Constraining the Last Glacial Maximum Westerly Storm Track over Western North America through Model-Proxy Comparison
Abstract:
To identify key drivers of hydroclimatic change in this water sensitive region, we analyzed the statistical agreement between a network of over seventy precipitation-sensitive proxy reconstructions from western NA and an ensemble of fifteen model simulations conducted as part of the Paleoclimate Modeling Intercomparison Project (PMIP). Using the LGM and preindustrial simulations from PMIP2 and PMIP3, we analyzed the sign, spatial distribution, and seasonality of precipitation, as well as the pressure systems and associated wind patterns predicted by the models. During the LGM, the proxy records indicate a precipitation dipole, with a wetter southwest and drier northeast divided by a northwest-southeast trending transition zone across the northern Great Basin. The improved implementation of ice sheet topography and higher resolution models used in PMIP3 result in better proxy-model agreement. Models predict no substantial change in the seasonality of precipitation. Those models that simulate a weaker and weakly south-shifted Aleutian low, a strong North Pacific high, and a high above the Laurentide Ice Sheet best capture the pattern of variation observed in the proxy network. These models simulate a stronger LGM jet that is not shifted southward but is squeezed and steered by high-pressure systems, underscoring the importance of these systems in structuring hydroclimatic variability in western NA.
