Probing Dark Matter's Gravitational Effects Locally with TianQin

Fuente: arXiv
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Main Authors: Liang, Zheng-Cheng, Huang, Fa-Peng, Zhang, Xuefeng, Hu, Yi-Ming
Format: Preprint
Published: 2025
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author Liang, Zheng-Cheng
Huang, Fa-Peng
Zhang, Xuefeng
Hu, Yi-Ming
author_facet Liang, Zheng-Cheng
Huang, Fa-Peng
Zhang, Xuefeng
Hu, Yi-Ming
contents In this study, we explore the potential of using TianQin missions to probe the local gravitational effects of dark matter. The TianQin project plans to launch satellites at both low and high orbits. High-precision orbit determination is expected to aid in detecting Earth's gravity or gravitational waves. By comparing the derived masses in low and high orbits, it is possible to constrain the amount of dark matter between the two spheres, hence placing a local constraint on dark matter's gravitational effect. Our results show the capability of TianQin in detecting the density of dark matter around Earth, with an ultimate sensitivity to a value of $10^{-8}\,\,{\rm kg\,\,m^{-3}}$. This detection limit surpasses the estimated bounds for the solar system and the observation results for our Galaxy by approximately 7 and 14 orders of magnitude, respectively.
format Preprint
id arxiv_https___arxiv_org_abs_2506_13035
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Probing Dark Matter's Gravitational Effects Locally with TianQin
Liang, Zheng-Cheng
Huang, Fa-Peng
Zhang, Xuefeng
Hu, Yi-Ming
General Relativity and Quantum Cosmology
In this study, we explore the potential of using TianQin missions to probe the local gravitational effects of dark matter. The TianQin project plans to launch satellites at both low and high orbits. High-precision orbit determination is expected to aid in detecting Earth's gravity or gravitational waves. By comparing the derived masses in low and high orbits, it is possible to constrain the amount of dark matter between the two spheres, hence placing a local constraint on dark matter's gravitational effect. Our results show the capability of TianQin in detecting the density of dark matter around Earth, with an ultimate sensitivity to a value of $10^{-8}\,\,{\rm kg\,\,m^{-3}}$. This detection limit surpasses the estimated bounds for the solar system and the observation results for our Galaxy by approximately 7 and 14 orders of magnitude, respectively.
title Probing Dark Matter's Gravitational Effects Locally with TianQin
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2506.13035