Skip to main content
Log in

Trachytic pyroclastics from Agua de Pau volcano, Sao Miguel, Azores: evolution of a magma body over 4,000 years

  • Published:
Contributions to Mineralogy and Petrology Aims and scope Submit manuscript

Abstract

The Recent stratigraphy of Sao Miguel records large numbers of trachytic pyroclastic deposits produced by sub-plinian to plinian eruptions. Tephrochronological studies by Walker and Croasdale (1971) and Booth et al. (1978) have shown that in the last 5,000 years there have been five such eruptions from the caldera of Agua de Pau, one of the three active stratovolcanoes on Sao Miguel.

A geochemical and electron microprobe study made on the resultant pyroclastic succession, revealed significant variations in pumice clast chemistry and mineralogy between the individual deposits; most of these variations show temporal control. For example, Sr and Eu/Eu{sr*} decrease in value up through the succession, whereas incompatible elements such as La, Zr and Nb show stepwise enrichment, attaining highest concentrations in the most recent deposit. It is proposed that the five air fall pumice deposits represent successive samples of an evolving trachytic magma body in which fractionation of alkali feldspar has largely controlled the liquid line of descent. This crystal fractionation had resulted in the development of peralkalinity in the melt by the time Fogo D, the second youngest deposit, was erupted.

The presence of some mineralogical and chemical peculiarities suggest that the trachytic melt has been periodically contaminated by less evolved magmas.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Abdel-Monem AA, Fernandez LA, Boone GM (1975) K-Ar ages from the eastern Azores group (Santa Maria, Sao Miguel and the Formigas Islands). Lithos 8:247–254

    Google Scholar 

  • Allègre CJ, Minster JF (1978) Quantitative models of trace element behaviour in magmatic processes. Earth Planet Sci Lett 38:1–25

    Google Scholar 

  • Booth B, Croasdale R, Walker GPL (1978) A quantitative study of five thousand years of volcanism on Sao Miguel, Azores. Philos Trans R Soc London A288:271–319

    Google Scholar 

  • Borley GD, Rogers N (1979) Comparison of rare-earth element data obtained by neutron activation analysis using international rock and multi-element solution standards. Geostandards Newsletter 3:89–92

    Google Scholar 

  • Bowen NL, Tuttle OF (1950) The system NaAlSi3O8-KAlSi3O8-H2O J Geol 58:489–511

    Google Scholar 

  • Cann JR (1967) A second occurrence of dalyite and the petrology of some ejected syenite blocks from Sao Miguel, Azores. Mineral Mag 36:227–232

    Google Scholar 

  • Evensen NM, Hamilton PJ, O'Nions RK (1978) Rare-earth abundances in chondritic meteorites. Geochim Cosmochim Acta 42:1199–1212

    Google Scholar 

  • Fairbrothers GE, Carr MJ, Mayfield DG (1978) Temporal magmatic variation at Boqueron Volcano, El Salvador. Contrib Mineral Petrol 67:1–9

    Google Scholar 

  • Flower MFJ, Schmincke H-U, Bowman H (1976) Rare earth and other trace elements in historic Azorean lavas. J Volcanol Geotherm Res 1:127–147

    Google Scholar 

  • Hanson GN (1978) The application of trace elements to the petrogenesis of igneous rocks of granitic composition. Earth Planet Lett 38:26–43

    Google Scholar 

  • Hawkesworth CJ, Norry MJ, Roddick JC, Vollmer R (1979) 143Nd/ 144Nd and 87Sr/86Sr ratios from the Azores and their significance in LIL-element enriched mantle. Nature 280:28–31

    Google Scholar 

  • Krause DC, Watkins ND (1970) North Atlantic crustal genesis in the vicinity of the Azores. Geophys JR Astron Soc 19:261–283

    Google Scholar 

  • Laughton AS, Whitmarsh RB (1975) The Azores-Gibraltar plate boundary. In: L Kristjansson (ed) Geodynamics of Iceland and the North Atlantic area. Reidel, Dordrecht 63–81

    Google Scholar 

  • Macdonald K, Bailey DK (1973) The chemistry of peralkaline oversaturated obsidians. US Geol Surv Prof Pap 440-N Pt I

  • Machado F (1966) Anomalias das intensidades do terramoto de S. Miguel (Acores) em 1522. Bull Mus Lab Mineral Geol, Fac Cienc Lisboa 10:109–117

    Google Scholar 

  • Machado F (1973) Acid volcanoes of San Miguel, Azores. Bull Volcanol 36:319–327

    Google Scholar 

  • Roeder PL, Emslie RF (1970) Olivine-liquid equilibrium. Contrib Mineral 29:275–289

    Google Scholar 

  • Rose WI, Grant NK, Hahn GA, Lange JM, Powell JL, Easter J, Degraff JM (1977) The evolution of Santa Maria Volcano, Guatemala. J Geol 85:63–87

    Google Scholar 

  • Schmincke H-U, Weibel M (1972) Chemical study of rocks from Madeira, Porto Santo and Sao Miguel, Terceria (Azores). Neues Jahrb Mineral Abh 117:253–281

    Google Scholar 

  • Schmincke H-U (1973) Magmatic evolution and tectonic regime in the Canary, Madeira and Azores island groups. Bull Geol Soc Am 84:633–648

    Google Scholar 

  • Self S, Gunn BM (1976) Petrology, volume and age relations of alkaline and saturated peralkaline volcanics from Terceria, Azores. Contrib Mineral Petrol 54:293–314

    Google Scholar 

  • Shotton FW, Blundell DJ, Williams REG (1968) Birmingham University radiocarbon dates. II. Radiocarbon 10:200–206

    Google Scholar 

  • Shotton FW, Blundell DJ, Williams REG (1969) Birmingham University radiocarbon dates. III. Radiocarbon 11:263–270

    Google Scholar 

  • Shotton FW, Blundell DJ, Williams REG (1970) Birmingham University radiocarbon dates. IV. Radiocarbon 2:385–399

    Google Scholar 

  • Sigurdsson H (1977) Generation of Icelandic rhyolites by melting of plagiogranites in the oceanic layer. Nature 269:25–28

    Google Scholar 

  • Sparks RSJ, Sigurdsson H, Wilson L (1977) Magma mixing: a mechanism of triggering acid explosive eruptions. Nature 267:315–318

    Google Scholar 

  • Statham PJ (1976) A comparative study of techniques for quantitative analysis of the X-ray spectra obtained with a Si(Li) detector. X-Ray Spectrom 5:16–28

    Google Scholar 

  • Sweatman TR, Long JVP (1969) Quantitative electron-probe micro-analysis of rock forming minerals. J. Petrol 10:332–379

    Google Scholar 

  • Thornton CP, Tuttle OF (1960) Chemistry of igneous rocks. I. Differentiation index. Am J Sci 258:664–684

    Google Scholar 

  • Walker GPL, Croasdale R (1971) Two plinian-type eruptions in the Azores. J Geol Soc Lond 127:17–55

    Google Scholar 

  • Walker GPL (1972) Crystal concentration in ignimbrites. Contrib Mineral Petrol 36:135–146

    Google Scholar 

  • White WM, Tapio MDM, Schilling J-G (1979) The petrology and geochemistry of the Azores Islands. Contrib Mineral Petrol 69:201–213

    Google Scholar 

  • Yoder HS (1973) Contemporaneous basaltic and rhyolitic magmas. Am Mineral 58:153–171

    Google Scholar 

  • Zielinski RA (1975) Trace element evaluation of a suite of rocks from Reunion Island, Indian Ocean. Geochim Cosmochim Acta 39:713–734

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Storey, M. Trachytic pyroclastics from Agua de Pau volcano, Sao Miguel, Azores: evolution of a magma body over 4,000 years. Contr. Mineral. and Petrol. 78, 423–432 (1982). https://doi.org/10.1007/BF00375204

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00375204

Keywords

Navigation