4.7 Article

Revisiting the deformed high shoreline of Lake Bonneville

Journal

QUATERNARY SCIENCE REVIEWS
Volume 159, Issue -, Pages 169-189

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.quascirev.2016.12.019

Keywords

Lake Bonneville; Great Basin; Paleoshorelines; Shorelines; Still water level; Paleoclimatology; Isostasy

Funding

  1. Department of Geosciences at Princeton University
  2. Round Table Senior Thesis Fund from the Office of the Dean of the College at Princeton
  3. Princeton Energy Grand Challenge Initiative
  4. National Science Foundation Graduate Research Fellowship
  5. MIT Ida M. Green Fellowship
  6. MIT EAPS Callahan-Dee Fellowship
  7. MIT EAPS Student Research Fund
  8. Princeton David A. Gardner Magic Fund

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Since G.K. Gilbert's foundational work in the eastern Great Basin during the late 1800s, the late Pleistocene Lake Bonneville (30-10ka) has been recognized as a natural laboratory for various Quaternary studies, including lithospheric deformation due to surface loading and climate-forced water balance changes. Such studies rely on knowledge of the elevations of Lake Bonneville's paleoshoreline features and depositional landforms, which record a complex history of lake level variations induced by deglacial climate change. In this paper, we present (1) a new compilation of 178 elevation measurements of shoreline features marking Lake Bonneville's greatest areal extent measured using high-precision differential GPS (dGPS), and (2) a reconstructed outline of the highest shoreline based on dGPS measurements, submeter-resolution aerial imagery, topographic digital elevation models (DEMs). and field observations. We also (3) devise a simplified classification scheme and method for standardizing shoreline elevation measurement for different shoreline morphologies that includes constraints on the position of the still water level (SWL) relative to each feature type. The deformation pattern described by these shoreline features can help resolve the relative effects of local hydro-isostasy due to the lake load and regional solid earth deflection due to the Laurentide ice sheet, with potential implications for Earth rheology, glacial isostatic adjustment, and eustatic sea level change. (C) 2017 Elsevier Ltd. All rights reserved.

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