Effect of Effluent from Biodigestion of Pre-Treated Rice Bran and Animal Manure on the Dry Matter Yield and Nutrient Uptake of <i>Amaranthus viridis</i> — Oak Academic Publishing
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Effect of Effluent from Biodigestion of Pre-Treated Rice Bran and Animal Manure on the Dry Matter Yield and Nutrient Uptake of <i>Amaranthus viridis</i>
Institute of Ecology and Environmental Studies, Faculty of Science, Obafemi Awolowo University, Ile-Ife, Nigeria
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Department of Agricultural and Environmental Engineering, Faculty of Technology, Obafemi Awolowo University, Ile-Ife, Nigeria
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Department of Soil Science and Land Resources Management, Faculty of Agriculture, Obafemi Awolowo University, Ile-Ife, Nigeria
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Department of Soil Science and Land Resources Management, Faculty of Agriculture, Obafemi Awolowo University, Ile-Ife, Nigeria
1 Institute of Ecology and Environmental Studies, Faculty of Science, Obafemi Awolowo University, Ile-Ife, Nigeria
2 Department of Agricultural and Environmental Engineering, Faculty of Technology, Obafemi Awolowo University, Ile-Ife, Nigeria
3 Department of Soil Science and Land Resources Management, Faculty of Agriculture, Obafemi Awolowo University, Ile-Ife, Nigeria
4 Department of Soil Science and Land Resources Management, Faculty of Agriculture, Obafemi Awolowo University, Ile-Ife, Nigeria
The effect of effluents from biodigestion of pre-treated rice bran in combination with two types of animal manure on dry matter yield of Amarathus viridis was investigated using two pre-treatment methods: Soaking in ordinary distilled water and boiled in distilled water at 100°C. The pre-treated rice bran and animal manure were mixed (w/w basis) to give carbon to nitrogen ratio of 35:1 and 37:1 prior to loading into the digester to make eight different treatment combinations as follow: 1) Cow dung with no rice bran (NRB + CD); 2) Raw rice bran + cow dung (RRB + CD); 3) Soaked rice bran in ordinary distilled water + cow dung (SRB + CD); 4) Boiled rice bran + cow dung (BRB + CD); 5) Poultry manure with no rice bran (NRB + PM); 6) Raw rice bran + poultry manure (RRB + PM); 7) Soaked rice bran + poultry manure (SRB + PM); 8) Boiled rice bran + poultry manure (BRB + PM). Samples of different treatment combinations were collected before digestion, both the samples and resultant effluents were subjected to elemental analysis using AAS. The effluents from the biodigestion of these combinations were applied at two rates (80 and 150 kg N ha -1 ) to 3 kg air-dried and sieved soil samples (0 - 20) cm in the greenhouse, control (0 kg N ha -1 ) and reference pot with NPK fertilizer at the 80 kg N ha -1 were arranged in a completely randomized design replicated three times. Amaranthus plants were introduced into each treated pot, left for four weeks before harvest, dry matter yields were recorded. Results of chemical analysis of raw materials and effluents obtained after biodigestion revealed th e presence of all plant nutrients in both the raw materials and resultant effluents though the former had higher values in some nutrients than the effluent, for examples treatment combination of CD, the values for organic carbon (42.85%), Ca (3.41%) and Mg (0.61%) were higher than in the resultant effluent for CD, a similar trend was observed with other treatment combinations. Drastic reduction in heavy metal concentration was observed after digestion, Pb content in the raw materials for poultry manure reduced by 94.7% in the resultant effluent from BRB: PM thus making the effluent a better soil amendment. Raw chicken manure was richer in the nutrients needed for optimal crop growth however, raw cow dung had the highest. The amendment of effluent from boiled rice bran with poultry manure at 150 kg N ha -1 significantly increased the dry matter yield of Amaranthus viridis over control pots, NPK pots and all other amendments thus making it a good alternative to NPK fertilizer.
KeywordsBiogasRice BranAnimal Manure
Tu, C., Louws, F.J., Creamer, N.G., Mueller, J.P., Brownie, C., Fager, K., Bell, M. and Hu, S. (2006) Responses of Soil Microbial Biomass and N Availability to Transition Strategies from Conventional to Organic Farming Systems. Agriculture, Ecosystems & Environment, 113, 206-215. https://doi.org/10.1016/j.agee.2005.09.013
Awodun, M.A. (2021) The Nexus of Population, Food Security, Climate Change and Plant Nutrition: Organic Wastes as Alternative Fertilizer in Nigeria. Inaugural Lecture Series 129. The Federal University of Technology, Akure, 41.
Ayeni, L.S., Adeleye, E.O. and Adejumo, J.O. (2012) Comparative Effect of Organic, Organomineral and Mineral Fertilizers on Soil Properties, Nutrient Uptake, Growth and Yield of Maize (Zea mays). International Research Journal of Agricultural Science and Soil Science, 2, 493-497.
Vigil, S., Theisen, H. and Tehobanoglous, G. (1993) Integrated Solid Waste Management. Engineering Principle and Management Issues. McGraw-Hill Inc., Singapore, 20-34.
Moyin Jesu, E.I. (2003) Incorporation of Agricultural Biomas and Their Effects on Growth and Nutrient Content of Four Successive Crops of Amaranthus. Partanika Journal of Tropical Agricultural Science, 26, 49-58.
Odedina, S.A., Ojeniyi, S.O. and Awodun, M.A. (2007) Effect of Agro Industrial Wastes on Nutrients Status and Performances of Tomato. Global Journal of Environmental Research, 1, 18-21.
Pillaier, P. (1998) RICE: Post Production Manual. Willey Eastern Limited, New Delhi.
Tambone, F., Scaglia, B., D’Imporzano, G. and Schievano, A. (2010) Assessing Amend-ment and Fertilizing Properties of Digestates from Anaerobic Digestion through a Comparative Study with Digested Sludge and Compost. Chemosphere, 81, 577-583. https://doi.org/10.1016/j.chemosphere.2010.08.034
Sekar, S. (2012) The Effect of Biochar and Anaerobic Digester Effluent on Soil Quality and Crop Growth in Karnataka India. M.Sc. Thesis, Department of Environmental and Natural Resources, Ohio State University, Columbus, 114 p.
Smyth and Montgomery, R.F. (1962) The Soil and Land Use of Central Western Nigeria. The Government Printer, Ibadan, 265 p.
Bouyoucos, G.F. (1965) Hydrometer Method Improved for Making Particle Size Analysis of Soils. Soil Science Society of America Proceedings, 26, 464-465. https://doi.org/10.2134/agronj1962.00021962005400050028x
Gee, G.W. and Or, D.B. (2002) Particle Size Analysis. In: Dane, J.H. and Topp, G.C., Eds., Method of Soil Analysis Part 4, Physical Methods, Soil Science Society of America Book Series No. 5, ASA and SSSA, Madison, 255-293. https://doi.org/10.2136/sssabookser5.4.c12
Effluents
Yield
Nutrient Uptake
Peech, M. (1965) Hydrogen-Ion Activity. In: Black, C.A., Ed., Methods of Soil Analysis. Part 2, Agronomy Monographs 9, ASA and SSSA, Madison, 914-926. https://doi.org/10.2134/agronmonogr9.2.c9
Thomas, G.W. (1996) Soil pH and Soil Acidity. In: Methods of Soil Analysis. Part 3, Chemical Method, SSSA, ASA, Madison, 475-490. https://doi.org/10.2136/sssabookser5.3.c16
Bremner, J.M. (1996) Nitrogen-Total. In: Methods of Soil Analysis. Part 3, Chemical Method, SSSA, ASA, Madison, 1085-1122. https://doi.org/10.2136/sssabookser5.3.c37
Walkley, A. and Black, I.A. (1934) An Examination of the Degtjareff Method for Determining Soil Organic Matter and a Proposed Modification of the Chromic Acid Titration Method. Soil Science, 37, 29-38. https://doi.org/10.1097/00010694-193401000-00003
Nelson, D.W. and Sommers, L.E. (1996) Total Carbon, Organic Carbon, and Organic Matter. In: Page, A.L., et al., Eds., Methods of Soil Analysis. Part 2. Agronomy Monographs 9, 2nd Edition, ASA and SSSA, Madison, 539-579. https://doi.org/10.2134/agronmonogr9.2.2ed.c29
Bray, R.H. and Kurtz, L.T. (1965) Determination of Total, Organic, and Available Orms of Phosphorus in Soils. Soil Science, 59, 39-45. https://doi.org/10.1097/00010694-194501000-00006
Kuo, S. (1996) Phosphorus in Methods of Soil Analysis. Part 3. Chemical Method. SSSA, WI and ASA, Madison, 869-919. https://doi.org/10.2136/sssabookser5.3.c32
Thomas, G.W. (1982) Exchangeable Cations. In: Page, A.L., et al., Eds., Methods Soil Analysis. Part 2, Agronomy Monographs 9, 2nd Edition, ASA and SSSA, Madison, 159-165. https://doi.org/10.2134/agronmonogr9.2.2ed.c9
Jones, J.B. (1998) Soil Test Methods: Past, Present, and Future Use of Soil Extractants. Communications in Soil Science and Plant Analysis, 29, 1543-1552. https://doi.org/10.1080/00103629809370048
Page, A.L.P., Miller, R.H. and Keey, D.R. (1982) Method of Soil Analysis Part 2. 9th Edition, ASA, Madison.
Black, C.A. (1986) Methods of Soil Analysis. Part I. Physical and Mineralogical Properties Including Statistics of Measurement and Samplings Part II. Chemical and Microbiological Properties. Agronomy Series. ASA, Madison.
Sumner, M.E. and Miller, W.P. (1996) Cation Exchange Capacity and Exchange Coefficient in Methods of Soil Analysis. Part 3. Chemical Method. SSSA, ASA, Madison, 1185-1201. https://doi.org/10.2136/sssabookser5.3.c40
Wears, J.I. and Sommer, A.L. (1948) Acid Extractable Zinc of Soils in Relation to Occurrence of Zinc Deficiency Symptoms of Corn: A Method of Analysis. Soil Science Society of America, Proceedings, 12, 143-144. https://doi.org/10.2136/sssaj1948.036159950012000C0031x
Sally, L., Dave, C., Demie, M. and Teferi, T. (2008) Soil Science: Step-by-Step Field Analysis. Soil Science Society of America, Madison, 159-182.
AOAC (Association of Official Analysis Chemists) (2005) Official Methods of Analysis. 18th Edition, Washington DC, 1-6.
SAS (Statistical Analysis Software) (2002) Statistical Analysis Software Guide for Personal Computers. Release 9.1, SAS Institute Inc., Cary.
Adepetu, J.A., Adetunji, M.T. and Ige, V. (2014) Soil Fertility and Crop Nutrition. Jumak Publishers, Ibadan, 106-470.
Enwezor, W.O., Udo, E.J., Ayotade, K.A., Adepetu, J.A. and Chude, V.Q. (1990) A Review of Soil and Fertilizer Use Research in Nigeria. Federal Ministry of Agriculture, Water Resources and Rural Development, Lagos, 109-200.
Michel, J., Weiske, A. and Moller, K. (2010) The Effect of Biogas Digestion on the Environmental Impact and Energy Balances in Organic Cropping Systems Using the Life Cycle Assessment Methodology. Renewable Agriculture and Food Systems, 25, 204. https://doi.org/10.1017/S1742170510000062
Kurt, M. and Torsten, M. (2012) Effects of Anaerobic Digestion on Digestate Nutrient Availability and Crop Growth. A Review. Engineering in Life Sciences, 12, 242-257. https://doi.org/10.1002/elsc.201100085
Adanikin, B.A. (2015) Biogass Production from Selected Water Weeds and the Nutrient Potential of Their Effluents for Crop Improvement. Unpublished M.Sc. Thesis, The Institute of Ecology and Environmental Studies, Obafemi Awolowo University, Ile-Ife, 67-70.
Adanikin, B.A., Adesanwo, O.O. and Ogunwande, G.A. (2017) Evaluation of Nutrient Potentials of Effluent from Biodigestion of Water Weed Species as Soil Ammendement. Ife Journal of Agriculture, 29, 39-46.
Adeoluwa, O.O. and Akinyemi, O. (2014) Amaranthus (Amaranthus viridis) Dry Matter and Soil Qualities: Organic and Inorganic Fertilizer. Proceedings of the 4th ISOFAR Scientific Conference Building Organic Bridges, Istanbul, 13-15 October 2014, 879-882.
Lundvall, J.P., Lorimor, J.C., Sawyer, J.E., Barker, D.W. and Loria, E.R. (2007) Use of Anaerobically Digested Swine Manure as a Nitrogen Source in Corn Production. Agronomy Journal, 99, 1119-1129. https://doi.org/10.2134/agronj2006.0251
Olatoberu, F.T., Idowu, M.K., Adepetu, J.A. and Akinremi, O.O. (2019) Differential Response of Biomass Production and Nitrogen Uptake of Vegetable Amaranth to Two Types of Poultry Manure from Nigeria and Canada. Food and Nutrition Sciences, 10, 694-711. https://doi.org/10.4236/fns.2019.106051
Adebayo, A.A., Ewulo, B.S., Aiyelari, O.P. and Jiandong, H. (2021) Effects of NPK Fertilizer and Vine Care on Soil Chemical Properties and Cucumber (Cucumis sativus L.) Growth and Yield Parameters. International Journal of Plant & Soil Science, 33, 136-151. https://doi.org/10.9734/ijpss/2021/v33i1830584