Phosphorus fractions and fate of phosphorus-33 in soils under plowing and no-tillage

被引:49
作者
Daroub, SH [1 ]
Pierce, FJ [1 ]
Ellis, BG [1 ]
机构
[1] Michigan State Univ, Dept Crop & Soil Sci, E Lansing, MI 48824 USA
关键词
D O I
10.2136/sssaj2000.641170x
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
Minimum tillage may alter soil P fractions through the application of P fertilizers and the deposition of organic matter on the surface rather than being incorporated into the soil. This study was conducted to determine whether no-tillage (NT) systems affected soil organic and inorganic P fractions and the transformation of P from residues applied to soils. Surface soils (0-2 cm) under NT and conventional tillage (CT) were sampled from three long-term research sites. Inorganic and organic P was measured in the NaHCO3 microbial, NaOH, NaOH after sonication, HCl, and residual fractions extracted sequentially. Soybean (Glycine maw L.) residues labeled with P-33 were added to soils, incubated, and extracted periodically, and P-33 was counted in the different P fractions. Levels of (3)1P in NT were higher in some of the fractions compared with CT; however, there was no consistency in P-31 fractionation across soil types due to tillage in any of the inorganic and organic fractions. At the start of incubation, 56 to 82% of the applied P-33 was extracted in the resin fraction in the three soils. Resin-P-33 followed a three-parameter single exponential decay model with a corresponding increase in other pools depending on soil. The increase in these pools followed a quadratic model in the three soils. By the end of the incubation period, the NaOH fraction accounted for the majority of the UP released from the labile resin pool. An increase in the calcium phosphate pool occurred in the calcareous soil. Tillage had no effect on the fate of P-33 released from soybean residues during the incubation period.
引用
收藏
页码:170 / 176
页数:7
相关论文
共 33 条
[1]  
AMER F., 1955, Plant and Soil, V6, P391, DOI 10.1007/BF01343648
[2]   TRANSFORMATIONS OF ORGANIC PHOSPHORUS SUBSTRATES IN SOILS AS EVALUATED BY NAHCO3 EXTRACTION [J].
BOWMAN, RA ;
COLE, CV .
SOIL SCIENCE, 1978, 125 (01) :49-54
[3]   DETERMINATION OF TOTAL, ORGANIC, AND AVAILABLE FORMS OF PHOSPHORUS IN SOILS [J].
BRAY, RH ;
KURTZ, LT .
SOIL SCIENCE, 1945, 59 (01) :39-45
[4]   MEASUREMENT OF MICROBIAL BIOMASS PHOSPHORUS IN SOIL [J].
BROOKES, PC ;
POWLSON, DS ;
JENKINSON, DS .
SOIL BIOLOGY & BIOCHEMISTRY, 1982, 14 (04) :319-329
[5]  
Chapman H.D., 1965, METHODS SOIL ANAL CH, DOI DOI 10.2134/AGRONMONOGR9.2.C6
[6]   CHEMICAL ATTRIBUTES OF SOILS SUBJECTED TO NO-TILL CROPPING WITH RYE COVER CROPS [J].
ECKERT, DJ .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1991, 55 (02) :405-409
[7]   EFFECTS OF CULTIVATION ON THE DISTRIBUTION OF NUTRIENTS IN THE SOIL AND THE UPTAKE OF NITROGEN AND PHOSPHORUS BY SPRING BARLEY AND WINTER-WHEAT ON 3 SOIL TYPES [J].
ELLIS, FB ;
HOWSE, KR .
SOIL & TILLAGE RESEARCH, 1980, 1 (01) :35-46
[8]   SURFACE SOIL NUTRIENT DISTRIBUTION AS AFFECTED BY WHEAT-FALLOW TILLAGE SYSTEMS [J].
FOLLETT, RF ;
PETERSON, GA .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1988, 52 (01) :141-147
[9]  
Gardner W. H., 1986, Methods of soil analysis. Part 1. Physical and mineralogical methods, P493
[10]   METHOD TO MEASURE MICROBIAL PHOSPHATE IN SOILS [J].
HEDLEY, MJ ;
STEWART, JWB .
SOIL BIOLOGY & BIOCHEMISTRY, 1982, 14 (04) :377-385