• Hernandez-Sanchez, T., Bonasia, R., Scaini, C. (2021). Feasibility study for the extraction of wave energy along the coast of ensenada, Baja California, Mexico. Journal of Marine Science and Engineering 9(3),284
  • Download PDF: Herbon 2021
  • Areu-Rangel O.S., Bonasia R., Di Traglia F., Del Soldato M., Casagli N. (2020) Flood susceptibility and sediment transport analysis of Stromboli island after the 3 July 2019 paroxysmal explosion. Sustainability, 12(8), 3268; https://doi.org/10.3390/su12083268.
  • Cáliz-Reyes C., Ibarra-Bracamontes L.A., Bonasia R., Viramontes-Gamboa G. (2019) SPH Numerical Simulations of the Deformation of a Liquid Surface in Two Dimensions. Springer Nature Switzerland AG 2019 M. Torres and J. Klapp (Eds.): ISUM 2019, CCIS 1151, pp. 63–75, 2019. https://doi.org/10.1007/978-3-030-38043-4_6.
  • Bonasia R., Lucatello S. (2019) Linking Flood Susceptibility Mapping and Governance in Mexico for Flood Mitigation: A Participatory Approach Model. Atmosphere, 10, 424; doi:10.3390/atmos10080424.
  • Vázquez R., Bonasia R., Folch A., Arce J.L., Macias J.L. (2019) Tephra fallout hazard assessment at Tacaná volcano (Mexico). J. of South American Earth Sciences, 91: 253-259. https://doi.org/10.1016/j.jsames.2019.02.013.
  • Areu-Rangel O.S., Cea L., Bonasia R., Espinosa-Echavarría V.J. (2019) Impact of urban growth and land use changes on river flood hazard in Villahermosa, Tabasco (Mexico). Water, 11, 304, doi:10.3390/w11020304.
  • Klapp J., Areu-Rangel O.S., Cruchaga M., Aránguiz R., Bonasia R., Godoy Seura M. (2019) Tsunami hydrodynamic force on a building using a SPH real scale numerical simulation. Natural Hazards, https://doi.org/10.1007/s11069-019-03800-3.
  • Bonasia R., Areu-Rangel O.S., Tolentino D., Mendoza-Sanchez I., Gonzáles-Cao J., Klapp J., 2017.
    Flooding hazard assessment at Tulancingo (Hidalgo, Mexico). Jou. of Flood Risk Management. Do: 10.1111/jfr3.12312.
  • Areu-Rangel O.S., Gonzáles-Cao J., Crespo A.J.C., Bonasia R., 2017.
    Numerical modeling of hydrological safety assignment in dams with IBER Sustain. Water Resour. Manag. Doi: 10.1007/s40899-017-0135-2
  • Siebe C., Salinas S., Arana-Salinas L., Macías J.L., Gardner J., Bonasia R., 2017.
    The ~23,500 y 14C BP White Pumice Plinian eruption and associated debris avalanche and Tochimilco lava flow pf Popocatépetl volcano, México. J. Volcanol. Geothrm. Res. 333-334, 66-95. https://doi.org/10.1016/j.jvolgeores.2017.01.011.
  • Areu-Rangel O.S., Tolentino D., Mendoza-Sanchez I. Alvarado-Rodríguez C.E., Klapp J. and Bonasia R., 2016.
    Numerical siulations of a dam overflowing. Case study: “La Esperanza” dan in Hidalgo, Mexico. Implications for risk evaluation. En “Recent Advances in High Performance
    Computer applications”, I. Gitler & J. Klapp (Eds.) 2016, Communications in Computer and Information Science (CCIS), Springer.
  • Bonasia R., Scaini C., 2015.
    A Review of Tephra Transport and Dispersal Modeling Strategies and Applications to Far-Range Hazard Assessment at Some of the Most Active Volcanoes in the World In:
    Danielle GraverI. (Eds.), Volcanic Ash: Chemical Composition, Environmental Impact and Health Risks. Nova Science Pub., pp. 41–68.
  • L. Capra, J.C. Gavilanes-Ruiz, R. Bonasia, R. Saucedo-Giron, R. Sulpizio
    Re-assessing volcanic hazard zonation of Volcan de Colima, Mexico.
    Nat Hazard DOI 10.1007/s11069-014-1480-1.
  • Bonasia R., Carrasco-Nunez G., Davila-Harris P.
    Numerical reconstruction of “Pomez Ezequiel Montes” Plinian fallout deposit: advantages in the use of numerical models for the reconstruction of fallout deposits from past eruptions. (2012) Revista Mexicana de Ciencias Geologicas. Vol.29, num.3, 2012, p.611-618.
  • Bonasia R., Scaini C., Capra L., Nathenson M., Siebe C., Arana-Salinas L., Folch A., 2013.

    Long-range hazard assessment of volcanic ash dispersal for a Plinian eruptive scenario at Popocatépetl volcano (Mexico): implications for civil aviation safety. Bull. Volcanol. 76:789 doi 10.1007/s00445-013-0789-z.
  • Bonasia R., Carrasco-Nunez G., Davila-Harris P., 2012.
  • Numerical reconstruction of “Pomez Ezequiel Montes” Plinian fallout deposit: advantages in the use of numerical models for the reconstruction of fallout deposits from past eruptions. Revista Mexicana de Ciencias Geologicas. Vol.29, num.3, 2012, p.611-618.
  • Bonasia R., Capra L., Costa A., Macedonio G., Saucedo R., 2011.

    Tephra fallout hazard assessment for a Plinian eruption scenario at Volcan de Colima (Mexico). Journal of Vol. and Geoth. Res. Doi: 10.1016/j.jvolgeores.2011.03.006.

  • Bonasia R., Macedonio G., Costa A., Mele D., Sulpizio R., 2010.
    Numerical inversion and analysis of tephra fallout deposits from the 472 AD sub-Plinian eruption at Vesuvius (Italy) through a new best-fit procedure. Journal of Vol. and Geoth. Res. Doi: 10.1016/j.jvolgeores.2009.11.009.
  • Dellino P., Dioguardi F., Zimanowski B., Buttner R., Mele D., La Volpe L. Sulpizio R., Doronzo D.M.,Sonder I., Bonasia R., Calvari S., Marotta E., 2010.
    Conduit experiments help constraining the regime of explosive eruptions. Journal of Geophys. Res. 115, B04204. Doi: 10,1029/2009JB006781.
  • Sulpizio R., Cioni R., Di Vito M.A., Mele D., Bonasia R., Dellino P., 2010.
    The Pomici di Avellino eruption of Somma-Vesuvius (3.9 ka B.P.) part I: stratigraphy, compositional variability and eruptive dynamics. Bull. Volcanol. 72, 539-558.
  • Sulpizio R., Bonasia R., Dellino P., Mele D., Di Vito M.A., La Volpe L., 2010.
    The Pomici di Avellino eruption of Somma-Vesuvius (3.9 ka B.P.) part II: Sedimentology and physical volcanology of pyroclastic density current deposits. Bull. Volcanol. 72, 559-577.
  • Sulpizio R., Bonasia R., Dellino P., Di Vito M. A., La Volpe L., Mele D., Zanchetta G., Sadori L., 2008.
  • Discriminating the long distamce dispersal of fine ash from sustained columns or near ground ash clouds: the example of the Pomici di Avellino eruption (Somma-Vesuvius, Italy). Journal of Vol. and Geoth. Res. 177, 263-276.
  • Dellino P., Mele D., Bonasia R., Braia G., La Volpe L., and Sulpizio R., 2005.
    The analysis of the influence of pumice shape on its terminal velocity. Geoph. Res. Lett. Vol 32, L21306, doi: 1029/2005GL023954.