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Effect of Integrated Use of Lime, Manure and Mineral P Fertilizer on Bread Wheat (Triticum Aestivum) Yield, P uptake and Status of Residual Soil P on Acidic Soils of Gozamin District, North-Western Ethiopia

Received: 18 January 2014    Accepted:     Published: 20 March 2014
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Abstract

Soil acidity problem is one of the bottlenecks to improve crop production in high rainfall regions of Ethiopia in general and in Gozamin District of Amhara region in particular. The aim of this study was to examine the effects of integrated use of lime, manure and mineral P fertilizer on acid soils for wheat production and status of residual soil P. The treatments were factorial combinations of lime, manure and P fertilizer which were laid down in a randomized complete block design with three replications. The field study was conducted on Dystric Nitisols in the 2011 and 2012 main cropping seasons at Enerata Kebele, Gozamin District. Lime application hastened early germination while plant height was enhanced by interaction of lime and P. Most parameters were significantly (p < 0.01) affected by two-way interactions while three-way interactions effect increased grain and straw yield at non-significant (p > 0.05) level. In these interactions lime rates were related in quadratic trend while manure and mineral P related linearly. The combined application of 5 t manure and 2.2 t ha-1 lime increased grain and straw yield by 279% and 187%, respectively over the control treatment through economical analysis result 515 Eth. birr ($28) ha-1 profit obtained due to additional yield obtained. Although all treatments residual soil P were categorized under very low status, it has strong positive correlation (r2 = 0.79) with lime application. The present study showed the combined application of 5 t manure and 2.2 t ha-1 lime was found to be economical feasible to improve wheat yield and yield components and residual soil P of acidic soils of the study area.

Published in Agriculture, Forestry and Fisheries (Volume 3, Issue 2)
DOI 10.11648/j.aff.20140302.15
Page(s) 76-85
Creative Commons

This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Bread Wheat Yield, Dystric Nitisols, Integrated, Lime, Manure

References
[1] World Bank. Natural resource degradation in Sub Saharan Africa. Restoration of soil fertility. A concept paper and action plan. World Bank, Washington, USA. 1996.
[2] C. Marc, S. Abebe and H. Mitiku. Farmers’ knowledge of soil fertility and local management strategies in Tigray, Ethiopia. Managing Africa’s Soils, 2000, 10: pp 1-30.
[3] A. Maatman, M. Wopereis, K. Debrah and J. Groot. From Thousands to Millions: Accelerating Agricultural Intensification and Economic Growth in Sub-Saharan Africa. In: Bationo (Ed.), Springer. Advances in Integrated Soil Fertility Management in Sub-Saharan Africa: Challenges and Opportunities, 2007, pp 75–84.
[4] Food and Agriculture Organization. Ethiopian Highland Reclamation Study, Ethiopia. Final Report (Volume I and II). Food and Agricultural Organization of the United Nations, 1986, Rome, Italy.
[5] C. Achalu, G. Heluf, K. Kibebew and T. Abi. Response of barley to liming of acid soils collected from different land use systems of western Oromia, Ethiopia. Journal of Biodiversity and Environmental Sciences, 2012, 2(5): pp 37-49.
[6] A. Nekesa. Effect of Minjingu phosphate rock and agricultural lime in relation to maize, groundnut and soybean yields on acid soils of western Kenya. MSc Thesis, Moi University, Eldoret, Kenya. 2007.
[7] H. Schlede. Distribution of acid soils and liming materials in Ethiopia. Ethiopian Institute of Geological Surveys, Ministry of Mines and Energy. Addis Ababa, Ethiopia. 1989.
[8] A. Mesfin. Nature and management of acid soils in Ethiopia, 2007. www.eiar.gov.et/ Soil/ soils acid.pdf.
[9] Amhara National Regional State’s Investment office. Potential survey, identification of opportunities and preparations of projects profiles and feasibility studies, part one potential assessment. Unpublished soil survey study report by Development Studies Association (DSA) and Shawel Consult International (SCI). 2006.
[10] B. Woldeamlak and S. Geert. Assessment of soil erosion in cultivated field using a survey methodology for rill in the Chemoga watershed, Ethiopia. Unpublished doctoral dissertation, Wageningen University, The Netherlands. 2003.
[11] H. Hurni. Land degradation, famines and resource scenarios in Ethiopia. In: Pimentel, D. (Ed). World Soil Erosion and Conservation. Cambridge University Press, pp 27–62. 1993.
[12] B. Woldeamlak and L. Stroonsijder. Effects of agro-ecological land use succession on soil properties in Chemoga watershed, Blue Nile basin, Ethiopia. Geoderma, 2003, 111: pp 85-98.
[13] G. Ashenafi. Triticale production in Ethiopia- its impact on food security and poverty alleviation in the Amhara Region, Doctoral thesis, Kassel University, Germany. 2008. urn:nbn:de 0002-4115no. 2007:03.
[14] A. Worku Effects of nitrogen and seed rates on yield and yield components of bread wheat (Triticum aestivum L.) in Yelmana Densa District, northwestern Ethiopia. MSc. Thesis, Haramaya University, Haramaya, Ethiopia. 2008.
[15] International Food Policy Research Institute. Fertilizer and soil fertility potential in Ethiopia, Constraints and opportunities for enhancing the system, working paper, July, 2010. www.ifpri.org. 2010.
[16] E. Caires, L. Alleoni, M. Cambri and G. Barth. Surface application of lime for crop grain production under a no-till system. American Society of Agronomy J., 2005, 97: pp791–798.
[17] K. Hati, A. Swarup, D. Singh, A. Misra and P. Ghos. Long-term continuous cropping, fertilization and manure effects on physical properties and organic carbon content of a sandy loam soil. Australian Journal of Soil Research, 2006, 44: pp 487–495.
[18] J. Whalen, C. Chang, G. Clayton and J. Carefoot. Cattle manure amendments can increase pH of acid soils. Soil Science Society of America Journal, 2000, 64: pp 962–966.
[19] R. Onwonga, J. Lelei, B. Freyer, J. Friedel, S. Mwonga and P. Wandahwa. Low cost techniques for enhancing N and P availability and maize (Zea mays L.) performance on acid soils. World Journal of Agricultural Sciences, 2008, 4: pp 862-873.
[20] Ministry of Agriculture and Rural Development. Agro-Ecological Zones of Ethiopia. Addis Ababa, Ethiopia. 2005.
[21] Food and Agriculture Organization (FAO). Guidelines for Soil Description. Food and Agriculture Organization of the United Nations, 2006, Rome, Italy.
[22] S. Sahlemedhin and B. Taye. Procedure for soil and plant analysis. National Soil Research Centre, Ethiopian Agricultural Research Organization, Addis Ababa, Ethiopia. 2000.
[23] D. Rowell. Soil Science: Method and Applications. Addison, Wesley, England: Longman Scientific and Technical, Longman Group UK Limited. 1994.
[24] United States Department of Agriculture Natural Resources Conservation Services (USDANRCS). Soil Survey Laboratory Information Manual. National soil Survey Laboratory, Soil Survey Investigation Report No. 45 Version 1, pp 1-305. 1995.
[25] M. Mehlich. Mehlich 3 soil test extractant: a modification of the Mehlich 2 extractant. Communications in Soil Science and Plant Analysis, 1984, 15: pp 1409–1416.
[26] R. Bruce and G. Rayment. Analytical methods and interpretations used by the Agricultural Chemistry Branch for Soil and Land Use Surveys. Queens land Department of Primary Industries. 1982.
[27] T. Barauah and H. Barthakur. A Text Book of Soil Analyses. Vikas Publishing House Pvt. Ltd. New Delhi, India. 1997, pp 334.
[28] National Soil Survey Laboratory Staff. Principles and procedures for using soil survey laboratory data. USDASCS, Lincoln, NE. 1983.
[29] P. Hazelton and B. Murphy. Interpreting Soil Test Results: What do all the numbers mean? 2nd (Ed). NSW (New South Wales Department) Department of Natural Resources, Collingwood, Australia: CSIRO Publishing, 2007. http://www.publish. csiro.au.
[30] B. Taye, M. Zebene and E. Abayneh. Laboratory procedure for the determination of lime requirement and calcium carbonate content in lime. National Soil Research Center Ethiopian Institute of Agricultural Research, unpublished laboratory manual. 2007.
[31] S. Olsen, C. Cole, F. Watanab and L. Dean. Estimation of available phosphorous in soils by extraction with sodium bicarbonate. USA, Circular 939: pp 1-19. 1954.
[32] Gomez and A. Gomez. Statistical Procedure for Agricultural Research 2nd (Ed.). Wiley, A., Inter-Science Publication, New York, USA. 680. 1984.
[33] SAS Institute Inc.SAS User’s Guide, Statistics version 9.1 (Ed). SAS Inst. Cary, NC, USA. 2002.
[34] R. Haling, R. Simpson, R. Culvenor, H. Lambers and A. Richardson, Effect of soil acidity, soil strength and macropores on root growth and morphology of perennial grass species differing in acid-soil resistance. Blackwell Publishing Ltd, Plant Cell and Environment, 2011, 34, pp 444–456. doi: 10.1111/j.1365-3040.2010.02254.x.
[35] T. Butler and J. Muir. Dairy manure compost improves soil and increases tall wheatgrass. Agronomy J., 2006, 98: pp 1090–1096.
[36] G. McAndrews, M. Liebman, C. Cambardella and T. Richard. Residual effects of composted and fresh solid swine (Sus scrofa L.) manure on soybean (Glycine max L.) growth and yield. Agronomy J., 2006, 98: pp 873–882.
[37] F. Naramabuye, R. Haynes and A. Modi, Cattle manure and grass residues as liming materials, in a semi-subsistence farming system. Agriculture, Ecosystems and Environment, 2008, 124: pp 136-141.doi:10.1016/j.agee.2007.08.005.
[38] H. Melesse. Response of bread wheat (Triticum aestivum L.) varieties to N and P fertilizer rates in Ofla District, southern Tigray, Ethiopia. MSc Thesis, Haramaya University, Haramaya, Ethiopia. 2007.
[39] I. Holford. Soil phosphorus measurements and its uptake by plants. Aust. J. Soil Res., 1977, 35: pp 227–239.
[40] N. Fageria, N. Slaton and V. Baligar. Nutrient management for improving lowland rice productivity and sustainability. Adv. Agronomy, 2003, 80: pp 63–152.
[41] M. Osundwa, J. Okalebo, W. Ngetich, J. Ochuodho, C. Othieno, B. Langat and V. Omenyo. Influence of agricultural lime on soil properties and wheat (Triticum aestivum L.) yield on acidic soils of Uasin Gishu County, Kenya. American Journal of Experimental Agriculture, 2013, 3(4): pp 806-823.
[42] J. White, M. Bell and N. Marzies. Effect of subsoil acidity treatments on the chemical properties of Ferrosol. Proceeding agronomy Conference, 10–15 September 2006, Australia. 2006.
[43] F. Oluwatoyinbo, M. Akande and J. Adediran. Response of okra (Abelmoschus esculentus) to lime and phosphorus fertilization in an acid soil. World Journal of Agricultural Sciences, 2005, 1(2): pp 178-183.
[44] R. Ranjit. Response of groundnut genotypes to lime and phosphorus levels in coastal alluvial soil of north Karnataka. MSc Thesis, Dharwad University, India. 2005.
[45] K. Endalkachew. Effects of rates and methods of phosphorus placement on residual soil P yield and P uptake of wheat in Nitosols of Kulumsa area, Arsi zone. MSc Thesis, Alemaya University, Haramaya, Ethiopia. 2006.
[46] N. Fageria and A. Santos. Yield physiology of dry bean. J. Plant Nutrition, 31: 983- 1004. 2008.
[47] J. Nakagawa, I. Imaizumi and C. Rosseto. Effects of some phosphorus sources and of liming on groundnut seed quality. Pesquisa Agropecuaria Brasileria, 1990, 25(4): pp 505-512.
[48] N. Fageria and V. Baligar. Fertility management of tropical acid soils for sustainable crop production. In: Rengel, Z. (Ed.) Handbook of Soil Acidity, Marcel Dekker, New York, USA. 2003. pp 359–385.
[49] D. Guangdi, P. Rajinder, P. John and R. Keith. A financial analysis of lime application in a long-term agronomic experiment on the south-western slopes of New South Wales. Crop and Pasture Science, 2009, 61: pp 12–23.
[50] A. Mongia, N. Singh and A. Guha. Response of rice to liming and P application in acid soils of South Andaman. Journal of the Indian Society of Soil Science, 46(4): pp 697-700. 1998.
[51] D. Hussins and W. Pan. Nitrogen efficiency components analysis: an evaluation of cropping system difference in productivity. Agronomy Journal, 85: pp 898-905. 1993.
[52] K. Abreha, G. Heluf, M. Tekalign, and T. Kindie. Wheat crop response to liming materials and N and P fertilizers in acidic soils of Tsegede highlands, northern Ethiopia. Agriculture, Forestry and Fisheries. 2, 3: pp 126-135. 2013doi: 10.11648/aff.20130203.12.
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    Mekonnen Asrat, Heluf Gebrekidan, Markku Yli-Halla, Bobe Bedadi, Wakene Negassa. (2014). Effect of Integrated Use of Lime, Manure and Mineral P Fertilizer on Bread Wheat (Triticum Aestivum) Yield, P uptake and Status of Residual Soil P on Acidic Soils of Gozamin District, North-Western Ethiopia. Agriculture, Forestry and Fisheries, 3(2), 76-85. https://doi.org/10.11648/j.aff.20140302.15

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    ACS Style

    Mekonnen Asrat; Heluf Gebrekidan; Markku Yli-Halla; Bobe Bedadi; Wakene Negassa. Effect of Integrated Use of Lime, Manure and Mineral P Fertilizer on Bread Wheat (Triticum Aestivum) Yield, P uptake and Status of Residual Soil P on Acidic Soils of Gozamin District, North-Western Ethiopia. Agric. For. Fish. 2014, 3(2), 76-85. doi: 10.11648/j.aff.20140302.15

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    AMA Style

    Mekonnen Asrat, Heluf Gebrekidan, Markku Yli-Halla, Bobe Bedadi, Wakene Negassa. Effect of Integrated Use of Lime, Manure and Mineral P Fertilizer on Bread Wheat (Triticum Aestivum) Yield, P uptake and Status of Residual Soil P on Acidic Soils of Gozamin District, North-Western Ethiopia. Agric For Fish. 2014;3(2):76-85. doi: 10.11648/j.aff.20140302.15

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  • @article{10.11648/j.aff.20140302.15,
      author = {Mekonnen Asrat and Heluf Gebrekidan and Markku Yli-Halla and Bobe Bedadi and Wakene Negassa},
      title = {Effect of Integrated Use of Lime, Manure and Mineral P Fertilizer on Bread Wheat (Triticum Aestivum) Yield, P uptake and Status of Residual Soil P on Acidic Soils of Gozamin District, North-Western Ethiopia},
      journal = {Agriculture, Forestry and Fisheries},
      volume = {3},
      number = {2},
      pages = {76-85},
      doi = {10.11648/j.aff.20140302.15},
      url = {https://doi.org/10.11648/j.aff.20140302.15},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.aff.20140302.15},
      abstract = {Soil acidity problem is one of the bottlenecks to improve crop production in high rainfall regions of Ethiopia in general and in Gozamin District of Amhara region in particular. The aim of this study was to examine the effects of integrated use of lime, manure and mineral P fertilizer on acid soils for wheat production and status of residual soil P. The treatments were factorial combinations of lime, manure and P fertilizer which were laid down in a randomized complete block design with three replications. The field study was conducted on Dystric Nitisols in the 2011 and 2012 main cropping seasons at Enerata Kebele, Gozamin District. Lime application hastened early germination while plant height was enhanced by interaction of lime and P. Most parameters were significantly (p  0.05) level. In these interactions lime rates were related in quadratic trend while manure and mineral P related linearly. The combined application of 5 t manure and 2.2 t ha-1 lime increased grain and straw yield by 279% and 187%, respectively over the control treatment through economical analysis result 515 Eth. birr ($28) ha-1 profit obtained due to additional yield obtained. Although all treatments residual soil P were categorized under very low status, it has strong positive correlation (r2 = 0.79) with lime application. The present study showed the combined application of 5 t manure and 2.2 t ha-1 lime was found to be economical feasible to improve wheat yield and yield components and residual soil P of acidic soils of the study area.},
     year = {2014}
    }
    

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  • TY  - JOUR
    T1  - Effect of Integrated Use of Lime, Manure and Mineral P Fertilizer on Bread Wheat (Triticum Aestivum) Yield, P uptake and Status of Residual Soil P on Acidic Soils of Gozamin District, North-Western Ethiopia
    AU  - Mekonnen Asrat
    AU  - Heluf Gebrekidan
    AU  - Markku Yli-Halla
    AU  - Bobe Bedadi
    AU  - Wakene Negassa
    Y1  - 2014/03/20
    PY  - 2014
    N1  - https://doi.org/10.11648/j.aff.20140302.15
    DO  - 10.11648/j.aff.20140302.15
    T2  - Agriculture, Forestry and Fisheries
    JF  - Agriculture, Forestry and Fisheries
    JO  - Agriculture, Forestry and Fisheries
    SP  - 76
    EP  - 85
    PB  - Science Publishing Group
    SN  - 2328-5648
    UR  - https://doi.org/10.11648/j.aff.20140302.15
    AB  - Soil acidity problem is one of the bottlenecks to improve crop production in high rainfall regions of Ethiopia in general and in Gozamin District of Amhara region in particular. The aim of this study was to examine the effects of integrated use of lime, manure and mineral P fertilizer on acid soils for wheat production and status of residual soil P. The treatments were factorial combinations of lime, manure and P fertilizer which were laid down in a randomized complete block design with three replications. The field study was conducted on Dystric Nitisols in the 2011 and 2012 main cropping seasons at Enerata Kebele, Gozamin District. Lime application hastened early germination while plant height was enhanced by interaction of lime and P. Most parameters were significantly (p  0.05) level. In these interactions lime rates were related in quadratic trend while manure and mineral P related linearly. The combined application of 5 t manure and 2.2 t ha-1 lime increased grain and straw yield by 279% and 187%, respectively over the control treatment through economical analysis result 515 Eth. birr ($28) ha-1 profit obtained due to additional yield obtained. Although all treatments residual soil P were categorized under very low status, it has strong positive correlation (r2 = 0.79) with lime application. The present study showed the combined application of 5 t manure and 2.2 t ha-1 lime was found to be economical feasible to improve wheat yield and yield components and residual soil P of acidic soils of the study area.
    VL  - 3
    IS  - 2
    ER  - 

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Author Information
  • School of Natural Resources Management and Environmental Sciences, Haramaya University, Haramaya, Ethiopia

  • School of Natural Resources Management and Environmental Sciences, Haramaya University, Haramaya, Ethiopia

  • Environmental Soil Science, University of Helsinki, Helsinki, Finland

  • School of Natural Resources Management and Environmental Sciences, Haramaya University, Haramaya, Ethiopia

  • Department of Plant Soil and Microbial Sciences, Michigan State University, East Lansing, USA

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