Page 453 - Global Tectonics
P. 453
REFERENCES 435
Dalziel, I.W.D. (1981) Back-arc extension in the Southern Andes; DeCelles, P.G. et al. (1998) Eocene–early Miocene foreland basin
a review and critical reappraisal. Phil. Trans. Roy. Soc. Lond. A development and the history of Himalayan thrusting, western
300, 319–35. and central Nepal. Tectonics 17, 741–65.
Dalziel, I.W.D. (1991) Pacific margins of Laurentia and East Ant- DeCelles, P.G., Robinson, D.M., & Zandt, G. (2002) Implications
arctica–Australia as a conjugate rift pair: evidence and implica- of shortening in the Himalayan fold-thrust belt for uplift of the
tions for an Eocambrian supercontinent. Geology 19, 598–601. Tibetan Plateau. Tectonics 21, 1062, doi:10.1029/
Dalziel, I.W.D. (1995) Earth before Pangea. Sci. Am. 272, 38–43. 2001TC001322.
Dalziel, I.W.D. (1997) Neoproterozoic–Paleozoic geography and DeCelles, P.G. et al. (2001) Stratigraphy, structure, and tectonic
tectonics: review, hypothesis, environmental speculation. evolution of the Himalayan fold-thrust belt in western Nepal.
Bull. geol. Soc. Am. 109, 16–42. Tectonics 20, 487–509.
Dalziel, I.W.D., Lawver, L.A. & Murphy, J.B. (2000a) Plumes, Dehler, S.A. & Clowes, R.M. (1988) The Queen Charlotte Islands
orogenesis, and supercontinental fragmentation. Earth planet. refraction project. Part I. The Queen Charlotte Fault Zone.
Sci. Lett. 178, 1–11. Can. J. Earth Sci. 25, 1857–70.
Dalziel, I.W.D., Mosher, S. & Gahagan, L.M. (2000b) Laurentia– DeLong, S.E., Dewey, J.F. & Fox, P.J. (1977) Displacement history
Kalahari collision and the assembly of Rodinia. J. Geol. 108, of oceanic fracture zones. Geology 5, 199–201.
499–513. DeMets, C. (2001) A new estimate for present-day Cocos–
Davaille, A. (1999) Simultaneous generation of hotspots and Caribbean plate motion: implications for slip along the
superswells by convection in a homogeneous planetary Central American volcanic arc. Geophys. Res. Lett. 28, 4043–6.
mantle. Nature 402, 756–60. DeMets, C. & Dixon, T.H. (1999) New kinematic models for
Davey, F.J. et al. (1995) Crustal reflections from the Alpine Fault Pacific–North America motion from 3 Ma to present: 1. Evi-
zone, South Island, New Zealand. NZ J. Geol. Geophys. 38, dence for steady motion and biases in the NUVEL–1A model.
601–4. Geophys. Res. Lett. 26, 1921–4.
Davidson, J.P. (1983) Lesser Antilles isotopic evidence of the role DeMets, C. et al. (1990) Current plate motions. Geophys. J. Int. 101,
of subducted sediment in island arc magma genesis. Nature 425–78.
306, 253–5. DeMets. C. et al. (1994) Effect of recent revisions to the geomag-
Davies, D. (1968) A comprehensive test ban. Sci. J. Lond. Nov. netic time scale on estimates of current plate motions. Geophys.
1968, 78–84. Res. Lett. 21, 2191–94.
Davies, G.F. (1977) Whole mantle convection and plate tectonics. de Ronde, C.E.J., Channer, D.M. DeR. & Spooner, E.T.C.
Geophys. J. Roy. astr. Soc. 49, 459–86. (1997) Archaean Fluids. In De Wit, M.J. & Ashwal, L.D.
Davies, G.F. (1993) Cooling the core and mantle by plume and (eds) Greenstone Belts, pp. 309–35. Clarendon Press,
plate fl ows. Geophys. J. Int. 115, 132–46. Oxford.
Davies, G.F. (1999) Dynamic Earth: plates, plumes and mantle convec- DESERT Group (2004) The crustal structure of the Dead Sea
tion. Cambridge University Press, Cambridge, 458pp. Transform. Geophys. J. Int. 156, 655–81.
Davies, G.F. & Richards, M.A. (1992) Mantle convection. J. Geol. Detrick, R.S. et al. (1987) Multi-channel seismic imaging of a
100, 151–206. crustal magma chamber along the East Pacifi c Rise. Nature
Davies, J.H., Brodholt, J.P. & Wood. B.J. (eds) (2002) Chemical 326, 35–41.
reservoirs and convection in the Earth’s mantle. Phil. Trans. Detrick, R.S. et al. (1990) No evidence from multi-channel refl ec-
Roy. Soc. Lond. A 360, 2361–648. tion data for a crustal magma chamber in the MARK area on
Davis, D., Suppe, J. & Dahlen, F.A. (1983) Mechanics of fold-and- the Mid-Atlantic Ridge. Nature 347, 61–4.
thrust belts and accretionary wedges. J. geophys. Res. 88, 1153– Detrick, R.S., White R.S. & Purdy, G.M. (1993a) Crustal structure
72. of North Atlantic fracture zones. Rev. Geophys. 31, 439–57.
Davis, M. & Kusznir, N. (2002) Are buoyancy forces important Detrick, R.S. et al. (1993b) Seismic structure of the southern East
during the formation of rifted margins? Geophys. J. Int. 149, Pacifi c Rise. Science 259, 499–503.
524–33. Detrick, R. et al. (1994) In situ evidence for the nature of the
Davis, M. & Kusznir, N. (2004) Depth-dependent lithospheric seismic layer 2/3 boundary in oceanic crust. Nature 370, 288–
stretching at rifted continental margins. In Karner, G.D. et 90.
al. (eds) Rheology and Deformation of the Lithosphere at Conti- Dewey, J.F. (1969) Evolution of the Appalachian/Caledonian
nental Margins, pp. 31–45. Columbia University Press, New orogen. Nature 222, 124–9.
York. Dewey, J.F. (1976) Ophiolite obduction. Tectonophysics 31, 93–
Davis, P.M. & Slack, P.D. (2002) The uppermost mantle beneath 120.
the Kenya dome and relation to melting, rifting and uplift in Dewey, J.F. (1988) Extensional collapse of orogens. Tectonics 7,
East Africa. Geophys. Res. Lett. 29, doi:10.1029/ 1123–39.
2001GL013676. Dewey, J.F. & Bird, J.M. (1970) Mountain belts and the new global
Dean, S.M. et al. (2000) Deep structure of the ocean–continent tectonics. J. geophys. Res. 75, 2625–47.
transition in the southern Iberia Abyssal Plain from seismic Dewey, J.F. & Burke, K.C.A. (1974) Hot spots and continental
refraction profiles. II. The IAM–9 transect at 40°20′N. J. break-up: implications for collisional orogeny. Geology 2, 57–
geophys. Res. 105, 5859–86. 60.

