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May 9, 20260 citations

Fuzzy dark matter dynamical friction. Stalling of globular clusters induced by dynamical heating

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ASAdrian SzpilfidelPBPierre BoldriniJBJo Bovy

Key Points

  • The aim is to investigate the effects of fuzzy dark matter on the dynamics of globular clusters and their survival.
  • Implemented fuzzy dark matter dynamical friction across different halo-to-GC mass ratios and boson masses.
  • Examined the impact of baryons and solitonic cores on orbital decay and globular cluster survival.
  • Utilized a theoretical framework to analyze the stalling of globular clusters over time.
  • Fuzzy dark matter dynamical friction significantly stalls globular cluster inspiral over Hubble time, preventing their descent into galactic centers.
  • The presence of solitonic cores strengthens the survival mechanism of globular clusters, limiting mixing between in situ and ex situ clusters.
  • Predicted outcomes suggest a distinct dynamical signature of fuzzy dark matter observable in the demographics of globular cluster systems.

Abstract

We present a new implementation of fuzzy dark matter (FDM) dynamical friction within the framework, enabling orbital integrations of globular clusters (GCs) across a broad range of halo-to-GC mass ratios and boson masses. In this alternative DM scenario, dynamical friction is reduced or even suppressed by heating induced by FDM density granules. We further quantified the role of baryons and solitonic cores, which are natural consequences of FDM in galaxies, on the efficiency of orbital decay and the long-term survival of GCs. The most significant deviations from the cold DM (CDM) paradigm arise in the dwarf-galaxy regime, where FDM dynamical friction can stall the inspiral of GCs over Hubble time, thereby preventing them from sinking into galactic centres and halting the canonical galactic cannibalism of clusters. Importantly, our FDM-only friction model should be regarded as a conservative lower bound, since the inclusion of realistic FDM cores can only strengthen the survival of GCs through core stalling. This stalling mechanism not only preserves in situ populations that would otherwise be erased in CDM, but also strongly limits the mixing of in situ and ex situ clusters, yielding a bimodal radial distribution of GCs. Our results show that the demographics of GC systems encode a distinct dynamical signature of FDM in dwarfs. These predictions open a new pathway to constrain the boson mass parameter with upcoming Euclid DR1 observations of extragalactic GCs, while simultaneously offering a natural explanation for the long-standing Fornax timing problem. galpy

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Cite This Study

Szpilfidel et al. (2026) studied this question.

synapsesocial.com/papers/69fecfafb9154b0b82876b69https://doi.org/10.1051/0004-6361/202558231/pdf
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