Thinly laminated siltstone and sandy siltstone are major components of the Upper Permian Brushy Canyon Formation, west Texas and south New Mexico. These rocks have been variously interpreted as the deposits of low-density turbidity currents or as windblown sediment deposited over water. Nevertheless, all models agreed that this lithology was deposited without subsequent reworking by bottom currents or burrowing organisms. These siltstones, thus, are ideal test units for quantitatively estimating hydraulic properties of the flows that formed them. In particular, the Zr/Ti ratio was tested as a geochemical proxy for flow size and transport distance. In situ geochemical abundance and grain size of particles with contrasting susceptibility to erosion—Zr- and Ti-rich particles—were mapped and measured by X-ray fluorescence analytical microscopy, μXRF. Lamination thickness was measured from Fe fluorescence intensity, which increased sharply at the top of each layer. Within the same sample, zircon grains were systematically finer than rutilated quartz grains. Zr/Ti fluorescence ratio positively correlated with lamination thickness, not particle sizes. In other words, Zr/Ti fluorescence ratio fluctuations resulted from variations in mineral abundance. Therefore, variations of Zr/Ti fluorescence ratio in these siltstones are likely caused by fluctuations in the intensity of erosional events rather than transport distance. High Zr/Ti ratios and thick laminations reflect periods of enhanced erosion. The average wind velocity during typical events was estimated to be at least 150 km?hr ?1 , or the equivalent of a Category 1 hurricane. The method used here could be applied to both outcrop and subsurface strata correlation.
Harms, J.C. (1974) Brushy Canyon Formation, Texas: A Deep-Water Density Current Deposit. Geological Society of America Bulletin, 85, 1763-1784. http://dx.doi.org/10.1130/0016-7606(1974)85 2.0.CO;2
Harms, J.C. and Williamson, C.R. (1988) Deep-Water Density Current Deposits of Delaware Mountain Group (Permian), Delaware Basin, Texas and New Mexico. AAPG Bulletin, 72, 299-317.
Fischer, A.G. and Sarnthein, M. (1988) Airborne Silts and Dune-Derived Sands in the Permian of the Delaware Basin. Journal of Sedimentary Research, 58, 637-643.
Williamson, C.R. (1980) Sedimentology of Guadalupian Deep-Water Clastic Facies, Delaware Basin, New Mexico and West Texas. Trans-Pecos Region: New Mexico Geological Society, 31st Field Geological Guidebook, 195-204.
Silver, B.A. and Todd, R.G. (1969) Permian Cyclic Strata, Northern Midland and Delaware Basins, West Texas and Southeastern New Mexico. AAPG Bulletin, 53, 2223-2251.
Beaubouef, R.T., Rossen, C., Zelt, F.B., Sullivan, M.D., Mohrig, D.C. and Jennette, D.C. (1999) Deep-Water Sandstones, Brushy Canyon Formation, West Texas. AAPG Hedberg Field Research Conference, Texas, 15-20 April 1999, 48 p.
Adams, J.E. (1936) Oil Pool of Open Reservoir Type. AAPG Bulletin, 20, 780-796.
Hull, J.P.D. (1957) Petrogenesis of Permian Delaware Mountain Sandstone, Texas and New Mexico. AAPG Bulletin, 41, 278-307.
Shaw, D.M., Watkins, N.D. and Huang, T.C. (1974) Atmospherically Transported Volcanic Glass in Deep-Sea Sediments: Theoretical Considerations. Journal of Geophysical Research, 79, 3087-3094. http://dx.doi.org/10.1029/JC079i021p03087
Reynolds, R.L., Mordecai, J.S., Rosenbaum, J.G., Ketterer, M.E., Walsh, M.K. and Moser, K.A. (2010) Compositional Changes in Sediments of Subalpine Lakes, Uinta Mountains (Utah): Evidence for the Effects of Human Activity on Atmospheric Dust Inputs. Journal of Paleolimnology, 44, 161-175. http://dx.doi.org/10.1007/s10933-009-9394-8
Ding, Z.L., Sun, J.M., Yang, S.L. and Liu, T.S. (2001) Geochemistry of the Pliocene Red Clay Formation in the Chinese Loess Plateau and Implications for Its Origin, Source Provenance and Paleoclimate Change. Geochimica et Cosmochimica Acta, 65, 901-913. http://dx.doi.org/10.1016/S0016-7037(00)00571-8
Yang, S., Ding, F. and Ding, Z. (2006) Pleistocene Chemical Weathering History of Asian Arid and Semi-Arid Regions Recorded in Loess Deposits of China and Tajikistan. Geochimica et Cosmochimica Acta, 70, 1695-1709. http://dx.doi.org/10.1016/j.gca.2005.12.012
Zech, M., Zech, R., Zech, W., Glaser, B., Brodowski, S. and Amelung, W. (2008) Characterization and Palaeoclimate of Loess-Like Permafrost Palaeosol Sequence in NE Siberia. Geoderma, 143, 281-295. http://dx.doi.org/10.1016/j.geoderma.2007.11.012
FitzGerald, S. (2005) Micro-Spectroscopy-Shedding Light on Rock Formation. Spectroscopy Europe, 17, 24-25.
Gunderson, S. (2011) Early Channel Evolution in the Middle Permian Brushy Canyon Formation, West Texas, USA. Master Thesis, Texas A&M University, College Station.
Glaccum, R.A. and Prospero, J.M. (1980) Saharan Aerosols over the Tropical North Atlantic—Mineralogy. Marine Geology, 37, 295-321. http://dx.doi.org/10.1016/j.geoderma.2007.11.012
Jaenicke, R. and Schütz, L. (1978) Comprehensive Study of Physical and Chemical Properties of the Surface Aerosols in the Cape Verde Islands Region. Journal of Geophysical Research: Oceans, 83, 3585-3599. http://dx.doi.org/10.1029/JC083iC07p03585
Schnetger, B., Brumsack, H.J., Schale, H., Hinrichs, J. and Dittert, L. (2000) Geochemical Characteristics of Deep-Sea Sediments from the Arabian Sea: A High-Resolution Study. Deep Sea Research Part II: Topical Studies in Oceanography, 47, 2735-2768. http://dx.doi.org/10.1016/S0967-0645(00)00047-3
Ver Straeten, C.A., Brett, C.E. and Sageman, B.B. (2011) Mudrock Sequence Stratigraphy: A Multi-Proxy (Sedimentological, Paleobiological and Geochemical) Approach, Devonian Appalachian Basin. Palaeogeography, Palaeoclimatology, Palaeoecology, 304, 54-73. http://dx.doi.org/10.1016/j.palaeo.2010.10.010
Goldberg, K. and Humayun, M. (2010) The Applicability of the Chemical Index of Alteration as a Paleoclimatic Indicator: An Example from the Permian of the Parana Basin, Brazil. Palaeogeography, Palaeoclimatology, Palaeoecology, 293, 175-183. http://dx.doi.org/10.1016/j.palaeo.2010.05.015
Schatz, A.K., Scholten, T. and Kuhn, P. (2015) Paleoclimate and Weathering of the Tokaj (Hungary) Loess-Paleosol Sequence. Palaeogeography, Palaeoclimatology, Palaeoecology, 426, 170-182. http://dx.doi.org/10.1016/j.palaeo.2015.03.016
Mackenzie, F.T. (2005) Sediments, Diagenesis, and Sedimentary Rocks: Treatise on Geochemistry. 7th Edition, Elsevier Science, Amsterdam.
Oldfield, F., Wake, R., Boyle, J., Jones, R., Nolan, S., Gibbs, Z., et al. (2003) The Late-Holocene History of Gormire Lake (NE England) and Its Catchment: A Multiproxy Reconstruction of Past Human Impact. The Holocene, 13, 677-690. http://dx.doi.org/10.1191/0959683603hl654rp
Roy, P.D., Rivero-Navarette, A., Lopez-Balbiaux, N., Pérez-Cruz, L.L., Metcalfe, S.E., Sankar, G.M., et al. (2013) A Record of Holocene Summer-Season Palaeohydrological Changes from the Southern Margin of Chihuahua Desert (Mexico) and Possible Forcings. The Holocene, 23, 1105-1114. http://dx.doi.org/10.1177/0959683613483619
Brown, E.T., Johnson, T.C., Scholz, C.A., Cohen, A.S. and King, J.W. (2007) Abrupt Change in Tropical African Climate Linked to the Bipolar Seesaw over the Past 55,000 Years. Geophysical Research Letters, 34, L20702. http://dx.doi.org/10.1029/2007GL031240
Lückge, A., Doose-Rolinski, H., Khan, A.A., Schulz, H. and von Rad, U. (2001) Monsoonal Variability in the Northeastern Arabian Sea during the Past 5000 Years: Geochemical Evidence from Laminated Sediments. Palaeogeography, Palaeoclimatology, Palaeoecology, 167, 273-286. http://dx.doi.org/10.1016/S0031-0182(00)00241-8
Dean, W.E., Forester, R.M. and Bradbury, J.P. (2002) Early Holocene Change in Atmospheric Circulation in the Northern Great Plains: An Upstream View of the 8.2 Ka Cold Event. Quaternary Science Reviews, 21, 1763-1775. http://dx.doi.org/10.1016/S0277-3791(02)00002-1
Hu, F., Slawinski, D., Wright, H., Ito, E., Johnson, R., Kelts, K., et al. (1999) Abrupt Changes in North American Climate during Early Holocene Times. Nature, 400, 437-440. http://dx.doi.org/10.1038/22728
Muhs, D.R. and Benedict, J.B. (2006) Eolian Additions to Late Quaternary Alpine Soils, Indian Peaks Wilderness Area, Colorado Front Range. Arctic, Antarctic, and Alpine Research, 38, 120-130. http://dx.doi.org/10.1657/1523-0430(2006)038[0120:EATLQA]2.0.CO;2
Reynolds, R., Belnap, J., Reheis, M., Lamothe, P. and Luiszer, F. (2001) Aeolian Dust in Colorado Plateau Soils: Nutrient Inputs and Recent Change in Source. Proceedings of the National Academy of Sciences of the United States of America, 98, 7123-7127. http://dx.doi.org/10.1073/pnas.121094298
Nickling, W. (1988) The Initiation of Particle Movement by Wind. Sedimentology, 35, 499-511. http://dx.doi.org/10.1111/j.1365-3091.1988.tb01000.x
Iversen, J.D., Greeley, R., Marshall, J.R. and Pollack, J.B. (1987) Aeolian Saltation Threshold: The Effect of Density Ratio. Sedimentology, 34, 699-706. http://dx.doi.org/10.1111/j.1365-3091.1987.tb00795.x
Morsi, S.A. and Alexander, A.J. (1972) An Investigation of Particle Trajectories in Two-Phase Flow Systems. Journal of Fluid Mechanics, 55, 193-208. http://dx.doi.org/10.1017/S0022112072001806
Zimbelman, J., Scheidt, S., de Silva, S., Bridges, N. and Spagnuolo, M. (2014) Roughness Height Measurements for Megaripples in the Puna of Argentina, form Flow over the Largest Megaripples, and Implications for Mars. 45th Lunar and Planetary Institute Science Conference, Woodlands, 17-24 March 2014, 1359.
Bailey, B., McDonald, S., Bernadett, D. and Markus, M. (1997) Wind Resource Assessment Handbook. AWS Scientific Inc., Albany.