Episodic deluges in simulated hothouse climates | |
Article | |
关键词: ICE-PHASE MICROPHYSICS; RUNAWAY GREENHOUSE; MODEL; CLOUD; PARAMETERIZATION; SYNCHRONIZATION; PRECIPITATION; TEMPERATURE; EVOLUTION; EARTH; | |
DOI : 10.1038/s41586-021-03919-z | |
来源: SCIE |
【 摘 要 】
Through an idealized set of simulations, with a model that incorporates key physics, research reveals dramatic swings between massive rainfall events and extended dry periods in hothouse climates. Earth's distant past and potentially its future include extremely warm 'hothouse'(1) climate states, but little is known about how the atmosphere behaves in such states. One distinguishing characteristic of hothouse climates is that they feature lower-tropospheric radiative heating, rather than cooling, due to the closing of the water vapour infrared window regions(2). Previous work has suggested that this could lead to temperature inversions and substantial changes in cloud cover(3-6), but no previous modelling of the hothouse regime has resolved convective-scale turbulent air motions and cloud cover directly, thus leaving many questions about hothouse radiative heating unanswered. Here we conduct simulations that explicitly resolve convection and find that lower-tropospheric radiative heating in hothouse climates causes the hydrologic cycle to shift from a quasi-steady regime to a 'relaxation oscillator' regime, in which precipitation occurs in short and intense outbursts separated by multi-day dry spells. The transition to the oscillatory regime is accompanied by strongly enhanced local precipitation fluxes, a substantial increase in cloud cover, and a transiently positive (unstable) climate feedback parameter. Our results indicate that hothouse climates may feature a novel form of 'temporal' convective self-organization, with implications for both cloud coverage and erosion processes.
【 授权许可】
Free