Optimizing Geoengineering Interventions Using Differentiable Climate Models

📅 2026-09-11
📈 Citations: 0
Influential: 0
📄 PDF
🤖 AI Summary
研究使用可微气候模型优化地球工程干预策略,通过调整海面温度模式以最小化陆地近地面气温变化,减少气候变化影响。
📝 Abstract
The deployment of a geoengineering program to cool Earth's climate may be imminent. It is crucial that tools be developed to ensure that such a program would achieve its objectives while minimizing disruption. Here we exploit recently developed differentiable atmospheric models to demonstrate a novel geoengineering control strategy. In the differentiable primitive-equation atmospheric model JAX-GCM we impose a uniform $+4$\,K ocean warming and ask what pattern of sea-surface temperature cooling -- in five ocean-masked zonal bands of prescribed SST forcings whose amplitudes are free -- returns land near-surface air temperature closest to the model's own unwarmed climatology. This idealized set-up represents a cooling pattern that could be delivered physically either by marine cloud brightening or stratospheric aerosol injection. Gradients through chaotic dynamics decorrelate from the true sensitivity beyond the Lyapunov horizon, so we optimize greedily over segments of 8 to 14 days, following receding-horizon control. The learned strategy removes $92.3 \pm 0.4\%$ of the realized land warming across a ten-member ensemble of two-year rollouts, and a three-year run sustains it. If we use the spatial pattern of land temperature as the optimization objective, the distributions of precipitation, evaporation, and specific humidity over land are restored as well, even though they are not included in the objective function. The learned strategy from JAX-GCM replayed in the AI emulators LUCIE and NeuralGCM without re-optimization is successful, suggesting robustness. These promising results demonstrate a strategy for designing optimal climate interventions that can be applied broadly for geoengineering scenarios under consideration.
Problem

Research questions and friction points this paper is trying to address.

geoengineering
climate models
ocean warming
land temperature
receding-horizon control
Innovation

Methods, ideas, or system contributions that make the work stand out.

differentiable climate models
geoengineering control strategy
receding-horizon control
JAX-GCM
climate interventions
🔎 Similar Papers
💼 Related Jobs
No related jobs found.
P
Pulkit Dubey
Department of Applied Mathematics, University of California, Santa Cruz, CA 95064
D
Dorian S. Abbot
Department of the Geophysical Sciences, University of Chicago, Chicago, IL 60637
Ashesh Chattopadhyay
Ashesh Chattopadhyay
University of California, Santa Cruz
Deep LearningDynamical SystemsClimate DynamicsHigh Performance Computing