GSA Annual Meeting in Seattle, Washington, USA - 2017

Paper No. 320-6
Presentation Time: 9:15 AM

FTIR MEASUREMENTS OF WATER IN FAULT ROCKS OF THE SOUTH TIBETAN DETACHMENT, GREATER HIMALAYA


JEZEK, Lynna P.1, KRONENBERG, Andreas K.1, LAW, Richard D.2, JESSUP, Micah J.3 and SEARLE, Michael P.4, (1)Geology and Geophysics, Texas A&M University, College Station, TX 77843, (2)Department of Geosciences, Virginia Tech, Blacksburg, VA 24061, (3)Department of Earth and Planetary Sciences, University of Tennessee, Knoxville, TN 37996, (4)Department of Earth Sciences, University of Oxford, Oxford, OX1 3AN, United Kingdom, lynna.jezek@gmail.com

OH absorption bands due to water in deformed quartz and feldspar grains of mylonites from the low-angle Lhotse Detachment (of the South Tibetan Detachment System, Rongbuk Valley north of Mount Everest) have been measured by Fourier Transform Infrared (FTIR) Spectroscopy. Previous microstructural studies have shown that these rocks deformed by dislocation creep at high temperature conditions in the middle crust (lower - middle amphibolite facies), and oxygen isotope studies suggest significant influx of meteoric water. OH absorption bands at ~3400 cm-1 of quartz mylonites from the footwall of the Lhotse Detachment Fault are large, with the character of the molecular water band due to fluid inclusions in milky quartz. Mean water contents depend on structural position relative to the core of the Lhotse Detachment, from ~1000 ppm (OH/106 Si) at 420 m below the fault to 11,350 (+/- 1095) ppm near its center. The gradient in OH content shown by quartz grains implies influx of meteoric water along the Lhotse Detachment from the Tibetan Plateau ground surface to middle crustal depths, and significant fluid penetration into the extruding Himalayan slab by intergranular, permeable fluid flow processes. Feldspars of individual samples have comparable water contents to those of quartz and some are wetter. Large water contents of quartz and feldspar may have contributed to continued deformation and strain localization on the South Tibetan Detachment System. Dislocation creep in quartz is facilitated by water in laboratory experiments, and the water contents of the Lhotse fault rocks are similar to (and even larger than) water contents of quartz experimentally deformed during water weakening. Water contents of feldspars are comparable to those of plagioclase aggregates deformed experimentally by dislocation and diffusion creep under wet conditions.