Project Details
Description
The continuous developments of optical clocks and the long-distance links via fibers, especially within TerraQ, will give access to terrestrial clock networks in practice, which will enable the novel measurement concept of chronometric levelling. From a theoretical perspective, this project will elaborate the rigorous relativistic formalism for clock-based geodesy and assess the effects of approximations in different scenarios. Furthermore, this project will figure out the most promising applications for clock networks in geodesy and fundamental physics.
We will run dedicated simulations to optimise the topology of clock networks and investigate how and where they can contribute to which extent in different applications. We will also derive the requirements on the performance of clock networks to meet the geodetic demands and give feedback to projects Optical Clocks for Chronometric Levelling (A04) and Interferometric Fibre Links (A05). The theoretical developments made here have impact for Relativistic Geodesy from Space Using Novel Measurement Concepts (C03). In fundamental physics, we will investigate the use of clock constellations for testing GR.
We will run dedicated simulations to optimise the topology of clock networks and investigate how and where they can contribute to which extent in different applications. We will also derive the requirements on the performance of clock networks to meet the geodetic demands and give feedback to projects Optical Clocks for Chronometric Levelling (A04) and Interferometric Fibre Links (A05). The theoretical developments made here have impact for Relativistic Geodesy from Space Using Novel Measurement Concepts (C03). In fundamental physics, we will investigate the use of clock constellations for testing GR.
| Acronym | TerraQ |
|---|---|
| Status | Finished |
| Effective start/end date | 1 Jan 2021 → 31 Dec 2024 |
Collaborative partners
- Leibniz University Hannover (lead)
- University of Bremen
Funding type
- German Research Foundation (DFG)
Funding scheme
- Collaborative Research Centres/Transregios
Key research areas of LUH
- Quantum Optics and Gravitational Physics
Projects
- 1 Finished
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TerraQ: Collaborative Research Centre 1464: Relativistic and quantum-based geodesy
Müller, J. (Principal Investigator)
1 Jan 2021 → 31 Dec 2024
Project: Research
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Gaussian orbital perturbation theory in Schwarzschild space-time in terms of elliptic functions
Yanchyshen, O. & Lämmerzahl, C., 31 Jan 2025, In: Classical and quantum gravity. 42, 4, 045010.Research output: Contribution to journal › Article › Research › peer review
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Quantum imaging as alternative readout in atom interferometry: The case of gravity
Cepok, M., Rätzel, D. & Lämmerzahl, C., 17 Oct 2025, In: AVS Quantum Science. 7, 4, 044401.Research output: Contribution to journal › Article › Research › peer review
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Detection of time variable gravity signals using terrestrial clock networks
Vincent, A. & Müller, J., 15 Mar 2024, In: Advances in Space Research. 73, 6, p. 3312-3320 9 p.Research output: Contribution to journal › Article › Research › peer review
Open Access