Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

Numerical coupling of aerosol emissions, dry removal, and turbulent mixing in the E3SM Atmosphere Model version 1 (EAMv1) – Part 2: A semi-discrete error analysis framework for assessing coupling schemes

Journal Article · · Geoscientific Model Development (Online)

Abstract. Part 1 (Wan et al., 2024) of this study discusses the motivation and empirical evaluation of a revision to the aerosol-related numerical process coupling in the atmosphere component of the Energy Exascale Earth System Model version 1 (EAMv1) to address the previously reported issue of strong sensitivity of the simulated dust aerosol lifetime and dry removal rate to the model's vertical resolution. This paper complements that empirical justification of the revised scheme with a mathematical justification leveraging a semi-discrete analysis framework for assessing the splitting error of process coupling methods. The framework distinguishes the error due to numerical splitting from the error due to the time integration method(s) used for each individual process. Such a distinction results in a framework that provides an intuitive understanding of the causes of the splitting error. The application of this framework to the dust life cycle in EAMv1 confirms (i) that the original EAMv1 scheme artificially strengthens the effect of dry removal processes and (ii) that the revised splitting reduces that artificial strengthening. While the error analysis framework is presented in the context of the dust life cycle in EAMv1, the framework can be broadly leveraged to evaluate process coupling schemes, both in other physical problems and for any number of processes. This framework will be particularly powerful when the various process implementations support a variety of time integration approaches. Whereas traditional local truncation error approaches require separate consideration of each combination of time integration methods, this framework enables evaluation of coupling schemes independent of particular time integration approaches for each process while still allowing for the incorporation of these specific time integration errors if so desired. The framework also explains how the splitting error terms result from (i) the integration of individual processes in isolation from other processes and (ii) the choices of input state and time step size for the isolated integration of processes. Such a perspective has the potential for the rapid development of alternative coupling approaches that utilize knowledge both about the desired accuracy and about the computational costs of individual processes.

Sponsoring Organization:
USDOE
OSTI ID:
2305779
Alternate ID(s):
OSTI ID: 2309838
OSTI ID: 2566073
Journal Information:
Geoscientific Model Development (Online), Journal Name: Geoscientific Model Development (Online) Journal Issue: 3 Vol. 17; ISSN 1991-9603
Publisher:
Copernicus GmbHCopyright Statement
Country of Publication:
Germany
Language:
English

References (20)

The effect of time steps and time-scales on parametrization suites journal August 2012
Numerical Integrators book January 2006
One Step at a Time: How Model Time Step Significantly Affects Convection‐Permitting Simulations journal March 2019
An Overview of the Atmospheric Component of the Energy Exascale Earth System Model journal August 2019
Performance and Accuracy Implications of Parallel Split Physics‐Dynamics Coupling in the Energy Exascale Earth System Atmosphere Model journal July 2020
Cloud Process Coupling and Time Integration in the E3SM Atmosphere Model journal May 2021
A Numerical Analysis of Six Physics‐Dynamics Coupling Schemes for Atmospheric Models journal November 2021
Global Dust Cycle and Direct Radiative Effect in E3SM Version 1: Impact of Increasing Model Resolution journal July 2022
Integrated Dynamics‐Physics Coupling for Weather to Climate Models: GFDL SHiELD With In‐Line Microphysics journal November 2022
Consequences of Using the Splitting Method for Implementing Physical Forcings in a Semi-Implicit Semi-Lagrangian Model journal June 1998
Analysis of Parallel versus Sequential Splittings for Time-Stepping Physical Parameterizations journal January 2004
Physics–Dynamics Coupling in Weather, Climate, and Earth System Models: Challenges and Recent Progress journal November 2018
Mixed Parallel–Sequential-Split Schemes for Time-Stepping Multiple Physical Parameterizations journal April 2005
Multiphysics simulations: Challenges and opportunities journal February 2013
Analysis of the numerics of physics–dynamics coupling journal October 2002
Some numerical properties of approaches to physics–dynamics coupling for NWP journal January 2006
Quantifying and attributing time step sensitivities in present-day climate simulations conducted with EAMv1 journal January 2021
CondiDiag1.0: a flexible online diagnostic tool for conditional sampling and budget analysis in the E3SM atmosphere model (EAM) journal January 2022
The Common Community Physics Package (CCPP) Framework v6 journal April 2023
Numerical issues associated with compensating and competing processes in climate models: an example from ECHAM-HAM journal January 2013

Similar Records

Related Subjects