Accelerating the Lagrangian Particle Tracking in Hydrologic Modeling to Continental‐Scale

Author:

Yang Chen12ORCID,Ponder Carl3,Wang Bei4,Tran Hoang5,Zhang Jun6,Swilley Jackson1,Condon Laura7,Maxwell Reed128ORCID

Affiliation:

1. Department of Civil and Environmental Engineering Princeton University Princeton NJ USA

2. Integrated GroundWater Modeling Center Princeton University Princeton NJ USA

3. NVIDIA Developer Technology Austin TX USA

4. Research Computing Princeton University Princeton NJ USA

5. Atmospheric Science & Global Change Division Pacific Northwest National Laboratory Richland WA USA

6. Key Laboratory of VGE of Ministry of Education Nanjing Normal University Nanjing China

7. Department of Hydrology and Atmospheric Sciences The University of Arizona Tucson AZ USA

8. High Meadows Environmental Institute Princeton University Princeton NJ USA

Abstract

AbstractUnprecedented climate change and anthropogenic activities have induced increasing ecohydrological problems, motivating the development of large‐scale hydrologic modeling for solutions. Water age/quality is as important as water quantity for understanding the terrestrial water cycle. However, scientific progress in tracking water parcels at large‐scale with high spatiotemporal resolutions is far behind that in simulating water balance/quantity owing to the lack of powerful modeling tools. EcoSLIM is a particle tracking model working with ParFlow‐CLM that couples integrated surface‐subsurface hydrology with land surface processes. Here, we demonstrate a parallel framework on distributed, multi‐Graphics Processing Unit platforms with Compute Unified Device Architecture‐Aware Message Passing Interface for accelerating EcoSLIM to continental‐scale. In tests from catchment‐, to regional‐, and then to continental‐scale using 25‐million to 1.6‐billion particles, EcoSLIM shows significant speedup and excellent parallel performance. The parallel framework is portable to atmospheric and oceanic particle tracking models, where the parallelization is inadequate, and a standard parallel framework is also absent. The parallelized EcoSLIM is a promising tool to accelerate our understanding of the terrestrial water cycle and the upscaling of subsurface hydrology to Earth System Models.

Publisher

American Geophysical Union (AGU)

Subject

General Earth and Planetary Sciences,Environmental Chemistry,Global and Planetary Change

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