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Accurate Assessment of Land-Atmosphere Coupling in Climate Models Requires High Frequency Data Output Land-atmosphere (L-A) interactions are important for understanding convective processes, climate feedbacks, the development and perpetuation of droughts, heatwaves, pluvials, and other land-centred climate anomalies. Local L-A coupling (LoCo) metrics capture relevant L-A processes, highlighting the impact of soil and vegetation states on surface flux partitioning, and the impact of surface fluxes on boundary layer (BL) growth, development, and entrainment of air above the BL. A primary goal of the Climate Process Team on Coupling Land and Atmospheric Subgrid Parameterizations (CLASP) is parameterizing and characterizing the impact of subgrid heterogeneity in global and regional earth system models (ESMs) to improve the connection between land and atmospheric states and processes. A critical step in achieving that aim is the incorporation of L-A metrics, especially LoCo metrics, into climate model diagnostic process streams. However, because land-atmosphere interactions span time scales of minutes (e.g., turbulent fluxes), hours (e.g., BL growth and decay), days (e.g., soil moisture memory), and seasons (e.g., variability of behavioural regimes between soil moisture and latent heat flux), with multiple processes of interest happening in different geographic regions at different times of year, there is not a single metric that captures all the modes, means, and methods of interaction between the land and the atmosphere. And while monthly means of most of the LoCo-relevant variables are routinely saved from ESM simulations, data storage constraints typically preclude routine archival of the hourly data that would enable the calculation of all LoCo metrics.

Here we outline a reasonable data request that would allow for adequate characterization of sub-daily coupling processes between the land and the atmosphere, preserving enough sub-daily output to describe, analyse, and better understand L-A coupling in modern climate models. A secondary request involves embedding calculations within the models to determine mean properties in and above the BL to further improve characterization of model behaviour. Higher-frequency model output will (i) allow for more direct comparison with observational field campaigns on process-relevant time scales, (ii) enable demonstration of inter-model spread in L-A coupling processes, and (iii) aid in targeted identification of sources of deficiencies and opportunities for improvement of the models.
Document ID
20240000534
Acquisition Source
Goddard Space Flight Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Kirsten L. Findell ORCID
(NOAA Geophysical Fluid Dynamics Laboratory Princeton, United States)
Zun Yin ORCID
(NOAA Geophysical Fluid Dynamics Laboratory Princeton, United States)
Eunkyo Seo
(Pukyong National University Busan, South Korea)
Paul A. Dirmeyer
(George Mason University Fairfax, Virginia, United States)
Nathan P. Arnold ORCID
(Goddard Space Flight Center Greenbelt, United States)
Nathaniel Chaney
(Duke University Durham, United States)
Megan D. Fowler
(NOAA Climate and Global Dynamics Laboratory Boulder, United States)
Meng Huang ORCID
(Pacific Northwest National Laboratory Richland, United States)
David M. Lawrence ORCID
(National Center for Atmospheric Research Boulder, United States)
Po-Lun Ma ORCID
(Pacific Northwest National Laboratory Richland, United States)
Joseph A. Santanello Jr.
(Goddard Space Flight Center Greenbelt, United States)
Date Acquired
January 12, 2024
Publication Date
February 29, 2024
Publication Information
Publication: Geoscientific Model Development
Publisher: European Geosciences Union
Volume: 17
Issue: 4
Issue Publication Date: February 19, 2024
ISSN: 1991-959X
e-ISSN: 1991-9603
Subject Category
Geosciences (General)
Earth Resources and Remote Sensing
Funding Number(s)
WBS: 981698.01.04.51.05.60.17
CONTRACT_GRANT: NA18OAR4320123
CONTRACT_GRANT: NA19OAR4310242
CONTRACT_GRANT: NA19OAR4310241
PROJECT: DOE 4000178550
PROJECT: DOE 73742
CONTRACT_GRANT: DE-AC05-76RL01830
CONTRACT_GRANT: NSF 1852977
CONTRACT_GRANT: RS-2023-00241809
CONTRACT_GRANT: NA22OAR4050663D
CONTRACT_GRANT: NA22OAR4310643
CONTRACT_GRANT: NA220AR0AR4310644
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
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