Publication Cover
Journal of Environmental Science and Health, Part B
Pesticides, Food Contaminants, and Agricultural Wastes
Volume 56, 2021 - Issue 3
123
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Electrostatic spraying of imazamox to control the floating aquatic plant Salvinia molesta and its effects on environmental indicators of water quality

, , , , , & show all

References

  • Brundu, G. Plant invaders in European and Mediterranean Inland Waters: profiles, distribution, and threats. Hydrobiologia 2015, 746, 61–79. DOI: 10.1007/s10750-014-1910-9.
  • Sartain, B. T.; Mudge, C. R. Evaluation of 12 foliar applied non-aquatic herbicides for efficacy against giant Salvinia (Salvinia molesta). J. Aquat. Plant Manage. 2018, 56, 107–112.
  • Owens, C. S.; Smart, R. M.; Dick, G. O. Effects of salinity and pH on growth of giant Salvinia (Salvinia molesta Mitchell). J. Aquat. Plant Manage. 2014, 52, 93–96.
  • Netherland, M. D. Chemical control of aquatic weeds. In Biological Control of Aquatic Plants. A Best Management Practices Handbook, 3rd Ed.; Gettys, L., Haller, W., Petty, D., Eds.; Marietta, GA: Aquatic Ecosystem Restoration Foundation, 2014; 71–88.
  • Getsinger, K. D.; Netherland, M. D.; Grue, C. E.; Koschnick, T. J. Improvements in the use of aquatic herbicides and establishment of future research directions. J. Aquat. Plant. Manage. 2008, 46, 32–41.
  • Haller, W.; Aquatic herbicide application methods. In: Biological Control of Aquatic Plants. A Best Management Practices Handbook; 3rd Ed.; Gettys, L., Haller, W., Petty, D., Eds.; Aquatic Ecosystem Restoration Foundation: Marietta, GA, 2014; 193–198
  • Hussner, A.; Stiers, I.; Verhofstad, M. J. J. M.; Bakker, E. S.; Grutters, B. M. C.; Haury, J.; Valkenburg, J. L. C. H. V.; Brundu, G.; Newman, J.; Clayton, J. S.; et al. Management and control methods of invasive alien freshwater aquatic plants: a review. Aquat. Bot. 2017, 136, 112–137. DOI: 10.1016/j.aquabot.2016.08.002.
  • Rodgers, L.; Black, D. Effects of aerially-applied imazamox on southern cattail and non-target emergent vegetation in a eutrophic sawgrass marsh. J. Aquat. Plant Manage. 2012, 50, 125–129.
  • Appah, S.; Wang, P.; Ou, M.; Gong, C.; Jia, W. Review of electrostatic system parameters, charged droplets characteristics and substrate impact behavior from pesticides spraying. Int. J. Agric. Biol. Eng. 2019, 12, 1–9.
  • Martin, D. E.; Latheef, M. A. Efficacy of electrostatically charged glyphosate on ryegrass. J. Electrostat. 2017, 90, 45–53. DOI: 10.1016/j.elstat.2017.08.006.
  • Pan, X. L.; Dong, F. S.; Wu, X. H.; Xu, J.; Liu, X. G.; Zheng, Y. Q. Progress of the discovery, application, and control technologies of chemical pesticides in China. J. Integr. Agr. 2019, 18, 840–853.
  • Guimarães, G. L.; Foloni, L. L.; Piteli, R.; Martins, A. T. Metodologia Para Avaliação de Impacto Ambiental de Macrófitas em Mesocosmos. Planta Daninha. 2003, 21, 37–42. DOI: 10.1590/S0100-83582003000400006.
  • Alam. Associacion Latinoamerica de Malezas. Recomendaciones Sobre Umificacion de Los Sistemas de Evaluacion em Ensayos de Comtrol de Malezas. ALAM 1974, 1, 35–38.
  • Velini, D. E.; Osipe, R.; Gazziero, D. L. P. Procedimentos Para Instalação, Avaliação e Análise de Experimentos Com Herbicidas. Sociedade Brasileira da Ciência das Plantas Daninhas (SBCPD): Londrina, BR, 1995; 42.
  • Cetesb. Companhia Ambiental Do Estado de São Paulo. Norma Técnica CETESB L5.306. Determinação de Clorofila a e Feofitina a: método Espectrofotômetro. 2014, 3th ed., 14. São Paulo, BR: Companhia Ambiental do Estado de São Paulo (CETESB).
  • Caldwell, D. H.; Langelier, W. F. Manometric measurement of the biochemical oxygen demand of sewage. Sewage Work. J. 1948, 20, 202–218.
  • Adams V.D. Water and wastewater examination manual. In Methods for the Determination of Organics, Chemical Oxygen Demand (COD). Manual Method Dichromate Reflux; Boca Raton, FL: CRC Press LLC, 1989; 168–172, 264.
  • Barbosa, J. C.; Maldonado Jr, W. AgroEstat - Sistema para Análises Estatísticas de Ensaios Agronômicos. Versão 1.1.0.712, 2014.
  • Emerine, S. E.; Richardson, R. J.; True, S. L.; West, A. M.; Roten, R. L. Greenhouse response of six aquatic invasive weeds to imazamox. J. Aquat. Plant Manage. 2010, 48, 105–111.
  • Wersal, R. M.; Madsen, J. D. Combinations of penoxsulam and diquat as foliar applications for control of waterhyacinth and common salvinia: evidence of herbicide antagonism. J. Aquat. Plant Manage. 2010, 48, 21–25.
  • Richardson, R. J.; Roten, R. L.; West, A. M.; True, S. L.; Gardner, A. P. Response of selected aquatic invasive weeds to flumioxazin and carfentrazone-ethyl. J. Aquat. Plant Manage. 2008, 46, 154–158.
  • (a) Cruz, C.; Silva, A. F.; Shiogiri, N. S.; Garlich, N.; Pitelli, R. A. Imazapyr herbicide efficacy on floating macrophytes control and ecotoxicology for non-target organisms. Planta Daninha. 2015, 33(1), 103–108. (b) Glyphosate Effectiveness in the Control of Macrophytes Under a Greenhouse Condition. Planta Daninha. 2015, 33(2), 241–247. DOI: 10.1590/0100-83582015000200009.
  • Mudge, C. R.; Netherland, M. D. Response of invasive floating plants and nontarget emergent plants to foliar applications of imazamox and penoxsulam. J. Aquat. Plant Manage. 2014, 52, 1–7.
  • Glomski, L. M.; Mudge, C. R. Effect of subsurface and foliar applications of bispyribac-sodium on water hyacinth, water lettuce, and giant salvinia. J. Aquat. Plant Manage. 2013, 51, 62–65.
  • Miranda, C. V.; Schwartsburd, P. B. Salvinia (Salviniaceae) in Southern and Southeastern Brazil – including New Taxa, new distribution records, and new morphological characters. Braz. J. Bot. 2019, 42, 171–188. DOI: 10.1007/s40415-019-00522-5.
  • Matthews, G. A.; Bateman, R.; Miller, P. Pesticide Application Methods. 4th Ed.; Oxford, UK, 2014; 536.
  • Miller, P. C. H.; Tuck, C. R.; Murphy, S.; Ferreira, M. C. Measurements of the droplet velocities in sprays produced by different designs of agricultural spray nozzle. In 22nd European Conference on Liquid Atomization and Spray Systems, Como Lake, Italy. Anais do 22nd European Conference on Liquid Atomization and Spray Systems, 2008.
  • Garlich, N.; Guarnieri, C.; Freitas, R.; Cervoni, J. H.; Cruz, C.; Ferreira, M. C. Efficacy of imazamox with centrifugal energy spray nozzle on Eichhornia crassipes and economic analysis of control viability. Planta Daninha 2019, 37, e019194898.
  • Pereira, P. F.; Peixoto, P. H. P.; Ribeiro, C.; Resende, C. F.; Antunes, F.; Braga, V. F. Pigmentos Lipossolúveis e Hidrossolúveis em Plantas de Salvínia Sob Toxicidade Por Cromo. Planta Daninha. 2012, 30, 697–703. DOI: 10.1590/S0100-83582012000400002.
  • Taiz, L.; Zeiger, E.; Vegetal, F. Fisiologia vegetal, 5th. Ed.; Artmed: Porto Alegre, 2013, 918.
  • Streit, N. M.; Canterle, L. P.; Canto, M. W.; Hecktheuer, L. H. H. As Clorofilas. Cienc. Rural 2005, 35, 748–755. DOI: 10.1590/S0103-84782005000300043.
  • Vigiak, O.; Grizzetti, B.; Udias-Moinelo, A.; Zanni, M.; Dorati, C.; Bouraoui, F.; Pistocchi, A. Predicting biochemical oxygen demand in european freshwater bodies. Sci. Total Environ. 2019, 666, 1089–1105. DOI: 10.1016/j.scitotenv.2019.02.252.
  • Abba, S. I.; Elkiran, G. Effluent prediction of chemical oxygen demand from the wastewater treatment plant using artificial neural network application. Proc. Comp. Sci. 2017, 120, 156–163. DOI: 10.1016/j.procs.2017.11.223.
  • Gupta, N.; Pandey, P.; Hussain, J. Effect of physicochemical and biological parameters on the quality of river water of Narmada, Madhya Pradesh, India. Water Sci. 2017, 31, 11–23. DOI: 10.1016/j.wsj.2017.03.002.
  • Mello, A. S.; Jr, Santos, G. R.; Silva, G. S.; Melo, R. C. C.; Jesus, T. A. Monitoramento da Concentração de Oxigênio Dissolvido (OD) em Lagoas de Estabilização. INOVE-J. Eng., Arch. Tec. In. 2019, 7, 128–146.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.