Mesophilic Process and Kinetics Studies of Selected Biomolecules as Potential Enhancers of Biomethanization of Cow Dung in an Anaerobic Tubular Batch Reactor
- 1 Institute of Energy and Environmental Technology, JKUAT, Nairobi, Kenya
- 2 Institute of Energy and Environmental Technology, JKUAT, Nairobi, Kenya
- 3 Institute of Energy and Environmental Technology, JKUAT, Nairobi, Kenya
- 4 School of Biosystems and Environmental Engineering, JKUAT, Nairobi, Kenya
- 5 School of Biosystems and Environmental Engineering, JKUAT, Nairobi, Kenya
- 6 School of Biosystems and Environmental Engineering, JKUAT, Nairobi, Kenya
- 7 School of Mechanical and Manufacturing Engineering, JKUAT, Nairobi, Kenya
- 8 School of Mechanical and Manufacturing Engineering, JKUAT, Nairobi, Kenya
Abstract
Mesophilic biogas production and substrate decomposition is one of the significant limiting steps in biogas generation. The rate of generation and quality often affect the viability of biogas systems. This study assessed the potential for biogas process catalysis using powdered Sorghum bicolor L. , Zea mays , and Pennisetum glaucum . The kinetics and biogas generation processes were studied. Experiments were conducted in 1 m 3 tubular batch reactors, where batches were dosed with various organic biomolecules. Results show that the use of P. glaucum L. and S. bicolor L. reduced the biogas retention times significantly. Biogas generation commenced after the first day for digesters fed with S. bicolor L. and P. glaucum L. while one with Z. mays and control occurred on day two. The rate of biomethanation and methane content were enhanced. S. bicolor L. led to the highest methane content. Findings reveal that locally available organic biomolecules improved biogas quality and quantity.
- Burke, D. (2001) Dairy Waste Anaerobic Digestion Handbook. Options for Recovering Beneficial Products from Dairy Manure. Environmental Energy Group, Olympia, USA.
- Njogu, P., Kinyua, R., Muthoni, P. and Nemoto, Y. (2015) Biogas Production Using Water Hyacinth (Eicchornia crassipes) for Electricity Generation in Kenya. Energy and Power Engineering, 7, 209-216. https://doi.org/10.4236/epe.2015.75021
- Zupančič, G.D. and Grilc, V. (2009) Anaerobic Treatment and Biogas Production from Organic Waste. Institute for Environmental Protection and Sensors Slovenia.
- Joo, S.H., Delicio, L., Muniz, J. and Baek, S. (2018) Perspective: Catalytic Increase of Biogas Production in an Anaerobic Co-Digestion System. International Journal of Nanoparticles and Nanotechnology, 4, Article No 5516. https://doi.org/10.35840/2631-5084/5516
- Machido, D.A., Zuru, A.A. and Akpan, E.E. (2010) Effects of Inorganic Nutrients on the Performance of Cow Dung as Substrate. Nigerian Journal of Basic and Applied Science, 18, 209-216.
- Olatunji, K.O., Ahmed, N.A. and Ogunkunle, O. (2021) Optimization of Biogas Yield from Lignocellulosic Materials with Different Pretreatment Methods: A Review. Biotechnology for Biofuels, 14, 1-34. https://doi.org/10.1186/s13068-021-02012-x
- Shoeb, F. and Singh, H.J. (2000) Kinetic Studies of Biogas Evolved from Water Hyacinth. Proceedings of 2nd International Symposium on New Technologies for Environmental Monitoring and Agro-Application, 18-20 October 2000, Turkey.
- Sudhakar, K., Ananthakrishnan, R. and Goyal, A. (2013) Biogas Production from a Mixture of Water Hyacinth, Water Chestnut and Cow Dung. International Journal of Science, Engineering and Technology Research, 2, 35-37.
- APHA (1995) Standard Methods for Analysis. America Public Health Association.
- Bagudo, B.U., Dangoggo, S.M., Hassan, L.G. and Garba, B. (2010) Influence of Catalyst (Yeast) on the Biomethanization of Selected Organic Waste Materials. Nigerian Journal of Basic and Applied Science, 18, 209-216. https://doi.org/10.4314/njbas.v18i2.64313