段水生生物的群落结构及水质监测[J].淡水渔业,2014,44(4):25-34.GONG Tingdeng,YANG Weijie,HE Tao,et al. Investigation on water quality and community structure of aquatic organisms at Shuifu section in Chin-sha River[J]. Freshwater Flsheries,2014,44(4):25-34.
    [14] XIE Zhicai,LIANG Yanling,WANG Ji,et al.Preliminary studies of macroinvertebrates of the mainstream of the Changjiang(Yangtze)River[J].Acta Hydrobiologica Sinica,1999,23(12):148-157.
    [15]唐文家,崔玉香,赵霞.青海省澜沧江水系水生生物资源的初步调查[J].水生态学杂志,2012,33(6):20-28.TANG Wenjia,CUN Yuxiang,ZHAO Xia. Hydrobintes resource survey of Lancang River in Qinghai Province[J]. Journal of Hydroecology,2012,33(6):20-28.
    [16]王川,李斌,谢嗣光,等.澜沧江大型底栖动物群落结构及分布格局[J].淡水渔业,2013,43(1):37-43.WANG Chuan,LI Bin,XIE Siguang,et al. The macrobenthic communities and distribution of Lancang River[J]. Freshwater Fisheries,2013,43(1):37-43.
    [17]王军,周琼,谢从新,等.新疆额尔齐斯河大型底栖动物的群落结构及水质生物学评价[J].生态学杂志,2014,33(9):2420-2428.WANG Jun,ZHOU Qiong,XIE Congxin,et al. The community structure of macrozoobenthos and biological assessment of water quality in the Irtysh river of Xinjiang[J]. Chinese Journal of Ecology,2014,33(9):2420-2428.
    [18] LUJAN N K,ROACH K A,JACOBSEN D,et al.Aquatic community structure across an Andes-to-Amazon fluvial gradient[J].Journal of Biogeography,2013,40(9):1715-1728.
    [19] LESSMANN J,GUAYASAMIN J M,CASNER K L,et al.Freshwater vertebrate and invertebrate diversity patterns in an Andean-Amazon basin:implications for conservation efforts[J]. Neotropical Biodiversity,2016,2(1):99-114.
    [20] SHEAFFER W A,NICKUM J G. Relative abundance of macroinvertebrates found in habitats associated with backwater area confluences in Pool 13 of the Upper Mississippi River[J].Hydrobiologia,1986,136(1):113-119.
    [21] VIJVERBERG J,SIBBING F A,DEJEN E.Lake Tana:source of the Blue Nile[M]. Berlin,Germany:Springer Netherlands,2009:163-192.
    [22]孙庆龄,李宝林,许丽丽,等. 2000—2013年三江源植被NDVI变化趋势及影响因素分析[J].地球信息科学学报,2016,18(12):1707-1716.SUN Qingling,LI Baolin,XU Lili,et al. Analysis of DIVI changes trend and its impact factors in the Three-River Headwater Region from 2000 to 2013[J]. Journal of Geo-Information Science,2016,18(12):1707-1716.
    [23] GEBREMICAEL T G,MOHAMED Y A,BETRIE G D,et al.Trend analysis of runoff and sediment fluxes in the Upper Blue Nile basin:a combined analysis of statistical tests,physically-based models and landuse maps[J].Journal of Hydrology,2013,482:57-68.
    [24]范娜,谢高地,张昌顺,等. 2001年至2010年澜沧江流域植被覆盖动态变化分析[J].资源科学,2012,34(7):1222-1231.FAN Na,XIE Gaodi,ZHANG Changshun,et al. Spatial-temporal dynamic changes of vegetation cover in Lancang River Bsin during2001-2010[J].Resource Science,2012,34(7):1222-1231.
    [25]张和钰,周华荣,叶琴,等.新疆额尔齐斯河流域典型地区灌木群落多样性[J].生态学杂志,2016,35(5):1188-1196.ZHANG Heyu,ZHOU Huarong,YE Qin,et al. Species diversity of shrub communities in typical areas of the Xinjiang Irtysh River watershed[J]. Chinese Journal of Ecology,2016,35(5):1188-1196.
    [26] ASNER G P,MARTIN R E,TUPAYACHI R,et al. Conservation assessment of the Peruvian Andes and Amazon based on mapped forest functional diversity[J]. Biological Conservation,2017,210:80-88.
    [27] GUYON L J,BATTAGLIA L L. Ecological characteristics of floodplain forest reference sites in the Upper Mississippi River System[J].Forest Ecology and Management,2018,427:208-216.
    [28]薛俊增,王宝强,吴惠仙,等.额尔齐斯河上游河段大型底栖动物的多样性研究[J].上海环境科学,2011,30(3):98-104.XUE Junzeng,WANG Baoqing,WU Huixian,et al. A study of macrobenthic biodiversity in the upper Irtysh River[J]. Shanghai Environmental Sciences,2011,30(3):98-104.
    [29]傅小城,叶麟,徐耀阳,等.黄河主要水系水环境与底栖动物调查研究[J].生态科学,2010,29(1):1-7.FU Xiaocheng,YE Lin,XU Yaoyang,et al. Survey of water quality and benthos in the Yellow River Basin[J]. Ecological Science,2010,29(1):1-7.
    [30] COUCEIRO S R M,HAMADA N,FORSBERG B R,et al.Effects of anthropogenic silt on aquatic macroinvertebrates and abiotic variables in streams in the Brazilian Amazon[J]. Journal of Soils and Sediments,2010,10(1):89-103.
    [31] BATTLE J M,JACKSON J K,SWEENEY B W.Annual and spatial variation for macroinvertebrates in the Upper Mississippi River near Cape Girardeau, Missouri[J]. Fundamental and Applied Limnology,2007,1681(1):39-54.
    [32] MONAKOV A V.The zooplankton and the zoobenthos of the White Nile and adjoining waters in the Republic of the Sudan[J].Hydrobiologia,1969,33(2):161-185.
    [33] MERTES L A K,DANIEL D L,MELACK J M,et al. Spatial patterns of hydrology,geomorphology,and vegetation on the floodplain of the Amazon River in Brazil from a remote sensing perspective[J].Geomorphology,1995,13(1):215-232.
    [34]邓伟,袁兴中,刘红,等.区域性气候变化对长江中下游流域植被覆盖的影响[J].环境科学研究,2014,27(9):1032-1042.DENG Wei,YUAN Xingzhong,LIU Hong,et al. Influence of regional climate change on vegetation cover in the middle and lower Yangtze River Basin[J]. Research of Environmental Sciences,2014,27(9):1032-1042.
    [35]陈秀粉,夏炜,潘保柱,等.长江中游宜昌至武汉段底栖动物群落结构特征研究[J].北京大学学报(自然科学版),2017(5):973-981.CHEN Xiufeng,XIA Wei,PAN Baozhu,et al. Community structure characteristics of macroinvertebrate from Yichang to Wuhan in the middle reaches of the Yangtze River[J]. Acta Scientiarum Naturalium Universitatis Pekinensis,2017(5):973-981.
    [36]刘元进,吕振波,李凡,等. 2011年黄河调水调沙期间黄河口海域大型底栖动物群落多样性[J].海洋渔业,2012,34(3):316-323.LIU Yuanjin,LV Zhenbo,LI Fan,et al.Biodiversity of macrobenthic community in the Huanghe estuary during water and sediment discharge regulation in 2011[J]. Marine Fisheries,2012,34(3):316-323.
    [37]张志南,图立红,于子山.黄河口及其邻近海域大型底栖动物的初步研究(一)生物量[J].青岛海洋大学学报,1990,20(1):37-45.ZHANG Zhinan,TU Lihong,YU Zishan. Preliminary study on the macrofauna in the Huanghe River Estuary and its adjacent waters(Ⅰ)the biomass[J]. Journal of Ocean University of Qingdao,1990,20(1):37-45.
    [38]彭增辉,何雪宝,冯伟松,等.长江镇江段不同生境类型底栖动物群落结构研究[J].长江流域资源与环境,2013,22(4):433-438.PENG Zenghui,HE Xuebao,FENG Weisong,et al.Macrozoobenthic community structure in different types of habitat,Zhenjiang Reach,the Yangtze River,China[J]. Resources and Environment in the Yangtze Basin,2013,22(3):433-438.
    [39]徐兆礼,蒋玫.长江口底栖动物生态研究[J].中国水产科学,1999,6(5):59-62.XU Zhaoli,JIANG Mei. An ecological study on benthos in the Changjiang Estuary[J].Journal of Fishery Sciences of China,1999,6(5):59-62.
    [40] DING Ning,YANG Weifang,ZHOU Yunlei,et al. Different responses of functional traits and diversity of stream macroinvertebrates to environmental and spatial factors in the Xishuangbanna watershed of the upper Mekong River Basin,China[J].Science of the Total Environment,2017,574:288-299.
    [41] SOR R,BOETS P,CHEA R,et al. Spatial organization of macroinvertebrate assemblages in the Lower Mekong Basin[J].Limnologica,2017,64(5):20-30.
    [42] FILHO J S R,ALMEIDA M F,AVIZ D E. Spatial and temporal changes in the benthic fauna of a macrotidal Amazon sandy beach,Ajuruteua,Brazil[J].Journal of Coastal Research,2009,56:1796-1780.
    [43] SILVA R F,FILHO J S R,SOUZA S R,et al.Spatial and temporal changes in the structure of soft-bottom benthic communities in an Amazon estuary(CaetéEstuary,Brazil)[J]. Journal of Coastal Research,2011,64(1):440-444.
    [44] OBI A,CONNER J V.Spring and summer macroinvertebrate drift in the Lower Mississippi River,Louisiana[J]. Hydrobiologia,1986,139(2):167-175.
    [45] EL-SHABRAWY G M,FISHAR M R. The Nile benthos[J].Monographiae Biologicae,2009,89:563-583.
    [46] KHALIL M T,FISHAR M R,KHALIFA N,et al.Ecological studies on macroinvertebrates associated with aquatic macrophytes in the River Nile,Egypt[EB/OL]. Cario,Egypt:Ain Shamas University,2013:1-18[2018-09-04]. https://www. researchgate. net/publication/301499372_Ecological_studied_on_macroinvertebrates_associated_with_aquatic_macrophytes_in_the_River_Nile-Egypt.
    [47]舒凤月,吴俊燕,孙晓倩,等.黄河山东段河岸带春季大型底栖动物群落结构与多样性[J].动物学杂志,2017,52(2):271-282.SHU Fengyue,WU Junyan,SUN Xiaoqian,et al. Distribution and diversity of riparian macrozoobenthic communities in Shandong Reach of the Yellow River in spring[J]. Chinese Journal of Zoology,2017,52(2):271-282.
    [48] STRAHLER A N.Quantitative analysis of watershed geomorphology[J].Eos Transactions American Geophysical Union,1957,38(6):913-920.
    [49] HORTON R E.Erosional development of streams and their drainage basins,hydrophysical approach to quantitative morphology[J].Journal of the Japanese Forestry Society,1945,56(3):275-370.
    [50] GRUBAUGH J W,WALLACE J B,HOUSTON E S. Longitudinal changes in macroinvertebrate communities along an Appalachian stream continuum[J]. Cannadian Journal of Fisheries and Aquatic Sciences,1996,53(4):896-909.
    [51] ALLAN J D,CASTILLO M M.Stream ecology-structure and function of running water[M]. 2nd ed. Berlin,Germany:Springer Netherlands,2007:167-168.
    [52] EVANS L,NORRIS R. Prediction of benthic macroinvertebrate composition using microhabitat characteristics derived from stereo photography[J].Freshwater Biology,2010,37(3):621-633.
    [53] MINSHALL G W,MINSHALL J N. Microdistribution of benthic invertebrates in a rocky mountain(USA)stream[J].Hydrobiologia,1977,55(3):231-249.
    [54] DEATH R G. Predicting invertebrate diversity from disturbance regimes in forest streams[J].Oikos,2010,97(1):18-30.
    [55] MARTIN D,PIERRE B,JEAN-FRANOIS F. Impacts of global changes and extreme hydroclimatic events on macroinvertebrate community structures in the French Rhne River[J]. Oecologia,2007,151(3):544-559.
    [56] BILTON D T,FREELAND J R,OKAMURA B. Dispersal in freshwater invertebrates[J]. Annual Review of Ecology and Systematics,2001,32(1):159-181.
    [57]刘向伟,杜浩,张辉等.长江上游新市至江津段大型底栖动物漂流调查[J].中国水产科学,2009,16(2):266-273.LIU Xiangwei,DU Hao,ZHANG Hui,et al.Macroinvertebrates drift in upper reaches of the Yangtze River between Xinshi and Jiangjin[J].Journal of Fishery Sciences of China,2009,16(2):266-273.
    [58] GRISWOLD M W,BERZINIS R W,CRISMAN T L. Impacts of climatic stability on the structural and functional aspects of macroinvertebrate communities after severe drought[J]. Freshwater Biology,2010,53(12):2465-2483.
    [59]任海庆.山地河流壶穴大型无脊椎动物生态学研究[D].重庆:重庆大学,2016:65-79.
    [60] BUSS D F,BAPTISTA D F,NESSIMIAN J L,et al. Substrate specificity,environmental degradation and disturbance structuring macroinvertebrate assemblages in neotropical streams[J].Hydrobiologia,2004,518(1/2/3):179-188.
    [61]王强,袁兴中,刘红.山地河流浅滩深潭生境大型底栖动物群落比较研究:以重庆开县东河为例[J].生态学报,2012,32(21):6726-6736.WANG Qiang,YUAN Xingzhong,LIU Hong. Comparison study on macroinvertebrates assemblage of riffles and pools:a case study of Dong River in Kaixian County of Chongqing,China[J]. Acta Ecologica Sinica,2012,32(21):6726-6736.
    [62] REDAFISHAR M,RTHORNE,PETERWILLIAMS W. Physicochemical conditions and macroinvertebrate fauna in the River Nile from Aswan to Cairo[J]. Journal of the Limnological Society of Southern Africa,2006,31(2):247-259.

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