Project Grant 2332468

Award Date 2/15/24
Completion Date 1/31/27
Dollars Obligated $1.2M
Federal Grant Program
47.050
Assistance Type
Project Grant
Place of Performance
Ann Arbor, MI 48109, USA
Similar Awards
The National Science Foundation awarded a $658,934 project grant to The Regents of the University of Colorado under the Geosciences program (CFDA 47.050) to support research titled "Improved Representation of Cloud-Aerosol Interactions in the Community Earth System Model: A New Sectional Cloud Model that Interacts with Modal and Sectional Aerosol Models." The grant will fund the development of a new sectional cloud model to be incorporated into the Community Earth System Model. The...
This National Science Foundation (NSF) Division of Computer and Network Systems Project Grant award (CFDA 47.070) for $207,394 supports collaborative research between Washington University and researchers from MIT to improve the performance of the GEOS-Chem 3D atmospheric simulation software. The goal is to speed up the complex GEOS-Chem model, which simulates the evolution of the Earth's atmospheric chemical composition and is an essential tool for understanding climate change. The...
This $471,155 Project Grant award from the National Science Foundation (NSF) Division of Atmospheric and Geospace Sciences under the Geosciences program (CFDA 47.050) supports collaborative research to improve understanding of convective processes in the tropics across scales. The research aims to shed light on the interactions between small-scale details (e.g., individual thunderstorms) and large-scale patterns (e.g., monsoons) of tropical rainfall, which is important for enhancing weather...
This Project Grant from the National Science Foundation, under the Geosciences program (CFDA 47.050), provides $182,903 to further develop the Global Storm-resolving Model (GSAM) and make it available to the worldwide research community. Key deliverables include improving model behavior near the poles and radiative transfer calculations using machine learning, as well as validating simulations against satellite data. Additional resources developed are full documentation, tutorials,...
This National Science Foundation (NSF) Division of Atmospheric and Geospace Sciences Project Grant award, with a total funding amount of $532,712, supports collaborative research to investigate the physical processes underlying transitions in marine stratocumulus cloud cover over the eastern North Atlantic region. The research aims to develop a causal framework to better understand the complex interactions that drive changes in cloud structure, from continuous stratocumulus layers to more broken...
This $352,990 project grant from the National Science Foundation's Geosciences program (CFDA 47.050) supports further development of the Global Storm-resolving Model (GSAM) and making it available to the worldwide research community. Key deliverables include improving model behavior near poles and radiative transfer calculations using machine learning, enhancing input/output performance, and validating simulations against satellite data. Additional resources developed are full documentation,...
This three-year, $511,918 project grant from the National Science Foundation's Geosciences program (CFDA 47.050) funds research to develop a new framework for advancing climate model representations of cloud and convective processes. The grantee, Columbia University, will conduct fully-coupled, isotope-enabled climate simulations for the Last Glacial Maximum, Mid-Holocene, and Pre-Industrial periods using an ensemble of cloud and convective parameter sets. Paleoclimate data assimilation will...
This Project Grant award of $711,800 from the National Science Foundation's Geosciences Program (CFDA 47.050) supports research by Colorado State University to investigate the impact of tropical Pacific Ocean rain layers on weather and climate patterns, such as the Madden-Julian Oscillation and El Niño events. The research explores how the formation of a cold lid, or stable layer, from fresh rainwater on the ocean surface can delay and then intensify convective cloud development, with...
This Project Grant from the National Science Foundation Division of Atmospheric and Geospace Sciences provides $459,465 to Colorado State University for collaborative research on convective upscale growth processes during the RELAMPAGO field project. The research directly supports the goals of the Geosciences program (CFDA 47.050) to strengthen understanding of the integrated Earth system through basic research in atmospheric sciences. Specifically, Colorado State University will utilize the...
This three-year, $846,782 Project Grant from the National Science Foundation's Geosciences program (CFDA 47.050) will fund research to investigate the effect of future climate change on severe convective storms. The awardee, the University of Washington, will combine self-organized maps and idealized storm-scale simulations to examine how severe thunderstorms and tornadoes may change in a warmer climate. Researchers will first use data-based methods with climate model simulations to understand...

COLLABORATIVE RESEARCH: ENABLING CLOUD-PERMITTING AND COUPLED CLIMATE MODELING VIA NONHYDROSTATIC EXTENSIONS OF THE CESM SPECTRAL ELEMENT DYNAMICAL CORE -EARTH SYSTEM MODELS (ESMS) ARE VERY COMPUTATIONALLY INTENSIVE TO RUN, WITH COMPONENTS SPANNING THE ATMOSPHERE, OCEAN, LAND, BIOSPHERE, AND ICE. THESE MODELS ARE TYPICALLY RUN AT RESOLUTIONS WHICH ARE TOO COARSE TO EXPLICITLY REPRESENT WEATHER SYSTEMS LIKE THUNDERSTORM COMPLEXES, TROPICAL CYCLONES, AND TERRAIN-FORCED PRECIPITATION. HOWEVER, COMPUTING POWER IS NOW SUFFICIENT TO ALLOW EXPLICIT SIMULATION OF THESE SYSTEMS ON A GLOBAL DOMAIN USING GRID SPACINGS OF A FEW KILOMETERS, ALBEIT FOR SIMULATIONS OF WEEKS TO MONTHS RATHER THAN THE DECADES TO CENTURIES POSSIBLE AT LOWER RESOLUTIONS. IN THIS PROJECT, THE RESEARCH TEAM WILL ENHANCE THE COMMUNITY EARTH SYSTEM MODEL (CESM), LED BY THE NSF NATIONAL CENTER FOR ATMOSPHERIC RESEARCH (NCAR), WITH THE CAPABILITY TO RUN AS A GLOBAL STORM RESOLVING MODEL (GSRM). THE GSRM VERSION OF CESM HAS TREMENDOUS POTENTIAL AS A TOOL FOR RESEARCH ON THE WEATHER-CLIMATE INTERFACE, PARTICULARLY AS CESM HAS A WORLDWIDE COMMUNITY OF DEVELOPERS AND USERS AND IS THE PRIMARY MODEL USED BY THE US ACADEMIC RESEARCH COMMUNITY. AS PART OF THE PROJECT, MULTIPLE STUDENTS AND EARLY CAREER SCIENTISTS WOULD BE TRAINED AT THE INTERSECTION OF ATMOSPHERIC SCIENCE AND HIGH-PERFORMANCE COMPUTING, ENHANCING A WORKFORCE THAT IS CRUCIALLY NEEDED FOR SCIENTIFIC ADVANCEMENT. THE MAIN OBJECTIVE OF THE PROJECT IS TO LAY THE GROUNDWORK FOR SIMULATIONS WITH CESM, WHICH IS COMPRISED OF INDIVIDUAL MODELS INCLUDING THE COMMUNITY ATMOSPHERE MODEL, FOR WHICH VERSION 7 (CAM7) IS CURRENTLY UNDER DEVELOPMENT FOR RELEASE IN 2024. CAM7'S DYNAMICAL CORE USES THE SPECTRAL ELEMENT (SE) METHOD TO SOLVE THE EQUATIONS OF FLUID MOTION UNDER THE HYDROSTATIC APPROXIMATION, IN WHICH THE ACCELERATION TERM IS NEGLECTED IN THE VERTICAL MOMENTUM EQUATION. THIS PROJECT WILL PORT THE NONHYDROSTATIC SE DYNAMICAL CORE DEVELOPED FOR THE DEPARTMENT OF ENERGY?S (DOE?S) ENERGY EXASCALE EARTH SYSTEM MODEL (E3SM) INTO CESM/CAM7. A SECOND, MORE EXPERIMENTAL VERSION OF THE SE DYNAMICAL CORE MEANT TO RUN ON ADVANCED COMPUTING ARCHITECTURES WILL ALSO BE PORTED. THE RESEARCHERS WILL THEN RUN CAM7 TO TEST THE ABILITY TO REPRODUCE SMALLER-SCALE PHENOMENA. SPECIFICALLY, THE PROJECT WILL: ? PORT DOE?S NONHYDROSTATIC, FORTRAN-BASED, SE DYNAMICAL CORE INTO THE CESM FRAMEWORK. ? INTEGRATE AN EXPERIMENTAL C++ VERSION OF THE SE CORE INTO CESM WITH A GPU-ENABLED PHYSICS PACKAGE FROM THE NSF-FUNDED EARTHWORKS PROJECT. ? TEST AND DEMONSTRATE THE CAPABILITIES OF THE NEW CESM CONFIGURATION USING MESOSCALE CONVECTIVE SYSTEMS AND TROPICAL CYCLONES AS EXEMPLARS. THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE PLANNED FOR THIS AWARD.

Posted 1/31/24, 12:00 AM