Page 372 - Caldera Volcanism Analysis, Modelling and Response
P. 372
Magma-Chamber Geometry, Fluid Transport, Local Stresses and Rock Behaviour 347
Greeley, R., Batson, R., 2001. The Compact NASA Atlas of the Solar System. Cambridge University
Press, Cambridge.
Gudmundsson, A., 1998a. Formation and development of normal-fault calderas and the initiation of
large explosive eruptions. Bull. Volcanol., 60, 160–170.
Gudmundsson, A., 1998b. Magma chambers modeled as cavities explain the formation of rift zone
central volcanoes and their eruption and intrusion statistics. J. Geophys. Res., 103, 7401–7412.
Gudmundsson, A., 2000a. Dynamics of volcanic systems in Iceland: example of tectonism and
volcanism at juxtaposed hot spot and mid-ocean ridge system. Annu. Rev. Earth Planet. Sci.,
28, 107–140.
Gudmundsson, A., 2000b. Fracture dimensions, displacements and fluid transport. J. Struct. Geol., 22,
1221–1231.
Gudmundsson, A., 2002. Emplacement and arrest of sheets and dykes in central volcanoes.
J. Volcanol. Geotherm. Res., 116, 279–298.
Gudmundsson, A., 2006. How local stresses control magma-chamber ruptures, dyke-injections, and
eruptions in composite volcanoes. Earth Sci. Rev., 79, 1–31.
Gudmundsson, A., 2007. Conceptual and numerical models of ring-fault formation. J. Volcanol.
Geotherm. Res., 164, 142–160.
Gudmundsson, A., Brenner, S.L., 2005. On the conditions of sheet injections and eruptions in
stratovolcanoes. Bull. Volcanol., 67, 768–782.
Gudmundsson, A., Nilsen, K., 2006. Ring faults in composite volcanoes: structures, models, and stress
fields associated with their formation. In: De Natale, G., Kilburn, C.Troise, C. (Eds),
Mechanisms of Activity and Unrest at Large Calderas. Geological Society, London Special
Publications, Vol. 269, pp. 83–108.
Haimson, B.C., Rummel, F., 1982. Hydrofracturing stress measurements in the Iceland research
drilling project drill hole at Reydarfjordur, Iceland. J. Geophys. Res., 87, 6631–6649.
Head, J.W., Crumpler, L.S., Aubele, J.C., Guest, J.E., Saunders, R.S., 1992. Venus volcanism:
classification of volcanic features and structures, associations, and global distribution from
Magellan data. J. Geophys. Res., 97, 13153–13197.
Heuze, F.E., 1980. Scale effects in the determination of rock mass strength and deformability. Rock
Mech., 12, 167–192.
Holohan, E.P., Troll, V.R., Walter, T.R., Munn, S., McDonnell, S., Shipton, Z.K., 2005. Elliptical
calderas in active tectonic settings: an experimental approach. J. Volcanol. Geotherm. Res.,
144, 119–136.
Hudson, J.A., Harrison, J.P., 1997. Engineering Rock Mechanics: An Introduction to the Principles.
Pergamon, Oxford.
Jaeger, J.C., Cook, N.G.W., 1979. Fundamentals of Rock Mechanics. Chapman and Hall, London.
Jellinek, A.M., DePaolo, D.J., 2003. A model for the origin of large silicic magma chambers:
precursors of caldera-forming eruptions. Bull. Volcanol., 65, 363–381.
Jing, L., Hudson, J.A., 2002. Numerical models in rock mechanics. Int. J. Rock Mech. Min. Sci., 39,
409–427.
Jumikis, A.R., 1979. Rock Mechanics. Trans Tech Publications, Clausthal.
Kanamori, H., Anderson, D.L., 1975. Theoretical basis for some empirical relations in seismology.
Bull. Seismol. Soc. Am., 65, 1073–1095.
Krassilnikov, A.S., Head, J.W., 2004. Calderas on Venus and Earth: comparison and models of
formation. Lunar Planet. Sci., 35, 1531.
Kuno, H., Ishikawa, T., Katsui, Y., Yagi, K., Yamasaki, M., Taneda, S., 1964. Jpn. J. Geol. Geog., 35,
223–238.
Lamb, H., 1932. Hydrodynamics, 6th edn. Cambridge University Press, Cambridge.
Lavallee, Y., de Silva, S.L., Salas, G., Byrnes, J.M., 2006. Explosive volcanism (VEI6) without caldera
formation: insight from Huaynaputina volcano, southern Peru. Bull. Volcanol., 68, 333–348.
Lekhnitskii, S.G., 1968. Anisotropic Plates. Gordon and Breach Science Publishers, New York.
Leone, G., Wilson, L., 2000. Lava flow field areas and caldera volumes on Io: their correlation with
magma reservoir size and collapse events. Lunar Planet. Sci., 31, 1651.
Leutwyler, K., 2003. The Moons of Jupiter. W.W. Norton, New York.