Initial peanut development when grown on soil contaminated by diesel oil

Authors

DOI:

https://doi.org/10.33448/rsd-v9i9.7983

Keywords:

Arachis hypogaea L.; Ground pollution; Hydrocarbons; Plants

Abstract

In recent years, studies have been carried out to try to understand the changes in plant development when grown in soils contaminated by diesel oil. The objective of this work was to analyze the initial development of peanuts when grown in soil contaminated by diesel oil. An experiment was carried out in randomized blocks, in a 2x6 factorial scheme, with two peanut cultivars: Top Verde and IAC 503, interacting with five periods of rest after contamination by diesel oil in the soil, namely: contamination in the day (0 day); 30; 60; 90 and 120 days and no oil in the soil (control) and with five repetitions, totaling 60 experimental units. The cultivar IAC 503 stood out in length and dry mass of the aerial part when cultivated in soils contaminated by diesel oil. Diesel oil impairs peanut development even after 120 days after soil contamination. It is recommended to rest above 120 days for growing peanuts in soils contaminated by diesel oil.

References

Al-Baldawi, I.A.W., Abdullah, S.R.S., Hasan, H.A., Suja, F., Anuar, N., Mushrifah, I. (2014). Optimized conditions for phytoremediation of diesel by Scirpus grossus in horizontal subsurface flow constructed wetlands (HSFCWs) using response surface methodology. Journal of Environmental Management, 140: 152-159. https://doi.org/10.1016/j.jenvman.2014.03.007

Banzatto, D. A., Kronka, S.N. (2013). Experimentação Agrícola. 4.ed. Funep, 237p.

Chang F.H., Troughton, J.H. (1972). Chlorophyll a/b ratios in C3 and C4 plants. Photosynthetica, 6: 57–65.

CONAB. (2019). Acompanhamento da safra brasileira de grãos- Safra 2018/19. 6(4) - Quarto levantamento, 31 janeiro 2019. Disponível em: https://www.conab.gov.br/info-agro/safras/graos. Acesso em: 18 de junho de 2020.

EMBRAPA – Empresa Brasileira de Pesquisa Agropecuária. (2013). Sistema brasileiro de classificação de solos. 3.ed. Brasília, 353p.

Farias, V, Maranho, L.T, Vasconcelos, E.C, Silva Carvalho Filho, M.A, Lacerda, L.G, Azevedo, J.A.M., Soccol, C.R. (2009). Phytodegradation potential of Erythrina crista-galli L., Fabaceae, in petroleum-contaminated soil. Applied biochemistry and biotechnology, 157(1): 10-22. https://doi.org/10.1007/s12010-009-8531-1

Hair, J.F., Black, W.C., Babin, B.J, Anderson, R.E., Tatham, R.L. (2009). Análise multivariada de dados. Bookman editora, 593p.

Hernandez-Vaencia, I., Mager, D. (2003). Uso de Panicum maximum Y Brachiaria brizantha para fitorremediar suelos contaminados con un crudo de petróleo liviano. Biagro, 15(3): 149-155.

Karkush, M.O., Kareem, Z.A. (2017). Investigation the Impacts of Fuel Oil on the Geotechnical Properties of Cohesive Soil. Engineering Journal, 63(1): 47-62. https://doi.org/10.4186/ej.2017.21.4.127

Li, H.L., Boufadel, M.C. (2010). Long-term persistence of oil from the Exxon Valdezspill in two-layer beaches. Nature Geoscience, 3: 96-99. https://doi.org/10.1038/ngeo749

Omosun, G., Markson, A.A., Mbanasor, O. (2008). Growth and anatomy of Amaranthus hybridus as affected by different crude oil concentrations. American-Eurasian Journal of Scientific Research, 3(1): 70-74.

Karkush, M.O., Kareem, Z.A. (2017). Investigation the impacts of fuel oil on the geotechnical properties of cohesive soil. Engineering Journal, 63(1): 47-62. https://doi.org/10.4186/ej.2017.21.4.127

Kayode, J, Olowoyo, O., Oyedeji, A. (2009). The effects of used engine oil pollution on the growth and early seedling performance of Vigna uniguiculata and Zea mays. Research Journal of soil biology, 1(1): 15-19. https://doi.org/10.3923/rjsb.2009.15.19

Parry C., Blonquist Jr C.M., Bugbee B. (2014). In situ measurement of leaf chlorophyll concentration: analysis of the optical/absolute relationship. Plant, Cell and Environment, 37, 2508–2520. https://doi.org/10.1111/pce.12324

Quitério, G.C.M., Almeida, T.I.R. , Souza Filho, C.R. (2009). Caracterização espectral de Brachiaria brizantha cultivada em solo contaminado por hidrocarbonetos como instrumento de detecção de vazamentos em dutos. In Anais. São José dos Campos: INPE/SELPER.

Quitério, G.C.M, Magalhães, L.A, Souza Filho, C.R., Almeida, T.I.R., Nopperalves, M, Oliveira, W.J, Rocha, R. (2011). Uso da soja perene na detecção de estresses induzidos por pequenos vazamentos de hidrocarbonetos. Simpósio Brasileiro de Sensoriamento Remoto (SBSR), 15(2011): 5761-5768.

R Core Team. (2015). R: A language and environment for statistical computing - (RStudio). R Foundation for Statistical Computing, Vienna, Austria. URL: https://www.R-project.org/

Raij, B., Cantarella,H., Quaggio, J.A., Furlani, A.M.C. (1996). Recomendações de adubação e calagem para o Estado de São Paulo. 2.ed. Campinas: IAC, 285p.

Rosa, G.S. (2006). Avaliação do potencial de espécies vegetais na fitorremediação de solos contaminados por petróleo. Dissertação de Mestrado.

Sanderson, K., Módenesa, A.N., Espinoza-Quiñones, F.R., Trigueros, D.E.G., Zanão Júnior, L.A., Schuelter, A.R., Neves, C.V., Kroumovc, A.D. (2018). Soybean plant-based toxicity assessment and phytoremediation of soils contaminated by vegetable and mineral oils used in powerelectrical transformers. Chemosphere, 198: 228-240. https://doi.org/10.1016/j.chemosphere.2018.01.049

Streiti, N.M., Canterlei, L.P., Cantoii, M.W., Hecktheuer, L.H.H. (2005). As Clorofilas. Ciência Rural, 35(3): 748-755. https://doi.org/10.1590/S0103-847820050003000

USDA. United states department of agriculture. Oilseeds World Markets and Trade. Foreign Agricultural Service. February 2017, Disponível em:< https://apps.fas.usda.gov/psdonline/circulars/oilseeds.pdf > Acesso em 18 de junho de 2020.

Vieira, E.L., Souza, G. S., Santos, A.R., Silva, J.S. (2010). Manual de fisiologia vegetal. EDUFMA, 230p.

White, P.M.Jr., Wolf, D.C., Thoma, G.J., Reunolds, C.M. (2006). Phytoremediation of alkylated polycyclic aromatic hydrocarbons in a crude oil-contaminated soil. Water, Air, and Soil Pollution, 169(1-4): 207-220. https://doi.org/10.1007/s11270-006-2194-0

Published

14/09/2020

How to Cite

FERREIRA, J. P. D. S. .; CUNHA, M. L. O. .; APARECIDO MANZANI LISBOA, L. Initial peanut development when grown on soil contaminated by diesel oil. Research, Society and Development, [S. l.], v. 9, n. 9, p. e945997983, 2020. DOI: 10.33448/rsd-v9i9.7983. Disponível em: https://rsdjournal.org/index.php/rsd/article/view/7983. Acesso em: 25 apr. 2024.

Issue

Section

Exact and Earth Sciences