Abstract 3C 286, a well-known radio calibrator, exhibits stability in both total flux density and polarization parameters. However, its stable and luminous interstellar radio signal may encounter interplanetary scintillation (IPS) due to density irregularities in the solar wind within the heliosphere. In this work, we analyze high-time-resolution observations of 3C 286 obtained with the Five-hundred-meter Aperture Spherical radio Telescope from 2019 to 2023. Our analysis reveals that IPS affects the polarized flux densities of the Stokes I , Q , and U parameters, whereas Stokes V shows no detectable IPS-induced variations. The IPS variations detected in Stokes I are synchronous with those in Stokes U , while those in Stokes Q exhibit greater randomness. The cross-correlation function results indicate no time delay between Stokes I and U but a delay of approximately 2.8 s between Stokes I and Q . This suggests that the different polarized radio emissions of 3C 286 originate from distinct emission regions, specifically the core and the southwestern jet. Furthermore, the projections of the radio core and jet component onto the scintillation screen at 1 au yield a solar wind plasma speed of ∼637 km s −1 .
Tian et al. (2026) studied this question.