Thermodynamic and Energetic Limits on Continental Silicate Weathering Strongly Impact the Climate and Habitability of Wet, Rocky Worlds
arXiv:2004.14058 · doi:10.3847/1538-4357/ab9362
Abstract
The "liquid water habitable zone" (HZ) concept is predicated on the ability of the silicate weathering feedback to stabilize climate across a wide range of instellations. However, representations of silicate weathering used in current estimates of the effective outer edge of the HZ do not account for the thermodynamic limit on concentration of weathering products in runoff set by clay precipitation, nor for the energetic limit on precipitation set by planetary instellation. We find that when the thermodynamic limit is included in an idealized coupled climate/weathering model, steady-state planetary climate loses sensitivity to silicate dissolution kinetics, becoming sensitive to temperature primarily through the effect of temperature on runoff and to pCO through an effect on solute concentration mediated by pH. This increases sensitivity to land fraction, CO outgassing, and geological factors such as soil age and lithology, all of which are found to have a profound effect on the position of the effective outer edge of the HZ. The interplay between runoff sensitivity and the energetic limit on precipitation leads to novel warm states in the outer reaches of the HZ, owing to the decoupling of temperature and precipitation. We discuss strategies for detecting the signature of silicate weathering feedback through exoplanet observations in light of insights derived from the revised picture of weathering.
27 pages excluding references, 30 pages total, 8 figures. Submitted to ApJ, accepted 15 May 2020. (reuploaded to arxiv 5/20/2020 to include corresponding author's email address and news of acceptance)
References in corpus (13)
- Strong Dependence of the Inner Edge of the Habitable Zone on Planetary Rotation Rate
- The atmospheric circulation and climate of terrestrial planets orbiting Sun-like and M-dwarf stars over a broad range of planetary parameters
- A Statistical Comparative Planetology Approach to the Hunt for Habitable Exoplanets and Life Beyond the Solar System
- A warmer and wetter solution for early Mars and the challenges with transient warming
- A warm or a cold early Earth? New insights from a 3-D climate-carbon model
- The persistence of oceans on Earth-like planets: insights from the deep-water cycle
- A Joint Mass-Radius-Period Distribution of Exoplanets
- Climate Cycling on Early Mars Caused by the Carbonate-Silicate Cycle
- Habitability of Earth-like stagnant lid planets: Climate evolution and recovery from snowball states
- Warming Early Mars with Climate Cycling: The Effect of CO2-H2 Collision-induced Absorption
- Effects of Radius and Gravity on the Inner Edge of the Habitable Zone
- Bifurcation in the growth of continental crust
- A Statistical Comparative Planetology Approach to Maximize the Scientific Return of Future Exoplanet Characterization Efforts