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Effects of a Temperature-Dependent Rheology on Large Scale Continental Extension

Effects of a Temperature-Dependent Rheology on Large Scale Continental Extension


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About the Book

The effects of a temperature-dependent rheology on large-scale continental extension are investigated using a thin viscous sheet model. A vertically-averaged rheology is used that is consistent with laboratory experiments on power-law creep of olivine and that depends exponentially on temperature. Results of the calculations depend principally on two parameters: the Peclet number, which describes the relative rates of advection and diffusion of heat, and a dimensionless activation energy, which controls the temperature dependence of the rheology. At short times following the beginning of extension, deformation occurs with negligible change in temperature, so that only small changes in lithospheric strength occur due to attenuation of the lithosphere. However, after a certain critical time interval, thermal diffusion lowers temperatures in the lithosphere, strongly increasing lithospheric strength and slowing the rate of extension. This critical time depends principally on the Peclet number and is short compared with the thermal time constant of the lithosphere. The strength changes cause the locus of high extensional strain rates to shift with time from regions of high strain to regions of low strain. Results of the calculations are compared with observations from the Aegean, where maximum extensional strains are found in the south, near Crete, but maximum present-day strain rates are largest about 300 km further north. Sonder, Leslie J. and England, Philip C. Unspecified Center...


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Product Details
  • ISBN-13: 9781722368494
  • Publisher: Createspace Independent Publishing Platform
  • Publisher Imprint: Createspace Independent Publishing Platform
  • Height: 279 mm
  • No of Pages: 62
  • Spine Width: 3 mm
  • Width: 216 mm
  • ISBN-10: 1722368497
  • Publisher Date: 06 Jul 2018
  • Binding: Paperback
  • Language: English
  • Returnable: N
  • Weight: 168 gr


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