The night sky is not static but seethes with change on timescales from milliseconds to months—flares on the Sun, exploding stars in distant galaxies, and planets crossing the faces of their parent stars. This programme tackles a fundamental gap: we know surprisingly little about how astronomical objects behave over short timescales. Most surveys take snapshots hours apart, missing the rapid processes that shape stars, planets, and even our own Sun. The researchers will use a suite of dedicated instruments—the ROSA imager for solar flares, SuperWASP and RISE for transiting exoplanets, and the Pan-STARRS survey for asteroids and supernovae—to capture the transient sky systematically. This is primarily curiosity-driven fundamental science. Understanding how the Sun’s atmosphere erupts in milliseconds could one day improve predictions of space weather, which threatens satellites, power grids, and aviation communications. Discovering transiting exoplanets expands our knowledge of planetary systems beyond our own. Detecting near-Earth asteroids has a direct practical consequence: cataloguing objects that could collide with Earth. But the core value here is building a time-resolved picture of the universe—the kind of foundational knowledge that has historically enabled unexpected breakthroughs, from GPS (which relies on relativistic corrections from fundamental physics) to medical imaging technologies derived from astronomical detectors.
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To the naked eye, the night sky appears constant, apart from the motion of the Moon and brighter planets, and the passing of the occasional comet or meteor. However, detailed observations reveal that this is far from the truth. Many stars vary in brightness, either due to intrinsic variability or because an orbiting planet (called a transiting exoplanet) passes in front of it, blocking out a portion of the starlight. Faint, small Solar System bodies, orbiting the Sun and hence changing their position in the night sky, are revealed on exposures taken with large telescopes. Such exposures also reveal stars exploding as supernova in distant galaxies. Even the Sun - the brightest object in the sky - is continually changing. Giant explosions on its surface, known as flares, take place over timescales of minutes to hours. Recently, observations of the Sun with high-speed cameras reveal that changes in the solar atmosphere can occur over timescales of much less than a second. All these phenomena lead to what is termed the transient sky, i.e. a sky whose appearance varies with time. We plan a coordinated programme of observational and theoretical astrophysics to study such phenomena. This will make use of instruments and facilities developed specifically for the investigation of the transient sky, on timescales ranging from less than a second to months. Major themes which will be covered by our Rolling Grant programmes include: the study of activity and variability in the solar atmosphere at high time resolution with the ROSA imager; the discovery and characterisation of transiting exoplanets by the SuperWASP and RISE facilities; the detection of Solar System bodies and supernovae using data obtained from the Pan-STARRS sky survey. Our Rolling Grant programmes will also make extensive use of other major STFC facilities for followup and complementary observations of the Sun, exoplanets, Solar System bodies and supernovae, as well as the stars which explode as supernovae. These facilities include satellites, such as the Hinode solar mission and the Hubble Space Telescope, and large ground-based telescopes including the 8-metre diameter Very Large Telescope at the European Southern Observatory in Chile, and the 4-metre diameter William Herschel Telescope at the Isaac Newton Observatory on La Palma in the Canary Islands.
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