Completed Physics & Astronomy Climate, Earth & Environment

Consolidated Grant in Solar Physics

In plain English

AI plain-English summary

The Sun’s magnetic field repeatedly unleashes explosions that can knock out power grids and disrupt satellites, yet scientists cannot fully predict when or how these events happen. This project tackles that gap by combining telescope observations with computer simulations to understand how the Sun stores and releases magnetic energy. The researchers focus on solar flares—intense bursts that accelerate particles to near light speed and heat plasma to millions of degrees—and the expulsion of magnetised material into space. They will interpret radiation from the Sun’s corona and chromosphere to trace how energy travels along magnetic fields, and model everything from particle acceleration to relativistic beams. If successful, the work will improve forecasts of space weather, which threatens electrical grids, aviation communications, and satellite navigation systems. This is fundamentally curiosity-driven research into a star that serves as a natural laboratory for cosmic plasma physics. Past fundamental studies of solar magnetism have already underpinned the space-weather models used today; deeper understanding could sharpen those warnings and reveal universal processes at work across the Universe.

View original technical description
In this proposal we study the dynamic Sun, to measure and understand the plasmas, particles and processes in its atmosphere and the extended heliosphere that it creates. We focus on several key unsolved problems in solar physics, that are also prototypes for a wider and deeper understanding of cosmic plasmas as a whole. Our top-level questions are: How does the Sun store and release energy in its magnetised atmosphere, and what can we learn about this process by computer simulations and by studying the radiation that is emitted? How do high-energy radiating particles behave in solar flares and in interplanetary space? How are they accelerated, are they beamed and do they play a key role in flares and their terrestrial impact? The magnetic field is key to everything that happens in the Sun's atmosphere. Concentrated magnetic regions emerge through the Sun's surface and into its atmosphere. Here they interact with the pre-existing magnetic field and the result is intense bursts of energy known as flares, which accelerate sub-atomic particles (electrons and ions), cause heating to millions of degrees, and can also lead to expulsion of magnetised plasma into space, which can cause damaging `space weather'. Flares have distinctive radiation signatures that are closely related to the way that energy is transmitted along the magnetic field from the corona down to the solar surface and out into the distant heliosphere, and converted into other forms as it goes. By interpreting this radiation both from the Sun's tenuous outer atmosphere - its corona - and its denser lower atmosphere - its chromosphere - we can understand what is happening in a flare. More generally, solar magnetic fields create eccentric and dynamic shapes in the solar atmosphere, for example swirling `tornado-like' structures, and clouds of cool material called prominences, apparently floating (though in reality supported by magnetic forces) above the solar surface. Our programme combines observational data from space-based and ground-based telescopes with theoretical and numerical modelling to address all of these topics, and spans a wide range of technical problems, from the modeling of radiation moving through a plasma to high-energy particle acceleration; from electromagnetic waves to relativistic particle beams; from image processing to statistical analysis of weak signals, and from mathematical `pen-and-paper' calculations to advanced numerical simulations. We will bring all these skills to bear on questions at the heart of current efforts to better understand our nearest star.

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Researchers

Eduard Kontar (Co-Investigator)Iain Hannah (Co-Investigator)Lyndsay Fletcher (Principal Investigator)Nicolas Labrosse (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Consolidated Grant in Solar and Plasma Astrophysics
STFC Consolidated Grant for the Solar Physics Group at Northumbria University
Solar, stellar and cosmological plasmas: a synthesis of data, modelling and theory.
Complex magnetic fields: An enigma of solar plasmas (Dundee-Durham Consortium)
Rolling Programme in Solar and Plasma Astrophysics

Original classification

Research Grant

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