Phosphorus loss from different farming systems estimated from soil surface phosphorus balance

被引:77
作者
Ekholm, P
Turtola, E
Grönroos, J
Seuri, P
Ylivainio, K
机构
[1] Finnish Environm Inst, FIN-00251 Helsinki, Finland
[2] MTT Agrifood Res Finland, FIN-31600 Jokioinen, Finland
关键词
eutrophication; phosphorus balance; agriculture; organic fanning;
D O I
10.1016/j.agee.2005.04.014
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
The phosphorus load originating from crop production and animal husbandry is a major contributor to the eutrophication of lakes, rivers and coastal waters. The P losses to surface waters may, however, differ drastically due to the diversity of agricultural production systems practised under contrasting environmental conditions. To assess the most problematic types of agriculture, we need information on the P load from different alternative farming practices. Such information cannot, however, be obtained solely from field runoff experiments, as the number of treatment combinations required to account for all relevant farming systems and environmental conditions far exceeds our research capabilities. To facilitate the comparison of P loads, we therefore need reasonably simple models. A key factor controlling the P load from agriculture is the past and present use of nutrients in fertilizers and manure in relation to a crop's uptake, i.e. the soil-surface balance of P. Here, we present a simple empirical model that relates the P surplus (or deficit) in a farm to the edge-of-field losses of algal-available R Based on long-term fertilizer trials, the model first estimates the change in soil-test P of top soil with the aid of the soil-surface balance of P. Soil-test P is then used to approximate the concentration of dissolved reactive P in surface runoff and drainage flow, as adjusted for different P application types. The loss of particulate P is obtained from typical erosion rates. The model can be applied in life-cycle analyses and in assessing future developments. We illustrate use of the model by calculating the loss of algal-available P from conventional and organic crop and dairy farms located on clay and fine sand soils. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:266 / 278
页数:13
相关论文
共 39 条
[1]  
[Anonymous], 1988, World soil Resources Report No 60
[2]  
Börling K, 2004, J ENVIRON QUAL, V33, P99, DOI 10.2134/jeq2004.0099
[3]  
Cederberg C., 2000, J CLEAN PROD, V8, P49, DOI [DOI 10.1016/S0959-6526(99)00311-X, 10.1016/S0959-6526(99)00311-X]
[4]   Environmental impact assessment of conventional and organic milk production [J].
de Boer, IJM .
LIVESTOCK PRODUCTION SCIENCE, 2003, 80 (1-2) :69-77
[5]   Soil phosphorus management and water quality: a UK perspective [J].
Edwards, AC ;
Withers, PJA .
SOIL USE AND MANAGEMENT, 1998, 14 :124-130
[6]   Determining algal-available phosphorus of differing origin: routine phosphorus analyses versus algal assays [J].
Ekholm, P ;
Krogerus, K .
HYDROBIOLOGIA, 2003, 492 (1-3) :29-42
[7]   Assessment of water protection targets for agricultural nutrient loading in Finland [J].
Granlund, K ;
Räike, A ;
Ekholm, P ;
Rankinen, K ;
Rekolainen, S .
JOURNAL OF HYDROLOGY, 2005, 304 (1-4) :251-260
[8]  
GRONROOS J, 2000, 431 FINN ENV I
[9]   Indicators of resource use and environmental impact for use in a decision aid for Danish livestock farmers [J].
Halberg, N .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 1999, 76 (01) :17-30
[10]   PHOSPHORUS LEACHING FROM SOILS CONTAINING DIFFERENT PHOSPHORUS CONCENTRATIONS IN THE BROADBALK EXPERIMENT [J].
HECKRATH, G ;
BROOKES, PC ;
POULTON, PR ;
GOULDING, KWT .
JOURNAL OF ENVIRONMENTAL QUALITY, 1995, 24 (05) :904-910