Abstract
Soputan is a high-alumina basalt stratovolcano located in the active North Sulawesi-Sangihe Islands magmatic arc. Although immediately adjacent to the still geothermally active Quaternary Tondono Caldera, Soputan’s magmas are geochemically distinct from those of the caldera and from other magmas in the arc. Unusual for a basalt volcano, Soputan produces summit lava domes and explosive eruptions with high-altitude ash plumes and pyroclastic flows—eight explosive eruptions during the period 2003–2011. Our field observations, remote sensing, gas emission, seismic, and petrologic analyses indicate that Soputan is an open-vent-type volcano that taps basalt magma derived from the arc-mantle wedge, accumulated and fractionated in a deep-crustal reservoir and transported slowly or staged at shallow levels prior to eruption. A combination of high phenocryst content, extensive microlite crystallization and separation of a gas phase at shallow levels results in a highly viscous basalt magma and explosive eruptive style. The open-vent structure and frequent eruptions indicate that Soputan will likely erupt again in the next decade, perhaps repeatedly. Explosive eruptions in the Volcano Explosivity Index (VEI) 2–3 range and lava dome growth are most probable, with a small chance of larger VEI 4 eruptions. A rapid ramp up in seismicity preceding the recent eruptions suggests that future eruptions may have no more than a few days of seismic warning. Risk to population in the region is currently greatest for villages located on the southern and western flanks of the volcano where flow deposits are directed by topography. In addition, Soputan’s explosive eruptions produce high-altitude ash clouds that pose a risk to air traffic in the region.
This is a preview of subscription content, access via your institution.






















Notes
Population estimates were utilized from the LandScan 2007™ High Resolution global Population Data Set copyrighted by UT-Battelle, LLC, operator of Oak Ridge National Laboratory under Contract no. DE-AC05-00OR22725 with the US Department of Energy. The US Government has certain rights in this Data Set. Neither UT-Battle, LLC nor the US Department of Energy, nor any of their employees makes any warranty, express or implied, or assumes any legal liability or responsibility for the accuracy, completeness, or usefulness of the data set.
The forecast presented here was made prior to and validated by the eruption of 3 July 2011. We anticipate that it will remain valid for the next 5–10 years, although it should be re-evaluated with each eruption, as changes in the morphology of the volcano may affect the forecast.
References
Andersen DH, Lindsley DH, Davidson PM (1993) QUILF: a PASCAL program to assess equilibria among Fe Mg Mn Ti oxides, pyrosenes, olivine and quartz. Comput Geosci 19:1333–1350
Asimow PD, Ghiorso MS (1998) Algorithmic modifications extending MELTS to calculate subsolidus phase relations. Am Mineral 83:1127–1131
Baier J, Audetat A, Keppler H (2007) The origin of the negative niobium tantalum anomaly in subduction zone magmas. Earth Planet Sci Lett 267:290–300. doi:10.1016/j.epsl.2007.11.032
Bittenbinder AN, Bogaert BM, Johnson C, Malone SD (1994) Earthworm; a modular distributed processing approach to seismic network processing. Seism Res Lett 65:51
CVGHM (2009) Volcano Database, Ambang, Awu, Colo, Lokon, Karangetang, Mahawu, Ruang, Soputan and Tangkoko, North Sulawesi. Indonesian Center for Volcanology and Geologic Hazard Mitigation (CVGHM) database and report, English translation, Feb 2009: 121 p. Available at http://www.vsi.esdm.go.id
de Hoog JCM, Taylor BE, van Bergen MJ (2001) Sulfur isotope systematics of basaltic lavas from Indonesia: implications for the sulfur cycle in subduction zones. Earth Planet Sci Lett 189:237–252
Dobson JE, Bright EA, Coleman PR, Durfee RC, Worley BA (2000) LandScan: a global population database for estimating populations at risk. Photogramm Eng Remote Sens 66:849–857
Endo ET, Murray T (1991) Real-time seismic amplitude measurement (RSAM); a volcano monitoring tool. Bull Volcanol 53:533–545
Ghiorso MS, Sack RO (1995) Chemical mass transfer in magmatic processes. IV. A revised and internally consistent thermodynamic model for the interpolation and extrapolation of liquid-solid equilibria in magmatic systems at elevated temperatures and pressures. Cont Mineral Petrol 119:197–212
Ghiorso MS, Hirschmann MM, Reiners PW, Kress VC III (2002) The pMELTS: an revision of MELTS aimed at improving calculation of phase relations and major element partitioning involved in partial melting of the mantle at pressures up to 3 GPa. Geochem Geophys Geosyst 3(5). doi:10.1029/2001GC000217
Grove TL, Elkins-Tanton LT, Parman SW, Chatterjee N, Müntener O, Gaetani GA (2003) Fractional crystallization and mantle-melting controls on calc-alkaline differentiation trends. Cont Mineral Petrol 145:515–533. doi:10.1007/s00410-003-0448-z
Gust DA, Perfit MR (1987) Phase relations of a high-Mg basalt from the Aleutian Island Arc: implications for primary island arc basalts and high-Al basalts. Cont Mineral Petrol 97:7–18
Hadisantono RD, Mulyana R, Purwoto, Ridwan I (2008) Gejala perubahan pada erupsi G. Soputan, 6 Juni 2008. Vulkanologi dan Bencana Geologi 3:6–12
Hamilton W (1979) Tectonics of the Indonesian Region. USGS Prof. Paper 1078
Iverson RM, Schilling SP, Vallance JW (1998) Objective delineation of lahar-inundation hazard zones. Bull Geol Soc Am 110:972–984
Junghuhn F (1853) Java, Deszelfs Gedaante, Bekleeding en Inwendige Structuur, pt. 2. P.N. Van Kampen, Amsterdam
Kartadinata MN, Irawan W, Solihin A, Mulyana AR (1998) Geologic Map of Soputan volcano, North Sulawesi. Volc Surv Indonesia Geol Map
Kelemen PB, Shimizu N, Dunn JT (1993) Relative depletion of niobium in some arc magmas and the continental crust: partitioning of K, Nb, La and Ce during melt/rock reaction in the upper mantle. Earth Planet Sci Lett 120:111–133
Kimura J-I, Yoshida T (2006) Contributions of slab fluid, mantle wedge and crust to the origin of Quaternary lavas in the NE Japan arc. J Petrol 47:2185–2232. doi:10.1093/petrology/egl041
Kristianto, Loeqman (2008) Erupsi G. Soputan, 6 Oktober 2008. Bull Vulkanologi dan Bencana Geologi 3:1–5
Le Bas MJ, Le Maitre RW, Streckeisen A, Zanettin B, IUGS Subcommission on the Systematics of Igneous Rocks (1986) A chemical classification of volcanic rocks based on the total alkali-silica diagram. J Petrol 27:745–750
Lécuyer F (1990) Relation entre le volcanisme et la tectonique active dans la region de Tondano au Nord de Sulawesi (Indonesie). Ph.D. dissertation no. 183, Universite Blaise Pascal, 159 p
Lehnert K, Su Y, Langmuir C, Sarbas B, Nohl U (2000) A global geochemical database structure for rocks. Geochem Geophys Geosyst 1. doi:10.1029/1999GC000026
Marzocchi W, Sandri L, Gasparini P, Newhall C, Boschi E (2004) Quantifying probabilities of volcanic events: the example of volcanic hazard at Mount Vesuvius. J Geophys Res 109:B11201. doi:10.1029/2004JB003155, 18 p
Morrissey MM, Mastin LG (2000) Vulcanian eruptions. In: Sigurdsson H, Houghton BF, McNutt SR, Rymer H, Stix J (eds) Encyclopedia of volcanoes. Academic, San Diego, pp 463–475
Pearce JA (1984) Role of the sub-continental lithosphere in magma genesis at active continental margins. In: Hawkesworth CJ, Norry M (eds) Continental basalts and mantle xenoliths. Shiva, Nantwich, pp 230–249
Peccerillo A, Taylor SR (1976) Geochemistry of Eocene calc-alkaline volcanic rocks from the Kastamonu area, northern Turkey. Cont Mineral Petrol 58:63–81
Roggensack K, Hervig RL, McKnight SB, Willliams SN (1997) Explosive basaltic volcanism from Cerro Negro volcano: Influence of volatiles on eruptive style. Science 277:1639–1642
Santosa I (2008) Kegiatan Sosialisasi bahaya G. Soputan, Sulawesi Utara, Juni 2008. Bull Vulkanologi dan Bencana Geologi 3:25–28
Schilling SP (1998) LAHARZ: GIS programs for automated mapping of lahar-innundation hazard zones. U.S. Geological Survey Open-File Report 98-638
Siebert L, Simkin T, Kimberly P (2010) Volcanoes of the World. University of California Press, Berkeley
Sisson TW, Grove TL (1993) Temperatures and H2O contents of low-MgO high-alumina basalts. Cont Mineral Petrol 113:167–184
Suantika G (2008) Evalusi kegempaan punggungan maya tahun 1999–2008 kaitannya terhadap kegiatan vulkanik Gunungapi Soputan di Sulawesi Utara. Bull Vulkanologi dan Bencana Geologi 3:29–36
Sun SS, McDonough WF (1989) Chemical and isotopic systematics of oceanic basalts; implications for mantle composition and processes. In: Saunders AD and Norry MJ (eds) Magmatism in the Ocean Basins 42. Geol. Soc. Lond, pp. 313–345
Suratman (1990) G. Soputan—hazard map and assessment report. Volc Surv Indonesia Bull 146
Wallace P (2001) Volcanic SO2 emissions and the abundance and distribution of exsolved gas in magma bodies. J Volcanol Geotherm Res 108:85–106
Wallace P (2004) Volatiles in subduction zone magmas: concentrations and fluxes based on melt inclusion and volcanic gas data. J Volcanol Geotherm Res 140:217–240
Williams SN (1983) Plinian airfall deposits of basaltic composition. Geology 11:211–214
Yang K, Krotkov NA, Krueger AJ, Carn SA, Bhartia PK, Levelt PF (2007) Retrieval of large volcanic SO2 columns from the Aura Ozone Monitoring Instrument (OMI): comparison and limitations. J Geophys Res 112:D24S43. doi:10.1029/2007JD008825
Acknowledgments
The authors acknowledge the Indonesian Geological Agency and its Center for Volcanology and Geologic Hazard Mitigation (Surono, Director) and the USAID Office of Foreign Disaster Assistance for their support of our work in North Sulawesi. SAC acknowledges funding from NASA through grants NNX09AJ40G (Aura Validation), NNX10AG60G (Atmospheric Chemistry Modeling and Analysis Program), and NNX11AF42G (Aura Science Team). We benefitted substantially from constructive and informative reviews by William E. Scott, Thomas W. Sisson, Fidel Costa, and Rüdiger Escobar-Wolf. We especially thank reviewer Sisson for his assistance with MELTS modeling of the Soputan basalt composition and his insights into HAB petrogenesis.
Author information
Authors and Affiliations
Corresponding author
Additional information
Editorial responsibility: E.S. Calder
Electronic supplementary material
Below is the link to the electronic supplementary material.
ESM 1
(DOCX 49.7 kb)
Rights and permissions
About this article
Cite this article
Kushendratno, Pallister, J.S., Kristianto et al. Recent explosive eruptions and volcano hazards at Soputan volcano—a basalt stratovolcano in north Sulawesi, Indonesia. Bull Volcanol 74, 1581–1609 (2012). https://doi.org/10.1007/s00445-012-0620-2
Received:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1007/s00445-012-0620-2
Keywords
- Basalt
- Explosive volcanism
- Petrology
- Remote sensing
- Eruption forecasting
- Indonesia