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Pryloysis of Coffee Husks for Biochar Production

DOI: 10.4236/jep.2019.1012092, PP. 1553-1564

Keywords: Coffee Husks, Pryloysis, Biochar, Soil Organic Matter, Soil Nutrients

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Abstract:

Effective utilization of coffee wastes has been a great challenge in Uganda despite their wider use to replenish soil organic matter. This study explored the possibility of producing biochar from coffee husks that could be used as a soil amendment for replenishing soil nutrients and also for enhancement of soil water holding capacity. Pyrolysis of coffee husks was done in a batch bio-reactor under slow pyrolysis conditions of temperatures 350°C - 550°C and residence times 30 - 60 min. For easy characterization, biochar was grinded, sieved through a 1 mm sieve and then analyzed using a computerized Thermo Graphic Analyzer with an inbuilt and integrated ELTRA 84 GmbH Precision Digital weighing scale. Proximate analysis (wet basis) of biochar gave a moisture content of 5.2%, ash content of 14.7%, volatile matter of 13.2% and fixed carbon of 66.9%. Biochar was applied to soil at different rates (0%, 5%, 10% and 20% w/w) and its effect on water holding capacity was investigated. Results show that bio-char amended soils had higher water holding capacity (p ≤ 0.05) compared to biochar free soils. The water holding capacity also increased with increase in biochar amendment with a 1.5% increase in soil water holding capacity for each 1% increase in biochar application rate. Biochar was also rich in soil nutrient elements with 0.96% N, 0.39% P and 1.97% K; this increased the availability of soil nutrients for crop growth. The results suggest that biochar could be a better tool to improve soil conditions thus enhancing the sustainability of agriculture.

References

[1]  Kiggundu, N., Ddungu, S.P., Wanyama, J., Cherotich, S., Mpairwe, D., Zziwa, E., Mutebi, F. and Falcucci, A. (2019) Greenhouse Gas Emissions from Uganda’s Cattle Corridor Farming Systems. Agricultural Systems, 176, Article ID: 102649.
https://doi.org/10.1016/j.agsy.2019.102649
[2]  Lehmann, J., Gaunt, J. and Rondon, M. (2006) Bio-Char Sequestration in Terrestrial Ecosystems—A Review. Mitigation Adaptation Strategies for Global Change, 11, 403-427.
https://doi.org/10.1007/s11027-005-9006-5
[3]  Sohi, S.P., Krull, E., Lopez-Capel, E. and Bol, R. (2010) A Review of Biochar and Its Use and Function in Soil. In: Advances in Agronomy, Elsevier, New York, 47-82.
https://doi.org/10.1016/S0065-2113(10)05002-9
[4]  Henao, J. and Baanante, C. (2006) Agricultural Production and Soil Nutrient Mining in Africa: Implications for Resource Conservation and Policy Development.
[5]  UBOS (2013) Statistical Abstract. Uganda Bureau of Statistics, Kampala, Uganda.
[6]  Komakech, A.J., Zurbrügg, C., Semakula, D., Kiggundu, N. and Vinneras, B. (2015) Evaluation of the Performance of Different Organic Fertilizers on Maize Yield: A Case Study of Kampala, Uganda. Journal of Agricultural Science, 7, 28-37.
https://doi.org/10.5539/jas.v7n11p28
[7]  Okoboi, G. and Barungi, M. (2012) Constraints to Fertilizer Use in Uganda: Insights from Uganda Census of Agriculture 2008/9. Journal of Sustainable Development, 5, 99-113.
https://doi.org/10.5539/jsd.v5n10p99
[8]  Hunt, A.J., Sin, E.H., Marriott, R. and Clark, J.H. (2010) Generation, Capture, and Utilization of Industrial Carbon Dioxide. Chemistry Sustainability Energy Materials, 3, 306-322.
https://doi.org/10.1002/cssc.200900169
[9]  UCDA (2014) Uganda Cofee Development Authority. Annual Report. 23.
[10]  Ndhlovu, M., Kiggundu, N., Wanyama, J. and Banadda, N. (2017) Effects of Incorporating Biochar into the Soil Using Power Tiller and Ox-Plough. Sustainable Agriculture Research, 6, 93-103.
https://doi.org/10.5539/sar.v6n4p93
[11]  Jourabchi, S.A., Gan, S. and Ng, H.K. (2014) Pyrolysis of Jatropha Curcas Pressed Cake for Bio-Oil Production in a Fixed-Bed System. Energy Conversion Management, 78, 518-526.
https://doi.org/10.1016/j.enconman.2013.11.005
[12]  Kabenge, I., Omulo, G., Banadda, N., Seay, J., Zziwa, A. and Kiggundu, N. (2018) Characterization of Banana Peels Wastes as Potential Slow Pyrolysis Feedstock. Journal of Sustainable Development, 11, 14.
https://doi.org/10.5539/jsd.v11n2p14
[13]  Owusu, P.A., Banadda, N., Zziwa, A., Seay, J. and Kiggundu, N. (2018) Reverse Engineering of Plastic Waste into Useful Fuel Products. Journal of Analytical Applied Pyrolysis, 130, 285-293.
https://doi.org/10.1016/j.jaap.2017.12.020
[14]  Aboagye, D., Banadda, N., Kiggundu, N. and Kabenge, I. (2017) Assessment of Orange Peel Waste Availability in Ghana and Potential Bio-Oil Yield Using Fast Pyrolysis. Renewable and Sustainable Energy Reviews, 70, 814-821.
https://www.astm.org/Standards/E897.htm
https://doi.org/10.1016/j.rser.2016.11.262
[15]  Omulo, G., Willett, S., Seay, J., Banadda, N., Kabenge, I., Zziwa, A. and Kiggundu, N. (2017) Characterization of Slow Pyrolysis Wood Vinegar and Tar from Banana Wastes Biomass as Potential Organic Pesticides. Journal of Sustainable Development, 10, 81-92.
https://doi.org/10.5539/jsd.v10n3p81
[16]  ASTM (2004) Standard Test Method for Volatile Matter in the Analysis Sample of Refuse-Derived Fuel.
[17]  Okalebo, J., Gathua, K. and Woomer, P. (2002) Laboratory Methods of Soil and Plant Analysis. A Working Manual, 2, 29-68.
[18]  Peng, X., Ye, L., Wang, C., Zhou, H. and Sun, B. (2011) Temperature-and Duration-Dependent Rice Straw-Derived Biochar: Characteristics and Its Effects on Soil Properties of an Ultisol in Southern China. Soil Tillage Research, 112, 159-166.
https://doi.org/10.1016/j.still.2011.01.002
[19]  Nguyen, T., Hilliard, M. and Rochelle, G.T. (2010) Amine Volatility in CO2 Capture. International Journal of Greenhouse Gas Control, 4, 707-715.
https://doi.org/10.1016/j.ijggc.2010.06.003
[20]  Joseph, S., Camps-Arbestain, M., Lin, Y., Munroe, P., Chia, C., Hook, J., Van Zwieten, L., Kimber, S., Cowie, A. and Singh, B. (2010) An Investigation into the Reactions of Biochar in Soil. Soil Research, 48, 501-515.
https://doi.org/10.1071/SR10009
[21]  Mullen, C.A., Boateng, A.A., Goldberg, N.M., Lima, I.M., Laird, D.A. and Hicks, K.B. (2010) Bio-Oil and Bio-Char Production from Corn Cobs and Stover by Fast Pyrolysis. Biomass Bioenergy, 34, 67-74.
https://doi.org/10.1016/j.biombioe.2009.09.012
[22]  Steiner, C., Das, K.C., Garcia, M., Forster, B., Zech, W. (2008) Charcoal and Smoke Extract Stimulate the Soil Microbial Community in a Highly Weathered Xanthic Ferralsol. Pedobiologia, 51, 359-366.
https://doi.org/10.1016/j.pedobi.2007.08.002
[23]  Shenbagavalli, S. and Mahimairaja, S. (2012) Production and Characterization of Biochar from Different Biological Wastes. International Journal of Plant, Animal Environmental Sciences, 2, 197-201.
[24]  Tryon, E.H. (1948) Effect of Charcoal on Certain Physical, Chemical, and Biological Properties of Forest Soils. Ecological Monographs, 18, 81-115.
https://doi.org/10.2307/1948629
[25]  Basso, A.S., Miguez, F.E., Laird, D.A., Horton, R. and Westgate, M. (2013) Assessing Potential of Biochar for Increasing Water-Holding Capacity of Sandy Soils. GCB Bioenergy, 5, 132-143.
https://doi.org/10.1111/gcbb.12026
[26]  FAO (2010) The State of Food Insecurity in the World: Addressing Food Insecurity in Protracted Crises. Food and Agriculture Organization of the United Nations (FAO), Rome.

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