238 References
(1999). The tectonic evolution of the Southern Alps, New Zealand: insights from
fully thermally coupled dynamical modelling. Geophysical Journal International,
136:403–420.
Batt, G. E., J. Braun, B. P. Kohn and I. McDougall (2000). Thermochronological
analysis of the dynamics of the Southern Alps, New Zealand. Geological Society of
America Bulletin, 112:250–266.
Batt, G. E., B. P. Kohn, J. Braun, I. McDougall and T. R. Ireland (1999). New insight
into the dynamic development of the Southern Alps, New Zealand, from detailed
thermochronological investigation of the Mataketake Range pegmatites. In U. Ring,
M. T. Brandon, G. S. Lister and S. D. Willett, editors, Exhumation Processes:
Normal Faulting, Ductile Flow and Erosion, London, Geological Society,
pp. 261–282.
Beaumont, C., P. Fullsack and J. Hamilton (1992). Erosional control of active
compressional orogens. In K. R. McClay, editor, Thrust Tectonics, New York,
Chapman and Hall, pp. 1–18.
Beaumont, C., P. J. Kamp, J. Hamilton and P. Fullsack (1996). The continental collision
zone, South Island, New Zealand: comparison of geodynamical models and
observations. Journal of Geophysical Research, 101:3333–3359.
Beaumont, C., H. Kooi and S. Willett (1999). Coupled tectonic–surface process models
with applications to rifted margins and collisional orogens. In M. A. Summerfield,
editor, Geomorphology and Global Tectonics, New York, John Wiley and Sons
Ltd, pp. 29–55.
Beck, M. E. (1991). Case for northward transport of Baja and coastal Southern
California: paleomagnetic data, analysis, and alternatives. Geology, 19:506–509.
Belytschko, T., H.-J. Yen and R. Mullen (1979). Mixed methods for time integration.
Computer Methods in Applied Mechanics and Engineering, 17/18:259–275.
Bernet, M., M. T. Brandon, J. I. Garver et al. (2006). Exhuming the Alps through time:
clues from detrital zircon fission-track ages. American Journal of Science, in press.
Bernet, M., M. T. Brandon, J. I. Garver and B. Molitor (2004). Fundamentals of detrital
zircon fission-track analysis for provenance and exhumation studies with examples
from the European Alps. In M. Bernet and C. Spiegel, editors, Detrital
Thermochronology – Provenance Analysis, Exhumation and Landscape Evolution
of Mountain Belts, Boulder, Colorado, Geological Society of America
pp. 25–36.
Bernet, M., M. Zattin, J. I. Garver, M. T. Brandon and J. A. Vance (2001). Steady-state
exhumation of the European Alps. Geology, 29:35–38.
Bierman, P. R. and M. Caffee (2001). Slow rates of rock surface erosion and sediment
production across the Namib desert and escarpment, southern Africa. American
Journal of Science, 301:326–358.
Bohannon, R. G., C. W. Naeser, D. L. Schmidt and R. A. Zimmerman (1989). The
timing of uplift, volcanism and rifting peripheral to the Red Sea: a case for passive
rifting? Journal of Geophysical Research, 94:1683–1701.
Brandon, M. T. (1996). Probability density plot for fission-track grain-age samples.
Nuclear Tracks and Radiation Measurements, 26:663–676.
Brandon, M. T. and A. R. Calderwood (1990). High-pressure metamorphism and uplift
of the Olympic subduction complex. Geology, 18:1252–1255.
Brandon, M. T., M. Roden-Tice and J. I. Garver (1998). Late Cenozoic exhumation of
the Cascadia accretionary wedge in the Olympic Mountains, northwest Washington
State. Geological Society of America Bulletin, 110:985–1009.
Brandon, M. T. and J. A. Vance (1992). New statistical methods for analysis of
fission-track grain-age distributions with applications to detrital zircon ages from