Detection, attribution, and modeling of climate change: key open issues
arXiv:2506.13994 · doi:10.1016/j.gr.2025.05.001
Abstract
The CMIP global climate models (GCMs) assess that nearly 100% of global surface warming observed between 1850-1900 and 2011-2020 is attributable to anthropogenic drivers like greenhouse gas emissions. These models also generate future climate projections based on shared socioeconomic pathways (SSPs), aiding in risk assessment and the development of costly Net-Zero climate mitigation strategies. Yet, the CMIP GCMs face significant scientific challenges in attributing and modeling climate change, particularly in capturing natural climate variability over multiple timescales throughout the Holocene. Other key concerns include the reliability of global surface temperature records, the accuracy of solar irradiance models, and the robustness of climate sensitivity estimates. Global warming estimates may be overstated due to uncorrected non-climatic biases, and the GCMs may significantly underestimate solar and astronomical influences on climate variations. The equilibrium climate sensitivity (ECS) to radiative forcing could be lower than commonly assumed; empirical findings suggest ECS values lower than 3 K and possibly even closer to 1.1 +/- 0.4 K. Empirical models incorporating natural variability suggest that the 21st-century global warming may remain moderate, even under SSP scenarios that do not necessitate Net-Zero emission policies. These findings raise important questions regarding the necessity and urgency of implementing aggressive climate mitigation strategies. While GCMs remain essential tools for climate research and policymaking, their scientific limitations underscore the need for more refined modeling approaches to ensure accurate future climate assessments. Addressing uncertainties related to climate change detection, natural variability, solar influences, and climate sensitivity to radiative forcing will enhance predictions and better inform sustainable climate strategies.
67 pages, 26 figures
References in corpus (17)
- Empirical evidence for a celestial origin of the climate oscillations and its implications
- Climate simulations for 1880-2003 with GISS modelE
- Reconstruction of total and spectral solar irradiance from 1974 to 2013 based on KPVT, SoHO/MDI and SDO/HMI observations
- Impacts and risks of "realistic" global warming projections for the 21st century
- Methodology to create a new Total Solar Irradiance record: Making a composite out of multiple data records
- Multi-scale harmonic model for solar and climate cyclical variation throughout the Holocene based on Jupiter-Saturn tidal frequencies plus the 11-year solar dynamo cycle
- Does the Sun work as a nuclear fusion amplifier of planetary tidal forcing? A proposal for a physical mechanism based on the mass-luminosity relation
- On the astronomical origin of the Hallstatt oscillation found in radiocarbon and climate records throughout the Holocene
- Advanced testing of low, medium and high ECS CMIP6 GCM simulations versus ERA5-T2m
- Multi-scale dynamical analysis (MSDA) of sea level records versus PDO, AMO, and NAO indexes
- Reply to "Comment on 'Advanced Testing of Low, Medium, and High ECS CMIP6 GCM Simulations Versus ERA5-T2m' by N. Scafetta (2022)" by Schmidt, Jones, and Kennedy (2023)
- Evidences for a quasi 60-year North Atlantic Oscillation since 1700 and its meaning for global climate change
- CMIP6 GCM ensemble members versus global surface temperatures
- The Dimmest State of the Sun
- Discussion on the spectral coherence between planetary, solar and climate oscillations: a reply to some critiques
- The planetary theory of solar activity variability: a review
- Total Solar Irradiance during the Last Five Centuries