Drift Rates of Narrowband Signals in Long-term SETI Observations for Exoplanets
arXiv:2208.02511 · doi:10.3847/1538-4357/ac90bd
Abstract
The Doppler shift of a radio signal is caused by the relative motion between the transmitter and receiver. The change in frequency of the signal over time is called drift rate. In the studies of radio SETI (Search for Extraterrestrial Intelligence), extraterrestrial narrowband signals are expected to appear "chirped" since both the exoplanet and the Earth are moving. Such planet rotation and orbital revolution around the central star can cause a non-zero drift rate. Other relative motions between the transmitter and receiver, such as the gravitational redshift and galactic potential, are negligible. In this paper, we mainly consider the common cases that the drift rate is contributed by the rotations and orbits of the Earth and exoplanet in celestial mechanics perspective, and briefly discuss other cases different from the Earth-exoplanet one. We can obtain the expected pseudosinusoidal drifting result with long-term observations, shorter orbital periods of exoplanets. Exoplanets with higher orbital eccentricities can cause asymmetric drifting. The expected result should be intermittent pseudosinusoidal curves in long-term observations. The characteristics of pseudo-sinusoidal curves, as another new criterion for extraterrestrial signals, can be applied to long-term SETI reobservations in future research.
18 pages, 12 figures, 3 tables , matches the published version
References in corpus (20)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- A terrestrial planet candidate in a temperate orbit around Proxima Centauri
- The fast spin-rotation of a young extrasolar planet
- Proxima's orbit around Alpha Centauri
- The habitability of Proxima Centauri b. I. Irradiation, rotation and volatile inventory from formation to the present
- Tidal Locking of Habitable Exoplanets
- Validation of Twelve Small Kepler Transiting Planets in the Habitable Zone
- A candidate short-period sub-Earth orbiting Proxima Centauri
- The Five-hundred-meter Aperture Spherical Radio Telescope (FAST) Project
- Early 2017 observations of TRAPPIST-1 with
- Dynamical evolution and spin-orbit resonances of potentially habitable exoplanets. The case of GJ 581d
- Choosing a Maximum Drift Rate in a SETI Search: Astrophysical Considerations
- Observation of S4716 -- a Star with a 4 yr Orbit around Sgr A*
- A Search for Technosignatures Around 31 Sun-like Stars with the Green Bank Telescope at 1.15-1.73 GHz
- Exoplanet Detection Techniques
- Discovery of ASKAP J173608.2-321635 as a Highly-Polarized Transient Point Source with the Australian SKA Pathfinder
- Sensitive Multi-beam Targeted SETI Observations towards 33 Exoplanet Systems with FAST
- The Breakthrough Listen Search for Intelligent Life: Technosignature Search of Transiting TESS Targets of Interest
- Estimating Planetary Mass with Deep Learning
- Stability of planetary systems within the S-star cluster: the Solar system analogues