Research Article | Published: 01 June 2005

Water Absorption and Leaching Loss of Leaf Litters Used as Manure in Central Himalaya, India.

R. D. Singh, K. S. Rao and S. Chandra

Indian Journal of Forestry | Volume: 28 | Issue: 2 | Page No. 170-175 | 2005
DOI: https://doi.org/10.54207/bsmps1000-2005-R6OUYN | Cite this article

Abstract

To explore the influence of substrate type on water absorption and leaching loss, leaf litter of a deciduous broad-leaf species frequenting agricultural terraces – Bhimal (Grewia optiva Dumm. Ex Burret.), evergreen broad-leaf – Oak (Quercus incana L.), conifers – Deodar (Cedrus deodara Roxb.) and Pine (Pinus roxburghii Sarg.) were compared in a laboratory study. Fresh leaf litter of these species was immersed for 16 days in deionized water at room temperature (-230C). Samples were taken at 2, 5, 18, 24, 48, 72, 96, 192 and 384 hours. Depending on the species the litter lost between 10.9 to 39% of initial dry mass, while water absorption values were between 157 to 307% of dry mass. Water soluble substances including minerals (ash) contributed maximum to the mass losses. Bhimal litter was distinguished by its high water absorption and high mass losses during leaching. In general, the conifers (Pine and Deodar) and broad leaved (Oak) trees from natural vegetation had low water soluble substances and exhibited mass losses in comparison to the Bhimal that grows only on agricultural fields.

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References

1. Aber, J.D. and Melillo, J.M. (1980). Litter decomposition: measuring relative contribution of organic matter and nitrogen to forest soils. Canadian Journal of Botany, 58:416-421.  https://doi.org/10.1139/b80-046

Google Scholar

2. Anderson, J.M. and Ingram, J.S.I. (eds.) (1989). Tropical Soil Biology and Fertility: A Handbook of Methods. CAB International, Wellingford, UK.

3. Berg, B. and Wessen, B. (1984). Changes in organic chemical components and ingrowths of fungal mycelium in decomposing birch leaf litter as compared to pine needles. Pedobiologia, 26:285-298.  https://doi.org/10.1016/S0031-4056(23)05983-8

Google Scholar

4. Buldgen, P. (1982). Features of nutrient leaching from organic soil layer microcosms of beech and spruce forests: effects of temperature and rainfall. Oikos, 38:99-107.  https://doi.org/10.2307/3544571

Google Scholar

5. Ibrahima, A.; Joffre, R. and Gillon, D. (1995). Change in litter during the initial leaching phase: as experiment on the leaf litter of Mediterranean species. Soil Biology & Biochemistry, 27:913-939.  https://doi.org/10.1016/0038-0717(95)00006-Z

Google Scholar

6. Jackson, M.L. (1973). Soil Chemical Analysis. Printice Hall of India Private Limited, New Delhi.

Google Scholar

7. Mangenot, F. and Toutain, F. (1980). Les Litieres. In: Actualites d’Ecologie Forestiere: Sol, Flore, Faune. (P. Pesson, Ed.) pp. 3-59. Gauthier-Villars, Paris.

Google Scholar

8. McClaugherty, C. and Berg, B. (1987). Cellulose, lignin and nitrogen concentrations as rate regulating factors in late stages of forest litter decomposition. Pedobiologia, 30:101-112.  https://doi.org/10.1016/S0031-4056(23)00361-X

Google Scholar

9. Moore, A.M. (1986). Temperature and moisture dependence of decomposition rates of hardwood and coniferous leaf litter. Soil Biology & Biochemistry, 18:427-435.  https://doi.org/10.1016/0038-0717(86)90049-0

Google Scholar

10. Pandey, U. and Singh, J.S. (1982). Leaf litter decomposition in an oak-conifer forest in Himalaya: the effects of climate and chemical composition. Forestry, 55:47-58.  https://doi.org/10.1093/forestry/55.1.47

Google Scholar

11. Parsons, W.F.J.; Taylor, B.R. and Parkinson, D. (1990). Decomposition of aspen (Populus tremuloides) leaf litter modified by leaching. Canadian Journal of Forest Research, 20:943-951.  https://doi.org/10.1139/x90-127

Google Scholar

12. Reddy, V.M. and Venkataiah, B. (1989). Influence of microarthropod abundance and climatic factors on weight loss and mineral nutrient contents of Eucalyptus leaf litter during decomposition. Biology and Fertility of Soils, 8:319-324.  https://doi.org/10.1007/BF00263162

Google Scholar

13. Singh, J. and Ramakrishnan, P.S. (1981). Biomass and nutrient movement through litter in Shorea robusta Gaertn.f. plantations in Meghalaya. Proceedings of Indian National Science Academy. 47B:852-860.

Google Scholar

14. Singh, J.S. and Singh, S.P. (1992). Forests of Himalaya: Structure, functioning and impact of man. Gyanodaya Prakashan, Nanital.

Google Scholar

15. Singh, R.D. and Yadav, D.B. (1986). Transformation of N, P and Organic matter during paddy straw decomposition with and without rock phosphate. Agricultural Wastes, 18:247-251.  https://doi.org/10.1016/0141-4607(86)90118-6

Google Scholar

16. Singh, S.P.; Rawat, Y.S.; Rana, B.S. and Negi, G.C.S. (1990). Effects of unusually large seed crop on litter fall and nitrogen retrainslocation in Himalayan Oaks. Forests Ecology and Management, 32:79-86.  https://doi.org/10.1016/0378-1127(90)90162-5

Google Scholar

17. Stohlgren, T.J. (1988). Litter dynamics in two Sierran mixed conifer forests: II. Nutrient release in decomposing leaf litter. Canadian Journal of Forest Research, 18:1136-1144.  https://doi.org/10.1139/x88-175

Google Scholar

18. Taylor, B.R. (1985). A comparison of decomposition of pine needles and aspen leaves. Ph.D. Thesis. University of Calgary, Alta, Canada.

Google Scholar

19. Taylor, B.R. and Parkinson, D. (1988a). Patterns of water absorption and leaching in Pine and Aspen leaf litter. Soil Biology & Biochemistry. 20:257-258.  https://doi.org/10.1016/0038-0717(88)90047-8

Google Scholar

20. Taylor, B.R. and Parkinson, D. (1988b). Aspen and Pine leaf litter decomposition in laboratory microcosms. I. Linear versus exponential models of decay. Canadian Journal of Botany, 66:1960-1965.  https://doi.org/10.1139/b88-268

Google Scholar

21. Taylor, B.R.; Parkinson, D. and Parsons, W.F.J. (1989). Nitrogen and lignin content as predictors of litter decay rates: a microcosm test. Ecology, 70:97-104.  https://doi.org/10.2307/1938416

Google Scholar

22. Toky, O.P. and Ramakrishnan, P.S. (1983). Secondary succession following slash and burn agriculture in north eastern India. II. Nutrient cycling. Journal of Ecology, 71:747-757.  https://doi.org/10.2307/2259590

Google Scholar

23. Tukey, H.B. (1970). The leaching of substances for plants. Annual Review of Plant Physiology. 21:305-324.  https://doi.org/10.1146/annurev.pp.21.060170.001513

Google Scholar

24. Walsh, R.P.D. and Voigt, P.J. (1977). Vegetation litter: an underestimated variable in hydrology and geomorphology. Journal of Biogeography, 4:253-274.  https://doi.org/10.2307/3038060

Google Scholar

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How to cite

Singh, R.D., Rao, K.S. and Chandra, S., 2005. Water Absorption and Leaching Loss of Leaf Litters Used as Manure in Central Himalaya, India.. Indian Journal of Forestry, 28(2), pp.170-175. https://doi.org/10.54207/bsmps1000-2005-R6OUYN

Publication History

Manuscript Published on 01 June 2005

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