Influence of lime and gypsum on long-term rehabilitation of a Red Sodosol, in a semi-arid environment of New South Wales

被引:44
作者
Bennett, J. McL [1 ]
Greene, R. S. B. [2 ]
Murphy, B. W. [3 ]
Hocking, P.
Tongway, D. [2 ]
机构
[1] Univ So Queensland, Natl Ctr Engn Agr, Toowoomba, Qld 4350, Australia
[2] Australian Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT 0200, Australia
[3] Res Ctr, Dept Nat Resources, Cowra, NSW 2794, Australia
关键词
gypsum; lime; rehabilitation; sodicity; soil health; soil structure; SODIC SOILS; STRUCTURAL STABILITY; PHYSICAL-PROPERTIES; CATION-EXCHANGE; ORGANIC-MATTER; AMELIORATION; AMENDMENTS; CONSTRAINTS; MANAGEMENT; CACO3;
D O I
10.1071/SR13118
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
This paper determines the influence of lime and gypsum on the rehabilitation of a degraded sodic soil in a semi-arid environment 12 years after application. The aim was to assess rehabilitation strategies for sodic soils as alternatives to the application of gypsum alone. An experimental site was used where lime and gypsum combinations (L0G0, lime 0 t ha(-1) and gypsum 0 t ha(-1); L0G1, L0G2.5, L0G5, L1G0, L2.5G0, L5G0, L1G1, L2.5G1) had been applied 12 years prior, in 1994. An earlier study had reported on the effects after 3 years of the chemical ameliorants and tillage on a range of soil physical and chemical properties at the site. The current study, sampled in 2006, assessed the effects after 12 years of lime and gypsum on soil chemistry, stability, hydraulics, vegetative growth and soil respiration. Calcium, primarily from lime, was observed to have a major effect on soil health. Significant effects on soil chemistry were limited to increases in exchangeable calcium and decreases in exchangeable magnesium, although aggregate stability in water and hydraulic conductivity were significantly improved where L5G0 was applied. Vegetation patch width, total nitrogen and carbon, and soil respiration were significantly improved where lime had been added at 2.5 or 5 t ha(-1). As no lime could be detected in the soil 12 years after application, it was deduced that lime had acted as a catalyst for increased functionality in soil and vegetation interactions. This increased soil functionality resulted in an increased rate of lime dissolution in the soil.
引用
收藏
页码:120 / 128
页数:9
相关论文
共 55 条
[41]  
Stace HCT., 1968, A handbook of Australian soils
[42]   SODIC SOILS - NEW PERSPECTIVES [J].
SUMNER, ME .
AUSTRALIAN JOURNAL OF SOIL RESEARCH, 1993, 31 (06) :683-750
[43]  
Szabolcs I, 1991, P INT C AGR MAN SALT
[44]  
Szabolcs I, 1989, SALT AFFECTED SOILS
[45]  
Tisdall AL, 1997, AUSTR J SOIL RES, V35, P55, DOI [10.1071/S96065, DOI 10.1071/S96065]
[46]   FUNGAL HYPHAE AND STRUCTURAL STABILITY OF SOIL [J].
TISDALL, JM .
AUSTRALIAN JOURNAL OF SOIL RESEARCH, 1991, 29 (06) :729-743
[47]   STABILIZATION OF SOIL AGGREGATES BY THE ROOT SYSTEMS OF RYEGRASS [J].
TISDALL, JM ;
OADES, JM .
AUSTRALIAN JOURNAL OF SOIL RESEARCH, 1979, 17 (03) :429-441
[48]  
Tongway D.J., 1994, Rangeland Soil Condition Assessment Manual
[49]  
Tongway DJ, 2005, ECOSYSTEMS FUNCTION
[50]  
Tongway DJ., 2011, Restoring disturbed landscapes: putting principles into practice