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Repeated wet-dry cycles do not accelerate the mineralization of organic C involved in the macro-aggregation of a sandy loam soil

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Abstract

Repeated mild wet-dry cycles were imposed on a sandy loam to accelerate the mineralization of organic C involved in stabilising macro-aggregates. Soil maintained continually moist (control soil) was compared to that subjected to a series of 6 wet-dry cycles. Two patterns of rewetting and drying were investigated: (1) incubated dry at 25°C for six days between each wet-dry cycle (dry-incubated), or (ii) incubated moist for six days at 25°C between each cycle (moist-incubated). Changes in the proportion of >2 mm, 1–2 mm, 0.5–1 mm and 0.25–0.5 mm aggregates, and carbohydrate C extracted by hot-water or hot-1.5 M H2SO4, were measured after each wet-dry cycle, or weekly in the continuously moist control soil. Respiration rates (CO2 efflux) were measured during the incubation of the moist soil between the wet-dry cycles and compared with the continually-moist control soil.

The wet-dry treatments did not increase soil respiration in soil after re-wetting compared to soil kept continually moist and incubated for the same period of time. Despite this, the treatments caused changes in the amounts of acid- and water-extractable carbohydrate C fractions and substantial changes in aggregation. Macro-aggregation and the proportion of soil in each fraction did not change in the soil maintained continuously-moist for 6 weeks (control). However, effects of the two wet-dry treatments on total macro-aggregation were similar to those in the >2 mm, 1–2 mm and 0.25–0.5 mm aggregate fractions: there was a rapid decline in aggregation by 48–65% over the first two cycles, a sharp recovery to 78–100% of the initial aggregation after three cycles, and a further decline after 4–6 cycles.

The resistance of organic C mineralization to mild wet-dry cycles confirmed that the organic C in this soil is very stable and resistant to decomposition. Despite aggregates being disrupted, the organic C stabilising these aggregates was resistant to decomposition as determined by CO2 efflux. When soil was re-moistened and incubated to allow microbial re-colonization, aggregation was similar to that in the soil where microbial re-colonization was limited by rapid drying treatments. Short term changes in the aggregation of this soil appear to be dominated by chemical and/or physical processes.

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References

  • Adu J K and Oades J M 1978 Physical factors influencing decomposition of organic materials in soil aggregates. Soil Biol. Biochem. 10, 109–115.

    Google Scholar 

  • Angers D A and Mehuys G R 1989 Effects of cropping on carbohydrate content and water-stable aggregation of a clay soil. Can. J. Soil Sci. 69, 373–380.

    Google Scholar 

  • Beare M H, Cabrera M L, Hendrix P F and Coleman D C 1994 Aggregate-protected and unprotected organic matter pools in conventional- and no-tillage soils. Soil Sci. Soc. Am. J. 58, 787–795.

    Google Scholar 

  • Birch H F 1958 The effect of soil drying on humus decomposition and nitrogen availability. Plant and Soil 10, 9–31.

    Google Scholar 

  • Birch H F 1960 Nitrification in soils after different periods of dryness. Plant and Soil 12, 81–96.

    Google Scholar 

  • Birch J F and Friend M T 1961 Resistance of humus to decomposition. Nature 191, 731–732.

    Google Scholar 

  • Brink R H, Dubach P and Lynch D L 1960 Measuremerits of carbohydrates in soil hydrolyzates with anthrone. Soil Sci. 89, 157–166.

    Google Scholar 

  • Churchman G J and Tate K R 1986 Effect of slaughterhouse effluent and water irrigation upon aggregation in seasonally dry New Zealand soil under pasture. Aust. J. Soil Res. 24, 505–516.

    Google Scholar 

  • Cornish P S 1985 Adaptation of annual Medicago to a non-Mediterranean climate I. The growing season defined by available soil water. N.S.W. Dept. Agric. Tech. Bull. No. 32, 13–16.

  • Degens B P, Sparling G P and Abbott L K 1994 The contribution from hyphae, roots and organic carbon constituents to the aggregation of a sandy loam under clover-based grass or pastures. Europ. J. Soil Sci. 45, 459–468.

    Google Scholar 

  • Elliot E T 1986 Aggregate structure and carbon, nitrogen and phosphorus in native and cultivated soils. Soil Sci. Soc. Am. J. 50, 627–633.

    Google Scholar 

  • Haynes R J and Francis G S 1993 Changes in microbial biomass C, soil carbohydrate composition and aggregate stability induced by growth of selected crop and forage species under field conditions. J. Soil Sci. 44, 665–675.

    Google Scholar 

  • Haynes R J and Swift R S 1990 Stability of soil aggregates in relation to organic constituents and soil water content. J. Soil Sci. 41, 73–83.

    Google Scholar 

  • Horn R and Dexter A R 1989 Dynamics of soil aggregation in an irrigated desert loess. Soil Tillage Res. 13, 253–266.

    Google Scholar 

  • Jager G and Bruins E H 1975 Effect of repeated drying at different temperatures on soil organic matter decomposition and characteristics, and on the soil microflora. Soil Biol. Biochem. 7, 153–159.

    Google Scholar 

  • Kemper W D and Rosenau R C 1986 Aggregate stability and size distribution. In Methods of Soil Analysis Part I. Physical and Mineralogical Methods, 2nd edn. Ed. A Klute. pp 425–442. American Society of Agronomy, Madison, WI.

    Google Scholar 

  • Kieft T L, Soroker E and Firestone M 1987 Microbial biomass response to a rapid increase in water potential when dry soil is wetted. Soil Biol. Biochem. 19, 119–126.

    Google Scholar 

  • Kinsbursky R S, Levanon D and Yaron B 1989 Role of fungi in stabilizing aggregates of sewage sludge amended soils. Soil Sci. Soc. Am. J. 53, 1086–1091.

    Google Scholar 

  • Maramoto T, Kai H, Yoshida T and Harada T 1977 Relationship between and accumulation of soil organic matter becoming decomposable due to drying of soil and microbial cells. Soil Sci. Plant Nutr. 23, 1–8.

    Google Scholar 

  • Pannabokke C R and Quirk J P 1957 Effect of initial water content on stability of soil aggregates in water. Soil Sci. 83, 185–195.

    Google Scholar 

  • Powlson D S and Jenkinson D S 1976 The effects of biocidal treatments on metabolism in soil. II. Gamma irradiation, autoclaving, air-drying and fumigation. Soil Biol. Biochem. 8, 179–188.

    Google Scholar 

  • Raveh A and Avnimelech Y 1978 The effect of drying on the colloidal properties and stability of humic compounds. Plant and Soil 50, 545–552.

    Google Scholar 

  • Reid J B and Goss M J 1982 Interactions between soil drying due to plant water use and decreases in aggregate stability caused by maize roots. J. Soil Sci. 33, 47–53.

    Google Scholar 

  • Rovira A D and Greacen E L 1957 The effect of aggregate disruption on the activity of microorganisms in the soil. Aust. J. Agric. Res. 8, 659–673.

    Google Scholar 

  • Seneviratne R and Wild A 1985 Effect of mild drying on the mineralization of soil nitrogen. Plant and Soil 84, 175–179.

    Google Scholar 

  • Sorensen L H 1974 Rate of decomposition of organic matter in soil as influenced by repeated air drying-rewetting and repeated additions of organic material. Soil Biol. Biochem. 6, 286–292.

    Google Scholar 

  • Soulides D A and Allison F E 1961 Effect of drying and freezing on carbon dioxide production, available mineral nutrients, aggregation, and bacterial population. Soil Sci. 91, 291–298.

    Google Scholar 

  • Taylor G B and Ewing M A 1988 Effect of depth of burial on the longevity of hard seeds of subterranean clover and annual medics. Aust. J. Exp. Agric. 28, 77–81.

    Google Scholar 

  • Utomo W H and Dexter A R 1982 Changes in soil aggregate water stability induced by wetting and drying cycles in non-saturated soil. J. Soil Sci. 33, 623–637.

    Google Scholar 

  • Van Gestel M, Ladd J N and Amato M 1991 Carbon and nitrogen mineralization from two soils of contrasting texture and microaggregate stability: influence of sequential fumigation, drying and storage. Soil Biol. Biochem. 23, 313–322.

    Google Scholar 

  • Wardle D A and Parkinson D 1990 Comparison of physiological techniques for estimating the response of the soil microbial biomass to soilmaisture. Soil Biol. Biochem. 22, 817–823.

    Google Scholar 

  • Willis W O 1955 Freezing and thawing, and wetting and drying in soils treated with organic chemicals. Soil Sci. Soc. Am. Proc. 19, 263–267.

    Google Scholar 

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Degens, B.P., Sparling, G.P. Repeated wet-dry cycles do not accelerate the mineralization of organic C involved in the macro-aggregation of a sandy loam soil. Plant Soil 175, 197–203 (1995). https://doi.org/10.1007/BF00011355

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  • DOI: https://doi.org/10.1007/BF00011355

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