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The latent heating feedback on the mid-latitude circulation
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Midlatitude storms transport warm and moist air poleward and upward,
releasing latent heat. Latent heating is thus organised by the
circulation but then modifies temperature gradients and winds,
constituting a nonlinear feedback. We define the latent heating feedback
as the effects that arise from latent heating being coupled with the
circulation. Because of its nonlinearity, the climatic effects of this
feedback are difficult to isolate and remain poorly understood.
By decoupling latent heating from the circulation in an atmospheric
general circulation model, we show that the latent heating feedback
enhances storm track eddy diffusivity, modifying eddy heat fluxes beyond
changes in mean baroclinicity. Simultaneously, tracked storms occur at
lower latitudes, intensify more, and propagate further poleward, while
the subtropical jet strengthens as coupled latent heating preserves
lower latitude baroclinicity. The feedback response supports the idea
that diabatic effects cause the ”too zonal, too equatorward” storm track
biases in climate models.
Title: The latent heating feedback on the mid-latitude circulation
Description:
Midlatitude storms transport warm and moist air poleward and upward,
releasing latent heat.
Latent heating is thus organised by the
circulation but then modifies temperature gradients and winds,
constituting a nonlinear feedback.
We define the latent heating feedback
as the effects that arise from latent heating being coupled with the
circulation.
Because of its nonlinearity, the climatic effects of this
feedback are difficult to isolate and remain poorly understood.
By decoupling latent heating from the circulation in an atmospheric
general circulation model, we show that the latent heating feedback
enhances storm track eddy diffusivity, modifying eddy heat fluxes beyond
changes in mean baroclinicity.
Simultaneously, tracked storms occur at
lower latitudes, intensify more, and propagate further poleward, while
the subtropical jet strengthens as coupled latent heating preserves
lower latitude baroclinicity.
The feedback response supports the idea
that diabatic effects cause the ”too zonal, too equatorward” storm track
biases in climate models.
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