Characterization and generation of gaseous fuels using coconut leaf from coconut production (Cocos nucifera)

Authors

DOI:

https://doi.org/10.33448/rsd-v10i7.16783

Keywords:

Biomass; Leaf; Characterization; Gasification.

Abstract

Reducing carbon dioxide emissions without affecting the world's energy supply has made the search for new energy sources an alternative to solve this problem. The reuse of agricultural residues appears as a good alternative. In 2014, Brazil had the capacity to produce approximately 5.5 million coconuts per day, and with this large production, a large amount of waste is also generated. Therefore, this work aims to present a study of the use of residues from coconut agriculture (leaf). A study was proposed for the use of this biomass in in natura form and in the form of gas, obtained through gasification by varying the residence time and the gasification temperature, in order to find the gas with the highest energy conversion yield. After characterization of the samples, it was possible to verify that biomass presents positive results for its use as an alternative source of energy. In the in natura form, the PCI value was 18.96 MJ.kg-1. In gasification, the highest value found was 10.46 MJ.Nm-3.

References

Ahmad, A. A., Norfadhila, A. Z., Farizul, H. K., Abrar, I. & Azduwin K. (2016) Assessing the gasification performance of biomass: A review on biomass gasification process conditions, optimization and economic evaluation. Renewable and Sustainable Energy Reviews, 53, 1333-1347.

Buah, W. K., & Williams, P. T. (2012) Agricultural waste biomassa converted to actived carbono as a material for gold processing. Journal of Material Cycles and Waste Management, 14, 396-402.

Chaves, M. D. (2007) Gaseificação de materiais lignocelulósicos para geração de energia elétrica. Dissertação de mestrado, Universidade Federal de Lavras.

Costa, H. B., Souza, L. M., Soprani, L. C., Oliveira, B. G., Ogawa, E. M., Korres, A. M. N., Ventura, J. A. & Romão, W. (2015) Monitoring the physicochemical degradation of coconut water using ESI-FT-ICR MS. Food Chemistry, 174, 139-146.

Deepak, K. B. & Jnanesh, N. A. (2016) Analysis of various characteristics of coconut leaves as a biomass briquette. National Conference on Advances in Mechanical Engineering Science (NCAMES-201), 69-73.

Estrela, C. (2018). Metodologia Científica: Ciência, Ensino, Pesquisa. Editora Artes Médicas.

FAO 2014. World Production. www.faostat.org.br

IBGE. Produção Agrícola Municipal. htttp:www.sidra.ibge.gov.br/bda/pesquisa

Idoeta, P. A. (2014) Custos fazem empresários desistirem de reciclar coco em São Paulo. BBC Brasil, http://www.bbc.com/portuguese/noticias/2014/02/140207_coco_sub_reciclagem_cidades_pai

Kaushal, P. & Tyagi, R. (2017) Advanced simulation of biomass gasification in a fluidized bed reactor using ASPEN PLUS. Reneweable Energy, 101, 629-636, 2017.

Lacerda C. G. (2015) Produção de gases combustíveis utilizando o bambu em processo de gaseificação. Dissertação de mestrado.

Patel, M., Zhang, X. & Kumar, A. (2016) Techno-economic and life cycle assessment on lignocellulosic biomass thermochemical conversion Technologies: A review. Renewable and Sustainable Energy Reviews, 53, 1486-1499.

Mahinpey, N. & Gomez, A. (2016) A Review of gasification fundamentals and new findings: Reactors, feedstock and kinetic studies. Chemical Engineering Science. 148, 14-31.

Mckendry, P. (2002) Energy production from biomass (part 1): overview of biomass. Bioresource Technology, 83, 37-46.

Mckendry, P. (2002) Energy production from biomass (part 3): gasification technologies. Bioresource Technology 83, 53-63.

Nunes, M. U. C. (2009) Aproveitamento de Residuos do coqueiro na indústria e na agricultra. II Congresso Brasileiro de resíduos orgânicos e na agricultura.

Nunes, M. U. C., Santos, J. R. & Santos, T. C. (2007) Tecnologia para a biodegradação da casca de coco seco e de outros residuos do coqueiro, Aracaju: EMBRAPA Tabuleiros costeiros , 5p. (Embrapa tabuleiros Costeiros. Circular técnica, 46).

Rodrigues, R. C. (2010) Métodos de análises bromatológicas de alimentos: Métodos Físicos, Químicos e Bromatológicos. Embrapa.

Sharma, B., Ingalls, R. G., Jones, C. L. & Hkanchi, A. (2013) Biomass supply chain design and analysis: Basis overview, modeling, challenges, and future. Renewable and Sustainable Energy Review. 24, 608-627, 2013.

Siqueira, E. R., Ribeiro, F. E. & Aragão, W. M. (1984) Melhoramento genético do coqueiro. Aracaju: EMBRAPA, 87-120.

Tanksale, A., Beltramini, J. N. & LU, G. M. (2010) A Review of catalytic hydrogen production processes from biomass, Renewable and Sustainable Energy Reviews, 14, 166-182.

Waldheim, L. & Nilsson, T. (2001) Heating value of gases from biomass gaseification. IEA Bioenergy Agreement subcommittee on Thermal Gasification of Biomass.

Yassin, L., Lettieri, P., Simmons, S. J. R. & Germanà, A. (2009) A Techno-economic performance of energy-from waste fluidized bed and gasification procsses in the UK context. Chemical Engineering Journal, 146, 315-327, 2009.

Published

23/06/2021

How to Cite

SANTOS, P. de F.; GÓIS, T. A.; SILVA, S. P. R. da. Characterization and generation of gaseous fuels using coconut leaf from coconut production (Cocos nucifera). Research, Society and Development, [S. l.], v. 10, n. 7, p. e34610716783, 2021. DOI: 10.33448/rsd-v10i7.16783. Disponível em: https://rsdjournal.org/index.php/rsd/article/view/16783. Acesso em: 20 apr. 2024.

Issue

Section

Engineerings