Runaway stars from young star clusters as probes of cluster formation

STFC · United Kingdom government procurement

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December 31, 2027
Response Due
Active
Status

Opportunity Overview

One of the major questions astronomers currently face is "how and when do stars form?" Our own Sun is one of billions of stars that have formed in the 13-billion year lifetime of our Galaxy. When we look at these stars we see a wide range of sizes, masses and temperatures. Some stars appear isolated, others live in a binary system with another star, and some are found in groups of stars known as clusters. The vast majority of young stars are observed in groups or clusters of some sort, suggesting that the majority of stars might form in such clusters. However, since even the early phases of a star's life are much longer than human lifetimes, we cannot directly observe how these clusters form and evolve, and instead must infer how these processes occur indirectly.

There are two competing models for how a star cluster forms. The first is the model of "monothlic collapse", in which a dense cloud of gas collapses under its own gravity and then forms stars in a clustered distribution. The second model is that of "hierarchical mergers", in which the stars form over a larger volume and at lower densities, but then gather together, due to gravity, to form a cluster of stars. Distinguishing between these models is important because they imply very different conditions for star formation and different environments under which young planetary systems form and evolve. Determining which model is closer to the truth is difficult because very young star clusters are often obscured within the molecular cloud that they formed from.

Fortunately, these competing models for star cluster formation result in a number of tell-tale signatures, one of which is the number and speeds of stars that get ejected from the cluster early in its life. Such "runaway" stars have been known about for many decades, but discoveries have typically been limited to the most luminous runaway stars. It is only recently, thanks to data from the Gaia satellite, that...

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Solicitation Details

Issuing agencySTFC
CountryUnited Kingdom
CategoryResearch Development
PublishedMarch 31, 2024
Procurement stageActive solicitation
Response dueDecember 31, 2027
StatusOpen — accepting responses
Official sourceView original notice
Last verifiedAugust 09, 2026

Source: UK Research and Innovation (UKRI) — Open Government Licence v3.0.

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