Aplicación de un modelo basado en procesos de patrones de sismicidad pre – eruptiva al volcán Ubinas, episodio eruptivo 2019

Autores/as

DOI:

https://doi.org/10.47347/incasciences.v1i1.26

Palabras clave:

Sismicidad repetitiva, Actividad magmática, Patrones sísmicos, Pronóstico de erupciones, Episodio eruptivo, Volcán Ubinas

Resumen

Utilizando un conjunto de datos de monitoreo del volcán Ubinas, se aplicó un modelo conceptual de patrones de sismicidad pre eruptiva al episodio eruptivo del 2019 con el objetivo de identificar posibles precursores de sismicidad a fin de ayudar en el pronóstico de futuras erupciones en este volcán. El modelo contempla cuatro etapas de sismicidad basadas en procesos geológicos: La etapa 1, caracterizada por la ocurrencia de sismicidad profunda asociada a una intrusión de magma en profundidad; la etapa 2, con la ocurrencia de sismos Volcano–tectónicos distales en respuesta a una intrusión de magma en el reservorio de la corteza superior; la etapa 3, dominada por sismicidad asociada a la limpieza de conductos, y la etapa 4, correspondiente a la ocurrencia
de sismicidad repetitiva asociada al ascenso final de magma. En el episodio eruptivo 2019 del volcán Ubinas, se identificaron las tres etapas finales: la etapa de sismicidad asociada con la intrusión de nuevo magma (etapa 2), la etapa de sismicidad asociada a la apertura y limpieza de conductos dentro del sistema volcánico (etapa 3) y la etapa de sismos repetitivos superficiales que sugirieron un ascenso de magma hasta niveles muy someros sin observarse la presencia de lava en superficie (etapa 4). Debido a que Ubinas es un sistema activo con frecuentes erupciones, la etapa 2 fue muy breve; sin embargo, se logró identificar mejor la transición de una fase de actividad freato-magmática a magmática. El modelo permite proporcionar una interpretación de los procesos basados en las observaciones del monitoreo del volcán Ubinas y además, ayudará en la evaluación de futuros disturbios
y contribuirá para el pronóstico de erupciones.

Citas

Aguilar, R., Ortega, M., Manrique, N., Apaza, F., Rivera, M. & Harpel, C. (2019). Characteristics of the beginning of the2019 eruptive crisis at Ubinas volcano (Peru) [póster]. AGU 2019 Fall Meettng, 09-13 December 2019, San Francisco, CA, USA. https://doi.org/10.1002/essoar.10501253.1

Caplan-Auerbach, J. & Petersen, T. (2005). Repeating coupled earthquakes at Shishaldin Volcano, Alaska. Journal of Volcanology and Geothermal Research, 145(1-2), 151-172. https://doi.org/10.1016/j.jvolgeores.2005.01.011

Cardona, C., Santacoloma, C., White, R., McCausland, W., Trujillo, N., Narváez, A., Bolaños, R. & Manzo, O. (2009). Sismicidad tipo “Drumbeat” asociada a la erupción y emplazamiento de un domo en el volcán Nevado del Huila, noviembre de 2008. Memorias XII Congreso Colombiano de Geología, 7-11 de septiembre de 2009, Paipa. https://doi. org/10.13140/RG.2.1.2460.7440

Cassidy, J.F., Balfour, N., Hickson, C., Kao, H., White, R., Caplan-Auerbach, J., Mazzotti, S., Rogers, G.C., Al-Khoubbi, I., Bird, A.L. & Esteban, L. (2011). The 2007 Nazko, British Columbia, earthquake sequence: Injection of magma deep in the crust beneath the Anahim volcanic belt. Bulletin of the Seismological Society of America, 101(4), 1732-1741. https:// doi.org/10.1785/0120100013

Cashman, K.V. (2004). Volatile controls on magma ascent and eruption. En: Sparks, R.S.J. & Hawkesworth, C.J., eds. The State of the Planet: Frontiers and Challenges in Geophysics. American Geophysical Union Geophysical, Geophysical Monograph Series, 150, p.109-124. https://doi. org/10.1029/150GM10

Chouet, B. (1988). Resonance of a fluid-driven crack: radiation properties and implications for the source of long-period events and harmonic tremor. Journal Geophysical Research: Solid Earth, 93(B5), 4375-4400. https://doi.org/10.1029/ JB093iB05p04375

Chouet, B. (1992). A seismic model for the source of long-period events and harmonic tremor. En: Gasparini, P., Scarpa, R. & Aki, K., eds. Volcanic Seismology. Berlin: Springer, vol.3, p.133- 156. https://doi.org/10.1007/978-3-642-77008-1_11

Chouet, B.A. (1996). Long-period volcano seismicity: its source and use in eruption forecasting. Nature, 380, 309-316. https:// doi.org/10.1038/380309a0

Connor, C., Bebbington, M. & Marzocchi, W. (2015). Chapter 51

- Probabilistic Volcanic Hazard Assessment. En: Sigurdsson, H., ed. The Encyclopedia of Volcanoes, 2 ed. Elsevier, p. 897- 910. https://doi.org/10.1016/B978-0-12-385938-9.00051-1

Coppola, D., Macedo, O., Ramos, D., Finizola, A., Delle Donne, D., Del Carpio, J.,White, R.A., McCausland, W., Centeno, R., Rivera, M., Apaza, F., Ccallata, B., Chilo, W., Cigolini, C., Laiolo, M., Lazarte, I., Machacca, R., Masias, P., Ortega, M.,Puma, N. & Taipe, E. (2015). Magma extrusion during the Ubinas 2013-2014 eruptive crisis based on satellite thermal imaging (MIROVA) and ground-based monitoring. Journal of Volcanology and Geothermal Research, 302, 199-210. https://doi.org/10.1016/j.jvolgeores.2015.07.005

Fee, D., Garcés, M., Patrick, M., Chouet, B., Dawson, P. & Swanson, D. (2010). Infrasonic harmonic tremor and degassing bursts from Halema’uma’u Crater, Kilauea Volcano, Hawaii. Journal of Geophysical Research: Solid Earth, 115 (B11), B11316. https://doi.org/10.1029/2010JB007642

Fournier, R.O. (2007). Hydrothermal Systems and Volcano Geochemistry. En: Dzurisin, D. Volcano Deformation: Geodetic Monitoring Techniques. Berlin: Springer, p. 323–341.https://doi.org/10.1007/978-3-540-49302-0_10

Harrington, R.M. & Brodsky, E.E. (2006). The Mount St. Helens hybrid earthquakes: Stick-slip or resonating pipes?. En: American Geophysical Union. AGU Fall Meeting Abstracts. p. V52A-02. https://ui.adsabs.harvard.edu/abs/2006AGUFM. V52A..02H

Hidayati, S., Triastuty, H., Mulyana, I., Adi, S., Ishihara, K., Basuki, A., Kuswandarto, H., Priyanto, B. & Solikhin, A. (2018). Difeerences in the seismicity preceding the 2007 and 2014 eruptions of Kelud volcano, Indonesia. Journal of Volcanology and Geothermal Research, 382, 50-67.http:// doi.org/10.1016/j.jvolgeores.2018.10.017

Hill, D.P. (1977). A Model for earthquake swarms. Journal Geophysical Research: Solid Earth and Planets, 82(8), 1347- 1352. https://doi.org/10.1029/JB082i008p01347

Hill, D.P., Pollitz, F. & Newhall, C. (2002b). Earthquake-Volcano Interactions. Physics Today, 55(11), 41-47. https://doi. org/10.1063/1.1535006

Horton, S.P, Norris, R.D. & Moran, S.C. (2008). Broadband characteristics of earthquakes recorded during a dome- building eruption at Mount St. Helens, Washington, between October 2004 and May 2005. En: Sherrod, D.R., Scott, W.E., & Stautter, P.H., eds. A Volcano rekindled: the renewed eruption of Mount St. Helens, 2004–2006. U.S. Geological Survey, Professional Paper, 1750-5, chapter 5, p. 97-110. https://doi.org/10.3133/pp17505

Ibáñez, J. & Carmona, E. (2000). Sismicidad Volcánica. En: Astiz, M. & García, A. Curso internacional de volcanología y geofísica volcánica: edición 2000. Serie Casa de los volcanes, 7, p. 269-282.

Iverson, R.M., Dzurisin, D., Gardner, C.A., Gerlach, T.M., LaHusen, R.G., Lisowski, M., Major, J.J., Malone, S.D., Messerich, J.A., Moran, S.C., Pallister, J.S., Qamar, A., Schiling, S.P., & Vallance, J.W. (2006). Dynamics of

seismogenic volcanic extrusion at Mount St. Helens in 2004–05. Nature, 444, 439-443. https://doi.org/10.1038/ nature05322

Julian, B.R. (1994). Volcanic tremor: nonlinear excitation by fluid flow. Journal of Geophysical Research: Solid Earth, 99(B6), 11859-11877. https://doi.org/10.1029/93JB03129

Kono, M., Fukao, Y. & Yamamoto, A. (1989). Mountain building in the Central Andes. Journal of Geophysical Research: Solid Earth, 94(B4), 3891-3905. https://doi.org/10.1029/ JB094iB04p03891

Latter, J.H. (1979). Volcanological observations at Tongariro National Park, II: Types and classification of volcanic earthquakes, 1976–1978. Department of Scientific and Industrial Research, Report - Geophysics Division, 150, 60 p.http://pascalfrancis.inist.fr/vibad/index. php?action=getRecordDetail&idt=9254945

Latter, J.H. (1981). Volcanic Earthquakes and their relationship to eruptions at Ruapehu and Ngauruhoe volcanoes. Journal of Volcanology and Geothermal Research, 9(4), 293-309. https://doi.org/10.1016/0377-0273(81)90041-X

Lesage, P. (2009). Interactive Matlab software for the analysis of seismic volcanic signals. Computers & Geosciences, 35(10), 2137-2144. https://doi.org/10.1016/j.cageo.2009.01.010

Lesage, P., Mora, M., Alvarado, G.E., Pacheco, J. & Métaxian,

J. (2006). Complex behavior and source model of the tremor at Arenal volcano, Costa Rica. Journal of Volcanology and Geothermal Research, 157, 49–59. https://doi.org/10.1016/j. jvolgeores.2006.03.047

Lesage, P. & Surono (1995). Seismic precursors of the February 10, 1990 eruption of Kelut volcano, Java. Journal of Volcanology and Geothermal Research, 65(1-2), 135-146. https://doi.org/10.1016/0377-0273(94)00051-H

Mariño, J., Rivera, M., Macedo, O., Masías, P., Antayhua, Y. & Thouret, J.C. (2011). Gestión de la crisis eruptiva del volcán Ubinas 2006-2008. INGEMMET, Boletín Serie C: Geodinámica e Ingeniería Geológica, 45, 188 p., 1 mapa. https://hdl.handle.net/20.500.12544/301

Mastin, L.G., Roeloffs, E., Beeler, N.M. & Quick, J.E. (2008). Constraints on the size, overpressure, and volatile content of the Mount St. Helens magma system from geodetic and dome-growth measurements during the 2004–2006+ eruption. En: Sherrod, D.R., Scott, W.E., & Stauffer, P.H., eds. A Volcano rekindled: the renewed eruption of Mount St. Helens, 2004–2006. U.S. Geological Survey, Professional Paper, 1750-5, chapter 22, p. 461-488. https:// doi.org/10.3133/pp175022

McCausland, W.A., Gunawan, H., White, R.A., Indrastuti, N., Patria, C., Suparman, Y., Putra, A., Triastuty, H. & Hendrasto,

M. (2019). Using a process-based model of pre-eruptive seismic patterns to forecast evolving eruptive styles at Sinabung Volcano, Indonesia. Journal of Volcanology and Geothermal Research, 382, 253-266. https://doi. org/10.1016/j.jvolgeores.2017.04.004

McNutt, S.R. (2005). Volcanic Seismology. Annual Review of Earth and Planetary Sciences, 33, 461- 491. https://doi. org/10.1146/annurev.earth.33.092203.122459

McNutt, S.R. & Roman, D.C. (2015). Chapter 59 - Volcanic seismicity. En: Sigurdsson, H., ed. The Encyclopedia of Volcanoes, 2 ed. Elsevier, p. 1011-1034. https://doi. org/10.1016/B978-0-12- 385938-9.00059-6

Miller, A.D., Stewart, R.C., White, R.A., Lucketi, R., Baptie, B.J., Aspinall, W.P., Latchman, J.L., Lynch, L.L & Voight,

B. (1998). Seismicity associated with dome growth and collapse at the Soufriere Hills Volcano, Montserrat. Geophysical Research Letters, 25(18), 3401-3404.https:// doi.org/10.1029/98GL01778

Minakami, T. (1974). Chapter 1 - Seismology of volcanoes in Japan. En: Civetta, L., Gasparini, P., Luongo, G. & Rapolla, A., eds. Physical Volcanology. Elsevier, Developments in Solid Earth Geophysics, 6, p. 1-27. https://doi.org/10.1016/ B978-0-444-41141-9.50007-3

Minakami, T., Ishikawa, T. & Yagi, K. (1951). The 1944 eruption of volcano Usu in Hokkaido, Japan: history and mechanism of formation of the new dome “Syowa - Sinzan”. Bulletin Volcanologique, 11(1), 45-157. https://doi.org/10.1007/ BF02596029

Moran, S., Stihler, S. & Power, J. (2002). A tectonic earthquake sequence preceding the April–May 1999 eruption of Shishaldin Volcano, Alaska. Bulletin of Volcanology, 64(8), 520–524. https://doi.org/10.1007/s00445-002-0226-1

Moran, S.C., Malone, S.D., Qamar, A.I., Thelen, W.A., Wright,

A.K. & Caplan-Auerbach, J. (2008). Seismicity associated with renewed dome building at Mount St. Helens, 2004– 2005. En: Sherrod, D.R., Scott, W.E., & Stauffer, P.H., eds. A Volcano rekindled: the renewed eruption of Mount St. Helens, 2004–2006. U.S. Geological Survey, Professional Paper, 1750, chapter 2, p. 27-60. https://pubs.usgs.gov/pp/1750/

Nakada, S., Shimizu, H. & Ohta, K. (1999). Overview of the 1990- 1995 eruption at Unzen Volcano. Journal of Volcanology and Geothermal Research, 89(1-4), 1-22. https://doi.org/10.1016/

S0377- 0273(98)00118-8

Newhall, C. & Hoblitt, R. (2002). Constructing event trees for volcanic crises. Bulletin of Volcanology, 64(1), 3-20. https:// doi.org/10.1007/s004450100173

Omori, F. (1911). The Usu-san eruption and earthquake and elevation phenomena. Bulletin of the Imperial Earthquake Investigation Committee, 5, 1-38. http://hdl.handle. net/2261/16029

Pallister, J.S., Hoblitt, R.P., Meeker, C.P., Knight, R.J. & Siems,

D.F. (1996). Magma mixing at Mount Pinatubo: petrographic and chemical evidence from the 1991 deposits. En: Newhall,

C. G. & Punongbayan, R., eds. Fire and Mud: Eruptions and Lahars of Mount Pinatubo, Philippines. Philippine Institute of Volcanology and Seismology, University of Washington Press, p. 687-731. https://pubs.usgs.gov/pinatubo/pallister/

Pallister, J. & Surono (2015). Forecasting the November 2010 eruption of Merapi, Indonesia. En: Loughlin, S.C., Sparks, S., Brown, S.K., Jenkins, S.F. & Vye-Brown, C., eds. Global Volcanic Hazards and Risk. Cambridge University Press, chap. 9, p. 263-266.https://doi.org/10.1017/ CBO9781316276273.011

Patrick, M., Wilson, D., Fee, D., Orr, T. & Swanson, D.A. (2011). Shallow degassing events as a trigger for very- long-period seismicity at Kilauea Volcano, Hawai’i. Bulletin of Volcanology, 73(9), p.1179-1186.

Pitt, A.M. & Hill, D.P. (1994). Long-period earthquakes in the Long Valley Caldera Region, eastern California. Geophysical Research Letters, 21 (16), 1679-1682. https:// doi.org/10.1029/94GL01371

Power, J.A., Lahr, J.C., Page, R.A., Chouet, B.A., Stephens, C.D., Harlow, D.H., Murray, T.L. & Davies, J.N. (1994). Seismic evolution of the 1989–1990 eruption sequence of Redoubt Volcano, Alaska. Journal of Volcanology and Geothermal Research, 62(1-4), p. 69-94. https://doi.org/10.1016/0377-

(94)90029-9

Power, J.A. & Lalla, D.J. (2010). Seismic observations of Augustine Volcano, 1970-2007, chapter 1. En: Power, J.A., Coombs, M.L. & Freymueller, J.T., eds. The 2006 eruption of Augustine Volcano, Alaska. U.S. Geological. Survey, Professional Paper, 1769, p. 3-40. https://doi.org/10.3133/ pp17691

Power, J.A., Stihler, S.D., White, R.A. & Moran, S.C. (2004). Observations of deep long-period (DLP) seismic events beneath Aleutian arc volcanoes; 1989–2002. Journal of Volcanology and Geothermal Research, 138(3-4), 243-266. https://doi.org/10.1016/j.jvolgeores.2004.07.005

Ramos, D., Ortega, M., Antayhua, Y., Anccasi, R., Ccallata, B., Miranda, R., Taipe, E., Cruz, L., Apaza, F., Masías, P., Valdivia,

D. & Luza, C. (2019). Informe técnico anual: Vigilancia del volcán Ubinas, periodo 2019 (Informe técnico Nº A7000). Arequipa: Observatorio Vulcanológico del lINGEMMET, 75 p. https://hdl.handle.net/20.500.12544/2580

Rivera, M., Thouret, J.C., Mariño, J., Berolatti, R. & Fuentes,

J. (2010). Characteristics and management of the 2006 – 2008 volcanic crisis at the Ubinas volcano (Peru). Journal of Volcanology and Geothermal Research, 198(1-2), 19-34. https://doi.org/10.1016/j.volgeores.2010.07.020

Rivera, M., Thouret, J.C., Samaniego, P. & Le Pennec, J.L. (2014). The 2006-2009 activity of the Ubinas volcano (Peru): Petrology of the 2006 eruptive products and insights into genesis of andesite magmas, magma recharge and plumbing system. Journal of Volcanology and Geothermal Research, 270, 122-141. https://doi. org/10.1016/j.jvolgeores.2013.11.010

Rose, W.I., Palma, J.L., Delgado Granados, H. & Varley, N. (2013). Open-vent volcanism and related hazards: Overview. En: Rose, W.I., Palma, J.L., Delgado Granados, H. & Varley,

N. Understanding Open-Vent Volcanism and Related Hazards. Geological Society of America, GSA Special Papers, 498, p. vii-xiii. https://doi.org/10.1130/2013.2498(00)

Rust, A., Balmforth, N. & Mandre, S. (2008). The feasibility of generating low-frequency volcano seismicity by flow through a deformable channel. En: Lane, S.J. & Gilbert, J.S., eds. Fluid Motions in Volcanic Conduits: A Source of Seismic and Acoustic Signals. Geological Society of London, Special Publication, 307, p. 45-56. https://doi.org/10.1144/SP307.4

Sillitoe, R.H. (2010). Porphyry copper systems. Economic Geology, 105(1), 3-41. http://dx.doi.org/10.2113/ gsecongeo.105.1.3

Thouret, J.C., Rivera, M., Worner, G., Gerbe, M.C., Finizola, A., Fornari, M. & Gonzales, K. (2005). Ubinas: the evolution of the historically most active volcano in southern Peru. Bulletin of Volcanology, 67, 557-589. https://doi.org/10.1007/ s00445-004-0396-0

Torres, R., Gómez, D. & Narvaéz, L. (1996). Unusual seismic signals associated with the activity at Galeras volcano, Colombia, from July 1992 to September 1994. Annali di Geofisica, 39(2), 299- 310. https://doi.org/10.4401/ag-3975

Scandone, R., Cashman, K.V. & Malone, S.D. (2007). Magma supply, magma ascent and the style of volcanic eruptions. Earth and Planetary Science Letters, 253(3-4), 513-529. https://doi.org/10.1016/j.epsl.2006.11.016

Umakoshi, K., Takamura, N., Shinzato, N., Uchida, K., Matsuwo,

N. & Shimizu, H. (2008). Seismicity associated with the 1991–1995 dome growth at Unzen Volcano, Japan. Journal of Volcanology and Geothermal Research, 175(1-2), 91-99. https://doi.org/10.1016/j.jvolgeores.2008.03.030

Valentine, G.A., Graettinger, A.H. & Sonder, I. (2014). Explosion depths for phreatomagmatic eruptions. Geophysical Research Letter, 41(9), 3045-3051. https:// doi.org/10.1002/2014GL060096

White R. (1996). Precursory deep long – period earthquakes at Mount Pinatubo: Spatio - temporal link to a basalt trigger. En: Newhall, C.G. & Punongbayan, R., eds. Fire and Mud: Eruptions and Lahars of Mount Pinatubo, Philippines. Philippine Institute of Volcanology and Seismology, University of Washington Press, p. 307-328. https://pubs. usgs.gov/pinatubo/white/

White, R. & McCausland, W. (2016). Volcano-tectonic earthquakes: A new tool for estimating intrusive volumes and forecasting eruptions. Journal of Volcanology and Geothermal Research, 309, 139-155. https://doi. org/10.1016/j.jvolgeores.2015.10.020

White R. & McCausland, W. (2019). A process – based model of pre-eruption seismicity patterns and its use for eruption forecasting at dormant stratovolcanoes. Journal of Volcanology and Geothermal Research, 382, 267-297. https://doi.org/10.1016/j.jvolgeores.2019.03.004

Zoback, M.L., Geist, E., Pallister, J., Hill, D.P., Young, S. & McCausland, W. (2013). Advances in natural hazard science and assessment, 1963–2013. En: Bickford, M.E. The Impact of the Geological Sciences on Society. Geological Society of America, GSA Special Papers, 501, p. 81- 154. https:// doi.org/10.1130/2013.2501(05)

Zobin, V.M., 2012. Introduction to volcanic seismology (Vol. 6). Elsevier. https://doi.org/10.1016/B978-0-444-56375-0.00002-5.

Publicado

2023-11-02

Cómo citar

Ortega, M. A., McCausland, W. A., White, R. A., Aguilar, R., Anccasi, R. M., & Ccallata, B. (2023). Aplicación de un modelo basado en procesos de patrones de sismicidad pre – eruptiva al volcán Ubinas, episodio eruptivo 2019. Incasciences, 1(1), 16–42. https://doi.org/10.47347/incasciences.v1i1.26

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