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Articles

Soil hydrophysical properties under different nutrient management practices, their relationship with soil organic carbon fractions and crop yield under pigeonpea-wheat sequence

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Pages 384-400 | Received 19 Oct 2016, Accepted 27 Feb 2018, Published online: 30 Dec 2018

References

  • Bellaki, M. A., V. P. Badanur, and R. A. Setty. 1998. Effect of long-term integrated nutrient management on some important properties of a vertisol. Journal of the Indian Society of Soil Science 46:176–80.
  • Benbi, D. K., C. R. Biswas, S. S. Bawa, and K. Kumar. 1998. Influence of farmyard manure, inorganic fertilizers and weed control practices on some soil physical properties in a long-term experiment. Soil Use and Management 14 (1):52–54. doi: 10.1111/j.1475-2743.1998.tb00610.x.
  • Bhattacharyya, R., V. Prakash, S. Kundu, and H. S. Gupta. 2006. Effect of tillage and crop rotations on pore size distribution and soil hydraulic conductivity in sandy clay loam soil of the Indian Himalayas. Soil and Tillage Research 86 (2):129–40. doi: 10.1016/j.still.2005.02.018.
  • Bhattacharyya, R., M. D. Tuti, S. Kundu, J. K. Bisht, and J. C. Bhatt. 2012. Conservation tillage impacts on soil aggregation and carbon pools in a sandy clay loam soil of the Indian Himalayas. Soil Science Society of America Journal 76:1–9.
  • Bhattacharyya, R., V. Prakash, S. Kundu, A. K. Srivastva, H. S. Gupta, and S. Mitra. 2010. Long term effects of fertilization on carbon and nitrogen sequestration and aggregate associated carbon and nitrogen in the Indian Sub-Himalayas. Nutrient Cycling in Agroecosystems 86 (1):1–16. doi: 10.1007/s10705-009-9270-y.
  • Blair, G. J., R. D. B. Lefroy, and L. Lisle. 1995. Soil carbon fractions based on their degree of oxidation and the development of a carbon management index for agricultural system. Australian Journal of Agricultural Research 46 (7):1459–66. doi: 10.1071/AR9951459.
  • Blanco-Canqui, H., B. J. Wienhold, V. L. Jin, M. R. Schmer, and L. C. Kibet. 2017. Long-term tillage impact on soil hydraulic properties. Soil and Tillage Research 170:38–42. doi: 10.1016/j.still.2017.03.001.
  • Bouyoucos, G. J. 1962. Hydrometer method improved for making particle size analysis of soils. Agronomy Journal 54 (5):464–65. doi: 10.2134/agronj1962.00021962005400050028x.
  • Cambardella, C. A., and E. T. Elliott. 1992. Particulate soil organic matter changes across a grassland cultivation sequence. Soil Science Society of America Journal 56 (3):777–83. doi: 10.2136/sssaj1992.03615995005600030017x.
  • Chauhan, Y. S., A. Apphun, V. K. Singh, and B. S. Dwivedi. 2004. Foliar sprays of concentrated urea at maturity of pigeonpea to induce defoliation and increase its residual benefit to wheat. Field Crops Research 89 (1):17–25. doi: 10.1016/j.fcr.2004.01.016.
  • Conde, P., J. A. Martin Rubi, and R. J. Ballesta. 2007. Chemical vulnerability of red soils in La Mancha (Central Spain). Science of the Total Environment 378 (1-2):228–32. doi: 10.1016/j.scitotenv.2007.01.082.
  • Das, A., B. S. Dwivedi, V. K. Singh, S. P. Datta, M. C. Meena, D. Chakraborty, K. K. Bandyopadhyay, R. Kumar, and R. P. Mishra. 2017. Long-term effects of fertilisers and organic sources on soil organic carbon fractions under a rice–wheat system in the Indo-Gangetic plains of North-West India. Soil Research 55 (3):296–308.
  • Das, T. K., R. Bhattacharyya, S. Sudhishri, A. R. Sharma, Y. S. Saharawat, K. K. Bandyopadhyay, S. Sepat, R. S. Bana, P. Aggarwal, R. K. Sharma., et al. 2014. Conservation agriculture in an irrigated cotton–wheat system of the Western Indo-Gangetic plains: crop and water productivity and economic profitability. Field Crops Research 158:24–33. doi: 10.1016/j.fcr.2013.12.017.
  • Descroix, L., D. Viramontes, M. Vauclin, J. L. Gonzalez Barrios, and M. Esteves. 2001. Influence of soil surface features and vegetation on runoff and erosion in the Western Sierra Madre (Durango, Northwest Mexico). Catena 43 (2):115–35. doi: 10.1016/S0341-8162(00)00124-7.
  • Elhakeem, M., A. N. T. Papanicolaou, C. G. Wilson, Y. J. Chang, L. Burras, B. Abban, D. A. Wysocki, and S. Wills. 2018. Understanding saturated hydraulic conductivity under seasonal changes in climate and land use. Geoderma 315:75–87. doi: 10.1016/j.geoderma.2017.11.011.
  • Gamie, R., and F. D. Smedt. 2017. Experimental and statistical study of saturated hydraulic conductivity and relations with other soil properties of a desert soil. European Journal of Soil Science 69:256–264. doi: 10.1111/ejss.12519.
  • Ghosh, A., R. Bhattacharyya, M. C. Meena, B. S. Dwivedi, G. Singh, R. Agnihotri, and C. Sharma. 2018. Long-term fertilization effects on soil organic carbon sequestration in an inceptisol. Soil and Tillage Research 177:134–44. doi: 10.1016/j.still.2017.12.006.
  • Gomez, K. A., and A. A. Gomez. 1984. Statistical procedures for agricultural research. Loss Banos, Manila: IRRI.
  • Hanway, J. J., and H. Heidel. 1952. Soil analysis methods as used in Iowa state college soil testing laboratory. Iowa Agriculture 57:1–31.
  • Hassan, F. U., M. Ahmad, N. Ahmad, and M. K. Abbasi. 2007. Effects of subsoil compaction on yield and yield attributes of wheat in the sub-humid region of Pakistan. Soil and Tillage Research 96 (1-2):361–66. doi: 10.1016/j.still.2007.06.005.
  • Hati, K. M., K. G. Mandal, A. K. Misra, P. K. Ghosh, and K. K. Bandyopadhyay. 2006. Effect of inorganic fertilizer and farmyard manure on soil physical properties, root distribution, and water-use efficiency of soybean in vertisols of Central India. Bioresource Technology 97 (16):2182–88. doi: 10.1016/j.biortech.2005.09.033.
  • Ishaq, M., A. Hassan, M. Saeed, M. Ibrahim, and R. Lal. 2001. Subsoil compaction effects on crops in Punjab, Pakistan. II. Root growth and nutrient uptake of wheat and sorghum. Soil and Tillage Research 59 (1-2):57–65.
  • Jackson, M. L. 1973. Soil chemical analysis. New Delhi, India: Prentice Hall of India Pvt. Ltd.
  • Jastrow, J. D. 1996. Soil aggregate formation and the accrual of particulate and mineral associated organic matter. Soil Biology and Biochemistry 28 (4-5):665–76. doi: 10.1016/0038-0717(95)00159-X.
  • Kemper, W. D., and R. C. Rosenau. 1986. Aggregate stability and size distribution. In: Methods of soil analysis: Part I, ed. A. Klute, 425–42. Madison, WI: American Society of Agronomy Monograph 9.
  • Kemper, W. D., T. J. Trout, A. S. Humpherys, and M. S. Bullock. 1988. Mechanisms by which surge irrigation reduces furrow infiltration rates in silty loam soil. Trans. ASAE 31:821–29.
  • Lado, M., A. Paz, and M. Ben-Hur. 2004. Organic matter and aggregate-size interactions in saturated hydraulic conductivity. Soil Science Society of America Journal 68 (1):234–42. doi: 10.2136/sssaj2004.2340.
  • Liu, A. J., S. T. Tong, and J. A. Goodrich. 2000. Land use as a mitigation strategy for the water-quality impacts of global warming: a scenario analysis on two watersheds in the Ohio river basin. Environmental Engineering Policy 2:65–76.
  • Mandal, N., B. S. Dwivedi, M. C. Meena, D. Singh, S. P. Datta, R. K. Tomar, and B. M. Sharma. 2013. Effect of farmyard manure, sulphitation pressmud and pigeonpea leaf-litter on soil organic carbon fractions, mineral nitrogen and crop yields in a pigeonpea-wheat cropping system. Field Crops Research 154:187–78. doi: 10.1016/j.fcr.2013.08.007.
  • Nouwakpo, S. K., J. Song, and J. M. Gonzalez. 2018. Soil structural stability assessment with the fluidized bed, aggregate stability, and rainfall simulation on long-term tillage and crop rotation systems. Soil and Tillage Research 178:65–71. doi: 10.1016/j.still.2017.12.009.
  • Oades, J. M. 1984. Soil organic matter and structural stability: mechanisms and implication for management. Plant and Soil 76 (1–3):319–37. doi: 10.1007/BF02205590.
  • Olsen, S. R., C. V. Cole, F. S. Watanabe, and L. A. Dean. 1954. Estimation of available phosphorus in soils by extraction with sodium bicarbonate, 939. Washington, DC: U.S. Department of Agriculture Circular.
  • Ravindra, B., Narayanswamy, G. V., and N. A. J. Govda, Sivannagappa. 1985. Effect of fertilizers along with residues on soil aggregation. Journal of the Indian Society of Soil Science 33:704–09.
  • Regelink, I. C., C. R. Stoof, S. Rousseva, L. Weng, G. J. Lair, P. Kram, N. P. Nikolaidis, M. Kercheva, S. Banwart, and R. J. Comans. 2015. A linkages between aggregate formation, porosity and soil chemical properties. Geoderma 247–248:24–37. doi: 10.1016/j.geoderma.2015.01.022.
  • Rowell, D. L. 1994. Soil science methods and application. Essex, England: Pearson Education Ltd.
  • Rücknagel, J., P. Götze, B. Koblenz, N. Bachmann, S. Löbner, S. Lindner, J. Bischoff, and O. Christen. 2016. Impact on soil physical properties of using large-grain legumes for catch crop cultivation under different tillage conditions. European Journal of Agronomy 77:28–37. doi: 10.1016/j.eja.2016.03.010.
  • Saha, D., S. S. Kukal, and S. Sharma. 2011. Land use impacts on SOC fractions and aggregate stability in typic ustochrepts of northwest India. Plant and Soil 339 (1–2):457–70. doi: 10.1007/s11104-010-0602-0.
  • Singh, V. K., B. S. Dwivedi, A. K. Shukla, Y. S. Chauhan, and R. L. Yadav. 2005. Diversification of rice with pigeonpea in a rice-wheat cropping system on a typic ustochrept: effect on soil fertility, yield and nutrient use efficiency. Field Crops Research 92 (1):85–105. doi: 10.1016/j.fcr.2004.09.011.
  • Sivasamy, R. 1982. Transmission of added fertilizer phosphorus under continuous cropping and fertilization. M.Sc Thesis, Tamil Nadu Agricultural University, Coimbatore.
  • Six, J., and K. Paustian. 2014. Aggregate-associated soil organic matter as an ecosystem property and a measurement tool. Soil Biology and Biochemistry 68:A4–A9. doi: 10.1016/j.soilbio.2013.06.014.
  • Snyder, J. D., and J. A. Trofymow. 1984. A rapid accurate wet oxidation diffusion procedure for determining organic and inorganic carbon in pot and soil samples. Communications in Soil Science and Plant Analysis 15 (5):587–97. doi: 10.1080/00103628409367499.
  • SPSS. 1990. SPSS/PC + statistics 16.0. Chicago, IL: SPSS Inc.
  • Subbiah, B. V., and G. L. Asija. 1956. A rapid procedure for the estimation of available nitrogen in soil. Current Science 25:259–60.
  • Swaminathan, M. S. 2006. Plenary address. In: Proceedings of International Conference on soil, water and environment quality-issues and strategies, 30–42. New Delhi, India: Indian Society of Soil Science.
  • Tarenitzky, J., Y. Golobati, R. Veren, and Y. Chen. 1999. Wastewater effects on montmorillonite suspensions and hydraulic properties of sandy soil. Soil Science Society of America Journal 63:554–60. doi: 10.2136/sssaj1999.03615995006300030018x.
  • Tisdall, J. M., and J. M. Oades. 1982. Organic matter and water-stable aggregates in soils. Journal of Soil Science 33 (2):141–63. doi: 10.1111/j.1365-2389.1982.tb01755.x.
  • Trivedi, P., I. J. Rochester, C. Trivedi, J. D. V. Nostrand, J. Zhou, S. Karunaratne, I. C. Anderson, and B. K. Singh. 2015. Soil aggregate size mediates the impacts of cropping regimes on soil carbon and microbial communities. Soil Biology and Biochemistry 91:169–81. doi\: 10.1016/j.soilbio.2015.08.034.
  • Van Bavel, C. H. M. 1950. Mean weight diameter of soil aggregates as a statistical index of aggregation. Soil Science Society of America Journal 14:20–23. doi: 10.2136/sssaj1950.036159950014000C0005x.
  • Veihmeyer, J., and A. H. Hendrickson. 1948. Soil density and root penetration. Soil Science 65 (6):487–93. doi: 10.1097/00010694-194806000-00006.
  • Walkley, A. J., and C. A. Black. 1934. An estimation of the Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science 37 (1):29–38. doi: 10.1097/00010694-193401000-00003.
  • Williams, C. H., and A. Steinbergs. 1959. Soil sulphur fraction as chemical indices of available sulphur in soils. Australian Journal of Agricultural Research 10 (3):340–52. doi: 10.1071/AR9590340.
  • Yadav, R. L., B. S. Dwivedi, K. Prasad, O. K. Tomar, N. J. Shurpali, and P. S. Pandey. 2000. Yield trends and changes in soil organic-C and available NPK in a long-term rice-wheat system under integrated use of manures and fertilizers. Field Crops Research 68 (3):219–46. doi: 10.1016/S0378-4290(00)00126-X.
  • Yoder, R. E. 1936. A direct method of aggregate analysis and study of the physical nature of erosion losses. Agronomy Journal 28 (5):337–34. doi: 10.2134/agronj1936.00021962002800050001x.
  • Zhong, X., J. Li, X. Li, Y. Ye, S. Liu, P. Hallett, M. Ogden, and M. Naveed. 2017. Physical protection by soil aggregates stabilizes soil organic carbon under simulated N deposition in a subtropical Forest of China. Geoderma 285:323–32. doi: 10.1016/j.geoderma.2016.09.026.

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