PA41A-2156
Challenges in Downscaling Surge and Flooding Predictions Associated with Major Coastal Storm Events

Thursday, 17 December 2015
Poster Hall (Moscone South)
Malcolm J Bowman, SUNY Stony Brook, Stony Brook, NY, United States
Abstract:
Coastal zone managers, elected officials and emergency planning personnel are continually seeking more reliable estimates of storm surge and inundation for better land use planning, the design, construction and operation of coastal defense systems, resilience evaluation and evacuation planning. Customers of modern regional weather and storm surge prediction models demand high resolution, speed, accuracy, with informative, interactive graphics and easy evaluation of potentially dangerous threats to life and property. These challenges continue to get more difficult as the demand for street-scale and even building-scale predictions increase. Fluctuations in sub-grid-scale wind and water velocities can lead to unsuspected, unanticipated and dangerous flooding in local communities. But how reliable and believable are these models given the inherent natural uncertainty and chaotic behavior in the underlying dynamics, which can lead to rapid and unexpected perturbations in the wind and pressure fields and hence coastal flooding?

 Traditionally this uncertainty has been quantified by the use of the ensemble method, where a suite of model runs are made with varying physics and initial conditions, presenting the mean and variance of the ensemble as the best metrics possible. But this assumes that each component is equally possible and is statistically independent of the others. But this is rarely true, although the “safety in numbers” approach is comforting to those faced with life and death decisions.

 An example of the ensemble method is presented for the trajectory of superstorm Sandy’s storm center as it approached coastal New Jersey. If one were to ask the question “was Sandy a worst case scenario”, the answer would be “no: small variations in the timing (vis-à-vis tide phase) and location of landfall could easily have led to an additional surge of +50 cm at The Battery NY with even more catastrophic consequences to those experienced”.