Articles | Volume 19, issue 18
https://doi.org/10.5194/gmd-19-8597-2026
© Author(s) 2026. This work is distributed under the Creative Commons Attribution 4.0 License.
Development of the CCPP-based GEFS-aerosols component in the Unified Forecast System for subseasonal prediction (UFS-Chem v1.0)
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- Final revised paper (published on 17 Sep 2026)
- Preprint (discussion started on 20 Apr 2026)
Interactive discussion
Status: closed
Comment types: AC – author | RC – referee | CC – community | EC – editor | CEC – chief editor
| : Report abuse
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RC1: 'Comment on egusphere-2026-1807', Anonymous Referee #1, 19 May 2026
- AC1: 'Reply on RC1', Li Zhang, 10 Jul 2026
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RC2: 'Comment on egusphere-2026-1807', Anonymous Referee #2, 15 Jun 2026
- AC2: 'Reply on RC2', Li Zhang, 10 Jul 2026
Peer review completion
AR – Author's response | RR – Referee report | ED – Editor decision | EF – Editorial file upload
AR by Li Zhang on behalf of the Authors (10 Jul 2026)
Author's response
Author's tracked changes
Manuscript
ED: Referee Nomination & Report Request started (26 Jul 2026) by Xiaohong Liu
RR by Anonymous Referee #1 (11 Aug 2026)
RR by Anonymous Referee #2 (25 Aug 2026)
ED: Publish subject to minor revisions (review by editor) (29 Aug 2026) by Xiaohong Liu
AR by Li Zhang on behalf of the Authors (31 Aug 2026)
Author's response
Author's tracked changes
Manuscript
ED: Publish as is (01 Sep 2026) by Xiaohong Liu
AR by Li Zhang on behalf of the Authors (03 Sep 2026)
This paper presents UFS-Chem, a new forecast model with inline aerosol–radiation and aerosol–cloud interactions under the CCPP framework. Overall, the manuscript is well written and clearly structured. However, I have several major concerns that require clarification prior to publication.
Major comments:
1. What is the computational cost for UFS-Chem compared with v12.3? It would be useful to provide a quantitative number
2. Why are all the discussion periods in August only? The balance between direct and indirect aerosol effects varies by season.
3. Why do Figures 2–3 present the time period of August 2021, but Figures 4 and 6 are for August 2016? The inconsistency in evaluation periods is confusing. Also, why do Figures 2–3 focus on v12.3 rather than demonstrating UFS-Chem performance directly?
4. Figure 4: I wonder why CYC_IWR generates such a huge bias near central Africa? Do you have any explanation for this?
5. The transition from v12.3 to UFS-Chem incorporates changes to the coupling framework, physics suite (GFSv15→GFSv17), vertical levels (65→127), microphysics, land model, and convection scheme simultaneously. The paper cannot attribute benefits to CCPP coupling specifically versus the physics upgrade. Please acknowledge this limitation explicitly.
6. Figures 10–12: Why does EXP1 improve the cloud fraction bias but worsen the TOA flux and SST biases, whereas EXP2 corrects all of them? Do the EXP2 improvements reflect better physics or a new balance of compensating errors?
7. Figure 11: A better evaluation for the indirect effect implementation would be to compare against cloud liquid water path and droplet effective radius.
Minor comments:
Figure 6: please add quantitative annotations (global mean bias) on each panel. It is hard to tell which experiment performs better as presented.
Table 4: It would be more effective to present Table 4 as a scatter plot. Also, do you have any explanation for the few stations where v12.3 degrades?
L288: add a reference for the Baker–Schepanski map
L288–289: What is the sea salt emission scheme? Does wave model coupling influence sea salt production?
L306–307: Wave model uncoupling for the 6-year experiments: does this affect SST or surface flux results?
L376: What are the mass-to-number conversion parameters for mapping GOCART mass to CCN/INP?
Typos: Table 1: First column, sixth row: “GEFS-COCART” -> “GEFS-GOCART"; “CDES”-> “CEDS”