Seasonal variations of nitrogen and phosphorus retention in an agricultural drainage river in East China

被引:41
作者
Chen, Dingjiang [1 ]
Lu, Jun [1 ,2 ]
Wang, Hailong [3 ]
Shen, Yena [4 ]
Kimberley, Mark O. [3 ]
机构
[1] Zhejiang Univ, Coll Environm Sci & Nat Resources, Dept Nat Resources, Hangzhou 310029, Zhejiang, Peoples R China
[2] Zhejiang Univ, China Minist Educ, Key Lab Environm Remediat & Ecol Hlth, Hangzhou 310029, Zhejiang, Peoples R China
[3] Scion, Rotorua 3046, New Zealand
[4] Zhejiang Univ, Zhejiang Prov Key Lab Subtrop Soil & Plant Nutr, Hangzhou 310029, Zhejiang, Peoples R China
基金
中国国家自然科学基金; 国家高技术研究发展计划(863计划);
关键词
Aquatic plants; Diffuse source pollution; Eutrophication; Nonpoint pollution; Riverine; Total nitrogen retention; Total phosphorus retention; SURFACE WATERS; NUTRIENTS; DENITRIFICATION; NITRIFICATION; IMPACT; EXPORT; SOIL;
D O I
10.1007/s11356-009-0246-x
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Riverine retention decreases loads of nitrogen (N) and phosphorus (P) in running water. It is an important process in nutrient cycling in watersheds. However, temporal riverine nutrient retention capacity varies due to changes in hydrological, ecological, and nutrient inputs into the watershed. Quantitative information of seasonal riverine N and P retention is critical for developing strategies to combat diffuse source pollution and eutrophication in riverine and coastal systems. This study examined seasonal variation of riverine total N (TN) and total P (TP) retention in the ChangLe River, an agricultural drainage river in east China. Water quality, hydrological parameters, and hydrophyte coverage were monitored along the ChangLe River monthly during 2004-2006. Nutrient export loads (including chemical fertilizer, livestock, and domestic sources) entering the river from the catchment area were computed using an export coefficient model based on estimated nutrient sources. Riverine TN and TP retention loads (RNRL and RPRL) were estimated using mass balance calculations. Temporal variations in riverine nutrient retention were analyzed statistically. Estimated annual riverine retention loads ranged from 1,538 to 2,127 t year(-1) for RNRL and from 79.4 to 90.4 t year(-1) for RPRL. Monthly retention loads varied from 6.4 to 300.8 t month(-1) for RNRL and from 1.4 to 15.3 t month(-1) for RPRL. Both RNRL and RPRL increased with river flow, water temperature, hydrophyte coverage, monthly sunshine hours, and total TN and TP inputs. Dissolved oxygen concentration and the pH level of the river water decreased with RNRL and RPRL. Riverine nutrient retention ratios (retention as a percentage of total input) were only related to hydrophyte coverage and monthly sunshine hours. Monthly variations in RNRL and RPRL were functions of TN and TP loads. Riverine nutrient retention capacity varied with environmental conditions. Annual RNRL and RPRL accounted for 30.3-48.3% and 52.5-71.2%, respectively, of total input TN and TP loads in the ChangLe River. Monthly riverine retention ratios were 3.5-88.7% for TN and 20.5-92.6% for TP. Hydrophyte growth and coverage on the river bed is the main cause for seasonal variation in riverine nutrient retention capacity. The total input TN and TP loads were the best indicators of RNRL and RPRL, respectively. High riverine nutrient retention capacity during summer due to hydrophytic growth is favorable to the avoidance of algal bloom in both river systems and coastal water in southeast China. Policies should be developed to strictly control nutrient applications on agricultural lands. Strategies for promoting hydrophyte growth in rivers are desirable for water quality management.
引用
收藏
页码:312 / 320
页数:9
相关论文
共 36 条
[1]   REGULATION OF SUBMERGED AQUATIC PLANT-DISTRIBUTION IN A UNIFORM AREA OF A WEEDBED [J].
ANDERSON, MR ;
KALFF, J .
JOURNAL OF ECOLOGY, 1986, 74 (04) :953-961
[2]   Consequences of changed wetness on riverine nitrogen - human impact on retention vs. natural climatic variability [J].
Andersson, Lotta ;
Arheimer, Berit .
REGIONAL ENVIRONMENTAL CHANGE, 2001, 2 (03) :93-105
[3]   Retention of nutrients in river systems: dependence on specific runoff and hydraulic load [J].
Behrendt, H ;
Opitz, D .
HYDROBIOLOGIA, 1999, 410 (0) :111-122
[4]   Nutrient uptake in streams draining agricultural catchments of the midwestern United States [J].
Bernot, MJ ;
Tank, JL ;
Royer, TV ;
David, MB .
FRESHWATER BIOLOGY, 2006, 51 (03) :499-509
[5]   Estimation of critical nutrient amounts based on input-output analysis in an agriculture watershed of eastern China [J].
Chen, DingJiang ;
Lu, Jun ;
Shen, YeNa ;
Dahlgren, Randy A. ;
Jin, ShuQuan .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2009, 134 (3-4) :159-167
[6]   Oxygen depletion in the upper reach of the Pearl River estuary during a winter drought [J].
Dai, Minhan ;
Guo, Xianghui ;
Zhai, Weidong ;
Yuan, Liangying ;
Wang, Bengwang ;
Wang, Lifang ;
Cai, Pinghe ;
Tang, Tiantian ;
Cai, Wei-Jun .
MARINE CHEMISTRY, 2006, 102 (1-2) :159-169
[7]  
DIERK W, 2008, ECOLOGICAL MODELLING, V211, P224
[8]   An experimental study on effects of submersed macrophytes on nitrification and denitrification in ammonium-rich aquatic systems [J].
Eriksson, PG ;
Weisner, SEB .
LIMNOLOGY AND OCEANOGRAPHY, 1999, 44 (08) :1993-1999
[9]   Modelling the transfer and retention of nutrients in the drainage network of the Danube River [J].
Garnier, J ;
Billen, G ;
Hannon, E ;
Fonbonne, S ;
Videnina, Y ;
Soulie, M .
ESTUARINE COASTAL AND SHELF SCIENCE, 2002, 54 (03) :285-308
[10]   The potential of field turbidity measurements for the computation of total phosphorus and suspended solids loads [J].
Grayson, RB ;
Finlayson, BL ;
Gippel, CJ ;
Hart, BT .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 1996, 47 (03) :257-267