We want to understand why Arctic climate (temperature and precipitation) change is amplified compared to the global mean, and how the exchange and transformation of air masses couples the Arctic to the global climate system. To achieve this, we link observations and modelling of small-scale processes in Arctic clouds and boundary-layers to a large-scale dynamical and themodynamical understanding of the Arctic's role in the climate system.
In particular, we use drifting balloons that record the evolution of temperature and humidity in air masses that are transported from mid-latitudes to the Arctic. We combine these observations with modelling data to understand the processes that drive changes in temperature and humidity, and to understand how the transport and cooling of these air masses link the Arctic to the global climate system.
As a result of our project, we expect to be able to better understand and constrain Arctic climate change and its amplification compared to lower latitudes.