Simon Casassus, Miguel Cárcamo, Oriana Domínguez-Jamett, Yuhiko Aoyama, Gabriel-Dominique Marleau, Ondřej Chrenko, Hauyu Baobab Liu, Barbara Ercolano
Context. The radio emission mechanisms from accreting protoplanets and their variability link observations and physical properties. Aims. We revisit the variability of the ∼343 GHz (ALMA Band 7) flux density from PDS 70c ( F B7 ). Methods. The subtraction of the extended time-averaged signal may enable the measurement of the flux density from variable and embedded point sources. Visibility alignment and self-calibration yield close to thermal residuals in each execution block (EB) of ALMA observations, thus allowing the time-differential photometry of point-sources in the visibility domain. The variability of PDS 70c was checked against synthetic control point sources. Results. In images of the 2017 ALMA dataset, with three ∼1 h EBs, PDS 70c was detected only on 6 December 2017, where F B7 rose by 228%±69% (3.3 σ ). Time-differential photometry confirms a rise by 170%±46% (3.7 σ ). An application to ∼2 h EBs from the 2023 dataset resulted in constant flux densities, within a scatter of ∼15%. However, F B7 ( t ) shows some scatter when splitting the deep 2023 EBs into 20 min intervals, with a χ 2 test significant at 2.6 σ , and an intrinsic dispersion of 49%±21%. Conclusions. The radio variability of PDS 70c, observed over hours but averaged out on longer timescales, is indeed expected if the signal is due to H I free-free from an accretion shock on a circumplanetary disk surface. A planet-to-environment mass ratio < 10 −4 is required to avoid smoothing by radiative diffusion if the signal is due to thermal emission from the environment.