Orbit design for mitigating interstellar scattering effects in Earth-space VLBI observations of Sgr A*
arXiv:2504.07892 · doi:10.1051/0004-6361/202452668
Abstract
(abridged) The black hole Sagittarius A* (Sgr A*) is a prime target for next-generation Earth-space very-long-baseline interferometry missions such as the Black Hole Explorer (BHEX), which aims to probe baselines of the order of 20 G. At these baselines, Sgr A* observations will be affected by the diffractive scattering effects from the interstellar medium (ISM). Therefore, we study how different parameter choices for turbulence in the ISM affect BHEX's observational capabilities to probe strong lensing features of Sgr A*. By using a simple geometric model of concentric Gaussian rings for Sgr A*'s photon ring signal and observing at 320 GHz, we find that the BHEX-ALMA baseline has the required sensitivity to observe Sgr A* for a broad range of values of the power-law index of density fluctuations in the ISM and the inner scale of turbulence. For other baselines with moderate sensitivities, a strong need for observations at shorter scales of 13.5 G is identified. For this purpose, an orbit migration scheme is proposed. It is modeled using both chemical propulsion (CP)-based Hohmann transfers and electric propulsion (EP)-based orbit raising with the result that a CP-based transfer can be performed in a matter of hours, but with a significantly higher fuel requirement as compared to EP, which however requires a transfer time of around 6 weeks. The consequences of these orbits for probing Sgr A*'s spacetime is studied by quantifying the spatial resolution, temporal resolution and the angular sampling of the photon ring signal in the Fourier coverage of each of these orbits. We show that higher orbits isolate spacetime features while sacrificing both, signal lost to scattering and temporal resolution, but gain greater access to the morphology of the photon ring.
Accepted for publication in Astronomy and Astrophysics (A&A)
References in corpus (51)
- First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole
- First Sagittarius A* Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole in the Center of the Milky Way
- First M87 Event Horizon Telescope Results. VI. The Shadow and Mass of the Central Black Hole
- Measuring Distance and Properties of the Milky Way's Central Supermassive Black Hole with Stellar Orbits
- First M87 Event Horizon Telescope Results. IV. Imaging the Central Supermassive Black Hole
- First M87 Event Horizon Telescope Results. II. Array and Instrumentation
- Detection of the gravitational redshift in the orbit of the star S2 near the Galactic centre massive black hole
- A geometric distance measurement to the Galactic Center black hole with 0.3% uncertainty
- First M87 Event Horizon Telescope Results. VIII. Magnetic Field Structure near The Event Horizon
- First Sagittarius A* Event Horizon Telescope Results. III: Imaging of the Galactic Center Supermassive Black Hole
- Universal Interferometric Signatures of a Black Hole's Photon Ring
- Multifrequency Observations of Radio Pulse Broadening and Constraints on Interstellar Electron Density Microstructure
- Extending Big Power Law in the Sky with Turbulence Spectra from WHAM data
- The Shape of the Black Hole Photon Ring: A Precise Test of Strong-Field General Relativity
- A General Relativistic Null Hypothesis Test with Event Horizon Telescope Observations of the black-hole shadow in Sgr A*
- Radio and Millimeter Monitoring of Sgr A*: Spectrum, Variability, and Constraints on the G2 Encounter
- The Size, Shape, and Scattering of Sagittarius A* at 86 GHz: First VLBI with ALMA
- Polarimetric properties of Event Horizon Telescope targets from ALMA
- The Scattering and Intrinsic Structure of Sagittarius A* at Radio Wavelengths
- Theory and Simulations of Refractive Substructure in Resolved Scatter-Broadened Images
- On the Observable Shape of Black Hole Photon Rings
- Simulations of imaging the event horizon of Sagittarius A* from space
- The Event Horizon Telescope: exploring strong gravity and accretion physics
- Reference Array and Design Consideration for the next-generation Event Horizon Telescope
- Discovery of Substructure in the Scatter-Broadened Image of Sgr A*
- Imaging Black Holes and Jets with a VLBI Array Including Multiple Space-Based Telescopes
- Metrics and Motivations for Earth-Space VLBI: Time-Resolving Sgr A* with the Event Horizon Telescope
- Stochastic Optics: A Scattering Mitigation Framework for Radio Interferometric Imaging
- Black Hole Images as Tests of General Relativity: Effects of Plasma Physics
- The Accretion flow in M87 is really MAD
- Adaptive Analytical Ray Tracing of Black Hole Photon Rings
- Simulations of M87 and Sgr A* Imaging with the Millimetron Space Observatory on near-Earth orbits
- VLBA observations of a rare multiple quasar imaging event caused by refraction in the interstellar medium
- Prediction for the interferometric shape of the first black hole photon ring
- Space VLBI: from first ideas to operational missions
- The Optics of Refractive Substructure
- RadioAstron Studies of the Nearby, Turbulent Interstellar Plasma With the Longest Space-Ground Interferometer Baseline
- Using space-VLBI to probe gravity around Sgr A*
- First Very Long Baseline Interferometry Detections at 870μm
- Testing General Relativity with the Black Hole Shadow Size and Asymmetry of Sagittarius A*: Limitations from Interstellar Scattering
- The intrinsic structure of Sagittarius A* at 1.3 cm and 7 mm
- Demonstrating Photon Ring Existence with Single-Baseline Polarimetry
- Relative depolarization of the black hole photon ring in GRMHD models of Sgr A* and M87*
- Probing the intergalactic turbulence with fast radio bursts
- Tracing Milky Way scattering by compact extragalactic radio sources
- Power-law models of totally anisotropic scattering
- Orbital configurations of spaceborne interferometers for studying photon rings of supermassive black holes
- Photon ring polarimetry with next-generation black hole imaging I. M87*
- Imaging the event horizon of M87* from space on different timescales
- High frequency VLBI observations of the scatter broadened quasar B2005+403
- Effect of Earth's Oblateness on Black Hole Imaging Through Earth-Space and Space-Space VLBI