CAO Qing, WEI Xiaolan, WU Caijiao, et al. Simulation Study on Effects of Salt Accumulation on Electrochemical Properties and Water-stable Aggregates in Greenhouse Soil[J]. Bulletin of Soiland Water Conservation, 2016, 36(1): 164-168.
DOI:
CAO Qing, WEI Xiaolan, WU Caijiao, et al. Simulation Study on Effects of Salt Accumulation on Electrochemical Properties and Water-stable Aggregates in Greenhouse Soil[J]. Bulletin of Soiland Water Conservation, 2016, 36(1): 164-168. DOI: 10.13961/j.cnki.stbctb.2016.01.028.
Simulation Study on Effects of Salt Accumulation on Electrochemical Properties and Water-stable Aggregates in Greenhouse Soil
[Objective] The objective of this study is to analyze the variations of soil pH value and surface charge under salt stress
and its influences on the structure of soil water-stable aggregates in order to provide basis for the soil amelioration in horticulture and vegetable garden. [Methods] The laboratory incubation experiment was applied to investigate the effects of salt accumulation on pH value
electrochemical properties and water-stable aggregates of yellow cinnamon soil in the surrounding area of Hefei City. Four salinity treatments(0.3%
0.6%
0.9%
1.2%) and a control treatment(CK) were set up and incubated for 60 d at 25 ℃ in incubator. The samples were then collected from the incubator at 10 d
30 d and 60 d separately
for the following analysis. [Results] Soil pH value decreased with the increase of salt concentration. Compared to CK
soil pH value of the sample incubated after 60 d decreased by 0.53 at 1.2% salinity level. The amount of soil negative charge decreased with the increase of salt concentration
while there was no significant change in positive charge. The simulated salt with Ca2+
Mg2+ improved the cementation of micro-aggregates
and resulted in an increase of the amount of macro-aggregates. [Conclusion] Salt can decrease soil pH value and soil negative charge
and improve soil cementation
and also increase the amount of micro-aggregates.
关键词
Keywords
references
Ladenburger C G, Hild A L, Kazmer D J, et al. Soil salinity patterns in Tamarix invasions in the Bighorn Basin, Wyoming, USA[J]. Journal of Arid Environments, 2006,65(1):111-128.
Yildirim E, Taylor A G, Spittler T D. Ameliorative effects of biological treatments on growth of squash plants under salt stress[J]. Scientia Horticulturae, 2006,111(1):1-6.
Gillman G F, Uehara G. Charge characteristics of soils with variable and permanent charge minerals(Ⅱ): Experimental[J]. Soil Science Society of America Journal, 1980,44(2):252-255.
Marcano-Martinez E, McBride M B. Comparison of the titration and ion adsorption methods for surface charge measurement in oxisols[J]. Soil Science Society of America Journal, 1989,53(4):1040-1045.
Amézketa E. Soil aggregate stability: A review[J]. Journal of Sustainable Agriculture, 1999,14(2):83-151.
Murer J E, Baumgarten A, Eder G, et al. An improved sieving machine for estimation of soil aggregate stability(SAS)[J]. Geoderma, 1993,56(1/2/3/4):539-547.
Khattak R A, Jarrell W M. Salt-induced manganese solubilization in California soils[J]. Soil Science Society of America Journal. 1988,52(6):1060-1611.
Abu-Sharar T M, Bingham F T, Rhoades J D. Reduction in hydraulic conductivity in relation to clay dispersion and dis aggregation[J]. Soil Science Society of America Journal, 1987,51(2):342-346.